Discussion Board
B R I E F C O N T E N T S
UNIT I Pathophysiologic Processes
1 Introduction to Pathophysiology, 1
2 Homeostasis, Allostasis, and Adaptive Responses to Stressors, 12
UNIT II Cellular Function
3 Cell Structure and Function, 26
4 Cell Injury, Aging, and Death, 59
5 Genome Structure, Regulation, and Tissue Differentiation, 77
6 Genetic and Developmental Disorders, 94
7 Neoplasia, 117
UNIT III Defense
8 Infectious Processes, 141
9 Inflammation and Immunity, 158
10 Alterations in Immune Function, 194
11 Malignant Disorders of White Blood Cells, 215
12 HIV Disease and AIDS, 233
UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
13 Alterations in Oxygen Transport, 259
14 Alterations in Hemostasis and Blood Coagulation, 298
15 Alterations in Blood Flow, 313
16 Alterations in Blood Pressure, 337
UNIT V Cardiac Function
17 Cardiac Function, 354
18 Alterations in Cardiac Function, 382
19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases, 411
20 Shock, 434
UNIT VI Respiratory Function
21 Respiratory Function and Alterations in Gas Exchange, 451
22 Obstructive Pulmonary Disorders, 478
23 Restrictive Pulmonary Disorders, 499
UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
24 Fluid and Electrolyte Homeostasis and Imbalances, 521
25 Acid–Base Homeostasis and Imbalances, 541
UNIT VIII Renal and Bladder Function
26 Renal Function, 551
27 Intrarenal Disorders, 575
28 Acute Kidney Injury and Chronic Kidney Disease, 593
29 Disorders of the Lower Urinary Tract, 609
UNIT IX Genital and Reproductive Function
30 Male Genital and Reproductive Function, 626
31 Alterations in Male Genital and Reproductive Function, 641
32 Female Genital and Reproductive Function, 656
33 Alterations in Female Genital and Reproductive Function, 671
34 Sexually Transmitted Infections, 689
UNIT X Gastrointestinal Function
35 Gastrointestinal Function, 697
36 Gastrointestinal Disorders, 720
37 Alterations in Function of the Gallbladder and Exocrine Pancreas, 742
38 Liver Diseases, 754
UNIT XI Endocrine Function, Metabolism, and Nutrition
39 Endocrine Physiology and Mechanisms of Hypothalamic-Pituitary Regulation, 783
40 Disorders of Endocrine Function, 799
41 Diabetes Mellitus, 815
42 Nutritional and Metabolic Disorders, 838
UNIT XII Neural Function
43 Structure and Function of the Nervous System, 850
44 Acute Disorders of Brain Function, 891
45 Chronic Disorders of Neurologic Function, 915
46 Alterations in Special Sensory Function, 936
47 Pain, 955
UNIT XIII Neuropsychological Function
48 Neurobiology of Psychotic Illnesses, 971
49 Neurobiology of Nonpsychotic Illnesses, 989
UNIT XIV Musculoskeletal Support and Movement
50 Structure and Function of the Musculoskeletal System, 1001
51 Alterations in Musculoskeletal Function: Trauma, Infection, and Disease, 1020
52 Alterations in Musculoskeletal Function: Rheumatic Disorders, 1042
UNIT XV Integumentary System
53 Alterations in the Integumentary System, 1058
54 Burn Injuries, 1093
Evolve Student Resources for Banasik: Pathophysiology, 6th Edition, include the following:
• Animations.
• Review questions with rationales.
• Key Points.
• Glossary with audio pronunciations.
• Answers to key questions.
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2015v1.0
PATHOPHYSIOLOGY TH EDITION6
JACQUELYN L. BANASIK, PhD, ARNP Associate Professor College of Nursing
Washington State University Spokane, Washington
LEE-ELLEN C. COPSTEAD, PhD, RN Professor Emerita
Department of Nursing College of Nursing and Health Sciences
University of Wisconsin—Eau Claire Eau Claire, Wisconsin
3251 Riverport Lane St. Louis, Missouri 63043
PATHOPHYSIOLOGY, SIXTH EDITION ISBN: 978-0-323-35481-3
Copyright © 2019 by Elsevier Inc. All rights reserved.
No part of this publication may be reproduced or transmitted in any form or by any means, electronic or mechanical, including photocopying, recording, or any information storage and retrieval system, without permission in writing from the publisher. Details on how to seek permission, further information about the Publisher’s permissions policies and our arrangements with organizations such as the Copyright Clearance Center and the Copyright Licensing Agency, can be found at our website: www.elsevier.com/permissions.
This book and the individual contributions contained in it are protected under copyright by the Publisher (other than as may be noted herein).
Notices
Practitioners and researchers must always rely on their own experience and knowledge in evaluating and using any information, methods, compounds or experiments described herein. Because of rapid advances in the medical sciences, in particular, independent verification of diagnoses and drug dosages should be made. To the fullest extent of the law, no responsibility is assumed by Elsevier, authors, editors or contributors for any injury and/or damage to persons or property as a matter of products liability, negligence or otherwise, or from any use or operation of any methods, products, instructions, or ideas contained in the material herein.
Previous editions copyrighted 2013, 2010, 2005, 2000, and 1995.
International Standard Book Number: 978-0-323-35481-3
Executive Content Strategist: Kellie White Content Development Specialist: Jennifer Wade Publishing Service Manager: Jeffrey Patterson Book Production Specialist: Carol O’Connell Book Designer: Renee Duenow
Printed in Canada
Last digit is the print number: 9 8 7 6 5 4 3 2 1
To:
Loved ones, past and present,
who give meaning to the work.
JLB
This page intentionally left blank
vii
Brent A. Banasik, PhD, MA, BS Scientist Chemistry Banasik Consulting Seattle, Washington
Brianne N. Banasik, BS Environmental Science, MS Marine Resources Management
Research Associate Pediatric Vaccinology University of Texas Medical Branch Galveston, Texas
Jacquelyn L. Banasik, PhD, ARNP Associate Professor College of Nursing Washington State University Spokane, Washington
Robin Y. Beeman, BSN, MSN, PhD Chair and Professor Nursing University of Wisconsin—Eau Claire Eau Claire, Wisconsin
Cheryl L. Brandt, PhD, RN, ACNS-BC Professor College of Nursing and Health Sciences University of Wisconsin—Eau Claire Eau Claire, Wisconsin
Ann Futterman Collier, PhD Associate Professor and Chair Psychological Sciences Northern Arizona University Flagstaff, Arizona
Lee-Ellen C. Copstead, PhD, RN Professor Emerita Department of Nursing College of Nursing and Health Sciences University of Wisconsin—Eau Claire Eau Claire, Wisconsin
Carol L. Danning, MD Staff Rheumatologist Rheumatology Department Gundersen Health Systems La Crosse, Wisconsin
Michael R. Diestelmeier, MD Fellow American Academy of Dermatology Dermatologist, Retired Mayo Clinic Health System Eau Claire, Wisconsin
Ruth E. Diestelmeier, RN, MSN Clinical Instructor Department of Nursing University of Wisconsin—Eau Claire Eau Claire, Wisconsin
C O N T R I B U T O R S
Roberta J. Emerson, PhD, RN Associate Professor, Retired Washington State University College of Nursing Spokane, Washington
Linda Felver, PhD, RN Associate Professor School of Nursing Oregon Health & Science University Portland, Oregon
Rosemary A. Jadack, PhD, RN Professor Nursing University of Wisconsin—Eau Claire Eau Claire, Wisconsin
Debra A. Jansen, PhD, RN Associate Dean, Professor College of Nursing and Health Sciences University of Wisconsin—Eau Claire Eau Claire, Wisconsin
Marie L. Kotter, PhD, MS, BS Professor Emeritus Health Sciences Weber State University Ogden, Utah
Teresa Grigsby Loftsgaarden, MSN, RN, OCN,ONN-CG
Oncology Nurse Navigator Regional Cancer Center Sacred Heart Hospital Eau Claire, Wisconsin
Joni D. Marsh, BSN, MN Advanced Registered Nurse Practitioner Medical Oncology Summit Cancer Centers Spokane, Washington
Benjamin J. Miller, PhD, ARNP, FNP-C, ACNPC, ENP-C
Assistant Professor Seattle University Seattle, Washington
Sarah Ogle, DO, MS Banner University Medical Center-Phoenix University of Arizona College of Medicine
Phoenix Phoenix, Arizona
Nirav Patel, MD Assistant Professor, Infectious Diseases and
Critical Care Medicine Internal Medicine Saint Louis University School of Medicine; Chief Medical Officer SSM Health Saint Louis University Hospital; Infection Control Officer/Director of
Antibiotic Stewardship SSM Health Saint Louis University Hospital Saint Louis, Missouri
Faith Young Peterson, BSN, MSN, MPA, CFNP
Family Nurse Practitioner Marsing, Idaho
Cheryl Rockwell, RN, MSN Clinical Assistant Professor Nursing Department Indiana University-Purdue University at
Fort Wayne; Staff/Clinical Nurse Surgical Trauma Intensive Care Unit Parkview Health Systems Fort Wayne, Indiana
Samantha Cody Russell, Psychology, MA Graduate Student Psychological Sciences Northern Arizona University Flagstaff, Arizona
Jeffrey S. Sartin, MD Consulting Physician Infectious Diseases Infectious Disease and Epidemiology
Associates; Consulting Physician Infectious Diseases Nebraska Medicine; Consulting Physician Infectious Diseases CHI Hospitals Omaha, Nebraska
Lorna L. Schumann, PhD Heritage UGM Women and Children’s
Clinic Medical Clinic Heritage Health Coeur d’Alene, Idaho
Susan G. Trevithick, RN, MS, NE-BC Compliance Officer VA Salt Lake City Healthcare System Salt Lake City, Utah
Marvin Van Every, MD Staff Urologist Urology Department Gundersen Health Systems La Crosse, Wisconsin
Linda D. Ward, PhD, FNP-C Assistant Professor College of Nursing Washington State University Spokane, Washington
viii
Brianne N. Banasik, MS Research Associate Pediatric Vaccinology University of Texas Medical Branch Galveston, Texas
Deb Cipali, RN, BSN, MSN, EdD(c) Des Moines Area Community College Nursing Lab Coordinator/Adjunct Professor Ankeny, Iowa
Janie Corbitt, RN, MLS Milledgville, Georgia
Maria Fleurdeliz Cuyco, BS Instructor Preferred College of Nursing Los Angeles, California
Abimbola Farinde, PhD Professor Columbia Southern University Orange Beach, Alabama
Annette Gunderman, DEd, MSN, RN Associate Professor of Nursing Bloomsburg University Bloomsburg, Pennsylvania
Barbara Hunter, RN, MSN School of Nursing, Klamath Falls Campus Oregon Health & Science University Klamath Falls, Oregon
Sandra L. Kaminski, MS, PA-C Assistant Professor Seton Hall University School of Health and Medical Sciences; Physician Assistant VA NJ Healthcare System Medical Service/Infections Disease Clark, New Jersey
Steven Krau, PhD, RN, CNE Associate Professor Vanderbilt School of Nursing Nashville, Tennessee
Clarice Perry, MS Research Associate Pediatric Vaccinology University of Texas Medical Branch Galveston, Texas
R E V I E W E R S
Janet Pinkelman, MSN, RNC-Maternal Newborn Nursing
Professor of Nursing Owens Community College Toledo, Ohio
Linda Turchin, RN, MSN, CNE Associate Professor of Nursing Fairmont State University Fairmont, West Virginia
Kim Webb, MN, RN Adjunct Nursing Instructor Pioneer Technology Center Ponca City, Oklahoma
Janice Williams, RN, ACNS-BC, CDE Professor of Nursing and Program Director Armstrong McDonald School of Nursing College of the Ozarks Point Lookout, Missouri
ix
The pace of scientific discovery in health and medicine continues to transform our understanding of physiology and disease. To be clinically relevant and useful to health care students and professionals, a text must synthesize a vast amount of detailed knowledge into overarching concepts that can be applied broadly. As in previous editions, the goal of the sixth edition of Pathophysiology is to include recent and relevant information on anatomy, biochemistry, cell physiology, genomics, and pathophysiology while not overwhelming the reader. Attention is given to major concepts relevant to clinical practice while still providing enough detail for deep understanding.
ORGANIZATION Pathophysiology uses a systems approach to content, beginning with a review of normal anatomy and physiology, followed by pathophysiology and application of concepts to specific disorders. The text is organized into 15 units, each of which includes a particular body system or group of interrelated body systems and the pertinent pathophysiologic concepts and disorders.
FEATURES An understanding of normal structure and function of the body is necessary for any detailed understanding of its abnormalities and pathophysiology. The first chapter in most units includes a fully illustrated review of normal physiology. Age-related concepts are highlighted in boxes titled Geriatric Considerations and Pediatric Considerations.
Each chapter opens with Key Questions, which are designed to alert the reader to important conceptual questions that will be discussed in the chapter. Although the chapters are meant to be read from beginning to end to develop an understanding of the material, the text also serves as a reference for looking up specific content. Chapter Outlines are included at the beginning of each chapter to help the reader locate specific content. Within every chapter, Key Points are identified at the end of every major discussion and are presented in short bulleted lists. These recurring summaries help readers to focus on the main points.
Nearly 900 illustrations elucidate both normal physiology and pathophysiologic changes. The entire book is in full color, with color
used generously in the illustrations to better explain pathophysiologic concepts.
A study of pathophysiology requires a new vocabulary, and many of these terms are defined in a comprehensive Glossary, which appears at the end of the text. Common prefixes and suffixes as well as root words are included in the back matter to help with basic understanding of the language of pathophysiology.
ANCILLARIES Student Learning Resources on Evolve The student section of the book’s website hosted on Evolve offers nearly 700 Student Review Questions in a variety of question formats, an Audio Glossary, Animations to help readers visualize pathophysiologic processes, Case Studies with questions, and Key Points Review. Visit the Evolve website at http://evolve.elsevier.com/Banasik/pathophysiology.
Study Guide Pathophysiology can be a daunting subject for students because of the large volume of factual material to be learned. The student Study Guide is designed to help students focus on important pathophysiologic concepts. Questions to check recall of normal anatomy and physiology are included for each chapter. A number of activities that help the student focus on similarities and differences between often-confused pathologic processes are included. More than 1500 self-assessment test questions with answers are included to help students check their understanding and build confidence for examinations. Case studies, with more than 250 questions including rationales for correct and incorrect answers, are used to help students begin to apply pathophysi- ologic concepts to clinical situations.
Instructor Learning Resources on Evolve The Instructor Learning Resources on Evolve provide a number of teaching aids for instructors who require the text for their students. The materials include a Test Bank presented in Exam View with approximately 1200 test items, a Teach for Nurses instructor manual detailing the resources available to instructors for their lesson planning, a PowerPoint lecture guide with more than 4000 slides with integrated case studies and audience response questions to facilitate classroom presentations, and an Image Collection of more than 900 color images from the text.
P R E F A C E
x
Revising this 6th edition of the text has been possible because of the tremendous dedication of authors, artists, reviewers, and editors. Sincere gratitude goes to all who helped with this and previous editions. In particular, grateful appreciation is extended to all of the contributing authors who have given exhaustively of their time over many editions over the decades. Thank you to the many thoughtful experts who gave their time to read and critique manuscripts and help ensure excellence in chapter content throughout the text.
Grateful recognition is made to the staff at Elsevier: Kellie White, Executive Content Strategist; Jennifer Wade, Content Development Specialist; Jeffrey Patterson, Publishing Service Manager; Carol O’Connell, Book Production Specialist; Renee Duenow, Book Designer; and Vikraman Palani, Multimedia Producer.
We would like to recognize those who provided a foundation for the revised text through their contributions to earlier editions: Arnold A. Asp, Donna Bailey, Barbara Bartz, Linda Belsky-Lohr, Tim Brown, Carolyn Spenee Cagle, Karen Carlson, Katherina P. Choka, Arnold Norman Cohen, Cynthia F. Corbett, Lorri Dawson, Leslie Evans, Patricia Garber, Jane Georges, Karen Groth, Christine M. Henshaw, Carolyn Hoover, Jo Annalee Irving, Marianne Genge Jagmin, Debby Kaaland, Naomi Lungstrom, Rick Madison, Anne Roe Mealey, David Mikkelsen, Carrie Miller, Linda Denise Oakley, Maryann Pranulis, Mark Puhlman, Edith Randall, Bridget Recker, Cleo Richard, Dawn Rondeau, Mary Sanguinetti-Baird, Billie Marie Severtsen, Jacqueline Siegel, Gary Smith, Sheila Smith, Martha Snider, Pam Springer, Angela Starkweather, Patti Stec, Julie Symes, Lorie Wild, and Debra Winston-Heath.
A C K N O W L E D G M E N T S
xixi
C O N T E N T S
UNIT I Pathophysiologic Processes
1 Introduction to Pathophysiology, 1 Lee-Ellen C. Copstead
Framework for Pathophysiology, 2 Etiology, 2 Pathogenesis, 2 Clinical Manifestations, 3 Treatment Implications, 3
Concepts of Normality in Health and Disease, 4 Statistical Normality, 4 Individual Factors Influencing Normality, 5
Patterns of Disease in Populations, 6 Concepts of Epidemiology, 6
2 Homeostasis, Allostasis, and Adaptive Responses to Stressors, 12 Debra A. Jansen and Roberta J. Emerson
Homeostasis and Allostasis, 12 Homeostasis, 12 Allostasis, 13
Stress as a Concept, 13 The General Adaptation Syndrome and
Allostasis, 14 Stressors, Gender and Developmental Influences,
and Risk Factors, 16 Neurohormonal Mediators of Stress and
Adaptation, 17 Catecholamines: Norepinephrine and
Epinephrine, 17 Adrenocortical Steroids: Cortisol and
Aldosterone, 18 Endorphins, Enkephalins, and Immune
Cytokines, 19 Sex Hormones: Estrogen, Testosterone, and
Dehydroepiandrosterone, 19 Growth Hormone, Prolactin, and
Oxytocin, 19 Adaptation, Coping, and Illness, 20
Adaptation, Coping, and Resilience, 20 Allostatic Overload and Illness, 21
UNIT II Cellular Function
3 Cell Structure and Function, 26 Jacquelyn L. Banasik and Brianne N. Banasik
Plasma Membrane, 27 Membrane Structure, 27 Lipid Bilayer, 27 Membrane Proteins, 29
Organization of Cellular Compartments, 30 Cytoskeleton, 30 Nucleus, 30 Endoplasmic Reticulum, 31 Golgi Apparatus, 32 Lysosomes and Peroxisomes, 33 Mitochondria, 34
Cellular Metabolism, 34 Glycolysis, 36 Citric Acid Cycle, 36 Oxidative Phosphorylation, 36
Functions of the Plasma Membrane, 39 Membrane Transport of Macromolecules, 39 Membrane Transport of Small Molecules, 40 Cellular Membrane Potentials, 45
Intercellular Communication and Growth, 48 Cell Signaling Strategies, 48 Cell Surface Receptor–Mediated Responses, 49 Intracellular Receptor–Mediated Responses, 53 Regulation of Cellular Growth and Proliferation, 54
4 Cell Injury, Aging, and Death, 59 Jacquelyn L. Banasik
Reversible Cell Injury, 59 Hydropic Swelling, 60 Intracellular Accumulations, 60
Cellular Adaptation, 63 Atrophy, 63 Hypertrophy, 63 Hyperplasia, 63 Metaplasia, 63 Dysplasia, 64
Irreversible Cell Injury, 64 Necrosis, 64 Apoptosis, 66
Etiology of Cellular Injury, 68 Ischemia and Hypoxic Injury, 68 Nutritional Injury, 70 Infectious and Immunologic Injury, 70 Chemical Injury, 72 Physical and Mechanical Injury, 72
Cellular Aging, 74 Cellular Basis of Aging, 74 Physiologic Changes of Aging, 75
Somatic Death, 75 5 Genome Structure, Regulation, and Tissue
Differentiation, 77 Jacquelyn L. Banasik
Structure and Function of DNA, 78 Structure of DNA, 78 DNA Replication, 79 Genetic Code, 80 Transcription, 81 Translation, 82
Regulation of the Genome, 84 Transcriptional Controls, 84
Differentiation of Tissues, 86 Cell Diversification and Cell Memory, 86 Mechanisms of Development, 86 Differentiated Tissues, 87
6 Genetic and Developmental Disorders, 94 Linda D. Ward
Principles of Inheritance, 95 DNA Mutation and Repair, 96
xii CoNTeNTs
GENETIC DISORDERS, 98 Chromosomal Abnormalities, 99
Aberrant Number of Chromosomes, 99 Abnormal Chromosome Structure, 100 Examples of Autosomal Chromosome
Disorders, 100 Examples of Sex Chromosome Disorders, 101
Mendelian Single-Gene Disorders, 102 Autosomal-Dominant Disorders, 103 Autosomal-Recessive Disorders, 104 Sex-Linked (X-Linked) Disorders, 106
Nonmendelian Single-Gene Disorders, 107 Anticipation, 109 Mitochondrial Gene Mutations, 109 Genomic Imprinting, 110
Polygenic and Multifactorial Disorders, 110 Environmentally Induced Congenital
Disorders, 111 Periods of Fetal Vulnerability, 111 Teratogenic Agents, 111 Other Disorders of Infancy, 113
Diagnosis, Counseling, and Gene Therapy, 113 Prenatal Diagnosis and Counseling, 113 Genetic Analysis and Therapy, 114 Recombinant DNA Technology, 114
7 Neoplasia, 117 Jacquelyn L. Banasik
Benign Versus Malignant Growth, 118 Characteristics of Benign and Malignant
Tumors, 118 Tumor Terminology, 118 The Malignant Phenotype, 118
Epidemiology and Cancer Risk Factors, 120 Tobacco Use, 120 Nutrition, 120
Genetic Mechanisms of Cancer, 123 Proto-Oncogenes, 124 Tumor Suppressor Genes, 127
Multistep Nature of Carcinogenesis, 129 Initiation, 129 Promotion, 131 Progression, 131
Metastasis, 132 Patterns of Spread, 132 Angiogenesis, 133 Grading and Staging of Tumors, 134
Effects of Cancer on the Body, 136 Cancer Therapy, 137
Surgery, 137 Radiation Therapy, 138 Drug Therapy, 138 Immunotherapy, 138 Gene and Molecular Therapy, 138 Stem Cell Transplantation, 139
UNIT III Defense
8 Infectious Processes, 141 Brent A. Banasik
Host–Microbe Relationship, 142 The Human Microbiome, 142
Host Characteristics, 142 Pathogen Characteristics, 144
Transmission of Infection, 147 Routes of Transmission, 148 Emerging Infectious Diseases, 148 Weapons of Bioterrorism, 149
Types of Pathogenic Organisms, 149 Bacteria, 149 Viruses, 150 Fungi, 151 Parasites, 152
9 Inflammation and Immunity, 158 Jacquelyn L. Banasik
COMPONENTS OF THE IMMUNE SYSTEM, 159
Epithelial Barriers, 159 Mononuclear Phagocyte System, 159 Lymphoid System, 160
Primary Lymphoid Organs, 160 Secondary Lymphoid Organs, 161
Leukocytes, 162 Neutrophils, 162 Eosinophils, 163 Basophils and Mast Cells, 164 Monocytes and Macrophages, 164 Dendritic Cells, 165 Lymphocytes, 165
Chemical Mediators of Immune Function, 167 Complement, 167 Kinins, 169 Clotting Factors, 169 Cytokines and Chemokines, 169
INNATE DEFENSES AND INFLAMMATION, 169 Inflammation, 171
Increased Vascular Permeability, 171 Emigration of Leukocytes, 172 Phagocytosis, 172 Chronic Inflammation, 174
Healing, 174 Inflammatory Exudates, 175 Systemic Manifestations of Inflammation, 175 SPECIFIC ADAPTIVE IMMUNITY, 176 Major Histocompatibility Complex, 176 Antigen Presentation by MHC, 176
MHC Class I Presentation, 177 MHC Class II Presentation, 177
Mechanisms of Cell-Mediated Immunity, 178 T Helper Cells (CD4+), 178 Cytotoxic T Cells (CD8+), 181
Mechanisms of Humoral Immunity, 181 Antigen Recognition by B Cells, 181
Antibody Structure, 183 Class Switching and Affinity Maturation, 185 Antibody Functions, 186
Passive and Active Immunity, 187 Passive Immunity, 187 Active Immunity, 187
INTEGRATED FUNCTION AND REGULATION OF THE IMMUNE SYSTEM, 189
Integrated Response to Microbial Antigen, 189 Integrated Response to Viral Antigen, 191 Regulation of Immune Function, 192
CoNTeNTs xiii
10 Alterations in Immune Function, 194 Faith Young Peterson
EXCESSIVE IMMUNE RESPONSES, 195 Autoimmunity, 195
Genetic Factors, 196 Environmental Triggers, 196 Pharmacotherapies, 197
Hypersensitivity, 198 Type I Hypersensitivity, 199 Type IIa Hypersensitivity, 201 Type IIb Hypersensitivity, 204 Type III Hypersensitivity, 204 Type IV Hypersensitivity, 207
DEFICIENT IMMUNE RESPONSES, 210 Primary Immunodeficiency Disorders, 210
B-Cell and T-Cell Combined Disorders, 210 T-Cell Disorders, 211 B-Cell Disorders, 212
Secondary Immunodeficiency Disorders, 212 11 Malignant Disorders of White Blood Cells, 215
Marie L. Kotter and Jacquelyn L. Banasik Classification of Hematologic Neoplasms, 215 Etiology of Myeloid and Lymphoid Neoplasms, 216 General Principles of Management, 217
Diagnosis of Hematologic Neoplasms, 217 Principles of Treatment, 218 Prevention and Management of Complications, 219
Myeloid Neoplasms, 221 Chronic Myeloid Leukemia, 221 Acute Myeloid Leukemia, 222
Lymphoid Neoplasms, 223 Chronic Lymphoid Leukemia, 223 Acute Lymphoblastic Leukemia/Lymphoma, 223 Hairy Cell Leukemia, 224 Plasma Cell Myeloma (Multiple Myeloma), 224 Hodgkin Disease, 227 B-Cell, T-Cell, and NK-Cell Lymphoma
(Non-Hodgkin), 229 12 HIV Disease and AIDS, 233
Faith Young Peterson Epidemiology, 234
History, 234 Types of HIV, 234 Transmission, 236 Prevention of Transmission, 238
Etiology, 239 HIV Structure, 239 HIV Binding and Infection, 239
Pathogenesis, 242 Effect of HIV on Immune Cells at the Cellular
Level, 242 Viral Production and Cell Death, 242 Progression of HIV Infection From Seroconversion
to AIDS, 244 CDC HIV Classification System, 245
Diagnostic Testing, 245 Monitoring the Progression of HIV, 246 Clinical Manifestations, 248
Systemic Manifestations, 248 Gastrointestinal Manifestations, 249 Pulmonary Manifestations, 249 Mucocutaneous Manifestations, 250
Gynecologic Manifestations, 251 Neurologic Manifestations, 252 Ocular Manifestations, 253 Cardiovascular Manifestations, 253 Manifestations in Other Systems, 253 Manifestations in Children, 254
Treatment, 254 Antiretroviral Therapy Recommendations, 254 Nucleoside Reverse Transcriptase Inhibitors, 255 Nucleotide Reverse Transcriptase Inhibitors, 255 Nonnucleoside Reverse Transcriptase
Inhibitors, 255 Protease Inhibitors, 257 Fusion Inhibitors, 257 CCR5 Inhibitors, 257 Integrase Strand Transfer Inhibitors, 257 Other Treatments and Vaccines, 257
UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
13 Alterations in Oxygen Transport, 259 Susan G. Trevithick
Composition of Blood, 260 Organic and Inorganic Components, 261 Cellular Components, 261
Structure and Function of Red Blood Cells, 262 Hematopoiesis, 263 Hemoglobin Synthesis, 265 Nutritional Requirements for Erythropoiesis, 266 Energy and Maintenance of Erythrocytes, 267 Red Cell Production, 267 Red Cell Destruction, 268
Gas Transport and Acid–Base Balance, 268 Oxygen Transport, 268 Carbon Dioxide Transport, 270 Alterations in Oxygen Transport, 270
Anemia, 272 General Effects of Anemia, 272
Anemia Related to Decreased Red Cell Production, 277 Aplastic Anemia, 277 Anemia of Chronic Renal Failure, 277 Anemia Related to Vitamin B12 (Cobalamin)
or Folate Deficiency, 278 Iron Deficiency Anemia, 279
Anemia Related to Inherited Disorders of the Red Cell, 279 Thalassemia, 279 Sickle Cell Anemia, 281 Hereditary Spherocytosis, 282 Glucose-6-Phosphate Dehydrogenase
Deficiency, 282 Anemia Related to Extrinsic Red Cell Destruction or
Loss, 284 Hemolytic Disease of the Newborn, 284 Antibody-Mediated Drug Reactions, 284 Acute Blood Loss, 285 Other Extrinsic Abnormalities, 285
Transfusion Therapy, 286 Polycythemia, 286
xiv CoNTeNTs
Polycythemia Vera, 286 Secondary Polycythemia, 292 Relative Polycythemia, 293
14 Alterations in Hemostasis and Blood Coagulation, 298 Cheryl Rockwell
The Process of Hemostasis, 298 Stages of Hemostasis, 298 Platelets, 299 Blood Coagulation Factors, 299 Fibrin Clot, 299 Fibrinolysis, 301
Evaluation of Hemostasis and Coagulation, 301 Clinical Assessment, 301 Laboratory Tests, 304
Vascular and Platelet Disorders, 304 Vascular Disorders, 304 Platelet Disorders, 306
Coagulation Disorders, 308 15 Alterations in Blood Flow, 313
Teresa Grigsby Loftsgaarden Organization of the Circulatory and Lymphatic
Systems, 315 Vessel Structure, 315 Lymphatic Structure, 317
Principles of Flow, 317 Hemodynamics of the Circulatory System, 317
Control of Flow, 322 Control of Blood Flow, 322 Control of Lymphatic Flow, 323
General Mechanisms That Cause Altered Flow, 323 Blood Vessels: Obstructions, 323 Blood Vessels: Structural Alterations, 325 Lymphatic Vessels, 326
Alterations in Arterial Flow, 326 Arteriosclerosis/Atherosclerosis, 326 Thromboangiitis Obliterans (Buerger Disease), 330 Raynaud Syndrome, 330 Aneurysms, 330 Acute Arterial Occlusion, 331
Alterations in Venous Flow, 332 Valvular Incompetence, 332 Varicose Veins, 332 Chronic Venous Insufficiency, 333 Deep Vein Thrombosis, 333
Alterations in Lymphatic Flow, 333 Lymphedema, 333
16 Alterations in Blood Pressure, 337 Benjamin J. Miller
Arterial Blood Pressure, 337 Determinants of Systemic Blood Pressure, 337 Measurement of Blood Pressure, 338
Mechanisms of Blood Pressure Regulation, 341 Short-Term Regulation of Systemic Blood
Pressure, 341 Long-Term Regulation of Systemic Blood Pressure, 341 Normal Fluctuations in Systemic Blood Pressure, 343
Hypertension, 343 Definition and Classification, 343 Primary Hypertension, 344 Secondary Hypertension, 348 Hypertensive Emergencies and Urgency, 349
Low Blood Pressure, 350
UNIT V Cardiac Function
17 Cardiac Function, 354 Jacquelyn L. Banasik
Cardiovascular Anatomy, 355 Heart, 355 Circulatory System, 356
Cardiac Cycle, 358 Isovolumic Contraction, 359 Ventricular Ejection, 360 Isovolumic Relaxation, 360 Atrial Events, 360 Aortic and Pulmonary Artery Events, 360
Coronary Circulation, 360 Anatomy of the Coronary Vessels, 360 Regulation of Coronary Blood Flow, 361
Cardiac Myocytes, 363 Myocyte Structure, 363 Structure of the Contractile Apparatus, 363 Characteristics of Contractile Filaments, 365
Molecular Basis of Contraction, 366 Overview of Contraction, 366 Sliding Filament/Cross-Bridge Theory of Muscle
Contraction, 366 Role of Calcium in Muscle Contraction, 367 Energy of Muscle Relaxation, 367
Cardiac Energy Metabolism, 368 Oxygen Utilization, 368 Substrate Utilization, 369
Cardiac Electrophysiology, 369 Cardiac Resting Potential, 369 Cardiac Action Potential, 369 Rhythmicity of Myocardial Cells, 370 Specialized Conduction System of the Heart, 371 Autonomic Regulation of Rhythmicity, 372
Electrocardiography, 372 Determinants of Cardiac Output, 374
Determinants of Heart Rate, 374 Determinants of Stroke Volume, 375 Cardiac Workload, 376
Endocrine Function of the Heart, 376 Tests of Cardiac Function, 376
Electrocardiography, 376 Magnetic Resonance Imaging and Computed
Tomography, 378 Echocardiography, 378 Nuclear Cardiography, 379 Cardiac Catheterization/Coronary
Angiography, 379 18 Alterations in Cardiac Function, 382
Jacquelyn L. Banasik Coronary Heart Disease, 383
Etiology of Coronary Heart Disease, 383 Risk Factors and Mechanisms of Coronary
Atherosclerosis, 383 Pathophysiology of Ischemia, 385 Clinical Features and Management of Coronary
Syndromes, 388 Endocardial and Valvular Diseases, 394
Disorders of the Mitral Valve, 394 Disorders of the Aortic Valve, 397 Diseases of the Endocardium, 398
CoNTeNTs xv
Myocardial Diseases, 399 Myocarditis, 399 Cardiomyopathy, 400
Pericardial Diseases, 402 Pericardial Effusion, 402 Pericarditis, 402
Congenital Heart Diseases, 403 Embryologic Development, 403 Etiology and Incidence of Congenital Heart
Disease, 404 Pathophysiology of Congenital Heart
Disease, 405 Acyanotic Congenital Defects, 406 Cyanotic Congenital Defects, 408
19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases, 411 Benjamin J. Miller and Jacquelyn L. Banasik
Heart Failure, 412 Pathogenesis and Diagnosis, 412 Compensatory Mechanisms, Remodeling,
and Progression, 413 Clinical Manifestations, 417 Class and Stage of Heart Failure, 420 Treatment, 421
Cardiac Dysrhythmias, 421 Dysrhythmia Mechanisms, 421 Dysrhythmia Analysis, 423 Abnormal Rates of Sinus Rhythm, 424 Abnormal Site of Impulse Initiation, 425 Conduction Pathway Disturbances, 428 Treatment, 431
20 Shock, 434 Benjamin J. Miller
Pathogenesis of Shock, 434 Impaired Tissue Oxygenation, 435 Compensatory Mechanisms and Stages of
Shock, 437 Types of Shock, 439
Cardiogenic Shock, 439 Obstructive Shock, 441 Hypovolemic Shock, 442 Distributive Shock, 443
Assessment and Hemodynamic Monitoring, 447 Cardiac Output, 447 Arterial Oxygen Content, 447 Distribution of Blood Flow, 448 Hemodynamic Monitoring, 448
Complications of Shock, 449 Acute Respiratory Distress Syndrome, 449 Disseminated Intravascular Coagulation, 449 Acute Renal Failure, 449 Multiple Organ Dysfunction Syndrome, 449
UNIT VI Respiratory Function
21 Respiratory Function and Alterations in Gas Exchange, 451 Lorna L. Schumann
Functional Anatomy, 452 Development of the Pulmonary System, 452 Upper Airway Structures, 452
Lower Airway Structures, 453 Pulmonary Circulation, 457 Age-Related Variations, 457
Ventilation, 460 Lung Volumes and Capacities, 460 Dead Space, 460 Minute Ventilation, 460 Alveolar Ventilation/Oxygenation, 461 Mechanics of Breathing, 461 Airway Resistance, 461 Lung Compliance, 462 Distribution of Ventilation, 462 Neurologic Control of Ventilation, 462
Pulmonary Blood Flow, 465 Pulmonary Vasculature, 465 Distribution of Blood Flow, 465 Ventilation–Perfusion Ratios, 465 Hypoxic Vasoconstriction, 466
Diffusion and Transport of Respiratory Gases, 466 Barriers to Diffusion, 466 Oxygen Transport, 467 Carbon Dioxide Transport, 467
Alterations in Pulmonary Function, 468 Hypoventilation and Hyperventilation, 468 Hypoxemia and Hypoxia, 468 Acute Respiratory Failure, 469
Diagnostic Tests, 471 Pulmonary Function Testing, 471 Bronchial Provocation Tests, 472
Alterations in Pulmonary Vasculature, 472 Pulmonary Hypertension, 472 Pulmonary Venous Thromboembolism, 473
Pulmonary Malignancies, 475 Etiology, 475 Pathogenesis, 475 Clinical Manifestations, 476 Diagnosis, 476 Treatment, 476
22 Obstructive Pulmonary Disorders, 478 Benjamin J. Miller and Lorna L. Schumann
Obstruction From Conditions in the Wall of the Lumen, 479 Asthma, 479 Acute Bronchitis, 483 Chronic Bronchitis, 485
Obstruction Related to Loss of Lung Parenchyma, 488 Emphysema, 488
Obstruction of the Airway Lumen, 491 Bronchiectasis, 491 Bronchiolitis, 493 Cystic Fibrosis, 494 Acute Tracheobronchial Obstruction, 495 Epiglottitis, 496 Croup Syndrome, 496
23 Restrictive Pulmonary Disorders, 499 Lorna L. Schumann and Benjamin J. Miller
Lung Parenchyma Disorders, 500 Fibrotic Interstitial Lung Diseases, 500
Atelectatic Disorders, 504 Pleural Space Disorders, 508
xvi CoNTeNTs
Neuromuscular, Chest Wall, and Obesity Disorders, 511 Neuromuscular Disorders, 511 Chest Wall Deformities, 511 Disorders of Obesity, 513
Infection or Inflammation of the Lung, 514
UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
24 Fluid and Electrolyte Homeostasis and Imbalances, 521 Linda Felver
Body Fluid Homeostasis, 522 Fluid Intake and Absorption, 522 Fluid Distribution, 523 Fluid Excretion, 524 Fluid Loss Through Abnormal Routes, 524
Fluid Imbalances, 525 Extracellular Fluid Volume, 525 Body Fluid Concentration, 526 Both Volume and Concentration, 528 Interstitial Fluid Volume, 528
Principles of Electrolyte Homeostasis, 529 Electrolyte Intake and Absorption, 529 Electrolyte Distribution, 531 Electrolyte Excretion, 531 Electrolyte Loss Through Abnormal Routes, 531
Electrolyte Imbalances, 531 Plasma Potassium, 531 Plasma Calcium, 533 Plasma Magnesium, 534 Plasma Phosphate, 535
25 Acid–Base Homeostasis and Imbalances, 541 Linda Felver
Acid–Base Homeostasis, 541 Buffers, 542 Respiratory Contribution, 542 Renal Contribution, 543
Acid–Base Imbalances, 545 Mixed Acid–Base Imbalances, 549
UNIT VIII Renal and Bladder Function
26 Renal Function, 551 Jacquelyn L. Banasik
Renal Anatomy, 552 Renal Parenchyma, 552 Renal Lymphatics and Innervation, 552 Renal Blood Supply, 553
Overview of Nephron Structure and Function, 554 Glomerulus, 555 Proximal Convoluted Tubule, 557 Loop of Henle, 558 Distal Convoluted Tubule, 559 Collecting Duct, 559
Regulation of Glomerular Filtration, 560 Physics of Filtration, 560 Factors Affecting Filtration Pressure, 562 Tubuloglomerular Feedback, 563
Effects of Glucose and Amino Acids, 563 Role of Mesangial Cells, 564
Transport Across Renal Tubules, 565 Reabsorption of Glucose, 565 Regulation of Acid–Base Balance, 565 Secretion of Potassium, 566
Regulation of Blood Volume and Osmolality, 567 Antidiuretic Hormone, 567 Aldosterone, Angiotensin II, Natriuretic
Peptides, Urodilatin, Uroguanylin, and Guanylin, 568
Diuretic Agents, 569 Endocrine Functions, 570
Erythropoietin, 570 Vitamin D, 570
Age-Related Changes in Renal Function, 570 Infant, 570 Adult and Elderly, 570
Tests of Renal Structure and Function, 570 Urine and Blood Studies, 570 Diagnostic Tests, 572
27 Intrarenal Disorders, 575 Jacquelyn L. Banasik and Roberta J. Emerson
Common Manifestations of Kidney Disease, 575 Pain, 575 Abnormal Urinalysis Findings, 576 Other Diagnostic Tests, 576
Congenital Abnormalities, 577 Renal Agenesis and Hypoplasia, 577 Cystic Kidney Diseases, 578
Neoplasms, 579 Infection, 581 Obstruction, 583 Glomerular Disorders (Glomerulopathies), 586
Glomerulonephritis, 587 Nephrotic Syndrome, 589
28 Acute Kidney Injury and Chronic Kidney Disease, 593 Cheryl Rockwell and Robin Y. Beeman
Acute Kidney Injury, 593 Etiology and Pathophysiology, 594 Clinical Presentation of Acute Kidney Injury, 596
Chronic Kidney Disease, 601 Risk Factors, 601 Pathophysiology of Progression of Chronic
Kidney Disease, 602 Stages of Chronic Kidney Disease, 602 Complications of Chronic Kidney Disease, 602
Clinical Management, 604 29 Disorders of the Lower Urinary Tract, 609
Cheryl L. Brandt Lower Urinary Tract, 609
Functional Anatomy, 609 Physiology of Micturition, 610 Diagnostic Tests, 611
Lower Urinary Tract Symptoms and Syndromes, 611
Neurogenic Bladder, 614 Congenital Disorders, 615 Neoplasms, 617 Inflammation and Infection, 619 Obstruction, 622
Lower Urinary Tract Calculi, 622
CoNTeNTs xvii
UNIT IX Genital and Reproductive Function
30 Male Genital and Reproductive Function, 626 Marvin Van Every
Anatomy, 626 Upper Genitourinary Tract, 626 Lower Genitourinary Tract, 627 Auxiliary Genital Glands, 628 External Genitalia, 629
Embryology, 632 Nephric System, 632 Vesicourethral Unit, 633 Gonads, 633 Genital Duct System, 633 External Genitalia, 633
Male Reproductive Physiology, 633 Hypothalamic-Pituitary-Testicular Axis, 633 Spermatogenesis, 637 Anatomy of Spermatozoa, 637 Transport of Spermatozoa, 637
31 Alterations in Male Genital and Reproductive Function, 641 Marvin Van Every
Disorders of the Penis and Male Urethra, 641 Congenital Anomalies, 641 Acquired Disorders, 643 Infectious Disorders, 645 Neoplastic Disorders, 647
Disorders of the Scrotum and Testes, 647 Congenital Disorders, 647 Acquired Disorders, 648 Infectious Disorders, 650 Neoplastic Disorders, 650
Disorders of the Prostate, 651 32 Female Genital and Reproductive Function, 656
Rosemary A. Jadack Reproductive Structures, 656
Organization of the Female Reproductive Organs, 656
Menstrual Cycle, 659 Breast, 662
Structure of the Breast, 662 Breast Development, 662 Lactation, 663
Pregnancy, 663 Early Human Development, 663 Implantation, 663 Fetal Membranes and Placenta, 663 Development of the Human Embryo and Fetus, 664 Parturition, 665 Response of the Mother’s Body to Pregnancy, 667
Menopause, 668 33 Alterations in Female Genital and Reproductive
Function, 671 Rosemary A. Jadack
Menstrual Disorders, 672 Alterations in Uterine Position and Pelvic
Support, 674 Inflammation and Infection of the Female
Reproductive Tract, 676 Benign Growths and Aberrant Tissue of the Female
Reproductive Tract, 678
Cancer of the Female Genital Structures, 679 Disorders of Pregnancy, 681 Disorders of the Breast, 682
Reactive-Inflammatory Breast Disorders, 682 Benign Breast Disorders, 683 Malignant Disorder of the Breast, 684
34 Sexually Transmitted Infections, 689 Rosemary A. Jadack
Urethritis, Cervicitis, Salpingitis, and Pelvic Inflammatory Disease, 690
Diseases With Systemic Involvement, 691 Diseases With Localized Lesions, 694
Ulcerative Lesions, 694 Nonulcerative Lesions, 694
Enteric Infections, 695
UNIT X Gastrointestinal Function
35 Gastrointestinal Function, 697 Jeffrey S. Sartin
Structure and Organization of the Gastrointestinal Tract, 698 Embryology, 698 Functional Anatomy, 699
Gastrointestinal Motility, 704 Characteristics of the Intestinal Wall, 704 Neural Control, 704 Hormonal Control, 706 Movement in the Gastrointestinal Tract, 706 Movement of Nutrients, 707
Secretory Function, 712 Secretion of Gastrointestinal Juices, 712 Gastrointestinal Hormones, 712
Digestion and Absorption, 712 Digestion of Carbohydrates, 713 Digestion of Lipids, 713 Digestion of Proteins, 714 Absorption, 715
Gastrointestinal Function Across the Life Span, 717 Maturation, 717 Age-Related Changes, 717
36 Gastrointestinal Disorders, 720 Jeffrey S. Sartin
Manifestations of Gastrointestinal Tract Disorders, 721 Dysphagia, 721 Esophageal Pain, 721 Abdominal Pain, 721 Vomiting, 723 Intestinal Gas, 723 Alterations in Bowel Patterns, 723
DISORDERS OF THE MOUTH AND ESOPHAGUS, 724
Oral Infections, 724 Esophageal Disorders, 724 ALTERATIONS IN THE INTEGRITY OF
THE GASTROINTESTINAL TRACT WALL, 726
Inflammation of the Stomach and Intestines, 726
xviii CoNTeNTs
Inflammatory Bowel Disease, 728 Enterocolitis, 731 ALTERATIONS IN MOTILITY OF THE
GASTROINTESTINAL TRACT, 733 Motility Disorders, 733 Disorders of Malabsorption, 735 Mucosal Disorders, 735 Malabsorption Disorders After Surgical
Intervention, 735 NEOPLASMS OF THE GASTROINTESTINAL
TRACT, 737 Esophageal, Gastric, and Small Intestinal
Cancers, 737 Colonic Polyps and Colon Cancer, 738 Psychosocial Aspects of Gastrointestinal
Disorders, 739 Stress of Lifestyle Changes, 739
37 Alterations in Function of the Gallbladder and Exocrine Pancreas, 742 Jeffrey S. Sartin
Structure and Function of the Pancreaticobiliary System, 742
Embryology of the Pancreaticobiliary System, 743
Physiology of Bile, 743 Functional Anatomy of the Pancreas, 744 Disorders of the Gallbladder, 744
Pathophysiology of Cholesterol Gallstone Formation, 744
Cholelithiasis and Cholecystitis, 745 Disorders of the Pancreas, 748
Pancreatitis, 748 38 Liver Diseases, 754
Jeffrey S. Sartin Structure and Function of the Liver, 755 General Manifestations of Liver Disease, 755
Hepatocellular Failure, 755 Portal Hypertension, 759 Portal Systemic Encephalopathy, 763 Complications of Advanced Liver
Disease, 764 Disorders of the Liver, 767
Hepatitis, 767 Chronic Hepatitis, 772
Cirrhosis, 773 Alcoholic Liver Disease, 773
Toxic Liver Disorders, 774 Metal Storage Diseases, 774 Toxic Metabolic Agents, 775
Other Structural Liver Conditions, 775 Transplantation, 776
Evaluation of the Transplantation Patient, 777
Posttransplantation Management, 777 Age-Related Liver Disorders, 778
Liver Diseases and Pediatric Considerations, 778 Abnormal Bilirubin Metabolism in the Neonatal
Period, 778 Infectious and Acquired Hepatitides in
Children, 778 Congenital Liver Disease, 779
Liver Diseases and Geriatric Considerations, 780
UNIT XI Endocrine Function, Metabolism, and Nutrition
39 Endocrine Physiology and Mechanisms of Hypothalamic-Pituitary Regulation, 783 Jacquelyn L. Banasik
Hormone Structure and Action, 784 Chemical Structure of Hormone Classes, 784 Mechanisms of Hormone Action, 784
Hormone Regulation, 786 Hormone Synthesis, Secretion, and
Metabolism, 786 Regulation of Receptor Responses, 787
Hypothalamic-Pituitary Endocrine System, 788 Hormones of the Posterior Pituitary Gland, 788 Hormones of the Hypothalamus and Anterior
Pituitary Gland, 790 Thyroid Hormones, 793
Thyroid Hormone Synthesis and Secretion, 793 Thyroid Action on Target Cells, 793
Steroid Hormones, 794 Steroid Hormone Synthesis and Secretion, 794 Steroid Action on Target Cells, 795
Categories of Endocrine Disease, 797 Hyposecretion, 797 Hypersecretion, 797 Hyporesponsiveness, 797
40 Disorders of Endocrine Function, 799 Jacquelyn L. Banasik
Basic Concepts of Endocrine Disorders, 799 Etiology of Endocrine Disorders, 799 Classification of Endocrine Disorders, 800
Growth Hormone Disorders, 801 Thyroid Hormone Disorders, 803 Adrenocortical Hormone Disorders, 806 Adrenal Medulla Disorder, 810 Parathyroid Gland Disorders, 811
Regulation and Actions of Parathyroid Hormone, 811
Antidiuretic Hormone Disorders, 812 41 Diabetes Mellitus, 815
Benjamin J. Miller Regulation of Glucose Metabolism, 816
Hormonal Regulation, 816 Neural Regulation, 817 Exercise, 818 Stress, 818
Glucose Intolerance Disorders, 820 Classification of Glucose Intolerance
Disorders, 820 Prediabetes, 820 Diabetes Mellitus, 821 Screening for Diabetes, 824
Clinical Manifestations and Complications, 825 Acute Hyperglycemia, 825 Diabetic Ketoacidosis, 825 Nonketotic Hyperglycemic Hyperosmolar
Syndrome, 826 Chronic Hyperglycemia, 826 Vascular Complications, 826 Neuropathic Complications, 827 Complications in Pregnancy, 827
CoNTeNTs xix
Treatment and Education, 827 Nutrition, 828 Obesity and Eating Disorders, 828 Exercise, 829 Pharmacologic Agents, 829 Stress Management, 831 Assessment of Efficacy, 831
Pediatric Considerations, 833 Goals of Therapy, 834 Acute Complications, 834 Chronic Complications, 834 Treatment, 834
Geriatric Considerations, 834 Goals of Therapy, 835 Acute Complications, 835 Chronic Complications, 835 Treatment, 835
42 Nutritional and Metabolic Disorders, 838 Brent A. Banasik
Metabolic Processes, 838 Anabolism and Catabolism, 839 Metabolic Rate, 839
Nutrient Metabolism, 839 Carbohydrates, 839 Lipids, 840 Proteins, 841
Regulation of Appetite and Nutrient Metabolism, 841 Role of Genetics, Epigenetics, and
Environment, 841 Hormonal Regulation of Nutrient Intake and
Appetite, 842 Hormonal Regulation of Nutrient Storage,
Distribution, and Metabolism, 843 Obesity and Metabolic Syndrome, 844
Obesity, 844 Metabolic Syndrome, 844
Metabolic Responses to Starvation and Physiologic Stress, 844 Starvation and Protein-Energy Malnutrition, 845 Physiologic Stress, 845
Nutritional Considerations for Aging and Altered Health States, 846 Aging, 846 Infection, Sepsis, and Fever, 846 Surgery, 848 Trauma, 848 Burns, 848 Cancer, 848 Immobility, 848
UNIT XII Neural Function
43 Structure and Function of the Nervous System, 850 Jacquelyn L. Banasik
STRUCTURAL ORGANIZATION, 851 Central Nervous System, 851
Support and Protection of the Central Nervous System, 851
The Brain, 853 The Spinal Cord, 861
Peripheral Nervous System, 863 Cranial Nerves, 863 Spinal Nerves, 864
Autonomic Nervous System, 867 NEURONAL STRUCTURE AND FUNCTION, 868 Neurons and Supportive Cells, 868
Neurons, 868 Glia, 868
Neuronal Communication, 872 Membrane Potentials, 872 Synaptic Transmission, 874 Neurotransmitters, 875 Neuronal Circuits, 880
Neural Development, Aging, and Injury, 880 Development, 880 Aging, 881 Injury, 881
SENSORY FUNCTION, 882 Sensory Receptors, 882 Sensory Pathways, 883 Somatosensory Cortex, 883 MOTOR FUNCTION, 883 Motor Neurons, 884 Spinal Reflexes, 884 Central Control of Motor Function, 885 CONSCIOUSNESS, MEMORY, AND SLEEP, 886 Consciousness and Memory, 886 Sleep, 888
44 Acute Disorders of Brain Function, 891 Joni D. Marsh and Jacquelyn L. Banasik
Mechanisms of Brain Injury, 892 Ischemia and Hypoxia, 892 Increased Intracranial Pressure, 895
Manifestations of Brain Injury, 900 Level of Consciousness, 900 Glasgow Coma Scale, 900 Cranial Nerve Reflexes, 901
TRAUMATIC BRAIN INJURY, 902 Epidemiology, 902 Types of Traumatic Brain Injury, 903 Primary Injury, 903
Intracranial Hematomas, 903 Secondary Injury, 905 Treatment, 905 CEREBROVASCULAR DISEASE AND
STROKE, 905 Epidemiology, 906 Ischemic Stroke, 906 Hemorrhagic Stroke, 906 Treatment, 906 Stroke Sequelae, 908
Motor and Sensory Deficits, 908 Language Deficits, 908 Cognitive Deficits, 908
CREBRAL ANEURYSM AND ARTERIOVENOUS MALFORMATION, 909
Cerebral Aneurysm, 909 Etiology, 909 Pathogenesis and Manifestations, 910 Treatment, 910
Arteriovenous Malformation, 911 Etiology, 911
xx CoNTeNTs
Pathogenesis and Manifestations, 911 Treatment, 911
CENTRAL NERVOUS SYSTEM INFECTIONS, 911 Meningitis, 911
Etiology, 911 Pathogenesis and Clinical Manifestations, 911 Treatment, 911
Encephalitis, 912 Etiology, 912 Pathogenesis and Manifestations, 912 Treatment, 912
Brain Abscess, 912 Etiology, 912 Pathogenesis and Manifestations, 912 Treatment, 913
45 Chronic Disorders of Neurologic Function, 915 Joni D. Marsh
Brain and Cerebellar Disorders, 916 Seizure Disorder, 916 Dementia, 918 Parkinson Disease, 920 Cerebral Palsy, 922 Hydrocephalus, 923 Cerebellar Disorders, 924
Spinal Cord and Peripheral Nerve Disorders, 925 Multiple Sclerosis, 925 Spina Bifida, 927 Amyotrophic Lateral Sclerosis, 928 Spinal Cord Injury, 928 Guillain-Barré Syndrome, 931 Bell Palsy, 932
46 Alterations in Special Sensory Function, 936 Joni D. Marsh
HEARING AND BALANCE, 937 Structure and Function of the Ear, 937
External Ear, 937 Middle Ear, 937 Inner Ear, 937 Balance, 938
General Manifestations of Hearing Impairment, 938 Hearing Impairment Disorders, 939
Conductive Hearing Impairment, 939 Sensorineural Hearing Impairment, 939
Otitis Media, 941 Interventions for Individuals With Hearing
Impairment, 942 VISION, 942 Structure of the Eye, 942 Visual Pathways, 943 General Manifestations of Visual Impairment, 944 Disorders of the Eye, 944
Errors of Refraction, 944 Age-Related Disorders, 945 Retinopathy, 947 Glaucoma, 948 Visual Field Deficits, 950
Interventions for Individuals With Vision Impairment, 950
SMELL AND TASTE, 952 47 Pain, 955
Joni D. Marsh Physiology of Pain, 955
Transduction, 956 Transmission, 956 Perception, 958 Modulation, 958
TYPES OF PAIN, 960 Acute Pain, 961
Headache, 962 Chronic Pain, 962
Fibromyalgia Syndrome, 963 Cancer-Related Pain, 964 Neuropathic Pain, 964
Trigeminal Neuralgia, 965 Diabetic Neuropathy, 965 Postherpetic Neuralgia, 966
Ischemic Pain, 966 Referred Pain, 966 Physiologic Responses to Pain, 967 Pain in the Young and the Elderly, 967 TREATMENT MODALITIES, 967 Pharmacologic and Nonpharmacologic Pain
Management, 967 Interrupting Peripheral Transmission of Pain, 968 Modulating Pain Transmission at the Spinal
Cord, 968 Altering the Perception and Integration of
Pain, 968
UNIT XIII Neuropsychological Function
48 Neurobiology of Psychotic Illnesses, 971 Ann Futterman Collier and Samantha Cody Russell
Schizophrenia, 972 Etiology and Neurobiology, 972 Clinical Manifestations, 976 Pharmacologic Treatment, 976 Nonpharmacologic Treatment, 977
Major Depressive and Persistent Depressive Disorders, 978 Etiology and Neurobiology, 979 Clinical Manifestations, 980 Pharmacologic Treatment, 981 Nonpharmacologic Treatment, 981
Bipolar Disorder, 982 Etiology and Neurobiology, 982 Clinical Manifestations, 983 Pharmacologic Treatment, 983 Nonpharmacologic Treatment, 984
Population Considerations, 984 Women and Mental Illness, 984 Cultural Considerations, 984 Geriatric Considerations, 984
49 Neurobiology of Nonpsychotic Illnesses, 989 Ann Futterman Collier and Samantha Cody Russell
Anxiety Disorders, 989 Panic Disorder, 990 Generalized Anxiety Disorder, 991 Obsessive-Compulsive Disorder, 992 Posttraumatic Stress Disorder, 994
Neurodevelopmental Disorders, 995 Attention-Deficit/Hyperactivity Disorder, 996 Autism Spectrum Disorder, 997
CoNTeNTs xxi
UNIT XIV Musculoskeletal Support and Movement
50 Structure and Function of the Musculoskeletal System, 1001 Carol L. Danning
Structure and Function of Bone, 1002 Composition, 1002 Functional Properties, 1003 Response to Injury, Stress, and Aging, 1004
Structure and Function of Joints, 1006 Synarthroses, 1007 Diarthroses, 1007
Structure and Function of Articular Cartilage, 1011 Composition, 1011 Functional Properties, 1011 Response to Injury, Stress, and Aging, 1012
Structure and Function of Tendons and Ligaments, 1012 Composition, 1012 Functional Properties, 1013 Response to Injury, Stress, and Aging, 1013
Structure and Function of Skeletal Muscle, 1013 Composition, 1014
Mechanics of Muscle Contraction, 1015 Sliding Filament Theory, 1015 Role of Calcium, 1015 Electromechanical Coupling, 1015 Types of Muscle Contraction, 1016 Mechanical Principles, 1017 Response to Movement and Exercise, 1017
51 Alterations in Musculoskeletal Function: Trauma, Infection, and Disease, 1020 Carol L. Danning
SOFT TISSUE INJURIES, 1021 Inert Soft Tissue Injuries, 1021
Ligament Injuries, 1021 Joint Capsule Injuries, 1022 Internal Joint Derangement, 1023 Injuries to Fasciae and Bursae, 1023 Injuries to Nerves, Nerve Roots, or Dura
Mater, 1023 Contractile Soft Tissue Injuries, 1023
Injury to Tendons, 1023 Muscle and Tendon Strains, 1024 Blunt Trauma, 1024 Compartment Syndrome, 1024 Soft Tissue Healing After Trauma, 1024
BONE INJURIES AND INFECTIONS, 1026 Bone and Joint Trauma, 1026
Types of Bone, 1026 Fracture, 1026 Dislocations and Subluxations, 1030
Infections of the Bone, 1031 Osteomyelitis, 1031 Tuberculosis, 1032
ALTERATIONS IN BONE STRUCTURE AND MASS, 1032
Bone Structure Disorders, 1032 Scoliosis, 1032
Metabolic Bone Diseases, 1033
Osteoporosis, 1033 Rickets and Osteomalacia, 1035 Paget Disease, 1035
Bone Tumors, 1036 Benign Tumors, 1036 Malignant Bone Tumors, 1037
DISEASES OF SKELETAL MUSCLE, 1038 Idiopathic Inflammatory Myopathy, 1038
Polymyositis and Dermatomyositis, 1038 Muscular Dystrophy, 1039
Duchenne Muscular Dystrophy, 1039 Becker Muscular Dystrophy, 1039 Facioscapulohumeral Muscular Dystrophy, 1039 Myotonic Dystrophies, 1039
OTHER DISORDERS OF MUSCLE, 1039 Myasthenia Gravis, 1039
Treatment, 1039 Chronic Muscle Pain, 1040
Fibromyalgia Syndrome, 1040 52 Alterations in Musculoskeletal Function: Rheumatic
Disorders, 1042 Carol L. Danning
Local Disorders of Joint Function, 1042 Osteoarthritis, 1042 Infectious Arthritis, 1045 Lyme Disease, 1045
Systemic Disorders of Joint Function, 1046 Immune-Mediated Disorders, 1046 Postinfectious Systemic Disorders, 1052
Joint Dysfunction Secondary to Other Diseases, 1053 Psoriatic Arthritis, 1053 Enteropathic Arthritis, 1053 Neuropathic Osteoarthropathy, 1054 Hemophilic Arthropathy, 1054 Gout, 1054 Adult-Onset Still Disease, 1055
Pediatric Joint Disorders, 1056 Nonarticular Rheumatism, 1056 Hypermobility of Joints, 1056 Juvenile Idiopathic Arthritis, 1056
UNIT XV Integumentary System
53 Alterations in the Integumentary System, 1058 Lee-Ellen C. Copstead, Ruth E. Diestelmeier, and Michael R. Diestelmeier
Age-Related Changes, 1059 Epidermis, 1060 Dermis and Subcutaneous Tissue, 1060 Appendages, 1061
Evaluation of the Integumentary System, 1061 Primary and Secondary Lesions, 1061 Lesion Descriptors, 1062
Selected Skin Disorders, 1063 Infectious Processes, 1064
Viral Infections, 1064 Fungal Infections, 1065 Bacterial Infections, 1067
Inflammatory Conditions, 1069 Allergic Skin Responses, 1072 Parasitic Infestations, 1075
xxii CoNTeNTs
Other Disorders of the Dermis, 1076 Scleroderma, 1076 Sunburn and Photosensitivity, 1077 Ulcers, 1078 Altered Cell Growth: Epidermal Proliferation, 1078 Pigmentation Alterations, 1080
Special Characteristics of Dark Skin, 1081 Integumentary Manifestations of Systemic
Disease, 1083 Skin, 1083 Hair, 1084 Nails, 1084
Treatment Implications, 1086 Topical Treatment, 1086 Intralesional Injection, 1086 Selection of a Delivery System, 1087 Corticosteroids, 1087
Developmental Considerations, 1087 Infancy, 1087 Childhood Skin Disorders, 1088 Adolescence and Young Adulthood, 1090 Geriatric Considerations, 1090
54 Burn Injuries, 1093 Sarah Ogle and Nirav Patel
Thermal Injury, 1094 Etiology, Incidence, and Mortality, 1094
Risk Factors, 1094 Integument Effects, 1094 Depth Classification, 1096 Extent of Injury, 1097 Severity Classification, 1097 Acute Management, 1097 Assessment, 1099 Burn Shock and Acute Resuscitation, 1099 Organ Dysfunction, 1101 Metabolic Changes, 1102 Cellular Changes, 1102 Immune Response, 1103 Elements of Burn Injury Survival, 1103 Rehabilitation Phase, 1106
Electrical Injury, 1107 Incidence and Mortality, 1107 Pathophysiology, 1107 Management and Complications, 1108
Chemical Injury, 1109 Management and Complications, 1109 Common Agents and Treatment, 1109
Special Populations, 1110 Introduction, 1110
Glossary, 1114 Index, 1143
1
Introduction to Pathophysiology Lee-Ellen C. Copstead
UNIT I Pathophysiologic Processes
1
K E Y Q U E S T I O N S • What is pathophysiology? • How are etiology and pathogenesis used to predict clinical
manifestations and response to therapy? • How are normal and abnormal physiologic parameters defined?
C H A P T E R O U T L I N E Framework for Pathophysiology, 2
Etiology, 2
Pathogenesis, 2
Clinical Manifestations, 3
Stages and Clinical Course, 3
Treatment Implications, 3
Concepts of Normality in Health and Disease, 4 Statistical Normality, 4
Reliability, Validity, and Predictive Value, 5 Individual Factors Influencing Normality, 5
Cultural Considerations, 5
• What general factors affect the expression of disease in a particular person?
• What kinds of information about disease can be gained through understanding concepts of epidemiology?
Pathophysiology derives from the intersection of two older, related disciplines: pathology (from pathos, suffering) and physiology (from physis, nature). Pathology is the study and diagnosis of disease through examination of organs, tissues, cells, and bodily fluids. Physiology is the study of the mechanical, physical, and biochemical functions of living organisms. Together, as pathophysiology, the term refers to the study of abnormalities in physiologic functioning of living beings.
Pathophysiology seeks to reveal physiologic responses of an organism to disruptions in its internal or external environment. Because humans exhibit considerable diversity, healthy structure and function are not precisely the same in any two individuals. However, discovering the common and expected responses to abnormalities in physiologic func- tioning is useful, and it allows a general prediction of clinical progression, identification of possible causes, and selection of interventions that are
most likely to be helpful. Thus pathophysiology is studied in terms of common, or “classic,” presentations of disorders.
Historically, descriptions of diseases were based on observations of those individuals who attracted medical attention because they exhibited abnormal signs or complained of symptoms. Over time, cases with similar presentations were noted and treatments that had been successful before were used again. In some cases, similarities among individuals pointed to possible common causes. With the advent of more sophis- ticated measurements of physiologic and biochemical function, such as blood pressure measurements, blood chemistry values, x-ray images, and DNA analysis, the wide variability in the expression of diseases and disorders in the population became apparent, as did the opportunity to discover diseases at earlier stages, before they were clinically obvious. Screening programs that evaluated large segments of the population
Age Differences, 6 Gender Differences, 6 Situational Differences, 6 Time Variations, 6
Patterns of Disease in Populations, 6 Concepts of Epidemiology, 6
Endemic, Pandemic, and Epidemic Diseases, 7 Aggregate Factors, 7 Levels of Prevention, 9
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
2 UNIT I Pathophysiologic Processes
present, it is termed a risk factor. The identification of risk factors is important for disease prevention, and various levels of prevention provide a focus for the epidemiology section at the end of this chapter.
Some diseases are closely linked with etiologic factors, such that they are said to be the causative agents in the disease. For example, microbial pathogens are considered to be causative agents for infectious diseases: Ebola virus disease—a rare and deadly disease—is caused by infection with a virus of the family Filoviridae, genus Ebolavirus (Fig. 1.1); human immunodeficiency virus causes HIV disease, and Myco- bacterium tuberculosis causes pulmonary tuberculosis. These diseases do not occur unless the pathogen is present in the body; however, this does not mean that the infection will have the same consequences in each case, because many host factors affect the clinical course.
Even when the link between disease and etiologic agent is strong, only a portion of the population exposed to the factor may develop the disease. For example, in persons who consume large quantities of alcohol and develop liver cirrhosis, it is the alcohol consumption that is considered to be the cause, yet only a portion of persons who drink heavily will develop cirrhosis. Thus categorizing the probable etiologies for diseases is a long, difficult research process and, not surprisingly, the exact causes of most disorders remain incompletely understood. Several classification schemes have been proposed to categorize diseases according to etiology. Box 1.1 summarizes an example of an etiologic classification system. No classification system is truly comprehensive, and some diseases fall into multiple categories. Some diseases may receive different designations in the future, as further research reveals new data.
Pathogenesis Pathogenesis refers to the development or evolution of a disease, from the initial stimulus to the ultimate expression of the manifestations of the disease. The sequence of physiologic events that occurs in response to an etiologic agent is a dynamic interplay of changes in cell, tissue, organ, and systemic function. As the ways in which intricate intercellular communication networks control physiologic function are discovered,
revealed the complexity and diversity of disease expression, even in persons with the same genetic defect. Thus although the study of pathophysiology is necessarily a study of the usual and expected responses of the body to a given disruption, individuals often vary significantly from a classic presentation, making the diagnostic process complex and challenging.
Advances in genomic and epigenomic characterization, innovative technologies, and revolutionary approaches to the analysis of genetic variation and function have made studies and treatments possible that were not even imaginable just a few years ago. As a result, definitions of the living world have been virtually transformed and permeate every branch of biological science. Benefits of this new biology include a deeper understanding of evolution, greater insights into immune mechanisms, and advances against cancer and AIDS.
Genetic manipulation also raises sensitive and complex ethical and moral questions that did not exist half a century ago. Scientists are able to experiment with genetic manifestations and their mechanisms of action, dramatically altering medical practice, especially the management of inherited diseases. New capabilities have led to experimental treatments such as gene therapy–molecular surgery powerful enough to cure and alter the next generation. The study of pathophysiology assumes even greater significance as genetic research shows fresh insights and hopeful new treatments for human diseases.
Pathophysiology examines disturbances of normal mechanical, physical, and biochemical functions, either caused by a disease or resulting from a disease or abnormal syndrome or condition. For example, the study of a toxin released by a bacterium has evolved from the science of infectious diseases, as well as the harmful effects of that toxin on the body, with one possible result being sepsis. Another example is the study of the chemical changes that take place in body tissue as the result of inflammation.
Although individual study of specific diseases undertaken in medical pathology textbooks helps students identify subtle differences between similar diseases, the study of pathophysiology is dynamic and conceptual, seeking to explain processes and relationships common to a number of pathologies. For example, the pathophysiology of inflammation, hypotension, fluid volume deficit, hypoxia, and ischemia is important to the understanding of a large number of different pathologies, but each separate process is not necessarily a specific disease.
Pathophysiology includes four interrelated topics: etiology, patho- genesis, clinical manifestations, and treatment implications—the framework used throughout this textbook. Specific diseases will be used as illustrative examples of conditions in which particular pathophysiologic processes may occur.
FRAMEWORK FOR PATHOPHYSIOLOGY Etiology Etiology, in its most general definition, is the study of the causes or reasons for phenomena. A description of etiologic process includes the identification of those causal factors that, acting in concert, provoke a particular disease or injury. When the cause is unknown, a condition is said to be idiopathic. If the cause is the result of an unintended or unwanted medical intervention, the resulting condition is said to be iatrogenic. Most disorders are multifactorial, having several different etiologic factors that contribute to their development. For example, coronary heart disease is a result of the interaction of genetic predisposi- tion, diet, exposure to cigarette smoke, elevated blood pressure, and perhaps numerous other lifestyle and hormonal factors acting in concert. None of these individual factors can be said to cause the disease. When the link between an etiologic factor and development of a disease is less than certain but the probability is increased when the factor is
FIG 1.1 Colorized scanning electron micrograph of filamentous Ebola virus particles (blue) budding from a chronically infected VERO E6 cell (yellow-green). (From National Institute of Allergy and Infectious Diseases at http://flickr.com/photos/54591706@N02/14440817981. March 20, 2017.)
CHAPTER 1 Introduction to Pathophysiology 3
different stages. Knowledge of the possible stages of a disease is helpful in making an appropriate diagnosis and anticipating the clinical course.
Stages and Clinical Course Early in the development of a disease, the etiologic agent or agents may provoke a number of changes in biological processes that can be detected by laboratory analysis, although no recognition of these changes by the patient has occurred. The interval between exposure of a tissue to an injurious agent and the first appearance of signs and symptoms may be called a latent period or, in the case of infectious diseases, an incubation period. The prodromal period, or prodrome, refers to the appearance of the first signs and symptoms indicating the onset of a disease. Prodromal symptoms often are nonspecific, such as headache, malaise, anorexia, and nausea. During the stage of manifest illness, or the acute phase, the disease reaches its full intensity, and signs and symptoms attain their greatest severity. Sometimes during the course of a disease, the signs and symptoms may become mild or even disappear for a time. This interval may be called a silent period or latent period. For example, in the total-body irradiation syndrome, a latent period may occur between the prodrome and the stage of manifest illness. Another example is syphilis, which may have two latent periods: one occurring between the primary and secondary clinical stages and another occurring between the secondary and tertiary stages.
A number of diseases have a subclinical stage, during which the patient functions normally, although the disease processes are well established. It is important to understand that the structure and function of many organs provide a large reserve or safety margin, so that functional impairment may become evident only when organ damage has become advanced. For example, chronic renal disease can completely destroy one kidney and partly destroy the other before any symptoms related to a decrease in renal function are perceived.
The clinical course of a disease is often classified as acute or chronic. An acute condition has relatively severe manifestations but runs a short course measured in hours, days, or a few weeks. A chronic condition lasts for months to years. Sometimes chronic disease processes begin with an acute phase and become prolonged when the body’s defenses are insufficient to overcome the causative agent or stressor. In other cases, chronic conditions develop insidiously and never have an acute phase.
Some diseases (e.g., some types of autoimmune diseases) follow a course of alternating exacerbations and remissions. An exacerbation is a relatively sudden increase in the severity of a disease or any of its signs and symptoms. A remission is an abatement or decline in severity of the signs and symptoms of a disease. If a remission is permanent (sometimes defined as longer than 5 years), the person is said to be cured.
Convalescence is the stage of recovery after a disease, injury, or surgical operation. Occasionally a disease produces a subsequent pathologic condition called a sequela (plural: sequelae). For example, the sequela of an inflammatory process might be scarring. The sequelae of acute rheumatic inflammation of the heart might be scarring and deformation of cardiac valves. In contrast, a complication of a disease is a new or separate process that may arise secondarily because of some change produced by the original problem. For example, bacterial pneumonia may be a complication of viral infection of the respiratory tract.
Treatment Implications An understanding of the etiology, pathogenesis, and clinical consequences of a particular disorder may suggest, or “imply,” that certain treatments could be helpful. For example, understanding that a person with septic shock has excessive dilation of blood vessels that contributes to
pathogenesis is being increasingly understood on the cellular level. One of the best examples of this communication network is the immune system and its interactions with essentially every other cell in the body. A disruption in the delicate system of checks and balances between immune tolerance of normal cells and immune surveillance for abnormal cells and foreign antigens is at the root of a large number of degenerative and inflammatory diseases.
Pathologic disruptions in cellular behavior lead, in turn, to changes in organ and system function that may be detected by clinical or labora- tory examination. Most pathophysiology texts take a systems approach to presenting information. This approach builds on the way in which students learn anatomy and physiology and has its roots in medical specialization. Usually the clinical examination of a patient is also conceptualized by a systems approach. Although the division into systems is useful for dividing the content into conceptual pieces, it is important to remember that the organism functions as an integrated whole and the intercellular communication networks are not confined within single systems. In summary, pathogenesis is a description of how etiologic factors are thought to alter physiologic function and lead to the develop- ment of clinical manifestations that are observed in a particular disorder or disease.
Clinical Manifestations Manifestations of disease that are observed are termed signs of disease. Such objective data may be gathered by clinical examination or by biochemical analysis, diagnostic imaging, and other laboratory tests. The subjective feelings of an abnormality in the body are termed symptoms. By definition, symptoms are subjective and can only be reported by the affected individual to an observer. For example, the feeling of nausea is a symptom, whereas vomiting is objectively observed and is a sign. Some signs and symptoms, such as fever and headache, are nonspecific and, although they designate that something is amiss, they do not indicate a specific cause. In this case further examination and, often, laboratory tests are needed to focus on the possible causes of the signs and symptoms. Many diseases and disorders are characterized by a particular constellation of signs and symptoms, the knowledge of which is essential for accurate detection and diagnosis. When the etiology of a particular set of signs and symptoms has not yet been determined, the disorder may be termed a syndrome. For example, AIDS was originally detected as a set of signs and symptoms related to a deficiency of helper T cells of unknown cause, now known to be a late stage of HIV infection.
The clinical manifestations of some diseases may change significantly over time, resulting in a completely different clinical presentation at
Congenital (inborn) diseases or birth defects Degenerative diseases Iatrogenic diseases Idiopathic diseases Immunologic diseases Infectious diseases Inherited diseases Metabolic diseases Neoplastic diseases Nutritional deficiency diseases Physical agent–induced diseases Psychogenic diseases
BOX 1.1 Etiologic Classification of Diseases
4 UNIT I Pathophysiologic Processes
CONCEPTS OF NORMALITY IN HEALTH AND DISEASE The ability to measure numerous structural, physiologic, biochemical, and genetic parameters in an individual allows the evaluation of information that is helpful in the diagnosis and monitoring of clinical diseases. Many of these same measures are commonly used to screen for disease or to evaluate the risks of a disease occurring in the future. To determine whether a certain finding is indicative of disease or “abnormal,” it must be compared with what is “normal.” The obviousness of this statement belies the difficulty in determining what is normal and the degree of deviation from normal that would be considered abnormal. Many clinical parameters are evaluated by direct observation by the examiner. Skin color and warmth, quality of pulses, briskness of pupil reactions to light, mental acuity, muscle strength, joint mobility, heart sounds, lung sounds, bowel sounds, balance, psychological affect, and level of consciousness are but a few examples of assessments that are subjectively interpreted based on the examiner’s observations. Deciding whether a clinical finding is normal, a normal variation, or an abnormality indicative of a disorder is essential. Reliability of data obtained from observation is dependent on the examiner’s skill and experience. Often the clinical examination is not sufficient to determine definitively the underlying pathophysiologic processes, and diagnostic testing is undertaken to provide more information.
Statistical Normality Some of the variables that are measured to diagnose disease are relatively easy to declare as normal or abnormal because they occur in only two states; for example, a bone is either broken or not broken on x-ray examination. However, most diagnostic variables occur in the population according to a “bell curve,” or normal distribution. This means that a large enough sample taken from the population should give a good estimate of the range of values in the population. Statistics are often used to determine the standard deviation of the variable in question, and then a normal range is suggested as the mean ±2 standard deviations. This means that 95% of the values in the population are expected to fall in the normal range and 5% will be either higher or lower (Fig. 1.2). The “population” chosen to serve as the normal reference population
hypotension implies that fluid administration would likely be helpful. In contrast, most patients with cardiogenic shock have fluid overload, and hypotension in this case is unlikely to improve with fluid administra- tion. Care must be taken not to rely on theoretical implications when evidence-based treatment recommendations are available. When subjected to evaluation by rigorous randomized clinical trials, many treatments that seem as though they should help based on pathophysiology fail to pass the test of application.
The treatment implications discussed in pathophysiology texts usually are general statements rather than specific prescriptions. For example, the pathophysiology of heart failure is characterized by fluid overload, which implies that diuretic therapy would be useful; however, the exact selection of a drug and the dosing schedule would depend on a number of factors particular to the individual patient. Specific treatment recom- mendations are beyond the scope of a pathophysiology text and can be found in pharmacology and clinical practice textbooks.
KEY POINTS • Pathophysiology includes four interrelated topics: etiology, pathogenesis,
clinical manifestations, and treatment implications. • Etiology refers to study of the proposed cause or causes of a particular
disease process. Etiology is a complex notion because most diseases are multifactorial, resulting from interplay between genetic constitution and environmental influences.
• Pathogenesis refers to the proposed mechanisms whereby an etiologic stimulus leads to typically observed clinical manifestations. Pathogenesis describes the direct effects of the initiating event, as well as the usual physiologic responses and compensatory mechanisms.
• Clinical manifestations describe the signs and symptoms that typically accompany a particular pathophysiologic process. Manifestations may vary depending on the stage of the disorder, individual variation, and acuity or chronicity.
• An understanding of the etiology, pathogenesis, and clinical consequences of a particular disorder implies that certain treatments may be helpful.
Normal mean
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FIG 1.2 Representative example of a normal bell curve for a physiologic variable. Many physiologic variables are normally distributed within the population, so the mean ±2 standard deviations include 95% of the normal values in the sample. Approximately 2.5% of values will be above the normal range and 2.5% will be below it. There may be overlap between the values in a normal sample and those in the population with a disease, making interpretation difficult in some cases.
CHAPTER 1 Introduction to Pathophysiology 5
individual. The positive predictive value is an estimate of the probability that disease is present if the test is positive. The negative predictive value is an estimate of the probability that disease is absent if the test is negative. The predictive value of a test depends in part on the sensitivity and specificity of the test and in part on the probability of the disease being present before the test is obtained. Most tests are not perfectly specific and sensitive so the results must be interpreted probabilistically in view of the diagnostic hypotheses being tested.
Sensitivity and specificity are measures of how well a given test can discriminate between persons with and without a given condition. Sensitivity is the probability that the test will be positive when applied to a person with the condition. For example, if a kit for testing a throat swab for the presence of streptococcal infection has a sensitivity of 80%, then 20% of a group of people with streptococcal throat infection would erroneously test negative for the condition (false-negative rate). Another example is the blood test for HIV antibodies, which has a sensitivity of 99% and would fail to detect the condition in only 1% of a group of individuals who had HIV antibodies in their blood. Specificity is the probability that a test will be negative when applied to a person who does not have a given condition. If the streptococcal throat swab kit has a specificity of 95%, then 5% of those tested who do not actually have the condition would erroneously test positive (false-positive rate). The importance of evaluating the accuracy and precision of data is paramount because inappropriate diagnoses and clinical management could occur if decisions are predicated on invalid or unreliable data.
The positive predictive value of a test is improved when sensitiv- ity and specificity are high and the test is applied to individuals who have a high probability of having the condition being tested. If the likelihood of a condition in the population being tested is low (e.g., a 2% prevalence rate), then a positive result in a test with 99% specific- ity and 99% sensitivity would only have a 67% positive predictive value. This means that testing low-likelihood or low-risk individuals would produce a high percentage of false-positive results (33% in the preceding example). Therefore deciding who to test for a given condition based on the probability of the condition being present is as important as the sensitivity and specificity of the test. A good working knowledge of pathophysiology is necessary to generate the hypotheses that guide collection of appropriate data and facilitate the diagnostic process.
Individual Factors Influencing Normality Variations in physiologic processes may be a result of factors other than disease or illness. Age, gender, genetic and ethnic background, geographic area, and time of day may influence various physiologic parameters. Care must be taken to interpret “abnormal” findings with consideration of these possible confounding factors. In addition, the potential for spurious findings always exists. Thus trends and changes in a particular individual are more reliable than single observations. Single measure- ments, observations, or laboratory results that seem to indicate abnormality must always be judged in the context of the entire health picture of the individual. One slightly elevated blood glucose level does not mean clinical diabetes, a single high blood pressure reading does not denote hypertension, and a temporary feeling of hopelessness does not indicate clinical depression.
Cultural Considerations Each culture defines health and illness in a manner that reflects its experience. Cultural factors determine which signs, symptoms, or behaviors are perceived as abnormal. An infant from an impoverished culture with endemic chronic diarrhea and a degree of malnutrition would be viewed as abnormal in a progressive culture, such as a well-baby
must be carefully selected to represent the individual to be tested for disease, because many variables are influenced by age and gender.
For example, bone density can be measured in the population by radiologic imaging, and then a mean and standard deviation can be calculated. Women typically have lower bone density than men, and older women have lower bone density than younger women. If an elderly woman’s bone density is compared with women of her own age group, it may fall within the normal range, but compared with a group of younger women, it is more than 2 standard deviations below the mean. Which is the right comparison group to use to determine whether she has osteoporosis? There is controversy on this point because, in this situation, it is difficult to determine the difference between disease and the effects of normal aging.
Often, when assessing a person’s health status, a change in some value or factor is more significant than the actual value of the factor. A blood pressure of 90/70 mm Hg may not be significant if that is the usual value. However, if a person usually has a blood pressure of 120/80 mm Hg, a reading of 90/70 mm Hg could indicate a significant change. Individuals are typically evaluated more than once—generally two or three times—to establish deviation from their usual value.
Reliability, Validity, and Predictive Value The accurate determination of whether a specific condition is present or absent depends on the quality and adequacy of the data collected, as well as the skill of interpretation. Decisions about the data needed are based on the initial clinical presentation and a working knowledge of pathophysiology, which guide hypothesis generation about probable etiologies. During the clinical examination, data are analyzed, and a number of likely explanations for the clinical presentation may emerge. These possible explanations are “probabilities” based on knowledge and past experience with similar cases. The purpose of further data collection, particularly laboratory and diagnostic testing, is to refine the initial probability estimates and identify the most likely diagnosis. The success of this approach depends on the selection of appropriate tests based on the pretest probabilities, as well as on the validity, reliability, and predictive value of the tests.
Validity, or accuracy, is the degree to which a measurement reflects the true value of the object it is intended to measure. For example, a pulse oximeter is designed to measure arterial oxygen saturation, and the closeness of the reading to a direct measurement of oxygen saturation in an arterial blood sample reflects its accuracy. Reliability, or precision, is the ability of a test to give the same result in repeated measurements. An instrument or laboratory test can be reliable, yet inaccurate. Repeated measurements with the pulse oximeter could give the same result each time, but if those values are significantly different from the “gold standard” of an arterial blood sample, the oximeter data would have poor validity.
Some measurements vary according to the reagents and laboratory methods used. For example, prothrombin time (PT) is sensitive to the reagent used. In one method of determining PT, the reagent—a substance composed of thromboplastin and calcium—is added to decalcified plasma to create a reaction resulting in clot formation. The PT is then determined by measuring the length of time it takes for clotting to occur after this reagent is added and compared with the normative average. Portions of the same blood sample sent to several different laboratories could return significantly different PT results. In fact, this is such a problem that laboratories now use a correction procedure to normalize the PT values across labs. The corrected PT value is reported as the international normalized ratio (INR), which has higher reliability than the PT.
The predictive value of a test is the extent to which the test can differentiate between the presence and absence of a condition in an
6 UNIT I Pathophysiologic Processes
PATTERNS OF DISEASE IN POPULATIONS Concepts of Epidemiology Differences among individuals are, of course, very important in determin- ing the diseases to which they are susceptible and their reactions to the diseases once contracted. But epidemiology, or the study of patterns of disease involving aggregates of people (Fig. 1.4), provides yet another important dimension. Information may be gained by examining the occurrence, incidence, prevalence, transmission, and distribution of diseases in large groups of people or populations.
clinic in Sweden. Given cultural variations that affect definitions of normal and abnormal, the resulting pattern of behaviors or clinical manifestations affects what the culture labels as illness.
Age Differences Many biological factors vary with age, and the normal value for a person at one age may be abnormal at another. Physiologic changes, such as hair color, skin turgor (tension), and organ size, vary with age. In general, most organs shrink; exceptions are the male prostate and the heart, which enlarge with age. Special sensory changes, such as severely diminished near-sight, high-tone hearing loss, and loss of taste dis- criminations for sweet and salty, are normal in an elderly adult and abnormal in a middle-aged adult or child. There are fewer sweat glands and less thirst perception in an elderly person than in a young adult or child. Elderly persons have diminished temperature sensations and can therefore sustain burn injuries—from a heating pad or bath water—because they do not perceive heat with the same intensity as do middle-aged adults. A resting heart rate of 120 beats per minute is normal for an infant but not for an adult.
Gender Differences Some laboratory values, such as levels of sex and growth hormones, show gender differences. The complete blood cell count shows differences by gender in hematocrit, hemoglobin, and red blood cell (RBC) count. For example, the normal range of hemoglobin concentration for adult women is lower than that for adult men—for adult women, the normal hemoglobin range is 12 to 16 g/100 mL of blood, whereas for adult men the normal range is 13 to 18 g/100 mL of blood. There are also gender differences in the erythrocyte sedimentation rate (ESR). Normally, in males, the ESR is less than 13 mm/hr; it is slightly higher in females. There are differences by gender in creatinine values too. For females, the normal serum creatinine level is 0.4 to 1.3 mg/dL; for males, the normal range is 0.6 to 1.5 mg/dL. Research into gender differences also suggests that, on average, males snore more; have longer vocal cords, better daylight vision, and higher metabolic rates; and are more likely to be left-handed than females. Research suggests, too, that females and males may have different communication styles and respond differently to similar conditions.
Situational Differences In some cases, a deviation from the usual value may occur as an adaptive mechanism, and whether the deviation is considered abnormal depends on the situation. For example, the RBC count increases when a person moves to a high altitude. The increase is a normal adaptive response to the decreased availability of oxygen at a high altitude and is termed acclimatization. A similar increase in the RBC count at sea level would be abnormal.
Time Variations Some factors vary according to the time of day; that is, they exhibit a circadian rhythm or diurnal variation. In interpreting the result of a particular test, it may be necessary to know the time at which the value was determined. For example, body temperature and plasma concentra- tions of certain hormones (such as growth hormone and cortisol) exhibit diurnal variation. Reflecting fluctuation in plasma levels, the peak rate in urinary excretion for a particular steroid (17-ketosteroid) occurs between 8 AM and 10 AM for persons who customarily rise early in the morning and is about two to three times greater than the lowest rate in the same people, which occurs between midnight and 2 AM, usually during sleep. The urinary excretion of ions (e.g., potassium) also exhibits diurnal variation. Fig. 1.3 illustrates circadian rhythms of several physi- ologic variables for persons living on a standard day-active schedule.
0 12 Circadian time (hours)
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FIG 1.3 Circadian rhythms of several physiologic variables in a human subject depict the effect of light and dark. In an experiment with lights on (open bars at top) for 16 hours and off (black bars at top) for 8 hours, temperature readings and plasma growth hormone, plasma cortisol, and urinary potassium levels exhibit diurnal variation. (Redrawn from Vander AJ et al: Human physiology, ed 7, New York, 1998, McGraw-Hill.)
KEY POINTS • Determining whether clinical findings are normal, abnormal, or a normal
variation is an essential, but often difficult, process in evaluating for the presence or absence of disease.
• Normal ranges for laboratory tests are typically defined as the mean ±2 standard deviations; thus 5% of the normal population may fall outside the normal range despite the absence of disease. Laboratory tests must be evaluated in concert with clinical information.
• The predictive value of a clinical test is the extent to which it can differentiate between the presence and absence of disease in an individual. Tests with high sensitivity and specificity generally have better predictive value.
• Variations in physiologic processes may be a result of factors other than disease or illness. Age, gender, genetic and ethnic background, geographic area, and time of day may influence various physiologic parameters.
• Trends and changes in a particular individual are more reliable than single observations.
CHAPTER 1 Introduction to Pathophysiology 7
Age. In one sense, life is entirely different during the 9 months of gestation. The structures and functions of tissues are different: they are primarily dedicated to differentiation, development, and growth. Certainly the environment is different; the individual is protected from the light of day, provided with predigested food (even preoxygenated blood), suspended in a fluid buffer, and maintained at incubator temperature. This is fortunate because the developing embryo or fetus has relatively few homeostatic mechanisms to protect it from environmental change. (The factors that produce disease in utero are discussed in Chapter 6.) Diseases that arise during the postuterine period of life and affect the neonate include immaturity, respiratory failure, birth injuries, congenital malformations, nutritional problems, metabolic errors, and infections. These conditions are discussed in separate chapters.
Accidents, including poisoning, take their toll in childhood. Infections in children reflect their increased susceptibility to agents of disease. Consideration of other childhood diseases is addressed in each chapter as appropriate and given separate consideration throughout the text. The study of childhood processes and of changes that occur in this period of life is the domain of pediatrics; specific diseases that occur during maturity (ages 15 to 60) are emphasized in this text.
The changes in function that occur during the early years of life are termed developmental processes. Those that occur during maturity and postmaturity (age 60 and beyond) are called aging processes. The study of aging processes and other changes that occur during this period of life is called gerontology. The effects of aging on selected body systems are so important physiologically that they also receive separate consid- eration throughout the text. The immune, cardiac, respiratory, musculoskeletal, neurologic, special sensory, endocrine, gastrointestinal, and integumentary systems are among those affected by the process of aging.
Ethnic group. It is difficult to differentiate precisely between the effects of ethnicity on patterns of disease and the socioeconomic factors, religious practices, customs, and geographic considerations with which ethnicity is inseparably bound. For example, carcinoma of the penis is virtually unknown among Jews and Muslims who practice circumcision at an early age (avoiding the carcinogenic stimulus that arises from accumulation of smegma about the glans penis).
However, comparisons reveal significant differences in the occur- rence of certain disease states in ethnic groups that seem to be more closely related to genetic predisposition than to environmental factors. For example, sickle cell anemia has a much higher rate of occurrence in African populations, whereas pernicious anemia occurs more frequently among Scandinavians and is rare among black populations worldwide.
The study of racial and ethnic group variation in disease states is the domain of medical anthropology. Disease-specific differences that relate to racial or ethnic group differences are a developing research frontier. In clinical practice, recognition of diversity in disease risk by racial or ethnic group is useful in disease diagnosis, prevention, and management. Ethnic group–specific differences, where important, are presented in individual chapters.
Gender. Particular diseases of the genital system obviously show important differences between the sexes; men do not have endometriosis, nor do women have hyperplasia of the prostate, and carcinoma of the breast is more common in women than in men. Pyelonephritis is more common in young women than in men of comparable age (before they develop prostatic hyperplasia) because the external urethral orifice of women is more readily contaminated, and bacteria can more easily travel up a short urethra than a long one. Less obviously related to the reproductive system, the onset of severe atherosclerosis in women is delayed nearly 20 years or more over that in men, presumably because of the protective action of estrogenic hormone.
Endemic, Pandemic, and Epidemic Diseases A disease that is native to a local region is called an endemic disease. If the disease is disseminated to many individuals at the same time, the situation is called an epidemic. Pandemics are epidemics that affect large geographic regions, perhaps spreading worldwide. Because of the speed and availability of human travel around the world, pandemics are more common than they once were.
Almost every flu season, a new strain of influenza virus quickly spreads from one continent to another. The 2014–2015 Ebola epidemic in West Africa provides an excellent example of an epidemic that spread worldwide, becoming pandemic. The first case was reported in Guinea in March 2014, and the disease spread in the neighboring countries of Liberia and Sierra Leone. Over the span of a year, the Ebola pandemic caused more than 10 times as many cases of Ebola than the combined total of all those reported in previous Ebola outbreaks. As the outbreak became more widespread, travel-associated cases appeared in Nigeria, Mali, Senegal, and countries outside Africa, including the United States.
Aggregate Factors Principal factors affecting patterns of disease in human populations include the following: (1) age (i.e., time in the life cycle), (2) ethnic group, (3) gender, (4) socioeconomic factors and lifestyle considerations, and (5) geographic location.
B
A
FIG 1.4 A, The aggregate focus in disease: influence of crowds on disease transmission. Crowd gathered at a public market in Russia. B, Crowds gathered to purchase goods at a public market in Guangzhou, China. (Photographed by L-E Copstead.)
8 UNIT I Pathophysiologic Processes
hospital-acquired infections have become resistant to at least one of the drugs commonly used to manage them, largely attributable to the overprescribing of antibiotics. Staphylococcus, the leading cause of hospital infections, is now resistant to 95% of first-choice antibiotics and 30% of second-choice antibiotics. Poor hand hygiene is considered the leading source for infections acquired during hospitalizations. Unfortunately, efforts to convince health care personnel to reduce transmission of infection through practices as simple as more frequent and thorough handwashing have met with only modest success.
The incidence of many parasitic diseases is closely tied to socioeco- nomic factors and lifestyle considerations. Worm infections, for example, are related to the use of human feces as fertilizer. In some areas, such as parts of Asia, Africa, and tropical America, the frequency of schis- tosomiasis (a parasitic infestation by blood flukes) is directly related to the widespread use of irrigation ditches that harbor the intermediate snail host. There is adequate opportunity for transmission of schisto- somiasis because children often play in these ditches, and families wash their clothes in ditch water (Fig. 1.5).
Trichinosis, a disease caused by the ingestion of Trichinella spiralis, occurs almost entirely from eating inadequately cooked, infected pork. People who are fond of raw meat and inadequately cooked sausage are at highest risk.
Education is often very effective in changing lifestyle patterns that contribute to disease. In Tokyo, for example, mass public education about minimizing the use of sodium—a common ingredient in most traditional Japanese cooking—has been effective in changing dietary practices.
Examples of educational efforts directed at lifestyle modification in the United States are numerous. Antidrug, antismoking, and profitness messages fill the media and are prevalent on the Internet. Choosing
However, some gender-specific factors defy explanation. For example, systemic lupus erythematosus is much more common in women. Toxic goiter and hypothyroidism are also more common in women. Rheu- matoid arthritis is more common in women, but osteoarthritis affects men and women with equal frequency. Thromboangiitis obliterans (a chronic, recurring, inflammatory peripheral vascular disease) occurs more commonly in men. Gender differences in predisposition to cancer and other diseases, where relevant, are presented throughout the text.
Socioeconomic factors and lifestyle considerations. The environ- ment and the political climate of countries determine how people live and the health problems that are likely to ensue. The importance of poverty, malnutrition, overcrowding, and exposure to adverse environ- mental conditions, such as extremes of temperature, is obvious. Volumes have been written about the effects of socioeconomic status on disease. Sociologists study the influence of these factors. Social class influences education and occupational choices.
Disease is related to occupational exposure to such agents as coal dust, noise, or extreme stress. Lifestyle considerations are closely related to socioeconomic factors. Many people living in the United States, for example, consume too much food, alcohol, and tobacco and do not exercise enough. Childhood obesity is a problem in the United States and is becoming a global problem as well. Arteriosclerosis; cancer; diseases of the kidney, liver, and lungs; and accidents cause most deaths in the United States. By contrast, people living in developing nations suffer and frequently die of undernutrition and infectious diseases.
However, infectious disease is not limited to developing countries. The Centers for Disease Control and Prevention (CDC) estimates that 2 million people annually acquire infections while hospitalized, and 90,000 people die as a result of those infections. More than 70% of
A B
FIG 1.5 Risk factors for schistosomiasis include the widespread use of irrigation ditches that harbor the intermediate snail host. (Photographed in China by L-E Copstead.)
CHAPTER 1 Introduction to Pathophysiology 9
bedding, needles, syringes/sharps, or medical equipment) that have been contaminated with infected body fluids. Additionally, people can become sick with Ebola after coming in contact with infected wildlife. In Africa, Ebola may spread as a result of handling bushmeat (wild animals hunted for food) and contact with infected bats.
The World Health Organization (WHO) and the National Institutes of Health (NIH) have been deeply concerned with geographic problems in disease. Consult WHO and NIH home pages on the World Wide Web for additional information. (Web locations are provided on the Evolve website.)
Levels of Prevention The goal of health care should encompass much more than the prevention of illness. What is needed instead is some notion of positive health or physical “wholeness” that extends beyond the absence of ill health. The WHO defines health as complete physical, mental, and social well-being and not merely the absence of disease or infirmity. For some individuals, health implies the ability to do what they regard as worthwhile and to conduct their lives as they want. Aging and ill health are not synonymous, and many elders enjoy excellent health, even in the face of chronic disease (Fig. 1.7).
Epidemiologists suggest that treatment implications fall into categories called levels of prevention. There are three levels of prevention: primary, secondary, and tertiary. Primary prevention is prevention of disease by altering susceptibility or reducing exposure for susceptible individuals. Secondary prevention (applicable in early disease, i.e., preclinical and clinical stages) is the early detection, screening, and management of the disease. Tertiary prevention (appropriate in the stage of advanced disease or disability) includes rehabilitative and supportive care and attempts to alleviate disability and restore effective functioning.
Primary prevention. Prolongation of life has resulted largely from decreased mortality from infectious disease. Primary prevention in terms of improved nutrition, economy, housing, and sanitation for those living in developed countries is also responsible for increased longevity. Certain childhood diseases—measles, poliomyelitis, pertussis (whooping cough), and neonatal tetanus—are decreasing in prevalence, due to a rapid increase in coverage by immunization programs. More than 120 million children younger than age 5 in India were immunized against polio- myelitis in a single day in 1996. Globally, coverage of children immunized against six major childhood diseases increased from 5% in 1974 to 80% in 1995. In 1985 Rotary International launched the PolioPlus program to protect children worldwide from the cruel and fatal consequences of polio. In 1988 the World Health Assembly challenged the world to eradicate polio. Since that time, Rotary International’s efforts and those of partner agencies, including the WHO, the United Nations Children’s Fund, the CDC, and governments around the world, have achieved a significant reduction in the number of polio cases worldwide. Although the partners had pledged to wipe out the polio virus by 2018, that would have meant that transmission of the virus would have to be stopped by the end of 2015, because eradication may be certified by the WHO only 3 years after the last case.
As of September 2015, 41 cases were reported: 32 in Pakistan and 9 in Afghanistan. Some of the strategies used in Nigeria, which ended polio as of 2015, are now being implemented in Pakistan. But violence against vaccinators remains a serious obstacle.
The prevalence of cardiovascular diseases in developed countries (except those in Eastern Europe) is diminishing, thanks to the spread of health education and promotion. Infant and child death rates and the overall death rate are continuing to decrease globally.
High school health education programs are other examples of primary prevention efforts. Primary prevention also includes adherence to safety precautions, such as wearing seat belts, observing the posted speed limit
healthy alternatives over unhealthy ones is made easier through positive peer pressure and support groups.
Geographic location. Patterns of disease vary greatly by geographic location. Certainly there is considerable overlap with ethnicity, socio- economic factors, and lifestyle choices, but physical environment also is an important aspect. Obviously, frostbite in Antarctica and dehydration in the Sahara are examples of disorders that are more prevalent in specific geographic settings. However, important patterns of disease occur within individual countries. For example, the incidence and type of malnutrition vary tremendously by geographic region.
Many diseases have a geographic pattern for reasons that are clear. For example, malaria, an acute and sometimes chronic infectious disease resulting from the presence of protozoan parasites within red blood cells, is transmitted to humans by the bite of an infected female Anopheles mosquito. The Anopheles mosquito can live only in certain regions of the world (Fig. 1.6).
Fungal diseases are both more common and more serious in hot, humid regions. But some infectious diseases are highly limited geographi- cally for reasons that are not well understood. For example, bartonellosis, which is also called Carrión disease, is found only in Peru, Ecuador, Chile, and Colombia. This disease resembles malaria superficially in that the minute rickettsia-like organisms invade and destroy erythrocytes. Humans are infected by the bite of the sand fly. Although conditions in other parts of the world should be favorable for this disease, it remains limited geographically.
Ebola was first discovered in 1976 near the Ebola River in what is now the Democratic Republic of the Congo. Since then, outbreaks have appeared sporadically in Africa. The natural reservoir host of Ebola virus remains unknown. However, on the basis of evidence and the nature of similar viruses, researchers believe that the virus is animal-borne and that bats are the most likely reservoir. Four of the five virus strains occur in an animal host native to Africa.
Taking a world view, there is widespread recognition of the importance of geographic factors in influencing human disease. For example, health care providers caring for Ebola patients and family and friends in close contact with Ebola patients are at the highest risk of getting sick because they may come in contact with infected blood or body fluids. Ebola also can be spread through direct contact with objects (like clothes,
Distribution of falciparum malaria
FIG 1.6 Geographic distribution of malaria. (From Centers for Disease and Control Prevention. https://www.cdc.gov/malaria/about/distribution. html. April 27, 2017.)
10 UNIT I Pathophysiologic Processes
ascertain gender, and to measure substances associated with defects in the spinal cord and brain.
Tertiary prevention. Once a disease becomes established, treatment— within the context of traditional Western medicine—generally falls into one of the following two major categories: medical (including such measures as physical therapy, pharmacotherapy, psychotherapy, radiation therapy, chemotherapy, immunotherapy, and experimental gene therapy) and surgical. Numerous other subspecialties of medicine and surgery also have evolved to focus on a given organ or technique. In a clinical setting, a large array of professional caregivers provides rehabilitative and supportive tertiary prevention to the affected individual. Every professional brings the perspective of his or her discipline to the caregiv- ing situation. Each makes clinical judgments about the patient’s needs and problems and decides which goals and intervention strategies are most beneficial.
on highways, and taking precautions in the use of chemicals and machinery. Violent crimes involving dangerous weapons must be stopped to achieve primary prevention of the traumatic or fatal injuries they cause.
Environmental pollutants, such as benzene, mold, asbestos, and lead, poison the body’s organs. Some experts fear the emergence of an epidemic of cancer attributable to the carcinogenic chemicals afflicting the environment. Public health measures to ensure clean food, air, and water prevent many diseases, including cancer. As air, water, and soil quality is improved, the risk of exposure to harmful carcinogens is minimized.
Secondary prevention. Yearly physical examinations and routine screening are examples of secondary prevention that lead to the early diagnosis of disease and, in some cases, cures. The routine use of Pap smears has led to a decline in the incidence of invasive cancer of the uterine cervix. Also, more women are examining their own breasts monthly for cancer; thus earlier diagnoses are achieved.
Prenatal diagnosis of certain genetic diseases is possible. New diagnostic laboratory techniques provide definitive information for the genetic counseling of parents. This information can aid in predicting chances of involvement or noninvolvement of offspring for a given genetic disorder.
Amniocentesis is a diagnostic technique that consists of removing a small amount of fluid from the amniotic sac that surrounds the fetus and analyzing the cells and chemicals in the fluid. Blood samples can also be obtained from the fetus by amniocentesis; the amniotic fluid and fetal blood are then studied to determine defects in enzymes, to
A B
FIG 1.7 Healthy aging: elders exercising in an aerobics class (A) and painting (B) illustrate the concept that aging and disease are not synonymous. The artist, a healthy woman in her mid-70s, is also a breast cancer survivor. (Photographed by Therese A. Capal, Rockville, MD.)
KEY POINTS • Epidemiology is the study of patterns of disease in human populations. • Diseases may be endemic, epidemic, or pandemic depending on location
and the number of people affected. • Aggregate factors such as age, ethnicity, gender, lifestyle, socioeconomic
status, and geographic location are epidemiologic variables that influence the occurrence and transmission of disease in populations.
• Understanding the epidemiologic aspects of a disease is essential for effective prevention and treatment.
Most people recognize what it is to be healthy and would define disease or illness as a change from or absence of that state. Under closer scrutiny, the concept of health is difficult to describe in simple, succinct terms. Correspondingly, the concepts of disease and illness also are complex. Environment, genetic constitution, socioeconomic status, lifestyle, and previous physical health all affect the timing and ultimate expression of disease in individuals.
Because humans exhibit considerable diversity, healthy structure and function are not precisely the same in any two individuals. By discovering common and expected patterns of responses to abnormalities, general prediction of etiology, pathogenesis, clinical manifestations, and targeted levels of prevention and intervention becomes possible.
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CHAPTER 1 Introduction to Pathophysiology 11
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12
2 Homeostasis, Allostasis, and Adaptive Responses to Stressors Debra A. Jansen and Roberta J. Emerson
K E Y Q U E S T I O N S • What is the relationship between homeostasis and allostasis? • How do the sympathetic nervous system and neuroendocrine
system respond to stress? • What are the key features of Selye’s General Adaptation
Syndrome?
• What factors affect the stress response? • How does allostatic overload contribute to the development of
disease?
C H A P T E R O U T L I N E Homeostasis and Allostasis, 12
Homeostasis, 12
Allostasis, 13
Stress as a Concept, 13 The General Adaptation Syndrome and Allostasis, 14
Alarm Stage, 14 Resistance or Adaptation Stage, 14 Exhaustion Stage, 16
Stressors, Gender and Developmental Influences, and Risk Factors, 16
Neurohormonal Mediators of Stress and Adaptation, 17 Catecholamines: Norepinephrine and Epinephrine, 17
Adrenocortical Steroids: Cortisol and Aldosterone, 18
Endorphins, Enkephalins, and Immune Cytokines, 19
Sex Hormones: Estrogen, Testosterone, and Dehydroepiandrosterone, 19
Growth Hormone, Prolactin, and Oxytocin, 19
Adaptation, Coping, and Illness, 20 Adaptation, Coping, and Resilience, 20
Allostatic Overload and Illness, 21
http://evolve.elsevier.com/Banasik/pathophysiology/
Humans, like all living organisms, must be able to respond and adapt to alterations in the environment. Changes in the external environment, such as moving outside from a warm house on a cold winter day, demand physiologic adjustments in the body’s internal environment beyond the simple addition of layers of clothing to the outside of the body. Variations in the internal environment, such as a fever caused by infection, also necessitate physiologic responses to return the body’s temperature to the normal range. The human organism maintains a variety of highly complex interactions with both internal and external environments. These interactions facilitate ongoing compensatory changes designed to support the organism physically and psycho- logically. Compensatory changes are necessary because they allow the perpetuation of both the individual and the species. Researchers, however, have found that the body’s efforts to adapt to prolonged and repeated or extraordinarily demanding environmental changes may be associated with many physical and psychological health problems. This chapter explores the historical and current perspectives of homeostasis, allostasis, and stress responses and their relationship to health and illness.
HOMEOSTASIS AND ALLOSTASIS Homeostasis The word homeostasis is derived from the Greek words homeo, or similar, and stasis, or standing still, and means maintaining internal conditions in a stable state by keeping parameters relatively the same. Homeostasis often is conceptualized as a state of being in which all systems are in balance around a particular ideal “set-point.” From this perspective, bodily changes formerly seen as conflicting or detrimental are understood as adaptive or compensatory to the maintenance of homeostasis within the body as a whole. Homeostasis reflects a tendency to stabilize an organism’s functional systems, despite changes both internally and externally. Deviations from homeostasis resulting from these changes require elaborate systems to support the return of balance to the body. Over the past several decades, the definition of homeostasis has been criticized as being inadequate in encompassing the entire process of maintaining a stable state in complex organisms. But the fact remains that homeostatic concepts are an essential starting point for an explora- tion of stress, adaptation, and disease.
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 2 Homeostasis, Allostasis, and Adaptive Responses to Stressors 13
and stasis, meaning standing still. Therefore this term accentuates the role of allostatic systems in maintaining the organism’s stability by varying or changing. Allostasis is a dynamic process that supports and helps the body achieve a steady-state. In essence, the organism’s overall stability is accomplished through change.
Allostasis involves intricate regulatory processes orchestrated by the brain. Through these processes, the body’s parameters are continuously reevaluated and readjusted to match resources to the needs dictated by the situation. These parameter readjustments (e.g., of heart rate, blood pressure, or glucose levels) entail altering multiple set-points such that the person may be functioning at reduced or elevated levels or rates for numerous physiologic variables. Thus an individual may have different set-points for different circumstances (e.g., when resting versus running or when healthy versus sick). Allostasis comes into play in the complexity of social interactions and in our responses to adverse childhood experiences and low socioeconomic status (SES), exposure to environmental pollutants, and the demands of everyday modern living and working conditions, as well as in critical illness. The concept has garnered broad support in both the physical and the behavioral sciences. It seems especially applicable to subsequent discussions of adaptation and disease.
Claude Bernard, a nineteenth-century French physiologist, is credited with describing the basic premise of homeostasis. He believed that the various vital physiologic mechanisms of the body had as their goal the maintenance of a uniform and constant internal environment, or milieu intérieur, for the body. The stability of the internal environment was deemed necessary for the survival of the person, independent or free of the external environment. Disease occurred when the body did not respond appropriately to maintain internal stability when threatened by perceived or actual events. Building on Bernard’s work, Walter B. Cannon created a concept that he referred to as homeostasis in his 1932 book The Wisdom of the Body. Homeostasis, according to Cannon, was a process in which each of the body’s biochemical or physiologic variables (e.g., body temperature; oxygen, sodium, calcium, and glucose levels; and pH) was maintained within a narrow set-point range. Negative feedback loops sensed and corrected deviations from the set-point ranges for the variables, thereby supporting the survival of the individual, despite threats from the external or internal environments. These environmental threats could range from temperature extremes and water loss or gain, to “savage creatures” and bacterial infections. Box 2.1 provides examples of homeostatic systems designed to support the life of the person in the most basic sense.
Allostasis The original concept of homeostasis, with the principle that the body attempts to achieve balance around a single optimal level or set-point for a given physiologic variable, has been challenged in recent decades. The innate complexity of biological organisms requires that set-points be readjusted for different circumstances (i.e., diverse situations neces- sitate different homeostatic set-points), including the anticipation of increased demands. For example, respiratory rate needs to increase when vigorously exercising or when ill with pneumonia to obtain more oxygen. At the same time, when responding to an internal or external environmental challenge (i.e., a stressor), multiple physiologic parameters may have to raise or lower their levels or actions to meet the demands posed by the challenge. Useful changes in one body system, though, may be detrimental to another, especially if prolonged; these changes, however, may ultimately be needed to support the survival of the organism as a whole at that particular point in time. For instance, in shock, when the life of the organism is at risk, blood flow to essential organs (brain and heart) is maintained by reducing perfusion to the kidneys, skin, and gastrointestinal tract. Simply stated, the body is not concerned about digesting dinner or making urine when it is trying to divert resources to a struggling brain and heart.
In 1988 Sterling and Eyer introduced the concept of allostasis in recognition of the complexity and variable levels of activity necessary to reestablish or maintain homeostasis. They described allostasis as the ability to successfully adapt to challenges. To survive, “an organism must vary all the parameters of its internal milieu and match them appropriately to environmental demands.” Like homeostasis, allostasis is a derivation of the Greek words allo, meaning variable or different,
Baroreceptor response to acute changes in blood pressure Vasopressin/antidiuretic hormone release from the posterior pituitary in response
to changes in serum osmolality Hypothalamic-mediated responses to changes in body core temperature Central chemoreceptor responses to changes in PaCO2 Parathyroid gland response to changes in serum calcium level
BOX 2.1 Examples of Homeostatic Systems
KEY POINTS • Contemporary concepts of homeostasis have a long history, reaching back
to the ancient Greeks. • Homeostasis is a state of equilibrium, of balance within the organism. • Homeostatic responses refer to systems whose purpose is specifically to
normalize selected physiologic variables. • Allostasis is the overall process of adaptive change necessary to maintain
survival and well-being. • Allostasis may involve altering multiple physiologic variables to match the
resources of the body to environmental demands. It helps the body achieve homeostasis.
STRESS AS A CONCEPT Referring to stress as an “ambiguous” term is an understatement. Its ubiquitous use in everyday parlance is matched by its frequent presence in the health and psychology literature. Stress often is interpreted as a physical, chemical, or emotional factor that produces tension in the body or the mind (“He’s experiencing a lot of stress”). But it also can mean the actual physical and mental state of tension (“I feel stressed”). Others use the term stress in relation to the response by the body to internal and external demands. Stress can be defined as a real or perceived threat to the balance of homeostasis. The neuroendocrinologist Robert Sapolsky more specifically distinguishes between the stress terminology and defines a stressor as anything that throws the body out of allostatic balance, whereas the stress response is the body’s effort to try to restore the balance. To that end, stress is a natural outgrowth of the concept of homeostasis, but is even more applicable to the dynamic concept of allostasis. Sapolsky’s definition also underscores an important point: The stress response by the body is meant to be helpful, at least in the short term; however, it becomes damaging when repeatedly activated or when it does not cease.
As early as the 1920s, Walter Cannon used the term stress in relation to humans and medicine. Hans Selye, however, often is erroneously credited with being the first person to borrow the term from the fields of engineering and physics and apply it to the human condition. In the
14 UNIT I Pathophysiologic Processes
enable the body to rapidly take action to fight or flee the stressor. This series of events is part of the sympathetic-adrenal-medullary system, originally referred to as the fight-or-flight response by Walter Cannon. Additionally, the hypothalamus secretes CRH to stimulate the anterior pituitary gland to release adrenocorticotropic hormone (ACTH). ACTH then causes the adrenal cortex (the outer portion of the adrenal gland) to release substantial amounts of the glucocorticoids, specifically cortisol, eliciting its diverse responses. This cascade of effects is termed the hypothalamic-pituitary-adrenal (HPA) axis. Once the pituitary gland is activated, the alarm stage progresses to the stage of resistance. This coordinated systemic response to stress is illustrated in Fig. 2.2.
Allostasis is essentially the activation of these stress responses to evoke changes that return the organism to homeostasis. Mediators of allostasis include the aforementioned hormones and neurotransmitters of the HPA axis and the sympathetic-adrenal-medullary system (e.g., cortisol, epinephrine, and norepinephrine), various other hormones presented later in this chapter, and also cytokines from the immune system. The alarm stage of the stress response with the release of its various substances is meant to be helpful to the organism in overcoming the stressor.
Resistance or Adaptation Stage If the alarm stage were to persist, the body would soon suffer undue wear and tear and become subject to permanent damage and even death. To survive, the body must move beyond the alarm stage to a stage of resistance (also called adaptation) supportive of the allostatic return to a state of homeostasis. As the body moves into the stage of resistance, the sympathetic nervous system and adrenal medulla and cortex are functioning at full force to mobilize resources to manage the stressor. The resources include glucose, free fatty acids, and amino acids. Concentrations of these chemicals are elevated through the effects of cortisol and the catecholamines (i.e., epinephrine and norepinephrine). These resources are used for energy and as building blocks, especially the amino acids, for the later growth and repair of the organism after
1930s Selye was experimenting with assorted ovarian and placental hormonal preparations and other tissue extracts and toxic agents. He was injecting these into rats when he serendipitously uncovered a biologi- cal basis for stress. Selye was expecting to find different physiologic responses in the rats, depending on which of the various substances was injected; however, to his surprise and disappointment, the same three changes occurred each time. In every animal tested, the cortex of the adrenal gland enlarged, lymphatic organs (thymus, spleen, and lymph nodes) shrank, and bleeding peptic ulcers developed in the stomach and duodenum. When Selye experimented with other noxious stimuli, such as exposing the rats to temperature extremes, surgery, or forced exercise, the same three changes occurred. Any kind of harmful physical stimuli he used produced the same observed physiologic changes. Selye termed the harmful stimuli or causative agents stressors and concluded that the changes observed represented a nonspecific response by the body to any noxious stimulus or demand, a general “stress” response. Because so many different agents caused the same changes, Selye called this process a general adaptation syndrome (GAS) with three components: an alarm reaction, a stage of resistance, and a stage of exhaustion. According to Selye, when confronted by stressors during daily life, individuals move through the first two stages repeatedly and eventually become adapted and “used to” the stressors.
Selye’s original conceptualization of the stress response and GAS has been criticized as being too simplistic for the complexities of humans. In particular, evidence suggests the body does not produce the same responses to all types of stressors. Depending on the type and severity of stressor, different patterns of hormone release occur, with more of some substances and less of others being produced and at different speeds and for varying lengths of time. Moreover, Selye’s early work in the 1930s concentrated on stimuli of a physical or biological nature. Beginning in the 1970s, researchers began to realize that perception of these stimuli was important to individuals’ responses to stress and that responses could be physiologic, as Selye described, as well as behavioral in nature. When stress is generated by extreme psychological or envi- ronmental demands, balance is disrupted, and allostatic reactions are initiated to restore balance. The discussion that follows presents the GAS as a reflection of the responses to these diverse stimuli and incorporates much of the knowledge acquired since Selye’s early pioneer- ing work.
The General Adaptation Syndrome and Allostasis Components of the GAS can be subdivided into three unique, largely physiologic stages (Table 2.1). Examining the stages separately is the best way to understand the entire GAS. The specific chemicals involved are among those seen today as integral to the broader view of allostatic responses to stress in the maintenance of homeostasis. All will be discussed later in the chapter.
Alarm Stage The alarm stage has been called the fight-or-flight response, derived from Cannon’s work, because it provides a surge of energy and physical alterations to either evade or confront danger (Fig. 2.1). This stage begins when the hypothalamus, as it monitors the internal and external environment, senses a need to activate the GAS in response to a stimulus, a stressor placing the balance of homeostasis at risk. The stressor might be physical or emotional, positive or negative—arguing with a friend, having an upper respiratory tract infection, running to catch a bus, or winning the lottery. The hypothalamus then secretes corticotropin-releasing hormone (CRH) to activate the sympathetic nervous system (SNS), which in turn also stimulates the adrenal medulla (the inner portion of the adrenal gland) to release the catecholamines— norepinephrine and epinephrine. The increased levels of catecholamines
TABLE 2.1 Stages of the General Adaptation Syndrome
Alarm Resistance Exhaustion
Increased secretion of glucocorticoids and responses
Eventual normalization of glucocorticoid secretion
Increased glucocorticoid secretion followed by significant dysregulation
Increased sympathetic nervous system activity
Eventual normalization of sympathetic nervous system activity
Diseases of adaptation
Increased secretion of epinephrine (and some norepinephrine) from adrenal medulla
Eventual normalization of epinephrine and norepinephrine secretion from adrenal medulla
Loss of resistance to stressor; possible death of organism
Fight-or-flight manifestations
Resolution of fight-or-flight manifestations
Reduced resistance to stressors
Increased resistance (adaptation) to stressor
CHAPTER 2 Homeostasis, Allostasis, and Adaptive Responses to Stressors 15
Hypothalamus senses a stressful stimulus in the internal or external environment
Sympathetic nervous system and adrenal medulla secrete
catecholamines (epinephrine and norepinephrine)
Hypothalamus secretes corticotropin-releasing hormone
Hypothalamus secretes corticotropin-releasing hormone
Anterior pituitary secretes adrenocorticotropic hormone
Adrenal cortex secretes corticosteroids (cortisol
and aldosterone)
FIG 2.1 Steps of Selye’s alarm stage of the general adaptation syndrome. (Modified from McKenry L et al: Mosby’s pharmacology in nursing, ed 22, St Louis, 2006, Mosby.)
Excite receptors
Anterior pituitary
Hypothalamus
STRESSORS (internal or external stimuli)
Adrenocorticotropic hormone
Adrenals
STRESS RESPONSE OF BODY TISSUES Elevation of cardiac output Vasomotor changes Lipolysis Glycogenolysis Insulin suppression Increased respiration Enhanced blood coagulation
Corticosteroids Catecholamines
Sympathetic pathways
STRESS RESPONSE OF BODY TISSUES Gluconeogenesis Protein catabolism Inhibition of glucose uptake Suppression of protein synthesis Stabilization of vascular reactivity Immune response suppression
Inhibit
FIG 2.2 Neuroendocrine interactions in response to a stressor. Receptors are excited by stressful stimuli and relay the information to the hypothalamus. The hypothalamus signals the adrenal cortex (by way of the anterior pituitary) and the sympathetic pathways (by way of the autonomic nervous system). The stress response is then mediated by the catecholamines (i.e., epinephrine and norepinephrine) and by the glucocorticoids (predominantly cortisol).
16 UNIT I Pathophysiologic Processes
Stressors vary in their scope, intensity, and duration. A stressor of less intensity can still have a significant impact if it persists for some time. A glass of water held at arm’s length poses little stress initially, but as minutes turn into hours the stress on the body escalates. Even events associated with happiness may serve as stressors—holidays, childbirth, and vacations. Stressors of all types challenge human adaptation.
The identification of specific stressors in isolation provides little insight into today’s complex global society. A given stressor, depending on its type and duration, may have a particular pattern of hormone and neuropeptide release. Researchers have explored innumerable factors that can indirectly increase or decrease the impact of stressors. It is now generally well accepted that individual personal characteristics, as well as the psychological and circumstantial context of the situation, developmental state of the person, and availability of coping resources, allow for a great deal of variation in the way humans perceive and respond to stressors, and thus the type of stress response produced. The activation of both the sympathetic-adrenal-medullary system response and the HPA axis occurs with a wide variety of physical, mental, and psychosocial stressors. The HPA axis with its glucocorticoid response, however, seems to be notably prominent and dysregulated in cases of depression and posttraumatic stress disorder (PTSD), and is also active when a person’s sense of self is negatively evaluated or the person lacks a sense of control. On the other hand, the sympathetic system is par- ticularly active with anxiety and vigilant states. Furthermore, personality characteristics have been found to be associated with variations in cortisol release and sympathetic-adrenal-medullary system activation in the stress response. Indeed, the effect of personality on the stress response differs with the situational context. An individual’s appraisal of a situation and subsequent reaction is influenced by one’s past experiences and conditioning, cultural influences, social expectations, the availability of social support, and a person’s genetic and epigenetic profile and gender.
Beginning in the early 1970s researchers started to examine gender differences related to stress, and recent research has continued to expand what is known about these differences. For example, one study in the 1980s examined the differences in performance and stress responses of men and women under controlled laboratory conditions. When subjected to a stressful task, there was a 50% to 100% increase in epinephrine release in men, whereas there was little, if any, increase noted in women, who were also found to perform as well as or better than their male counterparts. Women did have an elevation in epinephrine release in a more real-life stress situation (i.e., an academic examination), but these elevations remained well below those of men.
Although some researchers consider these stress response differences between men and women, at least in part, to be related to gender- associated roles and psychological factors, other researchers also attribute these variances to the effects of the sex hormones on the stress response. Data from a recent National Health Interview Survey of adults revealed that in every age group, more women than men reported having serious psychological distress. Women are known to have higher prevalence rates of stress and anxiety-related disorders such as depression and PTSD, whereas men show more substance abuse disorders. Estradiol and estrogen may account for some of the gender differences, as the incidence of affective mood disorders appears to become similar for men and women after the age of 55, after menopause. Estradiol may heighten stress reactivity. Accordingly, stressors and traumatic events may have a greater influence if they occur when menstrual cycle estrogen levels are higher for premenopausal women.
To date, data regarding gender differences in physiologic responses to stressors are conflicting, with some researchers reporting no differences and others indicating higher or lower levels of cortisol or ACTH in
the stress abates. If the stressor is adequately addressed and resolved, the organism returns to its steady-state, having reattained allostatic balance. This process described by Selye is clearly a part of the more recently described process of allostasis. However, with the current understanding of allostasis, it is possible that the organism may have to function at a new baseline steady-state for different physiologic variables, either higher or lower than the previous set-points to achieve adaptation. For instance, the normal partial pressure of carbon dioxide (PCO2) in the blood is 35 to 45 mm Hg, and the normal oxygen saturation is greater than 94% in a healthy individual. For someone with chronic obstructive pulmonary disease, a new normal PCO2 value might be 50 to 60 mm Hg and the oxygen saturation may be 88% to 90%, while still maintaining a homeostatically normal serum pH.
Exhaustion Stage Exhaustion occurs when the body is no longer able to effect a return to homeostasis after prolonged exposure to noxious agents. Selye postulated that when energy resources are completely depleted, death occurs because the organism is no longer able to adapt. He speculated that individuals are born with a given amount of adaptation energy. However, when these adaptive energy stores are depleted, no other resource exists to facilitate recovery. Diseases of adaptation such as hypertension and heart disease occur when the body is continuously taxed by stressors. It is now understood that exhaustion and stress-related disease do not necessarily occur because resources are depleted; instead, they can occur because the actual stress response itself, with all its various biological mediators, can be harmful when repeatedly activated.
Concepts related to allostasis help with understanding the damaging effects of stress. The HPA axis, the sympathetic-adrenal-medullary system, and other systems (including the immune system) work to help the person adapt to and defend against stressors. Wear and tear on the body and on the brain occurs when these body systems are chronically overactivated or underactivated in their attempts to support an allostatic return to homeostasis. The accumulation of all the various mediators produced by the systems is damaging to tissues over time. This wear and tear on the body and brain is called allostatic load. Allostatic load is basically due to the typical demands that are part of daily life as well as unpredictable events. However, with chronic, unremitting, or excessive demands, allostatic load can become an overload. This allostatic overload reflects the “cost” to the body’s organs and tissues for an allostatic response that is excessive or ineffectively regulated and unable to deactivate.
Stressors, Gender and Developmental Influences, and Risk Factors Stressors are agents or conditions that are capable of producing stress and endangering homeostasis. They initiate stress response systems to return to a state of allostatic balance. Every day the human organism encounters stressors. These may be external to the individual (e.g., air pollution, radiation, a motor vehicle accident) or internal (e.g., low blood glucose level or a threat to self-esteem). Common general stressors are physical (e.g., extreme hot or cold air temperature), chemical (e.g., auto exhaust), biological (e.g., bacteria and viruses), social (e.g., overcrowding, difficult relationships, information overload), cultural (e.g., behavioral norms), or psychological (e.g., feelings of hopelessness). Stressors of an emotional or mental origin may be present or anticipated, or may involve the recollection of prior traumatic events. Less commonly noted but extremely powerful stressors are psychosocial experiences over which a person may have little or no personal control. Racial and socioeconomic stressors as well as childhood abuse can produce many of the manifestations of stress described in this chapter.
CHAPTER 2 Homeostasis, Allostasis, and Adaptive Responses to Stressors 17
return to their baselines. However, in cases of allostatic overload, pathologies of a physiologic, psychological, or behavioral nature may result.
Catecholamines: Norepinephrine and Epinephrine Cannon identified that the body’s response to threats resulted in the activation of the adrenal medulla and sympathetic nervous system and therefore the release of the catecholamine neurotransmitters. He deemed this the “sympathico-adrenal system” and believed it was ultimately responsible for what he termed the fight-or-flight reaction. The purpose of the fight-or-flight reaction was the maintenance of the physical and psychological integrity of the organism. The catecholamine neurotransmitters—epinephrine and norepinephrine—play integral roles in allostasis.
Release of catecholamines is initiated through the activation of the hypothalamus gland, a collection of nerve centers situated near the third ventricle close to the base of the brain (see Chapter 39). The cerebral cortex and limbic system (including the hippocampus and amygdala, important for memory and emotions) receive information regarding stressors and determine whether or not something is potentially harmful to the organism (i.e., whether it is stressful). They relay the information to the hypothalamus. (It should be noted, though, that the stress response, depending on the type of stressor, may occur to some extent even in comatose and sedated individuals.) In response to these stressors, the hypothalamus prompts the release of norepinephrine from the sympathetic branch of the autonomic nervous system and locus ceruleus (group of neurons in the brainstem pons) and epinephrine and some norepinephrine from the adrenal medulla. Norepinephrine is released by sympathetic neurons directly into the synaptic clefts near the effector organs and tissues. Additionally, preganglionic fibers from the sympathetic nervous system neurons synapse at the adrenal medulla, stimulating the release of epinephrine and, to a lesser extent, norepi- nephrine. The adrenal catecholamines are released into the bloodstream and travel to effector organs and tissues (endocrine). These circulating adrenal catecholamines have essentially the same effects as sympathetic nerve stimulation and are often seen as an extension of the sympathetic nervous system. The responses on the part of the sympathetic nervous system and the adrenal medulla may differ according to the stimulus. During situations such as exposure to cold temperatures the sympathetic nervous system response with norepinephrine production dominates. Emotional distress or acute hypoglycemia, however, causes a greater response from the adrenal medulla, with increased production of epinephrine.
The effects of catecholamines are profound. They affect cardiovascular function, control fluid volume by activating the renin–angiotensin– aldosterone mechanism, have a role in inflammation and immunity, and affect metabolism; and they are associated with attentiveness, arousal, and memory formation in the central nervous system (CNS). Norepi- nephrine is the primary constrictor of smooth muscle in blood vessels. It therefore regulates blood flow through tissues and its distribution through the organs, as well as, importantly, maintenance of blood pressure. It also reduces gastric secretion, inhibits insulin secretion, and innervates the iris and ciliary muscles of the eyes, thereby dilating the pupils and increasing night and far vision. Epinephrine enhances myocardial contractility and increases heart rate and venous return to the heart, thus increasing cardiac output. It additionally relaxes bronchial smooth muscle, thereby dilating the airways to enable better oxygenation. Epinephrine also increases glycogenolysis, the release of glucose from the liver and inhibits insulin secretion, further elevating blood glucose levels. In the brain, the increased blood flow and availability of glucose lead to augmentations in mental attention and alertness. Epinephrine and norepinephrine also exert immune system effects by influencing
men versus women. The responses seem to depend on the types of stressors assessed. For instance, for adult men, higher cortisol levels were found in studies involving cognitive, harassment, mathematical, and verbal stressors and with social stress testing, whereas higher cortisol levels were found in women compared with men in response to a social interaction stressor. Researchers believe very slight differences in brain architecture due to the effects of sex hormones may result in men and women interpreting and responding to stressors with varied approaches.
Developmental stage of life and age also appear to effect the response to stressors. Children exposed to physical and/or psychosocial maltreat- ment have been shown to have smaller cortices in the prefrontal region of the brain, higher cortisol levels, and elevated levels of inflammation in comparison to other children. Many of these changes persist into adulthood. Additionally, infants whose mothers were depressed or anxious during pregnancy displayed higher cortisol levels in response to stressors. These studies demonstrate the vulnerability to stressors of brain development extending from the prenatal period through adolescence.
Risk factors alone are not inherently stressors, but rather conditions or situations that increase the likelihood of encountering or experiencing a stressor. Using a mobile phone to send text messages while driving is a risk factor for having a motor vehicle accident; running in the dark is a risk factor for falling; and inadequate immunization is a risk factor for certain infectious illnesses. Low SES is a risk factor for exposure to lead and air pollutants in the home and neighborhood. Risk factors also include genetic predisposition and epigenetic factors, as well as adverse early life experiences. By being aware of risk factors, it is possible to decrease the probability of exposure to certain stressors and the associated threat to homeostasis.
KEY POINTS • Stress is a real or perceived threat to the balance of homeostasis. The
stress response is designed to restore balance. • Selye’s general adaptation syndrome (GAS) theory reflects the view of a non-
specific physiologic response to stress. It incorporates three stages indicating the changes in the body’s systemic response: alarm, resistance, and exhaustion.
• Stressors are agents or conditions capable of producing stress. • The body’s response to stressors is meant to be helpful, at least initially,
in terms of mobilizing resources to help manage stressors. • Response to a stressor depends on its magnitude and the meaning that the
stressor has for an individual. Perception of the stressfulness of a stressor depends on genetic constitution, gender, past experiences and conditioning, and social and cultural influences. Stressors may be external or internal. They may be physical, chemical, biological, sociocultural, or psychological.
• Individuals may be more vulnerable to the effects of stressors at certain times including developmental stage of life, the availability of resources, and the effects of other previous or concurrent stressors.
• Risk factors are conditions or situations that increase the likelihood of encountering or experiencing a stressor.
NEUROHORMONAL MEDIATORS OF STRESS AND ADAPTATION Numerous hormones and signaling molecules are involved in the daily maintenance of homeostasis through allostatic processes. These mediators are briefly described here, and their roles in allostasis, adaptation, and disease are discussed in later parts of this chapter. A key idea to the understanding of homeostasis is that once the challenges contributing to allostatic load have been resolved, levels of these chemicals should
18 UNIT I Pathophysiologic Processes
The glucocorticoids are so named because of their significant role in glucose metabolism. The primary glucocorticoid, cortisol, is secreted by the adrenal cortex in response to ACTH from the anterior pituitary. Release of ACTH is itself affected by another releasing hormone, CRH, from the hypothalamus. Negative feedback loops help to maintain cortisol level within a normal range. Cortisol binds to receptors on the hypothalamus and anterior pituitary gland to suppress CRH and ACTH release in a negative feedback loop.
The actions of the HPA axis and catecholamines may synergize or antagonize each other. Catecholamines facilitate the release of ACTH, thereby helping to maintain the function of the HPA axis and release of cortisol. Glucocorticoids promote adrenal medulla synthesis of epinephrine through control of the major enzyme phenylethanolamine N-methyltransferase (PNMT). Glucocorticoids also support the actions of the catecholamines in the maintenance of normal blood pressure and cardiac output. In skeletal muscle, catecholamines antagonize the catabolic glucocorticoid effects by impeding the breakdown of somatic protein. Together, the catecholamines and glucocorticoids facilitate the brain’s development of memory, which is especially important when hazardous circumstances have occurred.
The metabolic effects of cortisol are significant. Cortisol affects protein metabolism. It has an anabolic effect leading to increased rates of protein synthesis in the liver. However, it has a catabolic effect in muscle, lymphoid, and adipose tissues and on skin and bone. This protein breakdown produces increased levels of circulating amino acids. The resulting pool of amino acids from catabolized proteins ensures their availability for the liver. Cortisol then stimulates gluconeogenesis in the liver and a sixfold to tenfold increase in the rate of amino acid conversion to ketoacids and glucose. The catabolism of adipose tissue releases free fatty acids and glycerol that also can be used for gluconeogenesis and to create ketoacids for fuel. Gluconeogenesis ensures an adequate supply of glucose for body tissues in general, but nerve cells have priority. Cortisol may act to preserve available glucose for brain nerve cell use by limiting the uptake and oxidation of glucose by other cells in the body. Cortisol also promotes appetite and food-seeking behaviors.
Glucocorticoids are known for their significant role in the control of the immune response. They suppress the acute-phase response to infection and inflammation, helping to curtail overactivity. This is accomplished by inhibiting the production of select immune cytokines (signaling molecules), by increasing the production of other cytokines, and in some cases by directly inhibiting the proliferation and activation of specific immune system cells. At the same time, when the acute stress of tissue injury or infection occurs, the resulting release of glucocorticoids and catecholamines assists the movement of the necessary immune cells to the affected location. However, with prolonged stress and chronic elevation in the levels of glucocorticoids, desensitization and down- regulation (decrease) of glucocorticoid receptors may occur on some immune cells, eventually resulting in fewer antiinflammatory effects over time. In fact, continued stress can even result in proinflammatory effects. Thus the relationship of the immune system to stress is quite multifaceted, and our understanding of it is evolving.
Aldosterone is the primary mineralocorticoid steroid hormone secreted by the adrenal cortex. Stimulation of the sympathetic nervous system activates the renin–angiotensin system, and the release of aldosterone is the final chemical outcome. The specific stressor of fluid volume depletion also activates the release of renin, similarly initiating the renin–angiotensin system. The primary effect of aldosterone, once bound to receptors in the kidneys’ distal tubules and collecting ducts, is reabsorption of sodium and an increase in the excretion of potassium. Because of osmotic force, water tends to follow sodium; therefore enhanced reabsorption of sodium leads to increased extracellular fluid volume and increased blood pressure. Endogenous glucocorticoids have
the production of cytokines by immune and adipose cells. The effects of the catecholamines are summarized briefly in Table 2.2. For more detail, see Chapter 43.
Adrenocortical Steroids: Cortisol and Aldosterone Among the most versatile hormones in the human body, glucocorticoids have regulatory roles in maintaining fluid volume, metabolism, immunity, inflammatory responses, and brain function (Table 2.3). Glucocorticoids are lipid-soluble hormones, allowing them to pass through cell mem- branes to bind with receptors in the cytosol or nucleus and initiate changes in cellular activities. Practically every body tissue has intracellular glucocorticoid receptors. As opposed to the catecholamines, the onset of their effects is slower, but the duration of action is longer.
TABLE 2.2 Brief Summary of Effects of Catecholamines on Tissues and Organs of the Body
Tissue/Organ Catecholamine Effect
Heart Increases rate Increases speed of impulse conduction Increases contractility
Respiratory tract Relaxes bronchial smooth muscle to dilate airway
Vascular smooth muscle Skin, mesenteric bed, kidneys
Constricts to reduce perfusion
Skeletal muscle, lungs, heart Dilates to increase perfusion Peripheral vasculature Constricts to increase blood pressure Gastrointestinal tract Decreases peristalsis
Contracts sphincters Decreases gastric acid secretion
Eyes Contracts radial muscle to dilate iris and pupil
Relaxes ciliary muscle for far vision Liver Glycogenolysis and gluconeogenesis
for increased glucose levels and thus energy
Central nervous system Promotes arousal, attention, and vigilance
TABLE 2.3 Major Effects of Glucocorticoids in the Stress Response Metabolism Catabolism of muscle, fat, lymphoid tissue,
skin, and bone Liver gluconeogenesis Opposes insulin in transport of glucose
into cells Increased appetite
Fluid balance Sodium and water retention Inflammation and infection Suppressed inflammatory response
Increased neutrophil release Decreased new antibody release Decreased T-lymphocyte production and
function Decreased production of eosinophils,
basophils, and monocytes Support catecholamines Increased epinephrine synthesis
Enhanced vasoconstriction
CHAPTER 2 Homeostasis, Allostasis, and Adaptive Responses to Stressors 19
interacts with numerous neurotransmitters in the brain, counteracting the depressive tendencies often noted with glucocorticoids. Testosterone also appears to have antidepressant and antianxiety effects as it elevates mood. Numerous stressful stimuli, such as illness, surgery, strenuous physical exercise, heart failure, and stressful academic programs, result in significant reductions in circulating testosterone levels. In combination with another hormone, vasopressin, testosterone enhances blood pressure and heart rate reactivity and augments the “fight-or-flight” response. In contrast, the hormone oxytocin (whose impact is modulated by estrogen) and the endogenous opioids are thought to produce a calming effect during times of stress, resulting in the notion that women may have a “tend and befriend” response rather than a “fight-or-flight” response in some situations.
Growth Hormone, Prolactin, and Oxytocin Growth hormone (somatotropin) is released from the anterior pituitary gland and affects protein, lipid, and carbohydrate metabolism. It has anabolic effects, increasing protein synthesis and bone and muscle mass growth. It also increases fat mobilization (lipolysis) while decreasing the rate of carbohydrate utilization by peripheral tissues. Growth hormone is normally secreted in a cyclic basal pattern, primarily at night, and changes with developmental stage. Growth hormone secretion is highest during adolescence and then gradually declines during adult- hood. Serum levels of growth hormone also increase acutely after a variety of intensely stressful physical or psychological stimuli, such as strenuous exercise or extreme fear. Growth hormone appears to enhance immune function. However, continued activation of the stress response eventually results in the decreased secretion of growth hormone, accounting for stunted growth in children experiencing prolonged chronic stress.
Prolactin is similar in structure to growth hormone and is secreted from the anterior pituitary gland in response to stress, sexual activity, pregnancy, and suckling (even in men) and breast feeding. It suppresses ovulation. Numerous tissues have receptors for prolactin in addition to the breast, including the kidneys, liver, and adrenal glands. Lym- phocytes also have prolactin receptors, suggesting a role for prolactin in immune regulation. A significant increase in the level of growth hormone or prolactin tends to require more intense stimuli than the stress that increases the concentrations of catecholamines and glucocorticoids.
Oxytocin is produced during childbirth, lactation, and sexual behavior (in both genders) and has been associated with promoting bonding and social attachment. Oxytocin is thought to moderate the stress response and have a calming effect, with reductions in HPA and sympathetic activation and reduced perceived anxiety. In an intriguing study, researchers found that preteenage girls who spoke with their mothers on the phone immediately after a laboratory social stressor had higher levels of urinary oxytocin and lower levels of salivary cortisol than did those who merely texted their mothers. Hearing the mother’s voice appeared important to the release of the oxytocin and buffered the stress response. Oxytocin also may have some analgesic effects. It is synthesized by the hypothalamus and secreted by the posterior pituitary gland and other brain regions. Oxytocin is believed to have stronger effects in females in comparison to males because of the interaction of estrogen and oxytocin.
Through interactions of the primary stress hormones—catecholamines and glucocorticoids—as well as numerous other mediating influences, the allostatic process needed to sustain the human organism is achieved. In some cases, these stress-related hormones have similar and synergistic effects and in others they work in opposition. This state of counterbalanc- ing helps to facilitate allostasis, ideally returning the human organism back toward homeostasis.
a small amount of mineralocorticoid effect, but the greatest effect on circulating volume is through aldosterone. Additionally, angiotensin II, whose formation stimulates aldosterone release, is a potent vasoconstric- tor. This chemical mediator provides support for the catecholamine- induced increase in blood pressure.
Endorphins, Enkephalins, and Immune Cytokines Stress naturally activates the inhibition of pain through the release of small peptides called endorphins and enkephalins. First discovered in 1975, endorphins and enkephalins are endogenous opioids that are produced within the CNS and released in response to stressors, by certain foods (most notably chocolate), by laughter, and from massage or acupuncture. The term endorphin comes from endogenous and morphine. Like the opiate drug morphine, endorphins raise the pain threshold (reduce pain) and produce sedation and euphoria. During acute stress, the endogenous opioids also may attenuate the stress response, especially activation of the SNS by CRH. Some immune cells (B and T lymphocytes, granulocytes, macrophages, and monocytes) also produce several types of endorphins that are released in response to stressors, CRH, antiinflammatory cytokines, and catecholamines. Opioid recep- tors have been identified on immune cells, and when activated they modulate both immune cell proliferation and immune cell activity. On the other hand, in the presence of acute or chronic stress, activated immune cells (mast cells, neutrophils, macrophages, and T lymphocytes) can release proinflammatory cytokines that enhance pain. Pain is a classic manifestation of the inflammatory response (Chapter 9). Thus the central and peripheral nervous systems and the immune system maintain complex patterns of interactions with pain pathways as part of the allostatic mechanism to return to homeostasis.
Another example of the interaction between stress, the nervous system, and the immune system is interleukin-1 (IL-1), one of the cytokines secreted by macrophages and other immune cells. It is capable of affecting the production of CRH by the hypothalamus. Leukocytes are also capable of producing some of the other hormones, such as ACTH, that are involved in the signaling system. Some researchers propose that stressors of relatively short duration (e.g., less than 2 hours) could augment facets of immune function, including the emigration of immune cells from the lymphoid tissues (e.g., the spleen) to the skin and peripheral components of the vascular system. On the other hand, numerous studies over the years have shown that severe and persistent psychological stress can down-regulate or suppress immune functioning through innumerable and elaborate mechanisms. Immune system suppression caused by severe or persistent stress represents a direct link between stress and illness. Expanded understanding of the interrelationships between the nervous, endocrine, and immune systems holds great promise in the identification of new therapeutic interventions.
Sex Hormones: Estrogen, Testosterone, and Dehydroepiandrosterone As noted previously, women and men often have different stress responses, and this may be partially attributable to the influences of the sex hormones and their interactions with the mediators of allostasis. Excessive stress appears, in general, to inhibit female reproduction and affect premenstrual symptoms. Cortisol exerts inhibiting effects on the female reproductive system by suppressing release of gonadotropin-releasing hormone, luteinizing hormone, estradiol, and progesterone; whereas estradiol normally down-regulates glucocorticoid receptor binding in the brain and alters regulatory feedback control. Androgens, such as testosterone and dehydroepiandrosterone (DHEA), also may inhibit the effects of glucocorticoids. Androgens oppose the catabolic effects of glucocorticoids on bone and the impact of glucocorticoids on lymphoid tissues, inflammatory cytokines, and leukocytes. DHEA
20 UNIT I Pathophysiologic Processes
bend without breaking in the face of environmental or psychological perturbations.”
Because allostasis is a process of attaining and maintaining stability through change that leads to a state of adaptation, the terms adaptation and resilience have been intertwined with allostasis. Resilience is the capacity to “adapt to stress and adversity,” thereby preventing the development of disease and mitigating the effects of allostatic load. It means attaining a positive outcome when encountering adversity. Resilience can be affected by multiple factors, some of which include genetics; epigenetic changes resulting from early life exposure to traumatic events; the availability of social support and coping mechanisms; a sense of optimism and control; prior learning; and lifestyle factors such as physical activity (exercise), diet and nutrition, and adequate sleep. Resilience is influenced by the chemical allostatic mediators that promote adaptation such as cortisol, and some neural proteins such as brain- derived neurotrophic factor (BDNF), which may be necessary for brain plasticity.
Maladaptation, a less frequently used term, refers to ineffective, inadequate, or inappropriate change in response to new or altered circumstances. Coping is another term used and is most often seen as a behavioral adaptive response to a stressor. Coping mechanisms are typically culturally based, and consequently vary with the individual within the parameters of what is acceptable to the given culture. The coping behavior is usually dictated by the specific stressor; thus it fluctuates with the circumstances, but individuals typically embrace a specific repertoire of coping behaviors. These behavioral adaptations allow an individual or a group to withstand successfully the stressful experience or the stress response generated by the experience. A coping strategy can be considered effective or functional if it helps resolve either the situation or the feelings. In some cases, such as exercise, mindfulness meditation, and seeking social support, the coping method can promote health. A coping strategy is considered ineffective or dysfunctional if it does not achieve the desired goal. Coping that achieves unintended goals is considered dysfunctional or maladap- tive. Adaptation may result in the adoption of less-than-desirable coping behaviors, such as excessive eating or alcohol consumption, smoking, or other types of substance abuse and avoidance behaviors. Unfortunately, these dysfunctional coping behaviors can ultimately be damaging to overall health. Smoking and overeating contribute to ath- erosclerosis, the underlying pathophysiology of coronary artery disease and a risk factor for hypertension. Excess weight accumulated through overeating is a contributing factor for type 2 diabetes mellitus and metabolic syndrome. Although coping is customarily interpreted as behavioral adaptation only, the terms coping and adapting often are used interchangeably.
Perception and expectations of the stressor can affect its interpretation, and therefore the behavior evoked by it. Perceptions can be related to uncertainty about the meaning of the stressor. Consider the stressor of undue noise. The “bang” of a car backfiring could also be the sound of a gun being fired. Depending on the environment and circumstances, one or the other etiology would be more expected, dictating different adaptive responses. The term distress describes the experience of perceiv- ing an inability to cope with a physiological or psychological stressor. This distress further activates the release of catecholamines from the adrenal gland medulla and glucocorticoids through the HPA axis, escalating levels of circulating mediators, and may exacerbate existing allostatic load and preexisting pathophysiologic conditions. For instance, the person with asthma who is experiencing an episode of acute shortness of breath is likely to become even more short of breath when discovering an inhaler is not readily available.
Adaptation to a stressor can occur in several ways. Loud noise is a known stressor. Yet people who live close to busy airports often reach
ADAPTATION, COPING, AND ILLNESS
Although much has been learned about the dynamic biological systems and human/environmental interactions involved, stress is personal in that individual stress responses change with time and circumstances. Indeed, the effects of stress on each individual are influenced by genet- ics, SES, environmental context, perception, developmental history, prior susceptibilities, preexisting health status, and individual coping abilities. Clearly, the maintenance of homeostasis requires the human organism to routinely initiate allostatic responses to the stressors of daily life, as well as to the less frequent severe assaults on the integrity of the body and the mind, responsible for allostatic load. Systemically, allostasis may be seen as beginning with some degree of the alarm stage (fight-or-flight activation), and ideally moving to an effective resolution through adaptation, ultimately culminating in a return to homeostasis. The prolonged effects of allostatic overload—the long- term wear-and-tear costs of adaptation efforts—provide a conceptual foundation for examining the long-term consequences of stress on health. What Selye called “diseases of adaptation” are the outcomes of allostatic overload.
Adaptation, Coping, and Resilience Adaptation broadly refers to the biopsychosocial process of adjusting physiology, morphology, and behavior in response to new or altered circumstances, internal and external in origin, in the physical and social environment. Related to adaptation is the term resilience. Resilience is the ability to withstand threats to stability and is a measure of the capacity to adapt to challenges. It has been described as the “ability to
KEY POINTS • Modern views of allostatic maintenance of homeostasis in the face of stress
are primarily derived from an understanding of negative feedback, as well as the roles of the sympathetic nervous system catecholamines and the glucocorticoid cortisol.
• The primary role of the sympathetic nervous system (SNS) is appraisal of a stressful stimulus and release of norepinephrine. Norepinephrine released from sympathetic nerve endings increases heart rate and contractility, constricts blood vessels to decrease blood flow to less essential tissues and organs and raise blood pressure, reduces gastrointestinal motility and gastric acid secretion, dilates the pupils, and inhibits insulin secretion.
• Stress stimulates sympathetic activation of the adrenal medulla to release epinephrine. Epinephrine’s actions are similar to norepinephrine and are particularly important for increasing cardiac performance (increased heart rate, contractility, and cardiac output), promoting the release of glucose from the liver, and enhancing bronchodilation.
• Cortisol, from the adrenal cortex, has widespread effects on numerous tissues that are both synergistic and antagonistic with catecholamines and has an antiinflammatory role.
• Aldosterone promotes fluid volume expansion and increases blood pressure.
• Endorphins and enkephalins are released by the CNS in response to painful stressors, leading to decreased perception of pain and increased sedation and euphoria. Immune cells in the periphery also contribute to pain modulation.
• Immune cells respond to the hormones released by the HPA axis and sympathetic nervous system. They also release cytokines that in turn affect the functioning of these stress systems.
• Sex hormones and differential release of growth hormone, prolactin, and oxytocin produce effects on the stress response that may differ between genders.
CHAPTER 2 Homeostasis, Allostasis, and Adaptive Responses to Stressors 21
pathologies. Not only do catecholamines contribute to the development of atherosclerosis and hypertension, they also increase the risk of developing cardiac dysrhythmias and sudden cardiac death, and even stress-induced cardiomyopathy. They increase platelet activity, resulting in clot formation, and elevate serum lipid levels, significant factors in the pathogenesis of myocardial infarction. A growing body of evidence further suggests that inflammation may mediate a link between stress and cardiovascular disease. Stress has been associated with the production of proinflammatory cytokines such as IL-1, IL-6, and tumor necrosis factor (TNF). These cytokines can trigger the production of C-reactive protein (CRP), a cytokine associated with cardiovascular disease.
The field of psychoneuroimmunology has provided substantive evidence of the roles of the stress hormones in the brain. In the central nervous system, specifically the brain, the mediators of adaptation facilitate learning, memory, and neuroendocrine and autonomic regula- tion. This heightened memory, at least in the short term, allows the individual to be more aware of the potential stressor in the future. Chronic overactivity or underactivity, however, may result in atrophy of some nerve cells (especially in the hippocampus), impairing memory, whereas others have been found to hypertrophy (especially in the amygdala) and undergo remodeling, resulting in an increase in fear, anxiety, and other mood disorders. In essence, allostatic overload results in altered and impaired cognitive function. Some evidence suggests that inflammation associated with allostatic overload may play a role in learning and memory impairment. For instance, elevated levels of proinflammatory cytokines, such as IL-1 and IL-6, markers of
a point at which they barely notice the noise of airplanes flying over their homes. They become habituated to the stressor (loud noise). One important way to habituate to a stressor is to manipulate, or “train,” the hypothalamus to react less forcefully to a perceived threat or stressor. Repeatedly ignoring a specific stressor prevents the inappropriate trig- gering of the GAS. The result is a more acceptable level of stress response. Techniques that accomplish this desensitization change the predominant brain waves of the individual from beta to alpha waves, which are slower and more normal. Biofeedback, visualization, and meditation are examples of therapies that use this principle. Practicing these techniques for 20 to 30 minutes daily can enhance the ability to alter how a stressor is perceived and modulate the stress response. These techniques have documented efficacy in enhancing immune function. Desensitization methods have been found to be beneficial for common stress-related conditions, such as migraine headache, chronic back pain, and hypertension.
Allostatic Overload and Illness When adaptation mechanisms are inadequate or the total amount of allostatic load is excessive, overwhelming allostasis capacities, the result is allostatic overload. There are several ways in which allostatic load can accumulate in an individual: (1) repeated exposures to multiple stressors, (2) inability to habituate or adapt to the stressor, (3) unneces- sarily prolonged stress response or stress response that continues after the stressor is removed, and (4) inadequate response to the stressor that causes other stress response mediators to attempt to compensate. Homeostasis, the steady-state that previously existed, cannot be attained. Instead, allostatic overload occurs, and the resulting maladaptation can be reflected in a range of pathophysiologic states that span the traditional boundaries of health care, from psychiatric and endocrine disorders to inflammatory disease.
Hair loss, emotional tension, burnout, mouth sores, insomnia, asthma, heart palpitations, neuromuscular movement disorders (tics), tension headaches, muscle contraction backaches, digestive disorders, and irritable bladder are just a few of the common disorders that can be caused by or worsened by stress. Reproductive disorders such as menstrual irregularity in women and male impotence also have been linked with the effects of allostatic overload. Box 2.2 summarizes some of the physiologic and psychological effects of excessive stress. Fig. 2.3 depicts the multiple body organs and systems in which the effects of insufficient or overactive stress responses may be seen.
The chemical mediators of stress have a strong physiologic basis for the role they play in contributing to illness. Cortisol being released from the adrenal cortex supports Selye’s stage of resistance or adaptation, but may also be accountable for pathologic changes. The same can be said of the catecholamines and the other chemical mediators (e.g., immune cytokines). Because these bloodborne chemicals have such broad effects systemically, the impact of excessive or inadequate amounts is understandably wide reaching. In some cases, the relationships have been well substantiated by research; in others, they are hypothesized based upon knowledge of the effects of these chemicals.
The relationship between excessive catecholamine levels and what historically have been called “stress-related” illnesses has often been associated with cardiovascular pathologies such as hypertension, stroke, and myocardial infarction. Abdominal fat cells are well supplied with cortisol receptors, and excessive secretion of cortisol results in the collection of fat in this area. When this fat is released into the bloodstream, the resulting increase in the levels of circulating free fatty acids plays a role in cardiovascular risk. Additionally, repeated or prolonged elevation of blood pressure, especially in combination with the metabolic effects of elevated cortisol and catecholamine levels, promotes the development of atherosclerosis and, ultimately, many cardiovascular
Physical Indicators Elevated blood pressure Increased muscle tension Elevated pulse rate Increased respiration Sweaty palms Cold extremities (hands and feet) Fatigue Tension headache Upset stomach: nausea, vomiting, diarrhea Change in appetite Change in weight Increased blood catecholamine level Hyperglycemia Restlessness Insomnia
Behavioral and Emotional Indicators Anxiety (nonspecific fears) Depression Increased use of mind-altering substances (e.g., alcohol, chemical substances) Change in eating, sleeping, or activity pattern Mental exhaustion Feelings of inadequacy; loss of self-esteem Increased irritability Loss of motivation Decreased productivity Inability to make good judgments Inability to concentrate Increased absenteeism and illness Increased proneness to accidents
BOX 2.2 Physical and Behavioral Indicators of High Stress
22 UNIT I Pathophysiologic Processes
transport into the cells (insulin resistance), the pathophysiologic basis for type 2 diabetes. Elevated cortisol levels also directly increase insulin resistance. Additionally, obesity is associated with the production of proinflammatory cytokines such as TNF-α, IL-1, and IL-6, which also have been connected to diabetes.
In acute stress, activation of the immune system allows for the coordinated defense of the body from damage. At first, leukocytosis and immune function, including phagocytosis and antibody production, may be enhanced to protect the body from foreign invaders (e.g., bacteria and viruses), but then is followed quickly by immunosuppression. Chronic activation of the stress mediators produces immunosuppression and increases the risk of infection and has been implicated in the development of autoimmune diseases and some cancers. Such overactiva- tion also prolongs existing infections and the development of secondary infections. Research supports the hypothesis that physical and emotional stress and dysfunctional coping mechanisms impair both antibody and T-cell–mediated responses to viruses and antiviral and antibacterial vaccines. Stressors of more than 1 month’s duration have been found to be the greatest predictors of the development of colds. Cumulated evidence, in both human and animal models, supports the premise that stress-induced dysregulation of the cellular and humoral arms of the immune system increases risk of infectious disease. Stress has been found by numerous studies to accelerate the progression of HIV infection.
Immune dysregulation can also include the excessive production of cytokines that promote the inflammatory response. Both physical and psychological stressors have been found to accomplish this, sensitizing the overall inflammatory response so that subsequent activations are markedly increased. Early life stress such as low SES and childhood
inflammation associated with stress, have been linked with memory loss, cognitive decline, and the development of Alzheimer disease. Emerging research indicates that males and females may show different patterns of brain structure remodeling in response to chronic stress. Estrogen may exert neuroprotective effects.
Stress hormones have been found to be elevated and dysregulated in major depressive illness. Increased cortisol secretion, decreased testosterone levels in men and women, and increased levels of growth hormone and proinflammatory cytokines have been documented in major depressive illness. Depression is common with chronic diseases such as fibromyalgia and multiple sclerosis, and the elevated cortisol levels associated with allostatic overload may be significant to the progression of some of the diseases. Another condition, PTSD, also appears to be associated with heightened sympathetic-adrenal-medullary responses as well as alterations in the HPA axis. Evidence suggests cortisol and norepinephrine help promote long-term memory consolidation and retention of traumatic and fearful events; however, administration of beta-blockers such as propranolol that interfere with the effects of norepinephrine has been shown to reduce the incidence of PTSD symptoms in many cases.
Allostatic mediators activate and maintain energy reserves, which are initially meant to be helpful in managing stressors. Nonetheless, obesity (especially abdominal obesity), diabetes, atherosclerosis, metabolic syndrome, osteoporosis and bone demineralization, and other diseases, as well as accelerated aging, are associated with their chronic activation. The food-seeking behavior initiated by cortisol is beneficial in the short term, but when cortisol levels are increased by chronic stress of either a physiologic or a psychological origin, this adaptation gone awry results in obesity. Obesity is a risk factor for decreased effectiveness of glucose
NERVOUS SYSTEM Neuropsychological manifestations
Nervous tic Fatigue
Loss of motivation Anxiety
Overeating Depression
Insomnia
INTEGUMENTARY SYSTEM
Eczema Psoriasis Neurodermatitis Acne Hair loss
GASTROINTESTINAL SYSTEM
Gastritis Irritable bowel syndrome
Diarrhea Nausea and vomiting
Ulcerative colitis
GENITOURINARY SYSTEM
Diuresis Irritable bladder
Sexual dysfunction Menstrual irregularity
CARDIOVASCULAR SYSTEM
Disturbances of heart rate and rhythm Hypertension
Stroke Coronary artery disease
MUSCULOSKELETAL SYSTEM
Tension headache Muscle contraction backache Rheumatoid arthritis Inflammatory diseases of connective tissue
IMMUNE SYSTEM
Immunodeficiency Immunosuppression Autoimmune disease
ENDOCRINE SYSTEM
Hyperglycemia Diabetes mellitus
RESPIRATORY SYSTEM
Increased respiration Asthma Hay fever
FIG 2.3 Effects of allostatic overload on body organs and systems.
CHAPTER 2 Homeostasis, Allostasis, and Adaptive Responses to Stressors 23
and anxiety and several other diseases (e.g., cardiovascular disease, diabetes, and cancer) also have been associated with shortened telomeres. This research suggests a mechanism by which stress may contribute to cell death and disease, because telomere shortening may be connected to some extent to elevated cortisol, catecholamine, and inflammatory cytokine levels produced as part of the stress response. On the other hand, telomerase is an enzyme capable of lengthening telomeres and is inversely related to perceptions of stress. In one study, 30 men and women took part in a 3-month meditation retreat program aimed at reducing psychological distress. By the end of the study period, the participants had significantly higher telomerase activity levels in comparison to wait-list controls. In another study, adherence to com- prehensive lifestyle changes involving stress management, aerobic exercise, nutrition, and social support were associated with greater telomere length at 5 years after study initiation in men with prostate cancer in comparison to a control group. More research is needed to understand the relationships among telomeres, telomerase, stress, stress-related diseases, and coping methods, as well as aging and longevity.
abuse and neglect have been associated with signs of inflammation, including elevated levels of IL-6, TNF-α, and CRP later in adulthood and older age. Inflammation may partially explain the relationship between childhood stress and some later-life illness conditions, including cardiovascular disease, type 2 diabetes, and some forms of cancers. Many other diseases also are associated with chronic inflammation: Alzheimer disease, chronic inflammatory bowel disease, depression, PTSD, osteoporosis, rheumatoid arthritis, asthma, and periodontal disease, to name but a few. Wound healing also is impaired by multiple mediators of stress in excessive amounts.
Epigenetics is emerging as a new area of study, with epigenetic changes providing a link between some types of stressors and disease pathologies. Epigenetics refers to modifications in gene activity that do not entail altering the basic DNA sequence. These modifications may involve chemical tags or markers on the DNA that can turn a gene on or off. Examples of the mechanisms include DNA methylation, histone modification, and microribonucleic acid (miRNA) gene expression regulation. For instance, adverse childhood events have been associated with DNA methylation in adults and consequent production of IL-6. It is possible that epigenetic changes acquired as a result of early life adverse experiences such as famine or poor maternal attachment and care may make the person susceptible later as an adult to respond to stressors in ways that are adaptive in a threatening environment but maladaptive in a more friendly situation. As an example, a person prone to responding to stressors with a heightened sense of vigilance and arousal may find this response helpful in the dangerous situation, but it may lead to anxiety and depression when repeatedly used in a safer environment.
Another new area of stress research attracting attention pertains to telomeres and telomerase. Telomeres are the tail ends of chromosomes that get shaved down with repeated cell division; and thus older cells tend to have shorter telomeres than younger ones. These cells with shortened telomeres are more susceptible to death. Telomeres are both markers and mechanisms of biological aging and may serve as a means of measuring a person’s total accumulated exposure to stressors. Chronic stress related to caregiving, lower SES, and number of childhood adversities has been linked with shorter telomere length. Depression
KEY POINTS • Adaptation, or allostasis, is a network of biopsychosocial processes of
responding to a stressor with the goal of reestablishing homeostasis. Coping mechanisms are usually seen as behavioral adaptations to stress, but are often used interchangeably with adaptation; they can contribute to resilience.
• The wear-and-tear effect of adaptation on the body and mind is the allostatic load. It occurs as mediators produced by the stress response systems accumulate and contribute to tissue damage over time. Allostatic load reflects the cumulative costs of adaptation.
• A number of disorders are thought to be related to excessive stress or inappropriate stress responses—allostatic overload. These are a result of the dysregulation and excessive use of the mechanisms and mediators involved in the stress response.
Homeostasis is the state of balance of the body’s biopsychosocial systems. Stressors evoke a stress response and initiate adaptive efforts, an allostatic process, designed to return to this steady-state. The response to stressors is affected by a wide variety of factors. Recently there has been an increase in knowledge regarding the complex interactions of the HPA axis, the SNS, the immune system, genetics and epigenetics, and the chemical mediators of the stress response.
Excessive or prolonged stress and overactivity or underactivity of associated chemical mediators produce disproportionate responses in the body, a condition of allostatic overload known as stress-induced illness. As humans strive to adapt to the constant changes of modern life, the study of stress and stress-related disease has become vital to public health and contributes to the development of increasingly sophisticated models of health and illness.
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26
3
Cell Structure and Function Jacquelyn L. Banasik and Brianne N. Banasik
UNIT II Cellular Function
K E Y Q U E S T I O N S • What are the major cellular structures and their functions? • How do cells acquire and use energy? • How are substances transported across the cell membrane? • Why is it that some cells can produce action potentials and others
cannot?
• How do cells in a multicellular organism communicate with one another?
• What are the normal mechanisms of cellular growth control?
C H A P T E R O U T L I N E Plasma Membrane, 27
Membrane Structure, 27
Lipid Bilayer, 27
Membrane Proteins, 29
Organization of Cellular Compartments, 30 Cytoskeleton, 30
Nucleus, 30
Endoplasmic Reticulum, 31
Golgi Apparatus, 32
Lysosomes and Peroxisomes, 33
Mitochondria, 34
Cellular Metabolism, 34 Glycolysis, 36
Citric Acid Cycle, 36
Oxidative Phosphorylation, 36
Functions of the Plasma Membrane, 39 Membrane Transport of Macromolecules, 39
Endocytosis and Exocytosis, 39
Membrane Transport of Small Molecules, 40
Active Transport Pumps, 41 Membrane Transport Carriers, 42 Membrane Channel Proteins, 44
Cellular Membrane Potentials, 45
Resting Membrane Potential, 45 Action Potential, 45
Intercellular Communication and Growth, 48 Cell Signaling Strategies, 48
Cell Surface Receptor–Mediated Responses, 49
Intracellular Receptor–Mediated Responses, 53
Regulation of Cellular Growth and Proliferation, 54
http://evolve.elsevier.com/Banasik/pathophysiology/
The cell is the fundamental unit of life. As more diseases are understood on the cellular and molecular levels, it appears that the cell is also the fundamental unit of disease. Detailed knowledge of cellular dysfunction has led to the development of more specific and appropriate prevention and treatment modalities for many disease processes. Thus an understand- ing of cellular mechanisms is essential for health care providers and fundamental to the discussions of pathophysiologic processes presented throughout the remainder of this text.
Cells are complex, membrane-bound units packed with a multitude of chemicals and macromolecules. They are able to replicate and thus form new cells and organisms. The first cells on Earth probably arose about 3.5 billion years ago. Over billions of years, the self-replicating molecules now known as deoxyribonucleic acid (DNA) and ribonucleic acid (RNA) are believed to have evolved by chance association and natural selection. Development of the cell membrane created a closed compartment that provided a selective advantage for the cell and
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 3 Cell Structure and Function 27
regulation of cells. The cell membrane is a sensor of signals and enables the cell to respond and adapt to changes in its environment.
According to the fluid mosaic model first described in the 1960s by Singer and Nicolson, the plasma membrane is a dynamic assembly of lipid and protein molecules. Most of the lipids and proteins move about rapidly in the fluid structure of the membrane. As shown in Fig. 3.2, the lipid molecules are arranged in a double layer, or lipid bilayer, which is highly impermeable to most water-soluble molecules, including ions, glucose, and proteins. A variety of proteins embedded, or “dissolved,” in the lipid bilayer perform most of the membrane’s functions. Some membrane proteins are involved in the transport of specific molecules into and out of the cell; others function as enzymes or respond to external signals; and some serve as structural links that connect the plasma membrane to adjacent cells. The lipid structure of the plasma membrane is similar to the structure of the membrane that surrounds the cell’s organelles (e.g., nucleus, mitochondria, endoplasmic reticulum, Golgi apparatus, lysosomes).
Lipid Bilayer The bilayer structure of all biological membranes is related to the special properties of lipid molecules that cause them to spontaneously assemble into bilayers. The three major types of membrane lipids are cholesterol, phospholipids, and glycolipids. All three have a molecular structure that is amphiphilic; that is, they have a hydrophilic (water-loving) charged or polar end and a hydrophobic (water-fearing) nonpolar end. This amphiphilic nature causes the lipids to form bilayers in aqueous solution.
accomplished the first separation of life (inside) from nonlife (outside). In this protected environment, the early cells continued to evolve and develop. Today, a large number of different cell types exist, but many of the basic biochemical mechanisms of these cells are remarkably similar. Scientists believe that all modern cells, from bacteria to human neurons, evolved from common primordial cells. It is therefore possible to unlock many of the secrets of human cellular physiology by studying easily grown and rapidly proliferating cells, such as yeasts and bacteria.
Much of our knowledge of cell physiology has derived from study of the class of cells known as prokaryotic, which includes bacteria and archaea. Prokaryotic cells are smaller and simpler than eukaryotic cells, having no defined nucleus or cytoplasmic organelles. Fungi, plants, and animals belong to the eukaryotic class of cells, which possess a membrane- bound nucleus and a host of cytoplasmic organelles (Fig. 3.1). In this chapter, the essentials of eukaryotic cell structure, physiology, metabolism, and communication are reviewed.
PLASMA MEMBRANE Membrane Structure All cells are enclosed by a barrier composed primarily of lipid and protein called the plasma membrane (plasmalemma). This cell membrane is a highly selective filter that shields internal cell contents from the external environment. The plasma membrane performs a variety of functions, including transport of nutrients and waste products; generation of membrane potentials; and recognition, communication, and growth
Secretory granule
Golgi apparatus
Plasma membrane
Lysosome
Mitochondrion
Centrioles
Microtubules
Rough endoplasmic reticulum
Smooth endoplasmic reticulum
Nucleus
Nucleolus
Ribosomes
FIG 3.1 Structure of a typical eukaryotic cell showing intracellular organelles.
28 UNIT II Cellular Function
lipids with bent, unsaturated hydrocarbon tails tend to increase fluidity. About 50% of the lipid in eukaryotic cell membranes is cholesterol, which serves to decrease membrane permeability and prevent leakage of small water-soluble molecules. In addition to affecting fluidity by the degree of saturation of tail groups, the phospholipids that inhabit the membrane differ in the size, shape, and charge of the polar head groups. Fig. 3.5 shows the structures of the four most prevalent membrane phospholipids: phosphatidylethanolamine, phosphatidylserine, phos- phatidylcholine, and sphingomyelin. Some membrane-bound proteins require specific phospholipid head groups to function properly. Some lipids—sphingolipids and cholesterol in particular—may bind together transiently to form rafts in the sea of moving lipids. These rafts may surround and help organize membrane proteins into functional units. For example, a membrane receptor and its intracellular target proteins may associate together in a raft to facilitate transfer of information across the membrane.
Glycolipids contain one or more sugar (i.e., carbohydrate) molecules at the polar head region. Glycolipids and glycoproteins are found only in the outer half of the lipid bilayer, with the sugar groups exposed at the cell surface (Fig. 3.6). Membrane glycolipids are involved in cell recognition and cell-to-cell interactions.
A typical phospholipid molecule is shown in Fig. 3.3. The hydrophobic nonpolar tails tend to associate with other hydrophobic nonpolar tail groups to avoid association with polar water molecules. The hydrophilic polar head groups preferentially interact with the surrounding aqueous environment. A bilayer, with tails sandwiched in the middle, allows both portions of the lipid molecules to be chemically “satisfied.” In addition, the lipid bilayers tend to close on themselves, forming sealed, spherical compartments (Fig. 3.4). If the membrane is punctured or torn, it will spontaneously reseal itself to eliminate contact of the hydrophobic tails with water.
For the most part, individual lipid and protein molecules can diffuse freely and rapidly within the plane of the bilayer. The degree of membrane fluidity depends on the lipid composition. Saturated lipids have straight tails that can pack together and tend to stiffen the membrane, whereas
FIG 3.2 Section of the cell membrane showing the lipid bilayer structure and integral membrane proteins.
Hydrophilic head
Hydrophobic tail
H H H
H HC C C
O
O O
C O
O
CH2
CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH3
CH2 CH3
CH3 CH3
P
N+
OO–
C O
CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH2 CH3
FIG 3.3 Schematic drawing of a typical membrane phospholipid molecule showing the amphiphilic nature of the structure.
Water
Water
FIG 3.4 The amphiphilic nature of membrane lipids results in bilayer structures that tend to form spheres.
CHAPTER 3 Cell Structure and Function 29
associate with polar lipid head groups. The three-dimensional structure of many membrane proteins is complex, with numerous twists and turns through the lipid bilayer (Fig. 3.8).
The type of membrane proteins in a particular cell depends on the cell’s primary functions. For example, a kidney tubule cell has a large proportion of transmembrane proteins, which are needed to perform the kidney’s function of electrolyte and nutrient reabsorption. In contrast, the human red blood cell (RBC) contains mainly peripheral proteins attached to the inner surface of the membrane. One of these proteins, spectrin, has a long, thin, flexible, rodlike shape that forms a supportive meshwork, or cytoskeleton, for the cell. It is this cytoskeleton that enables the RBC to withstand the membrane stress of being forced through small capillaries.
Although proteins and lipids are generally free to move within the plane of the cell membrane, many cells are able to confine certain proteins to specific areas. Using the example of the kidney tubule cell again, it is important for the cell to keep transport proteins on its luminal side to reabsorb filtered molecules (Fig. 3.9). This segregation of particular proteins is accomplished primarily by intercellular con- nections called tight junctions, which connect neighboring cells and function like a fence to confine proteins to an area of the membrane. Membrane proteins also can be immobilized by tethering them to cytoskeleton or extracellular matrix structures.
Membrane Proteins Approximately 50% of the mass of a typical cell membrane is composed of protein. The specific types of membrane proteins vary according to cell type and environmental conditions. Some membrane proteins, called transmembrane proteins, extend across the membrane bilayer and are in contact with both the extracellular and the intracellular fluids. Transmembrane proteins serve a variety of functions, including transport of charged and polar molecules into and out of cells and transduction of extracellular signals into intracellular messages. Other peripheral membrane proteins are less tightly anchored to the membrane. The common structural orientations of membrane proteins are shown in Fig. 3.7. The amino acid structure of membrane proteins determines the way they are arranged in the membrane. Nonpolar amino acids tend to inhabit the hydrophobic middle of the membrane, whereas charged and polar amino acids protrude into the aqueous fluid or
O
P O
+NH3 +NH3
CH2
CH2
CH2
O–
CH2 CH
O
C
O
O C
O
O
F a tt y
a ci
d
F a tt y
a ci
d
O
C
P O
CH2
CH2
O–
COO–
CH2 CH
O
C
O
H
O C
O
O
F a tt y
a ci
d
F a tt y
a ci
d
O
P O
CH2
CH2
CH2
O–
CH2 CH
O
C
O
O C
O
O
F a tt y
a ci
d
F a tt y
a ci
d
CH2 CH
OH
CH
CH
CH
C
NH
O
F a tt y
ch a in
F a tt y
a ci
d t a il
O
P O
CH2
O–
O
Phosphatidylethanolamine Phosphatidylcholine Phosphatidylserine Sphingomyelin
CH3 CH3 N
CH3
+
CH2
CH3 CH3 N
CH3
+
FIG 3.5 Chemical structures of the four most common membrane phospholipids.
Extracellular fluid
Intracellular fluid
Sugar molecules
Lipid bilayer
Glycoproteins
FIG 3.6 Portion of the cell membrane showing orientation of membrane glycoproteins toward the outer surface of the cell.
KEY POINTS • The plasma membrane is composed of a lipid bilayer that is impermeable
to most water-soluble molecules, including ions, glucose, and amino acids, but is permeable to lipid-soluble substances, such as oxygen and steroid hormones.
• Proteins embedded in the lipid bilayer execute most of the membrane’s functions, including transport and signal transduction.
30 UNIT II Cellular Function
three main groups of cytoskeletal filaments just described, a large number of accessory proteins are essential for cytoskeletal function. For example, the accessory protein myosin is needed to bind with actin to achieve motor functions. Different accessory proteins are present in different cell types.
Nucleus The largest cytoplasmic organelle is the nucleus, which contains the genetic information for the cell in the form of DNA. The human genome contains nearly 20,000 genes that code for proteins, representing less than 1.3% of the total DNA structure composed of more than 6 billion base pairs. The nuclear contents are enclosed and protected by the nuclear envelope, which consists of two concentric membranes. The inner membrane forms an unbroken sphere around the DNA and contains protein-binding sites that help to organize the chromosomes inside. The outer nuclear membrane is continuous with the endoplasmic reticulum (ER) (see next section) and closely resembles it in structure and function (Fig. 3.11). The nucleus contains many proteins that help mediate its functions of genetic control and inheritance. These proteins, including histones, polymerases, and regulatory proteins, are manufac- tured in the cytosol and transported to the nucleus through holes in the membrane called nuclear pores. The nuclear pores are selective about which molecules are allowed access to the nuclear compartment, and in this way they protect the genetic material from enzymes and other molecules in the cytoplasm. The nuclear pores also mediate the export of products such as RNA and ribosomes that are synthesized in the nucleus but function in the cytosol. Ribosomes are manufactured in a specialized portion of the nucleus called the nucleolus. Nuclear pores are complexes of proteins that span across both the inner and the outer nuclear membrane, creating a pathway between the cytoplasm and the nuclear lamina (see Fig. 3.11).
A major function of the nucleus is to protect and preserve genetic information so that it can be replicated exactly and passed on during cell division. However, the nucleus is continuously functioning even when the cell is not actively dividing. The nuclear DNA controls the production of cellular enzymes, membrane receptors, structural proteins,
ORGANIZATION OF CELLULAR COMPARTMENTS Cytoskeleton Eukaryotic cells have a variety of internal compartments, or organelles, that are membrane bound and carry out distinct cellular functions. The cell’s organelles are not free to float around haphazardly in the cytoplasmic “soup”; rather, they are elaborately organized by a protein network called the cytoskeleton (Fig. 3.10). The cytoskeleton maintains the cell’s shape, allows cell movement, and directs the trafficking of substances within the cell. Three principal types of protein filaments make up the cytoskeleton: actin filaments, microtubules, and intermediate filaments.
All three types of filaments consist of small proteins that can assemble (polymerize) into filaments of varying length. The filament structures are dynamic and can be rapidly disassembled and reassembled according to the changing needs of the cell. Actin filaments play a pivotal role in cell movement. As one might expect, muscle cells are packed with actin filaments, which allow the cell to perform its primary function of contraction. However, nonmuscle cells also possess actin filaments that are important for complex movements of the cell membrane, such as cell crawling and phagocytosis. Such movements of the cell membrane are mediated by dense networks of actin filaments that cluster just beneath the plasma membrane and interact with specific proteins embedded in it. Actin and some of the other cytoskeletal proteins make specific contacts with and through the plasma membrane and are involved in information transfer from the extracellular environment to signaling cascades within the cell.
Organization of the cytoplasm and its organelles is achieved primarily by microtubules. In animal cells, microtubules originate at the cell center, or centrosome, near the nucleus and radiate out toward the cell perimeter in fine lacelike threads. Microtubules guide the orderly transport of organelles and vesicles in the cytoplasm, as well as the equal distribution of chromosomes during cell division. Intermediate filaments, so named because their size is between that of microtubules and actin filaments, are strong, ropelike, fibrous proteins. A variety of intermediate filaments that differ from tissue to tissue have been identified. In addition to the
Extracellular fluid
Intracellular fluid
C
D
B
P P
A
FIG 3.7 Structural orientation of some proteins in the cell membrane. A, Membrane-associated protein with noncovalent attachment to plasma lipids. B, Membrane protein with noncovalent attachment to another membrane protein. C, Transmembrane protein extending through the lipid bilayer. D, Covalently attached peripheral membrane protein.
CHAPTER 3 Cell Structure and Function 31
gather the chromosomes and then fuse together to form a new nuclear membrane. Nuclear proteins and pore structures are then recruited back to their normal nuclear locations.
Endoplasmic Reticulum The ER is a membrane network that extends throughout the cytoplasm and is present in all eukaryotic cells (Fig. 3.12). The ER is thought to have a single continuous membrane that separates the lumen of the ER from the cytosol. The ER plays a central role in the synthesis of membrane components, including proteins and lipids, for the plasma membrane and cellular organelles, as well as in the synthesis of products to be secreted from the cell. The ER is divided into rough and smooth types based on its appearance under the electron microscope. The rough ER is coated with ribosomes along its outer surface. Ribosomes are complexes of protein and RNA that are formed in the nucleus and transported to the cytoplasm. Their primary function is the synthesis of proteins (see Chapter 5). Depending on the destination of the protein to be created, ribosomes may float free in the cytosol or may bind to the ER membrane. Proteins synthesized by free-floating ribosomes are released within the cytosol of the cell. Proteins to be transported into the ER have a special sequence of amino acids that directs the ribosome responsible for its synthesis to the ER membrane. Special proteins called signal recognition particles bind to the leading sequence of the protein and then bind to a receptor on the ER membrane. As the ribosome adds amino acids to the growing protein chain, it is pushed into the lumen of the ER through a pore in the ER membrane called a translocon. After being processed in the ER and Golgi apparatus, the protein is
FIG 3.8 Transmembrane proteins have complex folded structures, often with several twists and turns through the membrane. Cytochrome C oxidase. (From The European Bioinformatics Institute. http://www.ebi.ac.uk/. March 20, 2017.)
Kidney tubule
Transport proteins
Tubule epithelial cells
Tight junctions
N N
N N N
FIG 3.9 Transport proteins may be confined to a particular portion of the cell membrane by tight junctions. Segregation of transport proteins is important for the absorptive functions of the kidney epithelial cells. N, Nucleus.
and other proteins that define the cell’s type and behavior. (The structure and function of DNA are discussed in Chapter 5.)
During mitosis, the complex structure of the nuclear membrane is retracted into the endoplasmic reticulum membrane. After cell division is complete, pieces of nuclear membrane reemerge to surround and
32 UNIT II Cellular Function
Golgi Apparatus The Golgi apparatus, or Golgi complex, is composed of a stack of smooth membrane-bound compartments resembling a stack of hollow plates or pita breads (see Fig. 3.12). These compartments, or cisternae, are organized in a series of at least three processing compartments. The first compartment (cis face) lies next to the ER and receives newly synthesized proteins and lipids by way of ER transport vesicles. These transport vesicles are outgrowths that bud off from the ER membrane and diffuse to the Golgi, where they bind and become part of the Golgi apparatus membrane. The proteins and lipids then move through the middle compartment (medial) to the final compartment (trans face), where they depart for their final destination. As the lipid and protein molecules pass through the sequence of Golgi compartments, they are modified by enzymes that attach or rearrange carbohydrate molecules. After specific arrangement of these carbohydrates has occurred, the lipids and proteins are packaged into Golgi transport vesicles (secretory vesicles). The particular configuration of carbohydrate molecules on the lipid or protein is believed to serve as an “address label,” direct- ing them to the correct destination within the cell. Golgi vesicles transport their contents primarily to the plasma membrane and to lysosomes.
eventually transported to the appropriate organelle or secreted at the cell surface. Free-floating and rough ER ribosomes are identical and interchangeable; their location depends on the amino acid structure of the protein they are producing at the time.
Regions of ER that lack ribosomes are called smooth ER. The smooth ER is involved in lipid metabolism. Most cells have very little smooth ER, but cells specializing in the production of steroid hormones or lipoproteins may have significant amounts of smooth ER. For example, the hepatocyte (liver cell) has abundant smooth ER–containing enzymes (P450) responsible for the manufacture of lipoproteins as well as the detoxification of harmful lipid-soluble compounds, such as alcohol. The cellular smooth ER can double in surface area within a few days if large quantities of drugs or toxins enter the circulation. Cells in the adrenal cortex and gonads that produce steroid hormones also have abundant smooth ER. In addition to synthetic functions, the ER sequesters calcium ions by pumping them from the cytoplasm. In response to specific signals, the ER releases calcium ions as part of important second-messenger cascades. Muscle cells have extensive smooth ER (sarcoplasmic reticulum) dedicated to the sequestration of calcium. When the cell is stimulated, the sarcoplasmic reticulum releases the calcium ions needed to accomplish muscle contraction.
A
MICROFILAMENT
7 nm
Protein molecule
B
10 nm
Protein molecule
INTERMEDIATE FILAMENT
C
Protein subunit
25 nm
MICROTUBULE
FIG 3.10 Schematic and micrographs of three major types of cytoskeletal proteins. A, Microfilaments shown are composed of actin proteins. B, Intermediate filaments are a large group of various types of proteins. C, Microtubules. (From Patton KT, Thibodeau GA: Anatomy & physiology, ed 9, St. Louis, 2016, Mosby, p. 89. Micrographs from Pollard T, Earnshaw W: Cell biology, revised reprint, international edition, Philadelphia, 2004, Saunders.)
CHAPTER 3 Cell Structure and Function 33
fusing with a lysosome. The final products of lysosomal digestion are simple molecules, such as amino acids, fatty acids, and carbohydrates, which can be used by the cell or secreted as cellular waste at the cell surface.
Discovery of the mechanism for sorting and transport of lysosomal enzymes was aided by studying patients suffering from lysosomal storage diseases. Patients with I-cell (inclusion cell) disease, for example, accumulate large amounts of debris in lysosomes, which appear as spots, or “inclusions,” in the cells. These lysosomes lack nearly all of the hydrolases normally present and thus are unable to perform lysosomal digestion. However, all the hydrolases missing from the lysosomes can be found in the patient’s bloodstream. The abnormality results from “mis-sorting” by the Golgi apparatus, which erroneously packages the enzymes for extracellular secretion rather than sending them to the lysosomes. Studies of this rare genetic disease resulted in the discovery that all lysosomal enzymes have a common marker, mannose- 6-phosphate, which normally helps target the enzymes to the lysosomes. Persons with I-cell disease lack the enzyme needed for configuring this marker.
Peroxisomes (microbodies), like lysosomes, are membrane-bound bags of enzymes that perform degradative functions. They are particularly important in liver and kidney cells, where they detoxify various
Lysosomes and Peroxisomes Transport of Golgi vesicles to the membrane-bound bags of digestive enzymes known as lysosomes has been well described and provides a model for Golgi sorting and transport to other destinations. Lysosomes are filled with more than 40 different acid hydrolases, which are capable of digesting organic molecules, including proteins, nucleotides, fats, and carbohydrates. Lysosomes obtain the materials they digest from three main pathways. The first is the pathway used to digest products absorbed by endocytosis. In this pathway, endocytotic vesicles bud off from the plasma membrane to fuse with endosomes. Endosomes mature into lysosomes as the Golgi delivers lysosomal enzymes to them; the pH inside the lysosome acidifies, and active digestion occurs. The second pathway is autophagy, whereby damaged and obsolete parts of the cell itself are destroyed. Unwanted cellular structures are enclosed by a membrane from the ER, which then fuses with the lysosome, leading to autodigestion of the cellular components. Autophagy also may occur during cell starvation or disuse, leading to a process called atrophy, in which the cells become smaller and more energy efficient. The third pathway providing materials to the lysosomes is present only in specialized phagocytic cells. White blood cells (WBCs), for example, are capable of ingesting large particles, which then form a phagosome capable of
Cytoplasmic filament
Cytoplasmic ring
Spoke ring
B
A
Outer membrane
Inner membrane
Lumen Nuclear ring
Basket filament
Terminal ring
Nuclear basket
Nuclear envelope
Nucleus
Nucleolus
Outer nuclear membrane
Endoplasmic reticulum
Nuclear pores
Inner nuclear membrane
Nuclear envelope
FIG 3.11 A, Structure of the double-membrane envelope that surrounds the cell nucleus. B, Detail of a nuclear pore.
34 UNIT II Cellular Function
important membrane-bound enzymes of the respiratory chain. These enzymes are essential to the process of oxidative phosphorylation, which generates most of the cell’s adenosine triphosphate (ATP). The outer membrane contains numerous porin transport proteins forming large aqueous channels that make the membrane porous, like a sieve. Fairly large molecules, including proteins up to 5000 daltons, can pass freely through the outer membrane such that the space between the outer and inner membranes is chemically similar to the cytosol. However, the inner membrane is quite impermeable, even to small molecules and ions. Specific protein transporters are required to shuttle the necessary molecules across the inner mitochondrial membrane.
Mitochondria are believed to have originated as bacteria that were engulfed by larger cells but that still retain some of their own DNA. Mitochondrial DNA codes for 22 transfer RNA molecules, 2 ribosomal RNAs that form mitochondrial ribosomes, and 13 proteins. During evolution the majority of mitochondrial genes were transferred to locations within the nuclear genome. Thus only a few of the mitochon- drial enzymes are produced from DNA located in the mitochondria; the majority are transcribed from nuclear DNA. Nuclear genes are translated into protein in the cytoplasm and then transported to the mitochondria, whereas mitochondrial gene–derived proteins are made within the mitochondria. Several rare disorders are associated with mitochondrial gene defects (see Chapter 6). The number and location of mitochondria differ according to cell type and function. Cells with high energy needs, such as cardiac or skeletal muscle, have many mitochondria. These mitochondria may pack between adjacent muscle fibrils, such that ATP is delivered directly to the areas of unusually high energy consumption. Mitochondria undergo fission to produce more mitochondria in the cell. The details of mitochondrial energy conversion are discussed in the next section. Mitochondria also have an important role in programmed cell death, called apoptosis, which is discussed in Chapter 4.
substances, such as alcohol. In contrast to lysosomes, which contain hydrolase enzymes, peroxisomes contain oxidative enzymes. These enzymes use molecular oxygen to break down organic substances by an oxidative reaction that produces hydrogen peroxide. The hydrogen peroxide is then used by another enzyme (catalase) to degrade other organic molecules, including formaldehyde and alcohol. Catalase also prevents accumulation of excess hydrogen peroxide in the cell by convert- ing it to water and oxygen. Peroxisomes also oxidize fatty acids (β oxidation) to produce acetyl coenzyme A (acetyl CoA) that is used in cellular metabolism. Unlike lysosomes, which acquire their enzymes from Golgi vesicles, peroxisomes import enzymes directly from the cytoplasm.
Mitochondria The mitochondria have been aptly called the “powerhouses of the cell” because they convert energy to forms that can be used to drive cellular reactions. A distinct feature of mitochondria is the large amount of membrane they contain. Each mitochondrion is bound by two specialized membranes. The inner membrane forms an enclosed space, called the matrix, which contains a concentrated mix of mitochondrial enzymes. The highly convoluted structure of the inner membrane with its numer- ous folds, called cristae (Fig. 3.13), provides a large surface area for the
Cis (entry) face
Trans (exit) face
Cisternae
Ribosomes
GOLGI APPARATUS
ENDOPLASMIC RETICULUM
PLASMA MEMBRANE
CYTOSOL
Transport vesicles
Nuclear envelope
Secretory vesicles
NUCLEUS
FIG 3.12 Schematic drawing of the endoplasmic reticulum and its relationship to the Golgi apparatus and nuclear envelope. KEY POINTS
• The cytoskeleton is made up of actin, microtubules, and intermediate filaments. These proteins regulate cell shape, movement, and the trafficking of intracel- lular molecules.
• The nucleus contains the genomic DNA. These nuclear genes code for the synthesis of proteins. There are nearly 20,000 protein-coding genes in the human genome.
• The endoplasmic reticulum (ER) and the Golgi apparatus function together to synthesize proteins and lipids for transport to lysosomes or to the plasma membrane.
• Lysosomes and peroxisomes are membrane-bound bags of digestive enzymes that degrade intracellular debris.
• Mitochondria contain enzymes necessary for oxidative phosphorylation to produce adenosine triphosphate (ATP). Mitochondria have their own small number of genes that code for some of the mitochondrial proteins.
CELLULAR METABOLISM All living cells must continually perform essential cellular functions such as movement, ion transport, and synthesis of macromolecules. Many of these cellular activities are energetically unfavorable (i.e., they are unlikely to occur spontaneously). Unfavorable reactions can be driven by linking them to an energy source such as ATP, which is a molecule that contains high-energy phosphate bonds. In normal cells where the ATP concentration is high, approximately 11 to 13 kcal of
CHAPTER 3 Cell Structure and Function 35
A
B
H+ H + H+
H+
H+
H+
H+
H2O
ATP ATP ADP
NAD+
NADH
Pi +
O2
CO2
Pyruvate
Fatty acids
e-
Acetyl CoA
Citric acid cycle
Matrix
Outer membrane
Inner membrane
ATP synthase
Electron transport chain
FIG 3.13 Electron micrograph (A) and schematic drawing (B) of the mitochondrial structure. The highly convoluted inner membrane provides a large surface area for membrane-bound metabolic enzymes. (A, From Alberts B et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p 26. Micrograph courtesy Daniel S. Friend. All rights reserved. Used under license from The American Society for Cell Biology.)
36 UNIT II Cellular Function
mitochondria, such as RBCs, must rely totally on glycolysis for ATP production.
Citric Acid Cycle For most cells, glycolysis is only a prelude to the third stage of catabolism, which takes place in the mitochondria and results in the complete oxidation of glucose to its final end products: CO2 and H2O. The third stage begins with the citric acid cycle (also called the Krebs cycle or the tricarboxylic acid cycle) and ends with the production of ATP by oxidative phosphorylation. The purpose of the citric acid cycle is to break, by oxidation, the C–C and C–H bonds of the compounds produced in the second stage of catabolism. Pyruvate and fatty acids enter the mitochondrial matrix, where they are converted to acetyl CoA (Fig. 3.15). The pyruvate dehydrogenase complex cleaves pyruvate to form one CO2, one NADH, and one acetyl CoA molecule. Fatty acids are cleaved by a process called β oxidation to form one NADH and one reduced flavin adenine dinucleotide (FADH2, another type of electron carrier). No CO2 is produced by β oxidation of fatty acids. Patients who have difficulty excreting CO2 because of respiratory disease are sometimes given a high-fat, low-carbohydrate diet to take advantage of the lower CO2 production that accompanies fat metabolism.
In the first reaction of the citric acid cycle, the two-carbon acetyl group is transferred from coenzyme A to a four-carbon oxaloacetate molecule. This results in the formation of the six-carbon molecule citrate for which the cycle is named. In a series of enzymatic oxidations, carbon atoms are cleaved off in the form of CO2 (Fig. 3.16); this CO2 is free to diffuse from the cell and be excreted by the lungs as a waste product. Two carbon atoms are removed to form two CO2 molecules for each complete turn of the cycle. The extra oxygen molecules needed to create CO2 are provided by the surrounding H2O; therefore the citric acid cycle does not require molecular oxygen from respiration. However, the cycle will cease to function in the absence of oxygen because the carrier molecules, NADH and FADH2, cannot unload their electrons onto the electron transport chain (which does require oxygen) and thus are unavailable to accept electrons from the citric acid cycle.
Although the citric acid cycle directly produces only one ATP molecule (in the form of guanosine triphosphate [GTP]) per cycle, it captures a great deal of energy in the form of activated hydride ions (H−). These high-energy ions combine with larger carrier molecules, which transport them to the electron transport chain in the mitochondrial membrane. Two important carrier molecules are nicotinamide adenine dinucleotide (NAD+), which becomes NADH when reduced by H−, and flavin adenine dinucleotide (FAD), which becomes FADH2 when reduced by H−. The energy carried by these molecules is ultimately used to produce ATP through a process called oxidative phosphorylation. One glucose molecule provides for two turns of the cycle and produces a net of two GTP, four CO2, two FADH2 and six NADH.
Oxidative Phosphorylation Oxidative phosphorylation follows the processes of glycolysis and the citric acid cycle and results in the formation of ATP by the reaction of adenosine diphosphate (ADP) and inorganic phosphate (Pi): ADP + Pi → ATP. The energy to drive this unfavorable reaction is provided by the high-energy hydride ions (H−) derived from the citric acid cycle. This energy is not used to form ATP directly; a series of energy transfers through reduction-oxidation (redox) reactions is required. In eukaryotic cells, this series of energy transfers occurs along the electron transport chain on the inner mitochondrial membrane. The transport chain consists of three major enzyme complexes and two mobile electron carriers that shuttle electrons between the protein complexes
energy per mole of ATP is liberated when one of the phosphate bonds is hydrolyzed (broken with the aid of water) in a chemical reaction. A variety of enzymes in the cell are able to capture the energy released from ATP hydrolysis and use it to break or make other chemical bonds. In this way, ATP serves as the “energy currency” of the cell. A specific amount of ATP is “spent” to “buy” a specific amount of work. Most cells contain only a small amount of ATP, sufficient to maintain cellular activities for just a few minutes. Because ATP cannot cross the plasma membrane, each cell must continuously synthesize its own ATP to meet its energy needs; ATP cannot be “borrowed” from other cells or “banked” in any significant quantity within a cell. It must be synthesized continually from the breakdown of glycogen and fat to meet the cell’s energy needs.
An average adult has enough glycogen stores (primarily in liver and muscle) to supply about 1 day’s needs, but enough fat to last for a month or more. After a meal, the excess glucose entering the cells is used to replenish glycogen stores or to synthesize fats for later use. Fat is stored primarily in adipose tissue and is released into the bloodstream for other cells to use when needed. When cellular glucose levels fall, glycogen and fats are broken down to provide glucose and fatty acyl molecules, respectively, which are ultimately metabolized to provide ATP. During starvation, body proteins can also be used for energy production by a process called gluconeogenesis.
Cellular metabolism is the biochemical process whereby foodstuffs are used to provide cellular energy and biomolecules. Cellular metabolism includes two separate and opposite phases: anabolism and catabolism. Anabolism refers to energy-using metabolic processes or pathways that result in the synthesis of complex molecules such as fats. Catabolism refers to the energy-releasing breakdown of nutrient sources such as glucose to provide ATP to the cell. Both of these processes require a long, complex series of enzymatic steps. The catabolic processes of cellular energy production are briefly discussed in the following sections. (See Chapter 42 for a detailed discussion of metabolism.)
Glycolysis The catabolic process of energy production begins with the intestinal digestion of foodstuffs into small molecules: proteins into amino acids, polysaccharides into simple sugars (monosaccharides), and fats into fatty acids and glycerol. The second stage of catabolism occurs in the cytosol of the cell, where glucose molecules are further degraded by glycolysis into pyruvate (compounds with three carbon atoms). Glycolysis involves 10 enzymatic steps to break the six-carbon glucose molecule into a pair of three-carbon pyruvate molecules (Fig. 3.14). Glycolysis requires the use of two ATP molecules in the early stages but produces four ATP molecules in the later steps, for a net gain of two ATP molecules per glucose molecule. The production of ATP through glycolysis is relatively inefficient, and the pyruvate end products still contain substantial chemical energy that can be released by further catabolism in stage 3. However, glycolysis is an important provider of ATP under anaerobic conditions because oxygen is not required. Thus ATP production by glycolysis becomes important during conditions of reduced cellular oxygenation, which may accompany respiratory and cardiovascular disorders. The pyruvate that accumulates during prolonged anaerobic conditions is converted to lactate and excreted from the cell into the bloodstream. Lactic acidosis is a dangerous condi- tion that may result from excessive lactate production attributable to severe or prolonged lack of oxygen (see Chapter 20). In addition to the two molecules of ATP and pyruvate, each glucose molecule produces two reduced nicotinamide adenine dinucleotide (NADH) molecules, which contain high-energy electrons that are transferred to the elec- tron transport chain in the mitochondria. Cells that do not contain
CHAPTER 3 Cell Structure and Function 37
ATP
ATP
NADH
ATP
ATP
NADH
ATP
ATP
OH2C CH2O PP O
HO
OH
CH2OH
HO OH
OH
OH
STEP 1
STEP 2
STEP 3
STEP 4
STEP 5
O
CH2O
CHOH
CHO
P CH2O
CHOH
CHO
P
STEP 6
STEP 7
STEP 8
STEP 9
STEP 10
CH3
COO�
C O
CH3
COO�
C O
Energy investment to be recouped later
Energy generation
Cleavage of six-carbon sugar to two three-carbon sugars
Two molecules of glyceraldehyde
3-phosphate
Fructose 1,6- bisphosphate
One molecule of glucose
Two molecules of pyruvate
FIG 3.14 Ten enzymatic steps are required in glycolysis to break glucose into two 3-carbon pyruvate molecules. A net gain of two ATP molecules is achieved. (From Alberts B et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p 26. Micrograph courtesy Daniel S. Friend. All rights reserved. Used under license from The American Society for Cell Biology.)
38 UNIT II Cellular Function
(Fig. 3.17). Respiratory chain proteins contain metal ions (iron, copper) that facilitate the transfer of electrons. The hydrogen molecules and their associated electrons are transported to the electron transport chain by the carrier molecules NADH and FADH2. The path of electron flow is NADH → NADH dehydrogenase complex → ubiquinone → b-c1 complex → cytochrome c → cytochrome oxidase complex. With each redox reaction the electrons pass from one complex to the next, and the free energy that is released is used to pump hydrogen ions (H+) out of the mitochondrial matrix. At the very end of the transport chain, low-energy electrons are finally transferred to O2 to form H2O. Oxidative phosphorylation is called aerobic because of this oxygen-requiring step. The last enzyme in the chain, cytochrome oxidase, collects four electrons and then transfers all four at once to a molecule of O2 to create two water molecules. If electrons are not transferred to oxygen in the correct ratio, then oxygen free radicals may be produced and damage the cell. Free radical generation is discussed in Chapter 4.
Thus far, little ATP synthesis has been accomplished. However, the enzymes of the transport chain have harnessed energy from the trans- ported electrons in the form of a proton (H+) gradient. Finally, the proton gradient is used to power the synthesis of ATP. A special enzyme in the inner mitochondrial membrane (ATP synthase) allows protons
S CoAC
CH3
O
Acetyl group
S
FIG 3.15 Space-filling model of acetyl CoA.
NAD+
NADH and H+
NADH and H+
NAD+
HC
CH2
COO–
COO–
COO–
HC OH
C
CH2
CH2
COO–
COO–
COO–
HO
CH2
CH2
COO–
COO–
C O CH2
CH2
COO–
COO–
CH2
COO–
COO–
C O
COO–
COO–
C OHH
CH2
COO–
COO–
CH
HC
C
CH2
CH2
COO–
O SCoA
O
SCoA
Oxaloacetate
Acetyl CoA
Succinyl CoA
CH3C
α-Ketoglutarate
Malate
Succinate
Isocitrate
Citrate
Fumarate
NAD+
GDPGTP NADH and H +
CO2
CO2
FADH2
FAD
H2O
H2O
H2O
Excreted by lungs
CoA–SH
CoA–SH
CoA–SH + Pi
FIG 3.16 Chemical structures of the compounds of the citric acid cycle (Krebs cycle). In a series of enzymatic reactions, carbon atoms are cleaved to form CO2 and high-energy hydride ions, which are carried by FAD and NAD.
CHAPTER 3 Cell Structure and Function 39
H+ H+ H+
H+ H+ H+ H2O
Matrix space O2 +
Inner mitochondrial membrane
NADH dehydrogenase complex (monomer) b-c1 complex (dimer)
Ubiquinone (cytochrome Q)
Q
C
Cytochrome c
Cytochrome oxidase complex (dimer)
4 Electrons
4H+
2e–
NAD+NADH
FIG 3.17 Representation of the electron transport chain located in the inner mitochondrial membrane. High-energy electrons are passed along the chain until they combine with oxygen to form water. The energy released at each electron transfer is used to pump H+ across the membrane.
H+H+
ADP Pi
ATP
+
FIG 3.18 Inner mitochondrial ATP synthetase captures the potential energy of the H+ gradient in a manner similar to a turbine. The proton gradient drives the synthesis of ATP from adenosine diphosphate (ADP) and inorganic phosphate (Pi). A 360-degree rotation of the rotor requires 12 H+ ions and produces 3 ATP molecules.
KEY POINTS • Energy-requiring reactions within cells are driven by coupling to adenosine
triphosphate (ATP) hydrolysis. • ATP is not stored and must be continuously synthesized by each cell to
meet the cell’s energy needs. • Glycolysis is an anaerobic process that produces two ATP molecules, two
NADH molecules, and two pyruvate molecules per glucose molecule. Pyruvate enters the mitochondria and is converted to acetyl CoA with release of a CO2 molecule. Pyruvate can also be converted to lactate when oxygen supply is insufficient for oxidative processes.
• The citric acid cycle in the mitochondrial matrix oxidizes the acetyl groups supplied by acetyl CoA to form large quantities of H− (hydride ions), which are carried to the respiratory chain by NADH and FADH2.
• The respiratory chain enzymes capture the energy from electron transfer and use it to produce an H+ (proton) gradient. Molecular oxygen is required at this stage (aerobic) to accept the electrons from the last enzyme in the transport chain.
• ATP is produced by ATP synthase, a protein in the mitochondrial membrane. ATP synthase produces ATP by capturing the energy of the proton gradient and using it to form a bond between ADP and inorganic phosphate (Pi). In total, about 30 ATP molecules are produced per glucose molecule.
to flow back into the mitochondria down their electrochemical gradient. The energy of the proton flow is used to drive ATP synthesis (Fig. 3.18). Under normal cellular conditions about 30 ATP molecules are formed from the complete oxidation of glucose into CO2 and H2O. Two of these are from glycolysis, two from the citric acid cycle (in the form of GTP), and the remainder from oxidative phosphorylation. The ATP formed within the mitochondria is transported to the cytosol by protein transporters in the mitochondrial membrane. The ATP is then available to drive a variety of energy-requiring reactions within the cell.
transport proteins discussed earlier. Rather, macromolecules are ingested and secreted by the sequential formation and fusion of membrane-bound vesicles. Endocytosis refers to cellular ingestion of extracellular molecules. The process of cellular secretion is called exocytosis. There are two types of endocytosis, which are differentiated by the size of the particles ingested. Pinocytosis, or “cellular drinking,” is the method of ingesting fluids and small particles and is common to most cell types. Phagocytosis, or “cellular eating,” involves the ingestion of large particles, such as microorganisms, and is practiced mainly by specialized phagocytic WBCs. Endocytosis begins at the cell surface by the formation of an indentation, or “pit,” in the plasma membrane, which is coated with special proteins, including clathrin (coated pit). The indentation invaginates and then pinches off a portion of the membrane to become a vesicle (Fig. 3.19). Each vesicle thus formed is internalized, sheds its coat, and fuses with an endosome. The contents of these endocytic vesicles usually accumulate in lysosomes, where they are degraded.
FUNCTIONS OF THE PLASMA MEMBRANE Membrane Transport of Macromolecules Endocytosis and Exocytosis The transport of large molecules, such as proteins and polysaccharides, across the plasma membrane cannot be accomplished by the membrane
40 UNIT II Cellular Function
genes for making LDL receptor proteins (familial hyperlipidemia) and are incapable of taking up adequate amounts of LDL. Accumulation of LDL in the blood predisposes these individuals to development of atherosclerosis and heart disease (see Chapter 18).
Exocytosis is essentially the reverse of endocytosis. Substances to be secreted from the cell are packaged in membrane-bound vesicles and travel to the inner surface of the plasma membrane. There the vesicle membrane fuses with the plasma membrane, and the contents of the vesicle arrive at the cell surface. Some secreted molecules may remain embedded in the cell membrane, others may be incorporated into the extracellular matrix, and still others may enter the extracellular fluids and travel to distant sites. Many substances synthesized by the cell, including new membrane components, are constantly being packaged and secreted. This continuously operative and unregulated pathway is termed constitutive. In some specialized cells, selected proteins or small molecules are packaged in secretory vesicles, which remain in the cell until the cell is triggered to release them. These special secretory vesicles are typically regulated by stimulation of cell surface receptors. For example, the mast cell, a special type of WBC, releases large amounts of histamine when its cell surface receptors are activated (see Chapter 9).
Membrane Transport of Small Molecules All cells must internalize essential nutrients, excrete wastes, and regulate intracellular ion concentrations. However, the lipid bilayer is extremely
Endocytosis of certain macromolecules is regulated by specific receptors on the cell surface. These receptors bind the molecules (ligands) to be ingested and then cluster together in coated pits. The receptor– ligand complexes are internalized by the invagination process described previously. The vesicles generally fuse with endosomes where the ligand is removed from the receptor for processing by the cell. The receptor may be degraded in the lysosome or may be recycled to the cell surface to be used again. Receptor-mediated endocytosis allows the cell to be selective about the molecules ingested and to regulate the amount taken into the cell. The cell can produce greater numbers of cell surface receptors to ingest more ligand.
An example of receptor-mediated endocytosis is the cellular uptake of cholesterol. The process of cholesterol uptake by cells is shown in Fig. 3.20. Most cholesterol in the blood is transported by protein carriers called low-density lipoproteins (LDLs). The cell can regulate the number of LDL receptors on its cell surface to increase or decrease the uptake of cholesterol. Once the LDL binds to its receptor, this complex is rapidly internalized in a coated pit. The coated vesicle thus formed sheds its coat and fuses with an endosome. In the endosome, the LDL receptor is retrieved and recycled to the cell surface to be reused. The LDL is transported to lysosomes and degraded to release free cholesterol, which the cell uses for synthesis of biomolecules such as steroid hormones.
Dangerously high blood cholesterol levels occur in some individuals who lack functional LDL receptors. These individuals inherit defective
B
A
FIG 3.19 A, Representation of the steps of endocytosis. An invagination of the membrane occurs and pinches off to form a vesicle. Exocytosis progresses in essentially the reverse sequence. B, Electron micrograph showing the steps of endocytosis. (B, From Perry M, Gilbert A: Yolk transport in the ovarian follicle of the hen [Gallus domesticus]: lipoprotein-like particles at the periphery of the oocyte in the rapid growth phase, J Cell Sci 39:257–272, 1979.)
CHAPTER 3 Cell Structure and Function 41
LDL
Coated pit with LDL receptors
Endosome
Endocytosis
Vesicle
Lysosome
Fusion of vesicle and lysosome
Free cholesterol for cell use
Receptors recycled to cell surface
FIG 3.20 Steps in the process of receptor-mediated endocytosis of cholesterol. Cholesterol is carried in the blood by LDL. The uptake of LDL with its associated cholesterol, is mediated by a specific LDL-receptor protein on the cell surface. Once internalized, the cholesterol is removed from the LDL-receptor complex and used by the cell. The LDL receptors are sent back to the cell surface to bind more LDL.
impermeable to most polar and charged molecules. Transport of small water-soluble molecules is achieved by specialized transmembrane proteins called transporter proteins. Most membrane transporters are highly specific—a different transporter protein is required for each type of molecule to be transported. Only lipid-soluble molecules can permeate the lipid bilayer directly by simple diffusion.
Membrane transport proteins are of three basic kinds: ATP-driven pumps, carriers, and channel proteins. Channel proteins are the simplest of the three, forming a water-filled pore through the lipid bilayer. These pores are able to open and close to allow ions to pass through the membrane. The particular structure of the protein channel ensures that only ions of a certain size and charge can move through the membrane. Pumps and carrier proteins, however, bind to the solute to be transported and move it through the membrane by undergoing a structural, or conformational, change. Pumps and carriers have a transport maximum that is much lower than that of channels because they must bind to the molecules to be transported and then move them through the membrane. Pumps and carriers, which transport ions and nonelectrolyte molecules (e.g., glucose and amino acids), are also highly specific for the substances they transport.
Lipid-soluble particles can cross the lipid bilayer directly by simple diffusion through the hydrophobic lipid portion of the membrane. Polar or charged molecules must cross the membrane via protein channels or carriers. Transport through membrane proteins may be a passive or an active process. Passive transport through membrane proteins is called facilitated diffusion. Diffusion of ions occurs passively because of an electrochemical gradient. The electrochemical gradient exists because of differences in intracellular and extracellular charge and/or concentration of chemicals and is governed by laws of physics. Channel proteins only allow particles to move down their electrochemical or concentration
gradients. Some carriers are passive, but others use the movement of one ion flowing down its concentration gradient (usually Na+ moving into the cell) to move another substance uphill against its gradient. This process is called secondary active transport because ATP is not used directly; however, ATP is necessary to run the pumps that maintain the sodium gradient. The lipid bilayer is fairly impermeable to water because of its polar structure. Water moves across the plasma membrane through channels called aquaporins. Nearly all cells have aquaporins present in their cell membranes at all times, with the exception of a few specialized cells in the kidney tubules. Net movement of water across a membrane (osmosis) occurs in response to differences in osmotic pressure on either side of the membrane and is a passive process.
Active Transport Pumps Active transport is the process whereby protein transport pumps move solutes across the membrane against an electrochemical or concentration gradient. Primary active transport requires metabolic energy, which is supplied by ATP hydrolysis. There are three families of ATP-driven pumps: the F-type ATPases that move H+; the P-type adenosine tri- phosphatase (ATPase) that pump ions across membranes; and the ATP-binding cassette (ABC) transporters that transport a wide range of solutes. The ATP synthase located on the inner mitochondrial membrane is an example of an F-type pump; however, in that location it runs backward, allowing H+ to run down its electrochemical gradient, and uses the energy to form a bond between ADP and Pi (see Fig. 3.18). As a general principle, pumps, carriers, and channels can transport in either direction depending on the concentration of substrates on either side of the membrane.
Sodium–potassium ion pump. The sodium–potassium (Na+–K+) pump is a P-type ATPase present in the plasma membranes of virtually
42 UNIT II Cellular Function
ABC transporters. Another important class of ATP-driven transport- ers is the ABC transporter family. These transporters all have a common ATP-binding domain, called the ATP binding cassette (ABC), which hydrolyzes ATP to provide energy for the transport process (Fig. 3.23). This family of membrane transporters is the largest of the transporter families. A clinically important member of this family is a chloride channel in the plasma membrane of epithelial cells. A defect in this transporter is responsible for cystic fibrosis, a common genetic disorder that affects the lungs and pancreas (see Chapter 22). Bacteria use ABC transporters to pump antibiotics out of the cell, resulting in drug resistance (see Chapter 8).
Membrane Transport Carriers Na+-driven carriers. In animal cells, the Na+ gradient created by
the Na+–K+ pump is used to power a variety of transporters by secondary active transport. An important Ca2+ transporter located in the plasma membrane of cardiac muscle cells uses the electrochemical gradient of Na+ to power the transport of Ca2+ out of the cell (see Fig. 3.22, right). The dependence of this calcium transporter on the sodium gradient helps explain the inotropic effects of the commonly prescribed drug digitalis. Digitalis is a cardiac glycoside that inhibits the Na+–K+ pump and allows the accumulation of intracellular Na+. The Na+ concentration gradient across the membrane is thus decreased, leading to less efficient calcium removal by the Na+-dependent Ca2+ pump. A more forceful cardiac muscle contraction results from the increased intracellular Ca2+ concentration. Another example of a transporter that uses secondary active transport is the Na+–H+ exchange carrier, which uses the Na+ gradient to pump out excess hydrogen ions to help maintain intracellular pH balance. The Na+ gradient also can be used to bring substances into the cell. For example, glucose and amino acid transport into epithelial cells is coupled to Na+ entry. As Na+ moves through the transporter down its electrochemical gradient, the sugar or amino acid is “dragged” along. Entry of the nutrient will not occur unless Na+ also enters the cell. The epithelial cells that line the gut and kidney tubules have large numbers of these nutrient transporters present in the luminal (apical) surfaces of their cell membranes. In this way, large amounts of glucose and amino acids can be effectively absorbed. The reuptake of numerous types of neurotransmitters from synapses also occurs via Na+-driven
all animal cells. It serves to maintain low sodium and high potassium concentrations in the cell. The Na+–K+ transporter must pump ions against a steep electrochemical gradient. Almost one-third of the energy of a typical cell is consumed by the Na+–K+ pump. ATP hydrolysis provides the energy to drive the Na+–K+ transporter. The Na+–K+ pump behaves as an enzyme in its ability to split ATP to form ADP and Pi, leading to the protein being termed Na+–K+ ATPase.
Transport of sodium and potassium ions through the Na+–K+ carrier protein is coupled; that is, the transfer of one ion must be accompanied by the simultaneous transport of the other ion. The transporter moves three sodium ions out of the cell for every two potassium ions moved into the cell (Fig. 3.21). The Na+–K+ pump is important in maintaining cell volume. It controls the solute concentration inside the cell, which in turn affects the osmotic forces across the membrane. If Na+ is allowed to accumulate within the cell, the cell will swell and could burst. The role of the Na+–K+ pump can be demonstrated by treating cells with digitalis, a drug that inhibits Na+–K+ ATPase. Cells thus treated will indeed swell and often rupture. The Na+–K+ pump is responsible for maintaining a steep concentration gradient for Na+ across the plasma membrane. This gradient can be harnessed to transport small molecules across the membrane in a process called secondary active transport. Carriers that use ATP directly are engaged in primary active transport.
Membrane calcium transporters. Numerous important cellular processes, such as cell contraction and growth initiation, are dependent on the intracellular calcium ion concentration. Intracellular Ca2+ is normally very low and tightly regulated. Two important calcium pumps, present in the plasma membrane and in the ER (sarcoplasmic reticulum of muscle cells), function to remove Ca2+ from the cell cytoplasm. Similar to the Na+–K+ transporter, these transporters use ATP as the energy source (Fig. 3.22, left).
If calcium ion levels in the cytoplasm become dangerously elevated, calcium pumps in the mitochondrial membrane are activated. Calcium ions are actively pumped into the mitochondria using the energy of the proton (H+) gradient. This is the same proton gradient that the mitochondria use to synthesize ATP, and ATP production declines when the mitochondria are required to sequester Ca2+. A high intracellular Ca2+ level is even more dangerous to the cell than a reduction in ATP production.
Extracellular fluid
Cytoplasm
Na+ binding site
K+ binding site
K+
K+
Na+ Na+ Na+
ATP
ADP + Pi
FIG 3.21 Schematic drawing of the sodium–potassium transport protein, which uses ATP to pump Na+ out of the cell and K+ into the cell against steep electrochemical gradients. This transporter is responsible for maintaining a low intracellular concentration of Na+ and a large Na+ gradient across the membrane. The energy of this Na+ gradient can be harvested by other transporters to actively transport substances.
Extracellular fluid
Cytoplasm
Ca2+ Ca 2+
Na+ gradient
Sodium gradient–dependent
Ca2+ pump
ATP-dependent
Ca2+ pump
Na+ ATP ADP + Pi
FIG 3.22 Two transporters of calcium ions are present in some cell membranes. One uses ATP as the energy source to pump calcium against a gradient (primary active transport). The other captures the potential energy of the sodium gradient to pump calcium out of the cell (secondary active transport).
CHAPTER 3 Cell Structure and Function 43
carrier proteins. The movement of Na+ through carriers located in the presynaptic neuron drags the neurotransmitter from the synapse back into the nerve terminal, where it can be repackaged for reuse or metabolized by cellular enzymes.
Passive transport carriers. Some carriers are not linked to the Na+ gradient and move substances across the membrane passively. The glucose transporters in many cell types belong to this class of transporters. In β cells of the pancreas, for example, the glucose transporters (Glut-1)
Extracellular fluid
Cytoplasm ATP
ADP Pi
ATP-binding cassette
FIG 3.23 The ABC transporters are the largest known family of membrane transport proteins. They are characterized by an ATP-binding domain that causes a substrate pocket to be exposed first on one side of the membrane and then on the other as ATP is bound and hydrolyzed to ADP and Pi.
are always present in the plasma membrane and let glucose into the cell according to its concentration in the extracellular fluid. In this way the pancreas detects blood glucose levels and releases an appropriate amount of insulin. In insulin-sensitive cells, such as muscle, liver, and adipose cells, the glucose carriers are sequestered inside the cell until insulin binds to its receptor at the cell surface. Receptor activation causes the glucose carriers (Glut-4) to move to the cell surface, where they allow passive influx of glucose (Fig. 3.24).
Glucose
Signal from insulin
receptor
Translocation to cell
surface
Sequestered Glut–4
transporters
Insulin
Insulin receptor
FIG 3.24 In response to insulin binding to its receptor on the cell surface, carrier proteins that transport glucose (Glut-4) are moved to the cell surface where they passively transport glucose into the cell (facilitated diffusion).
44 UNIT II Cellular Function
Membrane Channel Proteins In contrast to carrier proteins, which bind molecules and move them across the membrane by a conformational change, channel proteins form water-filled pores in the membrane. Nearly all channel proteins are involved in transport of ions and may be referred to as ion channels. Ions can flow through the appropriate channel at very high rates (100 million ions/sec); this is much faster than carrier-mediated transport. However, channels are not linked to an energy source, so ions must flow passively down an electrochemical gradient. The channel proteins in the plasma membranes of animal cells are highly selective, permitting only a particular ion or class of ions to pass. Humans have about 400 genes that encode channel proteins. Ion channels are particularly important in allowing the cell to respond rapidly to a variety of external stimuli. Most channels are not continuously open, but they open and close according to membrane signals. Ion channels may be stimulated to open or close in three principal ways: (1) voltage-gated channels respond to a change in membrane potential; (2) mechanically gated channels respond to mechanical deformation; and (3) ligand-gated channels respond to the binding of a signaling molecule (a hormone or neurotransmitter) to a receptor on the cell surface (Fig. 3.25). In addition, some channels open without apparent stimulation and are referred to as leak channels. Ion channels are responsible for the
FIG 3.25 Gating of ion channels. A, Voltage-gated channel. B, Ligand-gated channel. C, Mechanically gated channel.
development of membrane potentials and are of vital importance in nerve and muscle function, as discussed in the next section.
KEY POINTS • Large, lipid-insoluble molecules are transported across the plasma membrane
by endocytosis and exocytosis. • Small, lipid-insoluble molecules are transported across the plasma membrane
by three kinds of membrane proteins: adenosine triphosphate (ATP)-driven pumps, carriers, and channels.
• Pumps use the energy of ATP to move solutes against a gradient. Examples of ATP-driven active transport include proton pumps, Na+–K+ pumps, Ca2+ pumps, and ATP-binding cassette (ABC) transporters.
• Carriers may be passive or use the Na+ gradient for secondary active transport. Neurotransmitter reuptake carriers and those that transport glucose and amino acids across the gut and renal tubules are examples of Na+-driven carriers. Passive carriers include those that allow glucose entry into insulin- sensitive cells.
• Channels are always passive and allow ions to move down their electrochemi- cal gradients when open. Channels open and close in response to specific signals, such as voltage changes, ligand binding, and mechanical pressure.
CHAPTER 3 Cell Structure and Function 45
potential of about −85 mV. If the extracellular K+ level is increased, more K+ ions will stay in the cell because of the reduced concentration gradient. These extra positive intracellular ions will neutralize more of the negative cellular anions, and the cell will hypopolarize, or become less negative. Conversely, if extracellular K+ levels fall, more K+ will exit the cell due to a greater concentration gradient. Fewer intracellular anions will be neutralized, and the cell interior will become more negative, or hyperpolarized (Fig. 3.27). Changes in RMP can have profound effects on the ease of action potential generation in cardiac and nerve cells.
The RMP is described by the potassium equilibrium potential because the cell is relatively impermeable to other ions at rest. Under certain conditions, the membrane may become highly permeable to an ion other than potassium. The membrane potential will reflect the equi- librium potential of the most permeant ions.
Long-term maintenance of ion gradients across the cell membrane is accomplished primarily by the Na+–K+ pump. The Na+–K+ pump also contributes to the negative RMP in that it extrudes three Na+ for every two K+ brought into the cell. However, this pump can be inhibited for minutes to hours in some tissues with little immediate effect on the resting membrane potential.
Action Potential Nearly all animal cells have negative RMPs, which may vary from −20 to −200 mV, depending on the cell type and organism. The cell mem- branes of some specialized cell types, mainly nerve and muscle, are capable of rapid changes in their membrane potentials. These cells are electrically “excitable” and can generate and propagate action potentials. In classic experiments, action potentials were determined to be rapid, self-propagating electrical excitations of the membrane that are mediated by ion channels that open and close in response to changes in voltage across the membrane (voltage-gated ion channels). An action potential is triggered by membrane depolarization.
In nerve and muscle cells, the usual trigger for depolarization is binding of an excitatory neurotransmitter to cell surface receptors. Transmitter binding causes channels in the membrane to open, allowing ions (primarily Na+) to enter the cell. This influx of positive ions causes a shift in the membrane potential to a less negative value, resulting in depolarization. Threshold is reached when a patch of the membrane becomes sufficiently depolarized (approximately −65 mV in animal neurons) to activate voltage- gated sodium channels in the membrane. At threshold, these channels open rapidly and transiently to allow the influx of Na+ ions. A self-propagating process follows whereby Na+ influx in one patch of membrane causes membrane depolarization of the next patch and opens more voltage-gated Na+ channels, allowing more Na+ to enter the cell. This process is repeated many times while the action potential proceeds along the length of the cell (Fig. 3.28). In this way, action potentials can transmit information rapidly over relatively long distances.
A typical neuronal action potential is shown in Fig. 3.29. The various changes in membrane potential during the time course of the action potential are attributable to the flow of ions through membrane ion channels. The steep upstroke of the action potential corresponds to Na+ influx through “fast” sodium channels, as described previously. Fast channels are so termed because they open and close rapidly, with the entire process lasting less than 1 msec. This phase of rapid depolariza- tion is terminated when the fast Na+ channels suddenly close and the repolarization phase begins. Fast Na+ channels are interesting in that they can assume at least three conformations (three-dimensional forms). In addition to the open and closed conformations, the fast Na+ channel has a refractory form during which the channel will not reopen in response to another depolarizing stimulus (Fig. 3.30). This refractory period limits the rate at which action potentials can be generated.
Two major factors contribute to cellular repolarization: sodium conductance (inflow) is stopped by closing Na+ channels, as described
Cellular Membrane Potentials Animal cells typically have a difference in the electrical charge across the plasma membrane. There is a slight excess of negative ions along the inner aspect of the membrane and extra positive ions along the outer membrane. This separation of charges creates a membrane potential that can be measured as a voltage. Positive and negative ions separated by the plasma membrane have a strong attraction to one another that can be used by the cell to perform work, such as the transmission of nerve impulses. A relatively large membrane potential is created by the separation of a very small number of ions along the membrane (Fig. 3.26).
Resting Membrane Potential When there is no net ion movement across the plasma membrane, the electrical charge present inside the cell is called the resting membrane potential (RMP). The major determinant of the RMP is the difference in potassium ion concentration across the membrane. The concentration of potassium inside the cell is much greater (about 30 times greater) than the extracellular potassium concentration. At rest, the membrane is permeable to K+, but not to other positively charged cations, including Na+ and Ca2+. Potassium ions remain inside the cell because of the attraction of fixed intracellular anions (negatively charged organic molecules such as proteins and phosphates that cannot diffuse out of the cell). Because the cell membrane is impermeable to Na+ and Ca2+, only K+ is available to balance these negative intracellular ions. Thus two opposing forces are acting on the potassium ion. The negative cell interior attracts K+ into the cell, whereas the huge K+ concentration gradient favors movement of K+ out of the cell. When the cell is at rest and not transmitting impulses, these forces are balanced, and although the membrane is permeable to K+ there is no net movement. The voltage required to exactly balance a given potassium concentration gradient can be calculated from the ratio of extracellular K+ concentration using the Nernst equation:
mV 61log K extracellular K intracellular= ( + + . The measured membrane potential is quite close to that predicted
mathematically and varies directly with changes in extracellular K+ ion concentration. For example, a typical nerve cell has a normal resting
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ – + – + – + – + – + – + – + – + – + – + – + – + – + – + – + – + –
Extracellular fluid
Plasma membrane
Cytoplasm
FIG 3.26 A relatively large membrane potential results from the separation of a very small number of ions across the plasma membrane.
46 UNIT II Cellular Function
+ + + + + + – – – – – –
+ + – –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+40
+20
0
–20
–40
–60
–80
–100
M e m
b ra
n e p
o te
n tia
l ( m
V )
Normal serum K+ High serum K+ Low serum K+
Threshold
–90 mV –70 mV –100 mV
FIG 3.27 Effects of changes in extracellular K+ level on the resting membrane potential. A high level of serum K+ results in a hypopolarization of the membrane. A low serum K+ level results in membrane hyper- polarization. With high serum K+ levels, the resting membrane potential is closer to threshold, making it easier to achieve an action potential. A low serum K+ level moves the resting membrane potential away from threshold, making it more difficult to achieve an action potential.
+ + + +–––
+ + +
+ + + + + +
– – –– – –
– – –
––– –––
+ +
+ + +
Na+
Na+
Voltage-gated sodium channels
Open channel Closed channel
Na+ Na+
Na+Na+Na+
AP
AP
AP
Na+Na+
K+K+
A
B FIG 3.28 The action potential (AP) in excitable cells is propagated along the membrane by the sequential opening of voltage-gated sodium channels in adjacent sections of membrane. A, An action potential is initiated by the opening of sodium channels in a section of membrane. B, The action potential is regenerated in adjacent sections of membrane as more sodium channels open. The initial segment repolarizes as sodium channels close and potassium ions move out of the cell.
previously, and K+ conductance (outflow) through K+ channels increases. Although cells are always permeable to K+, during repolarization additional voltage-gated K+ channels open allowing a higher rate of K+ efflux. These K+ channels respond to depolarization of the membrane in the same manner as fast Na+ channels, but they take much longer to open and close. When K+ channels open, K+ flows out of the cell because of the concentration gradient and the loss of intracellular negativity that accompanies Na+ influx. The outward flow of positive intracellular potassium ions helps to quickly return the membrane potential to its negative RMP value.
Action potentials in cardiac muscle cells are more complex than the neuronal ones just described. Recall that contraction depends on the presence of free intracellular calcium ions. Because Ca2+ carries a charge, its entry into the cell cytoplasm is reflected in the membrane potential. In skeletal muscle, most of the free cytosolic calcium ions come from intracellular stores (sarcoplasmic reticulum) that are released when the cell is depolarized. In cardiac muscle cells, Ca2+ entry through voltage- gated channels in the plasma membrane is also important. Calcium conductance into the cell tends to prolong the action potential, resulting in a plateau phase (Fig. 3.31). This is of functional importance in cardiac tissue because it allows time for muscular contraction before another impulse is conducted and prevents the potentially disastrous condition of cardiac muscle tetany. (For a more thorough discussion of cardiac electrophysiology, see Chapter 17.)
KEY POINTS • The negative value of the resting membrane potential (RMP) is determined
by the ratio of intracellular to extracellular K+ ion concentration. Changes in serum K+ concentration can have profound effects on the RMP.
• Cells with voltage-gated ion channels are excitable and can produce and conduct action potentials. An action potential results from the opening of “fast” Na+ channels, which allows Na+ to rush into the cell.
• Repolarization is caused by closure of Na+ channels and efflux of K+ from the cell. In cardiac muscle, repolarization is prolonged due to Ca2+ influx through “slow” Ca2+ channels.
CHAPTER 3 Cell Structure and Function 47
+50
0
–50
–100
10
1
0.1
0.01
M e m
b ra
n e p
o te
n tia
l ( m
V )
C o n d u ct
a n ce
( m
m h o /c
m 2 )
K+ Na+
Milliseconds
0.005
0 0.5 1.0 1.5
Action potential
Overshoot
FIG 3.29 A typical neuronal action potential showing changes in membrane potential and the associated ion conductances. Note: mmho is a measure of conductance (amperes per volt), also called millisiemens (mS). The steep upstroke of the action potential is attributed to the sudden influx of Na+ through voltage-gated “fast” sodium ion channels. Voltage-gated K+ channels open more slowly and stay open longer to allow K+ efflux from the cell, which aids in repolarization.
FIG 3.30 Three possible states of the voltage-gated sodium channel. In the open state, Na+ is allowed to pass. In the refractory state, the channel is blocked by the inactivation gate and will not open in response to a depolarizing stimulus. In the closed state, the channel will open in response to a membrane depolarization.
48 UNIT II Cellular Function
FIG 3.31 A typical cardiac muscle cell action potential showing the ion fluxes associated with each phase. Note that the repolarization phase is prolonged in comparison to the nerve action potential in Fig. 3.28. This occurs because Ca2+ influx offsets the repolarizing effect of K+ efflux and a plateau in the membrane potential is seen. When the Ca2+ channels close, the membrane quickly repolarizes.
INTERCELLULAR COMMUNICATION AND GROWTH Cell Signaling Strategies Cells in multicellular organisms need to communicate with one another and respond to changes in the cellular environment. Coordination of growth, cell division, and the functions of various tissues and organ systems are accomplished by three principal means of communication: (1) through gap junctions that directly connect the cytoplasm of adjoining cells; (2) by direct cell-to-cell contact of plasma membranes or the extracellular molecules associated with the cell (extracellular matrix); and (3) by secretion of chemical mediators (ligands) that influence cells some distance away (Fig. 3.32).
Gap junctions are found in many tissues. They are connecting chan- nels between adjacent cells that allow the passage of small molecules from one cell to the next. These junctions are formed by special transmembrane proteins called connexins that associate to form pores of about 1.5 nm in width. Small molecules, such as inorganic ions, glucose, amino acids, and vitamins, may pass through the pores, whereas macromolecules (e.g., proteins, polysaccharides, and nucleic acids) are too large to pass through pores. Gap junctions are particularly important in tissues in which synchronized functions are required, such as cardiac muscle contraction, vascular tone, and intestinal peristaltic movements. Gap junctions appear to be important in embryogenesis as well. Cellular differentiation may be mediated in part through chemical signaling through gap junctions. (See Chapter 5 for a discussion of the development and differentiation of tissue types.)
Direct contact of cell membrane receptors with signaling molecules present on the surface of other cells or extracellular matrix is an important means of local communication among cells in tissues. Contact-dependent signaling is particularly important for the development of the immune
Signaling cell
Signaling molecule
REMOTE SIGNALING BY SECRETED MOLECULES
DIRECT SIGNALING BY PLASMA MEMBRANE–BOUND MOLECULES OR EXTRACELLULAR MATRIX
DIRECT SIGNALING VIA GAP JUNCTIONS
Target cell
Receptor
Signaling cell
Signaling molecule
Target cell
Receptor
Matrix
FIG 3.32 Methods used for intercellular communication.
CHAPTER 3 Cell Structure and Function 49
Abnormal autocrine stimulation is thought to be a mechanism in some forms of cancer (see Chapter 7).
Target cells respond to ligand signaling through specific protein receptors. Cells can respond to a particular ligand only if they possess the appropriate receptor. For example, all cells of the body are exposed to thyroid-stimulating hormone (TSH) as it circulates in the blood, but only thyroid cells respond because they alone possess TSH receptors. However, cells that possess the same receptor may respond very differently to a particular ligand. For example, binding of acetylcholine to its receptor on a glandular cell may induce secretion, whereas binding to the same receptor on a cardiac muscle cell causes a decrease in contractile force. The cellular response to signaling molecules is regulated both by the array of receptors the cell carries and by the internal machinery to which the receptors are linked.
Cell Surface Receptor–Mediated Responses Most hormones, local chemical mediators, and neurotransmitters are water-soluble molecules that are unable to pass through the lipid bilayer of the cell. These ligands exert their effects through binding with a receptor on the surface of the target cell, which then changes or transduces the external signal into an intracellular message. There are three major classes of cell surface receptor proteins: ion channel–linked, enzyme- linked, and G-protein–coupled (Fig. 3.35).
Ion channel–linked receptors bind neurotransmitters, causing specific ion channels in the membrane to open or close. This type of signaling is prevalent in the nervous system, where rapid synaptic signaling between neurons is required. Enzyme-linked receptors catalyze enzyme reactions when they are activated by appropriate ligands. Nearly all enzyme-linked receptors function as protein kinases; that is, they mediate the transfer of phosphate groups from ATP (or GTP) to proteins (phosphorylate), and thus affect the activity of those target proteins. The insulin receptor and most growth factor receptors are protein kinase receptors that phosphorylate and activate intracellular enzyme cascades. Enzyme- linked kinase receptors activate common kinase cascades, including the
response. Such cell-to-cell contact during fetal development is thought to allow the cells of the immune system to discriminate between foreign and self tissues and to develop self-tolerance. If cell-to-cell contact does not occur during fetal life, the immune cells may later attack the body’s own cells, leading to the development of autoimmune diseases. (See Chapter 10 for a discussion of autoimmunity.) There are four major families of cell adhesion molecules (CAMs): immunoglobulin–cell adhesion molecules (Ig-CAMs), cadherins, integrins, and selectins. These cell adhesion proteins make contacts between cells and with the extracellular matrix and provide signals that maintain cell survival and differentiated cell types (Fig. 3.33).
The best understood form of cell communication is signaling through secreted molecules, or ligands. Three strategies of intercellular chemical signaling have been described, relating to the distances over which they operate (Fig. 3.34). Synaptic signaling is confined to the cells of the nervous system and occurs at specialized junctions between the nerve cell and its target cell. The neuron secretes a chemical neurotransmitter into the space between the nerve and target cell; the neurotransmitter then diffuses across this synaptic cleft and binds receptors on the postsynaptic cell. Synaptic signaling occurs over very small distances (50 nm) and involves only one or a few postsynaptic target cells. In paracrine signaling, chemicals are secreted into a localized area and are rapidly destroyed, so that only cells in the immediate area are affected. Growth factors (GFs), for example, act locally to promote wound healing without affecting the growth of the entire organism. Endocrine signaling is accomplished by specialized endocrine cells that secrete hormones that travel via the bloodstream to target cells widely distributed throughout the body. Endocrine signaling is slow in comparison to nervous signaling because it relies on diffusion and blood flow to target tissues.
A fourth type of signaling, autocrine signaling, occurs when cells are able to respond to signaling molecules that they secrete. Autocrine communication provides a feedback signal to the secreting cell and is commonly linked to pathways that regulate ligand secretion rates.
Extracellular Fluid
Cytoplasm
Fibronectin
Collagen fiber
Plasma membrane
Cytoskeleton
Integrin
Proteoglycan
Matrix
FIG 3.33 Cell adhesion proteins interact with the extracellular matrix (integrins) and with neighboring cells to maintain cell survival and differentiation. (Redrawn from Patton KT, Thibodeau GA: Anatomy & physiology, ed 9, St. Louis, 2016, Mosby, p. 141.)
50 UNIT II Cellular Function
A
B
C
D
Extracellular space
Bloodstream
Synapse
Signaling cell Synaptic
Paracrine
Endocrine (hormonal)
Autocrine
Target cell
Ligands
FIG 3.34 Signaling by secreted ligands can occur over variable distances. A, Synaptic signaling over a very small distance between neuron and target cell. B, Paracrine signaling through the extracellular fluid between cells in a tissue. C, Long-range signaling from endocrine cells through the bloodstream to distant targets. D, Localized autocrine signaling in which the secreting cell is also the target cell.
Ligand
Ion
A Ion channel–linked receptor
B Enzyme-linked receptor
C G-protein–linked receptor
P
Ligand
Protein kinases
Ligand
Trimeric G-protein
Enzyme
Second messenger
γα β
GTPATP
FIG 3.35 There are three major types of cell surface receptor proteins. A, Ion channel–linked receptors are also called ligand-gated channels. When the ligand binds, they open to allow specific ions through the membrane. B, Enzyme-linked receptors become activated kinases when a ligand binds to them. Kinases phosphorylate target proteins and change their activity. C, G-protein–linked (coupled) receptors have seven membrane-spanning segments with a ligand-binding pocket on the outside and a G-protein–activating portion on the inside. G-protein–linked receptors activate G-proteins, which in turn influence enzymes that produce second messengers.
CHAPTER 3 Cell Structure and Function 51
P P P P P P
RAS PI3K JAK
MAP kinases Protein
kinase B (AKt)
Target genes
STAT
GTP
FIG 3.36 Many growth factor receptors activate protein kinase cascades within the cell. Three common pathways are shown. After binding of ligand, the receptor dimerizes and becomes phosphorylated. A cascade of kinase activations is initiated resulting in a change in target gene transcription. GTP, Guanosine triphosphate; JAK, janus kinase; MAP, mitogen-activated kinase; PI3K, phosphoinositide 3-kinase; RAS, rat sarcoma protein; STAT, signal transducer and activator of transcription.
PI3K-protein kinase B pathway, the RAS-MAP kinase pathway, and the JAK-STAT pathway (Fig. 3.36).
A large number of signaling ligands bind to G-protein–coupled receptors (GPCRs). Most hormones and many drugs have their effects through G-protein–linked cascades. G-protein–coupled receptors act indirectly through a membrane-bound trimeric G-protein that binds GTP when activated by the receptor. The activated α subunit of the trimeric G-protein influences the activity of specific target enzymes. The target enzymes of G-proteins produce second messengers that trigger specific intracellular cascades and alter cell function (Fig. 3.37). The α subunit of G-proteins has intrinsic enzyme activity that degrades GTP into GDP and Pi after a time. When GTP is bound, the G-protein is in the right conformation to activate its downstream targets, but when GTP is hydrolyzed to GDP and Pi, the G-protein resumes its inactive conformation and the activity of the signaling cascade is terminated.
There are three principal G-protein–coupled signaling systems that, when activated, alter the intracellular concentration of one or more second messengers (see Fig. 3.37). Numerous receptors activate trimeric G-proteins whose α subunit stimulates adenylyl cyclase to produce the second messenger cyclic adenosine monophosphate (cAMP). These G-proteins are called Gs. An increase in cAMP concentration is linked to different signaling cascades in different cell types. For example, cAMP causes glycogen breakdown in liver cells, increased force of contraction in cardiac cells, and increased secretion by glandular cells. Various cell types respond differently to the same second messenger because of differences in enzymes and other proteins in the cell.
Another important G-protein–coupled cascade is mediated by G-proteins called Gq whose α subunit stimulates the enzyme phospho- lipase C. Phospholipase C cleaves a membrane phospholipid (PI[4,5] P2) to form two second messengers: inositol 1,4,5-trisphosphate (IP3)
and diacylglycerol (DAG) (see Fig. 3.37). The IP3 travels to the ER, where it stimulates the release of Ca2+ into the cytoplasm. The Ca2+ then triggers a change in cell function. DAG remains bound to the inner surface of the plasma membrane and can trigger several different intracellular cascades. Two important targets are the protein kinase C pathway and the eicosanoid pathway. Protein kinase C is a key enzyme in the growth response. The eicosanoid pathway results in the production of several arachidonic acid derivatives, including prostaglandins. These products are often secreted by the cell as signaling molecules to other nearby cells. Prostaglandins are important mediators of inflammation and platelet function.
The third trimeric G-protein type is called Gi because it is inhibitory to the production of cAMP. GPCRs such as the acetylcholine receptor in the heart activate Gi, whose α subunit then inhibits adenylyl cyclase (see Fig. 3.37). In this case the γβ subunit of Gi is also activated and opens membrane potassium channels in the heart, which tend to slow the heart rate. Although Gs, Gq, and Gi are the primary trimeric G-protein signaling cascades, others have been described (Table 3.1).
In addition to the four second messengers already mentioned (cAMP, IP3, DAG, and Ca
2+) there is a fifth called cyclic guanosine monophosphate (cGMP), which is produced by the enzyme guanylyl cyclase (Fig. 3.38). The primary activator of guanylyl cyclase is a small lipid-soluble gas molecule called nitric oxide. Nitric oxide is an important signaling molecule with widespread targets. It functions as a neurotransmitter in the brain and is an important smooth muscle relaxant in the vascular system. cGMP is also produced by a special class of enzyme-linked receptors (see Fig. 3.38).
To be effective at communicating signals, all the receptor systems must be quickly turned off so that they can be responsive to the next incoming signal. A variety of strategies are used to quench the signaling
52 UNIT II Cellular Function
GTP
γ β αq αq
Gq Pathway
γ β γ βαi
Gi Pathway
GTP Eicosanoids
Phospholipase C
Enzyme activation
Protein kinase C
Adenylyl cyclase
P
P P
P
P P
PIP2
Ca2�
ER
(or)
IP3
Cellular effects
DAG
cAMP
Protein kinase AHydrolysis inactivates
Hydrolysis inactivates
γ β αs αs
Gs Pathway
GTP GTP
On
On
On
Off
GDP/Pi
Off
GDP/Pi
Hydrolysis inactivates
Off
GDP/Pi
GTP
GTP
ATP
Cellular effects
K� channel opening
Adenylyl cyclase
Inhibits AC and ↓cAMP
A
B
C
αi
FIG 3.37 G-protein–coupled signaling. When the ligand binds to the receptor, an intracellular domain is changed into an active configuration that can interact with inactive trimeric G-proteins. The receptor induces the G-protein to release its bound GDP and Pi in exchange for a GTP molecule. When GTP binds to the α subunit of the G-protein, it is activated and diffuses away from the γβ subunits to find its target enzyme (adenylyl cyclase [AC] or phospholipase C). The α GTP stimulates its target enzyme to produce a second messenger, which in turn activates a signaling cascade within the cell. After a time, the α subunit hydrolyzes its GTP to GDP and Pi and becomes inactive. The α subunit is now in the correct conformation to reassociate with the γβ subunits and await another signal from the receptor. A, The Gs pathway increases the production of cyclic adenosine monophosphate (cAMP). B, The Gq pathway increases the production of inositol 1,4,5-tri- sphosphate (IP3) and diacylglycerol (DAG). C, The Gi pathway is inhibitory to the production of cAMP. In some cases the γβ subunit also has functional activity and may regulate ion channels. ER, Endoplasmic reticulum; PKC, protein kinase C.
CHAPTER 3 Cell Structure and Function 53
phosphorylate G-protein receptors are called G-protein–receptor kinases (GRKs). The mechanisms that “turn off” signaling cascades are vitally important to maintaining a responsive communication system.
Intracellular Receptor–Mediated Responses A small number of hormones are lipid soluble and can pass directly through the cell membrane to interact with receptors inside the cell. These receptors are located in the cell cytosol (e.g., cortisol) or may be associated with the cell nucleus. Intracellular receptors are specific for a particular ligand, just as surface receptors are. Binding of the ligand causes the receptor to become activated. Because lipid-soluble ligands enter the cell directly, no second messengers are needed. An activated cytosolic steroid receptor travels to the nucleus, where it binds with specific genes and regulates their activity (Fig. 3.40). Thyroid receptors are also located within the cell. Thyroid hormone enters the cell through carriers in the membrane and travels to the nucleus. The thyroid receptor is already bound to DNA in the absence of thyroid hormone. When thyroid hormone finds its nuclear receptor, the complex dissociates and removes an inhibitory influence on gene transcription. Cellular responses to these gene regulatory receptor complexes are slow in comparison to the cell surface receptor responses and generally last longer.
cascades (Fig. 3.39). For example, phosphodiesterases are enzymes that convert the cyclic nucleotides cAMP and cGMP to their inactive forms, AMP and GMP, respectively, and help to remove these second messengers soon after they are formed. Some drugs, such as caffeine and sildenafil citrate (Viagra), are phosphodiesterase inhibitors that slow the normal breakdown of cyclic nucleotides and prolong their activity. Many of the intracellular signaling cascades rely on kinases that phosphorylate their target proteins and change their activity. The action of kinases is countered by numerous phosphatase enzymes that quickly cleave the phosphates off the target proteins and inhibit their activity.
The cell also can regulate the activity and number of receptors on the cell surface. Generally a cell decreases the number or activity of receptors when it is exposed to excessive concentrations of signaling molecules (see Fig. 3.39). Receptors can be internalized in the cell where they are inactive but are available for later use, or they can be sent to lysosomes for degradation. Destruction of receptors in lysosomes is called down-regulation. (The production of extra receptors is called up-regulation.) Receptors that remain in the membrane also can be inhibited by phosphorylation, which blocks them from interacting with their intracellular targets. Receptors that can bind ligand but do not produce a response are said to be uncoupled. The proteins that
TABLE 3.1 Four Major Families of Trimeric G Proteins
Family* Some Family Members
Subunits That Mediate Action Some Functions
I Gs α Activates adenylyl cyclase; activates Ca2+ channels Golf α Activates adenylyl cyclase in olfactory sensory neurons
II Gi α Inhibits adenylyl cyclase βγ Activates K+ channels
Go βγ Activates K+ channels; inactivates Ca2+ channels α and βγ Activates phospholipase C-β
Gt (transducin) α Activates cyclic GMP phosphodiesterase in vertebrate rod photoreceptors III Gq α Activates phospholipase C-β IV G12/13 α Activates Rho family monomeric GTPases (via Rho-GEF) to regulate the actin cytoskeleton
*Families are determined by amino acid sequence relatedness of the α subunits. Only selected examples are included. About 20 α subunits and 11 γ subunits have been described in humans. Alberts B, et al: Cell signaling. In Alberts B, et al: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p 846.
GTP
GTP
Water-soluble ligand
Nitric oxide (gas)
Guanylyl cyclase
Cyclic GMP
Protein kinase G
cGMP
cGMP
A B
FIG 3.38 Cyclic GMP (cGMP) is an important second messenger. A, It can be synthesized by enzyme-linked receptors that are activated by water-soluble ligands such as atrial natriuretic peptide. B, Nitric oxide is an important signaling molecule that is lipid soluble and can diffuse across the cell membrane. Nitric oxide binds to and stimulates the enzyme guanylyl cyclase to produce cGMP.
54 UNIT II Cellular Function
O Adenine
O
O
O
O
–O P
P O–O
CH2
CH2
H2O
OH
Phosphodiesterase
Uncoupling of receptors by GRKs
Generation of cyclic nucleotides (cAMP, cGMP)
P A
Internalization of receptors
B
Inactivation by phosphodiesterases
D
Degradation of receptors in lysosomes (down-regulation)
C
Inactivation by phosphatases
Phosphorylation of targets by kinases
E
O Adenine
OH OH
cAMP
AMP
FIG 3.39 A variety of mechanisms exist to inhibit receptor-mediated signaling cascades. A, Phosphorylation of the receptor by receptor kinases such as G-protein receptor kinases (GRKs) uncouples the enzyme from its intracellular cascade. B, Receptor internalization temporarily reduces the number of receptors displayed at the cell surface. C, Receptor degradation results in a long-term reduction in receptors (down-regulation). D, The cyclic nucleotide second messengers can be degraded by phosphodiesterase enzymes to stop the intracellular cascade. E, Phosphatase enzymes counteract the phosphorylating activities of kinases and inhibit the intracellular cascade.
Regulation of Cellular Growth and Proliferation In multicellular organisms such as humans, the growth and proliferation of cells and tissues must be strictly controlled to maintain a balance between cell birth rate and cell death rate. The system must be capable of rapidly increasing proliferation of a particular tissue to replace cells lost to injury and normal wear and tear while simultaneously inhibiting unwanted growth or proliferation of other cells. Special intercellular communication systems function to regulate the replication of individual cells in the body. Two important strategies of cell cycle control have been described. First, a variety of protein mitogens and growth factors are required in specific combinations for growth and proliferation of particular cell types. Second, cells respond to spatial signals from the extracellular matrix (from integrin receptors) and neighboring cells (from cell adhesion proteins) that indicate how much room is available. When conditions favor cell proliferation, the cell proceeds through the stages of the cell cycle (Fig. 3.41). Dormant cells can remain in G1 phase indefinitely (called G0). Cycling cells proceed through G1, S phase (synthesis), G2, M phase (mitosis), and cell division. S phase is character- ized by duplication of DNA and synthesis of intracellular components
in preparation for cell division. M phase, or mitosis, proceeds through six stages, beginning with prophase, in which the chromosomes condense and become visible, and ending with cytokinesis, when cell division is accomplished. The chromosomes of body cells are duplicated and distributed equally to the cell’s progeny when it divides by mitosis, such that each daughter cell receives an identical full set of 46 chromosomes. The stages of mitotic cell division are explained in Fig. 3.42. Mitosis is responsible for the proliferation of body cells in which little genetic variation is needed or desired. A more elaborate cell division process, meiosis, occurs in the germ cells (egg and sperm), where significant chromosomal rearrangements occur (see Chapter 6).
The cell cycle has been the subject of intense study in recent years because of its importance in cancer biology. Cancer cells continue to grow and divide unchecked, despite the lack of appropriate signals to stimulate them. Of particular interest are the events that prod the cell from its dormant state and cause it to begin the cycle. A simplified picture of a major component of this complex process is shown in Fig. 3.43. The Rb protein (or pRb) is of central importance in preventing a cell from proceeding through the cell cycle. The Rb protein functions to bind gene transcription factors called E2F so that they are unable to
CHAPTER 3 Cell Structure and Function 55
Cortisol Thyroid
Cytosolic receptor
Nuclear receptorDNA
Nucleus change in gene transcription
FIG 3.40 Lipid-soluble ligands, such as steroid hormones and gases, can diffuse across the cell membrane and interact with receptors located within the cell cytoplasm or nucleus. Thyroid hormone enters the cell through a carrier to interact with its intracellular receptor. When the ligand binds to its intracellular receptor, it forms a functional gene regulatory protein that affects the rate of transcription of its target genes. The response of the cell to intracellular ligands is generally slow and long lasting.
Restriction point
M phase
S phase
G1
G2
FIG 3.41 Events of the cell cycle. The cycle begins late in G1 when the cell passes a restriction point. The cell then proceeds systematically through the S phase (synthesis), G2, and M phase (mitosis).
To respond to a mitogen growth factor, a cell must have the cor- responding receptor on its cell surface. Many cells in the body synthesize and secrete mitogens, which then influence the proliferation of other cell types in a paracrine or endocrine fashion. Platelet-derived growth factor (PDGF) was one of the first mitogens to be discovered. It is secreted by platelets when they form blood clots in response to an injury. PDGF stimulates fibroblasts and smooth muscle cells in the damaged area to divide and replace cells lost to the injury. Numerous mitogens have been identified, and most cells require an appropriate combination of mitogen signals before they can enter the cell cycle. There are many signaling steps in the pathway from mitogen receptor to DNA activation. Somatic cells respond to GFs by increasing cell size, whereas stem cell populations undergo cell division. Thus the same signaling ligands may have different effects depending on cell type and conditions. Similar signaling pathways may also trigger cell death (apoptosis) when cells have to be reduced or removed during tissue development and remodeling. The processes of abnormal cellular proliferation and cancer are further detailed in Chapter 7. The process of apoptosis is described in Chapter 4.
KEY POINTS • Intercellular communication is accomplished by three principal means: (1)
gap junctions, which directly connect the cytoplasm of adjoining cells; (2) direct cell-to-cell surface contact; and (3) secretion of chemical mediators (ligands). Most ligands are water-soluble molecules that interact with receptors on the cell surface. These receptors are of three general types: ion channel linked, enzyme linked, and G-protein coupled.
• Binding of a ligand to a G-protein receptor controls the production of second messengers (cAMP, IP3, DAG, Ca
2+) within the target cell that initiate changes in cell function.
• Somatic cells divide by a process called mitosis in which daughter cells each receive an identical and complete set of 46 chromosomes.
• Cell replication normally requires specific extracellular mitogens that activate signaling systems within the cell. Cyclin proteins and Cdk alter the function of Rb protein, causing it to release transcription factors that begin the process of cell replication.
bind to DNA promoter regions and begin the processes of cell replication. The Rb protein can be induced to release the E2F transcription factors when appropriate mitogen signals arrive at the cell surface. These proliferation-promoting signals at the cell surface are transmitted to pRb by way of cyclin-dependent signaling pathways within the cell. Proteins called cyclins accumulate in the cell and then bind to and activate cyclin-dependent kinases (Cdk). The Cdk then phosphorylates pRb, changing its affinity for E2F so that it is released. The E2F then translocates to specific regions of DNA where it regulates more than 500 genes and promotes cell replication.
56 UNIT II Cellular Function
PROPHASE
Centromere
PROMETAPHASE
METAPHASE
Spindle poleCentriole
Microtubules
Random agitated chromosome
Cytoplasm
Aligned chromosomes
Microtubules attached to
centromeres
Polar tubules
ANAPHASE
Shortening microtubules
Elongating polar
tubules
Increasing distance between poles
TELOPHASE
Chromatids decondense
Cleavage furrow
CYTOKINESIS
Cleavage
Centrioles Cell membrane
Sister chromatids Nuclear membrane
Nucleus re-forms
Microtubules disappear
Polar tubule
UNDERSTANDING MITOSIS • PROPHASE—Chromatin slowly condenses into well-defined chromosomes that consist of two sister chromatids and a centromere. The mitotic spindle, a bipolar structure composed of microtubules and associated proteins, begins to form.
• PROMETAPHASE—Nuclear membrane disintegrates. Centrioles separate and polarize while spindle formation begins. Chromosomes respond with agitated movement.
• METAPHASE—Chromosomes align halfway between the spindle poles. Each is attached by its centromere to a microtubule that is also linked to the spindle pole.
• ANAPHASE—Centromeres divide, and the microtubule attached to each chromatid pulls it toward the pole. At the same time, the polar tubules elongate and the poles move farther apart.
• TELOPHASE—Separated daughter chromatids arrive at poles, and the microtubules disappear. Polar tubules continue to elongate, and the cell cleavage furrow appears. A nucleus re-forms at each pole.
• CYTOKINESIS—Cleavage completes the process, which results in two separate daughter cells.
FIG 3.42 Six stages of mitotic cell division. (Redrawn from Nichols FH, Zwelling E, editors: Maternal-newborn nursing: theory and practice, Philadelphia, 1997, Saunders, p 307.)
CHAPTER 3 Cell Structure and Function 57
Mitogens
Inhibitory signals
Accumulation of cyclins
Inhibit growth
Activation of G1 Cdk
Gene transcription
Start S phase
Phosphorylation of pRb
P
P P
pRb
Release of transcription factors (E2F)
FIG 3.43 The mechanism of initiation of cellular replication requires appropriate stimulation by extracellular growth factors that bind their complementary receptors on the cell surface. Activation of the receptor stimulates signaling pathways within the cell that increase cyclin proteins. The cyclins bind to cyclin-dependent kinases (Cdks) to form active enzyme complexes. The active cyclin-Cdk enzymes phosphorylate Rb protein (pRb), inducing it to release E2F transcription factors that initiate replication. In the absence of appropriate growth factor signals, the Rb protein functions to inhibit unwanted cell proliferation.
Detailed knowledge of cell physiology is essential to understanding disease processes. Cells are complex, membrane-bound units that perform a variety of functions necessary to the maintenance of life. The major cell components and their functions are summarized in Table 3.2. The cell membrane is an important cellular structure that protects the cell interior and mediates information transfer to and from the extracellular environment. Proteins embedded in the membrane lipid bilayer perform most of the membrane functions, including transduction of extracellular messages, membrane transport, electrical excitation, and cell-to-cell communication.
Human cells have several important intracellular organelles. These include the cytoskeleton, which organizes the intracellular compartment;
S U M M A R Y the nucleus, which holds the cell’s genetic material and directs the daily activities of the cell; the ER and the Golgi apparatus, which produce, package, and transport proteins and lipids to the plasma membrane and lysosomes; the lysosomes and peroxisomes, which perform the task of intracellular digestion of organic waste; and the mitochondria, which produce cellular energy in the form of ATP. The energy released by ATP hydrolysis is used by the cell to drive the many energetically unfavorable reactions needed to maintain cellular functions. Multicellular organisms have developed complex communication systems to control cell behavior, such as growth and differentiation into specialized cell types. Disruption of these cellular processes is at the root of pathophysiologic processes and disease.
TABLE 3.2 Structure and Function of Major Cellular Components
Cellular Structure Functions
Plasma membrane Protective barrier separates life from nonlife
Extracellular message transduction Transport of materials into and out
of cell Maintenance and transmission of
membrane potentials Cell-to-cell recognition, interaction
Cytoskeleton Maintenance of cell shape Cell movement Trafficking within cell
ATP, Adenosine triphosphate.
Cellular Structure Functions
Nucleus Protection of genetic material Regulation of cell type and function through
control of protein synthesis Endoplasmic reticulum Protein and lipid synthesis
Lipid metabolism and detoxification Golgi apparatus Protein and lipid modification and sorting
Transport of proteins and lipids to appropriate destinations
Lysosomes Hydrolytic breakdown of organic waste Peroxisomes Oxidative breakdown of organic waste Mitochondria Cellular energy production (ATP)
58 UNIT II Cellular Function
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Meisenberg G, Simmons WH: Glycolysis, tricarboxylic acid cycle, and oxidative phosphorylation. In Meisenberg G, Simmons WH, editors: Principles of medical biochemistry, ed 3, Philadelphia, 2012, Saunders, pp 347–373.
Pollard T, Earnshaw W: Cell biology, ed 2, Philadelphia, 2008, Saunders, p 332.
Cellular Electrical Potentials Alberts B, et al: Membrane transport of small molecules and the electrical
properties of membranes. In Alberts B, et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, pp 597–640.
Baker PF, Hodgkin AL, Shaw T: The effects of changes in internal ionic concentrations of the electrical properties of perfused giant axons. J Physiol 164:355–374, 1962.
Catterall WA: Structure and function of voltage-gated sodium channels at atomic resolution. Exp Physiol 99(1):35–51, 2014.
Hodgkin AL: The conduction of the nervous impulse, Liverpool, England, 1971, Liverpool University Press.
Hodgkin AL, Huxley AF: Currents carried by sodium and potassium ions through the membrane of the giant axon of Loligo. J Physiol 116:449–472, 1952.
Hodgkin AL, Huxley AF, Katz B: Measurement of current-voltage relations in the membrane of the giant axon of Loligo. J Physiol 116:424–448, 1952.
Hodgkin AL, Katz B: The effect of sodium ions on the electrical activity of the giant axon of the squid. J Physiol 108:37–77, 1949.
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Pollard T, Earnshaw W: Cell biology, ed 2, Philadelphia, 2008, Saunders, p 149.
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the cell, ed 6, New York, 2015, Garland Science, pp 813–888. Dick FA, Rubin SM: Molecular mechanisms underlying RB protein function.
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4
Cell Injury, Aging, and Death Jacquelyn L. Banasik
K E Y Q U E S T I O N S • What are the usual cellular responses to reversible injury? • How are reversible and irreversible cellular injuries differentiated? • How do necrosis and apoptosis differ?
• To what kind of injuries are cells susceptible? • What are the usual physiologic changes of aging, and how are
these differentiated from disease?
C H A P T E R O U T L I N E Reversible Cell Injury, 59
Hydropic Swelling, 60
Intracellular Accumulations, 60
Cellular Adaptation, 63 Atrophy, 63
Hypertrophy, 63
Hyperplasia, 63
Metaplasia, 63
Dysplasia, 64
Irreversible Cell Injury, 64 Necrosis, 64
Apoptosis, 66
Etiology of Cellular Injury, 68 Ischemia and Hypoxic Injury, 68
Nutritional Injury, 70
Infectious and Immunologic Injury, 70
Chemical Injury, 72
Physical and Mechanical Injury, 72
Cellular Aging, 74 Cellular Basis of Aging, 74
Physiologic Changes of Aging, 75
Somatic Death, 75
http://evolve.elsevier.com/Banasik/pathophysiology/
Disease and injury are increasingly being understood as cellular and genomic phenomena. Although pathophysiologic processes are often presented in terms of systemic effects and manifestations, ultimately it is the cells that make up the systems that are affected. Even complex multisystem disorders such as cancer ultimately are the result of altera- tions in cell function. As the mysterious mechanisms of diseases are understood on the cellular and molecular levels, more specific methods of diagnosis, treatment, and prevention can be developed. This chapter presents the general characteristics of cellular injury, adaptation, aging, and death that underlie the discussions of systemic pathophysiologic processes presented in later chapters of this text.
Cells are confronted by many challenges to their integrity and survival and have efficient mechanisms for coping with an altered cellular environment. Cells respond to environmental changes or injury in three general ways: (1) when the change is mild or short lived, the cell may withstand the assault and completely return to normal. This is called a reversible cell injury. (2) The cell may adapt to a persistent but sublethal
injury by changing its structure or function. Generally, adaptation also is reversible. (3) Cell death may occur if the injury is too severe or prolonged. Cell death is irreversible and may occur by two different processes termed necrosis and apoptosis. Necrosis is cell death caused by external injury, whereas apoptosis is triggered by intracellular signaling cascades that result in regulated cell death. Necrosis is considered to be a pathologic process associated with significant tissue damage, whereas apoptosis may be a normal physiologic process in some instances and pathologic in others.
REVERSIBLE CELL INJURY Regardless of the cause, reversible injuries and the early stages of irrevers- ible injuries often result in cellular swelling and the accumulation of excess substances within the cell. These changes reflect the cell’s inability to perform normal metabolic functions because of insufficient cellular energy in the form of adenosine triphosphate (ATP) or dysfunction of
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
60 UNIT II Cellular Function
is often associated with excessive intake of alcohol. Mechanisms whereby alcohol causes fatty liver remain unclear, but it is thought to result from direct toxic effects, as well as the preferential metabolism of alcohol instead of lipid (see Chapter 38 for a discussion of fatty liver). Lipids may also contribute to atherosclerotic diseases and accumulate in blood vessels, kidney, heart, and other organs. Fat-filled cells tend to compress cellular components to one side and cause the tissue to appear yellowish and greasy (Fig. 4.3). In several genetic disorders, the enzymes needed to metabolize lipids are impaired; these include Tay-Sachs disease and Gaucher disease, in which lipids accumulate in neurologic tissue.
Glycosaminoglycans (mucopolysaccharides) are large carbohydrate complexes that normally compose the extracellular matrix of connective tissues. Connective tissue cells secrete most of the glycosaminoglycan into the extracellular space, but a small portion remains inside the cell and is normally degraded by lysosomal enzymes. The mucopolysaccharidoses are a group of genetic diseases in which the enzymatic degradation of these molecules is impaired and they collect within the cell. Mental disabilities and connective tissue disorders are common findings.
Like other disorders of accumulation, excessive glycogen storage can be the result of inborn errors of metabolism, but a common cause is diabetes mellitus. Diabetes mellitus is associated with impaired cellular uptake of glucose, which results in high serum and urine glucose levels. Cells of the renal tubules reabsorb the excess filtered glucose and store it intracellularly as glycogen. The renal tubule cells also are a common site for abnormal accumulations of proteins. Normally, very little protein escapes the bloodstream into the urine. However, with certain disorders, renal glomerular capillaries become leaky and allow proteins to pass through them. Renal tubule cells recapture some of the escaped proteins through endocytosis, resulting in abnormal accumulation.
Cellular stress may lead to accumulation and aggregation of denatured proteins. The abnormally folded intracellular proteins may cause serious cell dysfunction and death if they are allowed to persist in the cell. A family of stress proteins (also called chaperone or heat-shock proteins) is responsible for binding and refolding aberrant proteins back into their correct three-dimensional forms (Fig. 4.4). If the chaperones are unsuccessful in correcting the defect, the abnormal proteins form complexes with another protein called ubiquitin. Ubiquitin targets the abnormal proteins to enter a proteosome complex, where they are digested into fragments that are less injurious to cells (see Fig. 4.4).
Finally, a variety of pigments and inorganic particles may be present in cells. Some pigment accumulations are normal, such as the accumulation
associated metabolic enzymes. Once the acute stress or injury has been removed, by definition of a reversible injury, the cell returns to its preinjury state.
Hydropic Swelling Cellular swelling attributable to accumulation of water—called hydropic swelling or oncosis—is the first manifestation of most forms of reversible cell injury. Hydropic swelling results from malfunction of the sodium– potassium (Na+–K+) pumps that normally maintain ionic equilibrium of the cell. Failure of the Na+–K+ pump results in accumulation of sodium ions within the cell, creating an osmotic gradient for water entry. Because Na+–K+ pump function is dependent on the presence of cellular ATP, any injury that causes insufficient energy production will result in hydropic swelling (Fig. 4.1). Hydropic swelling is character- ized by a large, pale cytoplasm; dilated endoplasmic reticulum; and swollen mitochondria. With severe hydropic swelling, the endoplasmic reticulum may rupture and form large water-filled vacuoles. Generalized swelling in the cells of a particular organ may cause the organ to increase in size and weight. Organ enlargement is indicated by the suffix -megaly (e.g., splenomegaly denotes an enlarged spleen, hepatomegaly denotes an enlarged liver).
Intracellular Accumulations Excess accumulations of substances in cells may result in cellular injury because the substances are toxic or provoke an immune response, or merely because they occupy space needed for cellular functions. In some cases, accumulations do not in themselves appear to be injurious, but rather are indicators of cell injury. Intracellular accumulations may be categorized as (1) excessive amounts of normal intracellular substances such as fat, (2) accumulation of abnormal substances produced by the cell because of faulty metabolism or synthesis, and (3) accumulation of pigments and particles that the cell is unable to degrade (Fig. 4.2).
Normal intracellular substances that tend to accumulate in injured cells include lipids, carbohydrates, glycogen, and proteins. Faulty metabolism of these substances within the cell results in excessive intracellular storage. In some cases, the enzymes required for breaking down a particular substance are absent or abnormal as a result of a genetic defect. In other cases, altered metabolism may be due to excessive intake, toxins, or other disease processes.
A common site of intracellular lipid accumulation is the liver, where many fats are normally stored, metabolized, and synthesized. Fatty liver
A B
FIG 4.1 Cellular swelling in kidney tubule epithelial cells. A, Normal kidney tubule with cuboidal cells. B, Early ischemic changes showing surface blebs and swelling of cells. (From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 42. Photograph courtesy Drs. Neal Pinckard and M. A. Venkatachalam, University of Texas Health Sciences Center, San Antonio, TX.)
CHAPTER 4 Cell Injury, Aging, and Death 61
include calcium, tar, and mineral dusts such as coal, silica, iron, lead, and silver. Mineral dusts generally are inhaled and accumulate in lung tissue (Fig. 4.5). Inhaled dusts cause chronic inflammatory reactions in the lung, which generally result in destruction of pulmonary alveoli and capillaries and the formation of scar tissue. Over many years, the lung may become stiff and difficult to expand because of extensive scarring (see Chapter 23).
Deposits of calcium salts occur in conditions of altered calcium intake, excretion, or metabolism. Impaired renal excretion of phosphate
of melanin in tanned skin, whereas others signify pathophysiologic processes. Pigments may be produced by the body (endogenous) or may be introduced from outside sources (exogenous). In addition to melanin, the iron-containing substances hemosiderin and bilirubin are endogenous pigments that, when present in excessive amounts, indicate disease processes. Hemosiderin and bilirubin are derived from hemoglobin. Excessive amounts may indicate abnormal breakdown of red blood cells (RBCs), prolonged administration of iron, or the presence of hepatobiliary disorders. Inorganic particles that may accumulate
1, Abnormal metabolism
Normal cell
2, Defect in protein folding, transport
Protein mutation
Complex substrate Complex substrateEnzyme
Soluble products
4, Ingestion of indigestible materials
3, Lack of enzyme
Accumulation of endogenous materials
Accumulation of abnormal proteins
Accumulation of exogenous materials
Fatty liver
FIG 4.2 General mechanisms of intracellular accumulation: (1) abnormal metabolism as in fatty change in the liver, (2) mutations causing alterations in protein folding and transport so that defective proteins accumulate, (3) deficiency of critical enzyme responsible for lysosomal degradation, and (4) an inability to degrade phago- cytosed particles such as coal dust.
62 UNIT II Cellular Function
may result in the formation of calcium phosphate salts that are deposited in the tissues of the eye, heart, and blood vessels. Calcification of the heart valves may cause obstruction to blood flow through the heart or interfere with valve closing. Calcification of blood vessels may result in narrowing of vessels and insufficient blood flow to distal tissues. Dead and dying tissues often become calcified (filled with calcium salts) and appear as dense areas on x-ray films. For example, lung damage resulting from tuberculosis often is apparent as calcified areas, called tubercles.
With the exception of inorganic particles, the intracellular accumula- tions generally are reversible if the causative factors are removed.
FIG 4.3 Gross appearance of a fatty donor liver (A) compared with a normal nonfatty donor liver (B). (From Odze RD, Goldblum JR. Surgical pathology of the GI tract, liver, biliary tract, and pancreas, ed 2, St Louis, 2009, Elsevier.)
Accumulation of misfolded
proteins
Protein Stress (UV, heat, free radical injury, etc.)
Mutations Increased synthesis of chaperones to refold
Activation of the ubiquitin-proteasome pathway
Decreased translation of proteins to reduce debris
If too severe, activation of caspases
Apoptosis
Repair
Ubiquitin
Proteasome
Degradation of unfolded proteins
FIG 4.4 Roles of chaperone proteins in protein refolding and ubiquitin in protein degradation after stress- induced protein damage.
FIG 4.5 Accumulations of silicon dust in tissues of the lung. (From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 690. Photograph courtesy Dr. John Goldeski, Brigham and Women’s Hospital, Boston, MA.)
KEY POINTS • Hydropic swelling is an early indicator of cell injury. It results from Na+–K+
pump dysfunction at the cell membrane. • Intracellular accumulations of abnormal endogenous or exogenous particles
indicate a disorder of cellular metabolism. • Damage from accumulation of abnormal intracellular protein is limited by
chaperone proteins that attempt to refold the protein into its correct shape and by the ubiquitin–proteosome system that digests targeted proteins into fragments.
CHAPTER 4 Cell Injury, Aging, and Death 63
The biochemical pathways that result in cellular atrophy are imper- fectly known; however, two pathways for protein degradation have been implicated. The first is the previously mentioned ubiquitin–proteosome system, which degrades targeted proteins into small fragments (see Fig. 4.4). The second involves the lysosomes that may fuse with intracellular structures, leading to hydrolytic degradation of the components (autophagy). Certain substances apparently are resistant to degradation and remain in the lysosomal vesicles of atrophied cells. For example, lipofuscin is an age-related pigment that accumulates in residual vesicles in atrophied cells, giving them a yellow-brown appearance.
Hypertrophy Hypertrophy is an increase in cell mass accompanied by an augmented functional capacity. Cells hypertrophy in response to increased physiologic or pathophysiologic demands. Cellular enlargement results primarily from a net increase in cellular protein content. Like the other adaptive responses, hypertrophy subsides when the increased demand is removed; however, the cell may not entirely return to normal because of persistent changes in connective tissue structures. Organ enlargement may be a result of both an increase in cell size (hypertrophy) and an increase in cell number (hyperplasia). For example, an increase in skeletal muscle mass and strength in response to repeated exercise is primarily the result of hypertrophy of individual muscle cells, although some increase in cell number is also possible because muscle stem cells (satellite cells) are able to divide. Physiologic hypertrophy occurs in response to a variety of trophic hormones in sex organs—the breast and uterus, for example. Certain pathophysiologic conditions may place undue stress on some tissues, causing them to hypertrophy. Liver enlargement in response to bodily toxins and cardiac muscle enlargement in response to high blood pressure (Fig. 4.7) represent hyperplastic and hypertrophic adaptations to pathologic conditions. Hypertrophic adaptation is particularly important for cells, such as differentiated muscle cells, that are unable to undergo mitotic division.
Hyperplasia Cells that are capable of mitotic division generally increase their functional capacity by increasing the number of cells (hyperplasia) as well as by hypertrophy. Hyperplasia usually results from increased physiologic demands or hormonal stimulation. Persistent cell injury also may lead to hyperplasia. Examples of demand-induced hyperplasia include an increase in RBC number in response to high altitude and liver enlargement in response to drug detoxification. Trophic hormones induce hyperplasia in their target tissues. Estrogen, for example, leads to an increase in the number of endometrial and uterine stromal cells. Dysregulation of hormones or growth factors can result in pathologic hyperplasia, such as that which occurs in thyroid or prostate enlargement.
Chronic irritation of epithelial cells often results in hyperplasia. Calluses and corns, for example, result from chronic frictional injury to the skin. The epithelium of the bladder commonly becomes hyper- plastic in response to the chronic inflammation of cystitis.
Metaplasia Metaplasia is the replacement of one differentiated cell type with another. This most often occurs as an adaptation to persistent injury, with the replacement cell type better able to tolerate the injurious stimulation. Metaplasia is fully reversible when the injurious stimulus is removed. Metaplasia often involves the replacement of glandular epithelium with squamous epithelium. Chronic irritation of the bronchial mucosa by cigarette smoke, for example, leads to the conversion of ciliated columnar epithelium to stratified squamous epithelium. Metaplastic cells generally remain well differentiated and of the same tissue type, although cancerous
CELLULAR ADAPTATION The cellular response to persistent, sublethal stress reflects the cell’s efforts to adapt. Cellular stress may be due to an increased functional demand or a reversible cellular injury. Although the term adaptation implies a change for the better, in some instances an adaptive change may not be beneficial. The common adaptive responses are atrophy (decreased cell size), hypertrophy (increased cell size), hyperplasia (increased cell number), metaplasia (conversion of one cell type to another), and dysplasia (disorderly growth) (Fig. 4.6). Each of these changes is potentially reversible when the cellular stress is relieved.
Atrophy Atrophy occurs when cells shrink and reduce their differentiated functions in response to a variety of normal and injurious factors. The general causes of atrophy may be summarized as (1) disuse, (2) denervation, (3) ischemia, (4) nutrient starvation, (5) interruption of endocrine signals, (6) and persistent cell injury. Apparently, atrophy represents an effort by the cell to minimize its energy and nutrient consumption by decreasing the number of intracellular organelles and other structures.
A common form of atrophy is the result of a reduction in functional demand, sometimes called disuse atrophy. For example, immobilization by bed rest or casting of an extremity results in shrinkage of skeletal muscle cells. On resumption of activity, the tissue resumes its normal size. Denervation of skeletal muscle results in a similar decrease in muscle size caused by loss of nervous stimulation. Inadequate blood supply to a tissue is known as ischemia. If the blood supply is totally interrupted, the cells will die, but chronic sublethal ischemia usually results in cell atrophy. The heart, brain, kidneys, and lower leg are common sites of ischemia. Atrophic changes in the lower leg attributable to ischemia include thin skin, muscle wasting, and hair loss. Atrophy can be a consequence of chronic nutrient starvation, whether the result of poor intake, absorption, or distribution to the tissues. Many glandular tissues throughout the body depend on growth-stimulating (trophic) signals to maintain size and function. For example, the adrenal cortex, thyroid, and gonads are maintained by trophic hormones from the pituitary gland and will atrophy in their absence. Atrophy that results from persistent cell injury is most commonly related to chronic inflam- mation and infection.
Normal
Hypertrophy (increased cell size)
Metaplasia (conversion of one cell
type to another)
Atrophy (decreased cell size)
Hyperplasia (increased cell number)
Dysplasia (disorderly growth)
FIG 4.6 The adaptive cellular responses of atrophy, hypertrophy, hyperplasia, metaplasia, and dysplasia.
64 UNIT II Cellular Function
IRREVERSIBLE CELL INJURY Pathologic cellular death occurs when an injury is too severe or prolonged to allow cellular adaptation or repair. Two different processes may contribute to cell death in response to injury: necrosis and apoptosis. Necrosis usually occurs as a consequence of ischemia or toxic injury and is characterized by cell rupture, spilling of contents into the extracel- lular fluid, and inflammation. Apoptosis (from a Greek word meaning falling off, as in leaves from a tree) occurs in response to injury that does not directly kill the cell but triggers intracellular cascades that activate a cellular suicide response. Apoptotic cells generally do not rupture and are ingested by neighboring cells with minimal disruption of the tissue and without inflammation. Apoptosis is not always a pathologic process and occurs as a necessity of development and tissue remodeling.
Necrosis Necrotic cells demonstrate typical morphologic changes, including a shrunken (pyknotic) nucleus that is subsequently degraded (karyolysis), a swollen cell volume, dispersed ribosomes, and disrupted plasma and organelle membranes (Fig. 4.8). The disruption of the permeability barrier of the plasma membrane appears to be a critical event in the death of the cell.
Localized injury or death of tissue is generally reflected in the entire system as the body attempts to remove dead cells and works to com- pensate for loss of tissue function. Several manifestations indicate that the system is responding to cellular injury and death. A general inflam- matory response is often present, with general malaise, fever, increased heart rate, increased white blood cell (WBC) count, and loss of appetite. With the death of necrotic cells, intracellular contents are released and often find their way into the bloodstream. The presence of specific cellular proteins in the blood is used as an indicator of the location and extent of cellular death. For example, an elevated serum amylase level indicates pancreatic damage, and an elevated creatine kinase (MB isoenzyme) or cardiac troponin level indicates myocardial damage. The location of pain caused by tissue destruction may also aid in the diagnosis of cellular death.
Four different types of tissue necrosis have been described: coagulative, liquefactive, fat, and caseous (Fig. 4.9). They differ primarily in the type of tissue affected. Coagulative necrosis is the most common. Manifesta- tions of coagulative necrosis are the same, regardless of the cause of cell death. In general, the steps leading to coagulative necrosis may be summarized as follows: (1) ischemic cellular injury, leading to (2) loss of the plasma membrane’s ability to maintain electrochemical gradients, which results in (3) an influx of calcium ions and mitochondrial dysfunc- tion, and (4) degradation of plasma membranes and nuclear structures (Fig. 4.10). The area of coagulative necrosis is composed of denatured proteins and is relatively solid. The coagulated area is then slowly dissolved by proteolytic enzymes, and the general tissue architecture is preserved for a relatively long time (weeks). This is in contrast to liquefactive necrosis.
When the dissolution of dead cells occurs very quickly, a liquefied area of lysosomal enzymes and dissolved tissue may result and form an abscess or cyst. This type of necrosis, called liquefactive necrosis, may be seen in the brain, which is rich in degradative enzymes and contains little supportive connective tissue. Liquefaction may also result from a bacterial infection that triggers a localized collection of WBCs. The phagocytic WBCs contain potent degradative enzymes that may completely digest dead cells, resulting in liquid debris.
Fat necrosis refers to death of adipose tissue and usually results from trauma or pancreatitis. The process begins with the release of activated digestive enzymes from the pancreas or injured tissue. The
transformations can occur. Some cancers of the lung, cervix, stomach, and bladder appear to derive from areas of metaplastic epithelium.
Dysplasia Dysplasia refers to the disorganized appearance of cells because of abnormal variations in size, shape, and arrangement. Dysplasia occurs most frequently in hyperplastic squamous epithelium, but it may also be seen in the mucosa of the intestine. Dysplasia probably represents an adaptive effort gone astray. Dysplastic cells have significant potential to transform into cancerous cells and are usually regarded as preneoplastic lesions. (See Chapter 7 for a discussion of cancer.) Dysplasia that is severe and involves the entire thickness of the epithelium is called carcinoma in situ. Mild forms of dysplasia may be reversible if the inciting cause is removed.
A
B
FIG 4.7 A, Hypertrophy of cardiac muscle in the left ventricular chamber. B, Compare with the thickness of the normal left ventricle. This is an example of cellular adaptation to an increased cardiac workload. (From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 33.)
KEY POINTS • Adaptive cellular responses indicate cellular stress caused by altered
functional demand or chronic sublethal injury. • Hypertrophy and hyperplasia generally result from increased functional
demand. Atrophy results from decreased functional demand or chronic ischemia. Metaplasia and dysplasia result from persistent injury.
CHAPTER 4 Cell Injury, Aging, and Death 65
tissue, it is described as dry gangrene, wet gangrene, or gas gangrene. Dry gangrene is a form of coagulative necrosis characterized by blackened, dry, wrinkled tissue that is separated from adjacent healthy tissue by an obvious line of demarcation (see Fig. 4.9A). It generally occurs only on the extremities. Liquefactive necrosis may result in wet gangrene, which is typically found in internal organs, appears cold and black, and may be foul smelling because of the invasion of bacteria. Rapid spread of tissue damage and the release of toxins into the bloodstream make wet gangrene a life-threatening problem. Gas gangrene is characterized by the formation of bubbles of gas in damaged tissue. Gas gangrene is the result of infection of necrotic tissue by anaerobic bacteria of the genus Clostridium. These bacteria produce toxins and degradative enzymes that allow the infection to spread rapidly through the necrotic tissue. Gas gangrene may be fatal if not managed rapidly and aggressively.
enzymes attack the cell membranes of fat cells, causing release of their stores of triglycerides. Pancreatic lipase can then hydrolyze the triglyc- erides to free fatty acids and glycerol, which precipitate as calcium soaps (saponification). Fat necrosis appears as a chalky white area of tissue.
Caseous necrosis is characteristic of lung tissue damaged by tuber- culosis. The areas of dead lung tissue are white, soft, and fragile, resembling clumpy cheese. Dead cells are walled off from the rest of the lung tissue by inflammatory WBCs. In the center, the dead cells lose their cellular structure but are not totally degraded. Necrotic debris may persist indefinitely.
Gangrene is a term used to describe cellular death involving a large area of tissue. Gangrene usually results from interruption of the major blood supply to a particular body part, such as the toes, leg, or bowel. Depending on the appearance and subsequent infection of the necrotic
Apoptotic body with intact membrane
Condensation of chromatin
Membrane blebs
Phagocyte
Phagocytosis of apoptotic cells and fragments
Reversible injury
Progressive injury
Inflammation
Recovery
NORMAL CELLNORMAL CELL
NECROSIS
APOPTOSIS
Swelling of endoplasmic reticulum and mitochondria Membrane blebs
Amorphous densities in mitochondria
Breakdown of plasma membrane, organelles and nucleus; leakage of contents
Myelin figure
FIG 4.8 Comparison of cellular changes in necrosis and apoptosis.
66 UNIT II Cellular Function
elicit inflammation. Apoptosis is not a rare event; large numbers of cells are continually undergoing programmed cell death as tissues remodel. During fetal development, for example, more than half of the nerve cells that form undergo apoptosis. It is estimated that more than 95% of the T lymphocytes that are generated in the bone marrow are induced to undergo apoptosis after reaching the thymus. These are normal physiologic processes that regulate normal system function.
Apoptosis The number of cells in tissues is tightly regulated by controlling the rate of cell division and the rate of cell death. If cells are no longer needed, they activate a cellular death pathway resulting in regulated cell death. In contrast to necrosis, which is messy and results in inflam- mation and collateral tissue damage, apoptosis is tidy and does not
B
C
D
A
FIG 4.9 The four primary types of tissue necrosis. A, Coagulative. B, Liquefactive. C, Fat. D, Caseous. (A, From Crowley L: Introduction to human disease, ed 4, Sudbury, MA, 1996, Jones and Bartlett, www.jbpub. com. Reprinted with permission. B–D, From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, pp 43–44.)
CHAPTER 4 Cell Injury, Aging, and Death 67
impaired. Apoptosis is now recognized as a primary factor in diseases such as heart failure (Chapter 19) and dementia (Chapter 45). The mechanisms regulating apoptosis are complex, and only major concepts are included here.
Environmental or extrinsic signals may induce apoptosis. Apoptosis may be triggered by withdrawal of “survival” signals that normally suppress the apoptotic pathways. Normal cells require a variety of signals from neighboring cells and from the extracellular matrix in order to stay alive (Fig. 4.11). If these contacts or signals are removed, the cell
Apoptosis also has been implicated in pathologic cell death and disease. For example, it has been estimated that the area of tissue death after a myocardial infarction (heart attack) is about 20% necrotic and 80% apoptotic. It is difficult to measure the degree of apoptotic cell death because neighboring cells rapidly ingest their apoptotic neighbors, and few are ever present in the tissue but the rates are high. Death of cancer cells in response to radiation or chemotherapy is believed to be primarily caused by apoptotic mechanisms. When the rate of apoptosis is greater than the rate of cell replacement, tissue or organ function may be
Injurious agent
Mitochondrion
ATPasePhospholipase Protease
Activation of cellular enzymes
Mitochondrial permeability
transition
Membrane damage
Nuclear damage
ATP
Elevated Ca2+ in cytosol
Smooth ER
Extracellular Ca2+
Ca2+
Ca2+
Phospholipids Disruption
of membrane and cytoskeletal
proteins
Endo- nuclease
Ca2+
Ca2+
Ca2+
FIG 4.10 Cellular injury as a consequence of intracellular calcium overload.
Survival
Matrix proteins
ApoptosisA B FIG 4.11 Each cell displays a set of receptors that enable it to respond to extracellular signals that control growth, differentiation, and survival. A, Extracellular signals are provided by the neighboring cells, secreted signaling molecules, and the extracellular matrix. B, Withdrawal of these survival signals induces the cell to initiate apoptosis.
68 UNIT II Cellular Function
ETIOLOGY OF CELLULAR INJURY Cellular injury and death result from a variety of cellular assaults, including lack of oxygen and nutrients, infection and immune responses, chemicals, and physical and mechanical factors. The extent of cell injury and death depends in part on the duration and severity of the assault and in part on the prior condition of the cells. Well-nourished and somewhat adapted cells may withstand the injury better than cells that are poorly nourished or not adapted.
Ischemia and Hypoxic Injury Living cells must receive a continuous supply of oxygen to produce sufficient ATP to power energy-requiring functions. The lack of oxygen (hypoxia) results in power failure within the cell. Tissue hypoxia is most often caused by ischemia, or the interruption of blood flow to an area, but it may also result from heart failure, lung disease, and RBC disorders. Ischemia is the most common cause of cell injury in clinical medicine and injures cells faster than hypoxia alone. Faster injury occurs because
death cascade is activated. A second mechanism of triggering apoptosis involves extracellular signals, such as the Fas ligand, that bind to the cell and trigger the death cascade through activation of “death receptors” (Fig. 4.12).
Apoptosis can also be triggered by internal pathways. Cells have ways to monitor their condition and usefulness. When excessive, irreparable damage occurs to the cell’s DNA or other vital structures, growth and division stall for a while to permit repair. If the damage is too great, the cell can trigger its own death. Mitochondrial damage with leakage of cytochrome c into the cytoplasm is a critical activator of the intrinsic apoptotic pathway. This pathway is governed in part by a protein called p53. The amount of p53 in a cell is normally quite low but increases in response to cellular DNA damage. If high levels of p53 are sustained, apoptosis will occur. Thus p53 is important in preventing the proliferation of cells with damaged DNA. A large number of cancers (50%) are associated with a mutation in the P53 gene, which allows cancer cells to escape this monitoring system.
Regardless of the initiating event, apoptosis involves numerous intracellular signals and enzymes (Fig. 4.13). A family of enzymes called caspases is the main component of the proteolytic cascade that degrades key intracellular structures leading to cell death. The caspases are proenzymes that are activated in a cascade. Activation of a few initiator caspases at the beginning of the cascade results in a rapid domino effect of caspase activation. Some caspases cleave key proteins, such as the nuclear lamina, to destroy the nuclear envelope, whereas others activate still more enzymes that chop up the DNA. All of this destruction requires cellular energy and is contained within an intact plasma membrane, and the cell remnants are then assimilated by their neighbors. Neighboring cells are prompted to ingest apoptotic cells, because a phospholipid that is normally located only on the cytoplasmic side of a healthy cell (phosphatidylserine) flips to the outside of the lipid bilayer. This membrane lipid signals neighbors and tissue macrophages to bind and assimilate the cell components and suppresses the inflammatory response that normally accompanies phagocytosis.
Apoptosis
Nuclear fragmentation
Adaptor
Active caspase
Target cell
Fas ligand
Fas receptor
Adaptor
Inactive pro- caspase-8A B
C
FIG 4.12 Induction of apoptosis by Fas ligand. A, Target cell binds to Fas ligand on a signaling cell. B, Active Fas receptors organize and activate caspases. C, The caspases degrade the nucleus and trigger cell death.
KEY POINTS • Necrosis occurs when the injury is too severe or prolonged to allow adaptation
and is usually a consequence of disrupted blood supply. • Local and systemic indicators of necrotic cell death include pain, elevated
serum enzyme levels, inflammation (fever, elevated white blood cell [WBC] count, malaise), and loss of function.
• Different tissues exhibit necrosis of different types: heart (coagulative), brain (liquefactive), lung (caseous), and pancreas (fat).
• Gangrene refers to a large area of necrosis that may be described as dry, wet, or gas gangrene. Gas gangrene and wet gangrene may be rapidly fatal.
• Apoptosis is cell death resulting from activation of intracellular signaling cascades. Apoptosis is tidy and not usually associated with systemic manifestations of inflammation. Apoptosis requires adequate amounts of adenosine triphosphate (ATP) be present in the cell.
CHAPTER 4 Cell Injury, Aging, and Death 69
(2) formation of reactive oxygen molecules (free radicals), and (3) subsequent inflammation.
Restoration of blood flow to ischemic cells bathes them in a fluid high in calcium ions at a time when their ATP stores are depleted and they are unable to control ion flux across the cell membrane. Accumula- tion of calcium ions in the cytoplasm can trigger apoptosis or activate enzymes that degrade lipids in the membrane (lipid peroxidation).
The ischemic episode also primes cells for abnormal generation of reactive oxygen molecules, such as superoxide (O2−), peroxide (H2O2), and hydroxyl radicals (OH−). These reactive oxygen molecules are free radicals that have an unpaired electron in an outer orbital. They steal hydrogen atoms and form abnormal molecular bonds. Molecules that react with free radicals may be converted to free radicals themselves, continuing the destructive cascade. Reactive oxygen species damage cell membranes, denature proteins, and disrupt cell chromosomes. Oxygen free radicals also have been linked to initiation of the inflammatory cascade.
Ischemia primes cells for the generation of oxygen radicals by allowing the buildup of ATP precursors, such as adenosine diphosphate and pyruvate, during the period of hypoxia. When oxygen supply is reestablished, a disorganized burst of high-energy electrons partially reduces oxygen and forms oxygen radicals. The ischemia–reperfusion
ischemia not only disrupts the oxygen supply but also allows metabolic wastes to accumulate and deprives the cell of nutrients for glycolysis. The cellular events that follow oxygen deprivation are shown in Fig. 4.14. Decreased oxygen delivery to the mitochondria causes ATP produc- tion in the cell to stall and ATP-dependent pumps, including the Na+–K+ and Ca2+ pumps, to fail. Sodium accumulation within the cell creates an osmotic gradient favoring water entry, resulting in hydropic swelling. Excess intracellular calcium collects in the mitochondria, further interfering with mitochondrial function. A small amount of ATP is produced by anaerobic glycolytic pathways, which metabolize cellular stores of glycogen. The pyruvate end products of glycolysis accumulate and are converted to lactate, causing cellular acidification. Lactate can escape into the bloodstream, resulting in lactic acidosis, which can be detected by laboratory tests. Cellular proteins and enzymes become progressively more dysfunctional as the pH falls. Up to a point, ischemic injury is reversible, but when the plasma, mitochondrial, and lysosomal membranes are critically damaged, cell death ensues.
Cell death resulting from ischemia may be slow to develop, generally taking many minutes to hours. In fact, most cellular damage occurs after the blood supply to the tissues has been restored—a so-called reperfusion injury. Ischemia–reperfusion is a complex phenomenon, but three critical components have been identified: (1) calcium overload,
Phagocyte
MITOCHONDRIAL (INTRINSIC) PATHWAY
DEATH RECEPTOR (EXTRINSIC) PATHWAY
Mitochondria
Receptor-ligand interactions • Fas • TNF receptor
Cell injury • Growth factor withdrawal • DNA damage (by radiation, toxins, free radicals) • Protein misfolding (ER stress)
Initiator caspases
Initiator caspases
Cytochrome c and other
pro-apoptotic proteins
Regulators (BCL-2, BCL-X)
Executioner caspases
Adapter proteins
Breakdown of cytoskeleton
Endonuclease activation
Membrane bleb Ligands for phagocytic cell receptors
Apoptotic body
Nuclear fragmentation
BCL-2 family sensors
BCL-2 family effectors (BAX, BAK)
FIG 4.13 Schematic of the events of apoptosis. Numerous triggers can initiate apoptosis through intrinsic cell injury pathways (mitochondrial), such as withdrawal of survival factors, various cell injuries, and protein overload or misfolding; or through extrinsic cell injury pathways (death receptors), such as binding to Fas or tumor necrosis factor receptors. A number of intracellular regulatory proteins may inhibit or promote the activation of caspases, which, when activated, begin the process of cellular degradation and apoptotic cell fragmentation. Fragments are internalized by phagocytic cells.
70 UNIT II Cellular Function
glucose levels. An excess of caloric intake above metabolic use produces overweight and obesity syndromes. Excess body fat can be estimated by measuring the ratio of body weight (in kilograms) to height (in meters squared) to derive the body mass index (BMI). A BMI greater than 25 kg/m2 imparts a health risk, and a BMI greater than 30 kg/m2 is considered indicative of obesity. Numerous health problems are associated with excess body fat, including heart and blood vessel disease, musculoskeletal strain, diabetes, hypertension, and gallbladder disease. Metabolism and obesity are explored in Chapter 42.
Infectious and Immunologic Injury Bacteria and viruses are common infectious agents that may injure cells in a variety of ways. The virulence of a particular biological agent depends on its ability to gain access to the cell and its success in altering cellular functions. (See Chapter 8 for a detailed discussion of infectious processes.) Some of the injurious effects are directly from the biological agent, but added injury may be done indirectly by triggering the body’s immune response.
Most bacteria do not gain entry into the cell and so accomplish their injurious effects from the outside. (Notable exceptions include Mycobacterium tuberculosis, Shigella, Legionella, Salmonella, and Chla- mydia.) Some bacteria produce and secrete powerful destructive enzymes that digest cellular membranes and connective tissues. For example, collagenase and lecithinase are produced by Clostridium perfringens. Other bacteria produce exotoxins, which interfere with specific cellular functions when released from the bacterium. Clostridium botulinum and Clostridium tetani, for example, produce life-threatening toxins that disrupt normal neuromuscular transmission. Cholera and diphtheria are well-known examples of exotoxin-related diseases. Most exotoxins are proteins and are generally susceptible to destruction by extremes of heat. Certain gram-negative bacteria (e.g., Escherichia coli, Klebsiella pneumoniae) contain another type of toxin, endotoxin, in their cell wall. When bacteria are killed, the endotoxin is released, causing fever, malaise, and even circulatory shock.
The indirect cellular injury attributable to the bacteria-evoked immune response may be more damaging than the direct effects of the
event frequently is followed by a generalized inflammatory state that may lead to ongoing cellular and organ damage for days and weeks after the initial event. WBCs recruited to the area release enzymes and other chemicals that further damage the cells in the area. (Mecha- nisms and causes of ischemic tissue injury are described further in Chapter 20.)
Nutritional Injury Adequate amounts of fats, carbohydrates, proteins, vitamins, and minerals are essential for normal cellular function. Most of these essential nutrients must be obtained from external sources because the cell is unable to manufacture them. The cell is unable to synthesize many of the 20 amino acids needed to form the proteins of the body. Likewise, most vitamins and minerals must be obtained from exogenous sources. Cell injury results from deficiencies as well as excesses of essential nutrients.
Certain cell types are more susceptible to injury from particular nutritional imbalances. Iron deficiency, for example, primarily affects RBCs, whereas vitamin D deficiency affects bones. All cell types must receive glucose for energy, as well as fatty acid and amino acid building blocks to synthesize and repair cellular components. Nutritional deficien- cies result from poor intake, altered absorption, impaired distribution by the circulatory system, or inefficient cellular uptake. Common causes of malnutrition include (1) poverty, (2) chronic alcoholism, (3) acute and chronic illness, (4) self-imposed dietary restrictions, and (5) malabsorption syndromes. Vitamin deficiencies are common even in industrialized countries because of pervasive use of processed foods. Some examples of vitamin deficiency disorders are shown in Table 4.1. Deficiencies of minerals, especially iron, also are common (Table 4.2).
Nutritional excesses primarily result from excessive intake, although deficient cellular uptake by one cell type may contribute to excess nutrient delivery to other cell types. For example, in the condition of diabetes mellitus, some cell types have deficient receptors for insulin-dependent glucose uptake, which causes excessive amounts of glucose to remain in the bloodstream. As a result, cells that do not require insulin to take in glucose, such as neurons, may have abnormally high intracellular
O2 Cytosolic Ca2+
Phospholipase activation
Reactive oxygen species
Protease activation
ATP
Phospholipid degradation
Lipid peroxidation
Phospholipid loss
Lipid breakdown products
Cytoskeletal damage
Phospholipid reacylation/ synthesis
Membrane damage
FIG 4.14 Mechanisms of ischemia-induced cell injury and membrane damage. Loss of cell membrane integrity is a critical event in necrosis.
CHAPTER 4 Cell Injury, Aging, and Death 71
TABLE 4.1 Vitamins: Major Functions and Deficiency Syndromes
Vitamin Functions Deficiency Syndromes
Fat Soluble Vitamin A A component of visual pigment Night blindness, xerophthalmia, blindness
Maintenance of specialized epithelia Squamous metaplasia Maintenance of resistance to infection Vulnerability to infection, particularly measles
Vitamin D Facilitates intestinal absorption of calcium and phosphorus and mineralization of bone
Rickets in children Osteomalacia in adults
Vitamin E Major antioxidant; scavenges free radicals Spinocerebellar degeneration Vitamin K Cofactor in hepatic carboxylation of procoagulants—factors II
(prothrombin), VII, IX, and X; and protein C and protein S Bleeding diathesis
Water-Soluble Vitamin B1 (thiamine) As pyrophosphate, is coenzyme in decarboxylation reactions Dry and wet beriberi, Wernicke syndrome, Korsakoff syndrome Vitamin B2 (riboflavin) Converted to coenzymes flavin mononucleotide and flavin adenine
dinucleotide, cofactors for many enzymes in intermediary metabolism
Ariboflavinosis, cheilosis, stomatitis, glossitis, dermatitis, corneal vascularization
Niacin Incorporated into NAD and NAD phosphate; involved in a variety of redox reactions
Pellagra—“three D’s”: dementia, dermatitis, diarrhea
Vitamin B6 (pyridoxine) Derivatives serve as coenzymes in many intermediary reactions Cheilosis, glossitis, dermatitis, peripheral neuropathy Vitamin B12 Required for normal folate metabolism and DNA synthesis Megaloblastic pernicious anemia and degeneration of
posterolateral spinal cord tractsMaintenance of myelinization of spinal cord tracts Vitamin C Serves in many oxidation-reduction (redox) reactions and
hydroxylation of collagen Scurvy
Folate Essential for transfer and use of 1-carbon units in DNA synthesis Megaloblastic anemia, neural tube defects Pantothenic acid Incorporated in coenzyme A No nonexperimental syndrome recognized Biotin Cofactor in carboxylation reactions No clearly defined clinical syndrome
From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 442. NAD, Nicotinamide adenine dinucleotide.
TABLE 4.2 Selected Trace Elements and Deficiency Syndromes
Element Function Basis of Deficiency Clinical Features
Zinc Component of enzymes, principally oxidases Inadequate supplementation in artificial diets Interference with absorption by other dietary
constituents Inborn error of metabolism
Rash around eyes, mouth, nose, and anus called acrodermatitis enteropathica
Anorexia and diarrhea Growth retardation in children Depressed mental function Depressed wound healing and immune response Impaired night vision Infertility
Iron Essential component of hemoglobin as well as a number of iron-containing metalloenzymes
Inadequate diet Chronic blood loss
Hypochromic microcytic anemia
Iodine Component of thyroid hormone Inadequate supply in food and water Goiter and hypothyroidism Copper Component of cytochrome c oxidase,
dopamine β-hydroxylase, tyrosinase, lysyl oxidase, and unknown enzymes involved in cross-linking collagen
Inadequate supplementation in artificial diet Interference with absorption
Muscle weakness Neurologic defects Abnormal collagen cross-linking
Fluoride Mechanism unknown Inadequate supply in soil and water Inadequate supplementation
Dental caries
Selenium Component of glutathione peroxidase Antioxidant with vitamin E
Inadequate amounts in soil and water Myopathy Cardiomyopathy (Keshan disease)
From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 443.
infectious agent. WBCs secrete many enzymes and chemicals meant to destroy the invading organism, including histamines, kinins, complement, proteases, lymphokines, and prostaglandins. Normal body cells may be exposed to these injurious chemicals because they are too close to the site of immunologic battle. Immune cells are particularly adept at
producing free radicals, which can attack host cell membranes and induce significant cell injury.
Viruses are small pieces of genetic material that are able to gain entry into the cell. They may be regarded as intracellular parasites that use the host cell’s metabolic and synthetic machinery to survive and
72 UNIT II Cellular Function
failure. In high doses, acetaminophen, a commonly used analgesic, may have similar toxic effects on the liver.
Many toxins are inherently reactive and do not require metabolic activation to exert their effects. Common examples are heavy metals (e.g., lead and mercury), toxic gases, corrosives, and antimetabolites. Some toxins have an affinity for a particular cell type or tissue, whereas others exert widespread systemic effects. For example, carbon monoxide binds tightly and selectively to hemoglobin, preventing the RBC from carrying sufficient oxygen. Lead poisoning, however, has widespread effects, including effects on nervous tissue, blood cells, and the kidney. Extremely acidic or basic chemicals are directly corrosive to cellular structures. Certain chemicals interfere with normal metabolic processes of the cell. Some of these antimetabolites have been utilized in the form of cytotoxic agents for the management of cancer (Chapter 7).
Physical and Mechanical Injury Injurious physical and mechanical factors include extremes of tem- perature, abrupt changes of atmospheric pressure, mechanical deforma- tion, electricity, and ionizing radiation.
Extremes of cold result in the hypothermic injury known as frostbite. Before actual cellular freezing, severe vasoconstriction and increased blood viscosity may result in ischemic injury. With continued exposure to cold, a rebound vasodilatory response may occur, leading to intense swelling and peripheral nerve damage. The cytoplasmic solution may freeze, resulting in the formation of intracellular ice crystals and rupture of cellular components. Frostbite generally affects the extremities, ears, and nose and is often complicated by gangrenous necrosis.
Extremes of heat result in hyperthermic injury or burns. High temperatures cause microvascular coagulation and may accelerate metabolic processes in the cell. Burns result from direct tissue destruction by high temperatures and are classified according to the degree of tissue destruction. Burns are discussed in Chapter 54.
Abrupt changes in atmospheric pressure may result from high-altitude flying, deep-sea diving, and explosions. Pressure changes may interfere with gas exchange in the lungs, cause the formation of gas emboli in the bloodstream, collapse the thorax, and rupture internal organs. A well-known example of pressure injury is the condition of “the bends,” which afflicts deep-sea divers who surface too quickly. The rapid decrease in water pressure results in the formation of bubbles of nitrogen gas in the blood, which may obstruct the circulation and cause ischemic injury.
Destruction of cells and tissues resulting from mechanical deformation ranges from mild abrasion to severe lacerating trauma. Cell death may result from direct trauma to cell membranes and resulting blood loss or from obstruction of blood flow and hypoxia. Nonpenetrating trauma generally results from physical impact with a blunt object such as a fist, a car steering wheel, or the pavement. Surgery is a common cause of tissue trauma. Other causes of penetrating trauma are bite, knife, and
replicate. In some cases the virus remains in the cell for a considerable time without inflicting lethal injury. In other cases the virus causes rapid lysis and destruction of the host cell.
Virally infected cells may trigger their own destruction when they express viral proteins on the cell surface that are foreign to the host’s immune system. The hepatitis B virus is an example of such an indirectly cytopathic virus that causes immune-mediated cell death. The hepatitis B virus consists of double-stranded DNA that becomes incorporated into the host cell’s nucleus, where it can be transcribed by the normal DNA polymerases. The mRNA transcripts of the viral genes are trans- ported to the cytoplasm and translated into structural proteins and enzymes, which are used to make more copies of the virus. Some of these viral components are displayed on the cell surface where cytotoxic cells can recognize them, triggering death of the infected cells (see Chapter 9). Virally infected cells may remain functional virus factories until they are destroyed by the host’s immune system.
Chemical Injury Toxic chemicals or poisons are plentiful in the environment (Tables 4.3 and 4.4). Some toxic chemicals cause cellular injury directly, whereas others become injurious only when metabolized into reactive chemicals by the body. Carbon tetrachloride (CCl4) is an example of the latter. Carbon tetrachloride, a formerly used dry-cleaning agent, is converted to a highly toxic free radical, CCl3−, by liver cells. The free radical is highly reactive, forming abnormal chemical bonds in the cell and ultimately destroying the cellular membranes of liver cells, causing liver
TABLE 4.3 Health Effects of Outdoor Air Pollutants
Pollutant Populations at Risk Effects*
Ozone Healthy adults and children
Athletes, outdoor workers
Asthmatics
Decreased lung function Increased airway reactivity Lung inflammation Decreased exercise
capacity Increased hospitalizations
Nitrogen dioxide Healthy adults Asthmatics Children
Increased airway reactivity Decreased lung function Increased respiratory
infections Sulfur dioxide Healthy adults
Patients with chronic lung disease
Asthmatics
Increased respiratory symptoms
Increased mortality Increased hospitalization Decreased lung function
Acid aerosols Healthy adults Children Asthmatics
Altered mucociliary clearance
Increased respiratory infections
Decreased lung function Increased hospitalizations
Particulates Children Individuals with chronic
lung or heart disease Asthmatics
Increased respiratory infections
Decreased lung function Excess mortality Increased attacks
From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 408. *See Chapters 22 and 23 for a discussion of respiratory disorders.
TABLE 4.4 Selected Indoor Air Pollutants With Significant Health Risks
Pollutant Source
Carbon monoxide Fuel combustion, fire, furnace Wood smoke Fireplaces, woodstoves Formaldehyde Manufacture of construction materials Radon Natural ground radiation Asbestos fibers Old insulation, shingles Manufactured mineral fibers Insulation, building materials Aerosols Spray bottle propellants
CHAPTER 4 Cell Injury, Aging, and Death 73
Radiation-induced cell death is attributed primarily to the radiolysis of water, with resulting free radical damage to the plasma membrane. Whole-body exposure to sufficiently high levels of radiation (300 rad) results in acute radiation sickness with hematopoietic failure, destruction of the epithelial layer of the gastrointestinal tract, and neurologic dysfunc- tion. The high levels of irradiation that cause acute radiation sickness are associated with events such as nuclear accidents and bombings. Radiation exposure from diagnostic x-rays, cosmic rays, and natural radiant chemicals in the earth is far below the level that would result in acute radiation sickness. The signs and symptoms of acute radiation sickness are shown in Fig. 4.17. The fact that radiation induces cell death in proliferating cells is used to advantage in the management of some forms of cancer. Radiation therapy may be used when a cancerous growth is confined to a particular area. Injury associated with radiation therapy is generally localized to the irradiated area. Small arteries and arterioles in the area may be damaged, leading to blood clotting and fibrous deposits that compromise tissue perfusion. Most irradiated cells are thought to die through the process of apoptosis rather than from direct killing effects of radiation. Radiation induces cell damage that triggers the apoptotic pathway in cells that cannot efficiently repair the damage. Cells most susceptible to apoptotic death are those that tend to have high rates of mitosis or meiosis.
gun wounds. Trauma-induced inflammatory swelling may further compromise injured tissues.
Electrical injury may occur when the cells of the body act as conduc- tors of electricity. The electrical current damages tissues in two ways: (1) by disruption of neural and cardiac impulses and (2) by hyperthermic destruction of tissues. Resistance to the flow of electrons results in heat production, which damages the tissues. The current tends to follow the path of least resistance—through neurons and body fluids—causing violent muscle contractions, thermal injury, and coagulation in blood vessels. In general, greater injury is suffered with high-voltage alternating current applied to a low-resistance area (e.g., wet skin).
There are many forms of electromagnetic radiation, ranging from low-energy radio waves to high-energy γ-rays or photons (Fig. 4.15). Radiation is capable of injuring cells directly by breaking chemical bonds and indirectly by generating free radicals. Cellular DNA is particularly susceptible to damage from radiation exposure. A direct hit of the radiant energy on the DNA molecule may result in breakage of the chemical bonds holding the linear DNA together. This type of direct bond breakage generally results from the high-energy forms of radiation, such as x-rays and γ-rays. The molecular bonds of DNA also may be indirectly disrupted by ionizing radiation. Ionization refers to the ability of the radiant energy to split water molecules by knocking off orbital electrons (radiolysis). Radiolysis creates activated free radicals that steal electrons from other molecules and disrupt chemical bonds. Many forms of radiation are capable of ionization, but the medium- energy α and β particles that result from decay of atomic nuclei are especially destructive. Low-energy electromagnetic radiation, such as that created by microwaves, ultrasound, computers, and infrared light, cannot break chemical bonds, but it can cause rotation and vibration of atoms and molecules. The rotational and vibrational energy is then converted to heat. It is possible that the resulting localized hyperthermia may result in cellular injury. Early studies reported a higher incidence of certain cancers in persons occupationally exposed to radiofrequency microwave electromagnetic radiation, but further analysis failed to confirm these findings.
At the cellular level, radiation has two primary effects: (1) genetic damage and (2) acute cell destruction (Fig. 4.16). The vulnerability of a tissue to radiation-induced genetic damage depends on its rate of proliferation. Genetic damage to the DNA of a long-lived, nonproliferat- ing cell may be of little consequence, whereas tissues with rapid cellular division have less opportunity to repair damaged DNA before passing it on to the next generation of cells. (Genetic mutation is discussed in Chapter 6.) Hematopoietic, mucosal, gonadal, and fetal cells are par- ticularly susceptible to genetic radiation damage.
Audio frequencies
Radio waves
Increasing frequency and increasing energy
Wavelength (meters)
Micro- waves
Infrared
X-rays
Secondary cosmic rays
V is
ib le
li g h t
U ltr
a vi
o le
t
γ-rays
1010 108 106 104 102 1 10–2 10–4 10–6 10–8 10–10 10–12 10–14
FIG 4.15 Types of electromagnetic radiation.
Acute cell destruction and
necrosis
Free radical damage to cell structures
DNA damage
Genetic mutations
Apoptosis
Ionization Direct hit on DNA
Radiant energy
FIG 4.16 The mechanism of radiation-induced genetic and cell injury.
74 UNIT II Cellular Function
is limited by the aging process itself rather than by the ravages of disease. Although the elderly are certainly more vulnerable to diseases, the aging process and disease processes are generally viewed as different phenomena. In practice, the distinction between aging and disease may be difficult to make. For example, the aging skeleton normally loses some bone mass, but too much bone loss results in osteoporosis—a disease process. Likewise, a loss of blood vessel elasticity is generally viewed as a normal aging change, but at what point does too much arterial stiffness become abnormal? This confusion results from the continued inability to identify the irreversible and universal processes of cellular aging as separate from the potentially reversible effects of disease.
Cellular Basis of Aging Cellular aging is the cumulative result of a progressive decline in the proliferative and reparative capacity of cells coupled with exposure to environmental factors that cause accumulation of cellular and molecular damage. Several mechanisms are believed to be responsible for cellular aging. These include DNA damage, reduced proliferative capacity of stem cells, and accumulation of metabolic damage.
Damage to cellular DNA is a common phenomenon resulting from various factors, including ultraviolet radiation, oxidative stress from normal metabolism, and errors in DNA replication. A host of DNA repair mechanisms is present in normal cells to prevent accumulation of DNA damage. With aging these repair systems appear to become less able to keep pace with DNA damage, and cell replication may be inhibited or apoptosis initiated. Support for this idea comes from the premature aging syndromes that are associated with defective DNA repair mechanisms.
The programmed senescence theory states that aging is the result of an intrinsic genetic program. Support for the theory of a genetically programmed life span comes primarily from studies of cells in culture. In classic experiments by Hayflick, fibroblastic cells in culture were shown to undergo a finite number of cell divisions. Fibroblasts taken from older individuals underwent fewer cell divisions than those from younger individuals. Given an adequate environment, the information encoded in the cellular genome is thought to dictate the number of possible cell replications, after which damaged or lost cells are no longer replaced. It has been postulated that cells undergo a finite number of replications because the chromosomes shorten slightly with each cell division until some critical point is reached (Fig. 4.18), at which time the cell becomes dormant or dies. The end caps of the chromosomes, called telomeres, are the sections that shorten with each cell division.
CELLULAR AGING The inevitable process of aging and death has been the subject of interest and investigation for centuries. Despite scientific study and the search for the “fountain of youth,” a satisfactory explanation for the process of cellular aging and methods for halting the aging process have not been revealed. The maximal human life span currently is about 120 years, and the oldest-known human to have lived was 122 years old. It seems apparent that aging is distinct from disease and that the life span
Cerebral edema
Bowel necrosis and ulceration,
diarrhea
Pulmonary inflammation and fibrosis
Kidney inflammation
Dermatitis
Esophagitis
Sterility
Myocarditis
Bone marrow depression with
leukopenia, anemia,
thrombocytopenia
FIG 4.17 Signs and symptoms of acute radiation sickness.
KEY POINTS • Hypoxia is an important cause of cell injury that usually results from poor
oxygenation of the blood (hypoxemia) or inadequate delivery of blood to the cells (ischemia).
• Reperfusion injury to cells may occur when circulation is restored as a result of the production of partially reduced oxygen molecules that damage cell membranes and trigger immune-mediated injury.
• Nutritional injury is a common cause of dysfunction and disease. Malnutrition is rampant in many poor countries, whereas industrialized nations are facing an epidemic of obesity-related disorders, including heart disease and diabetes.
• Cellular damage attributable to infection and immunologic responses is common. Some bacteria and viruses damage cells directly, whereas others stimulate the host’s immune system to destroy the host’s cells.
• Chemical, physical, and mechanical factors cause cell injury in various ways. Chemicals may interfere with normal metabolic processes in the cell. Injury resulting from physical factors, such as burns and frostbite, causes direct destruction of tissues. Radiation-induced cell death is primarily a result of radiolysis of water, with resulting free radical damage to the cell membrane.
Chromosome
Cell replication
Cell replication
Telomere
FIG 4.18 The end caps of the chromosomes are called telomeres. In most body cells, the telomeres progressively shorten with each cell replication until a critical point is reached, at which time the cell becomes dormant or dies.
CHAPTER 4 Cell Injury, Aging, and Death 75
Certain cells (germ cells, such as egg and sperm) are able to replenish their telomeres, which gives them potential immortality. The enzyme that rebuilds the telomeres has been named telomerase. Stem cells, which are capable of mitosis, also express telomerase, but at lower levels. Progressive loss of telomerase gene expression with aging may contribute to reduced proliferative capacity. Interestingly, a number of cancer cell types have been found to produce telomerase, whereas most differentiated somatic cells do not (Chapter 7).
Aging may also be a result of accumulated metabolic cell damage over time. The free radical theory was prompted in part by the observation that larger animals, which have slower metabolic rates, generally have longer life spans. Metabolic rate, in turn, determines the production of activated oxygen free radicals. Aging is thought to result from the cumulative and progressive damage to cell structures, particularly the cell membrane, by these oxygen radicals. Protection from metabolic damage is provided by a number of antioxidant mechanisms. Over time these protective mechanisms may become less efficient, allowing metabolic damage to accumulate in cells. Accumulated damage may eventually trigger apoptotic mechanisms leading to tissue degeneration. Altered metabolism from chronic low-calorie diets has been shown to prolong life span in studies.
Physiologic Changes of Aging All the body systems show age-related changes that can be generally described as a decrease in functional reserve or impaired ability to adapt to environmental demands. An overview of the tissue and systemic changes of aging is presented in Table 4.5. The details of age-related changes in the various body systems are described in later chapters of this book.
TABLE 4.5 Overview of the Physiologic Changes of Aging
System Physiologic Changes
Cardiovascular ↓ Vessel elasticity caused by calcification of connective tissue (↑ pulmonary vascular resistance)
↓ Number of heart muscle fibers with ↑ size of individual fibers (hypertrophy)
↓ Filling capacity ↓ Stroke volume ↓ Sensitivity of baroreceptors Degeneration of vein valves
Respiratory ↓ Chest wall compliance resulting from calcification of costal cartilage
↓ Alveolar ventilation ↓ Respiratory muscle strength Air trapping and ↓ ventilation due to degeneration of
lung tissue (↓ elasticity) Renal/urinary ↓ Glomerular filtration rate due to nephron
degeneration (↓ one third to one half by age 70) ↓ Ability to concentrate urine ↓ Ability to regulate H+ concentration
Gastrointestinal ↓ Muscular contraction ↓ Esophageal emptying ↓ Bowel motility ↓ Production of HCl, enzymes, and intrinsic factor ↓ Hepatic enzyme production and metabolic capacity Thinning of stomach mucosa
Neurologic/sensory Nerve cells degenerate and atrophy ↓ Of 25%–45% of neurons ↓ Number of neurotransmitters ↓ Rate of conduction of nerve impulses Loss of taste buds Loss of auditory hair cells and sclerosis of eardrum
Musculoskeletal ↓ Muscle mass ↑ Bone demineralization ↑ Joint degeneration, erosion, and calcification
Immune ↓ Inflammatory response ↓ In T cell function due to involution of thymus gland
Integumentary ↓ Subcutaneous fat ↓ Elastin Atrophy of sweat glands Atrophy of epidermal arterioles causing altered
temperature regulation
KEY POINTS • Aging is theoretically distinct from disease. The maximal life span is limited
by the aging process itself rather than by the ravages of disease. • Aging is thought to be the result of accumulated DNA damage, decreased
proliferative capacity of stem cells, and accumulated metabolic damage. Cells may age more quickly when DNA repair mechanisms are faulty and when metabolic damage is excessive because of reduced antioxidant activity.
• Age-related changes in body systems can generally be described as a decrease in functional reserve and a reduced ability to adapt to environmental demands.
KEY POINTS • Somatic death is characterized by the absence of respirations and heartbeat.
Definitions of brain death have been established to describe death in instances in which heartbeat and respiration are maintained mechanically.
• After death, body temperature falls, blood and body fluids collect in dependent areas, and rigor mortis ensues. Within 24 to 48 hours the tissues begin to deteriorate and rigor mortis gives way to flaccidity.
SOMATIC DEATH Death of the entire organism is called somatic death. In contrast to localized cell death, no immunologic or inflammatory response occurs in somatic death. The general features of somatic death include the absence of respiration and heartbeat. However, this definition of death is insufficient because, in some cases, breathing and cardiac activity may be restored by resuscitative efforts. Within several minutes of cardiopulmonary arrest, the characteristics of irreversible somatic death become apparent. Body temperature falls, the skin becomes pale, and blood and body fluids collect in dependent areas. Within 6 hours, the accumulation of calcium and the depletion of ATP result in perpetual actin–myosin cross-bridge formation in muscle cells. The presence of stiffened muscles throughout the body after death is called rigor mortis. Rigor mortis progresses to limpness or flaccidity as the tissues of the body begin to deteriorate. Tissue deterioration or putrefaction becomes apparent 24 to 48 hours after death. Putrefaction is associated with the widespread release of lytic enzymes in tissues throughout the body, a process called postmortem autolysis.
The determination of “brain death” has become necessary because of the technological ability to keep the heart and lungs working through
artificial means, even though the brain is no longer functional. Criteria for determining brain death as proof of somatic death may vary by geographic area but generally include unresponsiveness, flaccidity, absence of brainstem reflexes (e.g., swallowing, gagging, pupil and eye move- ments), absence of respiratory effort when the subject is removed from the mechanical ventilator, absence of electrical brain waves, and lack of cerebral blood flow.
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cell, ed 6, New York, 2015, Garland Science, pp 1021–1034. Kumar V, Abbas A, Aster J: Cellular responses to stress and toxic insults:
adaptation, injury, and death. In Kumar V, Abbas A, Aster J, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, pp 31–68.
Maitra A: The endocrine system. In Kumar V, Abbas A, Aster J, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, pp 1073–1140.
Nadal-Ginard B, et al: Myocyte death, growth, and regeneration in cardiac hypertrophy and failure. Circ Res 92:139–150, 2003.
Nikoletopoulou V, Markaki M, Palikaras K: Crosstalk between apoptosis, necrosis, and autophagy. Biochem Biophys Acta 2013.
Theise N, Liu C: Liver and gallbladder. In Kumar V, Abbas A, Aster J, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, pp 821–882.
Van Berlo JH, Maillet M, Molkentin JD: Signaling effectors underlying pathologic growth and remodeling of the heart. J Clin Invest 123:37, 2013.
Types and Causes of Cell Injury D’Andrea JA, Ziriax JM, Adair ER: Radio frequency electromagnetic fields:
mild hyperthermia and safety standards. Prog Brain Res 162:107–135, 2007.
Guo MF, Yu JZ, Ma CG: Mechanisms related to neuron injury and death in cerebral hypoxic ischaemia. Folia Neuropathol 49(2):78–87, 2011.
Cells and tissues face many challenges to survival, including injury from lack of oxygen and nutrients, infection and immune responses, chemicals, and physical and mechanical factors. Cells respond to environmental changes or injury in three general ways: (1) If the change is mild or short lived, the cell may withstand the assault and return to its preinjury status. (2) The cell may adapt to a persistent but sublethal injury by changing its structure or function. (3) Cell death by apoptosis or necrosis may occur if the injury is too severe or prolonged. Characteristics of reversible cell injury include hydropic swelling and the accumulation of abnormal substances. Cell necrosis is characterized by irreversible loss of function, release of internal cellular components into the
bloodstream, and an inflammatory response. The disruption of the permeability barrier of the plasma membrane is a critical event in necrotic cellular death. Apoptosis is characterized by a tidy, noninflam- matory autodigestion of the cell.
Aging is a normal physiologic process characterized by a progressive decline in functional capacity and adaptive ability. The biological basis of aging remains largely a mystery, but several theories have been proposed to explain certain aspects of the process. At present, most sources differentiate between the biological alterations of aging and the alterations consequent to disease processes. In practice, however, the distinction may be difficult to make.
S U M M A R Y
77
5 Genome Structure, Regulation, and
Tissue Differentiation Jacquelyn L. Banasik
K E Y Q U E S T I O N S • How is genetic information stored in the cell and transmitted to
progeny of daughter cells during replication? • How does the simple four-base structure of DNA serve as a
template for synthesis of proteins that may contain 20 varieties of amino acids?
• What roles do genes play in determining cell structure and function?
• How is gene expression regulated? • By what mechanisms can the cells of an organism, which all
contain identical genes, become differentiated into divergent cell types?
• What are the general structures and functions of the four main tissue types: epithelial, connective, muscle, and nerve?
C H A P T E R O U T L I N E Structure and Function of DNA, 78
Structure of DNA, 78
DNA Replication, 79
Genetic Code, 80
Transcription, 81
Translation, 82
Regulation of the Genome, 84 Transcriptional Controls, 84
Differentiation of Tissues, 86 Cell Diversification and Cell Memory, 86
Mechanisms of Development, 86
Differentiated Tissues, 87
Epithelial Tissue, 87 Connective Tissue, 89 Muscle Tissue, 90 Nervous Tissue, 91
http://evolve.elsevier.com/Banasik/pathophysiology/
The ability of scientists to study and manipulate genes has evolved at an incredible pace, including the complete sequencing of all 3.2 billion nucleotide base pairs in an entire human genome. A better understanding of the role that genetics plays in cellular function and disease has spurred efforts to develop therapies to correct genetic abnormalities. The science of genetics developed from the premise that invisible, information- containing elements called genes exist in cells and are passed on to daughter cells when a cell divides. The nature of these elements was at first difficult to imagine: What kind of molecule could direct the daily activities of the organism and be capable of nearly limitless replication? The answer to this question was discovered in the late 1940s and was almost unbelievable in its simplicity. It is now common knowledge that genetic information is stored in long chains of stable molecules called deoxyribonucleic acid (DNA). The human genome contains nearly 20,000 protein-encoding genes containing only four different building blocks. These molecules are the deoxyribonucleotides containing the bases adenine (A), cytosine (C), guanine (G), and thymine (T). Genes are composed of varying sequences of these four bases, which are linked together by chains of sugar–phosphate bonds. By serving as the templates
for the production of body proteins, genes ultimately affect all aspects of an organism’s structure and function. The term genome was coined to be inclusive of the entire set of genetic and regulatory material in the nucleus and not just the genes. When the sequencing of an entire human genome was completed in 2004, it became clear that the genome is much more complex than the sum of its genes. Only 1.3% of chro- mosomal DNA codes for proteins, and many DNA sequences code for ribonucleic acid (RNA) molecules that function in the nucleus to regulate gene function. Methods to rapidly survey the DNA sequences of a particular person are available, and genetics is an increasingly important consideration in the etiology, pathogenesis, and pharmacologic treatment of a variety of diseases. However, genetic inheritance involves more than the transfer of genes from parent to offspring. For example, the nutritional exposures of grandparents may influence the metabolic physiology of grandchildren through a process known as epigenetics. Epigenetics is further explored in Chapter 6. Knowledge of the basic principles of genetics and gene regulation is a prerequisite to understand- ing not only conventional genetic diseases but also nearly every pathophysiologic process. This chapter examines the structure and
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
78 UNIT II Cellular Function
function of DNA, the regulation of gene expression, and the processes of tissue differentiation. Principles of genetic inheritance precede the discussion of genetic diseases in Chapter 6.
STRUCTURE AND FUNCTION OF DNA Structure of DNA In humans, DNA encodes genetic information in 46 long, double-stranded chains of nucleotides called chromosomes. The nucleotides consist of a five-carbon sugar (deoxyribose), a phosphate group, and one of the four nucleotide bases (Fig. 5.1). The nucleotide bases are divided into two types based on their chemical structure. The pyrimidines, cytosine and thymine, have single-ring structures. The purines, guanine and adenine, have double-ring structures (Fig. 5.2). DNA polymers are formed by the chemical linkage of these nucleotides. The sugar–phosphate linkages, also called phosphodiester bonds, join the phosphate group on one sugar (attached to the five-carbon) to the three-carbon of the next sugar (see Fig. 5.1). The four kinds of bases (A, C, G, T) are attached to the repeating sugar–phosphate chain. The bases of one strand of DNA form weak bonds with the bases of another strand of DNA. These noncovalent hydrogen bonds are specific and complementary (Fig. 5.3). The bases G and C always bond together, and the bases A and T always bond together. Nucleotides that are able to bond together in this complementary way are called base pairs.
In the early 1950s, Watson and Crick proposed that the structure of DNA was a double helix. In this model, DNA can be envisioned as a twisted ladder, with the sugar–phosphate bonds as the sides of the ladder and the bases forming the rungs (see Fig. 5.3). There is one complete turn of the helix every 10 base pairs. The two strands of DNA must be complementary to form the double helix; that is, the bases of
O
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H
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HO
O O
O–
T
O
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FIG 5.1 A nucleotide consists of a sugar (deoxyribose), a phosphate group, and one of the four nucleotide bases. Nucleotides are joined by repeating sugar–phosphate bonds to form long chains, called polymers. A, Adenine; C, cytosine; G, guanine; T, thymine.
• • •
• • •
• • •
• • •
• • •
C
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H
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O
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C
N
N C
C
H
N
H
H
C
H
C
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Guanine Cytosine
Adenine Thymine
Hydrogen bonds
C C
FIG 5.2 The two types of DNA bases are the single-ring pyrimidines and the double-ring purines. Thymine (T) and cytosine (C) are pyrimidines, and adenine (A) and guanine (G) are purines. Base pairing occurs between A and T and between C and G because of hydrogen bonds (dots).
CHAPTER 5 Genome Structure, Regulation, and Tissue Differentiation 79
G
A
G C
C G
A T
C
C G
C
T
T
A T
A
A
C
3' 5'
3' 5'
G
G
C G
C G
FIG 5.3 A schematic and space-filling model of the DNA double helix as proposed by Watson and Crick. The pairing of bases is specific and complementary: cytosine (C) always pairs with guanine (G), and adenine (A) always pairs with thymine (T).
one strand must pair exactly with their complementary bases on the other strand. The helix is wound around proteins called histones to form nucleosomes (Fig. 5.4). DNA coupled to histones and other nuclear proteins is termed chromatin. When a cell is not dividing, the chromatin is loosely packed within the nucleus and not visible under the light microscope. During cell division, the chromatin becomes tightly condensed into the 46 chromosomes that become visible during mitosis.
The discovery of the double-helix model was profound because it immediately suggested how information transfer could be accomplished by such simple molecules. Because each DNA strand carries a nucleotide sequence that is exactly complementary to the sequence of its partner, both strands can be used as templates to create an exact copy of the original DNA double helix. When a cell divides to form two daughter cells, each daughter cell must receive a complete copy of the parent cell’s DNA. The process of DNA replication requires separation of the DNA double helix by breaking the hydrogen bonds between the base pairs. Specific replication enzymes then direct the attachment of the correct (complementary) nucleotides to each of the single-stranded DNA templates. In this way, two identical copies of the original DNA double helix are formed and passed on to the two daughter cells during cell division.
DNA Replication Although the underlying principle of DNA replication is simple, the cellular machinery required to carry out the replication process is complex, involving a host of enzymes and proteins. These “replication machines” can duplicate DNA at a rate of 1000 nucleotides per second and complete the duplication of the entire genome in about 8 hours. The DNA double helix must first separate so that new nucleotides can be paired with the old DNA template strands. The DNA double helix is normally very stable: the base pairs are locked in place so tightly that they can withstand temperatures approaching the boiling point. In addition, DNA is wrapped around histones and bound by a host of DNA-binding proteins through which the replication machinery must navigate. DNA replication is started by special initiator proteins that pry the DNA strands apart at specific places along the chromatin, called replication origins. Then DNA helicases are needed to rapidly unwind and separate the DNA strands, whereas helix-destabilizing proteins (also called single-stranded DNA-binding proteins) bind to the exposed DNA strands to keep them apart until replication can be accomplished (Fig. 5.5). Human cells have 30,000 to 50,000 replication origins activated along the chromosomes during DNA replication to speed the process.
80 UNIT II Cellular Function
ends of the chromosomes (the telomeres), so another special enzyme complex, telomerase, is needed for this. The telomeres are fairly short, being composed of approximately 1000 repeats of a GGGTTA sequence. When the telomeres are replicated, one side of the double helix (3′ end) is always longer and loops around and tucks back into the strand. This looping structure is stabilized by a protein called shelterin that covers and protects the ends of the chromosomes. This prevents nuclear enzymes from mistaking the ends of the chromosomes for broken DNA ends and trying to attach them to each other. In many somatic cell types, telomerase activity is low and the cell’s chromosomes become slightly shorter with each cell division. Chromosomal shortening has been proposed as a mechanism of “counting” the number of replications and may be important in cellular aging and mechanisms of cancer (see Chapter 7). DNA replication is said to be semiconservative because each of the two resulting DNA double helices contains one newly synthesized strand and one original, conserved, strand (Fig. 5.6).
The DNA polymerase also has the ability to proofread the newly synthesized strands for errors in base pairing. If an error is detected, the enzyme will reverse, remove the incorrect nucleotide, and replace it with the correct one. The fidelity of copying during DNA replication is such that only about one error is made for every 10 nucleotide replica- tions. The self-correcting function of the DNA polymerases is extremely important because errors in replication will be transmitted to the next generation of cells.
Genetic Code How do an organism’s genes influence its structural and functional characteristics? A central theory in biology maintains that a gene directs the synthesis of a protein. It is the presence (or absence) and relative activity of various structural proteins and enzymes that produce the characteristics of the cell. This definition of genes as protein-coding elements is not entirely correct because many “genes” code for RNA molecules as their final functional products, and many genes code for more than one protein product through alternate splicing of the RNA messages. Protein synthesis still holds a predominant place in understand- ing how genes direct cell structure and function.
Proteins are composed of one or more chains of amino acids (polypeptides) that fold into complex three-dimensional structures. Cells contain 20 different types of amino acids that connect in a specific sequence to form a particular protein (Table 5.1). Each type of protein has a unique sequence of amino acids that dictates its structure and activity.
If genes are to direct the synthesis of proteins, the information contained in just four kinds of DNA nucleotide bases must code for 20 different amino acids. This so-called genetic code was deciphered in the early 1960s. It was determined that a series of three nucleotides (triplet) was needed to code for each of the 20 amino acids. Because there are four different bases, there are 43, or 64, different possible triplet combinations. This is far more than needed to code for the 20 known amino acids. Three of the nucleotide triplets, or codons, do not code for amino acids and are called stop codons because they signal the end of a protein code. The remaining 61 codons code for 1 of the 20 amino acids (see Table 5.1). Obviously, some of the amino acids are specified by more than one codon. For example, the amino acid arginine is determined by six different codons. The code has been highly conserved during evolution and is essentially the same in organisms as diverse as humans and bacteria.
Several intermediate molecules are involved in the process of DNA- directed protein synthesis, including the complex protein-synthesizing machinery of the ribosomes and several types of RNA. RNA is structurally similar to DNA, except that the sugar molecule is ribose rather than deoxyribose, and one of the four bases is different in that uracil replaces
As the DNA is unwound in the replication fork, it becomes overly twisted downstream, so another set of enzymes, topoisomerases, cuts nicks in the DNA and allows it to unwind to prevent tangling. Ligases repair the nicks.
Once a portion of the DNA double helix has been separated, an enzyme complex, DNA polymerase, binds the single strands of DNA and begins the process of forming a new complementary strand of DNA. DNA polymerase requires a “primer” to begin the process. Primers are formed from RNA by the enzyme DNA primase. The primase must be removed and replaced by DNA once the DNA chain is initiated. The DNA polymerases match the appropriate base to the template base and catalyze the formation of the sugar–phosphate bonds that form the backbone of the DNA strand. Replication proceeds along the DNA strand in one direction only: from the 3′ end toward the 5′ end. The ends of the DNA strands are labeled 3′ and 5′ according to the exposed carbon atom at that end. Because two complementary DNA strands are antiparallel, DNA replication is asymmetric; one strand, the leading strand, is replicated as a continuous polymer, but the lagging strand must be synthesized in short sections in a “backstitching” process (see Fig. 5.5). The backstitched fragments of DNA, called Okazaki fragments, are then sealed together by DNA ligase to form the unbroken DNA strand. DNA polymerase is unable to replicate DNA located at the very
Condensed metaphase chromosome
Supercoiled
Packed nucleosomes
“Beads-on-a- string” chromatin
Histones
DNA double helix
FIG 5.4 DNA is packaged by wrapping around protein complexes called histones to form beadlike structures called nucleosomes. During cell division, the coiled DNA becomes highly condensed into chromosomes that are visible under the light microscope. During interphase and when genes are being transcribed, the DNA is more loosely packaged and not visible.
CHAPTER 5 Genome Structure, Regulation, and Tissue Differentiation 81
and serves as the template for the synthesis of mRNA. This strand is called the sense strand. The other strand is termed the nonsense or antisense strand and is not transcribed into an RNA message. There are three types of RNA polymerases in human cells (types I, II, III), and each transcribes different categories of genes. Polymerase II transcribes protein-encoding genes and is the focus of this section.
Some genes are continuously active in certain cells, whereas others are carefully regulated in response to cellular needs and environmental
thymine. Because of the biochemical similarity of uracil and thymine, both can form base pairs with adenine. In addition, RNA forms stable single-stranded molecules, whereas DNA strands form a double-stranded molecule.
Several functionally different types of RNA are involved in protein synthesis and cell function. The number and variety of RNA molecules existing within the nucleus is large (Box 5.1), and the exact function of most has yet to be determined. Some perform messenger RNA (mRNA) splicing, ribosome assembly, and quality control of RNA messages before they are transferred to the cytoplasm. The roles of three types of RNA that participate in protein production are well understood. Ribosomal RNA (rRNA) is found associated with the ribosome (see Chapter 3) in the cell cytoplasm. Messenger RNA is synthesized from the DNA template in a process termed transcription and carries the protein code to the cytoplasm, where the proteins are manufactured. The amino acids that will be united to form proteins are carried in the cytoplasm by a third type of RNA, transfer RNA (tRNA), which interacts with mRNA and the ribosome in a process termed translation.
Transcription Transcription is the process whereby mRNA is synthesized from a single-stranded DNA template. The process is similar in some respects to DNA replication. Double-stranded DNA must be separated in the region of the gene to be copied, and specific enzyme complexes (DNA- dependent RNA polymerases) orchestrate the production of the mRNA polymer. Only one of the DNA strands contains the desired gene sequence
3'
5'
3'
Helix-destabilizing proteins
5'
Okazaki fragment
DNA primase
DNA helicase
DNA polymerase
DNA polymerase
FIG 5.5 Summary of the major proteins of the DNA replication fork. Helicase unwinds the DNA double helix, whereas helix-destabilizing proteins keep the strands from reuniting. The leading strand (top) can be replicated in a continuous manner, whereas the lagging strand (bottom) must be synthesized in pieces. Okazaki fragments are formed in a “backstitching” direction and then sealed together with DNA ligase. DNA primase synthesizes a short primer of RNA to initiate DNA polymerase activity.
mRNA—messenger RNA; codes for proteins rRNA—ribosomal RNA; within ribosomes, catalyzes protein synthesis tRNA—transfer RNA; adaptors between mRNA and amino acids in protein
synthesis snRNA—small nuclear RNA; splicing of pre-mRNA in the nucleus snoRNA—small nucleolar RNA; processing of rRNA in the nucleolus miRNA—micro RNA; regulates gene expression by blocking mRNA
translation siRNA—small interfering RNA; turns off gene expression through alteration
in chromatin piRNA—piwi-interacting RNA; protects the nucleus from transposable elements
(like prions) lncRNA—long noncoding RNA; regulates diverse processes including
X-chromosome inactivation in females
BOX 5.1 Types of RNA Produced in Cells
82 UNIT II Cellular Function
spliceosomes. The snRNAs, or small nuclear RNAs, cause the introns to loop out like a lariat, bringing the adjacent exons close together, followed by cutting and splicing. The snRNAs are combined with proteins to form molecules called small nuclear ribonucleoproteins (snRNPs) that form the core of the spliceosome. The snRNPs prevent escape through the nuclear envelope until all the necessary splicing has been accom- plished. An estimated 98% of pre-mRNA transcripts can be spliced in different ways to increase the number of different protein forms produced by a single gene.
The processed mRNA is finally transported to the cell cytoplasm through pores in the nuclear membrane that contain complexes that inspect the mRNA for certain structural characteristics that distinguish it from RNA debris. The mRNA then directs the synthesis of a protein in cooperation with tRNA and the ribosomes. Each mRNA may serve as a template for thousands of copies of protein before it is degraded.
Translation Translation is the process whereby mRNA is used to direct the synthesis of a protein. The mRNA is read in linear fashion from one end to the other, with each set of three nucleotides serving as a codon for a particular amino acid. The codons in the mRNA do not directly recognize the amino acids. Intermediary molecules, or “translators,” are required. These intermediaries are the tRNA molecules. A schematic drawing of a tRNA molecule is shown in Fig. 5.8, illustrating its L-shaped, three- dimensional structure. A codon reading area (anticodon) is located at one end and an amino acid attachment at the other. A group of specialized enzymes that have a binding pocket for a particular amino acid and a reading pocket for the anticodon are needed to attach the correct amino acid to its appropriate tRNA. The anticodon is formed by a sequence of three nucleotides. Recognition between the mRNA codon and the tRNA anticodon is accomplished by the same kind of complementary base pairing as was described for DNA. The complex machinery of the
signals. Special sequences of DNA near a desired gene may enhance or inhibit its rate of transcription. In general, a gene is transcribed when the RNA polymerase–enzyme complex binds to a promoter region just upstream of the gene’s start point. This binding event requires the cooperative function of numerous DNA-binding proteins. Once bound at the promoter, the RNA polymerase directs the separation of the DNA double helix and catalyzes the synthesis of the RNA message by matching the appropriate RNA bases to the DNA template (Fig. 5.7). The RNA message is directly complementary to the DNA sequence, except that uracil replaces thymine.
In higher organisms, the DNA template for a particular protein is littered with stretches of bases that must be removed from the original RNA transcript (pre-mRNA) before it can be translated into a protein. These intervening segments, called introns, are removed in the nucleus by a complex splicing process, resulting in an mRNA sequence that contains only the wanted segments, called exons. Introns range from 10 to 100,000 nucleotides in length. On average, 90% of a gene is composed of introns and only 10% remains in the final mRNA transcript; thus a single gene may contain dozens of introns that must be precisely removed. The function of introns remains largely a mystery, although they are believed to be important in the evolution of new genetic information and in gene regulation. Many of these intron sequences are conserved across species, which implies an important function. The presence of introns also allows alternate splicing so that one gene can be used to code for more than one protein. The removal of introns and splicing of the RNA transcript are mediated by a group of small RNA molecules located in specialized areas of the nucleus called the
Replication
Replication
Parental DNA double helix
FIG 5.6 DNA replication is semiconservative. Each of the new DNA double helices contains one newly synthesized strand and one original strand.
TABLE 5.1 RNA Codons for the Different Amino Acids and for Start and Stop
Amino Acids RNA Codons
Alanine GCU GCC GCA GCG Arginine CGU CGC CGA CGG AGA AGG Asparagine AAU AAC Aspartic acid GAU GAC Cysteine UGU UGC Glutamic acid GAA GAG Glutamine CAA CAG Glycine GGU GGC GGA GGG Histidine CAU CAC Isoleucine AUU AUC AUA Leucine CUU CUC CUA CUG UUA UUG Lysine AAA AAG Methionine AUG Phenylalanine UUU UUC Proline CCU CCC CCA CCG Serine UCU UCC UCA UCG AGC AGU Threonine ACU ACC ACA ACG Tryptophan UGG Tyrosine UAU UAC Valine GUU GUC GUA GUG Start (CI) AUG Stop (CT) UAA UAG UGA
CI, Chain initiation; CT, chain termination.
CHAPTER 5 Genome Structure, Regulation, and Tissue Differentiation 83
translating the nucleotide sequence into an amino acid sequence, one codon at a time (Fig. 5.9). The newly synthesized protein chain is released from the ribosome when a “stop codon” signaling the end of the message is reached. The new protein is typically bound by “chaperone” proteins that help it fold into its final three-dimensional shape. Amino acids belong to one of three groups—polar, nonpolar, or charged— which affects how the protein is processed and folded into its final structure (Fig. 5.10).
ribosome is needed to align the tRNA on the mRNA and to catalyze the peptide bonds that hold the amino acids together. Ribosomes are large complexes of protein and RNA. Each ribosome is composed of two subunits that are first assembled in a special part of the nucleus called the nucleolus and then transported through the nuclear pores to the cytoplasm. The smaller subunit binds the mRNA and the tRNA, whereas the larger subunit catalyzes the formation of peptide bonds between the incoming amino acids. The ribosome must first find the appropriate starting place on the mRNA to set the correct reading frame for the codon triplets. Then the ribosome moves along the mRNA,
DNA helix
RNA nucleotides RNA transcript
RNA polymerase
Unwinding site
G
A C
A T
T A
G C
A A
U
U G
C U
A
A
U
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U
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FIG 5.7 A moving RNA polymerase complex unwinds the DNA helix ahead of it while rewinding the DNA behind. One strand of the DNA serves as the template for the formation of mRNA.
Anticodon
3' end with
attached amino acid
FIG 5.8 Schematic drawing of a transfer RNA (tRNA) molecule. Each tRNA binds a specific amino acid, which corresponds with the three-base sequence at the anticodon end.
KEY POINTS • Genes are the basic units of inheritance and are composed of DNA located
on chromosomes. Genes direct the daily activities of the cell by controlling the production of proteins. Less than 1.5% of DNA forms genes that code for proteins. Some DNA codes for RNA transcripts that perform a variety of functions within the nucleus, but no function is known for the majority of the genomic DNA.
• The structure of DNA can be envisioned as a twisted ladder, with the sugar–phosphate bonds as the sides of the ladder and the four nucleotide bases (adenosine [A], cytosine [C], guanine [G], and thymine [T]) forming the rungs. The nucleotides form complementary base pairs: C with G and A with T.
• The DNA double helix must separate into single strands to provide a template for synthesizing new identical DNA strands that can be passed on to daughter cells during cell division. DNA replication is accomplished by the enzyme complex DNA polymerase. DNA synthesis has extremely high fidelity.
• A linear sequence of DNA that codes for a protein is called a protein-encoding gene. During transcription, genes provide a template for the synthesis of mRNA by the enzyme complex RNA polymerase.
• After a complex process of cutting and splicing of the pre-mRNA transcript within the nucleus, the mRNA is transported to the cytoplasm and translated into a protein. Each nucleotide triplet (codon) in the mRNA codes for a particular amino acid. Protein synthesis is accomplished by ribosomes, which match the mRNA codon with the correct tRNA anticodon and then catalyze the peptide bond to link amino acids together into a linear protein.
84 UNIT II Cellular Function
gene. The DNA-binding proteins are able to recognize their specific binding sites because of small variations in structure of the external surface of the DNA double helix and do not require separation of the strands to bind. These regulatory DNA-binding proteins can be catego- rized either as positive controls that activate transcription (activators) or as negative controls that inhibit transcription (repressors).
In humans, the strategies for gene regulation are complex. Gene regulatory proteins often bind DNA segments far from the gene being regulated, and binding of several gene regulatory proteins in combination is often necessary. A critical step in initiating gene transcription in human cells is the assembly of general transcription factors at the promoter region. General transcription factors are a group of DNA- binding proteins necessary for RNA polymerase activity, and initiation of transcription does not occur without them. Regulatory gene activator proteins help to collect the transcription factors at the promoter of the correct gene by first recognizing and binding to a specific DNA sequence and then coordinating the assembly of the transcription factors (Fig. 5.11).
Inhibition of transcription is achieved by gene repressor proteins, which also recognize and bind specific DNA sequences but inhibit the assembly of transcription factors at the site. Repressor proteins exert their effects through complex mechanisms, such as compacting the DNA to make it difficult to pry open, interfering with activator proteins, and binding up or inhibiting transcription factors. Inappropriate transcription of genes in a particular cell may have dire consequences for the cell or for the organism as a whole and is therefore a carefully regulated process. The presence, position, and activity of gene regulatory proteins may be regulated by various signaling cascades within the cell. Many of these signaling cascades are triggered by changes in the cell’s environment, which then alter gene transcription (see Chapter 3). This process is highly complex, with numerous signaling pathways often converging on a particular gene regulatory system. Even after the mRNA transcript is produced, it may not be allowed to reach the ribosome for translation. Small RNA molecules called micro RNA (miRNA) and small interfering RNA (siRNA) can anneal to complementary segments of the mRNA within the nucleus. In some cases, these small RNAs regulate gene splicing, but in other cases they “silence” the gene by preventing the mRNA from being translated into a protein.
REGULATION OF THE GENOME The genome contains the genetic information of the cell and ultimately determines its form and function. All the various cells in a multicellular organism contain the same genes, and differences in cell type are thought to be the result of differences in DNA expression. To maintain the cell’s phenotype, some genes must be actively transcribed, whereas others remain quiescent. In addition, the cell must be able to change the expression of certain genes to respond and adapt to changes in the cellular environment. At any one time, a cell expresses 30% to 60% of its approximately 28,000 genes (19,000 protein-coding genes and 9000 RNA genes). There is evidence that gene expression can be regulated at each of the steps in the pathway from DNA to RNA to protein synthesis. The proteins made by a cell can be controlled in the following ways: (1) regulating the rate and timing of gene transcription; (2) controlling the way the mRNA is spliced; (3) selecting the mRNAs that are trans- ported to the cytoplasm; (4) selecting the mRNAs that are translated by ribosomes; (5) selectively destroying certain mRNAs in the cytoplasm; or (6) selectively controlling the activity of the proteins after they have been produced.
For a majority of genes, the most important regulators of expression are the transcriptional controls. Approximately 10% of the cell’s protein- coding genes are devoted to making transcription-regulating proteins that are able to enhance or inhibit gene expression. These transcription regulators recognize and bind only particular DNA sequences and thus are specific to the genes they regulate. The approximately 2000 different genes that code for gene regulatory proteins work in combination to control numerous genes. The ability to regulate gene expression allows the cell to alter its structure and function in response to signals from its environment.
Transcriptional Controls The gene regulatory proteins described in the preceding paragraphs are thought to control gene transcription by binding in the major groove of the DNA double helix near the promoter sequence of the gene to be regulated. Binding of the regulatory proteins may either enhance or inhibit RNA polymerase binding and subsequent transcription of the gene. This is sometimes referred to as “turning on” or “turning off” a
Stop
Polypeptide released
Ribosome subunits released
Start
mRNA
5′ end
3′ end
Large ribosome
subunit
Small ribosome subunit
Amino acid chain
FIG 5.9 Synthesis of a protein by the ribosomes attached to an mRNA molecule. Ribosomes attach near the start codon and catalyze the formation of the peptide chain. The mRNA strand is read in groups of three nucleotides (codons) until the stop codon is reached and the peptide is released. Several ribosomes may translate a single mRNA into multiple copies of the protein.
CHAPTER 5 Genome Structure, Regulation, and Tissue Differentiation 85
CH2
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H
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H
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H
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O– O+H3N C C
H
CH2
CH2 H2C
O– O+H3N C C
H
CH3
CH CH2H3C
O– O+H3N C C
H
CH2
OH
O– O+H3N C C
H
C CH3
HHO
O– O+H3N C C
H
CH2
OH
O– O+H3N C C
H
CH2
O– O+H3N C C
H
CH2
CH NH
O– O+H3N C C
H
CH2
+HN NH
O– O+H3N C C
H
C
CH2
CH2
NH2O
O– O+H3N C C
H
C CH2
NH2O
O– O+H3N C C
H
CH2
COO–
O– O+H3N C C
H
COO–
CH2
CH2
O– O+H3N C C
H
CH2
CH2
CH2
CH2
NH3 +
O– O+H3N C C
H
CH2
CH2
C NH
CH2
NH2+H2N
O– O+H3N C C
H
Tryptophan Trp W
Phenylalanine Phe F
Arginine Arg R
Lysine Lys K
Tyrosine Tyr Y
Histidine His H
Glutamine Gln Q
Glutamic acid Glu E
Aspartic acid Asp D
Asparagine Asn N
Serine Ser S
Threonine Thr T
Cysteine Cys C
Methionine Met M
Proline Pro P
Isoleucine Ile I
Leucine Leu L
Valine Val V
Alanine Ala A
Glycine Gly G
+1/2
+1+1–1–1
P O
L A
R U
N C
H A
R G
E D
U N
C H
A R
G E
D C
H A
R G
E D
FIG 5.10 The 20 amino acids that form proteins have different chemical structures that affect their solubility in lipids and water. Nonpolar amino acids tend to locate in the lipid bilayer or in the interior of globular proteins, whereas polar and charged amino acids interact well with water. (From Pollard T, Earnshaw W: Cell biology, 2007, Philadelphia, Saunders.)
86 UNIT II Cellular Function
There is substantial evidence that the differences in tissue structure and function in a particular organism are not due to deletions or additions to the genes. All the cells of an organism contain essentially the same genes. It is the expression of a relatively few tissue-specific genes that results in differences among cell types. The exact mechanisms leading to the stable expression of tissue-specific genes in particular cell types are partly unknown; however, differences in DNA packaging and the combination of gene regulatory proteins passed on during cell division are thought to be important. The DNA in human cells is extensively packaged, so that 40 inches of linear DNA can be compacted to fit into the cell nucleus. However, different regions of chromosomes can be more or less condensed (see Fig. 5.4).
Some regions of DNA, called heterochromatin, are so condensed that they are not open to transcription. It is thought that the pattern of packaging as well as the DNA-binding proteins that regulate it are transmitted to progeny when a cell divides such that the pattern of gene expression is maintained as the cell’s developmental memory. An example of this mechanism is the inactivation of one of the X chro- mosomes in females. In mammals, all female cells contain two X chromosomes (XX), whereas male cells contain an X and a Y chromosome (XY). One of the X chromosomes in females is permanently inactivated early in development by condensed packaging. This apparently occurs to prevent a double dose of the X gene products. Which of the two X chromosomes is inactivated in a particular cell is a random event. However, the same X chromosome will be inactive in all of the cell’s progeny. Methylation of cytosine nucleotides (Fig. 5.12) in specific areas of DNA with CG sequences also makes the area resistant to transcription. The pattern of methylation-inactivated genes in a particular cell type is “remembered” in subsequent generations of cells and may explain, in part, how differentiated tissues remain differentiated in the adult.
Mechanisms of Development Embryonic development is associated with selective gene expression that controls four essential processes to enable a single cell to develop into a complex organism: (1) cell proliferation, (2) cell specialization,
DIFFERENTIATION OF TISSUES Cell Diversification and Cell Memory The cells of a multicellular organism tend to specialize to perform particular functions in coordination with other cells and tissues of the body. Cells not only must become different during development, but also must remain different in the adult, after the original cues for cell diversification have disappeared. The differences among cell types are ultimately the result of the differentiating influences experienced in the embryo. Differences are maintained because the cells retain the effects of those past influences and pass the memory on to their descendants. When a skin cell divides to replace lost skin cells, the daughter cells are also skin cells; when a liver cell divides, its daughter cells are liver cells; and so on. The behavior of cells of higher organisms is governed by their genome and their present environment, as well as by their devel- opmental history.
Regulatory sequence
Gene regulatory proteins
Gene enhancer protein
TATA Gene
Mediator
Promoter
RNA polymerase
General transcription factors
Specific transcription factors (activators, repressors)
FIG 5.11 Gene activator proteins coordinate the assembly of general transcription factors at the promoter region of the gene to be transcribed. RNA polymerase is unable to bind and begin transcription until the requisite transcription factors are in place. Mediator and general transcription factors are the same for all RNA polymerase transcribed genes, but regulators are specific.
KEY POINTS • All the cells in an individual have essentially the same DNA; however, cells
differ greatly in structure and function. This occurs because genes are selectively expressed in particular cells.
• Gene expression can be regulated at any step in the pathway from DNA to RNA to protein synthesis. The most important regulators are transcriptional controls.
• A critical step for initiation of gene transcription is the assembly of general transcription factors at the promoter region of the gene.
• The actions of general transcription factors and RNA polymerase are controlled by a large number of regulatory proteins that specifically bind to DNA. The presence of certain DNA-binding proteins at specific sites can activate or repress the transcription of a particular gene in response to signals in the cell’s environment.
• A number of small RNA molecules function to regulate mRNA transcription and processing in the nucleus.
CHAPTER 5 Genome Structure, Regulation, and Tissue Differentiation 87
modulate the transport of molecules, such as growth factors, to the cell membrane and through direct contacts with the cell membrane that effect changes in cell structure and function.
The extracellular matrix surrounding the cells in different locations provides positional information to cells that must migrate to their final destination. In vertebrates, connective tissue cells appear to provide much of this positional information. While the migratory cell travels through the connective tissue, it continually samples the surroundings, searching for cues to guide it. Certain chemokines (CXCL12) and complementary receptors (CXCR4) on migratory cells are an important signaling system to help cells localize to certain areas. Migratory cells with other specific cell surface receptors may interact differentially with the extracellular matrix in different areas. In this way the migratory cell can be guided along particular paths and induced to settle in particular areas. Once the migratory cell has settled, local extracellular matrix molecules may further affect the cell’s growth rate, differentiation, and likelihood of survival.
Interactions between the extracellular matrix and nearby cells are mediated primarily by binding proteins called integrins. Integrins are transmembrane proteins that tie the cell’s cytoskeleton to particular matrix structures (see Chapter 3). They enable the cytoskeleton and extracellular matrix to communicate across the plasma membrane in specific ways. In addition to inducing cells to bind in a particular location, integrins have been shown to activate intracellular signaling pathways, which may influence cell behavior in numerous ways (e.g., cell shape, polarity, metabolism, development, and differentiation).
The steps leading to the development of differentiated tissues in a multicellular organism are such that, once differentiated, a cell type generally does not revert to earlier forms. Some cells in a tissue are terminally differentiated and have limited capacity to change form or replicate. Tissues also maintain less differentiated stem cells that are able to proliferate depending on environmental cues. Some stem cells, located mainly in the bone marrow, are quite similar to embryonic stem cells and can be recruited into tissues where they proliferate and differentiate into tissue cells. The ability of these multipotent or plu- ripotent stem cells to survive and differentiate correctly in their adopted home depends on making complex cell-to-cell and cell-to-matrix connections. In the absence of an appropriate environment, the cells will undergo apoptosis and die (see Chapter 4).
Differentiated Tissues The more than 200 different cell types in the adult human are generally classified into four major tissue categories: epithelium, connective tissue, muscle, and nerve. Tissue types and some of their subtypes are sum- marized in Table 5.2. Most of the organ systems of the body are combina- tions of these four tissue types mixed in a highly organized and cooperative manner.
Epithelial Tissue Epithelial cells cover the majority of the external surfaces of the body and line the glands, blood vessels, and internal surfaces. Epithelial cells adopt a variety of shapes and functions, depending on their locations. For example, the stratified epithelium that composes the epidermis of the skin is several layers thick and is primarily protective in function. New epithelial skin cells are formed from stem cells in the deepest part of the epidermis, where it contacts the basal lamina. As cells mature, they move outward toward the surface until they become keratinized and finally flake away (Fig. 5.13). Keratin is a tough protective protein that is present in large quantities in the outer skin layers of flattened, dead epithelial cells. The epidermis in humans is completely replaced about once per month, but turnover can occur more rapidly after injury to the skin.
(3) cell-to-cell interactions, and (4) cell movement and migration. Each time a cell divides, it must retain memory of the developmental events that have preceded the division so that it can progress along a devel- opmental pathway toward becoming a differentiated tissue. Cells have a genetic memory: the genes a cell expresses and the way it behaves depend on the cell’s past, as well as its present environment. There is no overall controlling center; each cell must make its own developmental decisions.
Two major classes of proteins are particularly important for multi- cellular development: (1) transmembrane proteins in the cell surface that participate in cell adhesion and communication and (2) DNA- binding proteins that regulate gene transcription. Differences between cells in an embryo are a necessary prelude to development of a multi- cellular organism and arise in various ways. Very early in embryonic development, cells begin to divide asymmetrically so that daughter cells are not identical—those on the outside of the group of cells receive different environmental cues than those on the inside, which are sur- rounded by other cells. These simple differences in cell-to-cell adhesion may alter the transcription of a set of genes. The altered genetic expression will then be passed on to daughter cells in the next cell division, making them diverge further from the original cell. Subsequently, the cell will respond differently to environmental influences, which further alter the cell’s structure and function. Thus cells become committed to a developmental pathway over the course of many cell divisions that transmit the history of previous exposures through sequential changes in gene expression.
Continued interactions with nearby cells, chemical gradients, and extracellular matrix components provide clues to guide the cell to its appropriate form and location in the developing organism. Chemi- cals that control the patterning of fields of nearby tissue are termed morphogens. For example, cells in the head region may specialize to secrete a “position signal” for other cells. The morphogen is progressively degraded as it diffuses through the neighboring tissue, such that it has higher concentration close to the source. A particular cell will have information regarding its proximity to the head region based on the surrounding concentration of the chemical. Morphogens are thought to be effective only over small distances. Thus the gross distinctions between head and tail, for example, must be made very early in the embryo, and morphogens can provide only a general pattern for future development. Successive levels of detail can be provided later by other positional signals.
The organization of molecules surrounding the cell surface also provides positional information. The extracellular matrix is composed of a large meshwork of molecules that is produced locally by cells in the area. Some common components include the proteins collagen and elastin; long polysaccharide chains called glycosaminoglycans; and a variety of peptides, growth factors, and hormones. The extracellular matrix is highly organized, with components binding to each other and to the cell membrane in specific ways. The extracellular matrix is thought to be important in cell development through its ability to screen or
N
N
Cytosine
Methylation
H
H
H
H
N O
N
N
H
H3C
H
H
N O
FIG 5.12 Methylation of cytosine is a common way that gene transcription is repressed.
88 UNIT II Cellular Function
TABLE 5.2 Major Categories and Location of Body Tissues
Tissue Type Locations
Epithelial Tissue Simple squamous Lining of blood vessels, pulmonary
alveoli, Bowman capsule Simple cuboidal Thyroid, sweat, and salivary glands;
kidney tubules Simple columnar Lining of intestine, glandular ducts Pseudostratified (mixed cell
shapes) Male urethra, respiratory tract passages
Stratified squamous Skin, mucous membranes Stratified columnar Epiglottis, anus, parts of pharynx Stratified transitional (layers of
different cell shapes) Bladder
Connective Tissue Loose Widespread locations, dermis of skin,
adipose tissue, organs Dense/supportive Cartilage, bone, tendons, joints, fascia
surrounding muscles Hematopoietic Bone marrow, lymph tissue, plasma
Muscle Tissue Skeletal Voluntary muscles of body Cardiac Heart (myocardium) Smooth Intestine, blood vessels, bladder, uterus,
airways Myoepithelial Mammary, sweat, and salivary glands
Nervous Tissue Neurons Central and peripheral nerves Neuroglia Primarily central nervous system
Squame flaking away from surface
Keratinized squames
Granular cell layer
Prickle cell layers
Basal cell layer
Basal lamina
D e rm
is E
p id
e rm
is
Connective tissue
FIG 5.13 Organization of epidermal skin layers, showing the flattened keratinized outer layer. Epithelial cells are continually produced by stem cells at the basal lamina and then migrate to the surface.
Simple squamous
Simple squamous
Simple columnar
Simple columnar
Pseudostratified ciliated columnar
Pseudostratified
Pseudostratified columnar Transitional
Stratified squamous
Stratified squamous
Cuboidal
Simple cuboidal
FIG 5.14 Various epithelial tissue shapes and layering.
In addition to stratified epithelium, the epithelium may be character- ized as simple or pseudostratified according to the number and arrange- ment of cell layers (Fig. 5.14). Simple epithelium consists of a single layer of cells, all of which contact the basement membrane. Simple epithelium is found in the lining of blood vessels and body cavities, in many glands, and in the alveoli of the lungs. The simple epithelium that lines the blood vessels is called endothelium. Simple epithelium also forms the kidney tubules and lines the intestine, where absorption is its primary function. Stratified epithelium consists of two or more layers of epithelial cells and is found in mucous membranes, such as the mouth, and in the skin, as mentioned previously. Epithelium that appears to be more than one layer thick because of a mixture of cell shapes but is actually a single layer is called pseudostratified epithelium. The linings of the respiratory tract and some glands contain pseudostrati- fied epithelium.
Epithelial cells may also be classified according to cell shape. The three basic cell shapes are squamous, cuboidal, and columnar. Squamous
CHAPTER 5 Genome Structure, Regulation, and Tissue Differentiation 89
in bone marrow, and the parenchymal cells (functional cells) in organs. Cell types associated with loose connective tissue include the fibroblasts, mast cells, and adipocytes (fat cells).
Dense or supportive connective tissue is rich in collagen, which gives strength to structures such as cartilage, tendon, bone, and ligaments. The collagen fibers are more organized and densely packed than fibers found in loose connective tissue. Cartilage cells, or chondrocytes, may be found in the trachea, joints, nose, ears, vertebral disks, organs, and the young skeleton. Once formed, the collagenous extracellular matrix structures require little maintenance and do not receive a blood supply. Bone is a highly dense form of connective tissue composed of a mixture of tough collagen fibers and solid calcium phosphate crystals in approximately equal proportions. Throughout the bone’s hard extracel- lular matrix are channels and cavities occupied by living cells (osteocytes) (Fig. 5.16). These cells incessantly model and remodel their bony environment, responding to environmental signals. These osteocytes are of two kinds: the cells that erode old bone are called osteoclasts, whereas the cells that form new bone are called osteoblasts. Osteoblasts detect when a bone is subjected to a greater load stress and adapt by strengthening the bone mass. Conversely, when the load is removed, as during bed rest, the osteoclasts busily digest the bone, often resulting in some of the common complications of immobility. Osteoclasts, like macrophages, are derived from monocytes that are produced in the bone marrow. The monocytes travel via the bloodstream and collect at sites of bone resorption, where they fuse together to become osteoclasts. Osteocyte activity is essential for bone growth and the repair of bone injuries. (See Chapter 50 for a detailed description of the musculoskeletal system.)
The blood-forming organs of the body contain a specialized type of connective tissue called hematopoietic tissue. The blood cells include the red cell, or erythrocyte, which is specialized for the transport of oxygen; the platelet, or thrombocyte, which is important in blood coagulation; and a host of white cells, or leukocytes, which mediate immune function. Blood-forming tissue is located in the bone marrow, spleen, and lymphatic tissue. Hematopoietic cells are necessarily nomadic, traveling to distant areas of the body and sometimes settling in a particular organ, sometimes moving continuously (Fig. 5.17). Blood cells have a short life span in comparison to other cells and must continu- ally be replenished. This is accomplished by the hematopoietic stem cells. Stem cells reside primarily in the bone marrow and are multipotent;
cells are thin in comparison to their surface area and have a flattened appearance. Cuboidal cells are approximately equal in width and height, similar to a cube. Columnar cells are a bit taller than they are wide, resembling a rectangular column. Several classifications of epithelial tissue are given in Table 5.2, using both shape and layering as criteria.
Connective Tissue Connective tissue is the most abundant and diverse tissue in the body, including cell types as different as bone cells, fat cells, and blood cells. Connective tissue commonly functions as a scaffold on which other cells cluster to form organs, but it does much more than hold tissues together. Connective tissue cells often form an elaborate extracellular matrix, which is thought to be important in the maintenance of cell differentiation. Connective tissue cells play an important part in the support and repair of nearly every tissue and organ in the body. Three major classifications of connective tissue are commonly identified: loose connective tissue, dense or supportive tissue, and hematopoietic tissue.
Loose connective tissue appears unstructured, with a fair amount of space between fibers of the extracellular matrix. The matrix contains a number of cell types and an elaborate meshwork of protein and other molecules (Fig. 5.15). The primary protein constituents are collagen, elastin, and reticular fibers. Collagen is composed of tough, nonelastic bundles of protein fibers that are secreted by fibroblasts. It gives structural strength to skin, tendons, ligaments, and other tissues. The ability of a structure to withstand deforming and stretching forces is due, in large part, to elastin, which can return to its original length after being stretched, like a rubber band. Elastin is important to the function of structures such as the aorta, which must expand to accept the blood ejected from the heart during systole and bounce back to its original shape during diastole. Reticular fibers are short branching fibers that provide networks for the attachment of connective tissue to other cell types, such as epithelial cell attachments in glands, hematopoietic cells
Collagen fibers
Fibroblast
Loose connective tissue
FIG 5.15 Scanning electron micrograph of fibroblasts in loose connective tissue of a rat cornea. The matrix is composed primarily of collagen fibers (magnification ×440). (From Solomon EP: Introduction to human anatomy and physiology, ed 4, Philadelphia, 2016, Saunders, p 38.)
Lacunae
Haversian canal
Matrix
Bone
FIG 5.16 Photomicrograph of a section of compact bone showing circular networks formed by the action of osteoclasts and osteoblasts as they remodel the bone. The osteocytes occupy the lacunae and canals. (From Solomon EP: Introduction to human anatomy and physiology, ed 4, Philadelphia, 2016, Saunders, p 38.)
90 UNIT II Cellular Function
within the cell. In skeletal muscle, the calcium originates from internal storage sites in the sarcoplasmic reticulum. Contraction is initiated when the calcium binds troponin, a regulatory protein attached to the actin filament. Because of the high energy requirements of contracting skeletal muscle, the cells are packed with energy-producing mitochondria.
Like skeletal muscle, cardiac muscle also has a striated appearance attributable to the systematic organization of its actin and myosin filaments. Cardiac muscle cells are linked by special structures, called intercalated disks and gap junctions, that cause the tissue to behave as a syncytium: all the cells contract synchronously. Cardiac muscle contracts in response to activation of pacemaker cells in the heart that have the special property of automaticity. Automaticity refers to the inherent ability of the cell to initiate an action potential without outside stimulation. The contractile mechanisms of cardiac muscle are similar to those of skeletal muscle, requiring free calcium to interact with troponin, resulting in the formation of actin–myosin cross-bridges. In cardiac muscle, some of the free calcium originates from the sarco- plasmic reticulum, but diffusion into the cell through channels in the cell membrane is also necessary. These membrane calcium channels represent an important difference from skeletal muscle, because they can be manipulated by drugs (calcium channel blockers) without disrupting skeletal muscle control. (Cardiac muscle is discussed in Chapter 17.)
Smooth muscle comprises a diverse group of tissues located in organs throughout the body. Smooth muscle generally is not under voluntary control and therefore is called involuntary muscle. Some types of smooth muscle are able to contract intrinsically, and most are influenced by the autonomic nervous system. Smooth muscle is found in blood vessels and in the walls of hollow organs, such as those of the gastrointestinal tract, uterus, and large airways.
The structure of smooth muscle differs considerably from that of skeletal and cardiac muscle, and therefore some classification schemes consider it to be a member of the connective tissue family. The actin and myosin filaments are less organized in smooth muscle, and the
they may differentiate into any of the blood cell types. This results in a system that can respond quickly to the changing needs of the body.
Muscle Tissue The term muscle refers to tissues that are specialized for contraction. Muscle cells, or myocytes, are usually long and thin and packed with the proteins actin and myosin, which constitute the contractile apparatus. In mammals, there are four main categories of muscle cells: skeletal, cardiac, smooth, and myoepithelial (Fig. 5.18). Contraction in all four types depends on the presence of intracellular free calcium and occurs because of interactions between actin and myosin filaments. Actin and myosin filaments differ among cell types with regard to amino acid sequence, arrangement within the cell, and the mechanisms that control contraction. The mechanism of muscle contraction has been called the sliding filament hypothesis or cross-bridge theory. These terms describe the interactions of the actin and myosin filaments while they form bonds and pull past each other, causing the muscle cell to shorten. Contraction is initiated by an increase in intracellular free calcium concentration and requires energy in the form of adenosine triphosphate. A detailed description of actin–myosin cross-bridging and the role of calcium, troponin, and tropomyosin can be found in Chapter 17.
Skeletal muscle is responsible for nearly all voluntary movements. Skeletal muscle cells fuse together to form long multinucleated fibers that can be huge, up to 0.5 meter (m) in length. Once fused and dif- ferentiated into mature skeletal muscle cells, they cannot enter the cell cycle and divide to produce new cells. Skeletal muscle stem cells (satellite cells) are retained in the muscle tissue and can proliferate in response to muscle damage. The actin and myosin proteins in skeletal muscle are aligned in orderly arrays, giving the tissue a striped appearance under the microscope, which in turn has led to the term striated muscle. Skeletal muscle contracts in response to stimulation from the motor neurons of the nervous system (see Chapter 50). As in other types of muscle, stimulation results in an increase in free calcium concentration
FIG 5.17 Scanning electron micrograph of red and white blood cells in the lumen of a blood vessel. Red blood cells are smooth and concave, whereas white blood cells are rough and rounded. (From Alberts B et al, editors: Molecular biology of the cell, ed 5, New York, 2008, Garland Science, p 1451. Courtesy Ray Moss.)
CHAPTER 5 Genome Structure, Regulation, and Tissue Differentiation 91
Nervous Tissue Nervous tissue is widely distributed throughout the body, providing a rapid communication network between the central nervous system and various body parts. Nerve cells are specialized to generate and transmit electrical impulses rapidly. Like muscle, nerves are excitable; they respond to stimulation by altering their electrical potentials. This excitability is caused by the presence of voltage-sensitive ion channels located in the plasma membrane of the nerve cell. Movement of ions through these channels results in the production and propagation of action potentials along the length of the neuron. Neurons communicate their action potentials to other nerve and muscle cells through synapses. At the synapse, the presynaptic neuron releases a chemical neurotransmitter into the space between itself and the next neuron (synaptic cleft), where it diffuses across and interacts with receptors on the postsynaptic neuron.
A typical neuron is composed of three parts: a cell body, an axon, and one or more dendrites (Fig. 5.20). The cell body contains the nucleus and other cytoplasmic organelles. The axon is generally long (as long as 1 m) and may be encased in a myelin sheath. The axons usually conduct impulses away from the cell body, whereas the dendritic processes usually receive information and conduct impulses toward the cell body. Neurons are classified on the basis of the number of projections extending from the cell body. Neurons are terminally differentiated and incapable of replicating. However, neural stem cells are located in certain areas of the brain like the hippocampus and may replicate to form either neurons or glial cells in response to specific signals (see Chapter 43).
muscle does not have striations. Smooth muscle contraction tends to be slower and can be maintained indefinitely. This is critical to the function of blood vessels, which must maintain a degree of contraction or vascular tone to maintain the blood pressure. Smooth muscle has no troponin and uses the protein calmodulin as the calcium-binding regulatory protein. When calmodulin binds calcium ions in the cytoplasm, it activates the enzyme myosin light chain kinase (MLCK), which phosphorylates myosin and stimulates the rate of cross-bridge formation. Actin filaments are attached to structural proteins called dense bodies that pull in the sides of the muscle cell when actin–myosin cross-bridging causes the filaments to increasingly overlap (Fig. 5.19). Smooth muscle contraction is highly dependent on the diffusion of extracellular calcium into the cell through calcium channels in the plasma membrane (sarcolemma). Thus like cardiac muscle, smooth muscle can also be affected by drugs that alter the calcium channel’s ability to conduct calcium. For example, calcium channel–blocking drugs are used to cause the smooth muscle in arterial blood vessels to relax as a treatment for high blood pressure.
Myoepithelial cells represent the fourth class of muscle cells. They are located in the ducts of some glands (e.g., mammary, sweat, and salivary). Unlike all other types of muscle, myoepithelial cells lie in the epithelium and are derived from embryonic ectoderm, whereas skeletal, cardiac, and smooth muscle are derived from embryonic mesoderm. Myoepithelial cells contract in response to specific stimuli (e.g., oxytocin in the mammary gland) and serve to expel the contents from the gland.
Skeletal muscle fibers
Nerve fibers
Bundle of smooth muscle cells
Heart muscle cells
Myoepithelial cell
Milk- secreting cell
10 �m
10 �m
10 �m
50 �m
A B
C D
FIG 5.18 The four classes of muscle cells. A, Skeletal muscle. B, Heart (cardiac) muscle. C, Smooth muscle (bladder). D, Myoepithelial cells in a mammary gland. (A and C, From Alberts B et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p 1233. A, Courtesy Junzo Deskati. B, From Fujiwara T: Cardiac muscle. In Canal ED, editor: Handbook of microscopic anatomy, Berlin, 1986, Springer- Verlag. C, Courtesy Satoshi Nakasiro. D, From Nagato T et al: A scanning electron microscope study of myoepithelial cells in exocrine glands, Cell Tissue Res 209:1–10, 1980.)
92 UNIT II Cellular Function
Initial segment
Cell body
Nucleus
Dendrites
Axon hillock
Myelin sheath
Axon
Nodes of Ranvier
Oligodendrocyte
Axon terminal
FIG 5.20 Diagram of a typical neuron showing the cell body, axon, and dendrites. Neurons have many shapes and sizes.
Contractile filaments
Contractile filaments
Dense bodies
Dense bodies
Cytoskeleton
Cytoskeleton
A
B
Ca2+ Ca2+
FIG 5.19 Schematic drawing of a smooth muscle cell when relaxed (A) and contracted (B). Contraction begins with the entry of Ca2+ into the cell through L-type voltage-gated calcium channels. Ca2+ is also released from the sarcoplasmic reticulum. The calcium ions bind to cytoplasmic calmodulin to form a complex that activates myosin light chain kinase (MLCK). The kinase attaches a phosphate to the myosin head area, which stimulates its cycling activity. The myosin binds to actin filaments and tugs on them with each cross-bridge cycle. While the myosin and actin filaments pull closer together and overlap more, the muscle cell shortens. The actin filaments are attached to dense bodies that are analogous in function to the Z-disk protein in cardiac and skeletal muscle. Smooth muscle can maintain long-term actin–myosin cross-bridges that maintain a level of tone.
The development, differentiation, and daily activities of a cell are directed by its genome. Genes are sequences of nucleotides that provide the template for the production of RNA or cellular proteins. In large part, the kinds and amounts of cellular proteins determine cell structure and function. All the cells of the body possess essentially the same DNA,
but through complex processes of differentiation they become specialized to perform particular functions. Different sets of genes are active in different cell types. The four major classes of differentiated tissues are epithelial, connective, muscle, and nerve. These four tissues interde- pendently form the functioning systems of the body.
S U M M A R Y
In addition to neurons, nervous tissue contains a variety of supportive cells, termed neuroglia (“nerve glue”), that nourish, protect, insulate, and clean up debris in the central nervous system. These include the astrocytes, oligodendroglia, ependymal cells, and microglia. (See Chapter 43 for a detailed description of nervous system anatomy and physiology.)
KEY POINTS • The structure and function of cells are influenced by the genome and environ-
ment as well as by developmental history. • Embryonic development is associated with selective gene expression that
controls four essential processes to enable a single cell to develop into a
complex organism: (1) cell proliferation; (2) cell specialization; (3) cell-to-cell interactions; and (4) cell movement and migration.
• Many terminally differentiated cell types are unable to divide. Some tissues, such as skin and bone marrow, maintain large numbers of stem cells, which have great capacity to proliferate. Tissues are able to recruit multipotent stem cells from the bone marrow that have the capacity to become differenti- ated tissue cells if given appropriate survival and developmental conditions. Some differentiated cells, such as liver cells, maintain the ability to divide even though they are differentiated.
• Different cell types in the adult human are classified into four major categories: epithelium (e.g., skin, glands, endothelium); connective tissue (e.g., bone, cartilage, fat, blood); muscle (e.g., skeletal, cardiac, smooth); and nervous tissue (e.g., neuronal, glial).
CHAPTER 5 Genome Structure, Regulation, and Tissue Differentiation 93
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biology, Cold Spring Harbor, NY, 1966, Cold Spring Harbor Laboratory. Grunberg S, Hahn S: Structural insights into transcription initiation by RNA
Polymerase II. Trends Biochem Sci 38:603–611, 2013. Meisenberg G, Simmons WH: The human genome. In Meisenberg G,
Simmons WH, editors: Principles of medical biochemistry, ed 3, Philadelphia, 2012, Saunders, pp 93–117.
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6
Genetic and Developmental Disorders Linda D. Ward
K E Y Q U E S T I O N S • How are genes transmitted from parent to offspring? • How is pedigree analysis used to determine whether a trait is
inherited in an autosomal-dominant, autosomal-recessive, or X-linked pattern?
• How might abnormal meiosis lead to alterations in chromosome number or structure?
• What are the inheritance patterns and general clinical features of some common genetic disorders?
• What is the role of the environment in the development of congenital disorders?
• What methods of genetic testing are available?
C H A P T E R O U T L I N E Principles of Inheritance, 95
DNA Mutation and Repair, 96
GENETIC DISORDERS, 98 Chromosomal Abnormalities, 99
Aberrant Number of Chromosomes, 99
Abnormal Chromosome Structure, 100
Examples of Autosomal Chromosome Disorders, 100
Trisomy 21 (Down Syndrome), 100 Trisomy 18 (Edwards Syndrome) and Trisomy 13
(Patau Syndrome), 101 Cri du Chat Syndrome, 101
Examples of Sex Chromosome Disorders, 101 Klinefelter Syndrome, 101 Turner Syndrome, 102 Multiple X Females and Double Y Males, 102
Mendelian Single-Gene Disorders, 102 Autosomal-Dominant Disorders, 103
Marfan Syndrome, 103 Huntington Disease, 104
Autosomal-Recessive Disorders, 104 Albinism, 105
Phenylketonuria, 106 Cystic Fibrosis, 106
Sex-Linked (X-Linked) Disorders, 106 Hemophilia A, 107
Nonmendelian Single-Gene Disorders, 107 Anticipation, 109 Mitochondrial Gene Mutations, 109 Genomic Imprinting, 110
Polygenic and Multifactorial Disorders, 110 Environmentally Induced Congenital Disorders, 111
Periods of Fetal Vulnerability, 111 Teratogenic Agents, 111
Chemicals and Drugs, 111 Infectious Agents, 112 Radiation, 112
Other Disorders of Infancy, 113 Diagnosis, Counseling, and Gene Therapy, 113
Prenatal Diagnosis and Counseling, 113 Genetic Analysis and Therapy, 114 Recombinant DNA Technology, 114
http://evolve.elsevier.com/Banasik/pathophysiology/
Geneticists and parents alike have marveled at the development of a recognizable human baby, with eyes and ears, toes and fingers, from its simple beginning as a single cell containing one set of genes. Consider- ing the enormous list of potentially disastrous genetic and environmental influences, the birth of a healthy, normal child does indeed seem like a miracle. Although the risk of bearing a child with mental or physical defects is small for most parents, it is real and is often a source of worry during the prenatal period. Disorders that are present at birth are called
congenital, whether the cause is genetic, environmental, or both. Some congenital disorders are associated with structural defects attributable to errors in fetal development and are called congenital malformations. It is estimated that 2% to 3% of newborns have a major malformation of cosmetic or functional significance.
Malformations are frequently associated with genetic causes. Chro- mosomal abnormalities are thought to cause approximately 6% of congenital abnormalities, and single-gene disorders are implicated in
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 6 Genetic and Developmental Disorders 95
have half of the normal number of chromosomes. In contrast to mitosis (see Chapter 3), meiosis involves two divisions of chromosomal DNA. A comparison of meiotic and mitotic cell division is shown in Fig. 6.3.
During the first phase of meiosis, pairs of homologous chromosomes with duplicated sister chromatids come in close contact. Portions of the homologous chromosomes are exchanged in a process called crossing over (Fig. 6.4). This results in a mixing of the maternal and paternal genes of the cell to form a new combination of genes within the chromosomes. Genetic recombination is very precise, such that genes are exchanged intact and not interrupted in the middle. On average, each homologous pair of chromosomes has one to three crossover events occurring during the first meiotic division. The first cellular division of meiosis results in two cells, each with 46 chromosomes. These two cells undergo a second division in which the sister chromatids are pulled apart (similar to normal mitosis), resulting in four cells, each having only 23 chromosomes. Each of the germ cells has a different combination of genes that, when passed on through sexual reproduction, will form a new, genetically unique individual.
The genes that code for a particular gene product, such as an enzyme, are located at a particular position (locus) on the chromosome. Gene loci are described by their position on the long arm (q arm) or the short arm (p arm) of the chromatid. For example, the gene locus 2p13 is located on the short arm of chromosome 2 at region 1, band 3 (Fig. 6.5). Genes come in several forms, called alleles. Normally, a person has two alleles for each gene, one received from each parent. If both alleles are functionally identical, the individual is said to be homozygous for that gene. If two different alleles are present, the individual is heterozygous. Sometimes, a particular allele can cause a trait to be expressed independent of the gene’s homolog; such an allele is said to be dominant. The homologous allele whose effect is masked by a dominant allele is said to be recessive. A recessive trait is apparent only if both alleles for the trait are recessive (homozygous). It is important to remember that not all gene pairs occur in dominant and recessive forms.
Because transmission of single-gene (monogenic) traits from parent to offspring follows Mendel’s rules, inheritance can be demonstrated using a Punnett square (Fig. 6.6). In a Punnett square, alleles for a gene
7% to 8% of cases. It has been estimated that most people harbor five to eight defective genes that are recessive and therefore of little conse- quence to their health. In addition, there are many known and unknown environmental hazards to which the parent and fetus may be exposed. Environmental agents that can adversely affect the developing embryo or fetus are called teratogens and include radiation, pathogens, chemicals, and certain drugs. In half of cases, a clear explanation for a malformation cannot be found, and most congenital malformations are thought to occur due to multifactorial (genetic + environmental) causes. Some inherited genetic disorders do not become apparent until later in childhood or adulthood and therefore are not considered congenital. In this chapter, the general principles of inheritance; genetic and environmental causes of congenital disorders; and the principles of diagnosis, counseling, and gene therapy are described.
PRINCIPLES OF INHERITANCE “Whom does the baby look like?” is frequently asked of new parents. It is common knowledge that traits tend to run in families, but Gregor Mendel, a nineteenth-century monk turned geneticist, was the first to notice that certain traits in pea plants were transmitted in a predictable way from parent to offspring. The same is true for humans. Height, weight, skin color, eye color, and hair color are some of the physical traits that characterize an individual; other inherited traits contribute to risk for disease. Phenotype refers to the physical and biochemical traits or attributes of an individual that are outwardly apparent. A person’s phenotype reflects his or her unique genetic makeup, or geno- type, along with environmental factors that may affect gene expression. In some instances, a mutation in a single gene may be sufficient to cause a particular characteristic, including a disease, particularly when the gene encodes a critical protein. In the case of such single-gene (monogenic) diseases, Mendel’s principles of inheritance are useful to predict the risk of passing the disease to offspring. More often, traits (including risk for disease) are determined by multiple genes and the effects of an individual’s environment. Inheritance of these complex or multifactorial conditions is much more difficult to predict.
Human DNA is organized into 46 chromosomes which are diploid, which means they occur as 23 pairs. One member of each chromosome pair is inherited from the mother and the other from the father. Paired (homologous) chromosomes usually look identical under the microscope but differ in DNA sequence. Before cell division, chromosomes look like Xs of varying sizes and shapes. The X-shaped chromosome is really made up of two identical linear chromosome units, called chromatids, which separate during meiosis. The point at the middle of the X at which the two sister chromatids are united is the centromere (Fig. 6.1). Chromosomes are characterized on the basis of their total size, placement of the centromere, and characteristic banding patterns when exposed to certain stains (Fig. 6.2).
Of the 23 pairs of chromosomes, 22 are homologous and are called autosomes. The remaining pair consists of the sex chromosomes and differs in males and females. Females receive an X chromosome from each parent, whereas males receive an X chromosome from their mother and a Y chromosome from their father. A person’s genotype is a result of the union of 23 maternal and 23 paternal chromosomes at conception. Sexual reproduction allows the genomes of the parents to mix, producing offspring that differ genetically from one another and from their parents. This source of genetic variability is advantageous to the species because it allows for adaptation and evolution in a changing environment.
For the two germ cells (i.e., egg and sperm) to combine to form a cell with the normal complement of 46 chromosomes (23 pairs), each germ cell must contribute half of the total. Meiosis refers to a special form of cell division that results in germ cells that are haploid; they
FIG 6.1 Scanning electron micrograph of a chromosome showing the two sister chromatids attached at the centromere. Sister chromatids separate during meiosis with one chromatid being distributed to each daughter cell. (From Pollard T et al: Cell biology, ed 2, Philadelphia, 2007, Saunders, p. 224.)
96 UNIT II Cellular Function
called polygenic. Polygenic traits are heritable, but predicting their occurrence is more difficult than with single-gene traits. Polygenic traits are often affected by environmental factors (such as dietary intake, activity level, stress, and environmental exposures), which affect the ultimate expression of those genes. Such traits are said to be multifactorial; examples include height, weight, and blood pressure. Most common diseases, such as heart disease, asthma, diabetes, and cancer, are mul- tifactorial as well.
DNA Mutation and Repair The term mutation refers to a permanent change in DNA structure. Mutations can occur spontaneously, most often when copying errors occur during DNA replication, or they can be caused by exposure to mutagens such as radiation, chemicals, or viruses. Regardless of the cause, DNA changes rarely result in permanent alterations (mutations). The stability of the genes, and thus the low mutation rate, depend on efficient DNA repair mechanisms.
There are a variety of cellular DNA repair mechanisms. Most require the presence of a normal complementary DNA template to correctly repair the damaged strand of DNA. Single-stranded breaks (loss of bases from only one DNA strand) are therefore readily repaired. Double- stranded breaks, involving both strands of complementary DNA, may result in permanent loss of genetic information at the break point when
are represented by capital and lowercase letters. In the case of conditions with dominant and recessive alleles, a capital letter is used to depict the dominant allele, and a lowercase letter represents the recessive allele. Punnett squares are based on the mendelian principle that gene inheritance is random. Thus, if both parents are heterozygous for a dominant trait (Aa), the offspring will have a 25% probability of being AA, a 50% probability of being Aa, and a 25% probability of being aa. Persons having the AA and Aa genotypes may express the trait in a similar manner. If, however, the A allele is associated with a disease, being homozygous (AA) may be lethal. Achondroplasia and osteogenesis imperfecta are examples of mongenic conditions in which homozygosity for the disease allele is most often lethal. A dominant trait or condition will be absent in the aa genotype. Many genetic diseases are carried on a recessive allele and are manifested only in the homozygous (aa) genotype (e.g., cystic fibrosis, phenylketonuria [PKU]). Persons who are hetero- zygous (Aa) for conditions transmitted in a recessive pattern are said to be carriers because they are able to pass the defective recessive gene to their offspring even though they do not exhibit the trait.
Some alleles, perhaps even most alleles, are not clearly dominant or recessive and result in a blending, or codominant expression, of the trait. Blood type, for example, has three distinct alleles: A, B, and O. The A and B alleles may both be expressed, resulting in the AB blood type. Most traits result from the interaction of several genes and are
50 million DNA nucleotide pairs
1 2
3 4
5 6
7 8
9 10 11 12
13 14 15
16 17 18
19 20 21
22
x
y
FIG 6.2 A standard map of the banding pattern of each of the 23 chromosomes of the human. Somatic cells contain two copies of each chromosome. The centromere region is marked by the line. (From Alberts B et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p. 181.)
CHAPTER 6 Genetic and Developmental Disorders 97
is normally “read” in groups of three bases, with no spaces between codons. If base pairs are added or deleted, all of the downstream codons in that gene may be changed, resulting in a protein with a greatly altered amino acid sequence (Fig. 6.8). Larger mutations may also occur and alter chromosome structure through loss, gain, or translocation of chromosome segments. These processes are discussed later in the chapter.
the broken strands are reunited. Different types of DNA damage are detected and repaired by different enzyme systems. The steps in one type of DNA repair are shown in Fig. 6.7.
Genetic mutations are generally of two types: mutations that do or do not change the “reading frame” of the gene. Recall that a sequence of three DNA bases (a codon) is required to code for each amino acid and that amino acids are connected together in a long chain to make a protein. Some mutations alter a codon so that it encodes a different amino acid; in that case, the resulting protein may not function as expected. In some cases the inclusion of the wrong amino acid in the protein is of no clinical significance; however, sickle cell anemia and beta thalassemia are examples of diseases that occur when a single-base (point) mutation causes substitution of a single amino acid. A frameshift mutation occurs when one or more bases are added or deleted and change the “reading frame” of the DNA sequence. The DNA sequence
Paternal homologous chromosome
Maternal homologous chromosome
Replication Replication
Pairing and crossover of homologous chromosomes
Chromosomes line up on the spindle
Chromosomes line up on the
spindle
Cell division
First meiotic division
Second meiotic division
MEIOSIS MITOSIS
FIG 6.3 Comparison of meiosis and normal mitotic cell division, showing only one homologous chromosome pair. In meiosis, the homologous chromosomes form a pair and exchange sections of DNA in a process called crossing over. Two nuclear divisions are required in meiosis to form the haploid germ cells.
KEY POINTS • Human DNA is organized into 46 chromosomes (23 pairs). Paired chromosomes
look similar under the microscope but differ in DNA sequence. One member of each pair is inherited from the mother and the other from the father.
• Twenty-two pairs of chromosomes are autosomes. The remaining pair, the sex chromosomes, confers maleness (XY) or femaleness (XX).
98 UNIT II Cellular Function
small percentage of those that occur and represent the less extreme aberrations that permit live birth.
Disorders that are genetic in origin traditionally have been divided into three groups: (1) chromosomal aberrations, (2) mendelian single- gene disorders, and (3) polygenic or multifactorial disorders. A fourth group encompasses a number of single-gene defects that do not follow classic mendelian patterns of inheritance. This group includes triplet
GENETIC DISORDERS Genetic disorders may be apparent at birth or may not be clinically evident until much later in life. The majority of genetic disorders are inherited from the affected individual’s parents; however, new (de novo) mutations sometimes occur during gamete formation or arise during fetal development. Genetic disorders encountered clinically are only a
Maternal chromosome
Paternal chromosome
Crossing over
Recombinant chromosomes
FIG 6.4 Crossing over during meiotic prophase I results in a reassortment of genes between homologous chromosomes.
1
2
2p13
p
Centromere
Chromosome
1
2
2
6 5
5
4
4
3
1
3
1
2
2
3 4
1 2 3 4
4 5 6 7
3
2
2
1
1
3
Long arm (q)
loci
Short arm ( )
FIG 6.5 Metaphase chromosome showing location of centromere and long and short arms of the chromatids. Gene loci are described by the chromosome number, location on short (p) or long (q) arm, region, and band.
Heterozygous parent
25% Probability
H e te
ro zy
g o u s
p a re
n t
25% Probability
A
A AA Aa
25% Probability 25% Probability
Aa aaa
a
FIG 6.6 A Punnett square shows the distribution of parental genes to their offspring. This example shows the mating of two heterozygous individuals. A, Dominant gene; a, recessive gene.
• During meiotic cell division, the chromosomes are distributed to daughter cells. Meiosis results in four daughter cells, each having half the normal number of chromosomes (23 chromosomes).
• Genes that code for a particular trait may come in several forms or alleles. Genotype refers to the particular set of alleles an individual receives. Phenotype refers to an individual’s observable attributes. People with different genotypes may have similar phenotypes.
• Some traits involve only one gene locus and are called single-gene traits. The transmission of these traits from parent to offspring follows predictable patterns. The expression of single-gene traits is determined by whether the gene is dominant or recessive. Most traits result from the interaction of several genes. These polygenic traits do not follow predictable patterns of inheritance.
CHAPTER 6 Genetic and Developmental Disorders 99
detection of much smaller structural defects, increasing the detection rate of chromosomal abnormalities.
Aberrant Number of Chromosomes The union of a human of sperm and egg results in a fertilized egg (zygote) with the full complement of 46 chromosomes: 22 pairs of autosomes and 2 sex chromosomes (euploid). Aneuploidy refers to an abnormal number of chromosomes—in humans, either more or less than 46. Aneuploidy is most commonly caused by nondisjunction. Nondisjunction means that paired homologous chromosomes fail to separate normally during one of the meiotic divisions (Fig. 6.9). The resulting germ cells then have an abnormal number of chromosomes; for example, one germ cell may have only 22 chromosomes and the other has 24 chromosomes. When one of these abnormal germ cells combines with a normal germ cell containing 23 chromosomes, the resulting zygote will either be deficient by one chromosome (45) or have an extra chromosome (47). Another cause of aneuploidy is anaphase lag, in which one chromosome lags behind and is therefore left out of
repeat (trinucleotide) mutations, mitochondrial gene mutations, and mutations influenced by genomic imprinting. General principles of transmission and selected examples are included for each of the four groups.
CHROMOSOMAL ABNORMALITIES Chromosomal defects are generally due to an abnormal number of chromosomes or alterations in the structure of one or more chromo- somes. Errors in the separation of chromosomes during meiosis may result in abnormal numbers of chromosomes. Extra or missing chro- mosomes and large structural defects (involving more than about 5 million base pairs) can be detected using traditional genetic testing methods such as karyotyping. These sorts of chromosomal abnormalities occur commonly but are usually lethal. Although they are found in at least half of spontaneous pregnancy losses (miscarriages), they have been found in only 0.5% to 1% of live-born newborn infants. In recent years, the development of molecular testing methods has allowed
Normal DNA
DNA damage
Removal of damaged base (step 1)
DNA ligase repairs nick
(step 3)
DNA polymerase inserts new base using good strand as a template
(step 2)
G
A
G C
C
C G
C
T
T
A
A
A
C G
G
G
A
C
C
C G
C
T
T
A
A
C G
G
G
A
G C
C
C G
C
T
T
A
A
C G
G
G
A
C
C
C G
C
T
T
A
A
C G
G
G
A
C
C
C G
C
T
T
A
A
C G
G
GG
A A A A
FIG 6.7 Steps of DNA repair. In step 1 the damaged section is removed; in steps 2 and 3 the original DNA sequence is restored.
A
B
NORMAL Amino acid sequence: mRNA sequence:
Lysine – Alanine – Valine – Glycine AAG GCU GUU GGC
NORMAL Amino acid sequence: mRNA sequence:
Lysine – Alanine – Valine – Glycine
Amino acid sequence: mRNA sequence: AAG GUU GGC
mRNA sequence: Amino acid sequence:
GC
AAG G CU G UU G GC
POINT MUTATION
Lysine – Threonine – Valine – Glycine ACU
FRAMESHIFT MUTATION DUE TO DELETION
Lysine – Leucine – Leucine – AA G CUG UUG
Shift Deletion Shift Shift
FIG 6.8 Schematic illustration of mutations that alter the messenger RNA sequence and the resulting protein amino acid sequence. A, Point mutation alters one amino acid. B, Frameshift mutation alters all downstream amino acids.
100 UNIT II Cellular Function
exchange of a long chromatid arm for a short one results in the formation of one very large chromosome and one very small chromosome (see Fig. 6.10). This is called a robertsonian translocation and is responsible for a rare hereditary form of Down syndrome, discussed later in the chapter. Isochromosomes occur when the sister chromatids separate incorrectly at the centromere such that the two identical short arms remain together, as do the two long arms.
Inversion refers to the removal and end-for-end reinsertion of a section of chromosome (see Fig. 6.10). Like balanced translocations, inversions involve no net loss or gain of genetic material and are often without consequence to the individual. Difficulties result, however, when homologous chromosomes attempt to pair up during meiosis. The chromosome with an inverted section may not pair up properly, resulting in duplications or loss of genes at the time of crossing over. Thus the offspring of an individual harboring an inversion may be affected.
Loss of chromosomal material is called deletion. Deletions may result when a break occurs in the arm of a single chromosome, creating a fragment of DNA with no centromere. The fragment is then lost at the next cell division. Chromosomal deletions have been associated with some forms of cancer, including retinoblastoma (see Chapter 7). Deletions at both ends of a chromatid may cause the free ends to attach to one another, forming a ring chromosome.
In contrast to a deletion, where genes are lost, duplication results in extra copies of a portion of DNA. The consequences of duplications are generally less severe than those from loss of genetic material.
Examples of Autosomal Chromosome Disorders Trisomy 21 (Down Syndrome) Trisomy 21 is a chromosomal disorder in which individuals have an extra copy of chromosome 21. It is the most common of the chromosomal disorders and a leading cause of mental disability, estimated to occur in about 1 in 700 live births. The incidence varies among populations and over time, however, and reflects trends in maternal age, prenatal diagnosis, and termination of affected pregnancies. The syndrome was
the newly formed cell nucleus. This results in one daughter cell with the normal number of chromosomes and one with a deficiency of one chromosome, a condition called monosomy. Polysomy refers to the condition of having too many chromosomes.
Aneuploidy is thought to occur rather frequently during human gametogenesis and has been associated with advanced maternal age, abnormalities in parental chromosome structure, and abnormalities in crossing over. Most often, aneuploid zygotes are nonviable. In particular, monosomy involving an autosome is not usually compatible with life. Autosomal polysomy involving a single extra copy of a chromosome carrying a small number of genes may result in a viable fetus. Severe disability, however, nearly always results (e.g., trisomy 21—Down syndrome). Disorders involving extra or missing sex chromosomes are more common and less debilitating.
Abnormal Chromosome Structure Alterations in chromosome structure are usually due to breakage and loss or rearrangement of chromosome fragments during meiosis or mitosis. During meiosis, the homologous chromosomes normally pair up and exchange genetic alleles in a process called crossing over. Normal crossing over involves precise gene exchange between homologues, with no net gain or loss of DNA. When the normal process of crossing over goes awry, portions of chromosomes may be lost, attached end-for-end, or attached to the wrong chromosome. Mitosis also presents opportunities for chromosomal breakage and rearrangement. The severity of chro- mosomal rearrangement ranges from insignificant to lethal, depending on the number and importance of the genes involved. The common types of chromosomal rearrangements are translocations, inversions, deletions, and duplications (Fig. 6.10).
Chromosomal translocations result from the exchange of pieces of DNA between nonhomologous chromosomes. If no genetic material is lost, as in a balanced or reciprocal translocation, the individual may have no symptoms or disorder. However, an individual with a balanced translocation is at increased risk of producing abnormal gametes. The
First meiotic division
Second meiotic division
Nondisjunction
Nondisjunction
FIG 6.9 Mechanism of nondisjunction leading to aneuploidy. For simplicity, only one pair of chromosomes is shown.
CHAPTER 6 Genetic and Developmental Disorders 101
Cri du Chat Syndrome Deletion of part of the short arm of chromosome 5 results in a syndrome characterized by severe mental retardation, round face, and congenital heart anomalies. The syndrome was so named because of the charac- teristic cry of the affected infant, which is caused by laryngeal malforma- tion and resembles a cat crying. Some children afflicted with this syndrome survive to adulthood, and they generally thrive better than those with the trisomies.
Examples of Sex Chromosome Disorders Klinefelter Syndrome Aneuploidies involving the sex chromosomes X or Y are much better tolerated than autosomal aneuploidies. Klinefelter syndrome occurs when a male has one or more extra copies of the X chromosome. The incidence of Klinefelter syndrome is about 1 in 600 live-born males, making it the most common sex chromosome abnormality. Most individuals with Klinefelter syndrome have a single extra copy of the X chromosome (an XXY genotype); however, individuals with more than one extra X (XXXY and XXXXY) have also been described. The presence of the Y chromosome determines the sex of these individuals to be male; however, the extra X chromosomes result in abnormal sexual development and feminization. The condition may be diagnosed at puberty, when failure to develop secondary sex characteristics may become apparent. Associated symptoms reflect low testosterone levels. Hypogonadism (small testicles) is universal in Klinefelter syndrome, most often associated with infertility. Tall stature with long arms and legs, a feminine hair distribution, gynecomastia (breast enlargement), and marginally impaired intelligence are common (Fig. 6.12). Testosterone therapy can achieve a dramatic reduction in the feminine characteristics associated with Klinefelter syndrome.
first described by Langdon Down in 1866 and is characterized by intellectual disability, protruding tongue, low-set ears, epicanthal folds, poor muscle tone, and short stature (Fig. 6.11). Children with Down syndrome often are afflicted with congenital heart deformities and an increased susceptibility to respiratory tract infections, leukemia, and early-onset Alzheimer disease. The precise causes of these signs and symptoms are poorly understood, but the increased number of genes (or gene dose) is implicated, rather than errors in DNA sequence.
In 95% of cases, the extra chromosome 21 is thought to be of maternal origin, and the incidence of trisomy 21 is clearly associated with advanced maternal age. Table 6.1 demonstrates a rise in the incidence of Down syndrome from maternal age 20 to 50 years. The reason for increased susceptibility of the ovum to nondisjunction with age remains unknown. A less common form of Down syndrome (occurring in about 4% of cases) is due to a chromosomal translocation of the long arm of chromo- some 21 to another chromosome; this is an example of a robertsonian translocation. This form of Down syndrome is not associated with increased maternal age but is passed from parent to offspring. Testing for translocations in newborns with Down syndrome is recommended to determine recurrence risk for families.
Trisomy 18 (Edwards Syndrome) and Trisomy 13 (Patau Syndrome) Trisomy of chromosome 18 or 13 occurs much less commonly than trisomy 21 and is more severe. Most affected pregnancies are lost before term, and live-born infants usually do not survive more than a few days or weeks. It is not insignificant that the few trisomy conditions compatible with life involve chromosomes containing the smallest numbers of genes. Trisomies involving chromosomes 8, 9, and 22 also have been described but are extremely rare.
TRANSLOCATIONS
ISOCHROMOSOMES
INVERSIONS
DUPLICATIONS
RING CHROMOSOMES
DELETIONS
Fragments
Fragments
Paracentric
Pericentric
Balanced reciprocal
Centric fusion
(Robertsonian) Lost
FIG 6.10 Types of chromosomal rearrangement. (Adapted from Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 8, Philadelphia, 2010, Saunders, p. 160.)
102 UNIT II Cellular Function
stature, webbing of the neck, a wide chest, lymphedema of the hands and feet at birth, and failure to develop secondary sexual characteristics. Many girls with Turner syndrome also have congenital heart defects (Fig. 6.13).
Multiple X Females and Double Y Males A relatively common disorder of the sex chromosomes is the presence of an extra copy of the X chromosome in females (XXX) or of the Y chromosome in males (XYY). Most individuals appear normal and have few physical problems, although IQ may be marginally impaired.
MENDELIAN SINGLE-GENE DISORDERS In contrast to the chromosomal disorders described earlier, mendelian disorders result from mutations in single genes. The affected genes may code for enzymes, structural proteins, regulatory proteins, or regulatory RNA molecules that, due to the gene mutation, do not function as expected. An individual normally has two copies or alleles of each gene (one allele from each parent). A recessive disorder is expressed only when the individual is homozygous for the altered gene; that is, the individual has two recessive copies. Dominant disorders are expressed despite the presence or configuration of the other allele of the pair. Mendelian disorders are generally classified according to the location of the defective gene (autosomal or sex chromosome) and the mode of transmission (dominant or recessive). The great majority of mendelian disorders are familial (attributable to mutated genes inherited from the parents), but 15% to 20% represent new mutations. The occurrence of new mutations ranges widely. For example, new mutations for Hun- tington disease are rare, whereas more than 80% of individuals with achondroplasia have new mutations. A genetic pedigree may be used to trace the transmission of the disease through a family. The pedigree (Fig. 6.14) graphically displays family relationships and family members
Turner Syndrome Also known as monosomy X, Turner syndrome is associated with the presence of only one normal X chromosome and no Y chromosome. The absence of the Y chromosome results in a female phenotype; however, the ovaries fail to develop or fail prematurely. In some cases of Turner syndrome, the second X chromosome is not entirely missing but is structurally abnormal. In the majority of cases, the missing or damaged X chromosome is of paternal origin. Most fetuses with monosomy X are lost during pregnancy, and the incidence is about 1 in 2500 live female births. Principal characteristics of Turner syndrome include short
Intestinal stenosis
Predisposition to leukemia
Gap between first and
second toes
Congenital heart defects
Umbilical hernia
Mental retardation
Epicanthal folds and flat facial profile
Low-set ears
Single palmar crease
Protruding tongue
Abundant neck skin
Hypotonia
FIG 6.11 Typical clinical manifestations of trisomy 21 (Down syndrome).
TABLE 6.1 Frequency of Trisomy 21 (Down Syndrome) in Relation to Maternal Age
Age of Mother at Birth (Year)
Frequency of Trisomy 21 at Birth
20 1/1470 25 1/1333 30 1/935 35 1/353 37 1/200 39 1/112 41 1/68 43 1/46 45 1/36 50 1/26
Data from Morris JK et al: Comparison of models of maternal age-specific risk for Down syndrome live births, Prenat Diagn 23:252–258, 2003.
CHAPTER 6 Genetic and Developmental Disorders 103
disorders involve key structural proteins or regulatory proteins, such as membrane receptors. Marfan syndrome and Huntington disease are commonly cited examples of autosomal-dominant disorders and are briefly described here.
Marfan Syndrome Marfan syndrome is a disorder of the connective tissues of the body. Individuals with Marfan syndrome are typically tall and slender with long, thin arms and legs (Fig. 6.16). Because of the long, thin fingers, this syndrome has also been called arachnodactyly (“spider fingers”). It is commonly suggested that President Abraham Lincoln may have had this disorder. Although skeletal and joint deformities can be problematic, cardiovascular lesions are the most life threatening. The medial layer of blood vessels, particularly the aorta, tends to be weak and susceptible to dilation and rupture. Dysfunction of the heart valves may occur from poor connective tissue support. Marfan syndrome has been traced to hundreds of different mutations in the fibrillin 1 (FBN1) gene on chromosome 15. Fibrillin 1 is a glycoprotein that provides structural support in microfibil-rich connective tissues. Marfan syndrome
affected by diseases or conditions and is a useful tool in determining the pattern of inheritance as recessive, dominant, or sex-linked. Mendelian genetics is based on the principle that single genes are randomly and independently transmitted to offspring such that there is a 50 : 50 chance of receiving one or the other of a parent’s alleles for a particular gene. It is important to note that there are many exceptions to these rules, but they generally are useful in predicting transmission patterns for a number of single-gene disorders. Thousands of single-gene traits and disorders have been identified. A comprehensive database of the chromosomal location and sequence of these single-gene traits and disorders, called Online Mendelian Inheritance in Man, can be accessed at http://www.ncbi.nlm.nih.gov/omim.
Autosomal-Dominant Disorders Autosomal-dominant disorders occur when a mutation in a gene located on one of the autosomes is sufficient to cause the disorder despite the presence of a normal allele for the same gene. Autosomal-dominant disorders follow predictable patterns of inheritance (Fig. 6.15), which may be summarized as follows: • Males and females are equally affected. • Affected individuals usually have an affected parent. • Unaffected individuals do not transmit the disease. • Offspring of an affected individual (with an unaffected mate) have
a 1 in 2 chance of inheriting the disease. • The rare mating of two individuals, each carrying one copy of the
defective gene (heterozygous), results in a 3 in 4 chance of producing an affected offspring. For some disorders, having two copies of the defective gene is lethal. The list of known autosomal-dominant disorders is long. Many are
described in later chapters as they relate to system pathophysiology. A partial list is presented in Table 6.2. In general, autosomal-dominant
FIG 6.12 Typical clinical manifestations of Klinefelter syndrome. (From Moore KL, Persuad TVN: The developing human: clinically oriented embryology, ed 8, Philadelphia, 2007, Saunders, p. 466.)
FIG 6.13 Typical clinical manifestations of Turner syndrome. (From Connor JM, Ferguson-Smith MA: Essential medical genetics, ed 5, London, 1997, Blackwell Scientific, p. 123.)
104 UNIT II Cellular Function
acids that are coded by the CAG triplet repeat. Extra CAG repeats cause extra glutamines in the huntingtin protein, and by a mechanism that is poorly understood, the abnormally long polyglutamine repeat in the protein causes the degeneration of nerve cells in specific brain regions. Clinical manifestations and pathophysiology of Huntington disease are discussed in Chapter 45. Other disorders are also caused by expanded triple repeats; these disorders usually affect the neurologic system and are collectively called trinucleotide repeat disorders.
Autosomal-Recessive Disorders Like autosomal-dominant diseases, autosomal-recessive disorders occur due to a mutation of a gene located on one of the autosomes. Autosomal- recessive disorders, however, occur only when both alleles of a particular gene are mutated. Predictable patterns of inheritance (Fig. 6.17) are summarized as follows: • Males and females are equally affected. • In most cases, the disease is not apparent in the parents or relatives
of the affected individual, but both parents are carriers of the mutant recessive gene.
• Unaffected individuals may transmit the disease to offspring.
occurs when mutations in the fibrillin 1 gene cause abnormal fibrillin or low levels of fibrillin to be produced, leading to weakened connective tissues.
Huntington Disease Huntington disease is an autosomal-dominant disease that primarily affects neurologic function. The symptoms of mental deterioration and involuntary movements of the arms and legs do not appear until approximately age 40 years. The disease was formerly called Huntington chorea (from the Greek khoreia, meaning “dance”) because of the uncontrolled movements of the limbs. The delayed onset of symptoms means that the disease may be transmitted to offspring before the parent is aware that he or she harbors the defective gene. The prevalence rate is about 1 in 20,000 persons.
The gene abnormality in Huntington disease has been localized to chromosome 4, where an abnormally large number of triplet repeats (CAG) has been noted. Triplet repeats of more than 40 are reliably associated with development of the disease, and the greater the number of triplet repeats, the earlier the onset of symptoms. The Huntington disease protein (huntingtin) has a long segment of glutamine amino
A
B
Normal male
Affected male
Stillbirth
Marriage
Divorced
Infertility
No offspring by choice
Marriage with three children
Arrow indicates the proband
Examined personally *
Prenatal diagnosis with termination of an affected fetus
Consanguineous marriage
Normal female
Affected female
Three unaffected females
Deceased
Sex unknown
PregnantP
Identical twins
Non-identical twins
Twins of uncertain zygosity
Autosomal recessive heterozygote
Carrier female
Termination of pregnancy
Termination of affected pregnancy
3
?
FIG 6.14 A, Common symbols for pedigree analysis. B, Typical family pedigree chart.
CHAPTER 6 Genetic and Developmental Disorders 105
of two people who share the same recessive mutation parenting a child is relatively low, unless those two people are genetically related. Related individuals are much more likely to carry the same recessive genes. Because recessive diseases are only expressed when both alleles for a particular gene are mutated (homozygous), they are often associated with consanguinity—the mating of related individuals. The closer the biological relationship, the greater the proportion of shared genes and the greater the risk of producing affected offspring.
Recessive disorders often involve abnormal enzymatic function when the gene for a particular enzyme is absent or present in a mutated, nonfunctional form. Most often, enzyme deficiencies are not apparent in heterozygotes who carry one normal gene because the normal gene produces enough of the necessary enzyme. In the homozygous state, however, neither gene encoding the enzyme is functional, resulting in an enzyme deficiency. Table 6.3 includes a partial list of the large number of autosomal-recessive disorders that have been identified. Many of these diseases reflect inability to metabolize nutrients (inborn errors of metabolism) or to synthesize cellular components because of enzyme deficiencies. Albinism, PKU, and cystic fibrosis are described here as representative examples. Other disorders are described in the discussions of system pathophysiology in later chapters.
Albinism Albinism refers to a lack of pigmentation of the hair, skin, and/or eyes. There are several types of albinism; all types involve disruption of melanin synthesis. Albinism is currently classified according to the
• The mating of two carriers (heterozygous) results in a 1 in 4 chance of producing an affected offspring and a 2 in 4 chance of producing an offspring who carries the disease. It is estimated that nearly everyone carries several mutated recessive
genes, which in the homozygous state would cause disease. The odds
PUNNETT SQUARE
PEDIGREE CHART
A ff e ct
e d p
a re
n t
Affected parent
75% Probability of producing affected offspring
aaa
a
N o rm
a l p
a re
n t
Affected parent
a aa
50% Probability of producing affected offspring
aaa
a
One affected parent (Aa) One normal parent (aa)
Two affected parents (both Aa)
AA Aa
Aa
A a
Aa
A
A
A
A
B
FIG 6.15 Typical pattern of inheritance of an autosomal-dominant trait (e.g., Marfan syndrome). A, Pedigree chart. B, Punnett square.
TABLE 6.2 Autosomal-Dominant Disorders
System Disorder
Nervous Huntington disease Neurofibromatosis Myotonic dystrophy Tuberous sclerosis
Urinary Polycystic kidney disease Gastrointestinal Familial polyposis coli Hematopoietic Hereditary spherocytosis
Von Willebrand disease Skeletal Marfan syndrome
Ehlers–Danlos syndrome (some variants) Osteogenesis imperfect Achondroplasia
Metabolic Familial hypercholesterolemia Acute intermittent porphyria
From Kumar V et al: Robbins & Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p. 141.
106 UNIT II Cellular Function
Phenylketonuria PKU results from an inability to metabolize the amino acid phenylalanine because of lack of the enzyme phenylalanine hydroxylase. It is one of several enzyme deficiencies that are often referred to as inborn errors of metabolism. The symptoms of the disorder are caused by accumu- lation of dietary phenylalanine in the body, which primarily affects the nervous system. Children with PKU tend to be overly irritable and tremulous and have slowly developing mental retardation. Excess phenylalanine is excreted in the urine in the form of phenylketones, hence the name phenylketonuria. Infants typically have a musty odor because of excess phenylalanine by-products in the sweat and urine. The enzyme deficiency can be detected soon after birth and managed with a low-phenylalanine diet. Because treatment must be instituted very early to prevent mental retardation, routine screening for PKU is performed at birth.
Cystic Fibrosis Cystic fibrosis is one of the most common single-gene disorders. About 1 in 20 Caucasian Americans harbor the defective gene, and the incidence of cystic fibrosis is approximately 1 in 2500 live births. The clinical abnormalities associated with cystic fibrosis have been traced to a defect in a membrane transporter for chloride ions in epithelial cells. The alteration in chloride transport is associated with production of abnormally thick secretions in glandular tissues. The lung bronchioles and pancreatic ducts are primarily affected, often resulting in progressive destruction of these organs (see Chapter 22).
The cystic fibrosis gene was isolated in 1989 and mapped to chromo- some 7. Designated CFTR (for cystic fibrosis transmembrane conductance regulator), the gene encodes a protein chloride channel of the same name. More than 1900 different mutations of this gene have been identified, all of which cause a defect in chloride transport across the cell membrane; however, the severity of chloride channel dysfunction varies widely with different mutations. The most common mutation, accounting for about 70% of cystic fibrosis cases, involves a deletion of three nucleotides that normally code for a phenylalanine at position 508 in the CFTR protein; this mutation is designated ΔF508. The absence of this single amino acid causes the protein to fold abnormally, preventing its release from the endoplasmic reticulum, where it is eventually degraded. A schematic of the normal CFTR protein is shown in Fig. 6.18. The protein belongs to the family of ABC transporters that bind and hydrolyze adenosine triphosphate (ATP) (see Chapter 3).
The discovery and characterization of the cystic fibrosis gene and CFTR protein have made it possible to envision effective gene therapy for this disorder. Clinical trials have been published; however, overcoming host immune responses has represented a persistent barrier. Some mutation-specific drugs have been effective; for example, a novel drug, ivacaftor, was approved in 2012 for the treatment of cystic fibrosis in patients who carry a fairly rare mutation, G551D, on at least one CFTR allele. Reliable genetic screening for mutations known to cause cystic fibrosis is readily available and included as part of newborn screening in many states, making early management possible.
Sex-Linked (X-Linked) Disorders Sex-linked disorders occur because of a mutation of the sex chromosomes. Disorders linked to the Y chromosome are extremely rare, and for that reason the terms sex-linked and X-linked are often used interchangeably. Nearly all X-linked disorders are recessive, so females express the X-linked disease only in the rare instance in which both X chromosomes carry the defective gene. Males, however, do not have the safety margin of two X chromosomes and express the disease if their one and only X chromosome is abnormal. X-linked disorders follow predictable patterns
affected gene. For example, oculocutaneous albinism type 1 is associated with profound hypopigmentation of the skin and hair and reduced pigmentation of the iris and retina. Affected individuals are at risk for sunburn and skin cancer and generally exhibit impaired vision, nystagmus (involuntary eye movements), and photosensitivity.
FIG 6.16 Clinical manifestations of Marfan syndrome. Skeletal deformities such as pectus excavatum and abnormal curvature of the thoracic spine are common findings. (From Turnpenny P: Emory’s elements of medical genetics, ed 14, Philadelphia, 2012, Churchill Livingstone, p. 301.)
TABLE 6.3 Autosomal-Recessive Disorders
System Disorder
Metabolic Cystic fibrosis Phenylketonuria Galactosemia Homocystinuria Lysosomal storage disease α1-Antitrypsin deficiency Wilson disease Hemochromatosis Glycogen storage diseases
Hematopoietic Sickle cell anemia Thalassemias
Endocrine Congenital adrenal hyperplasia Skeletal Ehlers–Danlos syndrome (some variants)
Alkaptonuria Nervous Neurogenic muscular atrophies
Friedreich ataxia Spinal muscular atrophy
From Kumar V et al: Robbins & Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p. 141.
CHAPTER 6 Genetic and Developmental Disorders 107
NONMENDELIAN SINGLE-GENE DISORDERS Transmission of certain single-gene disorders may deviate from the classic mendelian principles of random and independent assortment. Three such categories have been described: (1) disorders caused by expanded triplet repeat mutations, such as fragile X syndrome; (2) disorders attributable to mitochondrial DNA mutations; and (3) disorders associated with genomic imprinting.
A
B PUNNETT SQUARE
PEDIGREE CHART
Heterozygous carrier A
A AA
25% Probability of producing affected offspring
H e te
ro zy
g o u s
ca rr
ie r
H e te
ro zy
g o u s
ca rr
ie r
Affected parent
A
50% Probability of producing affected offspring
One heterozygous carrier parent (Aa) One affected parent (aa)
Two heterozygous carrier parents (both Aa)
Aa
Aa
Aa Aa
aa a
a a
aa aa a
a
FIG 6.17 Typical pattern of inheritance of an autosomal-recessive trait (e.g., cystic fibrosis, sickle cell anemia). A, Pedigree chart. B, Punnett square.
of inheritance (Fig. 6.19), which are dependent on the sex of the offspring, and may be summarized as follows: • Affected individuals are almost always male. • Affected fathers transmit the defective gene to none of their sons
but to all of their daughters. • Unaffected males do not carry the defective gene. • A carrier female has a 1 in 2 chance of producing an affected son
and a 1 in 2 chance of producing a carrier daughter. • Females are affected only in the rare homozygous state that may
occur from the mating of an affected or carrier mother and an affected father. Several X-linked recessive disorders have been identified, as presented
in Table 6.4. A well-known example of an X-linked disease is hemophilia A.
Hemophilia A Hemophilia A is a bleeding disorder associated with a deficiency of factor VIII, a protein necessary for blood clotting. Individuals afflicted with hemophilia A bleed easily and profusely from seemingly minor injuries (see Chapter 14). The transmission of hemophilia A in the European royal families constitutes one of the best-known pedigrees available (Fig. 6.20). Queen Victoria of England was the first known carrier of the disease, and a number of her male descendants were affected.
TABLE 6.4 X-Linked Recessive Disorders
System Disorder
Musculoskeletal Duchenne muscular dystrophy Blood Hemophilias A and B
Chronic granulomatous disease Glucose-6-phosphate dehydrogenase deficiency
Immune Agammaglobulinemia Wiskott–Aldrich syndrome
Metabolic Diabetes insipidus Lesch–Nyhan syndrome
Nervous Fragile X syndrome
From Kumar V et al: Robbins & Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p. 142.
108 UNIT II Cellular Function
NORMAL
CFTR ENaC
Cl– Cl–
Cl– Cl–
Cl–
Cl– Na+Na+
Na+
Na+ Na+
Cl– Cl–
Na+
Na+
CYSTIC FIBROSIS
NORMAL CYSTIC FIBROSIS
Cl–
Cl– Cl–
Na+
Na+ Na+
LUMEN OF SWEAT DUCT
AIRWAY
H2OH2O
Normal mucus
Dehydrated mucus
FIG 6.18 Schematic illustration of the cystic fibrosis transmembrane conductance regulator (CFTR) located in an epithelial cell. CFTR is a transmembrane protein that transports chloride from the cytoplasm into the lumen of the bronchiole. Mutations in the CFTR transporter gene are believed to cause the thick secretions typical of cystic fibrosis.
x
x
x
x
x x
Father x
50% Chance of carrier daughter
50% Chance of affected son
x
y
M o th
e r
M o th
e r
Father
AFFECTED FATHER CARRIER MOTHER
x
All daughters are carriers
No sons are affected
x
y
x
x x x
x
x y
y
x y
x y
FIG 6.19 Typical inheritance pattern for X-linked disorders. The risk of disease varies according to the gender of the offspring.
CHAPTER 6 Genetic and Developmental Disorders 109
less so during spermatogenesis. Anticipation, that is, expansion of the premutation as it is passed through the female lineage, results in disease manifestation in offspring at an earlier age or with increasing severity with each succeeding generation. Because the mutation is on the X chromosome, males with fragile X syndrome tend to be more severely affected, apparently because the presence of a second X chromosome in females moderates the clinical symptoms. Other trinucleotide repeat disorders, including Huntington disease and myoclonic dystrophy, also display anticipation.
Mitochondrial Gene Mutations Nearly all genes are located in the cell nucleus; however, mitochondria in the cell cytoplasm have their own DNA (mitochondrial DNA or mtDNA), which includes several genes critical to energy production. At fertilization, mitochondria in the sperm (which are located near the tail) are lost, so mitochondrial genes are of maternal origin. Mothers transmit mitochondrial DNA to both sons and daughters, but only daughters transmit the mitochondrial genes to their offspring. Mito- chondrial DNA is much more prone to mutation than nuclear DNA. Mitochondrial DNA codes for enzymes involved in oxidative phos- phorylation and electron transport chain reactions, and mutations tend to cause dysfunction in tissues with high utilization of ATP such as nerve, muscle, kidney, and liver cells.
Anticipation Some genetic disorders deviate from typical mendelian inheritance patterns by becoming more severe and/or having earlier onset as the disorder is transmitted to future generations. This phenomenon, called anticipation, is most commonly seen in trinucleotide repeat disorders. Fragile X syndrome is a prototypical example of a trinucleotide repeat disorder that displays anticipation. Fragile X syndrome is the most common cause of familial mental retardation, exhibiting a prevalence rate of about 1 in 4000 males (1 in 8000 females). Affected individuals have an elongated (or expanded) repeat sequence composed of repeating CGG triplets in the FMR1 gene on chromosome X. The protein normally produced by FMR1 is crucial to the development and function of cerebral neurons. Normal individuals have an average of 29 CGG repeats at this gene locus. Persons with fragile X syndrome have significantly more: 200 to 2000 triplet repeats constitute a full mutation and produce the syndrome phenotype. The long repeat sequence may be visible on cytogenetic studies (karyotypes) as a characteristic narrowed segment on the long arm of the X chromosome. Persons who have an intermediate number of repeats (60 to 200) are said to have a premutation. Although they themselves do not have features of fragile X syndrome, they are at significant risk for producing affected offspring. The premutation is unstable and predisposed to expansion during oogenesis, but much
British royal house
Spanish royal house
Prussian royal house
German royal house
Russian royal house
George III
Frederick III
Alice Duke of Hesse
Alfred Helena Arthur Leopold Beatrice Prince Henry
No hemophilia No hemophilia
Duke of Windsor
Lady Diana
Prince Charles
William Henry
Anne Andrew
Edward
Queen Elizabeth II
Prince Philip
Margaret
King George VI
Earl of Mountbatten
Prince Sigismond
Henry Anastasia Alexis Viscount Trematon
Alfonso Jamie
No evidence of hemophilia
King Juan Carlos
No evidence of hemophilia
Juan Gonzalo
Alfonso King of Spain
Queen Eugenie
LeopoldMaurice Princess
Alice
Earl of Athlone
Czarina Alexandra
Czar Nicholas II
Irene
?
??
?
? ?? Waldemar
Edward Duke of Kent
Louis II Grand Duke of Hesse
Queen Victoria
King Edward VII
King George V
Victoria
Prince Albert
FIG 6.20 Pedigree chart for the transmission of the X-linked disease hemophilia A in the royal families of Europe.
110 UNIT II Cellular Function
syndrome arises according to whether the deletion is on the maternal or paternal chromosome (Fig. 6.21). These findings imply that the cell is not blind to the parental origin of chromosomes and that homologous chromosomes may be marked and function differently within the cell.
POLYGENIC AND MULTIFACTORIAL DISORDERS Most human traits develop in response to more than one gene; such traits are called polygenic. Environmental influence also has a role in gene expression; traits and disorders influenced by multiple genes as well as environmental factors are called multifactorial. Examples of multifactorial traits are height, weight, and intelligence. Most common health conditions and disorders, including obesity, hypertension, diabetes and depression, are also multifactorial. Multifactorial traits do not follow clear-cut modes of inheritance but do tend to “run in families.” Char- acteristics determined by multifactorial inheritance tend to have a range of expression in the population and demonstrate a “bell curve” distribu- tion. They are thought to be produced by the interaction of several genes, each contributing a small additive effect and modulated by environmental influences, such as diet, activity, stress, and environmental exposures. Most multifactorial disorders present a range of severity, although a few disorders are either present or absent. In the latter case, it may be that a certain threshold number of defective genes must be inherited before the disease is expressed.
It is extremely difficult to predict the risk of occurrence of multifacto- rial disorders based on family history. Based on observing inheritance in the population, however, empirical estimates have been derived. Recurrence risk is specific for each disorder and varies among different populations, but in general the risk is much less than that found in mendelian disorders. As an example, neural tube defects, which are
Genomic Imprinting The concept of genomic imprinting challenges the long-held belief that the parental origin of a gene does not make any difference to the cells that inherit the gene. Genomic imprinting is a process whereby maternal and paternal genes are marked differentially by chemical tags that alter gene expression, such as silencing the gene. This chemical marking of genes is an example of an epigenetic effect, which is an alteration to DNA that does not involve a change in the sequence of a gene. Epigenetic effects, which are thought to play a critical role in gene expression, are both heritable and reversible.
Genomic imprinting can be illustrated by considering two very different syndromes, which at first glance appeared to be a result of the same chromosomal defect. Prader–Willi syndrome and Angelman syndrome both result from a fairly large deletion at the same location on chromosome 15 that includes several genes. Prader–Willi syndrome is characterized by mental retardation, short stature, obesity, poor muscle tone, and hypogonadism. Patients with Angelman syndrome are also mentally retarded, but they have ataxia and seizures and tend to laugh inappropriately. The fact that two different syndromes result from the same mutation was puzzling until it was discovered that Prader–Willi is associated with a deletion on the paternally derived chromosome 15, whereas the Angelman syndrome is associated the same deletion on the maternally derived chromosome 15. Both the “Angelman gene” and the “Prader–Willi gene” are normally present in the region of the deletion. The “Angelman gene” is normally active on a maternal chromosome and silent (due to imprinting) on the paternal chromosome, whereas the “Prader–Willi gene” is normally active on only the paternal chromosome and silent on the maternal chromosome. Thus normal cells have only one functional copy of each gene. The disorders arise when there is a deletion of chromosome 15 involving those genes, and a different
Imprinted Prader-Willi gene Active Angelman gene
Imprinted Prader-Willi gene Active Angelman gene
Active Prader-Willi gene Imprinted Angelman gene
Active Prader-Willi gene Imprinted Angelman gene
MATERNAL (M)
PATERNAL (P)
(M) (P) (M) (P)
Deletion in maternal
chromosome
Deletion in paternal
chromosome
Site of deletion
ANGELMAN SYNDROME PRADER-WILLI SYNDROME
Site of deletion
FIG 6.21 Angelman and Prader–Willi syndromes are examples of genetic imprinting, where the location of a mutation on the maternal or paternal homologous chromosome produces a different outcome.
CHAPTER 6 Genetic and Developmental Disorders 111
multifactorial, occur in 2% to 3% of siblings of affected individuals. Based on such a recurrence risk, parents of one affected child have a 2% to 3% chance of bearing a second affected child.
In contrast to single-gene and chromosomal abnormalities, which are rare, multifactorial disorders are very common. High blood pressure, atherosclerosis, cancer, diabetes mellitus, cleft lip, and several forms of congenital heart defects are transmitted by multifactorial inheritance. This list is destined to grow as knowledge of the role of genetic mecha- nisms in cellular function and disease expands.
TABLE 6.5 Causes of Congenital Malformations in Humans
Cause Malformed Live Births (%)
Genetic Chromosomal aberrations 10–15 Mendelian inheritance 2–10
Environmental Maternal/placental infections (e.g., rubella,
toxoplasmosis, syphilis, cytomegalovirus, human immunodeficiency virus)
2–3
Maternal disease states (e.g., diabetes, phenylketonuria, endocrinopathies)
6–8
Drugs and chemicals (e.g., alcohol, androgens, folic acid antagonists, phenytoin, thalidomide, warfarin, 13-cis-retinoic acid)
≈1
Irradiation ≈1
Multifactorial 20–25
Unknown 40–60
Adapted from Stevenson RE et al, editors: Human malformations and related anomalies, New York, 1993, Oxford University Press, p. 115; Kumar V et al: Robbins & Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p. 454.
KEY POINTS • Genetic disorders are of three general types: chromosomal aberrations,
single-gene disorders, and polygenic/multifactorial disorders. • Chromosome disorders result from an abnormality in number or structure.
The presence of only one chromosome of a homologous pair is termed monosomy (e.g., Turner syndrome), and the presence of an excessive number of chromosomes is called polysomy (e.g., Down syndrome). Abnormal rearrangement of portions of the chromosomes (translocation, inversion, deletion, duplication) can result in loss or unusual expression of genes.
• Single-gene disorders result from mutations that alter the nucleotide sequence of one particular gene. Mendelian disorders are transmitted predictably in autosomal-dominant (e.g., Huntington disease), autosomal-recessive (e.g., cystic fibrosis), and sex-linked (e.g., hemophilia) patterns.
• Some single-gene disorders have unusual transmission patterns, which violate Mendel’s laws. These include expanded triplet repeat mutations, mitochondrial DNA mutations, and genomic imprinting disorders.
• Multifactorial disorders are very common and result from the interaction of multiple genes and environmental influences. Disorders such as high blood pressure, cancer, and diabetes are multifactorial.
ENVIRONMENTALLY INDUCED CONGENITAL DISORDERS Adverse influences during intrauterine life are a significant cause of errors in fetal development that result in congenital malformations. The study of abnormal physical development (morphogenesis) is called dysmorphology. Most malformations are associated with genetic causes; however, exposure to certain environmental agents, such as chemicals, radiation, maternal disease states, and viruses, may adversely affect the developing fetus (Table 6.5). Agents that cause congenital malformation are called teratogens. Many substances, including some medications, are thought to have teratogenic potential, based on experiments in animals, but few are proved in humans. Exposure to a known teratogen may, but need not, result in a congenital malformation. Susceptibility to a teratogen depends on the amount of exposure, the developmental stage of the fetus when exposed, the prior condition of the mother, and the genetic predisposition of the fetus.
Periods of Fetal Vulnerability The timing of the exposure to a teratogen greatly influences fetal susceptibility and the resulting type of malformation. The intrauterine development of humans can be divided into two stages: (1) the embryonic period, which extends from conception to 9 weeks of development, and (2) the fetal period, which continues until birth. Before the third week of gestation, exposure to a teratogen generally either damages so few cells that the embryo develops normally, or damages so many cells that the embryo cannot survive and spontaneous abortion occurs. Between the third and ninth weeks of gestation the embryo is very vulnerable to teratogenesis, with the fourth and fifth weeks being the
time of peak susceptibility. Organ development (organogenesis) occurs during this period, and this complex process is very sensitive to injury, regardless of the cause. Each organ has a critical period during which it is most vulnerable to malformation (Fig. 6.22). Unfortunately, an embryo may be exposed to teratogens during the vulnerable period because the mother does not yet realize she is pregnant. During the fetal period, from 3 to 9 months, organs undergo further growth and maturation, and susceptibility to errors of development is significantly less. Fetal insults occurring after the third month are more likely to result in growth retardation or injury to normally formed organs.
Teratogenic Agents The teratogenic potential of many agents is unknown. Several chemicals, some infections, and large doses of radiation are definitely associated with a higher risk of congenital disorders. In general, teratogens cause errors in morphogenesis by interfering with cell proliferation, migration, or differentiation. The specific mechanisms of action of most teratogens are unknown.
Chemicals and Drugs The list of proven teratogenic chemicals and drugs includes thalidomide, alcohol, anticonvulsants, warfarin, folate antagonists, androgenic hormones, angiotensin-converting enzyme inhibitors, and organic mercury. Almost no drugs or chemicals are considered totally safe, and the current trend is to discourage pregnant women from using any drugs or chemicals. A classification system for determining relative risk of medications in pregnancy has been developed (Table 6.6). Two agents, thalidomide and alcohol, illustrate the teratogenic potential of chemicals.
In the 1960s, an increase in the incidence of congenital limb deformi- ties was traced to maternal use of thalidomide, a tranquilizer, during
112 UNIT II Cellular Function
the time of infection is critically important. Perhaps the best known viral teratogen is rubella. The risk period for rubella infection begins just before conception and extends to 20 weeks’ gestation, after which the virus rarely crosses the placenta. Rubella-induced defects vary but typically include cataracts, deafness, and heart defects. Several other organisms cause a similar constellation of congenital defects; therefore the acronym TORCH was developed to alert clinicians to the potential teratogenicity of these infections. TORCH stands for toxoplasmosis, others, rubella, cytomegalovirus, herpes. The major features of the TORCH complex are shown in Fig. 6.23. The category of “others” includes several less frequently seen causes: hepatitis B, coxsackievirus B, mumps, poliovirus, zika virus, and others. All microorganisms of the TORCH complex are able to cross the placenta and infect the fetus.
Toxoplasmosis is a protozoal infection that can be contracted from ingestion of raw or undercooked meat and from contact with cat feces. Cytomegalovirus and herpes simplex virus are generally transmitted to the fetus by chronic carrier mothers. Cytomegalovirus and herpes simplex virus often colonize in the genital area of the mother. Infants who escape infection in utero may still acquire the virus as they pass through the birth canal (see Chapter 34).
Radiation In addition to being mutagenic, radiation is teratogenic. The teratogenic potential of radiation became apparent from the increased incidence of congenital malformations in children born to women who underwent irradiation of the cervix for cancer and in the children of atomic bomb victims in World War II. It is not known if lower levels of radiation, such as those used in diagnostic x-rays, are teratogenic. It is generally
early pregnancy. Exposure during the vulnerable period (20 to 35 days after conception) was associated with a very high risk of fetal malforma- tion. Typically, the arms were short and flipperlike, although deformities ranged from mild abnormalities of the digits to complete absence of the limbs. Damage to other structures, particularly the ears and heart, also occurred. Thalidomide is one of the most potent teratogens known.
Prenatal exposure to alcohol is known to be associated with a wide spectrum of congenital conditions referred to as fetal alcohol spectrum disorder (FASD). Fetal alcohol syndrome (FAS) represents the severe end of the spectrum. It is estimated that between 0.2 and 1.5 of every 1000 newborns suffer from FAS. The prevalence of FASD is estimated to be much higher, reaching 1% and much higher in populations with high alcohol use among women of childbearing age. Affected infants display characteristic facial abnormalities and suffer from growth retardation, developmental delay, and learning and behavioral problems, with alterations to the developing brain resulting in the most devastating deficits. Multiple mechanisms for alcohol teratogenesis have been suggested. Data are insufficient to determine what, if any, level of alcohol intake during pregnancy is safe. It is clear that factors other than the absolute amount of alcohol intake during pregnancy are important in determining risk of FAS. Complete abstinence from alcohol during pregnancy is recommended.
Infectious Agents A number of perinatal infections have been implicated in the development of congenital malformations. Certain viral infections appear to carry the greatest threat, although protozoa and bacteria have also been implicated. As with other teratogens, the gestational age of the fetus at
Major morphologic abnormalities Prenatal death
Central nervous system
Heart
Arms
Eyes
Legs
Teeth
Palate
Ears
External genitalia
1 2 3 4 5 6 7 8 9
C o n ce
p tio
n
Physiologic defects and minor morphologic defects
Embryonic period (weeks)
FIG 6.22 Vulnerable periods of fetal organ development.
CHAPTER 6 Genetic and Developmental Disorders 113
DIAGNOSIS, COUNSELING, AND GENE THERAPY In recent years, the ability to diagnose and manage genetic and devel- opmental disorders has improved dramatically. Although pedigree analysis continues to be an important method for identifying at-risk individuals, for a number of disorders it is now possible to determine whether parents carry defective genes or if a particular fetus is afflicted. Currently, the ability to detect genetic mutations far exceeds the ability to offer definitive genetic treatment, triggering many ethical concerns. Unfortunately, many individuals at risk for transmitting recessive genetic diseases are not identified until the birth of an affected child. Genetic counseling and prenatal assessment then become extremely important in assisting the family in regard to future pregnancies.
Prenatal Diagnosis and Counseling A number of conditions are associated with a higher risk of congenital anomalies and are indications for instituting counseling and prenatal diagnostic examination. These conditions include (1) a maternal age of 35 years or greater; (2) a history of previously bearing a child with a chromosomal disorder (such as trisomy 21); (3) a known family history of X-linked disorders; (4) a family history of inborn errors of metabolism; (5) the occurrence of neural tube anomalies in a previous pregnancy; and (6) awareness that the mother is a known carrier of a recessive genetic disorder. As diagnostic methods become more cost effective, general screening for other risk factors may be undertaken. Screening for genetic disorders may utilize ultrasound or maternal blood, but prenatal diagnostic testing usually requires invasive procedures such as amniocentesis, chorionic villus biopsy, or (rarely) umbilical cord blood sampling. Postnatal genetic analysis is usually done on peripheral blood samples of lymphocytes.
recommended that pregnant women avoid diagnostic x-rays or be provided appropriate lead shielding if x-rays are required.
Other Disorders of Infancy An infant may be afflicted with a variety of problems at birth that do not fall into the category of genetic or developmental malformations. These problems generally arise later in uterine life and often involve mechanical factors or problems with the health of the mother and placenta. For example, babies with low birth weight or immaturity at birth may have difficulty breathing and taking in adequate nutrition. Interruption of the placental oxygen supply because of maternal hemor- rhage, sedation, or blood incompatibility may result in fetal brain injury. A difficult labor and delivery may result in a variety of injuries during the birth process. The details of these disorders of infancy and childhood may be found in specialized texts.
TABLE 6.6 Pregnancy Categories for Medication Administration
Category Interpretation
A Adequate and well-controlled studies in pregnant women have not shown an increased risk of fetal abnormalities to the fetus in any trimester of pregnancy.
B Animal studies have revealed no evidence of harm to the fetus; however, there are no adequate and well- controlled studies in pregnant women.
OR Animal studies have shown an adverse effect, but
adequate and well-controlled studies in pregnant women have failed to demonstrate risk to the fetus in any trimester.
C Animal studies have shown an adverse effect, and there are no adequate and well-controlled studies in pregnant women.
OR No animal studies have been conducted, and there are no
adequate and well-controlled studies in pregnant women.
D Adequate and well-controlled or observational studies in pregnant women have demonstrated risk to fetus. However, benefits of therapy may outweigh potential risk. For example, the drug may be acceptable if needed in a life-threatening situation or serious disease for which safer drugs cannot be used or are ineffective.
X Adequate and well-controlled or observational studies in animals or pregnant women have demonstrated positive evidence of fetal abnormalities or risks.
Use of the product is contraindicated in women who are or may become pregnant.
Heart defects
Hepatomegaly and jaundice
Splenomegaly
Pneumonitis
Microcephaly
Small eyes
Petechiae and purpura
FIG 6.23 Major clinical findings in the TORCH (toxoplasmosis, others, rubella, cytomegalovirus, herpes) complex of infective congenital disorders.
KEY POINTS • Environmental factors that adversely affect the developing fetus are called
teratogens. Exposure to teratogens is particularly dangerous during the third to ninth weeks of gestation.
• Known teratogens include chemicals and drugs, infections, and radiation. The teratogenic potential of many chemicals and drugs is unknown, so pregnant women are usually advised to avoid all drugs if possible.
• Of the infectious agents, viruses are the most teratogenic, particularly organisms of the TORCH variety (toxoplasmosis, others, rubella, cyto- megalovirus, herpes virus).
114 UNIT II Cellular Function
serious implications for human evolution. There is also the potential for using the technology to create “new and improved” human beings or human clones.
Recombinant DNA Technology Over the past 30 years, DNA has gone from being the most difficult cellular molecule to study to being among the easiest. The great advances in molecular genetics during this time are due to plummeting costs of DNA sequencing and the development of recombinant DNA technologies. It is now possible to select a specific region of DNA, produce unlimited copies of it, determine its nucleotide sequence, use it to make unlimited quantities of a desired protein, or alter its DNA sequence at will (genetic engineering), and reinsert it into a living cell. Scientists can decipher the nucleotide sequence of an individual human genome, create DNA probes to explore an individual’s genetic makeup for specific mutations, mass-produce therapeutic proteins and vaccines, and hope someday to cure genetic disorders by replacing mutated genes with normally functioning ones.
Recombinant DNA technology comprises a number of techniques, the most important of which are briefly described here: • The long, difficult-to-handle DNA strands are more easily studied
if cut into smaller pieces. This is accomplished by using restriction enzymes that cleave DNA at specific sites. The resulting pieces can then be separated by electrophoresis according to their size. A section of DNA can be collected and efficiently sequenced by automated means.
• Nucleic acid hybridization techniques take advantage of the natural tendency for DNA and RNA to find and bind to a comple- mentary nucleotide sequence. A labeled piece of DNA or RNA can therefore be used to search for, or “probe” for, its complementary sequence among the many millions of sequences in a cell or cell extract. For example, in a fluorescence in situ hybridization (FISH) assay, a probe for a specific site on a chromosome is attached to a fluorescent label and incubated with a cell. The fluorescence is then examined to identify the location and number of copies of the particular chromosome sequence (Fig. 6.24). Without the hybridiza- tion technique, finding a desired gene among the 3 billion base pairs in the human genome could take many years of intense effort, like finding the proverbial needle in a haystack. Hybridization is also the method behind the “gene chip assay” technology. As an outcome of the Human Genome Project, the DNA sequences for the thousands of human genes and common mutations have been identified. Specific DNA sequence probes for these genes can be synthesized and attached to a fixed position on a plate (microchip). The DNA of interest can then be exposed to the chip, and the probes will preferentially bind to DNA segments having complementary bases. The position of the probe and the degree of DNA binding can then be analyzed by computer to produce a specific genetic analysis of gene mutations.
• DNA cloning is the technique used to produce many identical copies of a DNA sequence containing a gene of interest. The availability of large quantities of a purified gene sequence makes study and gene manipulation possible. A number of different techniques can be used to clone DNA. The PCR technique is very efficient if the DNA sequence is already partially known. Basically, the DNA sequence of interest is mixed with special DNA polymerases that use the DNA sequence as a template to produce double-stranded DNA. Each DNA thus produced can in turn act as a template for production of another DNA. Large quantities can be produced very rapidly by PCR. The DNA can also be cloned by inserting it into bacteria by use of a viral or plasmid vector. Bacteria that incorporate the desired gene are identified by hybridization with a labeled probe. The desired
Ultrasound and amniocentesis are mainstays of prenatal diagnostic examination. Ultrasound is a noninvasive procedure that uses sound waves to produce a reflected image of the fetus. It is commonly used to determine gestational age, fetal position, and placental location. Ultrasound is also useful in detecting visible congenital anomalies such as spina bifida (neural tube defect); heart defects; and malformations of the face, head, body, and limbs.
Amniocentesis may be performed to determine genetic and devel- opmental disorders not detectable by ultrasound. This invasive procedure is associated with a small but real risk of complications, including pregnancy loss. During amniocentesis, a needle is inserted through the abdomen or vagina and into the uterus. A sample of amniotic fluid containing skin cells shed by the fetus is removed for analysis. The amniotic fluid can be analyzed for abnormal levels of certain substances secreted by the fetus, such as α-fetoprotein, which may indicate neural tube defects. Fetal cells are also present in amniotic fluid and can be cultured and subjected to biochemical, chromosomal, and genetic analysis. Because amniocentesis is not recommended until at least 15 weeks’ gestation, it does not provide information until relatively late in the pregnancy. Chorionic villus sampling (CVS) involves the removal of a piece of tissue directly from the chorion (the outer membrane of the fetal sac). It can be performed after about 9 weeks’ gestation. Like amniocentesis, CVS is an invasive procedure that in rare instances results in pregnancy complication or loss.
Fetal cells obtained via either amniocentesis or CVS contain small amounts of DNA that can then be amplified into a larger quantity by a process called polymerase chain reaction (PCR). This DNA can then be analyzed by a variety of methods to determine the genetic sequence, the presence or absence of particular genes, or the presence of mutations. The fetal genome can be scanned for particular genes by exposing the processed DNA to microchips that are coated with thousands of genetic sequence probes in specific locations. Complementary base pairing between the probes fixed on the microchip and the DNA being tested is used to detect the presence of particular gene sequences.
In rare cases, a laparoscopic procedure may be performed to directly visualize the embryo or fetus. A fetoscope can be inserted through the cervix and into the uterus to identify and in some instances attempt to correct structural anomalies. The early diagnosis of congenital disorders allows a greater number of treatment options. Some disorders can be managed in utero; others may require early delivery, immediate surgery, or cesarean section to minimize fetal trauma. Early warning of fetal difficulties allows parents time to prepare emotionally for the birth of the child. In some instances, termination of the pregnancy may be the treatment of choice.
Genetic Analysis and Therapy An exciting promise in the genome era of health care remains on the horizon—the treatment of genetic disease by replacing a defective gene with a normal, healthy gene. The concept is simple, and clinical trials have been conducted to treat a number of genetic disorders. The first federally approved gene therapy procedure was performed in 1990 to treat a child who suffered from a particular type of severe combined immunodeficiency (SCID) by introducing a functional gene for the enzyme adenosine deaminase. In the past, children who suffered from SCID had severely compromised immune systems and generally died from overwhelming infections unless their environment was strictly controlled. Use of gene therapy has shown some success in improving immune function and allowing these children to live in the outside world, although the safety of gene therapy is a continuing challenge.
Gene therapy has the potential for alleviating human suffering by curing genetic diseases, but it is accompanied by a number of moral and ethical dilemmas. Tampering with the human gene pool could have
CHAPTER 6 Genetic and Developmental Disorders 115
thus elucidate the normal function of the original gene and its protein product. Genetic engineering has been applied to plants to increase their value as food crops. Genetically engineered bacteria are the source of more than 90 human proteins created in bacteria using recombinant DNA (rDNA) technology for pharmaceutical use; examples are human insulin, epoetin, and interferon. Gene therapy relies heavily on these techniques to facilitate identifica-
tion of genetic mutations, study of gene function, and development of methods to repair or replace mutated genes. Many more applications of rDNA technology will become apparent as research on the genetic basis of human function and disease proceeds.
KEY POINTS • Risk factors that indicate the need for prenatal diagnostic examination and
counseling include advanced maternal age (older than 35 years), a family history of genetic disorders, and the previous birth of a child with chromosomal or neural tube defects.
• Ultrasound, amniocentesis, and chorionic villus sampling (CVS) are the mainstays of prenatal assessment for genetic disorders. Technology for examining fetal DNA isolated from maternal blood has allowed some prenatal screening tests to be performed noninvasively.
• DNA sequences that are complementary to a gene of interest can be synthesized and used to probe a genome to determine whether and where the gene is present. These hybridization techniques make screening for genetic disorders relatively fast and simple.
• Gene therapy is the treatment of genetic disease by replacing defective genes with normal genes. Gene therapy is possible because of the advances attained in rDNA technology over the past 30 years.
FIG 6.24 Fluorescence in situ hybridization assay showing an interphase nucleus. The red probe is hybridized to chromosome 21 and the green probe is hybridized to chromosome 13. Three copies of chromosome 21 are identified, confirming the diagnosis of trisomy 21. (From Kumar V et al: Robbins & Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p. 161. Photograph courtesy Dr. Stuart Schwartz, Department of Pathology, University of Chicago, Chicago, IL.)
bacteria then are allowed to proliferate, making a copy of the DNA sequence along with their own genome with each cell division.
• Genetic engineering refers to a process whereby a gene of interest is altered from its original form. The altered (mutated) gene can be reintroduced into a cell to disclose its effect on cell function and
Genetic and developmental disorders are responsible for a number of congenital malformations. Congenital disorders are caused by genetic and environmental factors that disrupt normal fetal development. Genetic disorders are classified as (1) chromosomal alterations, including structural and numeric abnormalities; (2) mendelian disorders, including autosomal-dominant, autosomal-recessive, and X-linked disorders; (3) nonmendelian single-gene disorders, including triplet repeats, mito- chondrial gene defects, and genetic imprinting disorders; and (4) polygenic or multifactorial disorders. Known environmental teratogens include radiation, infectious organisms, and various chemicals and
drugs. The embryo is particularly susceptible to teratogens during the period of organogenesis, which extends from the third to the ninth week of gestation. Pedigree analysis, ultrasound, amniocentesis, and chorionic villus biopsy may provide helpful information regarding genetic risk and the prenatal condition of at-risk infants. DNA sequencing of normal and mutated genes has made it possible to efficiently screen for genetic disorders. DNA can be manipulated to produce human protein pharmaceuticals, and clinical trials to test gene therapies for a variety of genetic diseases have been conducted.
S U M M A R Y
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University Press. Down JHL: Observations on an ethnic classification of idiots. Clin Lect Rep
London Hosp 3:259–262, 1866. Jackson JM, Crider KS, Cragan JD, et al: Frequency of prenatal cytogenetic
diagnosis and pregnancy outcomes by maternal race-ethnicity, and the effect on the prevalence of trisomy 21, Metropolitan Atlanta, 1996-2005. Am J Med Genet 164A:70–77, 2014. doi:10.1002/ajmg.a.36247.
Jorde LB, Carey JC, Bamshad MJ: Medical genetics, ed 5, Philadelphia, 2016, Elsevier.
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Kumar V, Abbas AK, Aster JC: Pathologic basis of disease, ed 9, Philadelphia, 2015, Elsevier Saunders.
Kumar S, Tana A, Shankar A: Cystic fibrosis—what are the prospects for a cure? Eur J Intern Med 25:803–807, 2014. doi:10.1016/j.ejim.2014.09 .018.
Lewis R: Human genetics: Concepts and applications, ed 11, New York, 2015, McGraw Hill.
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Turnpenny P, Ellard S: Emery’s elements of medical genetics, ed 14, Philadelphia, 2012, Churchill-Livingstone.
Waldorf KMA, McAdams RM: Influence of infection during pregnancy on fetal development. Reproduction 146(5):R151–R162, 2013. doi:10.1530/ rep-13-0232.
Warby SC, Graham RK, Hayden MR: Huntington disease. In Pagon RA, Adam MP, Ardinger HH, et al, editors: GeneReviews [Internet], Seattle (WA), 1998 Oct 23 [Updated 2014 Dec 11]. University of Washington, Seattle, pp 1993–2015. Available from: http://www.ncbi.nlm.nih.gov/ books/NBK1305/.
Lewis RA: Oculocutaneous albinism Type 1. In Pagon RA, Adam MP, Ardinger HH, et al, editors: GeneReviews [Internet], Seattle (WA), 2000 Jan 19 [Updated 2013 May 16]. University of Washington, Seattle, pp 1993–2015. Available from: http://www.ncbi.nlm.nih.gov/books/ NBK1166/.
Macpherson JL, Rasko JEJ: Clinical potential of gene therapy: towards meeting the demand. Intern Med 44:224–233, 2014. doi:10.1111/imj.12366.
Senturias YSN: Fetal alcohol spectrum disorders: an overview for pediatric and adolescent care providers. Curr Probl Pediatr Adolesc Health Care 4(44):74–81, 2014. doi:10.1016/j.cppeds.2013.12.012.
117
7
Neoplasia Jacquelyn L. Banasik
K E Y Q U E S T I O N S • How do neoplastic cells differ from normal cells? • In what ways do benign and malignant tumors differ? • How might overexpression of proto-oncogenes lead to abnormal
cellular proliferation? • How might underexpression of tumor suppressor genes lead to
abnormal cellular proliferation? • What properties are gained during tumor progression that
contribute to malignant behavior and metastasis?
• How are tumor grading and staging used to characterize cancers and guide the selection of cancer therapies?
• How might lifestyle and carcinogen exposure contribute to cancer risk?
• What effects does cancer have on the body? • What options are available for cancer treatment?
C H A P T E R O U T L I N E Benign Versus Malignant Growth, 118
Characteristics of Benign and Malignant Tumors, 118
Tumor Terminology, 118
The Malignant Phenotype, 118
Epidemiology and Cancer Risk Factors, 120 Tobacco Use, 120
Nutrition, 120
Antioxidants, 123
Genetic Mechanisms of Cancer, 123 Proto-Oncogenes, 124
Growth Factors (Mitogens), 124 Growth Factor Receptors, 124 Cytoplasmic Signaling Pathways, 124 Transcription Factors, 125 From Proto-Oncogene to Oncogene, 125
Tumor Suppressor Genes, 127
The Rb Gene, 127 The P53 Gene, 128 BRCA1 and BRCA2 Genes, 128
Multistep Nature of Carcinogenesis, 129 Initiation, 129
Promotion, 131
Progression, 131
Metastasis, 132 Patterns of Spread, 132
Angiogenesis, 133
Grading and Staging of Tumors, 134
Effects of Cancer on the Body, 136 Cancer Therapy, 137
Surgery, 137
Radiation Therapy, 138
Drug Therapy, 138
Immunotherapy, 138
Gene and Molecular Therapy, 138
Stem Cell Transplantation, 139
http://evolve.elsevier.com/Banasik/pathophysiology/
Neoplasia means “new growth.” In common use, the term implies an abnormality of cellular growth and may be used interchangeably with the term tumor. It is no surprise that the discovery of a tumor in an individual can evoke feelings of disbelief, anger, and dread. Characteriza- tion of the tumor cells is of critical importance to determine whether the tumor is benign or malignant. The term cancer is applied only to malignant neoplasms. The diagnosis of a benign growth is received with great relief inasmuch as the tumor is generally easily cured. The
diagnosis of a malignant cancer, on the other hand, may involve months of intensive and often uncomfortable treatment with uncertain outcomes. Cancer remains the second-leading cause of death in the United States for both men and women.
It is increasingly clear that cancer is associated with altered expression of cellular genes that normally regulate cell proliferation and differentia- tion. A unified theory of cancer causation has emerged, and new methods for cancer therapy continue to be developed. Cancer is a complex,
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
118 UNIT II Cellular Function
Tumor Terminology General rules for the naming of tumors have been developed to indicate the tissue of origin and the benign or malignant nature of the tumor. The suffix -oma is used to indicate a benign tumor, whereas carcinoma and sarcoma are used to indicate malignant tumors. Carcinoma refers to malignant tumors of epithelial origin and sarcoma to malignant tumors of mesenchymal (nerve, bone, muscle) origin. Thus a benign tumor of glandular tissue would be called an adenoma, but a malignant tumor of the same tissue would be called an adenocarcinoma (Table 7.2). Some notable exceptions to the rules are lymphomas, hepatomas, and melanomas, which are all highly malignant despite their -oma suffix. Leukemia refers to a malignant growth of white blood cells. The great majority of human cancers (90%) are carcinomas from malignant transformation of epithelial cells.
The Malignant Phenotype Cells growing in normal tissue have predictable relationships with neighboring cells. In a particular tissue, the rate of cell proliferation is precisely matched to the rate of cell death. Normal cells require constant reassurance in the form of survival signals from their environment that their continued existence is desirable, and they proliferate only when space is available and appropriate mitogen-stimulating signals are present.
multifaceted disorder, with each individual cancer having some unique properties. A better understanding of the molecular characteristics of individual cancers is encouraging the development of specific therapies that target each cancer’s weaknesses.
BENIGN VERSUS MALIGNANT GROWTH Characteristics of Benign and Malignant Tumors The terms benign and malignant refer to the overall consequences of a tumor to the host. Generally, malignant tumors have the potential to kill the host if left untreated, whereas benign tumors do not. This difference is not strict because some benign tumors may be located in critical areas. For example, a benign tumor may be life threatening if it causes pressure on the brain or blocks an airway or blood vessel. Histologic examination of a tumor is the primary mode for determining its benign or malignant nature. Certain tumor characteristics have historically been shown to indicate malignant potential. Important considerations include localization of the tumor and determination of the degree of tumor cell differentiation.
Benign tumors do not invade adjacent tissue or spread to distant sites. Many benign tumors are encapsulated by connective tissue, which is an indication of strictly local growth. Any evidence that tumor cells have penetrated local tissues (invasiveness), lymphatics, or blood vessels suggests a malignant nature with potential to spread to distant sites (metastasize).
As a general rule, benign cells more closely resemble their tissue type of origin (e.g., skin, liver) than do malignant cells. The degree of tissue-specific differentiation has traditionally been used to predict malignant potential. A lack of differentiated features in a cancer cell is called anaplasia, and a greater degree of anaplasia is correlated with a more aggressively malignant tumor. Anaplasia is indicated by variation in cell size and shape within the tumor, enlarged nuclei, abnormal mitoses, and bizarre-looking giant cells (Fig. 7.1). Regardless of histologic appearance, invasion of local tissue or evidence of metastasis to distant sites confirms the diagnosis of malignancy.
Other differences between benign and malignant tumors have been noted (Table 7.1). Benign tumors generally grow more slowly, have little vascularity, rarely have necrotic areas, and often retain functions similar to those of the tissue of origin. Conversely, malignant tumors often grow rapidly and may initiate vessel growth in the tumor. They frequently have necrotic areas and are dysfunctional.
A B
FIG 7.1 A, Normal Papanicolaou smear from the uterine cervix showing large, flat epithelial cells with small nuclei. B, Typical histologic appearance of anaplastic tumor cells showing variation in cell size and shape, with large, hyperchromic nuclei. (From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 1006. Courtesy Edmund S. Cibas, Brigham and Women’s Hospital, Boston, MA.)
TABLE 7.1 General Characteristics of Benign and Malignant Tumors
Characteristic Benign Malignant
Histology Typical of tissue of origin
Few mitoses
Anaplastic, with abnormal cell size and shape
Many mitoses Growth rate Slow Rapid Localization/
metastasis Strictly local, often
encapsulated/no metastasis
Infiltrative/frequent metastases
Tumor necrosis Rare Common Recurrence after
treatment Rare Common
Prognosis Good, unless in critical area
Poor if untreated
CHAPTER 7 Neoplasia 119
original stem cell properties and the other becoming a more differentiated cell, but still capable of proliferation. Normally, the partially differentiated cells can undergo only a limited number of cell divisions before they permanently leave the cell cycle and become senescent. Either a stem cell or a partially differentiated cell has the potential to acquire the genetic mutations necessary to become malignant.
Normal cells also respond to signals instructing them to actively destroy themselves in a process called apoptosis (see Chapter 4). Cancer cells, however, do not obey the rules; they have escaped the normal mechanisms of growth control. A number of antisocial properties develop in malignant cells that allow them to proliferate at the expense of other cells and tissues of the body. These abnormal behaviors can be summarized as follows: • Cancer cells proliferate despite lack of growth-initiating signals from
the environment. • Cancer cells escape apoptotic signals and achieve a kind of immortality
in that they are capable of unlimited replication. • Cancer cells lose their differentiated features and contribute poorly
or not at all to the function of their tissue. • Cancer cells are genetically unstable and evolve by accumulating
new mutations at a much faster rate than normal cells. • Cancer cells invade their local tissue and overrun their neighbors. • Perhaps worst of all, cancer cells gain the ability to migrate from
their site of origin to colonize distant sites where they do not belong. Most cancers are thought to arise from stem cells that are present
in tissues. Tissue stem cells are capable of proliferation, entering the cell cycle to produce two daughter cells—with one cell retaining the
TABLE 7.2 Nomenclature for Neoplastic Diseases
Cell or Tissue of Origin Benign Malignant
Tumors of Epithelial Origin Squamous cells Squamous cell papilloma Squamous cell carcinoma Basal cells — Basal cell carcinoma Glandular or ductal epithelium Adenoma Adenocarcinoma
Cystadenoma Cystadenocarcinoma Transitional cells Transitional cell papilloma Transitional cell carcinoma Bile duct Bile duct adenoma Bile duct carcinoma (cholangiocarcinoma) Liver cells Hepatocellular adenoma Hepatocellular carcinoma Melanocytes Nevus Malignant melanoma Renal epithelium Renal tubular adenoma Renal cell carcinoma Skin adnexal glands Sweat glands Sweat gland adenoma Sweat gland carcinoma Sebaceous glands Sebaceous gland adenoma Sebaceous gland carcinoma Germ cells (testis and ovary) — Seminoma (dysgerminoma), embryonal carcinoma, yolk sac carcinoma
Tumors of Mesenchymal Origin Hematopoietic/lymphoid tissue — Leukemia, lymphoma, Hodgkin disease, multiple myeloma Neural and retinal tissue Nerve sheath Neurilemmoma, neurofibroma Malignant peripheral nerve sheath tumor Nerve cells Ganglioneuroma Neuroblastoma Retinal cells (cones) — Retinoblastoma Connective tissue Fibrous tissue Fibromatosis (desmoid) Fibrosarcoma Fat Lipoma Liposarcoma Bone Osteoma Osteogenic sarcoma Cartilage Chondroma Chondrosarcoma Muscle Smooth muscle Leiomyoma Leiomyosarcoma Striated muscle Rhabdomyoma Rhabdomyosarcoma Endothelial and related tissues Blood vessels Hemangioma Angiosarcoma
Kaposi sarcoma Lymph vessels Lymphangioma Lymphangiosarcoma Synovium — Synovial sarcoma Mesothelium — Malignant mesothelioma Meninges Meningioma Malignant meningioma
KEY POINTS • Malignant tumors have the potential to kill the host, whereas benign tumors
generally do not. The primary difference between malignant and benign tumors is the propensity of malignant tumors to invade adjacent tissue and spread to distant sites (metastasize).
• The suffix -oma is used to indicate a benign tumor (e.g., fibroma). Carcinoma and sarcoma are used to indicate malignancy (e.g., fibrosarcoma). Exceptions include melanomas, lymphomas, hepatomas, and leukemia, all of which are malignant.
• Malignant cells exhibit antisocial properties that allow them to ignore growth-controlling signals from the environment. Cancer cells proliferate excessively, become immortal, invade locally, and may travel to distant sites where they establish new colonies.
120 UNIT II Cellular Function
1998 (Fig. 7.3). Whereas all other cancer-related death rates declined or remained relatively stable, the death rate from lung cancer increased dramatically. The increase is attributable almost entirely to smoking. Lung cancer remains the leading cause of cancer death in both men and women, accounting for nearly 30% of all cancer deaths. Lung cancer has one of the worst survival rates of all cancers—only 15%. In addition to lung cancer, tobacco use has been linked with cancer of the pancreas, bladder, kidney, mouth, esophagus, and cervix (Fig. 7.4). Smoking prevalence among adults in the United States declined from 42% in 1965% to 18% in 2013, with rates being approximately 5% lower in women than in men. An estimated 42 million U.S. adults currently smoke cigarettes. Approximately 16% of high school students reported being cigarette smokers in 2013. Approximately 2% of adults use electronic nicotine devices (e-cigarettes). There is little known about the relative risk of these products compared with traditional tobacco.
Carcinogens can be grouped into two major types: those that cause genetic damage (initiators) and those that promote growth of the tumor (promoters). Tobacco smoke contains hundreds of compounds, many of which have known genotoxicity (e.g., polycyclic aromatic hydrocarbons, nicotine derivatives) and probably serve as initiators. Tobacco smoke also contains promoters, which spur the mutant cells to proliferate.
Nutrition The scientific study of nutrition and cancer is complex, and it is not clear how single nutrients, combinations of nutrients, overnutrition
EPIDEMIOLOGY AND CANCER RISK FACTORS Cancer accounts for approximately 25% of all deaths, which makes it the second-leading cause of death in the United States. Most cancer deaths (78%) occur in persons older than 55 years. The American Cancer Society (ACS) estimates that men have almost a 1 in 2 lifetime risk of developing cancer and women have slightly higher than a 1 in 3 risk. The 5-year relative survival rate for all cancers combined is about 68%. The 5-year survival rate does not distinguish between those who were cured and those who have relapsed or are still in treatment. Fortunately, the current view of cancer causation predicts that many cancers are preventable. Indeed, one-third of cancer-related deaths may be attributed to lifestyle factors. Lifestyle factors of particular importance are tobacco use and nutrition. Sun exposure is a significant risk factor for skin cancer (Chapter 53), and sexual exposure to certain strains of human papillomavirus predisposes to cervical cancer (Chapter 34). The high incidence and relative ease of screening for breast, cervical, colorectal, and prostate cancers have prompted the development of guidelines for early detection of these cancers. The current recommendations for early detection of cancer in average-risk, asymptomatic persons are shown in Table 7.3. Statistics regarding some of the major forms of cancer are shown in Fig. 7.2. Further discussions of particular cancers can be found in chapters relating to corresponding body systems.
Tobacco Use The impact of tobacco use on cancer-related death can be most vividly seen by looking at cancer death rates in the United States from 1930 to
Men 312,150
Women 277, 280
Men 848,200
Women 810,170
26% Lung and bronchus
15% Breast
9% Colon and rectum
5% Ovary
7% Pancreas
4% Leukemia
3% Non-Hodgkin lymphoma
4% Uterine corpus
3% Liver and intrahepatic bile duct
2% Brain/other nervous system
22% All other sites
Lung and bronchus 28%
Prostate 9%
Colon and rectum 8%
Pancreas 7%
Leukemia 5%
Non-Hodgkin lymphoma 4%
Esophagus 4%
Liver and intrahepatic bile duct
5%
Urinary bladder 4%
Kidney 3%
All other sites 23%
29% Breast
13% Lung and bronchus
8% Colon and rectum
7% Uterine corpus
3% Leukemia
4% Non-Hodgkin lymphoma
4% Melanoma of skin
6% Thyroid
3% Kidney
3%
20% All other sites
Prostate 26%
Lung and bronchus 14%
Colon and rectum 8%
Urinary bladder 7%
Melanoma of skin 5%
Non-Hodgkin lymphoma 5%
Kidney 5%
Oral cavity 4%
Leukemia
Pancreas
4%
Liver 3%
All other sites 19%
A
B
FIG 7.2 United States 2015 estimated new cancer cases (A) and estimated cancer deaths (B) in 10 leading sites by gender. Excludes basal and squamous cell skin cancers and in situ carcinomas except urinary bladder. (Data from American Cancer Society: Cancer facts and figures—2015, Atlanta, GA, 2015, American Cancer Society.)
CHAPTER 7 Neoplasia 121
TABLE 7.3 Screening Guidelines for the Early Detection of Cancer in Average-Risk Asymptomatic People
Cancer Site Population Test or Procedure Frequency
Breast Women, age 20+ Breast self- examination (BSE)
It is acceptable for women to choose not to do a BSE or to do a BSE regularly (monthly) or irregularly. Beginning in their early 20s, women should be told about the benefits and limitations of BSE. Whether a woman ever performs a BSE, the importance of prompt reporting of any new breast symptoms to a health professional should be emphasized. Women who choose to do BSE should receive instruction and have their technique reviewed on the occasion of a periodic health examination.
Clinical breast examination (CBE)
For women in their 20s and 30s, it is recommended that CBE be part of a periodic health examination, preferably at least every 3 years. Asymptomatic women aged 40+ should continue to receive a CBE as part of a periodic health examination, preferably annually.
Mammography Begin annual mammography at age 40* Cervix Women, age
21–65 Pap test and HPV DNA
test Cervical cancer screening should begin at age 21. For women ages 21–29, screening should be
done every 3 years with conventional or liquid-based Pap tests. For women ages 30–65, screening should be done every 5 years with both HPV test and the Pap test (preferred), or every 3 years with the Pap test alone (acceptable). Women ages 65+ who have had ≥3 consecutive negative Pap tests or ≥2 consecutive negative HPV and Pap tests within the last 10 years, with the most recent test occurring within 5 years, and women who have had a total hysterectomy should stop cervical cancer screening. Women should not be screened annually by any method at any age.
Colorectal Men and women, age 50+
Fecal occult blood test (FOBT) with at least 50% test sensitivity for cancer, fecal immunochemical test (FIT) with at least 50% test sensitivity for cancer, or
Annual, starting at age 50. Testing at home with adherence to manufacturer’s recommendation for collection techniques and a number of samples is recommended. FOBT with single stool sample collected on the clinician’s fingertip during a DRE in the health care setting is not recommended. Guaiac-based toilet bowl FOBT tests are also not recommended. In comparison with the guaiac-based tests for the detection of occult blood, immunochemical tests are more patient friendly and are likely to be equal or better in sensitivity and specificity. There is no justification for repeating FOBT in response to an initial positive finding.
Stool DNA test, or Every 3 years, starting at age 50 Flexible sigmoidoscopy
(FSIG), or Every 5 years, starting at age 50. FSIG can be performed alone, or consideration can be given
to combining FSIG performed every 5 years with a highly sensitive guaiac-based FOBT or FIT performed annually.
Double-contrast barium enema (DCBE), or
Every 5 years, starting at age 50
Colonoscopy Every 10 years, starting at age 50 CT Colonography Every 5 years, starting at age 50
Endometrial Women, at menopause
At the time of menopause, women at average risk should be informed about risks and symptoms of endometrial cancer and strongly encouraged to report any unexpected bleeding or spotting to their physicians.
Lung Current or former smokers (quit within the past 15 years) ages 55–74 in good health with at least a 30 pack-year history
Low-dose helical CT (LDCT)
Clinicians with access to high-volume, high-quality lung cancer screening and treatment centers should initiate a discussion about lung cancer screening with apparently healthy patients aged 55–74 who have at least a 30 pack-year smoking history and who currently smoke or have quit within the last 15 years. A process of informed and shared decision making with a clinician related to the potential benefits, limitations, and harms associated with screening for lung cancer with LDCT should occur before any decision is made to initiate lung cancer screening. Smoking cessation counseling remains a high priority for clinical attention in discussions with current smokers, who should be informed of their continuing risk of lung cancer. Screening should not be reviewed as an alternative to smoking cessation.
Prostate Men, age 50+ Digital rectal examination (DRE) and prostate-specific antigen test (PSA)
Men who have at least 10-year life expectancy should have an opportunity to make an informed decision with their health care provider about whether to be screened for prostate cancer, after receiving information about the potential benefits, risks, and uncertainties associated with prostate cancer screening. Prostate cancer screening should not occur without an informed decision-making process.
Cancer-related checkup
Men and women age 20+
On the occasion of a periodic health examination, the cancer-related checkup should include examination for cancers of the thyroid, testicles, ovaries, lymph nodes, oral cavity, and skin, as well as health counseling about tobacco, sun exposure, diet and nutrition, risk factors, sexual practices, and environmental and occupational exposures.
American Cancer Society: Cancer prevention and early detection facts and figures—2015–2016, Atlanta, GA, 2015, American Cancer Society. CT, computed tomography. *Beginning at age 40, annual clinical breast examination should ideally be performed before mammography.
122 UNIT II Cellular Function
Year of Death
Male Death Rates for Cancer of the Lung, Bronchus, Trachea, and Pleura
Female Death Rates for Cancer of the Lung, Bronchus, Trachea, and Pleura
Age at Death R
a te
p e r
1 0 0 ,0
0 0
1930–34
200
100
0
300
400
500
600
700
1940–44 1950–54 1960–64 1970–74 1980–84 1990–94
85+ (1940–98) 80–84 (1940–98) 75–79 (1940–98) 70–74 65–69 60–64 55–59 50–54 45–49 40–44 35–39 30–34
Age at Death
85+ (1940–98) 80–84 (1940–98) 75–79 (1940–98) 70–74 65–69 60–64 55–59 50–54 45–49 40–44 35–39 30–34
Year of Death
R a te
p e r
1 0 0 ,0
0 0
1930–34
100
50
0
150
200
250
300
1940–44 1950–54 1960–64 1970–74 1980–84 1990–94
A
B FIG 7.3 Death rates for cancer of the lung, bronchus, trachea, and pleura, by age at and year of death, 1930–1998. A, Male death rates. B, Female death rates. (Data From U.S. Department of Commerce, Bureau of the Census. Mortality statistics. Washington: U.S. Government Printing Office, 1930–1936; U.S. Department of Commerce, Bureau of the Census. Vital statistics of the United States, Part I. Washington: Government Printing Office, 1937–1944; Federal Security Agency, Public Health Service, National Office of Vital Statistics. Vital statistics of the United States, Part I. Washington: Government Printing Office, 1945–1949; U.S. Depart- ment of Health, Education, and Welfare, Public Health Service, National Office of Vital Statistics. Vital statistics of the United States. Volume II. Washington: Government Printing Office, 1950–1959; Centers for Disease Control and Prevention, National Center for Health Statistics. Multiple cause of death public use data files. Hyattsville, MD: National Center for Health Statistics, 1960–1998.)
CHAPTER 7 Neoplasia 123
GENETIC MECHANISMS OF CANCER Despite much progress in our understanding of how mechanisms of growth control and cellular differentiation may go awry, there is still no simple answer to the question, “What causes cancer?” It is increasingly evident, however, that cancer is primarily a disorder of gene expression. Early support for a genetic basis of cancer came from the observation that cancer often resulted from agents known to damage DNA. In the 1970s a number of potential cancer-causing agents (carcinogens) were identified by demonstrating their mutagenic potential. The suggestion that mutant genes were the basis for cancer launched intense research to identify the cancer-causing gene or genes.
Cancer-critical genes are grouped into two broad classes, according to whether overactivity of the gene contributes to cancer (gain-of-function mutations) or whether underactivity is the problem (loss-of-function mutations). Both categories of genes result in similar effects in enhancing cell proliferation and survival. Genes in the first category are called proto-oncogenes, which normally code for components of the cellular growth–activating pathways. A proto-oncogene in its mutant, overactive, or overexpressed form is called an oncogene. Genes in the second category of cancer-related genes are called tumor suppressor genes, which normally inhibit cell proliferation. Cancers may arise when tumor suppressor
and energy imbalance, or the amount and distribution of body fat affect a person’s risk for specific cancers. The ACS suggests a mostly plant-based diet emphasizing a variety of vegetables, fruits, and whole grains. The ACS endorses limiting the intake of red and processed meats while controlling total caloric intake to maintain a healthy weight and avoiding excessive alcohol intake. Alcohol intake has been linked to a number of cancers, including breast, esophageal, laryngeal, and liver cancer. Alcohol may exert its cancer-promoting effects through impairment of the liver’s ability to metabolize harmful substances and endogenous hormones. Moderate alcohol intake has been shown to increase estrogen levels, which may account for its promoting effects on breast cancer. As a carbohydrate-dense sub- stance, alcohol may contribute to cancer risk through its effects on insulin secretion. Insulin is a general growth factor for a number of tissues. Limiting alcohol intake may provide a modest reduction in cancer risk.
Antioxidants The emphasis of cancer prevention generally has been on the identifica- tion and avoidance of cancer-causing agents. However, increasing interest has been shown in finding substances with cancer-protective properties. The fact that DNA damage is an important step in cancer initiation, coupled with the knowledge that oxygen free radicals can impart this damage, led to the idea that antioxidants may have protective effects for cancer. The specific agents tested in clinical trials included β-carotene, vitamin E, vitamin C, selenium, retinol, zinc, riboflavin, and molybdenum. None of the completed trials produced convincing evidence to justify the use of traditional antioxidant-related vitamins or minerals for cancer prevention.
Vitamin A and the antioxidant trio of vitamin E, β-carotene, and vitamin C have been most widely studied. The use of antioxidants to prevent cancer sounds like a good idea; however, several large-scale studies have failed to reveal a benefit, and some have found that the risk of cancer may be increased. At present, it may be prudent to consume a diet high in natural fruit and vegetable sources of antioxidants.
KEY POINTS • The risk of developing cancer increases with age. It is estimated that men
have almost a 1 in 2 lifetime chance of developing cancer, whereas women have a little more than a 1 in 3 chance.
• The development of many cancers is related to lifestyle, particularly tobacco use and nutrition. Smoking cessation is considered important in reducing cancer risk. Guidelines regarding nutrition are less clear; however, avoiding excess weight gain is recommended. Limiting excessive calorie and alcohol intake while increasing intake of dietary fiber, fruit, and vegetables may be of benefit.
C a n
c e r
s it
e
Oropharynx
Number of deaths (in thousands)
Male
20 40 60 80 1000
Larynx
Esophagus
Stomach
Pancreas
Lung
Bladder
Kidney
Myeloid leukemia
C a n
c e r
s it
e
Oropharynx
Number of deaths (in thousands)
Female
20 40 60 80 1000
Larynx
Esophagus
Stomach
Pancreas
Cervix
Lung
Bladder
Kidney
Myeloid leukemia
Attributable to cigarette smoking
Other causes
Attributable to cigarette smoking
Other causes
FIG 7.4 Annual cancer deaths attributable to smoking in males and females in the United States. (From Centers for Disease Control and Prevention: Annual smoking-attributable mortality, years of potential life lost, and productivity losses—United States, 2000-2004, MMWR Morb Mortal Wkly Rep 2008;57(45):1226–1228.)
124 UNIT II Cellular Function
gene function is lost or abnormally inhibited. To achieve malignant transformation, a cell must generally suffer mutations in a combination of these growth regulatory genes. A cell thus transformed passes on these mutations to its progeny when it divides and forms a clone of abnormally proliferating cells. Numerous studies have begun to unravel the details of how proto-oncogenes and tumor suppressor genes may dysfunction and contribute to the malignant phenotype. In addition to the genes that regulate the cell cycle, two other categories of genes that monitor and maintain the genome contribute indirectly to the development of cancer. These are the DNA-repair genes and the genes that regulate apoptosis (see Chapter 4).
Proto-Oncogenes Proto-oncogenes were the first of the tumor-associated genes to be discovered, and hundreds have been described to date. As often happens in the study of genes, a gene associated with a disease process is identified long before its normal cellular function is elucidated. Thus genes associated with cancer are traditionally named for the cancer in which they were first discovered (in mutant form) rather than for their normal cellular function. Many of the first cancer-associated genes, called oncogenes, were initially identified in viruses and still retain the name reflecting their viral discovery. The term proto-oncogene was created to label the normal cellular gene that can be transformed into an oncogene by activating (gain-of-function) mutations. A representative list of known proto-oncogenes is shown in Table 7.4.
The majority of proto-oncogenes described to date code for com- ponents of cell-signaling systems that promote cell proliferation. These
TABLE 7.4 Examples of Gain-of-Function Proto-Oncogenes and Their Mechanisms of Action
Factor Type of Cancer
Mitogens and Growth Factors PDGF Glioma (brain) FGF Melanoma EGF Breast TGF-α Breast, numerous others
Cell Membrane Receptors ERBB1 (EGF receptor) Breast, brain HER-2 (ERBB2) Breast, ovarian RET Thyroid
Cytoplasmic Signaling Molecules RAS Lung, ovarian, colon, pancreatic, leukemia ABL Leukemia JAK2 Myeloproliferative, leukemia
Transcription Factors and Cell Cycle Regulators C-MYC Leukemia, breast, lung, neuroblastoma MYB Various JUN Various FOS Various REL Various Cyclin D, E Breast, lymphoma Cyclin-dependent kinase 4 Melanoma, sarcoma
EGF, Epidermal growth factor; FGF, fibroblast growth factor; PDGF, platelet-derived growth factor; TGF, transforming growth factor.
components can be grouped into four broad categories: (1) growth factors, (2) receptors, (3) cytoplasmic signaling molecules, and (4) nuclear transcription factors (Fig. 7.5). Excessive activity in any of these components may release the cell from environmental feedback and allow it to proliferate abnormally.
Growth Factors (Mitogens) The first proto-oncogenes to be discovered coded for growth factors. A great deal of intercellular communication is accomplished through the cell-to-cell transmission of growth factors. Growth factors are small peptides that are manufactured by cells and secreted into the extracellular space. They diffuse to nearby cells and interact with receptors on the target cell surface. Binding of growth factors to cell surface receptors activates signaling cascades within the cell that enhance proliferation. As a general principle, cells do not independently produce growth factors sufficient to stimulate their own proliferation. The proliferation signals must be produced by the cell’s environment. The cell’s environment also conveys growth-inhibiting signals. Overproduction of stimulatory growth factors by a mutant proto-oncogene can shift the balance of signals and produce excessive self-stimulated growth (autocrine signaling). Examples of tumor-secreted growth factors include platelet-derived growth factor (PDGF), transforming growth factor-α (TGF-α), and epidermal growth factor (EGF). Certain cancer types typically secrete particular growth factors. For example, PDGF is commonly oversecreted in glial cell cancers (brain tumors) and connective tissue cancers (sarcomas).
Growth Factor Receptors Peptide growth factors (mitogens) cannot penetrate the cell membrane directly, so their presence at the cell surface must be transmitted intracel- lularly by cell surface receptors. Receptors are transmembrane proteins with the mitogen-binding area on the outside of the cell and an enzyme- activating area on the inside of the cell. These receptors are extremely specific; they will bind with only one particular mitogen. Binding activates a series of reactions within the cell that eventually leads to cell proliferation.
A mutational event may allow the expression of receptors that should not be present at all or allow excessive amounts of normally present receptors, or it may produce receptors with abnormally high affinity. All of these changes result in excessive responsiveness to the mitogens normally present in the cell’s environment. Some mutant receptors may even be active in the absence of growth factors and spur the cell to divide despite the absence of environmental signals to do so. An important example of a receptor abnormality is the overexpression of human epidermal growth factor receptor type 2 (HER2) receptors in about 25% of breast cancers. The overactive receptors stimulate proliferation of tumor cells even when there is little or no epidermal growth factor bound to them.
Cytoplasmic Signaling Pathways A third way in which oncogenes may facilitate proliferation is by the manufacture of excessive or abnormal components of the intracellular signaling pathways. These pathways involve numerous enzymes and chemicals that normally function to transmit signals from activated receptors at the cell surface to the cell nucleus. A mutant proto-oncogene that codes for excessive or abnormal cytoplasmic signaling components could cause activation of the pathway even though no signal was received at the cell surface. A well-understood example of this mechanism is mutations of the ras gene family. Proteins encoded by ras genes are monomeric G-proteins that transmit signals from receptors at the cell surface into the interior of the cell. The ras protein is active when it has guanosine triphosphate (GTP) bound to it, but it quickly hydrolyzes the GTP, thus automatically turning itself off after a brief period of
CHAPTER 7 Neoplasia 125
activity. A mutation in the ras gene can code for a protein that is unable to hydrolyze GTP, so it remains persistently active and stimulates cell proliferation inappropriately. Mutations of the ras genes occur in about 20% of all human cancers, including leukemias and lung, ovarian, colon, and pancreatic cancer.
Transcription Factors The entire proliferation pathway, including the growth factor (mitogen), the receptor, and the intracellular cascade, ultimately affects transcription of a set of genes in the nucleus that spur the cell to enter the S phase. A number of proto-oncogenes have been identified that code for transcription factors in the nucleus. Transcription factors are proteins that must be assembled at the promoter area to begin gene transcription (see Chapters 3 and 5). Transcription factors are normally sequestered and prevented from indiscriminate activity until appropriate signals cause their release. Mutations in transcription factor genes may cause overproduction of transcription factors or interfere with the normal mechanisms for keeping them in check. Myc, jun, and fos are examples of proto-oncogenes that code for nuclear transcription factors. Abnor- malities of the myc genes are found in numerous cancers, including lung and breast cancer, leukemia, and neuroblastoma.
From Proto-Oncogene to Oncogene Proto-oncogenes become activated oncogenes when mutations alter their activity so that proliferation-promoting signals are generated inappropriately. At least four general ways in which proto-oncogenes can be activated are known (Fig. 7.6): (1) oncogenes may be introduced into the host cell by a retrovirus; (2) a proto-oncogene within the cell may suffer a mutagenic event that changes its structure and function; (3) a DNA sequence that normally regulates proto-oncogene expression may be damaged or lost and allow the proto-oncogene to become abnormally active; and (4) an error in chromosome replication may cause extra copies of the proto-oncogene to be included in the genome (amplification).
In the early 1960s it was discovered that certain viruses were associated with cancer in various animal models. Researchers speculated that a virus could introduce a mutant, cancer-causing gene (oncogene) into the host’s cells. Indeed, malignant cells containing the cancer-causing viruses were shown to have incorporated a small number of viral genes into their cellular DNA. The presence of these oncogenes was required to maintain the malignant state of the cell.
Only a few types of human cancers are thought to be associated with viruses (Table 7.5). For example, human immunodeficiency virus is associated with Kaposi sarcoma, Epstein-Barr virus with Burkitt lymphoma, and human T-lymphocyte virus type I with adult T-cell leukemia-lymphoma. Viruses can interrupt normal cell growth control pathways and interfere with apoptotic pathways. Sometimes viruses incorporate into the host cell’s genome and disrupt gene regulation. See Chapter 8 for a review of viral mechanisms.
Proto-oncogene expression is tightly regulated in a normal cell. A number of different mutations can affect proto-oncogene expression and activity. A point mutation in the coding region of the proto-oncogene can alter the structure of its protein product and make it hyperactive. An example of this mechanism is the abnormal ras protein described earlier. Even though the protein is synthesized in normal quantity, its activity is enhanced. Other mutations may lead to overproduction of a protein with normal structure. Gene amplification and chromosomal rearrangement during mitosis may release the proto-oncogene from its normal regulation and allow excessive transcription (Fig. 7.7).
In summary, mutational events in the cell’s genome may cause overexpression of normal proto-oncogene products or production of altered and hyperactive proteins. Most known oncogenes act by releasing
Abnormal growth factor
A
Abnormal growth factor receptors
B
Abnormal intracellular pathway components
C
Abnormal transcription factors
D FIG 7.5 Possible effects of proto-oncogene activation on growth signaling pathways. A, Production of growth factors (mitogens). B, Production of growth factor receptors. C, Intracellular pathway disturbances. D, Activa- tion of transcription factors for growth.
126 UNIT II Cellular Function
Inserted viral
oncogene
Activated proto-
oncogene
Activated proto-oncogene
Mutation of regulatory sequence
Chromosome
Retrovirus
Viral RNA
Viral DNA RT
Mutagenic event
Mutagenic event
Amplification of
proto-oncogene
B
D
A
C
FIG 7.6 Mechanisms of proto-oncogene activation. A, Retroviral insertion. B, Proto-oncogene mutation. C, Regulatory sequence mutation. D, Proto-oncogene amplification. RT, Reverse transcriptase.
DNA
Gene
Excessive production of normal protein
Normal amount of hyperactive protein
Point mutation
Ge ne
am pli
fic ati
on
Chromosome rearrangement
Normal gene product
Excessive production of normal protein
FIG 7.7 Overactivity of proto-oncogenes may be due to normal production of an abnormal protein (mutation in coding sequence) or excessive production of a normal protein (gene amplification or chromosome rearrangement).
CHAPTER 7 Neoplasia 127
of the eye. A familial form of retinoblastoma is associated with the transmission of a genetic defect; a portion of chromosome 13 is missing, which is where the Rb gene is normally located. An absent Rb gene predisposes an individual to cancer, but cancer will not develop unless the other copy of the Rb gene (from the other parent) is also damaged (Fig. 7.8).
Since the initial discovery of the Rb tumor suppressor gene, researchers have compiled an impressive list of other genes that appear to function as inhibitors of cellular proliferation (Table 7.6). As with the Rb gene, both copies of the tumor suppressor genes usually are inactivated when cancer develops. A person who inherits a defective copy of a tumor suppressor gene from one parent has a much higher risk of cancer than a person who inherits two healthy copies. Knowledge about the sequence of many of these genes provides the opportunity to screen individuals with familial cancers to determine whether they carry a defective gene. Detection of defective tumor suppressor genes is easier than determining their normal cellular functions, but steady progress is being made.
Why do tumor suppressor genes stop functioning? As with proto-oncogene activation, genetic mutations are the usual culprits. Chromosome deletions, point mutations, or chromosome loss through nondisjunction may knock out tumor suppressor gene function. Tumor suppressor gene function may also be lost through an “epigenetic” process that “silences” the gene. Epigenetic influences do not change the DNA sequence (no mutation is required), but change the packaging of DNA and chemically modify it (e.g., methylation) so that the gene is inactivated. This inactivation can be passed on to daughter cells during mitosis.
The Rb Gene The Rb gene codes for a large protein in the cell nucleus (pRb) that has been labeled the “master brake” of the cell cycle (see Chapter 3). It blocks cell division by binding transcription factors (E2F), thereby inhibiting them from transcribing the genes that initiate the cell cycle (Fig. 7.9). The Rb protein can be induced to release the transcription factors when it is sufficiently phosphorylated. Proliferation-promoting signals in the cell increase cyclin-dependent kinase (cdk) enzymes and promote pRb phosphorylation, whereas growth-inhibiting signals prevent phosphorylation. Thus an inactivating mutation of the Rb genes removes one of the major restraints on cell division. Defective pRb is common to a number of different cancers.
the cell from its dependence on growth and survival signals in its environment. This effect usually is accomplished by gain-of-function abnormalities in the proliferation pathways that involve growth factors (mitogens), receptors, cytoplasmic signaling molecules, or nuclear transcription factors.
Tumor Suppressor Genes To become malignant, cells must devise ways to evade the normal inhibitory mechanisms that keep the brakes applied to cell division. It is not enough to simply overstimulate growth-promoting signals. Critical elements of the proliferation-inhibiting pathways are defective in most cancers. The components of the inhibitory machinery are specified by the so-called tumor suppressor genes. Tumor suppressor genes were more difficult to study because they contributed to cancer only when they were not there. The first tumor suppressor gene to be discovered was the Rb gene, so named because of its role in retinoblastoma, a cancer
TABLE 7.5 Viruses Associated With Human Cancers
Virus Associated Cancer Areas of High Incidence
DNA Viruses Papovavirus Family Papillomavirus (many
distinct strains) Warts (benign) Worldwide Carcinoma of the uterine
cervix Worldwide
Hepadnavirus Family Hepatitis-B virus Liver cancer
(hepatocellular carcinoma)
Southeast Asia, tropical Africa
Herpesvirus Family Epstein-Barr virus Burkitt lymphoma (cancer
of B lymphocytes) West Africa, Papua
New Guinea Nasopharyngeal
carcinoma Southern China,
Greenland Human herpesvirus 8 Kaposi sarcoma Central and Southern
Africa
RNA Viruses Retrovirus Family Human T-cell
leukemia virus type I (HTLV-1)
Adult T-cell leukemia/ lymphoma
Japan, West Indies
Human immunodeficiency virus (HIV, the AIDS virus)
Kaposi’s sarcoma (via human herpesvirus 8)
Central and Southern Africa
Flavivirus Family Hepatitis-C virus Liver cancer
(hepatocellular carcinoma)
Worldwide
For all these viruses, the number of people infected is much larger than the number who develop cancer: the viruses must act in conjunction with other factors.
From Alberts B et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p 1130.
TABLE 7.6 Examples of Tumor Suppressor Genes
Gene Cancer
RB Retinoblastoma, sarcoma P53 Li-Fraumeni syndrome, 50% of all tumors DCC Colorectal carcinoma APC Colorectal, stomach, pancreatic BRCA1 Breast, ovarian BRCA2 Breast, ovarian, prostate WT1 Wilms tumor WT2 Rhabdomyosarcoma NF1 Neurofibromatosis type 1, astrocytoma NF2 Neurofibromatosis type 2, meningioma VHL Renal cell carcinoma MEN1 Multiple endocrine neoplasia MTS1 Melanoma, leukemia, sarcomas, several carcinomas SMAD2, SMAD4 Colon, pancreatic PTCH Basal cell carcinoma
128 UNIT II Cellular Function
to survive and continue to replicate (see Fig. 7.10). Genetically unstable cells have a propensity to accumulate more cancer-promoting mutations while they proliferate. The P53 gene is important for therapeutic reasons as well. Chemotherapy- and radiation-induced cell death is mediated in large part by p53. These agents usually do not kill cancer cells directly; rather, they cause enough cellular damage in the target cell to trigger p53-mediated apoptosis. Cancer cells that lack functional p53 may therefore be resistant to some radiation and chemotherapeutic protocols.
BRCA1 and BRCA2 Genes Many tumor suppressor genes have been identified through studies of inherited predisposition to certain types of cancer. The breast cancer genes BRCA1 and BRCA2 are important examples. Women with a family
The P53 Gene The most common tumor suppressor gene defect identified in cancer cells involves P53, so named because of the protein’s molecular mass of 53 kilodaltons (also called TP53). More than half of all types of human tumors lack functional P53. The p53 protein, like pRb, inhibits cell cycling. Unlike pRb, however, normally very little p53 is found in cells, and it accumulates in response to cellular, particularly DNA, damage. P53 is a transcription factor that binds to damaged DNA and regulates hundreds of genes. It stalls cell division, presumably to allow time for DNA repair before DNA replication in the S phase (Fig. 7.10). In the face of excessive damage (or other distress signals), p53 may direct the cell to initiate apoptosis. A defect in p53 function disrupts this important quality control system, allowing genetically damaged and unstable cells
FAMILIAL FORM
PATHOGENESIS OF RETINOBLASTOMA
Somatic cells of parents
Germ cells
Zygote
Somatic cells of child
Retinal cells
Retinoblastoma
SPORADIC FORM
Normal gene
Mutant Rb gene
Mutation
Mutation
Mutation
FIG 7.8 Both DNA copies (alleles) of the Rb tumor suppression gene must be dysfunctional for occurrence of retinoblastoma. Inheriting a defective Rb gene predisposes an individual to the development of cancer because only a single mutational event is required to inactivate pRb function.
CHAPTER 7 Neoplasia 129
Inhibit growth
Phosphorylation of pRb
Activation of cyclins/Cdk
(p16) Release of transcription factors (E2F)
Start S phase
Gene transcription
DNA
Growth factors
(e.g., EGF)
Inhibitory signals
(e.g., TGF-�)
pRb P
P
P
FIG 7.9 The Rb protein functions to bind transcription factors in the nucleus and keep them from participating in the transcription of cell cycle–related genes. pRb is induced to release its hold on the E2F transcription factors when it is sufficiently phosphorylated by cyclin-dependent kinases (cdk). Cyclin-dependent kinases are activated by cyclin proteins that accumulate when growth factors bind to receptors and stimulate growth pathways. Other signals, such as transforming growth factor-β (TGF-β), inhibit the activity of cyclin/cdk through activation of inhibitory proteins such as p16. A loss of pRb function removes the “major brake” on cell division. P, Phosphate group; EGF, epidermal growth factor.
history of breast cancer and an inherited defect in the BRCA1 gene have about a 50% risk of developing breast cancer. The age of onset of inherited breast cancer is earlier than the onset of noninherited (sporadic) forms, and the prevalence of bilateral breast cancer is higher. Inherited forms of breast cancer account for only about 5% to 10% of all cases of breast cancer, but study of the genes involved can provide important insights into breast cancer biology in general.
Defects in numerous other tumor suppressor genes have been identified in certain types of cancers (see Table 7.6), including APC and DCC in colorectal cancer, NF1 and NF2 in neurofibromatosis, and VHL in renal cell cancers. The functions of tumor suppressor genes are varied, but most appear to inhibit proliferation, repair DNA, or induce apoptosis in defective cells. In general, any cellular alteration that promotes proliferation or inhibits cell death can contribute to an increased risk of tumor development.
KEY POINTS • Cancer is thought to develop when proto-oncogenes become inappropriately
activated in a cell or when tumor suppressor genes become inactivated. This change in gene function is usually due to mutations in the cell’s DNA.
• Mutant proto-oncogenes disrupt the intercellular communication pathway that normally regulates cell proliferation. This disruption may occur through abnormal production of growth factors, receptors, cytoplasmic signaling molecules, or nuclear transcription factors.
• Both copies of a tumor suppressor gene usually must be inactivated to eliminate its function. Tumor suppressor genes inhibit cellular proliferation in various ways. The Rb protein serves as a “master brake” on cell proliferation by inhibiting transcription factors. P53 inhibits cell cycling when the cell is damaged to allow time for DNA repair. P53 is also important in initiating apoptosis of damaged or unwanted cells.
MULTISTEP NATURE OF CARCINOGENESIS From the preceding discussion, it might seem that simply activating an oncogene in a normal cell or knocking out a tumor suppressor gene would be sufficient to transform it into a malignant cell. Such has not proved to be the case. Growth regulation of mammalian cells appears to be organized in such a manner that a single aberrant gene is unlikely to induce conversion to full malignancy. Different genes function in distinct ways and may affect only a subset of the changes necessary to achieve full malignancy. For example, introduction of the ras oncogene into normal cells in culture causes them to show anchorage independence, but they are unable to form tumors when inoculated into an animal. Anchorage independence is a typical feature of most transformed cells and means that they are capable of proliferating even if they are not attached to a matrix. Normal cells will not divide and will initiate apoptosis if they do not have a space on the matrix on which to anchor themselves. Similarly, the myc oncogene allows cells to grow indefinitely in culture, but these immortal cells are still unable to induce tumor formation. However, when both the ras and the myc oncogenes are introduced into normal cells, they become fully malignant.
These culture experiments support the clinical observation that carcinogenesis is a multistep phenomenon. The steps of carcinogenesis have been labeled initiation, promotion, and progression (Fig. 7.11).
Initiation Initiating events are thought to be the genetic mutations that inap- propriately activate proto-oncogenes and inactivate tumor suppressor genes. However, the genetic mutations are not evident until the mutant cell proliferates. Proliferation is a requirement for cancer development, and nonproliferating cells are unlikely to cause cancer. It has been suggested that several mutations may be necessary to achieve full malignancy. The development of colorectal cancer is a well-documented example of these sequential changes (Fig. 7.12). Each individual cancer is likely to have its own unique combination of mutations that eventually
130 UNIT II Cellular Function
lead to malignant behavior. Genotyping of tumor cells is an impor- tant development in understanding tumor cells and individualizing therapy.
A number of etiologic agents are considered important initiators of cancer. The term carcinogen is applied to agents and substances capable of inducing cancer. Some carcinogens are complete carcinogens in that they are capable of initiating genetic damage as well as promoting cellular proliferation, whereas many others are only partial carcinogens. Partial carcinogens are often promoters that stimulate growth but are incapable of causing genetic mutations sufficient to initiate cancer by themselves. Examples of known carcinogens are ultraviolet and ionizing radiation, certain viruses, asbestos, and numerous chemicals. Most known chemical carcinogens are encountered through repeated occu- pational exposure (Box 7.1).
Malignant tumor Quiescence/senescenceNormal cells Apoptosis Apoptosis
G1 arrest
Ionizing radiation Carcinogens
Mutagens
Normal cell (p53 normal)
Normal cell (p53 normal)
Cell with mutations or loss of p53
Successful repair Repair fails
No cell cycle arrest
No DNA repair, no senescence
Mutant cells
DNA damage Hypoxia
DNA damage
p53 activated and binds to DNA
DNA damage
p53 activated and binds to DNA
mir-34 transcribed and processed
p53-dependent genes not activated
(apoptosis gene)
Expansion and additional mutations
Transcription dependent and independent effects on targets
GADD45 (DNA repair)
p21 (CDK inhibitor) BAX
Inhibits translation of growth-promoting
genes (i.e, MYC, CDK4)
Inhibits translation of anti-apoptosis
genes (BCL-2)
FIG 7.10 Role of P53 (TP53) in maintaining the integrity of the genome. Damage to DNA in cells with functional P53 stalls the cell cycle so that DNA can be repaired. If repair fails, then the cell undergoes apoptosis to prevent the proliferation of DNA-damaged cells. If the P53 is not functional, genetically unstable cells may be allowed to survive and proliferate.
DNA damage (mutation)
Proliferation (growth promoters)
Development of cancerous phenotype PROGRESSION
PROMOTION
INITIATION
FIG 7.11 Theoretical steps in the development of cancer include initiation, promotion, and progression.
CHAPTER 7 Neoplasia 131
factors. It is not surprising, then, that hormones may act as promoters of certain types of cancer. The relationship between estrogen hormones and breast, ovarian, and uterine cancer is an important example. Epidemiologic studies indicate that the greater the number of menstrual cycles experienced, the higher the risk of these types of cancer developing. Women with early menarche, late first pregnancy, lack of breast-feeding, and late menopause have a greater risk of developing breast, uterine, and ovarian cancer. This enhanced susceptibility is thought to occur in part because of the greater lifetime estrogen exposure. Estrogen is a trophic hormone for these tissues and may therefore be viewed as having promoter effects. Treatment protocols using antiestrogen agents (tamoxifen) indicate that breast cancer risk may be reduced by blocking the effects of estrogen. However, estrogen is not considered to be car- cinogenic and does not cause genetic mutations.
A similar relationship has been identified for prostate cancer and testosterone hormones. In males, testosterone is secreted primarily from the testes under the influence of pituitary gonadotropins. Testosterone is a growth factor for the prostate gland and can act as a promoter of tumor formation in this tissue. This relationship is supported by the fact that therapeutic blocking of testosterone activity in persons with prostate cancer can help shrink the tumor.
Tumor cells frequently produce more than the normal amount of telomerase, an enzyme that allows the cell to repair the ends of the chromosomes (telomeres). Telomere shortening with each cell division normally limits the number of cell cycles in normal cells. Tumor cells must overcome this limit on cell division in order to achieve the immortality required to continue to divide. In the early 1970s it was discovered that normal somatic cells replicate only a finite number of times in culture: fetal cells may replicate approximately 80 times, whereas cells from older individuals divide only 20 or 30 times. Each time a cell divides, it must replicate its DNA, but DNA polymerase is unable to copy the DNA strands all the way to the very tips of the chromosomes (called telomeres). The telomere thus shortens slightly with each cell division until some critical length is reached and cell division stops (see Chapter 4). Stem cells and germ cells produce an enzyme called telomerase that promotes synthesis of the telomere ends and permits these cell types to replicate indefinitely, but normal somatic cells produce little of this enzyme. Most cancer cells begin to synthesize telomerase while they acquire the malignant phenotype, thus rescuing themselves from critical telomere shortening and gaining a mechanism for achieving immortality. In addition, the majority of cancers are deficient in p53 activity, which allows them to escape apoptosis despite gross derange- ments in DNA structure.
Progression Progression is the stage during which the mutant proliferating cells begin to exhibit malignant behavior. The mutations suffered during initiation are not sufficient to cause all the biochemical changes necessary
Promotion Promotion is the stage during which the mutant cell proliferates. The transition from initiation to promotion may involve the activation of another oncogene or the inactivation of a tumor suppressor gene that has kept proliferation in check. Nonmutating factors may also be important in promoting cellular proliferation. Nutritional factors and infection may provide a stimulus for cellular proliferation. As previously described, proliferation is regulated by numerous hormonal growth
FIG 7.12 The development of colorectal cancer illustrates the concept of multistep carcinogenesis. Derange- ment of several genes is likely to occur in most types of cancer. (Redrawn from Alberts B et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p 1126.)
Direct-Acting Carcinogens Alkylating Agents β-Propiolactone Dimethyl sulfate Diepoxybutane Anticancer drugs (cyclophosphamide, chlorambucil, nitrosoureas, and others)
Acylating Agents 1-Acetylimidazole Dimethylcarbamoyl chloride
Procarcinogens That Require Metabolic Activation Polycyclic and Heterocyclic Aromatic Hydrocarbons Benz[a]anthracene Benzo[a]pyrene Dibenz[a,h]anthracene 3-Methylcholanthrene 7,12-Dimethylbenz[a]anthracene
Aromatic Amines, Amides, Azo Dyes • 2-Naphthylamine (β-naphthylamine) • Benzidine • 2-Acetylaminofluorene • Dimethylaminoazobenzene (butter yellow)
Natural Plant and Microbial Products Aflatoxin B1 Griseofulvin Cycasin Safrole Betel nuts
Others Nitrosamine and amides Vinyl chloride, nickel, chromium Insecticides, fungicides Polychlorinated biphenyls
BOX 7.1 Major Chemical Carcinogens
132 UNIT II Cellular Function
METASTASIS Metastasis is the process whereby cancer cells escape their tissue of origin and initiate new colonies of cancer in distant sites. For tumor cells to gain access to the blood or lymphatic circulation, they must first escape the basement membrane of the tissue of origin, move through the extracellular space, and penetrate the basement membrane of the vessel (Fig. 7.14). This process is thought to involve loss of cell-to-cell adhesion and binding to matrix components such as laminin via specific laminin receptors on the tumor cell, followed by release of enzymes such as proteases and collagenases that digest the basement membrane. The cancer cell then squeezes through the rift by ameboid movement. The process is repeated at the vessel basement membrane to access the blood or lymphatic vessel. When the cell reaches the tissue to be colonized, it must again traverse the basement membranes by using similar mechanisms (Fig. 7.15). Once in a new tissue setting, the cancer cell colony must acquire nutrients and a blood supply and cope with an environment that may differ considerably from its origin. In general, less differentiated cancer cells are better able to adapt to foreign tissues and survive.
Patterns of Spread The survival of tumor cells in the circulation is not guaranteed. They may be detected by immune cells and destroyed, or they may undergo apoptosis unless they quickly find a matrix on which to adhere. Fewer than 1 in 10,000 of the cancer cells that enter the circulation survives to form a new tumor at a distant site. Some tumor cell types appear to prefer specific target organs. Sometimes the pattern of metastasis is related to the circulatory flow. For example, metastatic tumors from the colon often seed the liver because they travel within the portal vein. The localization of most metastatic tumors is not so easily explained by blood flow patterns, and some tumor cells appear to “home” to specific targets. This homing tendency is poorly understood but may involve chemotactic signals from the organ to which the tumor cells respond. Cell surface receptors of the integrin and cell adhesion mol- ecule families, which mediate cell-to-matrix and cell-to-cell adhesion, are likely to influence the choice of tissues that cancer cells invade. Dissemination via lymphatics is somewhat more predictable than distribution by blood flow. Generally, the lymph nodes that immedi- ately drain the tissue of cancer origin are colonized first, and then the
for malignant behavior. The proliferating cells are genetically unstable and undergo chance mutations that give them a growth advantage. Clones of mutant cells exhibit a wide variation in phenotype. Phenotype refers to the cell’s traits, such as morphology, metabolism, and biochemi- cal composition. Cells whose phenotype gives them a growth advantage proliferate more readily. With each cycle of proliferation, an opportunity for chance variation arises. In the end, highly evolved tumor cells are generated that differ significantly from their normal ancestors. These cells have developed characteristics such as the presence of laminin receptors, lytic enzymes, and anchorage independence that enable them to behave malignantly.
Cancer cells often have numerous abnormalities of chromosome structure, and the karyotype can be quite bizarre with bits and pieces of chromosomes attached in the wrong places and extra or missing chromosomes. An example of the chromosomes obtained from a typical cancer cell is shown in Fig. 7.13. The color stains are specific for a particular chromosome, and each chromosome pair should be one color.
The fact that conversion from a normal cell type to a malignant cell type requires multiple steps implies many opportunities to intervene in the process. Prevention of the initiating mutation may be difficult inasmuch as carcinogens are ubiquitous; however, therapies to prevent promotion and progression could render the initial mutation harmless. As the biochemical processes governing promotion and progression become clearer, strategies for blocking these stages continue to be developed.
FIG 7.13 Fluorescent images from human colon cancers. (Redrawn from Alberts B et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p 1125. Courtesy of Wael Abdel-Rahman and Paul Edwards.)
KEY POINTS • Full expression of cancer in a host is a multistep process. These steps have
been described as initiation, promotion, and progression. The initiating event is usually from genetic mutations. Promotion refers to the stage in which the mutant cell is induced to proliferate. Progression is the stage during which the mutant proliferating cells acquire properties that allow malignant behavior.
• Malignant cells commonly produce telomerase, an enzyme that repairs the telomeres and may be a key for attaining immortality. The majority also have insufficient p53, which allows the tumor cells to escape apoptosis despite DNA damage.
CHAPTER 7 Neoplasia 133
tumor marker may indicate progression and proliferation of the cancer cells (increased tumor burden). See Table 7.7 for other examples of antigen, hormone, isoenzyme, and immunoglobulin markers used to identify tumor cell types.
Angiogenesis Tumors cannot enlarge more than about 2 mm in diameter unless they grow blood vessels into the tumor mass to provide oxygen and nutrients. Angiogenesis is the process of forming new blood vessels. Most tumors do not induce angiogenesis until late in the stage of cancer development and so remain small and nonvascularized for years. The triggers that spur the cancer to begin angiogenesis are not completely understood. Tumor cells may begin to produce angiogenic factors such as vascular endothelial growth factor (VEGF) in response to hypoxia or other signals. VEGF stimulates proliferation of vascular endothelial cells, which then migrate to the tumor and orchestrate blood vessel development. Meta- static tumors must also initiate angiogenesis in their new locations or they will not survive. Therefore inhibition of angiogenesis is an important therapeutic goal to limit tumor growth and metastasis and continues to be an area of active research.
tumor cells tend to spread contiguously from node to node. Hodgkin disease, a lymphoma, is particularly noted for its orderly spread via the lymphatics.
Because tumor cells exhibit various degrees of differentiation or resemblance to the parent tissue of origin, it may be difficult to determine the metastatic cancer’s tissue of origin. Tumor markers are substances associated with tumor cells that may be helpful in identifying their tissue type. Identification of the tissue of origin has important implica- tions for prognosis and selection of treatment options. Tumor markers rely on the retention of at least some characteristics of the parent tissue type. Some tumor markers are released into the circulation, whereas others must be identified through biopsy of the metastatic tissue. Enzymes and other proteins that are specific to a particular cell type are commonly used as tumor markers. For example, production of thyroglobulin protein is specific for thyroid tumor cells. Melanoma cells express the antigens HMB-45 and S-100, which is helpful in identification as melanocytes. Unfortunately, most tumor markers are not specific for cancer because the normal cells in the tissue of origin also produce them. Tumor markers are most useful as indicators for further diagnostic evaluation and to track the tumor activity. An increasing blood concentration of a specific
Clonal expansion, growth, diversification, angiogenesis Transformed cell
PRIMARY TUMOR
METASTATIC TUMOR
Host lymphocyte
Platelets
Basement membrane
Metastatic subclone
Adhesion to and invasion of basement membrane
Passage through extracellular matrix
Intravasation
Interaction with host lymphoid cells
Tumor cell embolus
Adhesion to basement membrane
Extravasation
Metastatic deposit
Angiogenesis
Growth
FIG 7.14 The metastatic cascade of events.
134 UNIT II Cellular Function
location and pattern of spread of a tumor within the host. Factors such as tumor size, extent of local growth, lymph node and organ involvement, and presence of distant metastases are considered. Several staging systems exist; however, the international TNM (tumor, node, metastasis) system is used extensively as a general framework for staging tumors. Particular staging criteria vary with tumors in different organ systems. An example of staging criteria for breast cancer is shown in Table 7.8.
In the past, tumor staging was based primarily on results of radiogra- phy and exploratory surgery. The availability of computed tomography (CT), magnetic resonance imaging (MRI), positron emission tomography (PET), and other highly sophisticated imaging techniques has revolu- tionized cancer detection. These imaging modalities allow noninvasive
Grading and Staging of Tumors Grading and staging of tumors are done to predict the clinical behavior of a malignant tumor and to guide therapy. Grading refers to the histologic characterization of tumor cells and is basically a determination of the degree of anaplasia. Most grading systems classify tumors into three or four classes of increasing degrees of malignancy. A greater degree of anaplasia indicates a greater malignant potential. The correlation between the grade of the tumor and its biological behavior is not perfect. Some low-grade tumors have proved to be quite malignant.
The choice of treatment modality is usually influenced more by the stage of the tumor than by its histologic grade. Staging describes the
LamininType IV collagen
Basement membrane
Cadherins
A. LOOSENING OF INTERCELLULAR JUNCTIONS
Laminin receptor
C. ATTACHMENT
Type IV collagen cleavage
Type IV collagenase
Plasminogen activator
B. DEGRADATION
D. MIGRATION
Fibronectin receptor
Autocrine motility factor
Fibronectin
Type IV collagen Laminin
FIG 7.15 Mechanisms of tumor invasion allow tumor cells to escape the site of origin, penetrate the basement membrane, and travel to distant sites. A, Tumor cells decrease cell-to-cell attachments via cadherins that allow detachment and migration toward the basement membrane. B, Enzymes that degrade proteins are released into the area to form a rift. C, The tumor cell migrates away from the site of origin using laminin and fibronectin receptors to pull through the tissue. D, Finally the cell moves through a rift in the matrix.
CHAPTER 7 Neoplasia 135
KEY POINTS • Malignant cells produce specialized enzymes and receptors to enable them
to escape their tissue of origin and metastasize. • The spread of tumors generally occurs by way of the bloodstream or lymphat-
ics. Tumor cells often lodge in the capillary beds of the organs that drain them, such as liver and lung. Some tumors appear to “home” to certain tissues.
• Grading and staging are done to predict tumor behavior and guide therapy. Grading is the histologic characterization of tumor cells, whereas staging describes the location and pattern of tumor spread within the host.
• The TNM (tumor, node, metastasis) staging system is used to describe the tumor size, lymph nodes affected, and degree of metastasis.
TABLE 7.7 Selected Tumor Markers
Hormones Human chorionic gonadotropin Trophoblastic tumors,
nonseminomatous testicular tumors Calcitonin Medullary carcinoma of thyroid Catecholamine and metabolites Pheochromocytoma and related tumors Ectopic hormones Paraneoplastic syndromes
Oncofetal Antigens α-Fetoprotein Liver cell cancer, nonseminomatous
germ cell tumors of testis Carcinoembryonic antigen Carcinomas of colon, pancreas, lung,
stomach, and heart
Isoenzymes Prostatic acid phosphatase Prostate cancer Neuron-specific enolase Small cell cancer of lung,
neuroblastoma
Specific Proteins Immunoglobulins Multiple myeloma and other
gammopathies Prostate-specific antigen and
prostate-specific membrane antigen
Prostate cancer
Mucins and Other Glycoproteins CA-125 Ovarian cancer CA-19–9 Colon cancer, pancreatic cancer CA-15–3 Breast cancer
Cell-Free DNA Markers p53, APC, and RAS mutants in
stool and serum Colon cancer
p53 and RAS mutants in stool and serum
Pancreatic cancer
p53 and RAS mutants in sputum and serum
Lung cancer
p53 mutants in urine Bladder cancer
TABLE 7.8 American Joint Committee on Cancer and Union Contre Le Cancer Staging*
Stage T: Primary Cancer N: Lymph Nodes M: Distant Metastasis 10-Year Survival (%)
0 DCIS or LCIS No metastases Absent 92 I Invasive carcinoma ≥2 cm No metastases or only
micrometastases Absent 87
II Invasive carcinoma >2 cm 1–3 positive nodes Absent 65 Invasive carcinoma >5 cm but ≤5 cm 0–3 positive nodes Absent
III Invasive carcinoma >5 cm Negative or positive nodes Absent 40 Any size invasive carcinoma ≥4 positive nodes Absent Invasive carcinoma with skin or chest wall
involvement or inflammatory carcinoma Negative or positive nodes Absent
IV Any size invasive carcinoma Negative or positive lymph nodes Present 5
DCIS, ductal carcinoma in situ; LCIS, lobular carcinoma in situ; M, metastasis; N, nodes; T, tumor. *The groups listed in the table are based on the characteristics of the primary carcinoma and the axillary lymph nodes. For rare women with involved internal mammary lymph nodes or supraclavicular lymph nodes, there are additional staging criteria. From Kumar V, Abbas A, Aster JC: Neoplasia. In Kumar V, Abbas A, Aster JC, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 1068.
exploration of the tissues of the entire body. The computer-generated images can then be scrutinized for any signs of abnormality that might signal the presence of hidden tumors. CT and MRI rely primarily on detection of differences in tissue density and are therefore not totally specific for tumors. They can, however, guide the selection of sites for exploration and biopsy and potentially reduce unnecessary surgery. PET is a promising staging technology because it facilitates cancer detection based on molecular and biochemical processes within the tumor tissues (Fig. 7.16). PET may be used in certain clinical situations in which CT has known limitations, such as differentiation of benign from malignant lymph nodes or other lesions, differentiation of residual tumor from scar tissue, or detection of unsuspected distant metastases.
Antibodies can also be used to locate cancer cells in the body. Antibodies can be raised against specific antigens present on the surface of tumor cells. The antibodies are also bound to a tracer (e.g., a radioac- tive isotope such as iodine-125), which can be detected by imaging. Because methods for identifying tumor antigens and raising specific antibodies have improved, this technology provides the potential for finding very small numbers of tumor cells hidden in the body.
The results of the staging procedure will determine which of the mainstays of cancer treatment—surgery, radiation therapy, or chemotherapy—may be used, singly or in combination, to destroy the cancer cells. Localized tumors may be managed with surgery and radiation therapy, whereas evidence of metastasis generally necessitates the addition of chemotherapy.
136 UNIT II Cellular Function
the cancer cells or immune cells. Cancer patients may have aversions to specific foods and may feel full after only a few bites. Nausea and vomiting are common complications of cancer therapy and contribute to decreased nutrient intake. Despite the minimal nutrient intake, body metabolism remains high. Production of tumor necrosis factor and other immune cytokines is thought to be important in producing the hypermetabolic state. Nutrients are mobilized from fat and protein stores in the body and consumed by the hypermetabolic cells (see Chapter 42). Some patients may require nutritional supplementation by enteral or parenteral routes.
Individuals with cancer often demonstrate deficits in immune system competence. Cancer cells secrete substances that suppress the immune system. Individuals with cancer may have reduced populations of T and B cells and may respond poorly to injected antigens. The mechanisms by which cancer cells depress immune responses are varied, but the prognosis for cancer recovery is poorer when the immune system is depressed. Immune cells, including cytotoxic T cells and natural killer
Change in bowel or bladder habits A sore that does not heal Unusual bleeding or discharge Thickening or lump in breast or elsewhere Indigestion or difficulty swallowing Obvious change in wart or mole Nagging cough or hoarseness
BOX 7.2 Cancer’s Seven Warning Signs
Continued, unexplained weight loss Headaches with vomiting in the morning Increased swelling or persistent pain in bones or joints Lump or mass in abdomen, neck, or elsewhere Development of whitish appearance in pupil of the eye Recurrent fevers not caused by infections Excessive bleeding or bruising Noticeable paleness or prolonged tiredness
BOX 7.3 Cancer’s Warning Signs in Children
FIG 7.17 General emaciated appearance in cancer cachexia. (Courtesy Dr. P. Marazzi/Science Photo Library.)
FIG 7.16 PET scan that detects uptake of radioactively labeled glucose is overlaid onto a CT scan background image. The yellow spots in the abdomen and mediastinum are indicative of multiple metastases of non-Hodgkin lymphoma. (From Alberts B et al, editors: Molecular biology of the cell, ed 6, New York, 2015, Garland Science, p 1092. Courtesy Dr. Sanjiv Sam Gambhir.)
EFFECTS OF CANCER ON THE BODY The effects of cancer on the host vary widely, depending on the location of the tumor and the extent of metastasis. Early-stage cancer may be asymptomatic. As the tumor increases in size and spreads through the body, a number of symptoms typically become apparent, including pain, cachexia, immune suppression, and infection. Once treatment has begun, patients may also suffer hair loss and sloughing of mucosal membranes. The ACS has published the seven warning signs of cancer as a way of encouraging the public to seek early evaluation of potential cancers (Box 7.2). The presentation of cancer in children differs from that in adults, and special warning signs have been identified for the pediatric population (Box 7.3).
Pain is a common and feared complication of the disease process. Pain may be due to invasion of metastatic cells into organs or bone and subsequent activation of pain and pressure receptors in these tissues. Tissue destruction and inflammation may contribute to cancer pain. Cancer treatment may contribute to overall pain because of procedures requiring biopsy and intravenous drug administration. Pain can usually be controlled through the use of analgesics. The use of patient-controlled analgesia has been effective in reducing patient fears of inadequate therapy for pain (see Chapter 47).
Cachexia refers to an overall weight loss and generalized weakness (Fig. 7.17). Many factors contribute to cancer cachexia, including loss of appetite (anorexia) and increased metabolic rate. Anorexia accom- panies many disease processes and may result from toxins released by
CHAPTER 7 Neoplasia 137
KEY POINTS • Regardless of the type of malignancy, affected individuals exhibit characteristic
signs and symptoms, including pain, cachexia, bone marrow suppression, and infection.
• Bone marrow suppression is manifested as anemia, leukopenia, and thrombocytopenia.
• Immunosuppression with consequent infection is a primary cause of cancer- associated death.
If left untreated, cancer has the potential to kill the host. The cause of death is multifactorial. Infection, hemorrhage, and organ failure are the primary causes of cancer death. The failure of cancer-ridden organs such as the liver, kidney, brain, and lung results in the loss of life- sustaining functions. Treatment for cancer can also be detrimental to the host by contributing to immunosuppression and platelet deficiencies. The cumulative effects of one or more of these factors may lead to death.
(NK) cells, are needed to actively detect and destroy cancer cells (see Chapter 9).
Bone marrow suppression contributes to the anemia, leukopenia, and thrombocytopenia that often accompany cancer. Bone marrow suppression may be due to invasion and destruction of blood-forming cells in the bone marrow, poor nutrition, and chemotherapeutic drugs. Anemia refers to a deficiency in circulating red blood cells. In addition to decreased production of blood cell precursors in the bone marrow, anemia may result from chronic or acute bleeding. The signs and symptoms of anemia, such as fatigue, increased heart rate, and increased respiratory rate, are related to a decrease in oxygen-carrying capacity.
Leukopenia refers to a decrease in circulating white blood cells (leukocytes). Malignant invasion of the bone marrow is a primary cause of leukopenia, with malnutrition and chemotherapy being contributing factors. A deficiency in white blood cells reduces the patient’s ability to fight infection, which is a major cause of morbidity and mortality in cancer patients. Often the offending organism is opportunistic; it is unable to infect an immunocompetent host and becomes virulent only when a person is immunocompromised. Infections are quite difficult to manage because the host is unable to mount an effective immune response. Infections are also difficult to prevent because the majority of the infecting organisms are from the patient’s own endogenous flora (e.g., skin, gastrointestinal tract). The development of severe leukopenia or infection during treatment may necessitate changes in the chemo- therapeutic regimen to allow bone marrow recovery.
Thrombocytopenia is a deficiency in the number of circulating platelets, which are important mediators of blood clotting. Platelet deficiencies predispose to life-threatening hemorrhage. A platelet count of less than 20,000/mm3 has been associated with spontaneous hemorrhage.
Anemia, leukopenia, and thrombocytopenia may be managed by administration of blood products containing red blood cells, white blood cells, and platelets, respectively. In fact, blood replacement therapy is used more often in cancer patients than in patients with any other medical condition. When chemotherapy is terminated, stem cells in the bone marrow generally recover and the production of blood cells resumes. In some cases, the production of red and white blood cells can be enhanced by treating the patient with specific growth factors, such as erythropoietin (Epogen) or granulocyte-stimulating factors (Neupogen).
Hair loss and the sloughing of mucosal membranes are complications of radiation therapy and chemotherapy. Treatment is designed to kill the rapidly proliferating cancer cells, but normal cells with high growth rates such as mucosal epithelia and hair follicle cells are also damaged. Damaged mucosa is a primary source of cancer pain and anorexia, and may provide a portal for the invasion of organisms from the skin or gastrointestinal tract.
Paraneoplastic syndromes are symptom complexes that cannot be explained by obvious tumor properties and occur in 10% to 15% of patients with cancer. Many of the syndromes are associated with excessive production of hormones or cytokines by the tumor. Common para- neoplastic syndromes include (1) hypercalcemia, (2) Cushing syndrome secondary to excess adrenocorticotropic hormone (ACTH) secretion, and (3) hyponatremia and water overload secondary to excess antidiuretic hormone (syndrome of inappropriate ADH) secretion. Small cell carcinoma of the lung is commonly the culprit for excess ACTH and ADH syndromes. Hypercalcemia (elevated concentration of serum calcium) is a paraneoplastic syndrome associated with abnormal produc- tion of parathyroid hormone–related protein by the tumor cells. Unexplained hypercalcemia is regarded as evidence of cancer until proven otherwise. Hypercalcemia may be a consequence of metastatic bone cancer, and in this case it would be an expected finding rather than a paraneoplastic syndrome.
CANCER THERAPY The overall 5-year survival rate for patients with cancer is approximately 68%, with some types of cancer having much higher or lower rates. Early detection of cancer, while it remains localized in the tissue of origin, is associated with the best prognosis for cure. Cure implies eradication of all cancer cells in the body and is different from the 5-year survival rate. Patients with metastatic invasion of regional lymph nodes still have a good opportunity for cure with appropriate therapy. Widespread invasion of multiple tissues and organs is associated with a poor prognosis, and therapy may be aimed at remission or palliation of symptoms rather than cure. The mainstays of cancer therapy are surgery, radiation therapy, and drug therapy. In some hormone-sensitive tumors (breast, prostate), hormonal-blocking drugs may be used.
Immunotherapy and targeted molecular therapies have begun to emerge as important treatments for specific cancers. Traditional forms of treatment are not selective for cancer cells and result in unavoidable damage to normal tissue. The immune system, on the other hand, is noted for its ability to make subtle distinctions between normal and abnormal or foreign cells. Recognition of tumor cells as different from their normal counterparts is the basis of tumor immunology. Recognition depends on the expression of abnormal molecules or antigens on the cancer cell surface. Unfortunately, most tumor-associated antigens are also expressed to some degree on normal cells, which makes it difficult to develop strategies to target cancer cells selectively. However, genetic analysis of a tumor sometimes can give clues to potential and unique therapeutic targets. Ultimately, the choice of treatment depends largely on the results of the staging procedure. A greater degree of metastasis generally requires a more aggressive therapeutic approach.
Surgery The majority of patients with solid tumors are treated surgically, which can be curative in some localized cancers. The main benefit of surgery is removal of a tumor with minimal damage to other body cells. The surgeon generally removes a margin of normal-appearing tissue around the resected tumor to ensure complete tumor removal. Lymph nodes are subjected to biopsy and also removed if evidence of metastasis is present. Surgical resection of some tumors can be tricky if vital structures such as neurons or blood vessels are involved.
Surgery involves risks related to the effects of anesthesia, infection, and blood loss. The surgical procedure may be disfiguring or may result in loss of function. Surgical resection as the sole treatment for solid
138 UNIT II Cellular Function
particularly those of the bone marrow, intestinal epithelia, and hair follicles, are most affected. Bone marrow depression is a most serious side effect inasmuch as it predisposes the patient to anemia, bleeding, and infection.
New approaches to cancer drug therapy have emerged that indirectly inhibit tumors rather than seeking to eradicate tumor cells directly. One approach is to interrupt the tumor’s blood supply. To proliferate, solid tumors must be supplied by a progressively expanding network of capillaries. The development of new capillaries, called angiogenesis, is accomplished by migration and growth of endothelial cells. Antian- giogenic drugs block the development of new capillaries.
Immunotherapy Harnessing the power of the immune system to fight cancer is a par- ticularly appealing idea because of the potential for specificity. Current modes of immunomodulation primarily involve the use of interferons, interleukins, and monoclonal antibodies. These therapies are generally used as adjuncts to surgery, irradiation, and chemotherapy.
Interferons are glycoproteins produced by immune cells in response to viral infection. Interferons inhibit cell proliferation and are stimulatory to NK cells, T cells, and macrophages. Interferon-α has been used successfully to treat hairy cell leukemia (a rare B-cell malignancy), chronic myelogenous leukemia, and multiple myeloma. Interferon therapy produces symptoms similar to those of a viral infection: fever, chills, and muscle aches.
Interleukins are peptides produced and secreted by white blood cells. They are also called lymphokines or cytokines. Interleukin-2 (IL-2) is an important cytokine secreted by activated T helper cells. It stimulates the proliferation of T cells, NK cells, and macrophages. IL-2 can be used to stimulate the growth of these immune cells in culture. Immune cells taken from a patient’s blood can be grown in culture in the presence of IL-2. Then the greatly expanded number of immune cells can be given back to the patient, along with intravenous infusions of IL-2. Such treatment has been associated with regression of some tumors (melanoma, renal cell carcinoma). However, because IL-2 toxicity is high and many individuals have severe allergic reactions, the benefit of therapy must be weighed against the risks for each individual situation.
The use of monoclonal antibodies (antibodies having identical structure) in cancer therapy is currently the subject of intense investiga- tion. Monoclonal antibodies specifically bind with target antigens and can therefore be used in several ways as treatment for cancer. Antibodies can be used to deliver a cytotoxic drug preferentially to the cancer cell and thus minimize drug interactions with normal cells. Similarly, antibodies can be used to direct other cytotoxic cells, such as NK and T cells, to tumor cells lurking in the body. Antibodies can be attached to a radioactive label and injected into a patient to screen for recurrence of tumor growth. Antibodies can also be directed against cells that support tumor growth.
Monoclonal antibodies have been developed for management of several cancers. For example, nearly 25% of breast cancers have over- expression of the HER2 receptor on the surface of malignant cells. The monoclonal antibody trastuzumab specifically binds to this HER2 protein and helps immune cells find and kill the tumor cells. A summary of selected monoclonal antibody agents and their main tumor protein targets is shown in Fig. 7.18.
Gene and Molecular Therapy Because cancer is fundamentally a disorder of gene function, the use of gene therapy to alter the malignant behavior of cells may have high therapeutic potential. As specific gene derangements are identified for particular tumors, gene therapy may be used to suppress overactive
tumors is curative in a minority of patients because most patients already have undetectable metastases at the time of diagnosis. Therefore surgical resection is commonly accompanied by radiation therapy or chemo- therapy. Even one remaining cancer cell could be sufficient to reinitiate tumor formation.
Radiation Therapy Ionizing radiation is used for two principal reasons: to kill tumor cells that are not resectable because of location in a vital or inaccessible area and to kill tumor cells that may have escaped the surgeon’s scalpel and remain undetected in the local area. Radiation kills cells by damaging their nuclear DNA. Cells that are rapidly cycling are more susceptible to radiation death because there is little time for DNA repair. Radiation doses generally do not kill cells directly, but cause enough cell damage to initiate apoptosis. The P53 tumor suppressor gene is an important mediator of this response. Many tumors have mutant P53 and may be less susceptible to radiation-induced cell death.
It is difficult to kill all the cells of a large tumor by irradiation because they are heterogeneous—they are in different phases of mitosis and are cycling at different rates. A single radiation dose large enough to kill all the tumor cells would be sufficient to kill the normal cells as well. Radiation is often administered in smaller doses over several treatments and is most effective at eradicating small groups of tumor cells. It is often used in combination with surgery. Radiation is also useful for palliative reductions in tumor size. Pain from bone and brain tumors may be effectively managed with radiation therapy that shrinks the tumor. Tumors with bleeding surfaces may be coagulated with radiation to decrease blood loss.
A certain degree of destruction of normal cells in the irradiated field is expected with radiation therapy. Radiation is best used when tumor cells are regionally located. Total-body irradiation to kill tumor cells in disseminated locations is not recommended because of the likelihood of life-threatening tissue damage, although it may be used in preparation for bone marrow or peripheral stem cell transplantation.
Drug Therapy Chemotherapy generally refers to the systemic administration of anticancer chemicals as treatment for cancers that are known or suspected to be disseminated in the body. Unlike surgery or radiation therapy, which is locally or regionally applied, parenterally administered che- motherapeutic drugs can find their cancer cell targets in areas throughout the entire body.
Most chemotherapeutic agents are cytotoxic because they interfere with some aspect of cell division. The more rapidly dividing cells are more susceptible to the killing effects of chemotherapeutic agents. In a large tumor mass, the rates of cell division are highly diverse, with many slowly dividing cells. At any one time, only a portion of the tumor cells are in a cell cycle stage that is susceptible to chemotherapy. Several courses of chemotherapy are generally necessary to ensure that all tumor cells have been killed. It is difficult to kill slowly cycling tumor cells without also killing normal cells that are cycling at approximately the same rate. Small tumors are easier to eradicate because rates of cell division are generally faster. To prevent relapse, the “stem” cells that develop into clones of malignant cells must be destroyed. Unfortunately, stem cells may not divide as rapidly as other cells. Resection or irradiation to reduce tumor size may prompt the stem cells to divide, thus making them more susceptible to chemotherapy. Tumor cells with mutations of the P53 gene may be resistant to chemotherapeutic agents that work by damaging DNA, so drugs that act by interfering with the cancer cell cycle in other ways may be more effective.
Chemotherapeutic agents are not selective for tumor cells, and a certain amount of normal cell death also occurs. Rapidly dividing cells,
CHAPTER 7 Neoplasia 139
Rituximab 90Y-lbritumomab tiuxetan
131I-Tositumomab
Gemtuzumab ozogamicin
Alemtuzumab
Imatinib Dasatinib
Trastuzumab Lapatinib
Cetuximab Panitumumab Erlotinib Gefitinib
Sorafenib Sunitinib
Bevacizumab
BCR-A BL
Hematologic malignancies
Solid tumors
VEGF
CD5 2
VEGFR
CD 33
EGFR
CD 20
HER2/neu
FIG 7.18 Cancer cells express abnormal antigens (tumor-associated antigens) on their cell surface that can activate immune cells or be used as targets for monoclonal antibodies. Numerous medications are now available that use monoclonal antibodies to target cellular proteins relevant to several different types of cancer.
Molecular therapies that target cytoplasmic signaling pathways have also been developed. For example, in chronic myelogenous leukemia a chromosomal rearrangement results in the abnormal production of an enzyme, BCR/ABL. This enzyme stimulates cell proliferation and contributes to the overproduction of leukemic cells. An agent that specifically inhibits this enzyme (imatinib) has dramatically improved the management of this disease. Other drugs that specifically target abnormal tumor characteristics continue to be developed.
Stem Cell Transplantation Transplantation of hematologic stem cells is used to manage life- threatening disorders in which the patient’s bone marrow is incapable of manufacturing white blood cells, red blood cells, or platelets. Most often, nonfunctional marrow is a consequence of the high-dose che- motherapy and radiation used to manage hematologic malignancies such as leukemia and lymphoma. Stem cell transplantation also has been applied to other malignancies (e.g., breast cancer) and to non- malignant disorders (e.g., aplastic anemia, sickle cell anemia, and thalassemia). Stem cells can be harvested from aspirates of bone marrow or from the donor’s peripheral bloodstream. Bone marrow is rich in stem cells, but the peripheral blood is poor. The stem cell donor can be a tissue-matched individual (allogeneic), an identical twin (syngeneic), or the patient in question (autologous). A closer match between donor and recipient is associated with a better outcome.
oncogenes or replenish missing tumor suppressor function. Current uses of gene therapy for cancer include genetic alteration of tumor cells to make them more susceptible to cytotoxic agents or immune recogni- tion, and genetic alteration of immune cells to make them more efficient killers of tumor cells.
Tumor cells can also be made more recognizable to immune cells by insertion of genes that cause the tumor cells to express “foreign” proteins on their cell surface. This type of gene therapy has shown some benefit in melanoma and renal carcinoma. Replacement of genes for P53 is an attractive therapy because tumor cells would be more susceptible to apoptosis. Gene replacement of other tumor suppressors such as pRb or APC in those tumors that are deficient could help inhibit tumor proliferation.
Gene therapy can be directed at cells other than tumor cells to enhance the body’s cancer defenses. One such approach involves harvest- ing immune cells from the cancer patient, inserting IL-2 genes, and then returning the genetically enhanced immune cells to the patient. The enhanced immune cells attack the tumor cells more vigorously than normal immune cells do and have been shown to persist in the body for 6 months or longer.
At present, gene therapy is limited by difficulty in delivering the new genes to the target cells. As methods improve, gene therapy will become an increasingly important part of cancer prevention and management.
140 UNIT II Cellular Function
Before infusion of donor stem cells, the patient’s own immune cells must be suppressed to prevent transplant rejection. It is also necessary to eliminate any residual malignant cells from the body to avoid relapse of the cancer. Both of these objectives can be accomplished through high-dose chemotherapy and total-body irradiation regimens, which leave the patient susceptible to severe anemia, infection, and bleeding. The therapeutic goal of stem cell transplantation is to restore immune and hematopoietic function. It may take weeks to months for the infused stem cells to reestablish themselves and begin to proliferate in their new host. During this time, the transplant recipient requires intensive monitoring and management of complications.
The success of stem cell transplantation depends on a number of factors, including the age of the patient, closeness of tissue matching, stage of cancer, and general health status of the patient before transplanta- tion. Transplantation is an expensive undertaking, but may significantly improve disease survival rates in some malignancies.
KEY POINTS • Early detection of cancer while it remains localized is associated with the
best prognosis for cure. The overall 5-year survival rate for patients with cancer is about 68%.
• The mainstays of cancer therapy are surgery, radiation therapy, and che- motherapy. Surgery and radiation therapy are effective for cancers that are localized. Chemotherapy is usually the treatment of choice for cancers known or suspected to be disseminated in the body.
• Cells that divide rapidly are the most susceptible to damage from radiation therapy or chemotherapy. However, in addition to cancer cells, rapidly dividing normal cells may be killed. Cells of the bone marrow, hair follicles, and gastrointestinal mucosa are particularly susceptible.
• Immunotherapy has the potential to specifically target cancer cells. Numerous monoclonal antibodies have been developed to boost the immune system’s ability to locate and destroy cancer cells.
• Gene and molecular therapy may be used to alter cancer cells to suppress oncogenes, enhance tumor suppressor genes, make tumor cells more susceptible to cytotoxic agents, or interfere with the function of cancer gene products.
• Transplantation of hematopoietic stem cells is an important adjunct to cancer therapy that provides a method to restore bone marrow function after high-dose irradiation or chemotherapy.
Neoplasia is abnormal cell proliferation of a benign or malignant nature. Benign tumors resemble their parent cells and are strictly local, whereas malignant tumors are anaplastic, invade local tissues, and may spread to distant sites (metastasize). The most important consideration for cancer management is the degree of cancer spread in the body, which can be determined by staging procedures. Cancer is managed by surgical removal, radiation therapy, chemotherapy, and immunotherapy.
Cancer cells have complex relationships with the host. The host immune system is capable of—but not always successful in—recognizing and killing cancer cells. Cancer cells exert immunosuppressive effects on the host and eventually cause pain, cachexia, and bone marrow suppression. If untreated, cancer has the potential to kill the host by multifactorial processes, including infection, hemorrhage, and organ failure. If treated, cancer has an overall 5-year survival rate of approxi- mately 68%.
Cancer is an outcome of genetic predispositions and environmental carcinogens. Tobacco use and improper nutrition are the two most
studied carcinogenic lifestyle factors. Tobacco is clearly carcinogenic through its ability to cause genetic damage and to promote the growth of mutant cells.
Cancer is thought to develop when proto-oncogenes become inap- propriately overactivated in the cell or tumor suppressor genes become inactivated. This change in activation is usually due to a mutational event in the cell’s DNA. Oncogenes are believed to disrupt intercellular communication, which normally exerts growth-controlling effects on the cell. This disruption is accomplished primarily through the production of abnormal growth factors, growth factor receptors, cytoplasmic signaling molecules, or nuclear transcription factors that allow the cancer cell to manufacture its own growth-promoting signals. The tumor suppressor genes Rb and P53 are important inhibitors of cell replication. The Rb protein binds and sequesters transcription factors, whereas p53 monitors the integrity of cellular DNA and may initiate apoptosis (cell suicide) when significant cell damage occurs. Loss of tumor suppressor gene function occurs in most cancers.
S U M M A R Y
RESOURCES Cancer Epidemiology Albanes D, et al: Effects of alpha-tocopherol beta-carotene cancer prevention
study. Am J Clin Nutr 61:S1427–S1430, 1995. Alberts B, et al: Cancer. In Alberts B, et al, editors: Molecular biology of the
cell, ed 6, New York, 2015, Garland Science, pp 1091–1144. American Cancer Society: Cancer facts and figures—2015, Atlanta, GA, 2015,
Author. American Cancer Society: Cancer prevention and early detection facts & figures
2015-2016, Atlanta, GA, 2015, Author. Goodman M, Bostick RM, Kucuk O, Jones DP: Clinical trials of antioxidants
as cancer prevention agents: past, present, and future. Free Radic Biol Med 51(5):1068–1084, 2011.
Kumar V, Abbas A, Aster JC: Neoplasia. In Kumar V, Abbas A, Aster JC, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, pp 265–340.
Omenn GS, et al: Risk factors for lung cancer and for intervention effects in CARET, the beta-carotene and retinol efficacy trial. J Natl Cancer Inst 88(21):1550–1559, 1996.
Cancer Biology Cuzick J, DeCensi A, Arun B, et al: Preventive therapy for breast cancer: a
consensus statement. Lancet Oncol 12(5):496–503, 2011. Dulbecco R: Cell transformation by viruses. Science 166:962–968, 1969. Hayflick L: The biology of human aging. Adv Pathobiol 7(2):80–99, 1980. McCann J, Ames BN: Detection of carcinogens as mutagens in the
Salmonella/microsome test: assay for 300 chemicals: discussion. Proc Natl Acad Sci USA 73:950–955, 1976.
Paradiso A, Formenti S: Hereditary breast cancer: clinical features and risk reduction strategies. Ann Oncol 22(Suppl 1):I31–I36, 2011.
Weinberg RA: Tumor suppressor genes. Science 254:1138–1146, 1991.
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UNIT III Defense
Infectious Processes Brent A. Banasik
8
K E Y Q U E S T I O N S • How does the human microbiome regulate the environment of
mucosal surfaces and protect from pathogens? • What are opportunistic infections, and when do they develop? • What conditions compromise host defenses against
microorganisms? • What factors influence the virulence of infectious agents?
• How do environmental factors such as climate, poverty, global travel, and bioterrorism influence the risk of infectious diseases?
• What are the important microorganisms that affect humans, including bacteria, viruses, fungi, and parasites, and how do differences in structure and life cycle affect infectious processes?
C H A P T E R O U T L I N E Host–Microbe Relationship, 142
The Human Microbiome, 142
Host Characteristics, 142
Physical and Mechanical Barriers, 142 Impaired Immune Function, 143
Pathogen Characteristics, 144
Adherence and Invasion, 144 Bacterial Endotoxin, 144 Bacterial Exotoxins and Enzymes, 145 Evasion of Immune Cells, 145 Endospore Formation, 145 Antimicrobial Resistance, 145
Transmission of Infection, 147 Routes of Transmission, 148
Emerging Infectious Diseases, 148
Weapons of Bioterrorism, 149
Types of Pathogenic Organisms, 149 Bacteria, 149
Viruses, 150
Fungi, 151
Parasites, 152
http://evolve.elsevier.com/Banasik/pathophysiology/
Infectious diseases can be caused by a variety of pathogenic microorgan- isms when they gain access to the body through skin and mucous membranes. The importance of maintaining the integrity of these surface barriers and protecting them from contamination has been an important principle of infection control since the days of Florence Nightingale. Only recently have researchers come to realize that the human body is teeming with a staggering number of diverse microorganisms that outnumber the cells in the human body by more than tenfold! This so-called microbiome is important for protection against transient pathogens, but is also a ready source of opportunistic organisms should the immune system be altered.
A variety of pathogens inhabit different environments such as hospitals, the food supply, water, animals, and humans. Globaliza- tion of the world’s population and extensive travel by air have had major implications for the worldwide spread of infectious agents, sometimes even before the infected individual becomes symptomatic or identifiable.
Medications that inhibit the immune response in populations such as transplant or cancer patients and the increasing use of immu- nomodulators for treatment of diseases like rheumatoid arthritis increase the likelihood of infections. Excessive use of antibiotics in humans and domesticated animals has contributed to the emergence
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
142 UNIT III Defense
affected by diet, hormones, medications, and metabolism. Each individual is therefore likely to have a different microbiome depending on where they live, what they eat and drink, what medications they take, their genetics, and with whom they come into contact. Understanding the microbiome ecosystem and finding ways to modulate it to advantage is an active area of research. Not all commensal organisms are bacteria, although the most research has been on the microbiome of the gastrointestinal tract, which contains numerous bacterial species. The majority of gut microbiota are known phyla, such as Actinobacteria, Firmicutes, and Bacteroidetes; however, about 25% of an individual’s diverse niches throughout the body are unknown. Recent research suggests that the average individual houses 1000 to 1150 different bacterial species and contains more than 100-fold as many genes than the human host’s genome. Bacteria have been detected in fetal umbilical cord, meconium, and amniotic fluid, suggesting that the complex colonization of commensal bacteria develops prebirth and not just during the birthing process. Commensal microbiota development in infants after delivery is quite rapid and dependent on many sources, including introduction of maternal microbiota via feces from the gastrointestinal tract through vaginal delivery; microflora from cesarean section and breast milk; and environmental inoculum from the air, hospital staff, and eventually from consuming solid foods.
Often recognized as a gram-negative pathogen, Escherichia coli was determined to be among the first commensal microbes that inhabit the infant gut and contribute to broad-spectrum immunity and reduced infections. The harmony of human microbiota can be drastically affected by probiotic or antibiotic usage. Traditionally, probiotics have been administered as gastrointestinal remedies, but recent research has linked them to prevention and treatment of many diseases that include immune and atopic disease, obesity, and even diabetes. It is commonly accepted that antibiotics disrupt gut microflora and provide a niche for enteric pathogens to take root in their absence. In addition, recent research suggests that indigenous commensal bacteria unexpectedly translocated across the gut epithelium in the presence of antibiotics induced an inflammatory response and epithelial injury that led to pathogen growth.
The development of infection in a host depends on complex relation- ships among environmental exposure, host susceptibility, and microbial virulence (Fig. 8.1).
Host Characteristics The host’s defense system is responsible for identifying, repelling, and eliminating pathogens while minimizing injury to its own tissues. Innate cells that recognize a wide variety of pathogens on first exposure accomplish initial responses to pathogens. Innate responses are generally most efficient against bacterial and parasitic infections, but not effective against viral antigens on first exposure. The specific cells of the immune system—B cells and T cells—are able to respond to viral antigens as well as other foreign invaders, but generally take days to weeks to become effective. With subsequent exposure these cells are able to mount such a robust response that the host may not become ill. Innate and specific immune responses can be modified by the characteristics of the host, including genetics; age; metabolism; and anatomic, physiologic, and environmental factors (Table 8.2). Host immune systems are discussed in greater detail in Chapter 9.
Physical and Mechanical Barriers Intact physical barriers act as a blockade to foreign material entering the body (Fig. 8.2). Epithelial cells of the skin and those that line the gastrointestinal, genitourinary, and respiratory tracts form sheets that provide a physical barrier to invasion. The constant shedding of the epidermis and mucosal membranes aids in the removal of any micro- organisms that attach to their surfaces. In addition, the high fat content
of treatment-resistant infections. Health care professionals have a vital role in the prevention, early detection, and management of infections.
HOST–MICROBE RELATIONSHIP Microorganisms interact with human hosts in different ways depending on host and microorganism characteristics. Some microorganisms may be encountered in food or water and are of little consequence as they pass through the host without causing harm and without establishing residence in the host. These are called transient microorganisms (Table 8.1). The normal flora that have established long-term residency with the host but do not cause harm, and may even benefit the host, are called commensal. Sometimes commensal organisms may cause oppor- tunistic infections when they gain access to parts of the body where they do not belong or when the host’s immune system is depressed. Other opportunists may be low-virulence, ubiquitous types of organisms that do not cause disease in humans with normal immune systems and only occur in the immunosuppressed. Microorganisms that frequently cause diseases in humans with normal immune defenses are called pathogens. Human pathogens are passed from one human reservoir to another human, either directly or through a fomite (e.g., contaminated instruments, contaminated food). Sometimes humans come into contact with pathogens that do not usually affect humans, through insect or animal bites, for example. These accidental pathogens (see Table 8.1) may cause severe disease in humans.
The Human Microbiome The relationship between the host and the commensal organisms that live in residence is a complex and diverse one that could affect and be
TABLE 8.1 Definitions of Microorganism– Host Interactions Transient A microorganism that is encountered in food
or elsewhere in our environment. In general, it is just “passing through” and of little consequence; however, regular encounters over extended periods might lead to host adaptation or even dependence.
Commensal (literally, those that “eat at the same table”)
A microorganism that is a normal inhabitant of the human body. In commensal relationships, either the microbe or host derives benefit; in mutualistic relationships, both derive benefit.
Pathogen (derived from the Greek, pathos, meaning the “birth of suffering”)
A microbe that may or may not be a member of the indigenous microbiota, but it regularly causes disease in apparently normal individuals.
Opportunistic pathogen A microbe that causes disease only in humans who are in some way compromised in their normal defense mechanisms.
Accidental pathogen A microorganism that is encountered by accidental contact with animals, insects, or the environment. These microorganisms are often deadly in humans and sometimes the causative agent of disease in other animals. These microbes are often distinguished from human-specific pathogens because they are not directly or readily transmissible from human to human.
CHAPTER 8 Infectious Processes 143
of the body’s secretions, where it acts to bind up and prevent entry of microorganisms through mucous membranes. (See Chapter 9 for a discussion about immunoglobulins.)
Removal or degradation of the body’s mechanical and biochemical barriers creates a setting in which infection is likely. For example, burn victims who have lost portions of their skin barrier are at high risk for infection. Destruction and paralysis of the mucocilliary transport system of the lung by smoke inhalation or by insertion of breathing tubes increases the likelihood that pathogens can cause pneumonia. Hospital- ized patients who have incisions or intravenous and urinary catheters are at risk for infection because their skin barrier has been breached. When a urinary catheter is in place, flushing of bacteria from the urinary tract is impaired. Procedures or diseases that allow organisms to leak from the bowel into the peritoneal cavity are a particularly serious breach of a barrier that can result in life-threatening peritonitis.
Impaired Immune Function Impaired function of the immune system is an important risk factor for the development of both opportunistic and pathogenic infections. Immunosuppressive drugs used in the treatment of cancer, autoimmune disorders, and inflammatory disorders are common culprits. However, many other factors can reduce a person’s ability to resist infection, including poor nutritional status, young or old age, and chronic illness. A person who is at high risk for infection must be vigilant to maintain physical barriers and avoid exposures to pathogens through environ- mental controls, including avoidance of infected persons and diligent handwashing. Severely immunocompromised individuals may require isolation until their immune status improves.
Nutritional status. The World Health Organization (WHO) reports that inadequate nutrition is a general risk factor for disease and is a particularly important factor in tuberculosis (TB) infection. Protein- energy malnutrition is associated with defects in cell-mediated immunity (specific), impaired intracellular destruction by neutrophils, reduced complement activity, and decreased levels of secretory IgA. At the time of an illness, nutrition is negatively affected by decreased appetite, mal- absorption, diarrhea, and diversion of nutrients for immune responses, further exacerbating a malnourished state. The presence of fever increases the metabolic rate, requiring more energy and micronutrients. Protein
Mechanical barriers
Phagocytes
Biochemical mediators
Biochemical barriers
Acute illness
Fever Stress
Toxins
Encapsulation
Adhesins
Spore formation
Slime layer
Flagella Enzymes
Pili
Age
Nutrition
Sanitation
Water quality
Crowded living conditions
Weather
Air quality
Seasons
Hygiene
Arthropod bite
Mutation
Chronic illness
ENVIRONMEN T
MICROBE
HOST
FIG 8.1 This depiction of the interactions of host, microbe, and environ- ment provides a framework for understanding infectious processes.
TABLE 8.2 Host Characteristics Influencing Infection
Exposure Host Health
Animals, humans, insects, parasites
Environmental Water, toxins, pollutants, radiation,
sewage Hygiene Toileting, handwashing, dental care,
bathing Social Behaviors Illicit drug use, alcohol, smoking,
risk taking: sexual, sports Travel Exposure to vectors in undeveloped
countries
Intact immune system Absence of chronic disease such as
diabetes Absence of genetic abnormality Nutritional Status Adequate intake of proteins,
vitamins, and minerals Antibiotic Exposure Recent use, noncompletion of
course Development of resistance or
allergy
BIOCHEMICAL AND MECHANICAL
BIOCHEMICAL
Lysozyme in most
secretions Mucus
Cilia lining tracheaSebaceous
gland secretions
Vaginal secretions
Resident flora in gut and
vagina
Skin
Acid in stomach
Prostatic and testicular secretions
FIG 8.2 Some of the mechanical and biochemical barriers of the human body.
of the skin inhibits the growth of bacteria and fungi. The mucous membranes are covered with sticky mucus that traps microorganisms so that they can be removed efficiently. In the lungs, the mucociliary transport system constantly sweeps trapped organisms up and out of the lungs. In the urinary tract, the frequent flow of urine helps mechani- cally sweep out bacteria from the urethra.
Biochemical barriers enhance the effectiveness of the mechanical barriers. The acidic environment of the skin, urine, and vagina inhibits bacterial growth. The secretion of acid into the stomach (with a pH of 1 to 2) results in the killing of many microorganisms. Saliva, mucus, tears, and sweat contain antimicrobial chemicals such as lysozyme, an enzyme that destroys cell walls of gram-positive bacteria. Lactoferrin is a mucosal protein that keeps bacterial replication low by reducing the availability of free iron needed for bacterial growth. Sebaceous gland secretions act as antifungals. Immunoglobulin A (IgA) is found in many
144 UNIT III Defense
host by direct exposure to the altered pathogen without causing disease. The second is to decrease the number of susceptible hosts in the popula- tion, thereby limiting the possibility of transmission of the disease. By this method, known as herd immunity, the disease can be controlled or eliminated without immunizing everyone, as long as a high enough percentage of the population is immunized. The number of susceptible hosts in the population decreases as immunization rates increase. When a critical percentage of the susceptible population is immunized, disease outbreaks can be averted. If the percentage of adequately immunized individuals drops, epidemics may result.
Depending on the immunogenicity of the vaccine, several doses spaced at intervals may be necessary to allow for continued development of an antibody level sufficient to prevent disease. Recent outbreaks of whooping cough (pertussis) and measles have occurred in the United States in areas where the immunization rate has dropped. Perhaps predictably, when vaccines have been effective in preventing diseases for a number of decades, younger parents have not seen the consequences of these diseases and therefore may not feel compelled to vaccinate their children. The Centers for Disease Control and Prevention (CDC) is an important source for tracking infectious disease outbreaks and provides updates and recommendations for immunizations for adults, children, and travelers (www.cdc.gov).
Pathogen Characteristics Pathogens possess certain characteristics that assist in their penetration and survival in the host despite the presence of an intact defense system. Virulence is the term used to describe the potential of microorganisms to cause disease in the host. Microorganisms with high virulence cause disease in human hosts even when their immune systems are intact. Low-virulence organisms have a reduced ability to cause disease and are less likely to cause illness unless other factors favor them, such as immune defects or loss of physical barriers. Bacterial virulence depends on the ability to adhere to host cells, to invade tissues, or to deliver toxins.
Adherence and Invasion The ability to adhere to the contact surface is critical for the success of a microorganism. This ability is affected by the surface hydrophobicity, the net surface charge, the binding molecules on the bacteria (adhesions), and the interaction with the host cell membrane. Many bacteria, such as E. coli, have pili, which are hairlike structures that extend from the bacterial cell wall and help increase attachment of the bacteria to host cells (Fig. 8.3). Other bacteria, such as Streptococcus pyogenes, have hairlike appendages called fimbriae that extend from the cell surface and promote attachment. Most pathogenic bacteria remain outside of the cells, but some are able to enter host cells by binding to particular proteins on the cell surface, such as complement receptors (C3b). Intracellular bacteria may kill the host cell or may remain dormant and hidden from the immune system for a time.
Development of a microbial slime layer also facilitates adherence and improves survival of the pathogen. A thin layer of peptidoglycan is created that can participate in the development of pili or flagella on some organisms.
Bacterial Endotoxin Some bacteria produce substances that are toxic to the host. Some of these bacteria secrete their toxins (see later), and others contain the toxin within the cell wall (endotoxin). Endotoxin is a lipopolysaccharide (LPS) in the membrane of gram-negative bacteria that is highly immunogenic and attracts immune cells to the area of infection and induces the production of inflammatory cytokines (Chapter 9).
malnutrition frequently occurs because of the lack of available clean and safe food.
Micronutrients are also important in immune function. Vitamin A contributes to maintenance of the epithelium, and vitamin E is an antioxidant that supports the development and function of T cells. Vitamin D supports innate and adaptive immunity and promotes immune protection against TB by increasing macrophage defenses. Decreased availability of zinc results in a reduction in neutrophil and natural killer cell function, complement activity, and lymphocyte activity. Iron deficiency is associated with decreased cell-mediated immunity and reductions in neutrophil action. Iron deficiency is one of the most common deficiencies worldwide.
Age. Age affects immune responsiveness as well as the likelihood of exposures to infectious agents. Viruses such as mumps, polio, or Epstein–Barr virus (EBV) cause less severe infection in infants, whereas others such as rotaviruses result in severe illness in infants. These age- related factors may reflect the availability of immune factors or the maturity of the immune system. T-cell function appears to be impaired in newborns, with the majority of the immune response provided by maternal IgG that crossed the placenta. As this immunity fades over approximately the first 6 months of life, these newborns are more at risk of serious infection. Those infants who are breast feeding will obtain secretory IgA, which does provide additional protection. Immunity tends to decline in the elderly, resulting in reduced antibody responses to new antigens. The immune system may become dysregulated in the elderly, as evidenced by the increased frequency of autoimmune diseases with age.
Chronic illness. Chronic illnesses such as diabetes, cancer, heart disease, and renal failure are associated with an increased risk of infection. Deaths in patients with chronic illnesses are frequently directly related to an infectious process. It is difficult to separate the various immune- suppressing components that accompany chronic illness because malnutrition and medications may play a part. Specific chronic illnesses may create a milieu in which pathogens take hold. For example, patients with hyperglycemia often develop genitourinary infections, in part because of the high glucose in the urine. Poor circulation to an area because of vascular disease can also limit the ability of the tissue to withstand infection and may impair the ability of immune cells to gain access to the area. The physiologic response to chronic stress is thought to contribute to risk for infection. Neurohormonal alterations lead to changes in the levels of cortisol and other stress hormones that may affect immune responsiveness (see Chapter 2).
Patients with poorly functioning or inadequate numbers of immune cells are particularly at risk for a wide variety of infectious diseases. Infection with opportunistic organisms that are usually not pathogenic is an indicator that a person is immunocompromised. The immunocompromised status might be a result of genetic disorders (such as hypogammaglobulinemia) or may be acquired (such as in patients who have undergone a splenectomy or have human immunodeficiency virus [HIV]). The prevalence of people with medication-induced immunosuppression is increasing. Antirejection medications such as corticosteroids, cyclosporine, and tacrolimus contribute to immuno- suppression in transplant patients. People who take corticosteroids and immunomodulators to suppress inflammatory and autoimmune diseases are also at high risk of infection. HIV disease is an important chronic condition that predisposes to a variety of other infections (see Chapter 12).
Immunization status. Immunization is the most effective means to reduce morbidity and mortality from vaccine-preventable diseases, such as hepatitis A, hepatitis B, influenza, and pneumococcal infections. There are two goals of immunization: The first is to confer immunity to a
CHAPTER 8 Infectious Processes 145
Endospore Formation Several of the bacteria are capable of creating endospores. In response to the depletion of nutrients such as carbon, nitrogen, or phosphorus, the cell forms an internal spore. These spores are in a resting state that is markedly resistant to heat, chemical agents, and desiccation. When the environment is more favorable, spores are reactivated. Common bacteria with this ability include Bacillus and Clostridium.
Antimicrobial Resistance At least eight mechanisms of bacterial resistance to drugs are known: 1) Enzymatic inhibition: Bacteria can produce enzymes that inactivate drugs (e.g., β-lactamase can inactivate penicillins). 2) Reduced perme- ability: Bacteria can reduce the permeability of their membranes to the antibiotic by down-regulation or loss of specific water-filled pores called porins that drugs use to enter the bacterial cell. 3) Alteration of target site: Bacteria can create a modified target that is no longer as susceptible to the antibiotic. For example, a number of antibiotics bind to bacterial ribosomes to interrupt protein synthesis, but bacteria may change the binding site of the ribosome (by methylation, for instance) so that the drug no longer binds. 4) Protection of target site: Bacteria may produce new proteins that protect or stabilize the target against the drug. 5) Overproduction of target: Simply producing a large quantity of targets within the bacteria can make them resistant by binding up the drug to target, yet having a surplus of target that can maintain activity. 6) Bacteria can employ an export mechanism that uses an ion gradient (H+) to actively pump out the drug. 7) The bacteria can develop a workaround to bypass the process that is affected by the drug. For example, the bacteria may develop a way to obtain needed substrates from the environment rather than producing them. 8) Bacteria may develop a molecule (e.g., glycoprotein) to bind up the antibiotic before it has a chance to affect the bacterial cell processes. Usually these resistant properties develop by chance mutations in the organisms; however, some bacteria may be able to transmit their resistance to other bacteria through gene transfer.
Resistant infections occur because of natural, random genetic dif- ferences in the population of organisms that affect their susceptibility to antibiotics. The susceptible strains die, and the resistant strains emerge after exposure to antibiotics, creating a drug-resistant infection. Antibiot- ics do not cause mutations in bacteria and therefore don’t cause resistance; however, excessive use of antibiotics and subtherapeutic dosing contribute to the emergence of resistant infections. Relatively resistant microorgan- isms survive a low-dose antibiotic course to become the dominant species and may then be transmitted to other individuals. Generally, when the antibiotic is no longer present, the resistant strains no longer have a growth advantage and will diminish.
The rapid development of antibiotic resistance in bacteria can occur when bacteria transmit their resistance genes to other bacteria. Bacteria are subjected to infections of their own in the form of plasmids and bacteriophages that can transfer genes between microorganisms. These mobile genetic elements can be transmitted through conjugation (bacterial sexual reproduction) or by infection of the bacteria (bacte- riophages). The possibility of transfer of microbial resistance through mobile genetic elements is a greatly feared outcome that could produce virulent, multidrug resistant strains quite rapidly. More resistant bacteria in the environment because of antibiotic use increase the chance that mobile genetic elements could be transferred among them. Some common pathogens and their mechanisms of antimicrobial resistance are shown in Table 8.3. Susceptibility of a bacterial infection to particular antibiotics can be evaluated by culture and sensitivity testing. An example of common sensitivity testing results is shown in Box 8.1.
Unfortunately, when endotoxin is released by immune destruction of the bacteria, the resulting immune activation can have profound effects on the host, causing septic shock, intravascular coagulation, and respira- tory failure (see Chapter 20 for a discussion of shock).
Bacterial Exotoxins and Enzymes Exotoxins are secreted by some types of bacteria and can cause havoc, even when the bacteria that made the toxin are no longer present. Neurotoxins produced by Clostridium botulinum and Clostridium tetani interfere with synaptic transmission at the neuromuscular junction, resulting in paralysis and respiratory failure. Like endotoxin (LPS), some secreted exotoxins are extremely good at activating the immune system to such a degree that the immune response can cause shock. For example, Staphylococcus aureus antigens can cause toxic shock syndrome.
Some bacteria produce tissue-degrading enzymes. These enzymes degrade certain body tissues, promoting continued disease. For example, S. aureus secretes coagulase, which coagulates plasma and contributes to the formation of fibrin walls around the lesions caused by these bacteria. This allows the bacteria to persist in the cellular environment. The coagulase also causes deposits of fibrin on the bacteria itself, leading to improved protection from phagocytosis.
Other bacteria produce hyaluronidase, which is an enzyme that breaks down hyaluronic acid. This acid is present in connective tissue. This action helps disseminate the bacteria through the tissues. Some bacteria are able to produce substances that are cytolysins. These cytolysins can dissolve red blood cells, tissue cells, or leukocytes. For example, group A streptococci produce streptolysin O, which lyses red blood cells.
Evasion of Immune Cells Some bacteria develop an outside coating on their surface to prevent phagocytosis. The coating can be made of host cell components or a polysaccharide capsule. Some bacteria form interactive colonies that produce a polysaccharide matrix called biofilm. This slimy coating on solid surfaces can involve a single species or several species. These bacteria can be difficult to dislodge and may be hidden and protected from the host’s immune mechanisms. An important and well-known example is the biofilm that forms on tooth enamel, commonly called plaque.
FIG 8.3 Bacterial pili increase properties of adherence and may increase virulence. (From Rosenshine I, et al: A pathogenic bacterium triggers epithelial signals to form a functional bacterial receptor that mediates actin pseudopod formation. The EMBO Journal, 1996;15(11): 2613–2624.
146 UNIT III Defense
TABLE 8.3 Resistance Mechanisms Found in Common Bacterial Pathogens
Pathogen Resistance Phenotype Major Resistance Mechanism
Streptococcus pneumoniae
β-Lactams Alteration of target enzymes (PBPs) Macrolides, lincosamides, streptogramin B Alteration of ribosomal target sites (methylation of adenine residue in
domain V of 23S rRNA—ermB); efflux (mefE) Tetracycline Protection of ribosomal target site (tetM) Trimethoprim and sulfonamides Alteration of target enzymes (dihydrofolate reductase–trimethoprim;
dihydropteroate synthase—sul1, sul2 in sulfonamines) Fluoroquinolones Alteration of target enzymes (DNA gyrase—gyrA mutations; topoisomerase
IV—parC mutations) Staphylococcus aureus β-Lactams Enzymatic inhibition (penicillinase production)
Penicillin Methicillin, oxacillin, nafcillin, and cephalosporins
(MRSA)
Alteration of target enzyme—PBP2a (mecA)
Glycopeptide GISA Alteration of cell wall precursor targets (thickened cell wall binds drug, preventing it from reaching its target)
GRSA Alteration of cell wall precursor targets (plasmid-mediated transfer of vanA genes from VRE, resulting in d-ala-d-lac peptidoglycan precursors)
Enterococci β-Lactams (ampicillin) Alteration of target enzymes (PBP5 in Enterococcus faecium); enzymatic inhibition–rare (penicillinase in E. fecalis)
Aminoglycosides Altered ribosomal target site mutations, enzymatic inhibition (high-level resistance: aminoglycoside-modifying enzymes)
Vancomycin Alteration of cell wall precursor targets (high-level resistance: VanA, B, D phenotypes; low-level resistance: VanC, E, G phenotypes)
Linezolid Alteration of ribosomal target sites (G2576U mutation in domain V of 23S rRNA)
Quinupristin-dalfopristin Enzymatic inhibition; efflux; target modification (E. faecium) Neisseria gonorrheae Penicillins PPNG: enzymatic inhibition (plasmid-acquired penicillinase); CRNG: altered
target enzymes (PBPs) Fluoroquinolones Alteration of target enzymes (DNA gyrase; topoisomerase IV); efflux
(MtrR-CDE efflux system) Tetracycline Protection of ribosomal target (tetM gene) Macrolides Efflux; alteration in ribosomal targets (C2611T mutation in domain V of the
23S rRNA) MDR Efflux (MtrR-CDE system: penicillin, tetracycline, macrolides)
Pseudomonas aeruginosa β-Lactams Enzymatic inhibition (AmpC cephalosporinases, extended-spectrum β-lactamases, metallo-β-lactamases); active efflux (MexAB); reduced outer membrane permeability (loss of OprD channel)
Aminoglycosides Enzymatic inhibition (aminoglycoside-modifying enzymes); efflux (MexXY); alteration of ribosomal targets (ribosomal methylation)
Fluoroquinolones Efflux (MexAB, CD, EF, XY, GH, VW); alteration of target enzymes (DNA gyrase mutations—gyrA)
MDR Overexpression of the MexA-MexB-OprM active efflux system (resistance to quinolones, tetracyclines, and trimethoprim)
Acinetobacter baumannii β-Lactams Enzymatic inhibition (AmpC cephalosporinases, plasmid-acquired β-lactamases of the TEM, SHV, CTX-M, PER, VEB families, metallo-β- lactamases of the IMP, VIM, SIM families, and OXA-type serine carbapenemases); alteration of target enzymes (PBPs); reduced outer membrane permeability; efflux pumps
Aminoglycosides Enzymatic inhibition (aminoglycoside-modifying enzymes); efflux pumps Quinolones Efflux pumps Tigecycline Efflux pumps
Stenotrophomonas maltophilia
β-Lactams Impermeable outer membrane Enzymatic inhibition (inducible metallo-β-lactamases L1, L2)
TMP-SMX Alteration in sulfonamide target enzymes (sul1, sul2 genes—associated with plasmids or class 1 integrons)
Fluoroquinolones Alteration of target enzymes (DNA gyrase mutations); efflux pumps MDR MDR efflux pump (smeDEF confers resistance to tetracycline, erythromycin,
chloramphenicol, norfloxacin, ofloxacin)
CHAPTER 8 Infectious Processes 147
TRANSMISSION OF INFECTION The transmission of microorganisms requires an unbroken chain of events to enable one host to transmit the infection to another (Fig. 8.4). Pathogens must live and reproduce in a reservoir. The reservoir may be a human, as in the influenza virus; an animal, as in rabies; an
TABLE 8.3 Resistance Mechanisms Found in Common Bacterial Pathogens—cont’d
Pathogen Resistance Phenotype Major Resistance Mechanism
Klebsiella pneumoniae β-Lactams Enzymatic inhibition (constitutive expression of penicillinases; extended- spectrum β-lactamases; KPC, NDM-1 carbapenemases); decreased outer membrane permeability
Fluoroquinolones Alteration of target enzymes (DNA gyrase mutations—gyrA); efflux; protection of target site (plasmid-mediated qnr genes)
Aminoglycosides Enzymatic inhibition (aminoglycoside-modifying enzymes); alteration of ribosomal targets (ribosomal methylation)
Bacteroides spp. β-Lactams Enzymatic inhibition (chromosomally encoded CepA cephalosporinases; metallo-β-lactamases); efflux (homologues of RND-pumps); alteration in drug targets (PBPs)
Macrolides, lincosamides, streptogramin B Alteration of ribosomal targets Tetracycline Protection of ribosomal target (tetQ); efflux Quinolones Alteration of target enzymes (DNA gyrase mutations—gyr A); efflux
CRNG, Chromosomally resistant N. gonorrheae; CTX-M, cefotaxime-M; GISA, glycopeptide intermediate S. aureus; GRSA, glycopeptide-resistant S. aureus; IMP, imipenem; KPC, K. pneumoniae carbapenemase; MDR, multidrug resistance; MRSA, methicillin-resistant S. aureus; MtrR, multiple transferable resistance; NDM-1, New Delhi metallo-β-lactamase–1; PBPs, penicillin-binding proteins; PER, Pseudomonas extended resistance; PPNG, penicillinase-producing N. gonorrheae; RND, resistance-nodulation-cell division; rRNA, ribosomal RNA; SHV, sulfhydryl variable; SIM, Seoul imipenemase; TEM, Temoneira; TMP-SMX, trimethoprim-sulfamethoxazole; VEB, Vietnam extended-spectrum β-lactamase; VIM, Verona integron-encoded metallo-β-lactamase; VRE, vancomycin-resistant enterococci. From Bennett J, Dolin R, Blaser, M: Mandell, Douglas, and Bennett’s principles and practice of infectious diseases, ed 8, Philadelphia, 2015, Saunders, p 247.
KEY POINTS • A number of microorganisms are considered resident flora because they
live on or in the host without causing disease. Resident flora and probiotics benefit the host by synthesizing molecules and inhibiting the growth of nonresident microorganisms. If the host’s immune system is compromised, resident flora may become pathogenic and cause opportunistic infection.
• Microorganisms possess characteristics that enhance their pathogenic potential. Adherence is improved by the presence of adhesion molecules, slime layers, and pili. Escape from immune detection and destruction is enhanced by encapsulation, spore formation, mutation, use of flagella, and toxin production. Microorganisms that possess these advantageous char- acteristics are more virulent and thus more likely to cause disease.
• Drug resistance occurs when microorganisms undergo chance mutations that allow them to survive in the presence of an antibiotic. When the antibiotic is present, these resistant strains emerge to become the dominant species in an individual and may be transmitted to others, causing resistant infections.
• Immunizations alter the susceptibility of the host by stimulating the immune system to create antibodies to the pathogen.
Culture Urine Colony Count Specimen Source Urine Result > 100,000 Organisms/mL Escherichia coli Report Status Final
Susceptibility Testing Cefazolin Susceptible Gentamicin Susceptible Levofloxacin Susceptible Minocycline Susceptible Nitrofurantoin Susceptible Oxacillin Susceptible Trimethoprim/Sulfa Resistant Vancomycin Susceptible
BOX 8.1 Example of the Results of Bacterial Culture and Sensitivity Testing
Human Animal Insect Soil
Nasal mucosa Oral mucosa
Nasal mucosa Oral mucosa Skin abrasion Skin puncture
Insect bite Nasal droplets Semen
Malnourished Unimmunized Immune compromised
RESERVOIR
RESERVOIR
PORTAL OF EXIT
PORTAL OF EXIT
PORTAL OF ENTRY
PORTAL OF ENTRY
MODE OF TRANSMISSIO N
M O
D E
O F TRANSMISSION
SUSCEPTIBLE VICTIM
S U S CEPTIBLE VICTIM
FIG 8.4 Chain of transmission of microorganisms from host to victim.
insect, as in West Nile virus; or soil, as in enterobiasis (pinworm infestation). The pathogen must have a portal of exit and a mode of transmission from the reservoir to a susceptible host, where it finds a portal of entry. Some microorganisms can survive outside the reservoir for a time, whereas others must be transmitted from host to host by direct contact.
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Mosquito eradication Garbage disposal Sewage treatment
Masking Gloving Isolation Condom use
MaskingGloving Condom use
Sterile techniq ue
Body substan ce isolation
Hand washing
Thorough coo king of food
Vaccination Optimal rest Optimal nutrition
DESTROYING
RESERVOIR
BLOCKING
BLOCKING
BLOCKING
PORTAL OF EX IT
PORTAL OF ENTRY
M O D E OF TRANSM
IS SI O
N
VIC TIM’S SUSCEPTIB ILI T Y
REDUCING
FIG 8.5 Breaking the chain of transmission of microorganisms from host to victim.
Routes of Transmission There are three common routes of direct transmission of pathogens. The most common is through the exchange of body fluids (droplets) from kissing or sexual intercourse. In this type of transmission, droplets are spread from an infected host to the conjunctiva or mucous membranes of a second host. The second type of direct transmission occurs from the bite of an animal (e.g., rabies) or from contact with contaminated soil (e.g., systemic mycosis). The third type of direct transmission occurs through the placenta when diseases such as HIV are transmitted directly to the fetus. This is called vertical transmission.
Indirect transmission occurs as vehicle-borne, vector-borne, or airborne transfers. A vehicle-borne transfer occurs when an infectious agent is transported to the host. The vehicle could be food, water, clothing, plasma, or tissues. The agent does not require any development or multiplication and is delivered without change with the vehicle. Airborne transmission occurs with aerosols, including suspensions of particles (smaller than the size of droplets), which can be carried great distances from the source for transmission. Examples are outbreaks of measles and legionnaires disease. Vector-borne transmission can occur as a mechanical or biological transfer. The mechanical transfer occurs when an insect carries an infectious agent on its feet or proboscis. In this transfer the agent does not require multiplication or development before transfer. This is in contrast to biological vector-borne transport. In this type of transmission, the agent propagates and there is cyclic development before the arthropod can transmit the disease.
Control of the spread of infectious disease depends on breaking the chain of transmission in one or more places (Fig. 8.5). Therefore it is critical to understand the life cycle and transmission patterns (epidemiol- ogy) of different pathogens—a top priority of the CDC. An infectious disease that has a fairly constant presence in a community and changes little from year to year, such as the sexually transmitted disease Chlamydia, is classified as endemic. A significant increase in new infections in a certain population, such as a measles outbreak at a university, is termed an epidemic. An epidemic that has spread to a large geographic area is a pandemic. The bubonic plague, which caused 100 million deaths worldwide in the 1300s, was a pandemic.
Destroying nonhuman reservoirs and vectors of the pathogen can break the chain of transmission. For example, controlling the number of mosquitoes with insecticides and other biological means is a method used to curb the spread of malaria and West Nile virus. Immunization
of domesticated animals against rabies eliminates one reservoir of potential rabies transmission. Distribution of clean needles in the intravenous drug user community is aimed at removing a common transmission vector (contaminated needles) for HIV, the causative pathogen responsible for acquired immunodeficiency syndrome (AIDS).
Blocking the portal of exit can also block transmission of the pathogen. Having patients with TB wear face masks while they move through the hospital and implementing respiratory isolation techniques to stop transmission are interventions aimed at blocking the portal of exit. Standard precautions are infection-control guidelines designed to block the pathogen’s portal of exit, route of transmission, and portal of entry. Handwashing is one of the most effective ways to break the chain of transmission by blocking an important mode of transmission— contaminated hands.
Multiple environmental factors affect the prevalence and transmission of various infections and infestations. For example, parasitic infections are facilitated by hot and humid climates, overcrowded living conditions, the presence of insect vectors in bed linen or clothing, improper sewage disposal or treatment (such as the use of raw human sewage as fertilizer), the lack of clean water, and the consumption of contaminated raw or undercooked meat or vegetables.
Infections may be transmitted by inhalation of polluted dust or air. For example, the fungus Coccidioides immitis, which causes valley fever, is pandemic in the southwestern United States. Toxoplasmosis is caused by inhalation or ingestion of dirt, sand, or litter dust contaminated with cat feces that contain the causative protozoon Toxoplasma gondii. The plague is still a disease of concern in many countries. It is caused by the bacterium Yersinia pestis, which is carried by a rodent flea. There are multiple examples of foodborne illness such as Salmonella, with outbreaks related to improper processing, storage, or cooking of meats and raw produce.
Emerging Infectious Diseases Pathogens can spread faster and in greater numbers due to global transport networks and world travel. Global growth, migration, and tourism are largely responsible for the threat of locally emergent diseases to escalate toward large-scale pandemics. For example, coronaviruses (CoVs) are general respiratory tract infections that infect a wide range of mammals and are symptomatic of the common cold. Recently, however, certain CoV infections, such as severe acute respiratory syndrome (SARS-CoV) in 2002 and Middle East respiratory syndrome (MERS-CoV)
CHAPTER 8 Infectious Processes 149
TYPES OF PATHOGENIC ORGANISMS A large number of different types of microorganisms pose an infection risk for humans (Fig. 8.6). The chapter thus far has focused mainly on bacterial pathogens. Many bacterial infections are treatable with antibiot- ics, and there is much focus on them for that reason. Viral infections are difficult to treat effectively, and the primary focus has been on finding vaccines for them. Fungal and parasitic infections are also important contributors to human disease, particularly in immunocompromised hosts and in areas with contaminated water supply. Prion infection is from a protein and not an organism at all. Each of these infectious agents is discussed briefly, with a focus on common causes of infection.
Bacteria Bacteria are single-celled, rigid-wall organisms that have no internal organelles (Fig. 8.7). Some live in the intestines of humans or other animals and participate in digestion. Others live in the soil and are responsible for its fertility. They degrade dead tissue into useful components for other organisms to use. Among the countless types of bacteria that exist, only a small percentage is known to be harmful to humans. Some bacteria that are associated with infections of various sites are shown in Box 8.2.
Bacteria have a variety of shapes, including cocci (spherical), bacilli (rod-shaped or comma-shaped rods, e.g., Pseudomonas aeruginosa vibrio), or spiral (twisted rod shaped, e.g., Spirillum). Those classified as cocci are also seen in clusters, chains, pairs, or tetrads. The majority of bacteria that cause disease in humans are one of these true bacteria. Filamentous bacteria may have branching structures that resemble fungi. Mycobac- terium tuberculosis would be an example.
Spirochetes (the majority of which are anaerobic) possess a motile spiral filament (e.g., Treponema pallidum). Bacteria of the genus Mycoplasma do not have a rigid cell wall and are pleomorphic (many formed) in shape. They are some of the smallest of the bacteria; an example is Mycoplasma pneumoniae, which causes an atypical pneu- monia. Rickettsia is a genus consisting of intracellular parasites that can have a variety of shapes. Vectors usually spread this group; for example, Rocky Mountain spotted fever is caused by Rickettsia rickettsii and transmitted by ticks. Chlamydia are also intracellular parasites, but have a more complex life cycle, with Chlamydia trachomatis as an example.
Bacteria are classified not only by morphology (shape) but also by the response to gram staining. Gram staining separates bacteria into gram-positive organisms, which appear dark purple under the micro- scope; gram-negative organisms, which appear pink; or acid-fast organisms, which resist staining but, once stained, resist discoloration. Further differentiation of bacteria is based on nutritional requirements (such as whether the organism is anaerobic or aerobic), on colony characteristics, and on resistance.
in 2012, emerged as serious diseases in humans. The SARS and MERS viruses emerged from zoonotic animal-to-human transmission and caused serious and sometimes fatal lower respiratory infections. The WHO reported that SARS infected 8096 people, resulted in 774 deaths, and was spread globally by human-to-human contact from 2002 until its eradication in 2004. MERS virus has claimed 291 lives of 837 confirmed cases since 2012 and has remained at large with unknown pathology in humans (WHO last reported July 23, 2014).
The single largest Ebola outbreak to date was documented in March 2014 in Guinea, West Africa. By August 8, 2014, the outbreak had spread to neighboring regions and was declared an epidemic and an international public emergency by the WHO. The WHO reported on September 13, 2015, that Ebola virus had claimed 11,306 lives of the 28,256 reported cases, 17 of which were treated outside Africa and 4 of whom died.
The Zika virus is a flavivirus spread by Aedes mosquitos and has no known treatment. Zika virus was mostly ignored until recently because of usually mild symptoms; however, in 2016 the Zika virus was correlated with significant developmental defects such as the severe brain malforma- tion microcephaly. Microcephaly is a brain disorder that results in a smaller-than-normal head size and mental disability. It was also discovered that in addition to being carried by mosquitos, Zika can spread via sexual intercourse. In 2016 the CDC issued a comprehensive travel guide that warded off travel and set up warnings for the affected areas, especially for pregnant women, until more could be understood about the virus.
Modern medicine has eradicated many potentially fatal diseases with vaccination programs. Conversely, recent reports indicate that preventable disease outbreaks such as the measles, mumps, and whooping cough spiked in the United States and abroad, in part because of antivaccination movements. The CDC’s National Center for Immunization and Respira- tory Diseases recently reported the largest measles outbreak since its near eradication in 2000. A record 668 measles cases occurred throughout 27 states in 2014. The antivaccination movement was based on the speculative correlation of an increased diagnosis of autism with increased childhood vaccinations. This idea was promoted by fraudulent research that has since been retracted. However, significant segments of the population continue to avoid vaccinations for their children.
Weapons of Bioterrorism Crude forms of weaponized infectious diseases have been around since 600 BC when plagued cadavers, filth, or pollution were used to weaken an enemy. Unfortunately, the use of biological warfare became more sophisticated throughout the nineteenth and twentieth centuries. Wartime efforts spurred the development and testing of weaponized pathogens. For example, “Unit 731” was a World War II Japanese biowarfare program that was believed to have executed more than 10,000 prisoners with weaponized Bacillus anthracis, Neisseria meningitidis, Vibrio cholerae, etc. Modern domestic bioterrorism in the United States has been largely isolated, extremist, or cult sponsored and resulted in a minimal death toll, but these events serve as a wake-up call for bioterrorism fortification, reducing risk of exposure, and improving public health surveillance.
KEY POINTS • Transmission of disease requires a chain of events that includes passing
of the pathogen from the reservoir of the infection through a portal of exit to a susceptible host through a portal of entry by a circumscribed mode of transmission.
• Environmental factors influence the likelihood of exposure and infection by microorganisms. Sanitation, air quality, living conditions, and climate are important factors.
• The spread of emergent infectious disease is further facilitated by a global society. For example, severe acute respiratory syndrome (SARS), Middle East respiratory syndrome (MERS), and Ebola outbreaks were pinpointed in isolated regions, yet human-to-human contact carried these pathogens elsewhere and resulted in worldwide epidemics.
• Dangerous pathogens designed for bioterrorism present proximate dangers to public health.
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Fig. 8.8 depicts examples of pathogenic bacteria and the areas that they commonly infect. Colonies are formed when bacteria penetrate initial defense mechanisms and multiply. In an attempt to contain and eliminate the invading bacteria, an acute inflammatory reaction occurs. Phagocytic cells such as neutrophils and macrophages are recruited to the area, where they ingest and destroy the microorganisms. If these responses are insufficient to contain the infection, the bacteria move through the body in natural currents of fluids (i.e., bloodstream, lymph system, or interstitial fluids). Bacteria may move through the lymph system to the lymph nodes, where they stimulate an immune response. If they are present in sufficient numbers to overwhelm the lymph nodes, circulating clumps of bacteria (emboli) can cause bacteremia and microabscesses. In severe cases, sepsis, hypotension, organ system failure, and death can occur (see Chapter 20).
Viruses Viruses, the smallest known infective agents, range in size from 20 to 300 nm. They consist of a protein shell called the capsid and a core of genetic material made of either ribonucleic acid (RNA) or deoxyribo- nucleic acid (DNA). The capsid can be in many shapes, including helical, icosahedral, or large pleomorphic shapes. Some viruses also have a protective envelope surrounding the capsid that is obtained from the cell membrane of an infected host cell.
Viruses are classified as RNA or DNA viruses and as either single- stranded (ss) or double-stranded (ds). Some RNA viruses, called ret- roviruses, contain the enzyme reverse transcriptase and can convert their RNA into DNA that can be incorporated into the host’s DNA. The HIV virus is an example of a retrovirus (see Chapter 12). A
A
E F
B C D
G
FIG 8.6 Examples of pathogenic organisms. A, Prion (infectious protein). B, Viruses (the human immuno- deficiency virus [HIV] that causes AIDS). C, Bacteria (Streptococcus bacteria that cause strep throat and other infections). D, Fungi (yeast cells that commonly infect the urinary and reproductive tracts). E, Fungi (the mold that causes aspergillosis). F, Protozoa (the flagellated cells that cause traveler’s diarrhea). G, Pathogenic animals (the parasitic worms that cause snail fever). (A, from Donne DG, et al: Structure of the recombinant full-length hamster prion protein PRp (29-231): the N terminus is highly flexible. Proc Natl Acad Sci USA. 1997;94:13452–13457. Copyright National Academy of Sciences, USA; B, from Lennart Nilsson C-G, from Patton KT, Thibodeau GA: Anatomy & physiology, ed 8, St Louis, MO, 2013, Mosby, p 26.)
CHAPTER 8 Infectious Processes 151
Fungi Fungi are eukaryotic microorganisms with the ability to form complex structures with thick, rigid cell walls. They can grow as a mold with branched filaments or as a meshwork-type structure. Yeasts are a type of fungi with ovoid or spherical shapes. In contrast to bacteria, which have no organelles, the cytosol of fungi does contain organelles. Infec- tions caused by fungi are called mycotic infections, or mycoses. Fungi cause infection first by colonizing the area. The fungus adheres to and proliferates on the site of infection. The next phase requires invasion of the epithelium. Anything that breaks the integrity of the skin (e.g., maceration) facilitates invasion. Polymorphonuclear leukocytes attempt to phagocytize and digest the invading fungi. Neutrophils, monocytes, and eosinophils can destroy fungi in the body.
Certain fungi live in the body as normal flora (e.g., Candida). When the body’s defense mechanisms are compromised, they can overgrow and cause local or systemic infections. Patients who have been given antibiotics generally lose some of their resident flora along with the targeted pathogen. Fungi not affected by these antibiotics overgrow to fill the void niche. Some patients suffering from AIDS, leukemia,
A
B
C
Cocci
Glycoprotein
Envelope
Capsomer
Nucleic acid
Capsid
Core protein
Nucleocapsid
Bacilli
Spirochetes
Microscopic Morphology of Bacteria
FIG 8.7 Types of microorganisms. A, Bacteria. B, Virus. C, Fungus. (A, from Mahon CR, et al: Textbook of diagnostic microbiology, ed 4, Philadelphia, 2011, Saunders; B and C, from Nisengard RJ, Newman MG: Oral microbiology and immunology, ed 2, Philadelphia, 1994, Saunders.)
comparison of viruses, transmission characteristics, and resulting disease processes is presented in Table 8.4.
DNA viruses (e.g., herpes simplex virus) enter the nucleus of the host cell and produce messenger RNA (mRNA) by commandeering the host cell’s enzymes. Viral proteins are then formed from the mRNA, and the DNA of the virus is replicated by host polymerases. DNA and proteins are assembled into new viruses in the host cell. The RNA viruses replicate within the cytoplasm, and most produce mRNA that is then translated into proteins and genomic RNA, from which new viruses are created.
Transmission of a virus occurs from one infected person to another or from an animal reservoir (zoonotic infection). The steps of the viral life cycle include attachment to the target cell as the initial step. The virus then penetrates the cell membrane in various ways. Once inside the host cell, the virus uses the host cell’s materials to produce new viral components. The virus may be released from the host cells by budding from the cell’s surface. Viruses that do not manu- facture an envelope are usually released by lysing the host cell, thus destroying it.
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Systemic mycoses may occur in both healthy and immunocompromised hosts. Because the fungi causing systemic infections are usually found in soil, these infections tend to be endemic to certain regions where the fungus is found. Infection is caused by inhalation of dust containing the fungus. Because of the endemic nature of these fungi, large segments of the population in the area may have been exposed and infected without any symptoms. If symptoms develop, they are usually self-limiting and mild. However, for those with compromised immune systems, the disease may become severe. Examples of systemic mycoses are histo- plasmosis, blastomycosis, and coccidiomycosis. Histoplasma capsulatum is a fungus that commonly occurs in soil in the central and eastern United States. Histoplasma also occurs in soil rich with chicken feces or bat guano. Humans and animals exposed to dust storms in endemic areas or contaminated with these feces are most likely to be infected. They may also have positive histoplasmin skin tests and may show calcified sites of infection in their lungs.
Parasites Parasites establish themselves and benefit from another organism. They range in size from a small unicellular protozoan to large worms. Parasites are representative of four families of the animal kingdom: protozoa, or
alcoholism, drug abuse, and malnutrition or those being treated with immunosuppressive agents lack a well-functioning immune system that prevents fungi from overgrowing and are therefore more susceptible to fungal infections (opportunistic fungi). When the environment contains more nutrients on which the fungi can grow, such as the hyperglycemic bloodstream of a diabetic patient or the vaginal tract of a female taking antibiotics, fungi can overgrow and cause infections. Pneumocystis carinii was reclassified as a fungus in 2006 and renamed Pneumocystis jiroveci. This opportunistic infection is commonly associated with HIV disease.
Superficial mycoses, such as those caused by dermatophytes (e.g., tinea pedis), occur only on superficial, dead, keratinized tissue like hair, epidermis, and nails. Cutaneous fungi do not invade the tissues, but do result in an inflammatory response, as in tinea pedis (athlete’s foot). Subcutaneous mycoses occur when fungi are introduced into subcutaneous tissues and can be seen in ulcers or abscesses on the skin. Systemic infections are invasive to lungs and other organs (e.g., Cryptococcus neoformans). Systemic treatment is commonly used for immunocompromised patients or for patients with disseminated disease because skin infection is usually self-limited. Topical antifungal drugs may be used to treat these superficial infections. Table 8.5 summarizes some examples of fungal infections.
Skin and Wound Infections Staphylococcus aureus Streptococcus pyogenes (group A) Gram-negative bacilli Treponema pallidum Pseudomonas aeruginosa Anaerobic streptococci Clostridium spp. Enterococcus Bacteroides spp.
Brain and Meninges Neisseria meningitidis Haemophilus influenzae Streptococcus pneumoniae Streptococcus spp. Escherichia coli Gram-negative bacilli Streptococcus pyogenes (group A) Staphylococcus aureus Mycobacterium tuberculosis Listeria monocytogenes Enterococcus (neonatal period) Treponema pallidum Leptospira Streptococci (aerobic and anaerobic) Bacteroides spp.
Ear, Nose and Throat Streptococcus pneumoniae Streptococcus pyogenes (group A) Haemophilus influenzae Gram-negative enteric bacilli Pseudomonas aeruginosa Anaerobic streptococci Staphylococcus aureus Neisseria gonorrheae Bacteroides spp.
Fusobacterium Spirochetes Corynebacterium diphtheriae Bordetella pertussis
Lungs and Pleura Mycoplasma pneumoniae Streptococcus pneumoniae Haemophilus influenzae Staphylococcus aureus Klebsiella Pseudomonas aeruginosa Gram-negative bacilli Streptococcus pyogenes (group A) Mycobacterium tuberculosis Chlamydia psittaci Legionella pneumophila Anaerobic streptococci Bacteroides spp. Coxiella burnetii Fusobacterium Enterococcus
Endocardium Viridans group of streptococci Staphylococcus aureus Enterococcus Other streptococci Staphylococcus epidermidis Gram-negative enteric bacilli Pseudomonas aeruginosa
Peritoneum and Biliary Tract Escherichia coli Gram-negative bacilli Enterococcus Bacteroides fragilis Anaerobic streptococci
Clostridium spp. Streptococcus pneumoniae Streptococcus pyogenes (group A) Neisseria gonorrheae Mycobacterium tuberculosis Staphylococcus aureus
Kidney Escherichia coli Gram-negative bacilli Staphylococcus aureus Staphylococcus epidermidis Mycobacterium tuberculosis
Genitourinary Tract Neisseria gonorrhoeae Chlamydia trachomatis Trichomonas vaginalis Ureaplasma urealyticum Gram-negative enteric bacilli Staphylococcus aureus Mycobacterium tuberculosis
Bone (Osteomyelitis) and Joint Staphylococcus aureus Salmonella Gram-negative enteric bacilli Streptococcus pyogenes (group A) Mycobacterium tuberculosis Anaerobic streptococci Pseudomonas aeruginosa
Joints Neisseria gonorrheae Streptococcus pneumoniae Neisseria meningitidis Haemophilus influenzae (in children)
BOX 8.2 Examples of Bacteria Associated With Specific Infections
CHAPTER 8 Infectious Processes 153
EYES Chlamydia trachomatis
Streptococcus pneumoniae Staphylococcus aureus Neisseria gonorrhoeae
THROAT Corynebacterium
diphtheriae Streptococcus pyogenes
Bordetella pertussis
BRAIN AND MENINGES
Haemophilus influenzae Neisseria meningitidis Streptococcus pneumoniae
Streptococcus pneumoniae Haemophilus influenzae Gram-negative enteric bacilli
Streptococcus viridans Staphylococcus aureus Enterococci
Gram-negative bacilli Escherichia coli
HEART
Staphylococcus aureus Neisseria gonorrhoeae Streptococcus pyogenes
JOINTS
KIDNEY
EAR
LUNGS Mycoplasma pneumoniae
Legionella pneumophila Streptococcus pneumoniae
Haemophilus influenzae Mycobacterium tuberculosis
LIVER Clostridium Enterococci
Gram-negative bacilli
INTESTINES Clostridium difficile
Clostridium perfringens Salmonella
Shigella
VAGINA AND UTERUS Neisseria gonorrhoeae Chlamydia trachomatis
Gram-negative bacilli
SKIN Staphylococcus aureus
Streptococcus pyogenes
Gram-negative bacilli Neisseria gonorrhoeae
PROSTATE AND TESTES
Gram-negative enteric bacilli Mycobacterium tuberculosis
Staphylococcus aureus
BONE
Neisseria gonorrhoeae Chlamydia trachomatis Gram-negative enteric bacilli
URETHRA
FIG 8.8 Examples of pathogenic bacteria classified according to the part of the human body that they commonly infect.
single-celled animals (Fig. 8.9); nemathelminths, or roundworms; platy- helminths, or flatworms; and arthropoda, or invertebrate animals with jointed appendages. These parasites live on or in the human body during some part of their life cycle. Parasites and protozoa are rarely transmitted by human contact; usually they are disseminated through a vector where the parasite or protozoan spends part of its life cycle. For example, malaria (Plasmodium sp.) is transmitted via mosquitoes. Many of the protozoal infections are transmitted through contaminated water or food and require ingestion (e.g., Giardia lamblia). Some parasites have specific surface glycoproteins that influence their ability to enter macrophages.
Host resistance depends on macrophages, neutrophils, eosinophils, and platelets that kill both protozoa and worm parasites. T cells are required to develop immunity against these organisms. The symptoms of parasitic infection depend on the area in which the infestation develops. Protozoan infestation (amebiasis) of the gastrointestinal tract may trigger cramping, abdominal pain, and bloody diarrhea. Infestation of the blood produces fever, chills, rigor, and later anemia, all of which are associated with malaria (Plasmodium infection). Acute pruritus and rash occur after infection of the skin with Sarcoptes scabiei (scabies).
Identification of the infectious agent is usually accomplished by visualization of the adult parasite; by direct observation of the area (inspection of the skin or hair); or by microscopic examination of blood, feces, or tissue samples. Table 8.6 summarizes various parasitic infections of humans, including the common name, location, symptoms, and mode of transmission.
KEY POINTS • Microorganisms responsible for infections in humans include bacteria, viruses,
fungi, and parasites. • Bacteria are characterized according to shape (cocci, rods, spirals), reaction
to stains (gram negative, gram positive, acid fast), and oxygen requirements (aerobic, anaerobic).
• Viruses are small pieces of genetic material (DNA, RNA) associated with proteins and lipids. Viruses are small intracellular pathogens that use the host’s energy sources and enzymes to replicate. Viral replication may or may not destroy the host cell. DNA viruses may be incorporated directly into the host genome. RNA viruses serve as templates for the production of viral RNA and proteins.
• Retroviruses are RNA viruses that contain a special enzyme called reverse transcriptase that mediates the synthesis of a DNA copy of the RNA virus. The DNA can then be incorporated into the host genome and passed on to daughter cells when the cell divides.
• Fungal infections can be superficial (e.g., ringworm, athlete’s foot), subcutane- ous (e.g., sporotrichosis), or systemic (e.g., histoplasmosis). Systemic fungal infections tend to be more serious and usually do not occur unless the host’s immune system is compromised.
• Parasites include protozoa, helminths (roundworms, flatworms), and arthropods. Manifestations of parasitic infections vary depending on the organism and site of infection. Common sites of parasitic infestation are the skin and gastrointestinal tract.
154 UNIT III Defense
TABLE 8.5 Fungal Infections
Infection Distribution Vector Symptoms
Cryptococcosis Everywhere Pigeon feces Fever, cough, weight loss, pleuritic pain, CNS disturbances Candidiasis Normal flora N/A Mucocutaneous pain and pruritus at site of infection Phycomycosis
(mucormycosis) Everywhere Decayed matter,
soil Rhinocerebral mucormycosis: destruction of CN II, IV, V, VI;
erosion of carotid artery; meningitis; brain abscess Pulmonary mucormycosis: dyspnea, chest pain, hemoptysis
Histoplasmosis River valleys (e.g., California), southwestern USA (Arizona, Nevada)
Bird and bat feces Flulike: cough, fever, myalgias, weight loss, anemia, leukopenia, thrombocytopenia, painful oropharyngeal ulcers
Coccidioidomycosis (San Joaquin Valley fever)
Semiarid USA (e.g., California), southwestern USA (Arizona, Nevada)
Dust, dirt Cough, fever, pleuritic chest pain, weight loss, dyspnea, chest pain, CNS disturbances
Blastomycosis Southeastern USA, south central USA, Midwestern USA, Great Lakes region
Unknown Flulike: pleuritic chest pain, arthralgias, erythema nodosum, weight loss, fever, cough, chest pain
Aspergillosis Everywhere Decaying vegetation Dyspnea, chest pain, hemoptysis, wheezing
CN, Cranial nerve; CNS, central nervous system; GU, genitourinary; N/A, not applicable.
TABLE 8.4 Human Diseases Caused by Specific Viruses
Baltimore Classification Family Virus Disease
dsDNA Adenoviruses Adenovirus Acute febrile pharyngitis Herpes viruses Herpes simplex type 1 (HSV-1) Lesions in mouth, pharynx, conjunctivitis
Herpes simplex type 2 (HSV-2) Sores on labia, meningitis in children Herpes simplex type 8 (HSV-8) Kaposi sarcoma Epstein–Barr virus (EBV) Mononucleosis, Burkitt lymphoma Cytomegalovirus (CMV) Mononucleosis, congenital infection Varicella-zoster virus (VZV) Chickenpox, shingles
ssDNA Papovaviruses Papillomavirus Warts, cervical carcinoma dsRNA Reoviruses Rotavirus Severe diarrhea ssRNA+ Picornaviruses Coxsackievirus Nonspecific febrile illness, conjunctivitis, meningitis
Hepatitis A virus Acute hepatitis Poliovirus Poliomyelitis Rhinovirus Common cold
Flaviviruses Hepatitis C virus Acute or chronic hepatitis, hepatocellular carcinoma Yellow fever virus Yellow fever Dengue virus Dengue fever West Nile virus Meningitis, encephalitis
Togaviruses Rubella virus Acute or congenital rubella Coronaviruses SARS Severe respiratory disease Caliciviruses Norovirus Gastroenteritis
ssRNA− Orthomyxoviruses Influenza virus Influenza Paramyxoviruses Measles virus Measles
Mumps virus Mumps Parainfluenza Croup, pneumonia, common cold Respiratory syncytial virus (RSV) Pneumonia, influenza-like syndrome
Rhabdoviruses Rabies virus Rabies Bunyaviruses Hantavirus Viral hemorrhagic fever Filoviruses Ebola virus Viral hemorrhagic fever
Marburg Viral hemorrhagic fever Arenavirus Lassa virus Viral hemorrhagic fever
ssRNA + with RT Retroviruses HIV AIDS dsDNA with RT Hepadna viruses Hepatitis B virus Acute or chronic hepatitis, hepatocellular carcinoma
AIDS, Acquired immunodeficiency syndrome; DNA, deoxyribonucleic acid; ds, double-stranded; HIV, human immunodeficiency virus; RNA, ribonucleic acid; RT, reverse transcriptase; SARS, severe acute respiratory syndrome; ss single-stranded.
CHAPTER 8 Infectious Processes 155
TABLE 8.6 Parasitic Infections
Parasitic Agent Common Name of Disease
Location of Infection Symptoms Mode of Transmission
Helminths (Worms) Nematodes (Roundworms) Ancylostoma duodenale Hookworm Blood vessels of gut Anemia Skin penetration Ascaris lumbricoides Giant roundworm Small intestine, lungs Pneumonitis (rare), intestinal
obstruction (rare) Oral (fecal contamination),
autoinfection Enterobius vermicularis Pinworm Cecum Anal pruritus Oral Onchocerca volvulus River blindness Skin, eye Blindness Insect inoculation Strongyloides stercoralis Strongyloidiasis Small intestine, lungs Eosinophilia, urticaria, rash, abdominal
pain, pneumonitis Skin penetration, autoinfection
Trichinella spiralis Trichinosis Muscles Muscular pain, eosinophilia, fever, periorbital edema
Oral (infected meat)
Trichuris trichiura Whipworm Intestine Rectal prolapse Oral (fecal contamination) Wuchereria bancrofti Filariasis Lymphatics Elephantiasis Insect (mosquito)
Trematodes (Flukes) Clonorchis sinensis Liver fluke Liver Biliary obstruction (rare) Oral (raw fish) Fasciola hepatica Liver fluke Liver Fever, right upper quadrant abdominal
pain, eosinophilia Oral
Fasciolopsis buski Intestinal fluke Liver Abdominal pain, diarrhea Oral Paragonimus westermani Lung fluke Lung, intestine Eosinophilia, cough, chest pain,
bronchitis Oral (poorly cooked freshwater
crab or crayfish) Schistosoma haematobium Blood fluke Urinary tract Acute: rash, fever, cough, chest pain,
chills Skin inoculation
Schistosoma japonicum Blood fluke Mesenteric blood vessels
Hepatomegaly, splenomegaly Skin inoculation
Schistosoma mansoni Blood fluke Mesenteric blood vessels
Lymphadenopathy, eosinophilia Skin inoculation
Cestodes (Tapeworms) Diphyllobothrium latum Fish tapeworm Intestine Megaloblastic anemia Oral (poorly cooked fish) Taenia saginata Beef tapeworm Intestine Mild abdominal pain Oral (poorly cooked beef) Taenia solium Pork tapeworm Intestine Mild abdominal pain Oral (poorly cooked pork) Echinococcus granulosus Hydatid cyst Lung, liver Cholestasis, liver congestion and
atrophy, biliary obstruction Oral (inoculation with sheep,
cattle, or dog feces)
Protozoa Entamoeba histolytica Amebic dysentery Intestine Bloody, mucoid diarrhea; colicky
abdominal pain Contaminated water, raw
vegetables Plasmodium spp. Malaria Liver, erythrocytes High fever, chills, rigor, anemia,
headache, malaise, chest pain, abdominal pain
Female Anopheles mosquito
Leishmania spp. Kala azar; cutaneous leishmaniasis
Reticuloendothelial cells of body disseminates to spleen, liver, bone marrow, lymph glands
Chronic: abdominal discomfort, ascites, fever, weakness, pallor, weight loss, cough
Acute: sudden fever, chills
All transmission accomplished through bite of sandflies after biting specific infected mammals
Trypanosoma spp. T. cruzi Chagas disease Bloodstream Local inflammation, lymphadenopathy,
muscular necrosis including myocardium (heart failure), esophagus, and colon (dilation); fever, malaise, anorexia, edema of face
Insects—hematophagous Triatoma (blood drinking)
T. brucei African sleeping sickness
Bloodstream Fever, malaise, headache, rash, CNS disturbances
Glossina flies (tsetse flies)
Continued
156 UNIT III Defense
TABLE 8.6 Parasitic Infections—cont’d
Parasitic Agent Common Name of Disease
Location of Infection Symptoms Mode of Transmission
Toxoplasma gondii Toxoplasmosis Throughout body Acute: usually asymptomatic Immunosuppressed: encephalitis,
myocarditis, pneumonitis
Eating raw or undercooked meat, poultry, or dairy foods; oral inoculation with cat feces
Newborn: impaired vision, neurologic disorders
Giardia lamblia Epidemic diarrhea Intestine Acute: self-limited diarrhea; occasionally malabsorption with weight loss
Fecal contamination of water; person to person
Trichomonas vaginalis Trichomoniasis (vaginitis)
Vagina Irritation, discharge Sexually transmitted
Ectoparasites Pediculus humanus Var. corporis Body louse All hair-covered parts of
body Pruritus Nits at base of hair shaft
Person to person, by fomites
Var. capitis Head louse Head area Pediculus pubis Pubic louse Pubic area Sarcoptes scabiei (var.
hominis) Scabies Skin Pruritus, worse at night; linear burrows
in folds of fingers, elbows, knees, axillae, pelvic girdle
Person to person
Maggots (larvae of dipterous flies)
Myiasis Necrotic tissue Depends on location of infestation Dipterous flies
Chiggers (mites) Skin Intense pruritus, hemorrhagic papules Inhabit dogs, rabbits, cats, rats; foul cheese, flour, house dust
Ticks Skin Can transmit tick paralysis, Lyme disease
Reside in wooded and grassy areas
FIG 8.9 Trypanosoma brucei parasite in a blood smear. Giemsa-stained light photomicrograph. (Courtesy Blaine Mathison, Centers for Disease Control and Prevention, Atlanta.)
CHAPTER 8 Infectious Processes 157
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insights into an old probiotic bacterium. Dig Dis 29:600–607, 2011. McCance KL, Huether SE: Pathophysiology: the biologic basis for disease in
adults & children, ed 7, St Louis, MO, 2015, Mosby. Qin J, Li R, Raes J, et al: A human gut microbial gene catalogue established by
metagenomic sequencing. Nature 464:59–65, 2010. Ryan K, Ray CG, Ahmad N, et al: Sherris medical microbiology, ed 6, New
York, 2014, McGraw-Hill. Vallès Y, Gosalbes MJ, de Vries LE, et al: Metagenomics and development
of the gut microbiota in infants. Clin Microbiol Infect 18:21–26, 2012.
WHO: Guideline: Nutritional care and support for patients with tuberculosis. Geneva: World Health Organization; 2013. Available at: http:// apps.who.int/iris/bitstream/10665/94836/1/9789241506410_eng.pdf.
Emerging Infectious Diseases CDC: Guidelines for Evaluation of US Patients Suspected of Having Ebola Virus
Disease. August 1, 2014. Available at: http://emergency.cdc.gov/han/ han00364.asp. (b) WHO. Ebola Situation Report. Update, September 16, 2015. Available at: http://apps.who.int/ebola/sites/default/files/atoms/files// who_ebola_situation_report_16-09-2015.pdf?ua=1.
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Delves PJ, Martin SJ, Burton DR, Roitt IM: Roitt’s essential immunology, ed 12, Boston, 2011, Wiley-Blackwell Publishing.
Riedel S: Biological Warfare and Bioterrorism: A Historical Review. Proc (Bayl Univ Med Cent) 17(4):400–406, 2004.
WHO: Middle East respiratory syndrome coronavirus (MERS-CoV), Update, July 23, 2014: Available at: http://www.who.int/csr/don/2014_07 _23_mers/en/.
The host–microbe relationship is determined by the characteristics of both the microorganism and the host. Many microorganisms are com- mensal and make up the human microbiome that is thought to protect from pathogens. Multiple host factors such as the integrity of barriers to transmission, nutritional status, age, and drug regimen all have an impact on this relationship and may increase the risk of infection with
pathogens. Infection is an important cause of morbidity and mortality in health care facilities. Health care professionals have a key role in the prevention, surveillance, and early detection of infectious processes in hospital and community settings. The identification of high-risk individu- als who are more susceptible to infection will assist in earlier detection and better management to improve outcomes.
S U M M A R Y
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9
Inflammation and Immunity Jacquelyn L. Banasik
K E Y Q U E S T I O N S • What are the major organs and cellular components of the body’s
defense against foreign antigens? • How do immune cells communicate through cell-to-cell
interactions and through secreted cytokines? • How do innate and adaptive immune mechanisms differ? • How do macrophages, granulocytes, and lymphocytes work
together to locate, recognize, and eliminate pathogens?
• What is the role of MHC class I and II proteins in cell-mediated immunity?
• Why is an immune response usually more effective on subsequent exposure to an antigen than after the first exposure?
• How do noncellular immune system components, including antibodies, complement, and clotting factors, aid the immune response?
C H A P T E R O U T L I N E COMPONENTS OF THE IMMUNE SYSTEM, 159 Epithelial Barriers, 159 Mononuclear Phagocyte System, 159 Lymphoid System, 160
Primary Lymphoid Organs, 160
Secondary Lymphoid Organs, 161
Tonsils, 161 Spleen, 161 Lymph Nodes and Lymphatics, 161 Peyer Patches, 162
Leukocytes, 162 Neutrophils, 162
Eosinophils, 163
Basophils and Mast Cells, 164
Monocytes and Macrophages, 164
Dendritic Cells, 165
Lymphocytes, 165
Natural Killer Cells, 166 T Lymphocytes, 166 B Lymphocytes, 167
Chemical Mediators of Immune Function, 167 Complement, 167
Kinins, 169
Clotting Factors, 169
Cytokines and Chemokines, 169
INNATE DEFENSES AND INFLAMMATION, 169 Inflammation, 171
Increased Vascular Permeability, 171
Emigration of Leukocytes, 172
Phagocytosis, 172
Chronic Inflammation, 174
Healing, 174 Inflammatory Exudates, 175 Systemic Manifestations of Inflammation, 175 SPECIFIC ADAPTIVE IMMUNITY, 176 Major Histocompatibility Complex, 176 Antigen Presentation by MHC, 176
MHC Class I Presentation, 177
MHC Class II Presentation, 177
Mechanisms of Cell-Mediated Immunity, 178 T Helper Cells (CD4+), 178
Cytotoxic T Cells (CD8+), 181
Mechanisms of Humoral Immunity, 181 Antigen Recognition by B Cells, 181
Antibody Structure, 183
Class Switching and Affinity Maturation, 185
Antibody Functions, 186
Passive and Active Immunity, 187 Passive Immunity, 187
Active Immunity, 187
INTEGRATED FUNCTION AND REGULATION OF THE IMMUNE SYSTEM, 189
Integrated Response to Microbial Antigen, 189 Integrated Response to Viral Antigen, 191 Regulation of Immune Function, 192
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 9 Inflammation and Immunity 159
of bactericidal peptide called cryptocidins that prevent bacteria from colonizing the intestinal wall. Resident microorganisms may aid in providing this line of defense by making conditions inhospitable for pathogens (see Chapter 8). Disruption of the normal epithelial barriers increases the likelihood that pathogens will successfully establish an infection. Physical trauma (e.g., burns, lacerations, erosions) and biochemical alterations (e.g., pH changes, increased glucose concentra- tion, decreased enzyme production) predispose to infection. Pathogens that breach the skin or mucous membranes are generally first detected by cells of the mononuclear phagocyte system. These cells are thought to originate from monocytes produced in the bone marrow. Specialized antibody-secreting cells also locate to the mucous membranes where they produce antibodies of the immunoglobulin A (IgA) class. IgA antibodies bind antigens on the mucosal surface and prevent them from entering more deeply into the tissues.
MONONUCLEAR PHAGOCYTE SYSTEM The mononuclear phagocyte system (previously called the reticuloen- dothelial system) is composed of dendritic cells, monocytes, and macrophages that are widely distributed throughout the body. Monocytes from the circulating blood migrate to organs and tissues to become macrophages. Macrophages are found throughout the body and are assigned various names according to the tissues in which they are located, such as alveolar macrophages in the lungs, microglial cells in the brain, Kupffer cells in the liver, and histiocytes in connective tissue (Fig. 9.1). Tissue dendritic cells are a monocyte-derived cell type that specializes in capturing and presenting antigens to T cells. Dendritic cells are strategically located in subcutaneous and submucosal tissues.
Macrophages and dendritic cells are often the first immune system cells to encounter a pathogen or foreign antigen after it has entered the
The immune system is a complex network of cells and tissues that work together to protect the body against foreign invaders. The wide variety of potential pathogens requires a defense system that is diversified and adaptable. Several types of white blood cells (WBCs) are important in localizing, recognizing, and eliminating foreign substances. These immune cells are strategically situated in diverse locations so that pathogens may be detected quickly. The dispersed nature of these defensive cells necessitates a complex system of intercellular communication to effectively mobilize reinforcements to areas of need. A tremendous amount of information has accumulated about how immune cells communicate and the processes that enable them to migrate to particular locations. The impact of this research goes far beyond the traditional immune disorders such as immunodeficiency diseases and hypersensitiv- ity reactions. The immune system has been implicated in the pathogenesis of disorders as diverse as atherosclerosis, myocardial infarction, shock, diabetes, and stroke. Therefore an understanding of immune function is fundamental to the study of a wide variety of diseases. This chapter describes the organs and cells that constitute the immune system, the mechanisms of action of innate and adaptive defenses, and the com- munication processes whereby immune cells achieve a coordinated response. Underreactions and overreactions of the immune system, immune system malignancies, and human immunodeficiency virus disease are described in Chapters 10, 11, and 12, respectively.
COMPONENTS OF THE IMMUNE SYSTEM The structures of the immune system include (1) skin and mucous membranes; (2) the mononuclear phagocyte system; (3) the lymphoid system, including spleen, thymus gland, and lymph nodes; and (4) bone marrow. All these structures are inhabited by different types of WBCs (leukocytes) that mediate inflammation and immunity. Leukocytes are responsible for locating and eliminating pathogens and foreign molecules. They are aided in their task of bodily defense by a number of chemical mediators, including complement, kinins, clotting factors, cytokines, and chemokines.
Components of the immune system are often categorized into specific or innate defenses according to the mechanisms whereby antigens are recognized. Innate defenses require no previous exposure to mount an effective response against an antigen, and a wide variety of different antigens are recognized. Natural killer (NK) cells and phagocytic cells such as neutrophils and macrophages are mediators of innate defenses. In contrast, specific defenses respond more effectively on second exposure to an antigen (adaptive) and are highly selective in the ability to recognize antigens. B lymphocytes (B cells) and T lymphocytes (T cells) are the agents of specific immunity.
Although separating immune components into specific and innate systems is helpful for studying inflammation and immunity, it is an artificial division because they function in a highly integrated manner. The approach used in this chapter is to first describe the major com- ponents of the immune system, discuss innate and specific adaptive defenses separately, and then summarize the integrated function of the entire system and its regulation.
EPITHELIAL BARRIERS The skin and mucous membranes are sometimes called the “first line of defense” because they are frequently the initial sites of microbial invasion. Intact epithelia in skin and mucous membranes provide mechanical and chemical barriers that prevent microorganisms from gaining access to the body’s tissues. The skin epithelium produces antimicrobial peptides called defensins that can kill a wide variety of bacteria and fungi. The intestinal epithelium produces another form FIG 9.1 Cells of the mononuclear phagocyte system.
160 UNIT III Defense
9.2). T lymphocytes then migrate to the thymus for development, whereas B lymphocytes and NK cells stay in the marrow to develop. NK cells are a population of lymphocytes that lack both T-cell and B-cell markers. NK cells are produced and released from the bone marrow and function in innate immune responses. NK cells are found mainly in the circulation and spleen. Once mature, T and B lymphocytes migrate to the secondary lymphoid organs where they await activation by antigens. Secondary lymphoid organs include the tonsils, spleen, lymph nodes, and Peyer patches (Fig. 9.3).
Primary Lymphoid Organs Bone marrow is contained in all the bones of the body. The primary function of bone marrow is hematopoiesis, or the formation of blood cells. There are two kinds of bone marrow: red and yellow. Hematopoiesis is carried out by red (functioning) marrow. By adulthood, red marrow is confined to the pelvis, sternum, ribs, cranium, ends of the long bones, and vertebral spine. Yellow or fatty bone marrow is found in the remaining bones. It normally does not contribute to hematopoiesis in adults, but
body, and they are instrumental in communicating news of the invasion to other immune cells. This communication is accomplished through secretion of chemical signaling molecules called cytokines and by presenta- tion of captured antigen to the specific, adaptive immune cells. Dendritic cells specialize in antigen presentation and are able to migrate quickly to lymphoid tissues when they have captured antigens. Macrophages have many other roles in the immune response in addition to their sentry function. Macrophages are powerful phagocytes, each capable of ingesting numerous microbes. Macrophages are called on to clean up the area in which dead neutrophils and inflammatory debris have accumulated after an inflammatory reaction, and they have a role in wound healing.
LYMPHOID SYSTEM The primary lymphoid organs are the bone marrow and thymus gland, which are the structures where lymphocytes develop. All types of lymphocytes are produced from stem cells in the bone marrow (Fig.
PERIPHERAL BLOODSTREAM
BONE MARROW
Embryonic liver and spleen– site of extramedullary
hematopoiesis
Bone marrow–site of medullary hematopoiesis in fetus, newborn, infant,
and adult
Pluripotential stem cell
Monoblast Pre B cell
Lymphoid stem cell (thymus)
Prothymocyte
Promonocyte
Monocytes BasophilEosinophil
Granulocytes
Neutrophil
Basophilic metamyelocyte
Eosinophilic metamyelocyte
Neutrophilic metamyelocyte
Basophilic myelocyte
Eosinophilic myelocyte
Promyelocyte
Myeloblast
Platelet-producing megakaryocyte
Basophilic megakaryocyte
Granular megakaryocyte
Megakaryoblast
Neutrophilic myelocyte
Immature (band)
neutrophil
Thrombocytes (platelets)
Macrophage
Leukocytes (white cells)PlateletsRed cells
Erythrocytes (red cells)
Reticulocyte
Acidophilic erythroblasts
Polychromatophilic erythroblasts
Basophilic erythroblast
Erythroblast
Mast cell Plasma cell
T lymphoblast Natural killer cells
B lymphoblast
B cell (lymphocyte)
T cell (lymphocyte)
Myeloid stem cell
FIG 9.2 Maturation of human blood cells showing pathways of cell differentiation from the pluripotent stem cell to mature granulocytes, monocytes, lymphocytes, thrombocytes, and erythrocytes. Production begins in embryo blood islands in the yolk sac. As the embryo matures, production shifts to the liver, spleen, and bone marrow. In an adult, nearly all hematopoiesis occurs in the bone marrow. The two major differentiation pathways are the myeloid pathway and the lymphoid pathway. The lymphoid pathway produces lymphocytes, whereas the myeloid pathway produces granulocytes, monocytes, platelets, and red blood cells.
CHAPTER 9 Inflammation and Immunity 161
tissues, including lymph nodes, spleen, tonsils, and Peyer patches in the intestine. These naive T cells and B cells express specific chemokine receptor proteins on their cell surfaces that allow them to migrate, or “home,” to specific locations in lymph tissue. Most mature T lymphocytes are in constant circulation through lymphatic tissues and the bloodstream. It has been estimated that a lymphocyte makes a circuit from the blood to tissues to lymphatics and back to the bloodstream once or twice per day. Antigens can be carried to the naive cells in the lymph nodes by the specialized antigen-presenting dendritic cells. When exposed to an appropriate antigen, T cells and B cells migrate toward each other within the lymph nodes and begin to proliferate. Activated T cells may then migrate to lymph vessels and travel to the bloodstream, where they are dispersed throughout the system. The majority of B cells stay in the lymph node, where they mature into antibody-secreting plasma cells. Lymphocyte recirculation and homing are regulated by binding interac- tions between various types of cell adhesion molecules, including selectins, integrins, chemokines, and addressins.
Tonsils Tonsils are aggregates of lymphoid tissue located in the mouth and pharynx. The tonsils are strategically located at the entrance to the digestive and respiratory tracts, where they are likely to encounter microorganisms. Unlike lymph nodes, tonsils have no afferent (incoming) lymphatic vessels. They do have efferent lymphatic drainage so that activated lymphocytes from the tonsils can migrate to other lymphoid organs. Tonsils normally make an important contribution to immune function; however, they may occasionally become chronically infected, and surgical removal (tonsillectomy) is then helpful.
Spleen The spleen is located under the diaphragm on the left side of the body. It measures about 12 cm in length, which makes it the largest of the lymphoid organs. The spleen provides an important filtering function for blood. The tissue structure of the spleen is similar to that of lymph nodes. It is surrounded by a capsule of connective tissue and filled with a meshwork of red pulp and localized masses of lymphocytes called white pulp. Within the red pulp are many blood-filled sinuses lined with macrophages. Macrophages filter out foreign substances and old red blood cells. Lymphocytes located in the white pulp are in a strategic position to come into contact with bloodborne antigens. Lymphocytes thus activated in the spleen can migrate to other lymphoid organs via efferent lymphatics. Like the tonsils, the spleen does not have afferent lymphatic vessels.
Lymph Nodes and Lymphatics The lymphatic vessels begin with small, closed-ended lymphatic capillaries in direct contact with the interstitial fluid surrounding cells and tissues. Lymphatics pick up fluid and proteins that escape the bloodstream and return them to the circulation by way of the right lymphatic and thoracic ducts. Along the way from lymphatic capillaries to the thoracic ducts, lymph flows through specialized structures called lymph nodes. Lymph nodes are found primarily in the neck, axilla, thorax, abdomen, and groin. They often become tender and palpable when responding to foreign invaders. Projections of connective tissue called trabeculae divide the interior of the lymph node into compartments (Fig. 9.4). Lymph nodes contain large numbers of B and T lymphocytes and macrophages. B cells are the predominant cell type in the cortical follicles, whereas T cells predominate in the area just under the cortex called the parafol- licular. The central region, or medulla, is populated by macrophages, B cells, and plasma cells (antibody-secreting B cells). Lymph fluid flows through the nodes in a way that allows these immune cells to filter, detect, and react to foreign material.
can be recruited to become red marrow again under conditions of increased need for hematopoiesis.
B cells are produced and develop in the bone marrow. B cells migrate from the outer edges toward the center of the bone marrow as they develop. Pre–B cells are subjected to a highly selective quality control process, and less than 25% of the developing B cells are allowed to survive. During migration through the bone marrow, immature B cells are exposed to self antigens. B cells that do not bind to self antigens continue to develop into mature B cells. If immature B cells encounter self antigens to which they bind while still in the bone marrow, a series of events is triggered to induce self-tolerance. The immature B cell is stimulated to reactivate its genetic recombination machinery in an attempt to produce a new B-cell receptor (BCR) that does not bind to self antigens. If this receptor-editing attempt fails to alter binding sufficiently, the immature B cell will undergo apoptosis in the bone marrow. Mature B cells that leave the bone marrow to colonize secondary lymphoid organs are called naive B cells because they have not yet encountered antigen.
T cells develop in the thymus, which is located in the anterior mediastinum overlying the heart. Pre–T cells initially enter the outer aspect (cortex) of the thymus lobules, and many die while they migrate to the center (medulla) of the thymus. The selection process for T cells is even more rigorous than that for B cells; only about 5% of the cells entering the thymus survive to reenter the circulation and colonize secondary lymphoid organs. The thymus is relatively large at birth and steadily atrophies after puberty. The thymus produces interleukin-7 (IL-7), a cytokine that promotes T-cell proliferation.
Secondary Lymphoid Organs Once mature, lymphocytes leave their primary lymphoid organs and travel through the blood to localize in peripheral, or secondary, lymphoid
Tonsils and adenoids
Lymph nodes
Spleen
Appendix
Peyer patches in intestinal wall
Lymphatic vessels
Thymus gland
Bone marrow
FIG 9.3 Principal organs of the lymphoid system.
162 UNIT III Defense
neutrophils, eosinophils, and basophils. Basophils are precursors of the mast cells located in tissues.
Development of these cell types is influenced by hormonal signaling molecules called cytokines. Cytokines are produced locally in the bone marrow and by various other cells. Certain cytokines stimulate stem cell growth, proliferation, and differentiation into particular cell types. The WBC count and differential are commonly measured laboratory tests used to evaluate WBC production. A normal WBC count and differential are shown in Table 9.1. The general features of each of the WBC types are summarized in the following sections.
Neutrophils Neutrophils are circulating granulocytes that are also known as poly- morphonuclear leukocytes (polys or PMNs). They account for 60% to 80% of the total WBC count. Neutrophils normally have two to five nuclear lobes and coarse, clumped chromatin. Neutrophils arise from bone marrow stem cells and undergo several stages of maturation. As illustrated in Fig. 9.2, these stages, from least to most mature, are myeloblast, promyelocyte, metamyelocyte, band cell, and mature seg- mented neutrophil.
Neutrophils stored in the bone marrow outnumber, by about tenfold, the quantity of circulating neutrophils. An adult produces more than 1 × 1011 neutrophils each day. These stored neutrophils are released into the circulation, where they have a half-life of 4 to 10 hours. Neutrophils that are not recruited into tissues within about 6 hours undergo programmed
Peyer Patches Aggregates of lymphoid tissue can be found scattered throughout the body, particularly in the gastrointestinal, respiratory, and urogenital tracts. These structures are analogous to lymph nodes, but they are not encapsulated and contain primarily B cells. Because of their location, these structures have been termed mucosa-associated lymphoid tissue or gut-associated lymphoid tissue. These structures, also called Peyer patches, are of particular importance in producing antibodies to microorganisms that tend to invade mucosal tissue.
LEUKOCYTES Leukocytes, or WBCs, are the primary effector cells of the immune system. Each of the different types of leukocytes found in blood has a special job to perform. All leukocytes, as well as red blood cells and platelets, are formed from stem cells in the bone marrow. Stem cells can produce daughter cells that differentiate along several different pathways to become mature cell types (see Fig. 9.2). The first major differentiation step produces either a lymphoid stem cell or a myeloid stem cell. Lymphoid stem cells further differentiate to form B and T lymphocytes and NK cells. Myeloid stem cells can produce a variety of cell types, including red blood cells, platelets, monocytes, dendritic cells, and granulocytes. Monocytes that migrate from the blood into tissues are called macrophages. Granulocytes are further divided into
Capsule
Efferent lymph vessel
Medulla
Cortex (follicle) (B-cell zone)
Germinal centers
Trabecula
Afferent lymph vessel
Parafollicular (T-cell zone)
FIG 9.4 Schematic drawing of a typical lymph node showing afferent and efferent lymph vessels, as well as B-cell and T-cell zones.
CHAPTER 9 Inflammation and Immunity 163
Initially during an acute infection, neutrophilia, or an increase in the number of circulating neutrophils, occurs as the bone marrow releases stored neutrophils. As neutrophils are consumed and demand exceeds production, an increase in the number of immature (band) neutrophils occurs. Bands are identified by their lack of nuclear segmenta- tion. This increase in band cells is referred to as a “shift to the left of normal” (Fig. 9.5). Traditionally, the band count has been used to differentiate bacterial from viral infections, and a greater shift to the left is viewed as a more severe infection.
Neutrophils produce potent chemical mediators that enable them to destroy microorganisms. Numerous toxins released by neutrophils have been identified, including oxidizing free radicals, defensins, and proteolytic enzymes, such as elastase. Because of the ability to generate free radicals and release enzymes, neutrophils can cause extensive damage to normal tissue during their inflammatory response.
Eosinophils Eosinophils are circulating granulocytes that have two nuclear lobes and stain brilliant red-orange with eosin. They constitute 1% to 6% of the total WBC count. Eosinophils mature in the bone marrow (3 to 6 days) and circulate in the blood for about 30 minutes. They have a half-life of 12 days in tissue. Eosinophils arise from myeloid stem cells and undergo a maturation process similar to that of neutrophils.
Eosinophils are particularly associated with an increase in number during allergic reactions and infection by intestinal parasites. The role of eosinophils in allergic reactions is less well characterized than that of mast cells. Eosinophils are recruited into areas of inflammation by the chemokine eotaxin, which is produced by epithelial cells. Eosinophils release inflammatory chemicals, such as lysosomal enzymes, peroxidase,
cell death (apoptosis). Neutrophils are early responders to an acute bacterial infection and arrive in large numbers very quickly. They are phagocytes that engulf and degrade microorganisms. Circulating neutrophils have receptors on their cell surfaces that enable them to bind to endothelial cells in areas of inflammation. These receptors, called L-selectins, and chemokine receptors allow neutrophils to adhere and roll along the capillary surface. Other interactions between neutrophil integrin receptors and extracellular matrix then facilitate movement of neutrophils through the capillary wall and into the tissue. Neutrophils are attracted to areas of inflammation and bacterial products by chemotactic factors such as complement fragments and cytokines. This process is discussed in more depth in the section titled “Inflammation.”
Immature (band) neutrophil
"Shift to left"
85% Mature 15% Bands
Normal 95% Mature 5% Bands
Myeloid stem cell
Mature neutrophil
Acute infection
FIG 9.5 Inflammatory cytokines stimulate the release of more immature neutrophils, called bands, from the bone marrow. An increased ratio of bands to mature neutrophils is termed a “shift to the left.” This clinical term evolved from the practice of listing bands to the left of mature cells on the laboratory report sheet. A shift to the left is commonly seen with acute bacterial infections.
TABLE 9.1 Leukocyte Proportions and Functions
Type Percentage* Role in Inflammation
Neutrophils 60–80 First to appear after injury, phagocytosis
Lymphocytes 20–30 Immune response Monocytes (macrophages) 3–8 Phagocytosis Eosinophils 1–6 Allergic reactions, parasite
infection Basophils 0–2 Contain histamine, mediate
type I allergic reactions, initiate inflammation
*Total white cell count, 4000 to 10,000/µL.
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(Fig. 9.8). Macrophages are capable of cell division and may proliferate at the site of inflammation.
Macrophages are covered with a variety of receptor proteins on their cell surface (Fig. 9.9). Some of these receptors help macrophages locate antigens that have been coated by antibodies. These receptors are called Fc receptors because they bind to the part of an antibody called the constant fragment, or Fc. Macrophages also have receptors for the complement component C3b. Complement, like antibodies, can coat an antigen and make it more recognizable to macrophages. Coating of antigen by antibodies or by complement is called opsonization. Mac- rophages have receptors that help them recognize bacteria directly. These innate pattern-recognition receptors bind to particular molecules prevalent in the bacterial cell wall. For example, mannose receptors and numerous toll-like receptors on macrophages allow them to recognize
major basic protein, and cationic protein. The primary function of eosinophils is to kill parasitic helminths (worms). Helminths are too large to be phagocytosed by neutrophils or macrophages, and their exterior is resistant to attack by complement or mast cell products. Eosinophils produce specialized molecules such as major basic protein and eosinophil cationic protein, which may be more effective against helminths (Fig. 9.6). Eosinophils recognize helminths that have been opsonized (coated) with IgE antibody. They bind to the IgE and then release their stored chemicals onto the surface of the opsonized helminth. Parasitic infections are a significant problem in much of the world, with one-third of the population being affected.
Basophils and Mast Cells Basophils are granulocytes characterized by granules that stain blue with basophilic dyes. Basophils account for 0% to 2% of the total leukocyte count. Basophils are structurally similar to mast cells. Mature basophils circulate in the vascular system, whereas mast cells are found in connective tissue, especially around blood vessels and under mucosal surfaces. When stimulated by cytokines, mature basophils can migrate to connective tissue, but once in the tissue, basophils (then called mast cells) do not reenter the circulation.
The average basophil life span is measured in days, whereas mast cells can live for weeks to months. Mast cells and basophils have IgE receptors that allow them to bind and display IgE antibodies on their cell surfaces. When an appropriate stimulus occurs, such as antigen binding to the IgE antibodies, mast cells and basophils release granules (degranulate) containing proinflammatory chemicals.
Mast cell and basophil granules contain histamine, platelet-activating factor, and other vasoactive amines that are important mediators of immediate hypersensitivity responses (Fig. 9.7). Degranulation of mast cells and basophils begins the inflammatory response that is characteristi- cally associated with allergic reactions. Mast cells and basophils are also involved in wound healing and chronic inflammatory conditions (see Chapter 10).
Monocytes and Macrophages Monocytes and macrophages, like granulocytes, originate from bone marrow stem cells of the myeloid lineage. Monocytes are immature macrophages and account for about 5% of the total WBC count. Monocytes circulate in the bloodstream for about 3 days before they enter tissue to become macrophages. As described earlier, macrophages are found in widespread locations as part of the mononuclear phagocyte system.
Phagocytosis by macrophages is similar to that by neutrophils except that neutrophils are short-lived and die in the process of fighting infec- tion. Macrophages, in contrast, may live for months to years and can migrate in and out of tissue. Macrophages are more efficient phagocytes than neutrophils and can ingest several times as many microorganisms
FIG 9.6 Small dots are eosinophils migrating toward and attacking the worm over time. (From Patnode ML, Bando JK, Krummel MF, et al: Leukotriene B4 amplifies eosinophil accumulation in response to nema- todes. J Exp Med 211(7):1281-8, 2014.
FIG 9.7 Micrograph of a mast cell showing a large yellow nucleus and numerous packets containing histamine, which are colored red. (From Roitt IM, Brostoff Male DK: Immunology, ed 3, St Louis, 1993, Mosby.)
FIG 9.8 Scanning electron micrograph of a macrophage (red) attaching to and phagocytizing bacteria (yellow). (From Nairn R, Helbert M: Immunology for medical students, ed 2, St Louis, 2007, Mosby, p 3. With permission from Juergen Berger, Max-Planck Institute, and the Science Photo Library.)
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common microbial structures (see Fig. 9.9). Other receptors, called selectins, chemokine receptors, and integrins help macrophages adhere to capillary walls and enter and move through tissue. Integrin receptors bind to proteins in the extracellular matrix and help macrophages target, or “home,” to certain areas.
In addition to their phagocytic function, macrophages have an important secretory function. Some of the substances secreted by macrophages are cytokines, which help coordinate the activities of other immune cells (Fig. 9.10). Macrophage cytokines include IL-1, IL-6, IL-12, and tumor necrosis factor-α (TNF-α). These cytokines promote inflammation, as well as the activity of other WBCs, including neutrophils and lymphocytes (see the section titled “Cytokines and Chemokines”).
Macrophages secrete a number of proteins that are important in wound healing. Some of these proteins are enzymes that degrade tissue (e.g., collagenase, elastase, plasminogen activator), whereas others stimulate the growth of new granulation tissue (e.g., fibroblast growth factor, angiogenic factors).
A third function of macrophages, in addition to phagocytosis and secretion, is antigen presentation. For T cells to recognize antigens, these antigens must first be processed and presented on the surface of an antigen-presenting cell such as dendritic cells, macrophages, or B cells. Macrophages accomplish this task by first engulfing the antigen, then processing it into smaller pieces, and finally combining the antigen fragments with special membrane proteins. The antigen complexes are then displayed on the macrophage cell surface, where T lymphocytes (T helper cells) can recognize and become activated by them. Antigen presentation is explored in more detail in the section titled “Specific Adaptive Immunity.”
Cytokine receptors
Selectin and integrin receptorsComplement
receptors
Antibody receptors
Fc IL-2
CD62 CD11/18CR1
CR3
CD14
Microbe
Microbe
Microbe
Toll-like receptors
LPS IgG
C3b
IL-2
IFN-γ
Endothelium
IFN-γ
FIG 9.9 Macrophage surface receptors. Macrophages display receptors for a number of extracellular molecules that enhance their function such as cytokines, complement, selectins, integrins, and antibody (Fc). Toll-like receptors recognize patterns of microbial components and trigger intracellular signaling cascades in the macrophage. IFN-γ, Interferon-γ; IL, interleukin; LPS, lipopolysaccharide.
Dendritic Cells Dendritic cells are derived in the bone marrow from the same progenitor cells that produce monocytes and macrophages and are structurally and functionally similar to macrophages. Dendritic cells derive their name from an unusual shape that has extensive projections from the surface (Fig. 9.11). Dendritic cells are located throughout the body as part of the mononuclear phagocyte system. They function primarily as antigen-presenting cells, capturing antigen in tissues and then migrat- ing to lymphoid areas to present antigen to T cells. Some types of dendritic cells produce chemical messengers called type I interferon (IFN-α and IFN-β) in response to viral infections. Type I interferons suppress the viral replication machinery in nearby cells and help stop the local spread of the virus.
Lymphocytes The three major types of lymphocytes are NK cells, T cells, and B cells. NK cells function in innate immunity, whereas B and T lymphocytes are the cells responsible for specific, adaptive immunity. B and T cells have the capacity to proliferate into “memory cells,” which provide long-lasting immunity against specific antigens. NK, T, and B cells are derived from a common lymphoid stem cell in the bone marrow that is stimulated to proliferate by bone marrow–derived cytokines, including IL-7. T cells then migrate to the thymus, where they mature. B cells remain in the bone marrow during their maturation phase. NK cells are released into the circulation. Together NK, B, and T lymphocytes compose approximately 20% of the total WBC count. Mature NK cells circulate and populate the spleen, whereas T and B cells migrate to secondary lymphoid organs.
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recognize antibody-coated target cells with their Fc receptors. This process is called antibody-dependent cell-mediated cytotoxicity. NK cells also target virally infected cells and tumor cells. They are thought to be able to recognize virally infected cells through innate pattern- recognition receptors; however, only those cells that lack certain normal self proteins on their cell surface (major histocompatibility complex I, or MHC I, proteins) are targeted for killing. Cells that display normal MHC I on their cell surfaces are protected from NK cell cytotoxicity, but will be susceptible to killing by cytotoxic T cells that recognize viral antigen displayed on the MHC I proteins.
T Lymphocytes Two major classes of T lymphocytes can be differentiated by the presence or absence of CD4 and CD8 surface proteins (Fig. 9.12). T cells that possess CD4 proteins (CD4+) are called T helper cells. T helper cells interact with antigens presented on the surface of specialized antigen- presenting cells such as dendritic cells, macrophages, and B cells. T
Structurally, lymphocytes are small, round cells with a large, round nucleus. Despite their relatively uniform appearance, lymphocytes can be sorted into a number of subpopulations based on characteristic surface proteins called cluster of differentiation (CD) markers. More than 350 different CD markers have been identified thus far, with different immune cell types displaying different combinations on their cell surfaces. Lymphocytes have many complex and differentiated functions, and only the major lymphocyte subtypes are discussed in this chapter.
Natural Killer Cells NK cells have no B- or T-cell markers and are not dependent on the thymus for development. NK cells are considered innate immune cells because they can effectively kill tumor cells and virally infected cells without previous exposure. NK cells kill their target cells by a mechanism similar to that used by cytotoxic T cells. Unlike T and B cells, NK cells can respond to a variety of antigens and are therefore not specific for a particular antigen. Like neutrophils and macrophages, NK cells
Colony- stimulating
factors promote hematopoiesis
Interleukin-12 stimulates
helper T cells and NK cells
Tumor necrosis factor-α
promotes inflammation
Interleukin-1 promotes inflammation
Interleukin-6 stimulates
B-cell growth and inflammation
Interleukin-10 promotes
expression of antigen-presenting proteins (MHC II)
Interleukin-15 and interleukin-18
promote proliferation of NK cells
Fibroblast growth factor
stimulates wound healing
FIG 9.10 Macrophages are of central importance in initiating inflammation and recruitment of other leukocytes to areas of need. Macrophages secrete a variety of cytokines that induce inflammation and chemotaxis. Some macrophage cytokines stimulate the growth and differentiation of other white blood cell types.
A B
FIG 9.11 Dendritic cell morphology. A, Light micrograph of resting dendritic cells from the bone marrow. B, Scanning electron micrograph of a mature dendritic cell showing extensive projections of the cell membrane. (From Abbas AK et al: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders, p 112. Courtesy of Dr. Y-J Liu, MD, Anderson Cancer Center, Houston, TX.)
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to the B cell by physical cell-to-cell contact through coreceptor binding, as well as through secreted cytokines. Some B cells can respond to nonprotein antigens such as bacterial carbohydrate and lipid molecules. B-cell responses to nonprotein antigens are T-cell independent because T cells respond only to peptide antigens. Exposure to antigens stimulates B cells to mature into antibody-secreting plasma cells and memory cells. B-cell memory cells form a reserve of cells that can quickly mount an immune response on subsequent exposure to the same antigen. Memory cells are able to survive for months to years, whereas most antibody-secreting plasma cells live for only a few days. Plasma cells are able to secrete antibodies at a rate of about 2000 per second per cell. Memory B cells and plasma cells develop in germinal centers located in secondary lymphoid organs, including the lymph nodes and spleen. A few long-lived plasma cells inhabit the bone marrow and continue to produce a low level of antibody, which provides immediate protection on second exposure to the same antigen. The mechanisms of specific adaptive immunity are explored later in the chapter.
CHEMICAL MEDIATORS OF IMMUNE FUNCTION Complement The complement system consists of about 30 plasma proteins that interact to enhance inflammation, chemotaxis, and lysis of target cells. Complement proteins are synthesized in the liver and by macrophages and neutrophils. They circulate in the blood in an inactive form. Activa- tion of the complement cascade occurs via three different pathways: classical, alternative, and lectin. In all three pathways, the inactive complement proteins are converted to their active form in a sequence
helper cells can be further divided into subclasses based on the types of cytokines that they secrete. These subtypes are described in the section “Mechanisms of Cell-Mediated Immunity.”
The presence of CD8 protein (CD8+) on a T lymphocyte characterizes it as a cytotoxic T cell. Cytotoxic T cells recognize antigen presented in association with surface proteins that can be found on all nucleated cells of the body (MHC I). When a CD8+ T cell recognizes a foreign antigen on a cell, the antigen-presenting cell is killed, thus the name cytotoxic T cell. CD8+ cells are particularly effective at destroying virally infected cells, foreign cells, and mutant cells (Fig. 9.13). Proliferation of activated cytotoxic T cells is enhanced by T helper cell cytokines, particularly IL-2.
B Lymphocytes B cells are distinguished from other lymphocytes by their ability to produce antibodies and by the presence of antibody-like receptors (BCRs) on their cell surfaces. Each B cell carries many copies of identical BCRs and is able to respond to one specific antigen epitope (Fig. 9.14). Naïve B cells require “help” from T helper cells to respond efficiently to protein antigens. B cells bind and internalize the protein antigen and then process and present it to T helper cells. T cells that recognize the presented peptides bind to and are activated by the B cell. T-cell help is provided
T cell
CD8+CD4+
Helper Cytotoxic
FIG 9.12 Two major classes of T lymphocytes can be differentiated by CD markers on the cell surface. T helper cells have CD4 markers, whereas cytotoxic T cells have CD8 markers.
FIG 9.13 Scanning electron micrograph of activated T cells (blue) and a tumor cell (red). (From Nairn R, Helbert M: Immunology for medical students, ed 2, St Louis, 2007, Mosby, p 3. With permission from BSIP Lecaque and the Science Photo Library.)
Antigen
Epitope
BCR
FIG 9.14 Typical B cell showing a number of identical B-cell receptors (BCRs) on the cell surface. Each BCR is capable of binding to two identical antigen epitopes.
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exposure to an antigen. Lipopolysaccharide, in bacterial cell walls, and bacterial endotoxin are effective triggers of the alternative pathway. In the classical pathway, an antibody hooked onto an antigen combines with C1, the first of the complement proteins. This step sets in motion a domino effect called the complement cascade (Fig. 9.16). The alternative pathway begins with the activation of C3. The alternative pathway can be activated on first exposure and is part of the innate immune response. The lectin pathway also can be triggered on first exposure. Lectin is a circulating biomolecule that binds mannose on bacterial cell walls and triggers complement activation at C2 and C4. C3 spontaneously degrades into active C3b fragments in plasma. If microbial cell surfaces are present, the C3b fragment can bind directly to the microbe. Two other comple- ment proteins, factors B and D, combine with C3b to initiate the alternative pathway. C3 is the most important and plentiful of the complement proteins. C3 divides into two fragments called C3a and C3b. C3a is a proinflammatory protein that causes histamine release from mast cells, contraction of smooth muscle, and increased endothelial cell permeability. C3b initiates the next step in the cascade by cleaving C5 into its active fragments: C5a and C5b. Complement protein fragment C5a is both a powerful inflammatory chemical and a potent chemotactic agent. C5a chemotaxis stimulates neutrophils and monocytes to migrate to the inflamed tissue. C5a also activates neutrophils by triggering their oxidative activity and increasing their glucose uptake.
The C5b fragment combines with C6, C7, C8, and multiple units of C9 to form a large porelike structure (C5b6789) called the membrane
of reactions. Major actions of complement proteins include cell lysis, facilitation of phagocytosis by opsonization, inflammation, and che- motaxis (Fig. 9.15).
The classical pathway is usually triggered by IgG or IgM antibody– antigen complexes. The alternative pathway can be initiated on first
Opsonization (C3b)
Chemotaxis (C5b67)
Anaphylatoxins (bronchospasm)
(C3a)
Recruitment and activation of neutrophils
(C5a) Increased vascular
permeability (C2a,C5a)
Cell lysis (MAC)
Mast cell degranulation
(C3a)
COMPLEMENT ACTIVATION
FIG 9.15 Activation of the complement cascade results in the production of products that perform a variety of functions to augment the immune response. MAC, Membrane attack complex.
C1
C4 Enzyme
Classical pathway
Alternative pathway
Antigen
C3b C5b
C6 C8
Membrane attack complex
C7
C9
C5b
C5a
C2
IgG
C3
C3a
C5
Water
Water
Cell lysis
Na+
Na+ Na+
Na+ Na+
Target cell
FIG 9.16 Complement cascade. The cascade is activated by the first complement molecule, C1, that binds an antigen–antibody complex. This event begins a domino effect, with each of the remaining complement proteins performing its part in the attack sequence. The end result is a hole in the membrane of the offending cell and destruction of the cell. Activation of the complement cascade results in the formation of membrane attack complexes that insert in the cell membrane. These porelike structures allow sodium and water influx that causes the cell to swell and rupture.
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cytokines is large and growing; they can be grouped according to their source and function (Table 9.2).
These cytokines generally function as chemotactic factors (chemo- kines), antiviral factors, mediators of inflammation, hematopoietic factors, or activation signals for specific types of WBCs. Cytokines function to enhance and coordinate both innate and specific immune defenses. They are discussed in more detail in the sections that follow.
attack complex. The membrane attack complex has a direct cytotoxic effect by attacking cell membranes and disrupting the lipid bilayer. This action allows free movement of sodium and water into the target cell, which causes it to rupture (see Fig. 9.16). The complement system is a potent inflammatory and cytotoxic system that is carefully regulated by inhibitory factors. Normal host cells produce membrane and inhibitory plasma proteins that prevent complement binding to their surface (e.g., C1 inhibitor, protein S).
Kinins Bradykinin and kallidin are two of the many kinins present in the body. Kinins are small polypeptides that cause powerful vasodilation. They are especially active in the inflammatory process. The kinin system is linked to the clotting system via the Hageman factor (XII) and is activated with the activation of clotting. The first step in this process is the conver- sion of factor XII to factor XIIa (Fig. 9.17). Factor XIIa converts a substance known as prekallikrein to kallikrein. Kallikrein converts precur- sor substances known as kininogens to kinins. The most prevalent is kallidin, which is then converted to bradykinin. Activated kinins cause increased vascular permeability, vasodilation, and smooth muscle contraction. Kinins are also responsible for pain, which is one of the classic signs of inflammation.
Clotting Factors The blood coagulation cascade’s major purpose is to stop bleeding. It is also intimately involved in inflammation and triggering of the kinin system. The key linkage between the inflammatory response and clotting system is activated factor XII (Hageman factor) (see Fig. 9.17). (The blood coagulation cascade is discussed in detail in Chapter 14.) Activation of the coagulation cascade results in the formation of insoluble fibrin strands, which provide an effective barrier to the spread of infection. Clot formation also activates the fibrinolytic cascade, which splits fibrin proteins. Some of the fibrin degradation products are chemotactic signals for neutrophils.
Cytokines and Chemokines Cytokines are polypeptide signaling molecules that affect the function of other cells by stimulating surface receptors. Cytokines function in a complex intercellular communication network. WBC cytokines have previously had many names, including monokines, lymphokines, and interleukins, depending on their cell of origin. The number of known
FIG 9.17 Common linkage of the kinin and coagulation systems through the activation of factor XII (Hageman factor). XIIa, Activated factor XII.
KEY POINTS • The primary lymphoid organs are the thymus and bone marrow. T cells
develop in the thymus, whereas B cells develop in the bone marrow. Mature lymphocytes then migrate to secondary lymphoid structures, including the spleen and lymph nodes.
• Blood cells are produced in the bone marrow in response to specific hema- topoietic growth factors. Granulocytes (neutrophils, basophils, eosinophils) and monocytes (macrophages) are phagocytic cells that provide innate protec- tion. Lymphocytes (B cells, T cells) are specific cells that react only to particular antigens. Natural killer (NK) cells are lymphocytes that lack T-cell and B-cell markers and function in innate immune responses. Other blood components produced by bone marrow are erythrocytes and platelets.
• Neutrophils are the most numerous WBCs in blood. A large storage pool lies in the bone marrow and can be mobilized in response to antigen. Neutrophils are the predominant WBC type mobilized in early infection. They migrate to the area by following chemotactic factors and perform phagocytic functions. During acute bacterial infection, larger numbers of immature neutrophils (bands) are released into the blood, which is termed a “shift to the left.” Chronic infections may produce a shift to the right with more segmented neutrophils than normal.
• Monocytes located in tissue are called macrophages. Monocytes and macrophages are distributed in strategic locations throughout the body, including the skin, lungs, gastrointestinal tract, liver, spleen, and lymph. Macrophages are powerful phagocytes and are predominant in late inflammation.
• T lymphocytes, the major effectors of cell-mediated immunity, interact with specific antigens on cell surfaces. They are important in immunity against foreign, infected, or mutant cells. In addition, they secrete cytokines that boost the immune response of B cells and other cell types. T cells are composed of two main subtypes called CD4 (helper) and CD8 (cytotoxic). B lymphocytes are the major effectors of antibody-mediated immunity.
• The complement system consists of about 30 plasma proteins that interact in a cascade fashion to produce important mediators of inflammation and immunity. The cascade can be activated by microbial antigens (alternative pathway) or by antigen–antibody complexes (classical pathway).
• Cytokines are peptide factors released by immune cells. They have many functions, including as inflammatory mediators, chemotaxins, intercellular communication signals, growth factors, and growth inhibitors. Macrophages and lymphocytes are important sources of immune cytokines.
INNATE DEFENSES AND INFLAMMATION Inflammation occurs when cells are injured, regardless of the cause of the injury. It is a protective mechanism that also begins the healing process. The inflammatory response has three purposes: (1) to neutralize and destroy invading and harmful agents, (2) to limit the spread of harmful agents to other tissue, and (3) to prepare any damaged tissue for repair. Inflammatory reactions increase capillary permeability such that phagocytic cells, complement, and antibodies can leave the blood- stream and enter tissues where they are needed.
Five cardinal signs of inflammation have been described: (1) redness (rubor), (2) swelling (tumor), (3) heat (calor), (4) pain (dolor), and
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TABLE 9.2 Selected Immune Cytokines and Their Functions
Cytokine Origin Function
IFN-α Macrophages and induced by RNA or DNA viruses and by single- or double-stranded polyribonucleotides
Inhibits virus replication, toxic to cancer cells, stimulates leukocytes, facilitates NK cell activity, produces fever, increases B- and T-cell activity
IFN-β Fibroblasts and induced by RNA or DNA viruses and by single- or double-stranded polyribonucleotides
Inhibits virus replication, toxic to cancer cells, facilitates NK cell activity, produces fever
IFN-γ T cells (TH1 and CD8+) and NK cells Promotes antigen expression via MHC I and II, activates macrophages, inhibits cell growth, induces myeloid cell lines, promotes B cell switch to IgG
IL-1 Mononuclear phagocyte Stimulates TH17 cells and macrophages, induces acute phase reaction of inflammation, produces fever; similar to TNF and endogenous pyrogen
IL-2 T helper cells (TH1) Promotes growth of T cells, enhances function of NK cells, assists T-cell maturation in thymus and B-cell proliferation
IL-3 T cells, endothelial cells, fibroblasts, other cells Induces proliferation and differentiation of other lymphocytes, pluripotent stem cells, mast cells, and granulocytes
IL-4 T helper cells (TH2) Promotes T-cell/B-cell interactions, promotes synthesis of IgE by B-cell and TH2 cell growth, promotes mast cell and hematopoietic cell growth
IL-5 T helper cells (TH2) Promotes growth and differentiation of B cells to secrete IgA, induces differentiation of eosinophils
IL-6 Mononuclear phagocytes, T cells and nonlymphoid cells (e.g., endothelium)
Promotes immunoglobulin secretion by B cells, induces fever, promotes release of inflammation factors from liver cells, promotes differentiation of hematopoietic stem cells and nerve cells
IL-7 Stromal cells in bone marrow Stimulates immature lymphocytes to divide to produce B and T cells IL-8 Macrophages Enhances inflammation and chemotaxis (CXCL chemokine) IL-9 TH2 cells Enhances growth of T helper cells, B cells, and mast cells IL-10 TREG cells and macrophages Inhibits activation of macrophages and dendritic cells, inhibits IL-12
production IL-11 Stromal cells in bone marrow Stimulates platelet production IL-12 Macrophages, dendritic cells Enhances TH1 cell activities and release of IFN-γ by T cells and NK cells IL-13 TH2 cells Stimulates B-cell growth and IgE production, suppresses macrophages IL-14 T cells Induces B-cell proliferation IL-15 Macrophages and various other cell types Similar actions to IL-2, enhances proliferation of T cells (CD8) and NK cells IL-16 CD8+ T cells CD4+ cell chemotaxis, suppresses viral replication of HIV IL-17 CD4+ T cells Stimulates production of colony-stimulating factors and chemokines IL-18 Macrophages in response to microbes Increases NK-cell proliferation and secretion of IFN-γ by TH1 IL-19 Macrophages Stimulates macrophage IL-1 secretion IL-20 Monocytes Stimulates hematopoietic stem cells IL-21 TH2 and TH17 and TFH cells Activates B cells, stimulates production of NK cells IL-22 TH17 cells Epithelial cells, increased barrier function, defensin production IL-23 Macrophages and dendritic cells Differentiation of TH17 cells IL-24 Monocytes, T cells Monocyte inflammatory cytokine production IL-25 T cells, mast cells and macrophages Stimulates production of cytokines by TH2 cells (IL-4, IL-5, IL-13) IL-26 T cells, monocytes Uncertain IL-27 Macrophages and dendritic cells Inhibits TH1 cells IL-31 TH2 cells Uncertain IL-33 Endothelial cells, fibroblasts TH2 cell development TNF-α Macrophages Induces leukocytosis, fever, weight loss, inflammation, necrosis of some
tumors; stimulates lymphokine synthesis; activates macrophages; toxic to viruses and tumor cells
TNF-β TREG cells Inhibits B-cell and T-cell proliferation G-CSF, M-CSF, GM-CSF Macrophages, T cells, fibroblasts Stimulates granulocyte and monocyte production in bone marrow TGF-β T cells, macrophages Inhibits T cells, B cells, and macrophages
Chemokines CXCL 1–16 Macrophages and various cells in tissues Recruitment of neutrophils, macrophages, lymphocytes CCL 1–28 Macrophages and various cells in tissues Recruitment of neutrophils, macrophages, lymphocytes
GM-CSF, Granulocyte-macrophage colony-stimulating factor; HIV, human immunodeficiency virus; IFN, interferon; IL, interleukin; NK, natural killer; TNF, tumor necrosis factor; TGF, transforming growth factor.
CHAPTER 9 Inflammation and Immunity 171
known to be present on the cell membrane for some time, but now their presence inside of cells has been described. When these internal receptors detect foreign matter, such as viral RNA or DNA, an internal cascade of events can assemble a group of proteins into a functional unit called an inflammasome. Caspase-1 is an important component of the inflammasome that increases the production and release of interleukin-1, an important proinflammatory cytokine that causes fever and contributes to recruitment and activation of immune cells.
Increased Vascular Permeability Prostaglandins and leukotrienes are important mediators of inflammation (Table 9.3). Mast cells are an important source of these inflammatory chemicals. Mast cells in the area of injury degranulate and release packets of histamine and other inflammatory chemicals. One of the early actions of these mediators is to vasodilate and cause endothelial cells to begin retraction and rounding up, thus increasing capillary permeability. The greater volume of blood increases the amount of pressure within the blood vessels (hydrostatic pressure). The increased pressure along with increased permeability pushes fluid out of the blood vessels and into the surrounding tissue, contributing to local swelling. Because of the dilated blood vessels and open capillaries, more blood is carried to the injured area and contributes to the redness, pain, heat, and swelling of inflammation (Fig. 9.19).
Histamine is an early mediator of this inflammatory response. It is such a potent vasodilator that it can cause significant reductions in blood pressure when released in excessive amounts. Histamine also causes bronchial constriction and mucus production. Histamine receptor–blocking agents are widely used in allergic reactions, such as skin reactions and hay fever, to suppress these inflammatory actions of histamine.
Prostaglandins and leukotrienes are phospholipid compounds formed from arachidonic acid. The prostaglandins involved in inflammation contribute to vasodilation and increased permeability (Fig. 9.20). Pros- taglandin D2 also acts as a chemotactic factor and stimulates neutrophil emigration. Prostaglandins cause pain by enhancing the sensitivity of pain receptors. They arise from the cyclooxygenase pathway and can be inhibited by drugs that block enzymes in this pathway, such as aspirin.
Five types of leukotrienes are generated from the lipoxygenase pathway: A4, B4, C4, D4, and E4. Leukotriene B4 is a potent chemotactic agent that causes aggregation of leukocytes; leukotrienes C4, D4, and E4 are inflammatory and cause smooth muscle contraction, bronchospasm, and increased vascular permeability. Leukotriene receptor–blocking agents can be used to inhibit the inflammatory actions of these chemicals.
During the early phase of tissue inflammation, platelets move into the site and adhere to exposed vascular collagen. The platelets release fibronectin to form a meshwork trap and stimulate the intrinsic clotting cascade to help reduce bleeding. Platelets release a number of peptide growth factors, including platelet-derived growth factor and insulin-like growth factor. Platelet-derived growth factor stimulates fibroblast cell proliferation, and insulin-like growth factor type 1 is a potent vascular endothelial cell chemotactic factor. Triggering of the blood coagulation cascade also occurs and leads to the formation of a fibrin clot. Usually, early clot formation occurs within several minutes. Fibrin is also deposited in the lymph system, where it causes lymphatic blockage. Lymphatic blockage “walls off” the area of inflammation from the surrounding tissue and delays the spread of toxins.
The vascular changes that occur soon after injury are beneficial to the injured tissue because irritating or toxic agents are diluted by the fluid that leaks out of the blood vessels into surrounding tissue. In addition, when the fluid leaves the blood vessels, the remaining blood becomes viscous (thick) and circulation is slowed, facilitating neutrophil emigration.
(5) loss of function (functio laesa). The suffix -itis is commonly used to describe conditions associated with inflammation. For example, appendicitis, tendonitis, and nephritis refer to inflammation of the appendix, tendon, and kidney, respectively.
Inflammation can be caused by many conditions. Any injury to tissue will evoke an inflammatory response. Injury can arise from sources outside the body (exogenous) or from sources inside the body (endogenous). Surgery, trauma, burns, and skin injury from chemicals are all examples of exogenous injuries. Endogenous injuries may result from tissue ischemia such as myocardial infarction or pulmonary embolism.
Inflammation and infection are commonly confused because they often coexist. Under normal conditions, infection is always accompanied by inflammation; however, not all inflammation involves an infectious agent. For example, inflammation can occur with sprain injuries to joints, myocardial infarction, sterile surgical incisions, thrombophlebitis, and blister formation as a result of either temperature extremes or mechanical trauma.
Inflammation may be categorized as either acute or chronic. Acute inflammation is short in duration, lasting less than 2 weeks, and involves a discrete set of events. Chronic inflammation tends to be more diffuse, extends over a longer period, and may result in the formation of scar tissue and deformity.
INFLAMMATION Events in the inflammatory response to bacterial antigens and tissue injury include (1) vasodilation and increased vascular permeability, (2) recruitment and emigration of leukocytes, and (3) phagocytosis of antigens and debris. The general inflammatory response is outlined in Fig. 9.18.
Innate immune cells, including neutrophils, macrophages, and some tissue cells, are equipped with pattern recognition receptors that allow them to bind to foreign particles and produce inflammatory cytokines that are released to initiate inflammatory cascades. Pattern recognition receptors, such as mannose receptors and Toll-like receptors, have been
Injury
Vasoactive chemicals
Vasodilation
Phagocytosis
Endothelial binding of
neutrophils and macrophages
Chemokines
Emigration of neutrophils and macrophages
into tissue
FIG 9.18 Tissue injury stimulates the release of a number of chemical mediators that promote vasodilation, chemotaxis, and binding of neu- trophils and macrophages to area capillaries. These events facilitate the emigration of neutrophils and macrophages into the tissue, where they begin phagocytosis.
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neutrophils are highly mobile, they are first on the scene to begin phagocytosis and production of collagenase to degrade dead tissue. Monocytes are slightly slower to arrive at an area of inflammation but use a similar process of emigration to gain entry to the area of tissue injury.
Eosinophils and NK cells may also respond to the site of inflammation. Eosinophils are rich in chemical mediators such as hydrolases and peroxidases, which may contribute to the inflammatory process. NK cells are most effective in recognizing virally infected cells and opsonized microbes.
Phagocytosis Once neutrophils and monocytes (macrophages) enter the tissue, they begin the process of phagocytosis (Fig. 9.22). These cells produce a wide variety of enzymes that digest protein structures. Some of these enzymes include lysozyme, neutral proteases, collagenase, elastase, and acid hydrolases. Neutrophils and macrophages specialize in collagen and extracellular matrix degradation. Peptide bonds are cleaved in the extracellular matrix by collagenase, elastase, proteinase, and gelatinase. If the microbe is small enough to be internalized, it will be captured by the phagocyte and endocytosed into a phagosome. The phagosome then merges with a lysosome containing degradative enzymes. Large antigens may trigger the neutrophil to release its degradative enzymes extracellularly, causing damage to local tissues.
Oxidizing agents, the most destructive of the inflammatory cell products, are formed as a result of the phagocyte oxidase enzyme system on the membrane of the lysosome. Neutrophils are capable of synthesizing and assailing microorganisms with these oxidizing agents, which include the following oxygen radicals: superoxide (O2
−), hydrogen peroxide (H2O2), and hydroxyl ions (OH
−). Oxidizing agents directly attack cell membranes and thereby increase permeability. Nitric oxide products may also be produced by inducible nitric oxide synthase (iNOS) and function in concert with oxygen radicals to attack microbial molecules (see Fig. 9.22).
Because acute inflammation can cause severe tissue damage, it is not surprising that a system of inactivators is present. An important inhibitor of inflammatory damage is α1-antiprotease. Antiproteases are made in the liver and circulate continuously in the bloodstream. α1- Antiprotease inhibits the destructive proteases released from activated neutrophils. A deficiency of antiproteases can predispose an individual to inflammatory tissue destruction.
Neutrophils have a limited capacity to phagocytose foreign and inflammatory debris. Once the neutrophil leaves the circulation to fight
Emigration of Leukocytes As blood flows through areas of inflammation, neutrophils move to the sides of the blood vessels and roll along the endothelium of the vessel wall. This process is referred to as margination or pavementing. Normally, neutrophils slide past the capillary endothelial cells and do not stick. Injured tissue triggers the expression of adhesion molecules on the surface of endothelial cells, and the adhesion molecules bind to receptors on neutrophils (Fig. 9.21). These receptors, called selectin and chemokine receptors, help neutrophils stick and roll along the capillary endothelial surface. Binding to and subsequent movement through the capillary wall are accomplished by another group of receptors called integrins. Chemokines present on the endothelium enhance the binding affinity of integrins so the neutrophil can attach firmly to the vessel wall. The process of passing through the blood vessel walls and migrating to the inflamed tissue is referred to as emigration or diapedesis. Diapedesis begins within a few minutes to hours of injury. Even though the spaces between endothelial cells lining the vessels are much smaller than the neutrophils, neutrophils are able to slide through a small portion at a time.
Neutrophils are attracted to the inflamed tissue by a process called chemotaxis. Biochemical mediators that attract neutrophils include bacterial toxins, degenerative products of the inflamed tissue, the C5a complement fragment, and other substances. Neutrophils are thus guided through the tissue to an area of injury by these chemicals. Because
TABLE 9.3 Mediators of Acute Inflammation
Mediator Vasodilation
INCREASED PERMEABILITY
Chemotaxis Opsonin PainImmediate Sustained
Histamine + +++ − − − − Serotonin (5-HT) + + − − − − Bradykinin + + − − − ++ Complement 3a − + − − − − Complement 3b − − − − +++ − Complement 5a − + − +++ − − Prostaglandin (E2) +++ + +? − − − Leukotrienes (B4, D4) − +++ +? +++ − − Lysosomal proteases − − ++* − − − Oxygen free radicals − − ++* − − −
Data from Roitt I et al: Immunology, ed 6, St Louis, 2001, Mosby. *Proteases and oxygen-based free radicals derived from neutrophils are believed to mediate a sustained increase in permeability by means of their damage to endothelial cells.
Tissue damage
Vasodilation
PAIN HEAT SWELLING REDNESS
Increased permeability
Neutrophil emigration
Release of vasoactive and chemotactic
factors
FIG 9.19 Cardinal signs of acute inflammation result mainly from vasodilation and increased vascular permeability.
CHAPTER 9 Inflammation and Immunity 173
Cell membrane phospholipids
Arachidonic acid HPETEs HETEs
5-HETE
Leukotriene B4
Phospholipases
Cyclooxygenase 5-Lipoxygenase
12-Lipoxygenase
Steroids inhibit
COX-1 and COX-2 inhibitors, aspirin,
indomethacin inhibit
Other lipoxygenases
Prostaglandin G2 (PGG2)
Leukotriene A4 (LTA4)
Leukotriene C4 (LTC4)
Leukotriene D4 (LTD4)
Leukotriene E4 (LTE4)
Prostaglandin H2 (PGH2)
5-HPETE
Thromboxane A2 TXA2
Prostacyclin PGI2
Causes vasodilation, inhibits platelet aggregation
Causes vasoconstriction, promotes platelet aggregation
PGE2PGD2
Vasodilation Increased vascular permeability
LipoxinB4LipoxinA4
Inihibition of inflammation
Chemotaxis
Vasoconstriction Bronchospasm Increased vascular permeability
FIG 9.20 Generation of prostaglandins, thromboxane, and leukotrienes from arachidonic acid and roles in inflammation. HETEs, Hydroeicosatetraenoic acids; HPETEs, hydroperoxyeicosatetraenoic acids.
Leukocyte Rolling
Integrin (low affinity state)
Integrin (high affinity state)
Integrin ligand
Macrophage with microbes
Fibrin and fibronectin (extracellular matrix)
Selectin ligand
Selectin
Chemokines
Chemokine
Proteoglycan
Cytokines (TNF, IL-1)
Integrin activation by chemokines
Stable adhesion
Migration through
endothelium
FIG 9.21 Emigration of neutrophils from the bloodstream into tissue is mediated by receptor interactions with the capillary endothelium. With inflammation and injury, endothelial cells begin to express binding molecules on their cell surfaces (selectins). Leukocytes also have selectins, which can bind to endothelial adhesion proteins. The selectin interactions cause the leukocytes to stick and roll. Chemokines on the surface of endothelial cells interact with neutrophils (and macrophages) to increase the binding affinity of integrin receptors on leukocytes. Firm attachment and diapedesis through the capillary wall is facilitated by integrins that allow the neutrophils to bind to endothelial cells and extracellular matrix and then pull themselves into the tissue. IL, Interleukin; TNF, tumor necrosis factor.
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and persists for 2 weeks. The major cells involved in this phase include fibroblasts, endothelial cells, and myofibroblasts.
Fibroblasts are found all over the body and are thought to originate in mesenchymal primitive tissue. They synthesize connective tissue and are able to migrate. Fibroblasts are stimulated to make collagen, pro- teoglycans, and fibronectin by a variety of growth factors. Macrophages secrete lactate and release growth factors that stimulate fibroblasts. Fibroblasts respond to contact and density inhibition and thereby facilitate orderly cellular growth. Myofibroblasts develop at the wound edge and induce wound contraction.
Endothelial cells grow into the connective tissue gel stimulated by angiogenic substances. They usually develop capillary beds from existing vessels. The new capillaries can transport nutrients for tissue repair and wound healing. However, because the new capillaries are leaky, they contribute to continuing edema.
Regeneration of damaged tissue into the preexisting tissue type requires survival of the basement membrane and tissue stem cells. Some cell types regenerate constantly; among these types are the epithelial cells of the skin and mucous membranes, bone marrow cells, and lymphoid cells. Cells of the liver, pancreas, endocrine glands, and renal tubules are also able to regenerate when necessary. However, some cell types, such as neurons and muscle cells, regenerate poorly. The maturation phase of wound healing occurs several weeks after the injury and may last for 2 years or more. It is characterized by wound remodeling by fibroblasts, macrophages, neutrophils, and eosinophils. Wound remodel- ing is the process of collagen deposition and lysis with debridement of the wound edges. During this phase the wound changes color from
an infection, it is unable to return and will die at the site. When phagocytosis is incomplete, a collection of dead neutrophils, bacteria, and cellular debris, called pus, may form at the site. Macrophages are left with the job of removing spent neutrophils and preparing the site for healing. A predominance of monocytes and macrophages in an inflamed area signals the beginning of chronic inflammation.
Chronic Inflammation Macrophages are essential for wound healing because of their phagocytic and debridement functions. Macrophages produce proteases that help in removing foreign protein from the wound. Macrophages also release tissue thromboplastin to facilitate hemostasis and stimulate fibroblast activity. Macrophages secrete other peptide growth factors such as angiogenic factor, which encourages the growth of new blood vessels. Macrophages also phagocytose spent neutrophils and their degradation products so they do not interfere with healing. Prolonged inflammation may impair healing and result in an accumulation of macrophages, fibroblasts, and collagen, called a granuloma. Granulomas are usually evident on examination of tissue biopsy as clusters of macrophages surrounding particulate matter or resistant microbes such as Mycobac- terium tuberculosis. Fibrosis and scarring are evident because normal parenchyma is replaced with fibrous tissue.
HEALING Healing of tissues after inflammation can occur in different ways over time. Usually the reconstructive phase begins 3 to 4 days after injury
Microbe
ROS
Microbe
Phagocyte oxidase
Phagosome
C3b receptor
Fcγ receptor
Mannose receptor
Scavenger receptor
Other microbe recognition receptor
CD14/ TLR
Lysosome
iNOS
Phagolysosome
LysozymesNeutrophil or macrophage
ROS O2
O2 NO
FIG 9.22 Neutrophils and macrophages have a number of different receptors on their surface that enable them to bind to components of microbes or to opsonins like IgG and complement. Bound microbes are internalized into phagosomes that fuse with lysosomes containing numerous enzymes. Some of these enzymes degrade proteins (proteolytic), and others such as oxidase and inducible nitric oxide synthase (iNOS) produce free radicals that attack molecular bonds. When phagocytes are strongly stimulated or microbes are too large to internalize, the lysosomal enzymes may be activated or released at the cell surface, causing tissue damage and inflammation. ROS, Reactive oxygen species.
CHAPTER 9 Inflammation and Immunity 175
amyloid A. CRP binds to phospholipids on bacterial cell membranes and acts as an opsonin to facilitate phagocytosis.
When the liver releases acute phase proteins, the level of fibrinogen in the serum is increased. Fibrinogen coats the surface of red blood cells and reduces their charge so that they aggregate more readily. A blood test called the erythrocyte sedimentation rate (ESR, “sed rate”) provides a simple measure of the level of inflammation in an individual. Thus an elevated ESR indicates the presence of inflammation in the body. The greater the inflammation, the faster the red blood cells precipitate to the bottom of a test tube and the higher the ESR. The ESR is a nonspecific but clinically useful indicator of inflammation. Serum CRP activity is also used as a nonspecific indicator of inflammation in a manner similar to the ESR.
bright red to pink to whitish. As long as a wound is pink, the maturation phase is not completed.
INFLAMMATORY EXUDATES Exudate is fluid that leaks out of blood vessels, combined with neutrophils and the debris from phagocytosis. Exudates may vary in composition, but all types have similar functions, including (1) transport of leukocytes and antibodies, (2) dilution of toxins and irritating substances, and (3) transport of the nutrients necessary for tissue repair.
Serous exudate is watery, has a low protein content, and is similar to the fluid that collects under a blister. This type of exudate generally accompanies mild inflammation. With mild inflammation, the perme- ability of the blood vessels is not greatly changed. As a result, only some protein molecules escape from vessels, and serous exudate, with a low protein content, develops. Small amounts of red blood cells may leak into the serous fluid with capillary injury, resulting in a pink-tinged drainage called serosanguineous drainage.
With greater injury, more inflammation occurs and the blood vessels become more permeable. Because of this increased permeability, more protein can pass through the vessel walls. Fibrinogen, a large protein molecule, can pass through a highly permeable blood vessel wall. Fibrinous exudate is sticky and thick and may have to be removed to allow healing; otherwise, scar tissue and adhesions may develop. However, in some instances fibrinous exudate may be beneficial. In the case of acute appendicitis, fibrinous exudate may actually wall off and localize the infection and prevent its spread.
Purulent exudate is called pus. Purulent exudate generally occurs in severe inflammation accompanied by bacterial infection and is primarily composed of neutrophils, protein, and tissue debris. Large pockets of purulent exudate, called abscesses, must generally be removed or drained for healing to take place.
Hemorrhagic exudate has a large component of red blood cells. This type of exudate is usually present with the most severe inflammation. Hemorrhagic exudate occurs with severe leakage from blood vessels or after necrosis or breakdown of blood vessels.
SYSTEMIC MANIFESTATIONS OF INFLAMMATION Inflammation is associated with both localized and systemic signs and symptoms. The localized symptoms, described previously, occur with both acute and chronic inflammation. Depending on the magnitude of injury and the resistance of the individual, localized inflammation can lead to systemic involvement. Systemic responses include fever, neutrophilia (increased blood neutrophil count), lethargy, and muscle catabolism. Three macrophage-derived cytokines—IL-1, IL-6, and TNF-α—are responsible for most of the systemic effects of inflammation.
TNF-α and IL-1 act on the brain to raise body temperature, induce sleep, and suppress appetite. By raising the set point for body temperature, these cytokines induce conservation of heat through vasoconstriction, as well as increased heat production through shivering. An increase in body temperature is assumed to improve the immune response; however, the mechanism is unclear. IL-1 is responsible for stimulating the release of neutrophils from bone marrow storage sites, thus producing neu- trophilia. All three cytokines act on skeletal muscle to enhance protein catabolism, which provides an available pool of amino acids for efficient antibody production by plasma cells.
The liver is another important target for IL-1 and TNF-α. These cytokines induce the liver to release a number of proteins collectively called acute phase proteins, which include complement components, clotting factors, and protease inhibitors (Fig. 9.23). Two of the most important acute phase proteins are C-reactive protein (CRP) and serum
C-reactive protein
Serum amyloid A
Protease inhibitors (α1-antitrypsin)
IL-1, TNF-α
Clotting factors (fibrinogen, vWB factor)
Complement (C2, C3, C4, C5)
Liver
FIG 9.23 The liver is a target for three important cytokines: interleukin-1 (IL-1) and tumor necrosis factor-α (TNF-α). In response to these cytokines, the liver releases a number of proteins, collectively called acute phase proteins. vWB, von Willebrand factor.
KEY POINTS • Previous exposure to foreign antigens is not required for the activation of
innate immune defenses. Inflammation is an important aspect of innate immunity that involves localization of harmful agents and the movement of phagocytic cells to the area. Classic manifestations of inflammation are redness, swelling, heat, pain, and loss of function.
• Inflammatory chemicals such as histamine, prostaglandins, and leukotrienes are released from injured tissues, mast cells, macrophages, and neutrophils. These chemicals increase vascular permeability, vasodilate, and attract immune cells to the area (chemotaxis).
• Phagocytes migrate to the inflamed area, collect at the side of the vessel, and squeeze through into the tissue. Emigration of neutrophils and macro- phages is facilitated by chemokines, selectins, and integrins present on the surface of endothelial cells and leukocytes. Neutrophils arrive in large numbers in acute bacterial infection and begin active phagocytosis. Neu- trophils and macrophages produce proteolytic enzymes and oxidizing agents to destroy and digest antigens. With chronic inflammation, macrophages and lymphocytes predominate.
• Healing is mediated by growth factors released from platelets and immune cells that stimulate fibroblasts to divide and manufacture extracellular matrix proteins. Endothelial cells respond to angiogenic growth factors by forming capillary networks.
• Inflammatory exudate functions to transport immune cells, antibodies, and nutrients to the tissue and dilute the offending substances. Serous exudate
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for inspection by T cells. Cells displaying foreign antigens stimulate an immune response, whereas those displaying self antigens do not because self-reacting T cells are not allowed to survive in the thymus. Genetic diversity in MHC gene expression is believed to be important to the preservation of a species because new pathogens are likely to encounter at least some individuals with MHC genotypes that can recognize and eliminate these pathogens.
ANTIGEN PRESENTATION BY MHC Nucleated cells in the body are capable of expressing MHC class I proteins on their cell surfaces, whereas only certain specialized cells, primarily dendritic cells, macrophages, and B cells, are able to express MHC class II proteins. Cytotoxic T cells are able to recognize foreign antigen bound to MHC class I proteins, whereas T helper cells recognize foreign antigen bound to MHC class II proteins. T cells are screened during development in the thymus so that they recognize self MHC
SPECIFIC ADAPTIVE IMMUNITY The specific immune system uses remarkably effective and adaptive defense mechanisms capable of recognizing foreign invaders, destroying them, and retaining a memory of the encounter such that an even more effective defense (adaptive) will be achieved after subsequent exposure. As previously described, B and T lymphocytes are the cellular mediators of specific adaptive immunity. B cells are said to provide “humoral” immunity because the antibodies they produce are found in body fluids, or “humors.” T cells provide “cell-mediated” immunity because they recognize antigen presented on the surface of cells. To achieve immunity against specific antigens, B and T lymphocytes must be capable of recognizing an enormous range of foreign antigen yet not be reactive to self tissues.
Differentiation between self and nonself requires a complex lym- phocyte development process in which self-reactive lymphocytes are destroyed and potentially useful lymphocytes are preserved. The MHC proteins have a primary role in enabling lymphocytes to react to foreign antigen while remaining tolerant to self antigen. Self-tolerance is not always effectively maintained, and impairment in self-tolerance can result in the development of autoimmune disorders (see Chapter 10).
MAJOR HISTOCOMPATIBILITY COMPLEX A cluster of genes on chromosome 6 is known as the major histocompat- ibility complex (MHC). In humans, the MHC is also known as the human leukocyte antigen (HLA) complex. The proteins made by these genes are displayed on the surface of body cells and mark them as “self.” The MHC contains three classes of genes: I, II, and III (Fig. 9.24). Class I and II genes code for proteins that display, or “present,” antigens on the surface of cells. Antigen presentation is a vital first step in the initiation of an immune response. T lymphocytes cannot recognize foreign antigens unless they are displayed on MHC proteins on the surface of a cell. Class III genes code for a variety of proteins, many of which are important to inflammatory reactions, including several complement proteins.
A great deal of polymorphism is found in the MHC class I and II genes, which means that it is highly unlikely that one individual will have exactly the same MHC genotype as another individual. For example, three gene loci for MHC class I proteins (A, B, C) are located on each chromosome 6, and an individual inherits one chromosome from each parent for a total of six MHC class I genes. Each of these genes has many different forms (alleles) such that each of the six is likely to be different (Fig. 9.25). Related individuals will generally be more similar but not identical (unless identical twins). The “matching” of MHC gene expression is an important consideration for tissue and organ transplanta- tion. The closer the match is, the less likely that the host will reject the transplant. An individual also receives six MHC class II genes that are expressed on specialized antigen-presenting cells, such as dendritic cells, macrophages, and B cells. Because of the potential for mixing and matching of class II MHC gene products, an individual may express 10 to 20 different MHC class II proteins. The MHC class I and II proteins on the surface of cells display both self and foreign antigens
Receptors for antigen presentation
found on macrophages and B cells
Class I Class II Class III
Receptors for antigen presentation
found on nucleated cells
Complement components and others
FIG 9.24 Major histocompatibility complex genes are categorized into three main groups known as class I, II, and III. Class I and II genes code for antigen-presenting proteins, whereas class III genes code for a heterogeneous group of proteins, many of which serve immune functions.
Class II MHC
DP DQ DR
Class I MHC Class III
B C A
e.g.: DPw1 DPw2 DPw3 DPw6
e.g.: DQ1 DQ2 DQ3 DQ9
e.g.: DR2 DR3 DR4 DR53
e.g.: B5 B7 B27 B81
e.g.: Cw1 Cw2 Cw3 Cw10
e.g.: A1 A2 A3 A80
FIG 9.25 Each individual receives six class I major histocompatibility complex (MHC) genes, including pairs of A, B, and C genes. One member of the pair is inherited from each parent. MHC class I genes are expressed in all nucleated cells of the body. Each individual also receives six class II MHC genes, three from each parent. However, class II proteins are composed of two polypeptide chains such that an individual may have 10 to 20 different MHC class II protein molecules. Class II MHC proteins are expressed on the surface of specialized antigen-presenting cells like macrophages, dendritic cells, and B cells. The structure of an individual’s MHC proteins is assessed to determine the “tissue type” when matching for tissue transplantation procedures.
is watery and low in protein; fibrinous exudate is thick, sticky, and high in protein; purulent exudate contains infective organisms, leukocytes, and cellular debris; and hemorrhagic exudate contains red blood cells.
• Systemic manifestations of inflammation include fever, neutrophilia, lethargy, muscle catabolism, increased acute phase proteins (CRP), and increased ESR. These responses are attributable to the IL-1, IL-6, and TNF-α released from macrophages and inflamed tissues.
CHAPTER 9 Inflammation and Immunity 177
9.27). The MHC I–antigen complexes then travel to the cell membrane, where they are displayed. Recognition of foreign antigen in association with the MHC I protein on the cell surface targets the presenting cell for destruction by cytotoxic T cells. When the cytotoxic T cell binds to the MHC I–antigen complex (and coreceptors), it is stimulated to release enzymes and pore-forming proteins (perforins) that lyse the target cell. Cytotoxic T cells can only recognize an antigen if it is physically bound to an MHC class I molecule. Cytotoxic T cells are thus said to be MHC class I restricted.
MHC Class II Presentation MHC class II proteins are used to present antigens obtained from extracellular sources. Extracellular antigens must first be engulfed by the antigen-presenting cell. Cells of the monocyte–macrophage lineage, dendritic cells, and B cells are responsible for presenting antigen by MHC II. Macrophages and dendritic cells obtain foreign antigens by phagocytosis and are thus able to process and present a large number of different antigens. They are said to be “nonspecific” for this reason. B cells, on the other hand, are particular about the antigens that they engulf. The antigen must specifically bind to the BCR to be ingested by a B cell. Each B cell has only one type of BCR and therefore processes and presents only one specific antigen. The specificity of the BCR corresponds to the antibody that the activated B cell will produce. The process of B-cell activation is explored in the section titled “Mechanisms of Humoral Immunity.”
After the antigen-presenting cell has ingested an antigen, it is degraded into fragments within the cellular phagosomes (endocytic vesicle). MHC II proteins are synthesized on the rough ER and pick up an antigen
proteins and do not react to self peptides displayed by self MHC proteins. This concept is explored further in the section “Mechanisms of Cell- Mediated Immunity.” The sources of antigen, mechanism of antigen processing, and T-cell response to antigen are quite different for MHC I and MHC II reactions.
MHC Class I Presentation Nucleated cells continuously produce MHC class I proteins on the rough endoplasmic reticulum (ER), where they are combined with various peptide fragments that are present in the cytoplasm. These peptides result from degradation of normal intracellular proteins. The MHC I–peptide complexes are cycled to the cell surface for inspection by T cells. Normal MHCs displaying normal cellular proteins are ignored by T cells. If abnormal proteins are produced in the cell, then the MHC I–peptide complex will be recognized as foreign and an immune response will occur. The peptide antigens presented on MHC I are of intracellular origin. Because viruses are able to gain access to cells directly, viral protein is a common source of foreign MHC class I antigens. Abnormal intracellular proteins produced by mutant cells may also be presented on MHC I, thus targeting them for immune destruction. Before intracel- lular proteins can be presented at the cell surface, they must be processed and transported to the ER, where they are combined with newly syn- thesized MHC class I protein (Fig. 9.26). Peptide fragments are generated in the cytoplasmic proteasomes and escorted through the ER by special transporters called transporters associated with antigen processing (TAPs). The TAPs are located near the MHC I complexes on the ER membrane and target the peptides to the MHC I–binding cleft. The MHC I–binding cleft can accommodate peptide fragments of 8 to 11 amino acids (Fig.
Class I MHC pathway ER
Cytosolic protein
Proteasome
Normal mRNA
TAP
CD8+ CTL
Peptides in cytosol
Viral RNARibosome
Virus
Class I MHC
FIG 9.26 Nearly all nucleated cells of the body are able to process and display antigen in association with major histocompatibility complex (MHC) class I protein. The antigens come from the intracellular compartment, and a common source of foreign antigen is viral infection. The viral proteins made within the cell’s cytoplasm are processed into peptide fragments in the proteasome and then enter the endoplasmic reticulum (ER) through TAP transporters. There they combine with MHC class I proteins. The MHC class I–antigen complex then shuttles to the cell surface within a vesicle. When the vesicle combines with the plasma membrane, the MHC class I–antigen complex is displayed on the cell surface. CTL, Cytotoxic T lymphocyte; TAP, transporter associated with antigen processing. (Redrawn from Abbas AK et al: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders, p 124.)
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C
C
α1 α2
α3
β2- microglobulin
Peptide-binding cleft Peptide
N N
Disulfide bond
Ig domain
Class I MHC
Transmembrane region
A B
FIG 9.27 Schematic (A) and ribbon (B) diagrams of the class I major histocompatibility complex molecule. Note that the peptide-binding cleft is formed from one polypeptide chain that restricts the size of peptide in the pocket to 8 to 11 amino acids. (From Abbas AK et al: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders, p 120.)
from the phagosome on their way to the plasma membrane (Fig. 9.28). The class II MHC molecule is formed by two protein chains, and the binding cleft is more flexible than that of MHC I proteins (Fig. 9.29). Peptides displayed by MHC class II proteins range in size from 10 to 30 amino acids. The MHC II–antigen complexes are then displayed at the cell surface where T helper cells can detect them. T helper cells can only recognize a foreign antigen if it is physically bound to an MHC II protein. T helper cells are thus said to be MHC II restricted. Naive T cells located in lymph nodes are usually presented with antigen by dendritic cells displaying foreign antigens on their MHC II proteins. Dendritic cells populate the body surfaces and mucous membranes. When they engulf antigen, they break their tissue attachments and migrate to lymph nodes where they interact with T helper cells.
MECHANISMS OF CELL-MEDIATED IMMUNITY T cells are able to recognize foreign antigen displayed on the surface of antigen-presenting cells through specialized receptors called T cell receptors (TCRs). Each T cell has tens of thousands of identical TCRs on its cell surface. Each T cell is thus able to recognize and respond to only a single antigenic epitope. This property is what makes T cells specific. The binding specificity of the TCR is determined by recombina- tion, rearrangement, and random mutations within the genes that code for the TCR-binding domain. Billions of different TCR amino acid sequences are possible, thus providing a tremendous diversity of potential antigen-binding specificities. This diversity increases the likelihood that one or more T cells will have the right TCRs to allow recognition of any of the various pathogens that may gain access to the body. The drawback to this random approach is that many TCRs will be useless or may bind self antigens. A rigorous selection process occurs in the
thymus such that self-reactive T cells are eliminated. This selection process requires at least two steps. In the first, T cells must demonstrate an ability to recognize self MHC proteins displayed on the surface of specialized thymic cells. Portions of the TCR must make appropriate contact with the MHC protein, or the T cell will not be able to respond to antigens presented on the cell surface. Expression of either CD4 or CD8 on the T cell helps determine which class of MHC the T cell must fit. T cells that do not have functional TCRs undergo apoptosis in the thymus. The second requirement is that the TCR does not bind tightly to MHC proteins that are displaying normal self-derived peptides. Tight binding to self peptides also triggers the cell to initiate apoptosis. T cells that pass these tests migrate to secondary lymphoid tissues to await foreign antigens. Exposure of a T cell to its corresponding antigen results in expansion of the T cell into a clone of cells that all recognize the same antigen. This process ensures that useful T cells are maintained in the body as memory cells, whereas T cells that do not encounter antigen will not proliferate. Members of the T-cell clone migrate to lymphoid organs throughout the body, where they can respond rapidly should the same antigen reenter the system. The life span of mature T cells is long, but the numbers of memory cells in a clone will decline over time. However, intermittent exposure to the antigen is likely to occur and will stimulate proliferation and maintain immunity.
The two major types of T cells, T helper cells and cytotoxic T cells, react quite differently to activation of their TCRs by antigen and are therefore described separately in the following sections.
T Helper Cells (CD4+) T helper cells recognize antigen in association with MHC class II molecules. The CD4 protein is needed to enable T helper cells to bind the MHC II protein, whereas the TCR recognizes the specific antigen
CHAPTER 9 Inflammation and Immunity 179
Class II MHC pathway ER
Lysosome
Phagosome
Peptide fragments
Endocytosis of extracellular protein
CD4+ T cell
Invariant chain (Ii)
Class II MHC
FIG 9.28 Only specialized cells are able to obtain extracellular antigen for processing and presentation in association with major histocompatibility complex (MHC) class II protein. These cells are primarily dendritic cells, macrophages, and B cells. The antigen is first engulfed into a vesicle called a phagosome, which fuses with a lysosome. Enzymes within the phagosome break the protein into pieces. MHC II molecules are synthesized on the endoplasmic reticulum (ER) and then transported to the phagosome in a vesicle. The binding cleft of the MHC II protein is complexed with a blocking protein to prevent it from retrieving peptide before it reaches the phagosome. The phagosome and vesicle fuse, and the MHC II loses its blocking protein and picks up an antigen peptide. The complex then migrates to the cell surface and combines with the cell membrane. The MHC II–antigen complex is then displayed on the cell surface. (Redrawn from Abbas AK et al: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders, p 124.)
C C
Transmembrane region
Peptide
Disulfide bond
Ig domain
N
α1
N
β1
Peptide-binding cleft
α2 β2
Class II MHC
A B
FIG 9.29 Schematic (A) and ribbon (B) diagrams of the class II major histocompatibility complex (MHC) molecule. Note that the peptide-binding cleft is formed from two separate polypeptide chains, which allows the size of peptide in the pocket to be 10 to 30 amino acids. (From Abbas AK et al: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders, p 121.)
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and types of cytokines. These cytokines provide the “help” that T helper cells give to other cells of the immune system. For example, IL-2 activates helper and cytotoxic T cells, NK cells, and macrophages; and IFN-γ is a potent activator of macrophages. IL-2 and IFN-γ are the main cytokines secreted by TH1 cells. The cytokines secreted by TH2 cells have stimulatory effects on B cells (e.g., IL-4, IL-5, IL-13). In addition, when a B cell is serving as the antigen-presenting cell, T helper cells provide specific B-cell help through direct cell-to-cell contact by receptor proteins. The TH17 lymphocytes secrete IL-17, a cytokine that stimulates neutrophil recruitment and prompts fibroblasts and other cells to secrete more proinflammatory signals. TFH lymphocytes reside in the lymph node follicles where they produce cytokines that stimulate B cells. TREG
being presented (Fig. 9.30). Binding of the TCR to its corresponding antigen generates a signaling cascade in the cytoplasm of the T helper cell. The TCR is linked to this signaling cascade through another protein called CD3. Stimulation of CD3 results in the activation of enzymes (kinases) in the cytoplasm that mediate the production of two second messengers: inositol trisphosphate (IP3) and diacylglycerol (DAG) (see Chapter 3). Inositol trisphosphate initiates a rise in the concentration of intracellular calcium ions, which also act as second messengers to change cell behavior. Other protein kinases turn on the genes for cytokines (e.g., IL-2, IFN-γ, and others), IL-2 receptors, and other cell surface proteins. As previously mentioned, the subtypes of T helper cells (i.e., TH1, TH2, TH17, TFH, and TREG) secrete somewhat different amounts
Antigen-presenting cell
CD4
CD3
PIP2
DAG
Protein kinase C RAS activationIP3
MHC II
TCR
Helper T cell
�
PLCγ
Ca2+
NFAT
Activation of gene transcription
AP-1NF�B
IL-2 receptors Proliferation of cloneIL-2
FIG 9.30 T helper cells can recognize and bind antigen in association with major histocompatibility complex (MHC) class II molecules. The T-cell receptor (TCR) on the T helper cell binds to the antigen, and the CD4 protein recognizes the MHC class II protein. Binding is highly specific because the TCR must match the antigen fragment precisely. Once binding is achieved, CD3 and ζ proteins associated with the TCR are activated to initiate intracellular enzyme cascades. Major signaling pathways in activated T cells are shown. These ultimately result in activity of transcription factors and changes in gene activity. AP-1, Activation protein-1; DAG, diacylglycerol; IP3, inositol 1,4,5-trisphosphate; NFAT, nuclear factor of activated T cells; NFκB, nuclear factor kappa B; PIP2, phosphatidylinositol 4,5-bisphosphate; PLCγ, phospholipase C-γ.
CHAPTER 9 Inflammation and Immunity 181
complementary CD95 proteins (Fas) found on the surface of target cells. Normal, healthy cells do not express CD95 and are not recognized by cytotoxic cells. Binding of the CD95L to CD95 triggers programmed cell death (apoptosis) of the target cell (see Fig. 9.32). This system is thought to be particularly important in culling senescent cells and self-reactive lymphocytes.
MECHANISMS OF HUMORAL IMMUNITY B cells are responsible for antibody-mediated (humoral) immunity. B cells have two major subpopulations: memory cells and plasma cells. Memory B cells contain antigen receptors and function in a manner similar to memory T cells. In other words, memory of exposure to an antigen is stored in a clone of memory B cells. When exposed to the same type of antigen in the future, these memory B cells are able to respond rapidly with appropriate antibodies.
Some B cells differentiate into short-lived antibody-producing factories called plasma cells. All of the plasma cells in a clone secrete antibodies with identical antigen-binding specificity (monoclonal antibody). The secreted antibodies circulate in the blood and body fluids and bind specifically to the antigen that triggered their production. Once antigen is cleared, the population of plasma cells declines and the antibody concentration (titer) falls. However, some long-lived plasma cells migrate to the bone marrow where they continue to secrete a level of antibody sufficient to provide immediate protection upon the next exposure to the same antigen.
Antigen Recognition by B Cells During their development in the bone marrow, B cells begin to express BCRs on their cell surfaces. The structure of the antigen-binding area on the BCR is randomly determined in a manner similar to that described for TCRs. Each BCR is coded for by two distinct types of genes: one for the variable region, which makes up the antigen-binding site; and one for the constant region, which is essentially the same for all antibodies of a given class (Fig. 9.33). The structure of the BCR bound to the B-cell
lymphocytes secrete inhibitory cytokines such as IL-10 and TGF-β to help control inflammation and immune reactions to prevent excessive tissue damage (Fig. 9.31).
Cytotoxic T Cells (CD8+) Cytotoxic T cells recognize antigen displayed in association with MHC class I protein. The CD8 protein is needed to facilitate binding to the MHC I, whereas the TCR specifically recognizes the presented antigen (Fig. 9.32). Binding of the TCR to its corresponding antigen triggers a number of responses in the cytotoxic T cell. This process is similar to that described for T helper cells and involves signal transduction through CD3 proteins. Antigen binding by cytotoxic T cells is not sufficient to activate them. Cytotoxic T cells also require costimulation by IL-2 cytokines. IL-2 is secreted primarily by activated T helper cells (TH1). Thus cytotoxic T cells require cytokine “help” before they proliferate effectively. Cytokines are generally not enough to induce significant proliferation of target cells unless other coactivators are also presented by target cells (see Fig. 9.32). Once activated, cytotoxic T cells proliferate into memory cells as well as effector cells. Effector cells accomplish their cytotoxic functions in two ways: through perforins and through CD95.
Perforins are proteins manufactured in the cytotoxic T cell and stored in granules (vesicles) within the cytoplasm. A number of pro- teolytic enzymes (granzymes) are located in the granules along with the perforins. Binding to the target cell causes the granules to migrate to the contact site, where they are released onto the target cell membrane. The perforins assemble into pores, which then allow the granzymes to move into the target cell. Granzymes degrade DNA and trigger target cell death (apoptosis).
Perforins function in a similar manner to the complement membrane attack complex previously described. It is not entirely clear how the cytotoxic T cell manages to escape injury in this process. Presumably, the perforins and granzymes are focused on the target cell in some controlled manner.
The CD95 protein on cytotoxic T cells is called the CD95 ligand (CD95L) or the Fas ligand (FasL). It can bind specifically to
T helper cell
TH1
IFN� IL17IL4 IL5 IL13
IL4 IL21
TGF β IL10
TH17 TFH TREGTH2
CD4
FIG 9.31 Subtypes of CD4 T cells have different functions, including different cytokine production and secretion.
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surface is similar to the structure of IgM. Rearrangement, recombination, selective splicing, and random mutations of variable-region genes allow for great diversity of BCR-binding specificities. The potential number of different BCR structures is enormous. Some of these combinations are unsuitable for BCR assembly, and it has been estimated that a typical human B-cell population can recognize approximately 1011 different antigenic epitopes. As is the case with T cells, useful B cells—ones activated by antigen—will be preserved in the body, whereas B cells that encounter no antigen will not proliferate. Binding of an antigen to the B cell results in the cross-linking of two surface BCR proteins and initiates an intracellular cascade. These cascades activate transcription factors within the B cell (NFκB, NFAT, AP-1) that regulate genes involved in proliferation and differentiation of the B cell (Fig. 9.34).
The growth and activity of B cells that recognize protein antigens are regulated by helper T cells. Binding of antigen to the B cell’s BCR is a necessary but insufficient stimulus to produce an effective B-cell clone in most cases. To be effectively activated, the B cell must engulf some of the antigen, process it, and present it to T helper cells. This activity will initiate cell-to-cell contact between the B cell and its complementary T-cell helper. A number of receptor interactions bind the T cells and B cells together, in addition to the main MHC II–TCR interaction, and include CD80–CD28 and CD154–CD40 (Fig. 9.35). These cell-to-cell binding interactions stimulate intracellular signaling pathways in the B cell (and T helper cell) that promote clonal expansion and differentiation. B cells also require certain cytokines to proliferate and begin antibody synthesis. B cells are quite dependent on T-cell help during the initial exposure to antigen (primary response), but less so on subsequent exposures. Some types of B cells have BCRs that bind nonprotein antigens, such as bacterial carbohydrates and lipids. Because T cells only recognize peptides, these types of B-cell responses are T-cell
�
Perforins and granzymes
Cytotoxic T cell Virally
infected cell
Cell lysis or apoptosis
LFA-1
TCR
CD2
CD3
CD28
FasL Fas Cell apoptosis
ICAM-1
Class I MHC
LFA-3 Peptide
B7-1/ B7-2
FIG 9.32 Cytotoxic T cells are able to recognize and bind antigen in association with major histocompatibility complex (MHC) class I molecules. The T-cell receptor on the cytotoxic T cell binds to the antigen, and the CD8 protein recognizes the MHC I protein. Binding is specific. Binding of a cytotoxic T cell to its target stimulates granules containing perforin and granzymes to migrate to the cell contact site. Perforins then assemble into pores on the target cell, through which the granzymes can enter the target cell cytoplasm. The granzymes interrupt the cellular DNA and trigger apoptosis. FasL, Fas ligand (CD95L); ICAM, intercellular adhesion molecule; LFA, leukocyte function–associated antigen; TCR, T-cell receptor.
DNA
V1
C4 C4C1 C1
C2
H H
C2
C3 C3
V1 C4 C1 C2H C3
V1V2
V2
V2
FIG 9.33 Two major classes of genes are responsible for coding for the variable (V) and constant (C) regions of an antibody. Variable genes code for the antibody region that binds to antigen. Constant genes form the stem of the antibody and are the same for any antibody of a given class.
CHAPTER 9 Inflammation and Immunity 183
Peptide antigen
Protein kinase C RAS activationIP3
B cell
Ca2+
NFAT
Activation of gene transcription
AP-1NF�B
Differentiation into memory cells and plasma cells
Proliferation of clone
PIP2
DAG
PLCγ
FIG 9.34 Major signaling pathways in B cells. Cross-linking of two surface B-cell receptors initiates intracellular pathways that subsequently activate several transcription factors leading to altered gene activity. AP-1, Activation protein-1; DAG, diacylglycerol; IP3, inositol 1,4,5-trisphosphate; NFAT, nuclear factor of activated T cells; NFκB, nuclear factor kappa B; PIP2, phosphatidylinositol 4,5-bisphosphate; PLCγ, phospholipase C-γ.
independent. Other costimulatory signals, such as the complement fragment C3d on the antigen, may provide the necessary costimulation to achieve a B-cell response and antibody production. It is doubtful that memory cells are formed in this process (Fig. 9.36).
ANTIBODY STRUCTURE Each antibody (immunoglobulin) molecule contains two identical light polypeptide chains joined by disulfide bonds to two identical heavy polypeptide chains. The geometry of the relationship between the heavy (H) and light (L) chains forms a Y-like structure. The H chains form the stem of the Y, and the L chains are on the outside of the arms of the Y. The antigen-binding end of the antibody is often called Fab (antigen-binding fragment), whereas the stem is called Fc (constant fragment). It is the structure of the constant fragment that determines the antibody class.
Antibodies are differentiated into five classes: IgG, IgM, IgA, IgD, and IgE. The structure and properties of the immunoglobulin classes
are listed in Table 9.4. IgG and IgE circulate as single molecules or monomers; IgA is a dimer (two antibodies joined together); and IgM consists of five antibody molecules joined together to form a pentamer. IgD is found mainly on the B-cell plasma membrane and does not circulate in significant quantity. IgD is thought to participate in signal transduction across the B-cell membrane along with the BCR. Different antibody classes serve different immune functions in the body.
IgG, the most common type of immunoglobulin, accounts for 75% to 80% of all immunoglobulins. It is found in nearly equal proportions in the intravascular and interstitial compartments and has a long half-life of about 3 weeks. IgG is the smallest of the immunoglobulins and can more easily escape the bloodstream to enter the interstitial fluid sur- rounding tissues.
IgM accounts for about 10% of circulating immunoglobulins and is predominantly found in the intravascular pool. Its large pentamer structure prevents it from migrating through the capillary wall. IgM has a half-life of 10 days. It is the first immunoglobulin to be produced on exposure to antigens or after immunization and is the major antibody
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IgA is produced by plasma cells located in the tissue under the skin and mucous membranes. IgA is primarily found in saliva, tears, tra- cheobronchial secretions, colostrum, breast milk, and gastrointestinal and genitourinary secretions. Transport of IgA into secretions is facilitated by binding to a secretory component produced by epithelial cells. This
found on B-cell surfaces. IgM is the antibody class that works best to activate complement, which is important for cytotoxic functions in the immune system. Only one molecule of IgM is needed to activate complement, whereas two molecules of IgG are needed to activate complement.
Antigen presentation to helper T cell
CD40 CD40
CD28CD80
CD28CD80
Activation of T helper to release cytokines
Cytokines
Helper T cell
B cell CD154 CD154
FIG 9.35 Activation of a B cell requires T helper cell “help.” This help is given through a number of cell-to-cell interactions via receptors, as well as through the secretion of cytokines that stimulate B-cell growth and differentiation.
CR2 CD19
CD81
Igα Igβ
B-cell activation
Complement activation
Recognition by B cells
Signals from Ig and CR2
complex
Bound C3d
Microbe
IgM
P
P
P
P
FIG 9.36 In response to nonprotein antigens (T-cell independent), B cells can be activated by complement opsonins on the microbial antigen. The complement–receptor (CR) interaction provides a costimulatory signal to the B-cell receptor–antigen signal. (Redrawn from Abbas AK et al: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders, p 159.)
CHAPTER 9 Inflammation and Immunity 185
identified in the serum. IgE has a half-life of 2 days. It has a role in immunity against helminthic parasites (worms) and is responsible for initiating inflammatory and allergic reactions (e.g., asthma, hay fever). IgE functions as a signaling molecule and causes mast cell degranulation when antigen is detected at the mast cell surface (see Chapter 10).
Class Switching and Affinity Maturation During the course of an antibody response, the class of antibody manufactured by a particular B cell usually changes. The antigen-binding
complex is called secretory IgA (Fig. 9.37). The half-life of IgA is about 6 days.
IgD is found in trace amounts in the serum (1%) and is located primarily on the membranes of B cells along with IgM. IgD has a half-life of 3 days. IgD functions as a cellular antigen receptor acting to stimulate the B cell to multiply, differentiate, and secrete other specific immunoglobulins.
IgE is found bound by its Fc tail to receptors on the surface of basophils and mast cells (Fig. 9.38). Only trace amounts of IgE are
TABLE 9.4 Diagram and Properties of Immunoglobulin Classes
IgG IgM IgA IgD IgE
Property
Half-life (days) 23–25 5 6 3 2.5 Percent total immunoglobulin 80 6 13 0–1 0.002 Molecular weight (daltons) 146,000 900,000 160,000 184,000 200,000 Complement fixation ++ +++ − − − Placental transfer +++ − − − − Receptor for macrophage +++ − − − − Reaction with staph protein A +++ − − − − Passive cutaneous anaphylaxis +++ − − − + Transported across epithelium − Occasionally ABO
isoaggulutinins, rheumatoid factor
+ − − Prominent antibody activity Anti-Rh against
infections Against
infections Binds to B cells in
presence of IgM Mast cell sensitization,
cytophilic antibody skin sensitizing antibody
Cell-Binding Functions Mononuclear cells + − − − ?/+ Neutrophils + − + − − Mast cells/basophils − − − − +++ T cells/B cells + + + + + Platelets + + − − ?
Data from Abbas AK: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders.
+ IgA Secretory
component
Secretory IgA
FIG 9.37 IgA is often combined with a protein called secretory component, which helps bind two IgA molecules together at their Fc ends.
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For example, IFN-γ promotes IgG production, IL-4 promotes IgE production, and transforming growth factor-β (TGF-β) promotes IgA production (Fig. 9.39).
Knowledge about the normal progression of class switching may be helpful in determining whether an infectious process is acute or chronic. For example, a person newly infected with hepatitis B virus would be expected to have primarily IgM antihepatitis B antibodies, whereas in chronic or previous infection, B cells would switch class to produce mainly IgG. The relative concentrations of antihepatitis B IgM and IgG can help identify the time of onset of the infection.
Over the course of a B-cell antibody response, the affinity with which the antibodies bind to antigen often increases. This is thought to occur because of a process called affinity maturation during which B cells undergo a hypermutation response, producing random changes in the antigen-binding pocket of the BCR. Those that bind antigen most avidly are stimulated to proliferate to a greater extent. Thus the antibodies formed later in an immune response are more efficient in binding antigen at lower and lower concentrations. Affinity maturation occurs in specialized germinal centers in the lymph nodes.
Antibody Functions Antibodies function in a number of ways to enhance the localization and removal of antigens from the body. These functions can generally be summarized as precipitation, agglutination, neutralization, opsoniza- tion, and complement activation. Precipitation and agglutination occur because each arm of the immunoglobulin Y structure can bind an antigenic epitope. This structure allows the antibodies and antigens to bind together into large insoluble complexes that precipitate out of body fluids (Fig. 9.40). Agglutination refers to the same process as applied to cellular antigens rather than soluble antigens. It is efficient for phagocytic cells to find the large complexes and clear them from the system.
site does not change significantly and remains specific for the particular antigen that initiated the response. To switch class, the B cell selects different constant region genes to splice to the antigen-binding fragment. Thus most B cells begin by using genes that code for IgM and IgD. Then the B cell switches to produce IgG, IgE, or IgA. The triggers that determine the class of antibody a particular B cell will produce are not completely understood. Some cytokines have a role in class switching.
Fc�Rl
Antigen
Plasma cell
Mast cell
IgE
FIG 9.38 Mast cells bind IgE antibody with their Fc receptors (FcεRI) and display the IgE on the cell surface, where they are available to bind antigens.
IgM+
B cell
IgG subclasses (IgG1, IgG3) IgE IgA
Isotype switching
IgM
Activated B cell
CD40
Helper T cell
CD40 ligand
CD28
B7-1, B7-2
IL-4 IFN-�
Mucosal tissues; cytokines
(e.g., TGF-�)
FIG 9.39 Activated B cells undergo class switching from IgM to IgG, IgE, or IgA. Class switching is influenced by the presence of specific cytokines. IFN, Interferon; IL, interleukin; TGF, transforming growth factor. (Redrawn from Abbas AK et al: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders, p 252.)
CHAPTER 9 Inflammation and Immunity 187
Phagocyte
Fc receptor
Ag Ag
Ag
Ag Ag
FIG 9.40 Large antigen (Ag)–antibody complexes tend to precipitate out of solution, which makes it easier for phagocytic cells to find and eliminate the antigens.
Antibodies can function as antitoxins by neutralizing bacterial toxin. This role is accomplished by binding the toxins before they can interact with cells or by covering the active portions of the toxin and inactivating it. Some antibodies are effective opsonins. They coat the foreign antigen and thereby make it more recognizable to phagocytic cells. Macrophages, neutrophils, eosinophils, and NK cells have receptors for the Fc ends of the antibodies, which help them bind to opsonized antigens. Antibodies thus make the innate phagocytic processes more efficient. Antibodies (IgG and IgM) bound to foreign antigens on cell membranes also can activate the complement cascade and trigger the release of chemotaxins and inflammatory mediators and the formation of the membrane attack complex.
PASSIVE AND ACTIVE IMMUNITY Immunity is a state of resistance against infection from a particular pathogen. Immunity is provided primarily by adequate levels of circulat- ing antibodies. Specific serum antibody concentrations can be measured by a blood test called an antibody titer. A sufficiently high antibody titer confers immunity by removing pathogens from the body before they cause signs and symptoms of illness. Immunity can be achieved passively or actively.
Passive Immunity Passive immunity involves the transfer of plasma (sera) containing preformed antibodies against a specific antigen from a protected or immunized person to an unprotected or nonimmunized person. As a treatment, this is indicated in the following situations: (1) when B-cell immunodeficiency exists; (2) when highly susceptible persons are exposed to a disease without adequate time for active immunization; and (3) when antibody injection may alleviate or suppress the effects of an antigenic toxin.
Passive transfer of antibodies can occur in a variety of ways. In the fetus, certain maternal IgG antibodies can cross the placental barrier. Most of the time these antibodies are beneficial and assist the newborn in resisting pathogens. However, in some cases these antibodies can be
damaging to the fetus, as occurs in hemolytic disease of the newborn. In this disorder, maternal antibodies bind to and lyse fetal red blood cells (see Chapters 10 and 13).
Antibody, complement, and macrophage function is deficient at birth. Newborns who are breast fed may have improved immune function. Newborns receive IgA antibodies through breast milk. The infant’s immature gastrointestinal tract and low proteolytic enzyme activity do not destroy all protein, which allows some of the IgA antibodies to be absorbed. These antibodies assist the infant in defending against bacterial and viral infections during infancy. It has been hypothesized by some researchers that IgA antibodies in breast milk may modify the ways that proteins cross the infant’s highly permeable intestinal mucosa and help prevent food allergies in later life (see Pediatric Consideration box).
Another method of passive immunity, called serotherapy, involves direct injection of antibodies into an unprotected person. The unpro- tected individual can receive a variety of substances, including immune globulin (human) such as IgG; specific immune globulins like hepatitis B immune globulin (human) or rabies immune globulin (human); plasma containing all human antibodies; or animal antibodies such as diphtheria antitoxin, tetanus antitoxin, botulism antitoxin, and antirabies serum.
Human immune globulin contains mostly IgG with traces of IgA and IgM. It is a sterile, concentrated protein solution that contains antibodies from the pooled plasma of many adults. It can be administered intramuscularly or intravenously, depending on the product. Human immune globulins may be used as prophylaxis against hepatitis B and as therapy for the following conditions: antibody deficiency disorders, pediatric acquired immunodeficiency syndrome, and hypogammaglobu- linemia after bone marrow transplantation.
Animal antibodies are given in specific situations only when necessary because of significant allergic risks with animal sera. Patients who have specific animal allergies or a history of asthma, allergic rhinitis, or other allergies are highly susceptible to serum sickness, anaphylaxis, or acute febrile reactions. Serum sickness occurs when antibodies bind to foreign proteins in the injected sera, forming immune complexes that precipitate into capillaries and joints and cause inflammation. Animal antibodies may be given to ameliorate toxins or venoms, such as those associated with botulism, diphtheria, rabies, tetanus, and snake and spider bites.
Active Immunity Active immunity confers a protected state attributable to the body’s immune response as a result of active infection or immunization. The development of active immunity requires the maturation and maintenance of memory B cells. On second exposure to antigen, the antibody response is much greater and more rapid (Fig. 9.41). Expo- sure to antigen can be achieved through active infection or through immunization. The immune system must be exposed to the antigen at a sufficient dose for an adequate length of time to stimulate an immune response.
Immunization tricks the immune system into responding to a perceived infection. Vaccines contain altered microorganisms or toxins that retain their ability to stimulate the immune system (antigenic properties) but do not have pathogenic properties. Vaccines can contain live and attenuated (altered) or killed infectious agents.
Vaccines that contain live, altered viruses or bacteria cause active infection but little injury to the vaccinated individual. These vaccines mimic a natural immune response, activating B and T cells, and provide good humoral and cellular immunity with longer-lasting memory and often lifetime immunity. Examples of vaccines registered in the United States are listed in Box 9.1.
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IgG
IgG
S e ru
m a
n tib
o d y
co n ce
n tr
a tio
n
IgM IgM
10 3 Secondary stimulus
Primary stimulus
PRIMARY RESPONSE
SECONDARY RESPONSE
Time (days)
FIG 9.41 Time phases in the immune response. The primary response takes much longer to develop and declines rapidly. On second exposure, a much quicker and greater antibody response is achieved.
B cells differentiate slower in infants
Maternal antibodies passed on to newborn
Thymus
Quantity and function of T lymphocytes decreased
IgM is produced at birth but specificity is decreased
Limited response to viral, fungal, and bacterial antigens
Inflammatory response to infection is immature
IgA, IgD, IgE production gradual
Maternal IgG passed through placenta and human milk
Maternal IgG decreased; limited replacement occurs
IgA present in colostrum
The immune system is immature in an infant. Infants generally do not produce immunoglobulin (Ig) until the beginning of the second month of life, and then production is slow (Hockenberry and Wilson, 2011). IgM is produced at birth, but specificity is decreased, limiting the infant’s ability to fight some antigens. IgM reaches adult levels by 9 to 12 months. IgA, IgD, and IgE begin gradual production in the second month of life and reach adult levels around early childhood.
Infants rely on maternal antibodies for production until their own immune system can mature. Maternal IgG is passed through the placenta and breast milk and for the first 3 months provides protection to the infant from antigens to which the mother has been exposed. IgG levels decline after 4 months and remain low until 6 months of age. Forty percent of infants achieve adult levels
of IgG by 1 year of age, with the remaining reaching adult IgG levels by 4 years of age. IgA is present in the colostrum and believed to protect the infant’s gastrointestinal tract until more IgA can be produced.
The thymus is large in infants and decreases in size over childhood. By the end of adolescence, the thymus shrivels and its function declines. The infant’s immune response is immature, resulting in a limited response to viral, fungal, and bacterial antigens.
Reference Hockenberry MJ, Wilson D: Wong’s nursing care of infants and children, ed 8,
St Louis, 2011, Mosby.
PEDIATRIC CONSIDERATIONS Changes in the Immune System in Infants
CHAPTER 9 Inflammation and Immunity 189
Data from www.fda.gov/BiologicsBloodVaccines/Vaccines/ ApprovedProducts/ucm093833.htm.
Adenovirus Type 4 and Type 7 Vaccine, Live, Oral Anthrax Vaccine Adsorbed BCG Vaccine Diphtheria and Tetanus Toxoids Adsorbed Diphtheria and Tetanus Toxoids and Acellular Pertussis Vaccine Adsorbed Diphtheria and Tetanus Toxoids and Acellular Pertussis Vaccine Adsorbed,
Hepatitis B (recombinant) and Inactivated Poliovirus Vaccine Combined Haemophilus b Conjugate Vaccine (plus various combinations including:
Diphtheria, Meningococcal Protein Conjugate, Tetanus Toxoid Conjugate, and Hepatitis B)
Hepatitis A Vaccine, Inactivated Hepatitis B Vaccine (Recombinant) Human Papillomavirus Quadrivalent (Types 6, 11, 16, 18) Recombinant Vaccine Human Papillomavirus Bivalent (Types 16, 18) and 9-Valent Influenza Virus Vaccine (Various including Types A, H1N1, B, H5N1) Japanese Encephalitis Virus Vaccine Inactivated Measles Virus Vaccine, Live Measles and Mumps Virus Vaccine, Live Measles, Mumps, and Rubella Virus Vaccine, Live Measles, Mumps, Rubella, and Varicella Virus Vaccine, Live Meningococcal Polysaccharide Vaccine, Groups A, C, Y, and W-135 Combined Pneumococcal Vaccine, Polyvalent Pneumococcal 7-Valent Conjugate Vaccine Pneumococcal 13-Valent Conjugate Vaccine Poliovirus Vaccine Inactivated Rabies Vaccine Rotavirus Vaccine, Live, Oral, Pentavalent Smallpox (Vaccinia) Vaccine, Live Tetanus and Diphtheria Toxoids Adsorbed for Adult Use Tetanus Toxoid Tetanus Toxoid, Reduced Diphtheria Toxoid, and Acellular Pertussis Vaccine
Adsorbed Typhoid Vaccine Live Oral Ty21a Typhoid Vi Polysaccharide Vaccine Varicella Virus Vaccine Live Yellow Fever Vaccine Zoster Vaccine, Live
BOX 9.1 Selected Vaccines Available for Immunization in the United States
KEY POINTS • Specific immunity refers to functions of B and T lymphocytes. Each lymphocyte
recognizes and reacts to only one particular antigen. On initial exposure to an antigen, lymphocytes undergo clonal expansion; consequently, many lymphocytes are distributed throughout the body to recognize and react to that particular antigen. These cells are called memory cells. Subsequent exposure results in a much faster and larger lymphocyte response.
• T cells, which mature in the thymus, have two major subgroups: T helper cells and cytotoxic T cells. T helper cells perform a central role in specific immunity. Activation of T helper cells results in secretion of the cytokines necessary for clonal expansion of T and B lymphocytes. Cytotoxic T cells locate and lyse abnormal cells through the actions of perforins.
• T lymphocytes are able to bind antigens only when they are displayed on the surface of cells. Cytotoxic T cells (CD8+) react to cells that have foreign MHC class I proteins on their surface. T helper cells (CD4+) bind to cells that have MHC class II proteins on their surface. MHC class II proteins are found on antigen-presenting cells (B cells, dendritic cells, and macrophages). These cells engulf foreign antigens and combine the antigens with MHC class II proteins on their cell surface.
• B and T cell functions are interdependent. T cells cannot respond to soluble antigens. B cells can process free antigen and present it to T cells. On first exposure, B cells are minimally activated by antigen unless they are stimulated by cytokines and coreceptors from T cells.
• B lymphocytes mature in bone marrow and lymph tissue. B cells have receptors on their surfaces that can bind antigens. Each B cell binds only one particular antigen. With appropriate T helper cell “help,” antigen binding causes the B cell to divide (clonal expansion). Some of the daughter cells become plasma cells, which actively produce and secrete antibodies. Other daughter cells (memory cells) resemble the original cell and are distributed in lymph throughout the body. On subsequent exposure to the antigen, antibody production is rapid.
• Antibodies are proteins that specifically bind a particular antigen. Antibodies have several functions, including precipitation, agglutination, neutralization, opsonization, and complement activation.
• The five major antibody classes are IgG, IgM, IgA, IgD, and IgE. Antibody class is determined by the structure of the Fc portion. IgG is the most prevalent antibody class (75%). IgM is the first kind to be produced on antigen exposure. IgA is found primarily in body secretions. IgD is present on the B-cell membrane and functions in signal transduction. IgE binds to basophil and mast cell membranes and mediates inflammation and allergy.
• Administration of preformed antibodies confers passive immunity. Passive immunity provides immediate but temporary protection. Active immunity occurs when individuals are exposed to antigen that stimulates their own lymphocytes to produce memory cells. Active immunity confers long-term protection but may take several weeks to develop.
INTEGRATED FUNCTION AND REGULATION OF THE IMMUNE SYSTEM
The innate and adaptive cells of the immune system work interdepen- dently to protect the host from foreign antigens. Efficient interdependent function depends on a complex communication network that allows coordination of various immune components. One of the reasons that the immune system uses such a complex communication system is to ensure that normal healthy tissue is not injured. The destructive powers of the immune system must be tightly regulated to avoid undue tissue damage. These regulatory controls can be affected by aging and disease. The effects of aging on immune function are described in the box Geriatric Considerations: Changes in the Immune System. In the
following sections, major events in the immune response to a new antigen are summarized and mechanisms of immune regulation are described.
INTEGRATED RESPONSE TO MICROBIAL ANTIGEN A new microbial antigen entering the body through the skin or mucous membranes will generally encounter tissue macrophages and dendritic cells stationed in strategic locations in the body as part of the mono- nuclear phagocyte system. Macrophages initiate activity of both innate and specific immune components (Fig. 9.42). First, activated macrophages release cytokines that initiate inflammation and chemotaxis. Some of these cytokines (TNF-α, IL-1) induce capillary endothelial cells to express selectins and integrin ligands that help circulating leukocytes adhere to the capillary wall (margination) and then move into the tissue locations of antigens (emigration). Neutrophils, macrophages, and NK cells are attracted to the infected area by chemotactic factors, some of which are released by macrophages, whereas others are products of the
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to the tissue find their targets through innate receptors on their cell surfaces. Thus they are as effective on first exposure to an antigen as they are on subsequent exposures. These receptors bind to complement opsonins and molecules expressed on microbes such as lipopolysaccharide and mannose. NK cells release cytotoxins onto their targets; macrophages and neutrophils phagocytose and digest their targets.
Dendritic cells and macrophages ingest protein antigens to process and present them to T helper cells in association with MHC class II proteins. Dendritic cells move from the tissue and travel to the T-cell zones of lymph nodes. Activation of T helper cells results in the secretion of a variety of cytokines that boost the growth and activity of many immune cells, including macrophages, neutrophils, NK cells, cytotoxic and T helper cells, and B cells. Some of the cytokines produced by
complement cascade and tissue injury. The complement cascade is activated by the alternative pathway on primary exposure to an antigen. Complement fragments C3a and C5a are potent inflammatory agents. Complement activation also results in the formation of membrane attack complexes that directly lyse cellular antigens.
Tissue injury associated with the infectious process also activates both the coagulation cascade, which forms a fibrin meshwork to help entrap and localize the agent, and the kinin system, which promotes vasodilation to increase blood flow to the area. A number of other vasodilatory chemicals may be released from mast cells in the area when they degranulate. These inflammatory chemicals lead to the classic manifestations of inflammation: warmth, swelling, redness, pain, and loss of function. Neutrophils, macrophages, and NK cells that emigrate
Antigen
Inflammatory cytokines
Acute phase proteins from liver
Cytokine "help"
Dendritic cell
Cytokine
"help"
Inflammation
Chemotaxis
Complement activation
NK cell Antigen lysis
Antibody secretion
Helper T cell
B cell
BCR
Neutrophil Capillary
Macrophage
Stimulates WBC production at marrow
T cell "help"
Fc receptor
Fc receptor
MHC II
TCR
CD4
MHC II TCR
CD4
FIG 9.42 Diagram showing the integrated function of a number of immune components. Note that the macrophage is at the center of many immune functions, including chemotaxis and inflammation, presentation of antigen to T cells, and phagocytosis of antibody–antigen complexes. BCR, B-cell receptor; MHC, major histocompatibility complex; NK, natural killer; TCR, T-cell receptor; WBC, white blood cell.
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Variable response of B cells to antigens
Decreased antibody response
Thymus decreases in weight, size, and function
Decreased maturation of lymphocytes (T cells)
Decreased cell-mediated immunity
Decreased response to viral, fungal, and bacterial antigens
Decreased speed of repair of tissue damage
Change in cellular composition of spleen and lymph nodes
Increased production of autoantibodies
In the elderly, immune system function is altered with a decreased ability to respond to antigenic stimulation. The elderly are able to respond to infections with previously produced “remembered” antibodies. However, they are less able to respond to new antigens. As a result of these changes, there is decreased speed of repair of tissue damage and increased vulnerability to disease. The cells of the immune system in elderly persons are not able to proliferate or reproduce as effectively as those in younger persons. Although the total number of T cells remains the same, T-cell function is decreased. T cells are less able to
proliferate and have decreased cytotoxicity. Antibody production also decreases, especially antibodies such as IgG. There is also a rise in autoantibody production, which may influence the increase in autoimmune disease in the elderly. Thymus size decreases after puberty, causing a decline in thymic hormone production, decreased T-cell differentiation, and reduced T-cell–related B-cell differen- tiation. Usually thymic hormone secretions stop after age 60 years. However, the role of thymus involution in elderly immune system changes is currently uncertain.
GERIATRIC CONSIDERATIONS Changes in the Immune System
activated T cells and macrophages stimulate stem cells in the bone marrow to produce more WBCs (neutrophilia). Other cytokines affect the brain (inducing fever, lethargy, and anorexia) and the liver (producing acute phase proteins).
Meanwhile, certain B cells that encounter the antigen in the lymph nodes will have the correct BCR to bind and internalize it. Internalized antigen is then processed and presented to T helper cells in association with B-cell MHC II proteins. Complementary T helper cells then bind the B cell (via MHC II–TCR–CD4 interactions) and provide help to the B cell through the secretion of cytokines and through coreceptor- mediated second-messenger signals. B cells thus activated proliferate into a clone of cells, with some becoming memory cells and others becoming plasma cells. Plasma cells synthesize and secrete antibodies that specifically bind the antigen. Significant antibody production takes 10 to 14 days to occur, and the infected individual may have signs and symptoms of illness during this time.
Antibodies enhance the function of innate phagocytic cells by col- lecting antigen into large complexes that are easier for nonspecific cells to locate and phagocytose. Activated T helper cells also secrete cytokines such as IL-2 and IFN-γ, which enhance the effectiveness of macrophages. After the antigen is cleared from the body, macrophages perform clean-up functions to remove inflammatory debris and dead neutrophils from the tissue. Macrophages also secrete enzymes and growth factors that stimulate tissue healing.
After the primary infection, B and T memory cells populate the body in much larger numbers and can mount an effective immune response quickly on second exposure. The individual then has immunity for the particular pathogen because the antigen will usually be cleared from the system before significant illness occurs.
INTEGRATED RESPONSE TO VIRAL ANTIGEN If the infectious agent is a virus, the sequence of events is somewhat different. Virally infected cells initiate cytotoxic T-cell activity, which serves to kill the infected cells. NK cells are important for detecting and destroying virally infected cells that have down-regulated their MHC I proteins, making themselves invisible to cytotoxic T cells. Helper T-cell responses and B-cell production of antibody to the virus occur by the processes previously described. However, neutrophils are less important in the response to viral infection.
Virally infected cells initiate a number of mechanisms to disrupt viral replication and prevent spread of viruses to other cells. Viral components such as viral double-stranded RNA or viral DNA can be bound to pattern recognition receptors within the host cells. These internal receptors are of the Toll-like receptor family and when activated initiate the production of type I interferons (IFN-α and IFN-β). Secreted interferons bind to receptors on nearby cells and help block viral infection
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KEY POINTS • Specific and innate immune cells work together to protect the body from
foreign antigens. Macrophages and dendritic cells play a central role because they are commonly the first immune cells to encounter the antigen. Mac- rophages secrete cytokines that stimulate WBC production and help WBCs locate the area. Tissue reactions activate the clotting cascade and kinin system, which help localize the antigen and promote movement of fluid and immune cells into the tissue.
• Macrophages and dendritic cells are antigen-presenting cells that engulf and display antigen on their cell surface in association with MHC class II proteins. T helper cells are specifically activated by these antigen-presenting cells. T helper cells secrete cytokines that promote the production of WBCs in the marrow, initiate proliferation of mature B and T cells, and stimulate the phagocytic potential of macrophages and neutrophils.
• B-cell proliferation and antibody secretion usually require T cell help. B cells internalize and present antigen to T cells, which then stimulate B-cell proliferation. B cells secrete antibodies that help phagocytic cells localize and destroy antigens.
• The immune response to primary exposure is slow and often insufficient to prevent illness. Memory cells that develop during primary exposure can mount a more effective response on subsequent exposure and usually prevent manifestations of illness.
• T and B lymphocytes must be tolerant to self. T lymphocytes capable of reacting with self tissue are thought to be destroyed or permanently inactivated during development in the thymus. One theory suggests that lymphocytes must come in contact with all self antigens during development and those that do not specifically bind self antigens are allowed to survive.
• B cells are subject to careful regulation by T helper cells and by negative feedback from high concentrations of circulating antigen–antibody complexes.
• Mechanisms to inhibit and control the immune response include activation of regulatory T-cell cytokines, complement inhibitors, circulating antiproteases, and antioxidants as well as degradation of inflammatory mediators.
C1. Other portions of the complement system are regulated by other binding proteins (e.g., factor I, factor H, and S protein). S protein is of particular importance. It prevents the complement membrane attack complex from attaching to and lysing cell membranes.
Protease inhibitors synthesized by the liver, such as α1-antitrypsin, help reduce excessive protein destruction by inhibiting destructive enzymes released from neutrophils.
The neuroendocrine system also has a role in immune regulation. Immune cells have receptors for glucocorticoid hormones and a number of neuropeptides, including enkephalins, endorphins, adrenocorticotropic hormone, oxytocin, somatostatin, and substance P. It is a well-known phenomenon that stress and depression can lead to reduced immune function. Some of these hormones are believed to be responsible for this effect. The immune system also affects the nervous system through secreted cytokines such as IL-1 and TNF-α, which induce sleep and malaise.
One of the most important mechanisms of terminating an immune reaction is the elimination of the inciting antigen. As the antigen is cleared, levels of many of the cytokines and costimulators are reduced so that “survival signals” are no longer given to lymphocyte populations and they undergo apoptosis.
Despite these complex and effective regulatory mechanisms, immune and inflammatory disorders are extremely common. Chapter 10 describes the pathophysiology of the common overreactions and underreactions of the immune system.
and replication by inhibiting protein synthesis and activation of enzymes that degrade RNA. These measures are taken to rid the body of virus even though they may result in significant cell injury and death. Virally infected cells may even express “death receptors” on their surface to alert the immune system to trigger an attack on them.
REGULATION OF IMMUNE FUNCTION The mechanisms that promote inflammation and enhance immune function are much better understood than those that negatively regulate these processes. However, the mechanisms for inactivating an immune response and keeping inflammation in check are just as important. The destructive powers of the immune system can cause severe tissue damage unless carefully controlled.
Inhibition of immune responses occurs in a number of different ways. The process of inducing tolerance to self antigens is of primary importance. Because both T and B lymphocytes produce antigen-binding receptors by a random process, generation of self-reactive lymphocytes cannot be prevented. As previously mentioned, B and T cells are subjected to a rigorous selection process as they mature in the bone marrow and thymus, respectively. Several theories have been proposed to explain how self-reactive cells are detected and eliminated. The clonal dele- tion theory suggests that cells in the thymus process and present self antigens to developing T cells. Those lymphocytes that avidly bind self antigens are triggered to initiate programmed cell death (apoptosis). There appears to be a critical time in fetal development when self antigens begin to be differentiated from foreign antigens. Before that time, antigens introduced into the fetus will be viewed as “self,” and tolerance to them will develop. By the same token, self antigens that are not presented to T cells in the thymus may be viewed as foreign. This situation may occur with certain so-called sequestered antigens, as would be found in the interior of the eye or testes. If these antigens are later released by trauma, an immune response may be directed against them.
Clonal deletion may not rid the body of all self-reactive lymphocytes; therefore many safeguards are in place to prevent their activation. A complex process of antigen processing and presentation is required before T and B cells can be effectively activated. A certain “dose” of antigen must be present to achieve an effective response. Antigen in very high concentrations appears to cripple lymphocyte responsiveness and may initiate apoptosis. Self antigens may be present in such high quantities that reactive lymphocytes are killed. Because dendritic cells, macrophages, and B cells are important antigen-presenting cells, they can exert some influence on T-cell activation by controlling the dose of antigen presented. Certain cytokines are known to influence the production of MHC proteins and can therefore alter the amount of antigen to which T cells are exposed.
B-cell activation requires a number of costimulatory signals from different sources. This complexity helps ensure that B cells will be activated appropriately. These signals include antigen binding to the BCR, T helper binding to the B-cell MHC class II protein, expression of costimulatory ligands and receptors, and secretion of cytokines that promote B-cell growth and differentiation into memory cells and plasma cells. In addition, B cells are subject to negative feedback by circulating antibodies.
Another mechanism of immune suppression is accomplished through cells that secrete inhibitory chemicals. Some subtypes of CD4 T cells may perform regulatory functions. They can inhibit immune responses by secreting immunosuppressive cytokines such as IL-10 and TGF-β.
Control of the complement, kinin, and clotting systems is achieved by a number of inhibitory binding proteins. C1 inhibitor, a glycoprotein, inhibits both Hageman factor (factor XII) and activated portions of
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Cells and tissues throughout the body participate in defense against foreign antigens. Some components of the immune system are able to react to a large number of foreign invaders upon first exposure. These innate components are essential for protecting the body while the specific immune defenses are being activated. Innate defenses include physical and biochemical barriers of the skin and mucous membranes, cells of the mononuclear phagocyte system, neutrophils, NK cells, and a large number of chemical mediators such as complement, clotting factors, kinin, and cytokines. Immunity to specific antigens is provided by B and T lymphocytes. T helper cells are important regulators of the immune
system because they secrete cytokines that enhance T-cell, B-cell, and macrophage function.
The forces of inflammation and immunity must be carefully controlled to prevent excessive tissue damage. Extensive measures are used to rid the body of self-reactive lymphocytes and to control reactions once a foreign antigen has been cleared. A well-functioning immune system not only successfully protects against foreign invaders and learns from the process so that it is even more effective on subsequent exposure, but also leaves healthy normal tissue unharmed.
S U M M A R Y
RESOURCES Immunology Abbas AK, Lichtman AH, Pillai S: Cellular and molecular immunology, ed 8,
Philadelphia, 2015, Saunders. Alberts B, et al: Molecular biology of the cell, ed 6, New York, 2015, Garland
Science, pp 1297–1342. Brostoff J, Roth D, Roitt I, editors: Immunology, ed 8, St Louis, 2012, Mosby,
pp 17–50. Dieffenbach CW, Tramont EC: Innate (general or nonspecific) host defense
mechanisms. In Bennett JE, Dolin R, Blaser MJ, editors: Mandell, Douglas, and Bennett’s principles and practice of infections diseases, ed 8, Philadelphia, 2015, Saunders, pp 26–33.
Hall JE: Resistance of the body to infection: II. Immunity and allergy. In Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2016, Saunders.
Hanson LA, Korotkova M, Telemo E: Breast-feeding, infant formulas, and the immune system. Ann Allergy Asthma Immunol 90(6 Suppl 3):59–63, 2003.
Kasahara E, Inoue M: Cross-talk between HPA-axis-increased glucocorticoids and mitochondrial stress determines immune responses and clinical manifestations of patients with sepsis. Redox Rep 20(1):1–10, 2015.
Kumar V, Abbas A, Fausto N, Aster J: Inflammation and repair. In Kumar V, Abbas A, Fausto N, Aster J, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, pp 69–111.
Lydyard PM: Porakishvili N: Cells, tissues and organs of the immune system. In Male D, Brostoff J, Roth D, Roitt I, editors: Immunology, ed 7, St Louis, 2006, Mosby, pp 15–45.
McNab R, Mayer-Barber K, Sher A, et al: Type I interferons in infections disease. Nat Rev Immunol 15(2):87–103, 2015.
Patton KT, Thibodeau GA: Anatomy & physiology, ed 8, St Louis, 2013, Mosby.
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Alterations in Immune Function Faith Young Peterson
K E Y Q U E S T I O N S • What are the potential mechanisms whereby erroneous reaction
of the immune system with self tissue leads to autoimmune diseases?
• How do type I, II, III, and IV hypersensitivity reactions differ according to the immune cell types involved and the mechanism of tissue injury?
• What are the common features of autoimmune disorders and certain types of hypersensitivity disorders?
• How are hypersensitivity disorders detected, prevented, and treated?
• How do the etiologic processes of primary and secondary immune deficiency disorders differ?
• What are the clinical features of the common immunodeficiency disorders?
C H A P T E R O U T L I N E EXCESSIVE IMMUNE RESPONSES, 195 Autoimmunity, 195
Genetic Factors, 196
Environmental Triggers, 196
Pharmacotherapies, 197
Hypersensitivity, 198 Type I Hypersensitivity, 199
Etiology, 199 Pathogenesis, 199 Clinical Manifestations, 200 Treatment, 200 Prevention, 201 Pharmacotherapeutic Prevention, 201
Type IIa Hypersensitivity, 201
Etiology and Pathogenesis, 201 Transfusion Reaction, 202 Hemolytic Disease of the Newborn, 203 Myasthenia Gravis, 204 Hyperacute Graft Rejection, 204
Type IIb Hypersensitivity, 204
Graves Disease, 204
Type III Hypersensitivity, 204
Etiology, 204 Pathogenesis, 205 Tissue Deposition, 206
Immune Complex Glomerulonephritis, 206 Systemic Lupus Erythematosus, 206
Type IV Hypersensitivity, 207
Type IVa – Granulomatous Hypersensitivity, 207 Type IVa – Tuberculin-Type Hypersensitivity, 207 Type IVa – Allergic Contact Dermatitis, 207 Type IVb – Persistent Asthma, 209 Type IVc – Stevens–Johnson Syndrome and Toxic Epidermal
Necrolysis, 209 Type IVd – Pustular Psoriasis, 209
DEFICIENT IMMUNE RESPONSES, 210 Primary Immunodeficiency Disorders, 210
B-Cell and T-Cell Combined Disorders, 210
Severe Combined Immunodeficiency Disorders, 210 Wiskott–Aldrich Syndrome, 211
T-Cell Disorders, 211
22q11.2 Deletion Syndrome (DiGeorge Syndrome), 211 Chronic Mucocutaneous Candidiasis Disease, 212
B-Cell Disorders, 212
IgA Deficiency, 212 X-Linked Agammaglobulinemia, 212 Transient Hypogammaglobulinemia, 212 Common Variable Immunodeficiency Disease, 212
Secondary Immunodeficiency Disorders, 212
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 10 Alterations in Immune Function 195
is a complex interaction that includes central tolerance in the thymus and bone marrow and peripheral tolerance involving T regulatory cells, peripheral anergy, and homeostasis produced by cytokines, chemokines, and their receptors. The thymus gland is principally responsible for eliminating or suppressing aggressive or intolerant self-reactive (autoreac- tive) lymphocytes (see Chapter 9). However, a small number of T cells escape thymic control and move into the peripheral circulation. The immune system has other peripheral “checkpoints” to detect, limit, and control these “self” or “auto” reactive T cells that have escaped the thymus gland. Peripheral tolerance involves T-cell intrinsic mechanisms that lead to clonal deletion, or anergy, as well as extrinsic control by T suppressor cells, primarily CD4+CD25+FOXp3+Tregs. T suppressor cells regulate potentially harmful autoreactive T and B cells. Autoimmune diseases result when self-tolerance is lost and reactions between self antigens and the immune system occur, causing dysregulation of proinflammatory and antiinflammatory mediators, cytokines, CD4+ and CD8+ T cells, B cells, and ubiquitin-editing enzyme A20 in dendritic cells.
Multiple theories have been proposed to explain how various immune system components and environmental triggers might interact to produce autoimmunity. However, no single theory can fully explain the loss of self-tolerance that occurs in autoimmune diseases. A number of genetic, cellular, and environmental factors interacting together contribute to the development of autoimmunity. The triggers for autoimmunity are not known exactly because autoimmune diseases are mediated by a variety of mechanisms, biochemical and cellular events, and responses to those events. Newer theories emphasize the relationship between pathogens and both the innate immune system and the adaptive immune system.
The theory of antigenic or molecular mimicry emphasizes the similarities between certain molecular segments of foreign antigens called epitopes and the person’s own cells. For example, all cells, whether self or foreign, are composed of proteins, carbohydrates, nucleic acids, and lipids. Certain viruses and bacteria evolve to look like “self” and use “molecular mimicry” to slip past the immune system defenses. Self cells with the same or similar molecular segments as these foreign epitopes can “fit” lymphocyte receptors. Therefore these self antigens or autoantigens can be attacked as foreign under certain circumstances when the normal cell has been altered, such as by a bacterial or viral infection that stimulates the immune response. The persistent presence of these autoantigens then acts as a constant source of stimulation to the immune system. This theory is suggested as a cause of rheumatic heart disease attributable to cross-reactions between Streptococcal antigenic protein M and human protein lysoganglioside leading to the development of cardiac-reactive T cells and autoimmunity. Another example is the interaction between Epstein–Barr virus (EBV) peptide with a “self” protein (PPPGMRPP peptide of Sm) that occurs in patients with SLE. In both cases, autoantigens have been identified following exposure to bacterial or viral infection.
Another theory proposes that activation and release of preexisting autoreactive immune cells (or sequestered antigens) trigger the auto- immune response. This theory of hidden/cryptic antigens suggests that certain self antigens are isolated from the immune system within an organ during the neonatal period. They are not in contact with antigen- processing cells during the embryonic period when self-tolerance usually occurs. These hidden self antigens or sequestered proteins, normally sheltered from immune recognition, occur in sites such as the cornea of the eye, the testicles, brain, or other areas not drained by lymphatics. If and when these sites are damaged later in life, the hidden or sequestered proteins are exposed to the immune system, which does not recognize them as self. Therefore the damaged cells are attacked. In this theory, bacterial or viral infections cause the tissue damage that leads to exposure
The purpose of the immune system is to defend the body against invasion or infection by foreign substances, called antigens, and to patrol for and destroy cells that are abnormal or damaged. Normally, the immune system works efficiently to accomplish these purposes, but in some situations inappropriate immune responses lead to disease.
These disorders can be divided into two general categories: (1) excessive immune responses, and (2) deficient immune responses. The category of excessive immune responses includes disorders in which the immune system is overfunctioning or hyperfunctioning, such as autoimmunity and hypersensitivity disorders. Autoimmune diseases are complex, multifactoral chronic diseases that occur in response to polygenetic as well as environmental factors. The estimated overall prevalence ranges from 3% to 10% of the general population.
The category of deficient immune responses includes disorders in which the immune system fails to respond to provide protection and is ineffective because of disease-causing genotypes or secondary/acquired dysfunction. Examples of deficient immune responses are severe combined immunodeficiency (SCID) syndrome, DiGeorge syndrome, and selective immunoglobulin A (IgA) deficiency. Human immunode- ficiency virus/acquired immunodeficiency syndrome (HIV/AIDS) is a primary acquired immunodeficiency disorder that is discussed in Chapter 12. The secondary immunodeficiencies associated with white blood cell malignancies are included and discussed in Chapter 11.
EXCESSIVE IMMUNE RESPONSES Excessive immune response disorders result from a functional increase in the activity of the immune system involving multiple interacting immune cells. Autoimmunity and hypersensitivity are types of excessive immune response disorders that are often related, and both may be present in patients. It may be helpful to think of autoimmunity as a way of describing the etiologic process, or cause, of abnormal excessive immune responses toward self tissues. Hypersensitivity disorders describe mechanisms of injury, or how the injury occurs, which may or may not involve autoimmunity. Autoimmunity is a general term that is used when the immune system attacks its own tissues. Most autoimmune reactions toward self tissues are mediated through type II (cytotoxic) and III (immune complex) hypersensitivity mechanisms. For this reason, many autoimmune diseases also are considered hypersensitivity reactions. For example, myasthenia gravis is both an autoimmune disease and a type II hypersensitivity reaction. Immune complex glomerulonephritis is both an autoimmune disease and a type III hypersensitivity reaction. When hypersensitivity reactions occur in response to foreign antigens, such as bee venom, they are not autoimmune.
The causes of immune system overreactions involve a complex interplay between genetic factors, including major histocompatibility complex (MHC) genes, and environmental factors thought to be important in the development of autoimmune disorders. Autoimmune disorders range from organ-specific diseases to organ-nonspecific diseases. Examples of organ-specific diseases include multiple sclerosis, where the target organ is the central nervous system, or in type 1 diabetes, where the target organ is pancreatic beta-islet cells. Examples of organ- nonspecific diseases include systemic lupus erythematosus (SLE) or Sjögren syndrome where multiple organs are involved.
AUTOIMMUNITY Autoimmunity occurs when the immune system recognizes a person’s own cells (“self”) as foreign and mounts an immune response that injures self tissues. It is a failure of self-tolerance. The adaptive immune response is the responsibility of antigen-specific T cells and B cells that learn to identify “self” in the thymus and bone marrow. Self-tolerance
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Mast cells release the cytokine interleukin-1 (IL-1), attracting and enlisting inflammation-inducing cells to joints and leaking fluid into joints in the autoimmune disease of rheumatoid arthritis. They are also thought to be involved in the development of irritable bowel syndrome and other functional gastrointestinal disorders.
Genetic Factors Genetic factors play a role in the development of autoimmune disorders. Gender, which is genetically determined, also influences the expression of autoimmune disorders. The exact mechanisms of gender and genetic influence on autoimmune expression have not been established, but the relationship is significant. Females are at significantly higher risk for developing autoimmunity compared with males. Different cytokine profiles can be associated with autoimmunity. Those with genetically low levels of tumor necrosis factor-α (TNF-α) and high levels of IL-10 may be more tolerant than those with normal levels.
The role of genetics is also supported by the observation that certain human MHC genes located on chromosome 6p21 (also called human leukocyte antigen [HLA] genes) encode molecules involved in antigen presentation and are critical in distinguishing self from nonself. The HLA genes are frequently associated with autoimmune disorders (Table 10.1). The MHC gene region demonstrates a high level of polymorphism. They are associated with the highest genetic risk in many autoimmune diseases.
One of the strongest correlations of MHC molecules with autoimmune disease is the linkage between the HLA-B27 phenotype and ankylosing spondylitis. In this case 95% of all people with ankylosing spondylitis have a positive B27 phenotype. However, not everyone with a positive B27 phenotype develops ankylosing spondylitis, both because of dif- ferences in the way antigen is presented to the immune system and because of environmental factors. Other diseases are associated with different MHC phenotypes, but the correlation between risk for disease and presence of the disease marker is much lower. For example, Addison disease is associated with the HLA-DR3 phenotype, but it has only a 6% risk correlation. Juvenile rheumatoid arthritis is strongly associated with HLA-DR5.
There may also be disease-causing genotypes or genetic factors affecting expression of immune factors. For example, the lymphoid protein tyrosine phosphatase nonreceptor type 22 (PTNP22) gene is found in patients with many autoimmune disorders, including type 1 diabetes, rheumatoid arthritis, SLE, Grave disease, and Crohn disease. TNF-α is involved in acute and chronic inflammation, autoimmunity, and malignancies. Of special interest is the FOXP3 gene, which is expressed by CD4+ regulatory T cells. FOXP3 deficiency is associated with both primary immune deficiency disorders and autoimmune disorders owing to its effect on regulatory T-cell immune function.
Environmental Triggers Chronic or multiple viral or bacterial infections may trigger the develop- ment of autoimmune disease in susceptible persons. For example, acute rheumatic fever occurs in people who are genetically susceptible to Streptococcus pyogenes through molecular mimicry. Viruses can activate B cells, decrease the function of T cells, contribute to the development of antigenic mimicry, or insert viral components on cell surfaces and trigger immune reactions. For example, viruses (EBV, cytomegalovirus [CMV]), bacteria (gram positive and negative such as Streptococcus, Campylobacter jejuni, and Helicobacter pylori), parasites (trypanosomes and Ascaridia galli), and fungi (Saccharomyces cerevisiae) have been cited as potential triggers of autoimmune disease.
A variety of noninfectious environmental factors have been associated with autoimmunity such as foods, pharmaceutical agents, smoke, ultraviolet light, vitamin D, hormones, vaccines, and heavy metals. A
of the “hidden” self antigens. However, this theory is now in question because it states that microbes and tissue damage are needed to cause autoimmunity. For example, people undergoing heart surgery and transplantation all produce autoantibodies to heart antigens, but they do not develop myocarditis, an autoimmune cardioinflammatory disease.
A similar theory is called the adjuvant or bystander effect. This theory states that an infection, which stimulates the immune system, activates receptors on immune cells causing the release of proinflammatory cytokines. These cytokines then activate preexisting autoreactive T and B cells that previously escaped thymic detection and deletion. It is unclear if this is a nonspecific (any immune cell) reaction or an innate immune-specific reaction, such as against a specific toll-like receptor.
A number of T -cell theories of autoimmunity have been proposed, including thymus gland defects, decreased suppressor T-cell function, and altered T helper cells. The epitope spread theory states that recurrent infection or damage to a particular organ causes the immune system to develop multiple autoantibodies. Theories attributing autoimmunity to thymus gland defects state that maturation and differentiation of T cells are affected either by decreased hormone secretion or by failure of the thymus to expose T cells to all self products. The thymus gland is responsible for exposing developing T cells to self products produced in the thymus or carried to the thymus gland. If some self products are not exposed to the developing T cells, the product will not be recognized as self and will subsequently be attacked. However, recent evidence demonstrates that not all T cells maturate in the thymus. Thus not all T cells may experience or “learn” to recognize “self.” This lack of exposure to self products is thought to be a major factor in the development of generalized autoimmune diseases.
The theory attributing autoimmunity to decreased or lost regulatory/ suppressor T-cell (Treg) activity states that decreased numbers of Treg cells fail to repress immunoglobulin activity. Some data suggest that Treg cells lose their forkhead box p3(FOXP3) protein and are transformed into effector T cells. It is also unclear if this disruption in the number of, or activity of, T cells may also be the result of genetic mutations. For example, a mutation of the transcription factor (FOXP3) causes impaired development and function of CD4+ T cells, which can lead to autoimmune inflammation. T helper cells 22 (Th22 cells) are a newly identified subset of T cells that are important mediators of chronic inflammation and autoimmunity by inducing the production of inflam- matory cytokines (ll17a, ll17f, ll22, ll26) by CCR6+ cells. Additionally, the development of autoimmunity may be secondary to an imbalance or alteration of autoreactive effector T cells and their ability to be controlled by Tregs. Decreases in peripheral Tregs (pTreg) and/or thymus Tregs (tTreg) can lead to autoimmunity, as both are needed to prevent it in certain inflammatory conditions. Current thinking suggests that both are needed to prevent autoimmunity in peripheral tissues of healthy people.
A number of B-cell theories of autoimmunity also have been proposed. The theory attributing autoimmunity to escape of B-cell tolerance proposes that certain B cells lose their responsiveness to suppressor T-cell messages. The B-cell activation theories, which are well supported clinically and experimentally, suggest that extrinsic factors or intrinsic genetic B-cell defects cause autoantibody production and an increase in the number and activity of B cells. A number of extrinsic factors, including viruses, bacteria, antibiotics, proteolytic enzymes, and lipo- polysaccharides, have been found to be B-cell–activating factors that could trigger autoantibody production.
Research has linked mast cells to autoimmunity as well as to hyper- sensitivity. Mast cells reside in most mucous membranes waiting for foreign proteins or bacteria to invade. Their cell membranes are studded with bacteria-sensing proteins, called toll-like receptors, which cause release of up to 10,000 different chemicals in response to activation.
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Although the etiology of autoimmunity continues to be investigated, the mechanisms whereby autoantibodies injure tissues are better understood. The autoantibodies produced by autoimmune disorders affect tissue by the mechanisms described for type II and type III hypersensitivity reactions found later in this chapter.
Pharmacotherapies The ideal therapeutic approach to treat autoimmune disease would be a medication that inhibits abnormal immune responses without limiting the positive and protective functions of the immune system or causing any organ toxicity. Unfortunately, no medication with these specific properties yet exists.
Immunosuppressive therapy is a common treatment for autoimmune disease. Because autoimmunity is expressed in different ways, the immunosuppressive treatment for each type of autoimmune disease is individualized, depending on disease expression. Immunosuppressive
good example is the relationship between gluten ingestion and the development of celiac disease. Another example is the exposure to ultraviolet light that leads to oxidative damage to DNA and RNA, induces cell death, and promotes the release of cytokines TLR7 and TLR9. This can induce the development of SLE, rheumatoid arthritis, or multiple sclerosis in susceptible individuals.
Environmental stress and occupational stress can affect the immune system because of their relationship to neuroendocrine system hormones, leading to inflammation or lymphokine release that activates T cells. Neuroendocrine and immune system interaction during life stress, such as shift work or workplace stress, promotes the synthesis and overproduction of proinflammatory cytokines. In genetically susceptible persons, this increase in systemic and local proinflammatory cytokines may affect the system’s balance enough to trigger autoimmune disease. There are also other linkages between the neuroendocrine and immune systems.
TABLE 10.1 Autoimmune Diseases, Major Histocompatibility Genes, Auto-Antibodies, and Target Organ
Disease Age at Onset and Gender Ratio (F/M) HLA (MHC) Antigen Auto-Antibodies Target Organ
Multiple Sclerosis 20–40 2/1
HLA Class I: HLA-A*02:01 HLA Class II: DRB1 …
Antibodies against myelin protein Central nervous system (CNS)
Rheumatoid arthritis 44–55 2/1
HLA Class II: DR4 DR1 HLA Class III: TNF
Anti-CCP, RF-IgG, ACPA, anti-Carp Synovium of joints
Graves disease 50–60 5/1
HLA Class I: HLA-B8 HLA Class II: DR3 and DR4
Anti-TSHR auto-antibodies Thyroid
Type 1 diabetes mellitus
6–13 1/1
HLA Class I: HLA-A and B HLA Class II: DQ2 and DQ8
IAA, GADA, IA-2A, ZnT8A Pancreas β-islets
Systemic lupus erythematosus
30–50 9/1
HLA Class II: DR3 DR2 DR8 DR6 HLA Class III: TNF C2, C4, ……
Antinuclear antibody, antidsDNA antibody, anti-Sm, antiphospholipid antibody
Multiple organs: heart, joints, skin, lungs, blood vessels, liver, kidneys, CNS
Primary biliary cirrhosis
50–60 10/1
HLA class II: DRB1*08, DRBI*11,
DRBI*13 protective
AMA Small and medium-sized intrahepatic bile ducts
Sjögren syndrome 40–50 9/1
HLA Class II: DRB1 ……
Anti-Ro/SSA, anti-La/SSB, ANA Mainly salivary and lacrimal glands; other organs: lungs, liver, kidneys, CNS
Crohn disease 15–30 and 60–80 1/1.2
HLA Class II: DR7, DRB3, DR2, DR3
Anti-TG2, antigliadin Gastrointestinal tract
Addison disease 15–45 0.8–2.4/1
HLA Class II: DR3/DQ2 DR4.4/DQ8 DQB1
ACA Adrenal glands
Data from Wang L et al: Human autoimmune diseases: a comprehensive update, J Intern Med 278(4):369–395, October 2015.
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plasma or a plasma cell type as well as protein-bound toxic substances. The patient’s whole blood is filtered, blood cells and platelets are returned, and the plasma component containing the autoantibodies is removed and replaced with 5% albumin or another colloid solution. According to the American Society for Apheresis, this type of therapy has been effective in the management of diseases such as myasthenia gravis, thrombocytopenia purpura, multiple sclerosis, and Rh-negative hemolytic disease of the newborn. Plasmapheresis is generally well tolerated; however, there are both major and minor risks involved in the process. Some of the risks include insertion of large intravenous (IV) catheters to perform the procedure, decrease in serum ionized calcium concentra- tion, shifts of fluid levels, and risks of infection and bleeding from loss of coagulation factors.
therapy has become an increasingly important treatment choice. These medications are essential for inhibiting excessive or aberrant immune responses, but must be taken continuously to achieve the goal of inhibit- ing the immune system response to self antigens.
Immunosuppressive agents include corticosteroids, TNF inhibi- tors, immunomodulators, and cytotoxins. Corticosteroids (cortisone, prednisone, or budesonide) decrease the number of lymphocytes and decrease antibody formation, as well as alter the functional activities of lymphocytes. They also have many other activities as a result of their glucocorticoid function. Corticosteroids tend to be used in the treatment of many autoimmune diseases and are the oldest of the immunosup- pressive drugs. The adverse effects that occur during corticosteroid use often limit their extended use over time. The common side effects include hypercorticism with changes in fat distribution and buffalo hump formation, suppression of the hypothalamic–pituitary–adrenal (HPA) axis, congestive heart failure, hypertension, emotional changes, thinning of skin, petechiae, diabetes mellitus, menstrual irregularities, electrolyte imbalances, liver and pancreatic dysfunction, exophthalmos, glaucoma, osteoporosis, loss of muscle mass, and muscle weakness. Because corticosteroids affect the HPA system, gradual withdrawal by tapering the dose over time is necessary when discontinuing long-term therapy.
Cytotoxins, such as methotrexate, are used to manage autoimmune disorders because of their ability to inhibit folic acid metabolism and kill actively proliferating lymphocytes after they are transformed from their resting G0 state. They also selectively down-regulate B-cell function. The key to the use of cytotoxins is to effectively apply their killing activity without damaging the rest of the body. Cyclosporine (Sandim- mune) is a more selective immunosuppressant that reversibly suppresses T helper cells in the G0 or G1 phase of the cell cycle without killing them. As a result, it inhibits the development of killer or cytotoxic T cells without decreasing the numbers of cells. It also impairs the ability of T cells to respond effectively to foreign antigens. It is used to suppress reactions during tissue or organ transplantation. Frequent side effects include predisposition to infection, pulmonary fibrosis, edema, hyperten- sion, headache, hirsutism, elevated triglyceride levels, gastrointestinal effects, nephropathy, emotional changes, skin pigmentation, gynecomastia, leukopenia, anemia, and hepatotoxicity.
TNF inhibitors or immunomodulators, such as etanercept (Enbrel), adalimumab (Humira), golimumab (Simponi), or infliximab (Remicade), are used as disease modifiers that bind to and block the activity of TNF-α and TNF-β. They may also modulate TNF-mediated responses, such as leukocyte migration and expression of adhesion molecules. The most common side effects of TNF inhibitors include predisposition to infections, headache, gastrointestinal changes, injection-site skin reactions or infusion reactions, respiratory tract infections, edema, dizziness, dyspepsia, weakness, malignancies, and neurologic disorders.
Purine analogs such as azathioprine inhibit the synthesis of DNA and are used in multiple autoimmune diseases. Side effects include increased risk of malignancy, bone marrow suppression, nausea, and vomiting. There are also new medications, such as tocilizumab, an IL-6 inhibitor; abatacept, a CTLA4-immunoglobulin; alemtuzumab, an anti-CD52 medication; and rituximab, an anti-CD20 antibody, that target specific immune system components or cells. Other new therapies are being developed that target Treg defects in order to restore their function. These new medications are expected to be safer than older, nonspecific therapies. Novel approaches are also being developed such as transplantation of pancreatic B cells for type 1 diabetes along with thymus tissue to ensure graft tolerance without long-term immunosuppression.
Therapeutic plasmapheresis is another type of therapy occasionally used in the management of autoimmune diseases. Plasmapheresis is analogous to dialysis and involves the selective filtering or removal of
KEY POINTS • Autoimmune disorders occur when the immune system erroneously reacts
with “self” tissues. These disorders are thought to be polygenic and mul- tifactorial; however, the exact etiologic process is unknown.
• The antigenic mimicry theory involves the alteration of viruses or bacteria to look like “self” and the precipitation of immune reactions.
• The theory involving release of sequestered antigens suggests that self antigens that do not come in direct contact with lymphocytes during fetal development may cause autoimmune reactions if they are subsequently released from sequestration.
• Abnormal production of subclasses of T lymphocytes, particularly suppressor T cells, has been proposed as a reason for the development of autoimmunity, as well as the development of abnormal B cells that do not respond to suppressor T-cell signals.
• Genetic factors such as female gender and major histocompatibility complex (MHC) genes are associated with certain autoimmune disorders.
• Autoantibodies injure body tissues through the mechanisms described for type II and type III hypersensitivity reactions.
HYPERSENSITIVITY Hypersensitivity is a normal immune response that is inappropriately triggered, excessive, or produces undesirable effects on the body. The basic mechanism that triggers hypersensitivity is a specific antigen– antibody reaction or a specific antigen–lymphocyte interaction. Four classes or types of hypersensitivity are differentiated: types I, II, III, and IV. Each type is characterized by a specific cellular or antibody response. Types I, II and III are mediated by antibodies. Hypersensitivity type I is an immediate or IgE-mediated reaction, such as anaphylaxis. Hypersensitivity type IIa is cytotoxic or IgG/IgM mediated, and type IIb is antibody-mediated cell stimulating. Hypersensitivity type III reaction is IgG/IgM immune complex mediated such as immune complex glomerulonephritis and SLE. Type IV hypersensitivity is T cell mediated and has four major categories. Type IVa is mediated by CD4+ Th1 cells with activation of macrophages. Type IVb is CD4+ Th2 lymphocyte mediated with eosinophilic involvement, such as persistent asthma. Type IVc is mediated by cytotoxic CD8+ T lymphocytes with involvement of perforin-granzyme B in apoptosis, as seen in Stevens– Johnson syndrome (SJS). Type IVd is T-lymphocyte–driven neutrophilic inflammation.
Hypersensitivity reactions are specific to a particular antigen and usually do not occur on first exposure to the antigen. Although the diseases or syndromes associated with each type differ in their clinical signs and symptoms, the underlying pathophysiologic process is similar within each type. The four major types of hypersensitivity are contrasted in Table 10.2. The complex interactions between immune system inflammatory mediators, cytokines, T cells, B cells, and mast cells
CHAPTER 10 Alterations in Immune Function 199
(allergen) entry into the body. This increased entry would subsequently increase IgE responsiveness.
Mast cells and basophils are the principal effector cells, although many other cells with histamine and other inflammatory mediators can be involved in the reaction. These may include neutrophils, eosino- phils, lymphocytes, macrophages, epithelial cells, and endothelial cells. Mast cells are found throughout the body in all loose connective tissue. They are covered with IgE receptors—up to 500,000 on their cell surfaces—and they are filled with vesicles or granules containing potent vasoactive, proinflammatory chemical mediators (especially histamine) that produce inflammation when they are released. The IgE receptors on mast cells bind the Fc portion of an IgE antibody. The IgE antigen- binding sites are then displayed on the mast cell surface, where they can bind to antigens that pass by the mast cell (Fig. 10.1). This process makes the mast cells responsive to particular antigens.
The initial incident during a type I hypersensitivity response is the cross-linking of two IgE receptors to one antigen on the mast cell located at the site of the allergen’s entry into the body (see Fig. 10.1). Cross- linking of IgE and the antigen causes an increase in intracellular calcium (Ca2+) concentration that results in immediate, massive, local mast cell degranulation of preformed and newly formed proinflammatory media- tors. The release of mediators causes an inflammatory response.
Mast cells, basophils, and other effector cells release many chemicals that act to trigger evolving immune responses, promote continuing sensitivity, and promote the transition of allergic disease into chronic illness. Some of the mediators are preformed and stored in vesicles, such as histamine, heparin, proteolytic enzymes, cytokines, and
characterize hypersensitivity reactions. Some diseases have multiple types of immunologic hypersensitivity.
Type I Hypersensitivity Etiology Genetic mechanisms influence type I hypersensitivity with strong genetic or hereditary linkage regarding the IgE response to antigens (allergens). This genetic component involves both the ability to respond to an allergen and the general ability to produce an IgE antibody response. Genome-wide association studies have identified hundreds of genetic variants and have contributed to a greater understanding of type I hypersensitivity/allergic diseases. However, the specific causal genetic mechanisms are still unclear. A positive family history remains a strong predictor of allergic disease.
Pathogenesis Type I hypersensitivity is also known as immediate hypersensitivity, because the reaction is immediate. It is a sensitization reaction character- ized by signs and symptoms of an allergic reaction that usually occurs 15 to 30 minutes after exposure to an antigen (allergen).
At the cellular level, immunoglobulin E (IgE) is the principal antibody mediating this reaction. IgE is produced by specialized plasma B cells and circulates in very small amounts in the blood. When an individual is exposed to an allergen, selected plasma B cells produce allergen-specific IgE. It usually takes repeated exposures to the allergen to cause significant levels of IgE to be present in the blood. Environmental pollutants may play a role by increasing mucosal permeability and enhancing antigen
TABLE 10.2 The Four Types of Hypersensitivity
Characteristic Type I: Atopic, Anaphylactic
Type II: Cytotoxic, Cytolytic
Type III: Immune Complex (Arthus Reaction)
Type IV: Delayed Hypersensitivity
Mediated by: IgE IgM or IgG IgG and complement CD4+ Th1 or Th2 cells, CD8+ cells
Complement activation No Yes Yes No Immune response Ag plus IgE, leading to mast
cell degranulation Surface Ag and Ab, leading
to killer cell cytotoxic action or complement- mediated lysis
Ag–Ab complex deposited in tissues; complement activated and PMNs attracted
Ag-sensitized T cells release cytokines, leading to inflammatory reaction and recruitment of macrophages, eosinophils, or neutrophils, which release cytokines
Peak action 15–30 minutes 15–30 minutes or can occur over time
6 hours or more 24–48 hours or more
Serum transferability Yes Yes Yes No Cell transferability No No No Yes (T cells) Genetic mechanisms Familial
High IgE level HLA-linked Ir genes General hyperresponsiveness
HLA linked in some cases Familial (autoimmune) HLA specificities
Unknown
Causes of reaction T-cell deficiency Abnormal mediator feedback Environmental factors and
Ag exposure
Exposure to Ag or foreign tissue, cells, or graft
Persistent infection— microbe Ag
Extrinsic environmental Ag Autoimmunity—self Ag
Intradermal Ag Epidermal Ag Dermal Ag
Manifestation (examples)
Bee sting reaction, allergic reactions, rhinitis
ABO transfusions, hemolytic disease of newborn, myasthenia gravis
Graves disease
Immune-complex glomerulonephritis, SLE, farmer’s lung arthritis, vasculitis
Allergic contact dermatitis, Stevens–Johnson syndrome, toxic epidermal necrolysis, pustular psoriasis
Ab, Antibody; Ag, antigen; DTH, delayed-type hypersensitivity; Ig, immunoglobulin; HLA, human leukocyte antigen; PMN, polymorphonuclear leukocyte; SLE, systemic lupus erythematosus.
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which are located on many types of cells. Mast cells have receptors for H1, H2, and H3, with H1 receptors being the most active. Basophils express predominantly H2 receptors, whereas neutrophils and eosinophils have both H1 and H2 receptors. Recent evidence shows that H1 and H2 receptors are present on monocytes and macrophages, with an increase in H1 receptors when monocytes differentiate into macrophages. Histamine binding to H1 receptors triggers increased vascular perme- ability, vasodilation (flushing), urticaria formation (hives), smooth muscle constriction (bronchoconstriction), increased mucus secretion and pruritus (increased itching), and increased gut permeability. The activation of H2 receptors has opposing effects to H1 receptors in some tissues and causes smooth muscle relaxation in the lower airways, augments gastric acid secretion from parietal cells, and in high concentra- tions has an inhibitory effect on inflammatory cells, decreasing both degranulation and neutrophil chemotaxis. The H3 receptors are located in the brain, in the spinal cord, and on sensory neurons such as post- ganglionic cholinergic nerves in lung bronchi. The H4 receptors are found on immune system cells such as dendritic cells, eosinophils, T cells, monocytes, macrophages, and natural killer cells, as well as in hematopoietic cells such as the spleen, thymus, bone marrow, and blood leukocytes. H4 receptors are highly attracted to histamine and are also involved in chemotaxis and inflammatory responses.
The proteolytic enzymes kininogenase and tryptase activate the kinin pathway, and C3 activates the complement cascade via the alternative pathway. Heparin decreases clot formation. The chemotactic factors recruit or activate other inflammatory and immune cells. Leukotrienes cause smooth muscle contraction and increase vascular permeability. Increased intestinal expression of IL-9 by mucosal mast cells is found in patients with food-mediated hypersensitivity.
Clinical Manifestations Manifestations of an immediate hypersensitivity reaction vary in severity and intensity. For many people, type I hypersensitivity reactions are annoying, such as hives (urticaria), seasonal allergic rhinitis, eczema, or mild bronchoconstriction. In other people, the symptoms are more problematic, including tightening of the throat, localized edema, wheez- ing, and tachycardia, such as is associated with localized angioedema reactions or severe airway reactions. In a very small number of highly allergic people, the type I hypersensitivity reaction can be expressed as a life-threatening allergic reaction known as anaphylaxis. Anaphylaxis is often caused by bee stings, seafood, or peanut ingestion. Common allergens that can trigger type I hypersensitivity reactions are listed in Box 10.1.
Treatment Treatment for type I hypersensitivity primarily involves pharmacologic management with antihistamines, β-adrenergics, corticosteroids, anticholinergics, and anti–immunoglobulin E therapy (IgE blocker therapy). Antihistamines such as diphenhydramine (Benadryl) are used to block the effect of histamine. This action decreases vascular perme- ability and bronchoconstriction. β-Adrenergic sympathomimetics are used to decrease bronchoconstriction and bronchospasm. Epinephrine is an adrenergic agent (α, β1, and β2) given subcutaneously or intrave- nously during acute allergic reactions, especially after medication, food, or bee sting reactions. Most patients with severe allergies to food or insect bites are given prescriptions for epinephrine in the form of EpiPen with an autoinjector. Corticosteroids are used to decrease the inflam- matory response. Anticholinergics are used to block the parasympathetic system and thus allow greater sympathetic activity. This action indirectly causes bronchodilation. Anti–immunoglobulin E therapy (omalizumab) may be used for persons with severe persistent asthma. Omalizumab (Xolair) is a subcutaneously injected, monoclonal anti-IgE antibody
chemotactic factors. Other mediators are formed during the degranulation process. Examples of newly formed mediators include superoxide, prostaglandins, thromboxanes, leukotrienes, bradykinin, and interleukins (see Chapter 9).
One of the most important mediators of type I hypersensitivity is histamine. Histamine binds to H1 (histamine 1), H2, H3, and H4 receptors,
1 First exposure to antigen
Helper T cell
B cell
2 Production of IgE antibodies
3 Binding of IgE to Fc receptors on mast cells
4 Exposure of mast cell to antigen with cross-linking of IgE- Fc receptors
5 Release of mediators (degranulation)
6 Signs and symptoms of inflammation
Fc receptor
Ca++
Ca++
Ca++
FIG 10.1 Type I hypersensitivity reaction.
CHAPTER 10 Alterations in Immune Function 201
children from families with a history of allergies. These actions include avoiding foods to which the mother is allergic, limiting excesses of one type of food during the last trimester of pregnancy, avoiding whole eggs during the last month before delivery and while breast feeding, and limiting cow’s milk to two glasses per day. Other actions that may be helpful during the child’s infancy include avoiding exposure to environmental pollution, breast feeding for a minimum of 6 months, supplementing the child’s diet with non–cow’s milk products such as soy milk, giving solid foods only after the infant is 6 months old, keeping the infant’s room as free of dust and molds as possible, and keeping pets (dogs, cats, birds) out of the home.
Pharmacotherapeutic Prevention Another avenue for prevention of type I hypersensitivity reactions involves the use of desensitization therapy (immunotherapy). Desensitiza- tion is more successful in patients with hay fever than in those with other types of allergies. It involves both environmental control of external allergens and titrated pharmacologic exposure to allergens. Pharmacologic immunotherapy is particularly effective when exposure to the allergen can’t be avoided (i.e., pollens, molds, insect venoms, and dust mites). Environmental control involves a systematic plan to decrease exposure to house dust, molds, and animal dander. Pets are kept out of the house. The person must avoid food allergens, wool carpets, goose down or feather pillows, dried plants, and exposure to other animal and vegetable products. The person is urged to use air conditioning and electronic air filters.
Pharmacologic immunotherapy or desensitization involves giving a person an antigen (allergen) in gradually increasing dosages weekly or biweekly over a course of months or years in order to induce tolerance. The antigen (allergen) can be given sublingually or by subcutaneous injection. After the initial series, periodic maintenance or booster therapy is used to maintain tolerance. Gradually, the dose is increased until the person can tolerate the allergen without a type I hypersensitivity reaction. The goal of this therapy is a change in immunoglobulins so that there is an increase in IgG- and IgA-blocking antibodies, no increase in IgE during allergy season, decreased basophil reactivity, and decreased lymphocyte reactivity to allergens.
Type IIa Hypersensitivity Etiology and Pathogenesis Type IIa hypersensitivity, also known as tissue-specific, or cytotoxic, or IgG/IgM-mediated hypersensitivity, is characterized by antibodies that attack antigens on the surface of specific cells or tissues. Often the reaction is immediate (15 to 30 minutes after exposure to the antigen). However, it can occur over time, such as in myasthenia gravis. The mechanisms that encompass type II tissue-specific hypersensitivity all occur after the binding of antibody to tissue-specific antigens. The reaction is mediated by the complement system and a variety of effector cells, including tissue macrophages, platelets, natural killer cells, neu- trophils, and eosinophils. IgG and IgM are the principal antibodies. Examples of this type of hypersensitivity reaction include ABO transfu- sion reactions, hemolytic disease of the newborn, myasthenia gravis, hyperacute graft rejection, and autoimmune hemolytic anemia. Transfu- sion reactions, hemolytic disease of the newborn, and graft rejection are examples of isoimmunity (alloimmunity), a condition in which the immune system reacts against antigens on tissues from other members of the same species.
The initial mechanism during a type II hypersensitivity response is exposure to antigens on the surface of foreign cells. The Fab portion of IgG or IgM antibodies binds to antigens on the target foreign cell to form an antigen–antibody complex (Fig. 10.2). (Refer also to Chapter 9 for a discussion of IgG and IgM antibodies.) The Fc region of the
that binds to the IgE molecule, thus inhibiting the binding of IgE to mast cells and basophils and promoting down-regulation of IgE receptors. It is used to improve asthma control in patients with moderate-to-severe persistent asthma not controlled with inhaled corticosteroids. It is used in children 12 years or older and in adults.
Prevention Some protective, proactive actions taken during pregnancy are thought to decrease the likelihood that type I hypersensitivity will develop in
Medications Penicillin, penicillin analogs, and other antibiotics Radiographic contrast media Aspirin, indomethacin, and other nonsteroidal antiinflammatory drugs (NSAIDs) Anesthetic agents
Biological Agents Allergenic extracts and antisera Serum proteins, including γ-globulin and monoclonal antibodies Insulin and other hormones Vaccines Enzymes such as penicillinase Blood products Latex Pollen from grass, trees, flowers, and weeds Mold spores Pet dander Dust mites Cockroach saliva, feces, or shedding body parts
Insect Venom Hymenoptera (stinging) insects Polistes wasps Honeybees Fire ants Hornets and yellow jackets
Foods Peanuts Tree nuts Seafood, especially shellfish Eggs Fruit, especially citrus and strawberries Milk Tartrazine, yellow dye no. 5 Wheat Soy Sesame seeds, mustard seeds, or other seeds
Inorganic Chemicals Nickel Aluminum Zinc
Irritants Cigarette smoke Perfumes Diesel exhaust High levels of air pollution
BOX 10.1 Possible Causes of Human Allergic Reactions or Anaphylaxis
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Binding by macrophage followed by cell phagocytosis
Fc receptor
Antigen- antibody complex with Fc
bridging
Cell lysis
Complement activation followed by
cell lysis via membrane attack complex (MAC)
Fab portion of antibody (IgG or IgM)
Fc region of antibody (IgG or IgM)
Antigen-antibody complex
C1
MAC
Blood transfusion with type B blood
Person with type A blood and anti-B antibodies (IgG or IgM)
Macrophage
Phagocytosis
B
B
A
A
A
B
B
B
B
A
FIG 10.2 Type II hypersensitivity reactions.
IgG or IgM antibodies protrudes away from the cell membrane surface. The Fc region then acts as a bridge between the antigen and complement or the effector cells. This antigen–antibody binding with Fc bridging is the key and leads to lysis of the cell by one of several mechanisms. One mechanism is complement-mediated lysis. Complement-mediated lysis occurs through the classical pathway for activation of complement. The classical pathway of complement generates the activated complement component C3b via splitting of C4 and C2 by C1 (see Chapter 9). The activated complement component C3b is bound to the target cell by the Fc region of IgG or IgM. C3b increases opsonization, which in turn increases the capacity of the system to allow lysis by other effector cells or by complement itself. Lysis of the foreign cell by complement occurs via the C5–C9 membrane attack complex (MAC), which disrupts the plasma membrane of the cell.
Transfusion Reaction An example of this type of mechanism is an acute hemolytic blood transfusion reaction that occurs when a person receives blood from someone with a different blood group type (Table 10.3). In this case the recipient of the blood transfusion has antibodies to the donor’s red blood cell (RBC) antigens. For example, if a person with type A blood with type A antigens and anti-B antibodies incorrectly receives type B blood with B antigens and anti-A antibodies, the anti-B antibodies will attach to the surface of the infused type B RBCs (see Fig. 10.2) and the anti-A antibodies in the infusion will attach to the surface of the circulat- ing type A RBCs. This event will stimulate the destruction of large numbers of RBCs. The resulting signs and symptoms of this major blood group reaction include fever, chills, flushing, tachycardia, hypoten- sion, low back pain, pleuritic chest pain, nausea, vomiting, restlessness,
CHAPTER 10 Alterations in Immune Function 203
with or without complement involvement. An example of this type of mechanism is hemolytic disease of the newborn (erythroblastosis fetalis).
This condition occurs during pregnancy when an Rh-negative mother is sensitized to the Rh-positive red cell group antigens of her fetus because of exposure during her current or a previous pregnancy. The mother’s IgG Rh-positive antibodies cross the placental barrier and attack the red blood cells of the fetus. The mother’s exposure occurs when mixing of fetal and maternal blood takes place. This can occur during an episode of antepartal bleeding or trauma to the placenta, during birth, or during miscarriage of an Rh-positive child. Of these situations, the most likely time for mixing of fetal and maternal blood is at the time of delivery. After this exposure, Rh-positive antibodies gradually develop in the mother and can affect her subsequent children. It takes as little as 1 cm3 of fetal blood exposure for antibodies to Rh- positive RBCs to develop in the mother. Usually, the first Rh-positive child is not affected unless placental tearing or leakage into the mother’s circulation occurs during pregnancy.
Antibody screens are routinely performed during pregnancy to determine a mother’s Rh status, including indirect Coombs test and identification of specific antibodies. If the mother is Rh-negative, RhoGAM is administered at 28 weeks, after any prenatal bleeding, and at delivery for prevention of Rh-positive antibodies. RhoGAM contains antibodies against Rh antigens on fetal blood cells and is given to the mother to destroy fetal cells that may be present in her circulation before her immune system becomes activated and begins to produce anti-Rh antibodies. RhoGAM is not effective if the mother already has
anxiety, oliguria, and headache. The reaction may progress to shock and death.
Transfusion reactions are not always immediate. They may be delayed from a few days to 2 weeks, especially in persons requiring periodic transfusions such as in sickle cell anemia or thalassemia. In many cases, antibodies occur as a result of blood component exposure from multiple transfusions. Delayed reactions can also occur as a result of transplanta- tion. In delayed transfusion reactions, often the mechanism of action is related to differences in erythrocyte (RBC) antigens between blood donors rather than differences in the major ABO blood groups. Many hundreds of RBC antigens have been identified; fortunately, most of them are rare. In patients with sickle cell anemia, delayed hemolytic transfusion reactions can occur due to differences in RBC antigens between blood donors with resulting alloimmunization. The rate of alloimmunization with the development of delayed transfusion reaction in sickle cell patients is higher than in other patient populations. The resulting type II hypersensitivity reaction causes the destruction of both the donor’s and the recipient’s RBCs along with the symptoms of acute hemolysis, and severe vasoocclusive crisis.
Hemolytic Disease of the Newborn A second mechanism for antigen–antibody binding in type II hyper- sensitivity reactions is direct destruction by Fc-bearing effector cells, such as macrophages. The macrophage can link to exposed Fc antibody regions. Once this bridging occurs, the foreign cell is phagocytized and destroyed by lysosomes within the effector cell. This can be mediated
TABLE 10.3 Major Blood Groups Blood Group: Phenotype Antigens Possible Genotype Antibodies in Serum Chromosome
A A AA or AO Anti-B 9q34.2 B B BB or BO Anti-A AB A and B AB None O H OO Anti-A, Anti-B
Other Clinically Significant Major Blood Group Systems: Phenotype Number of Antigens Most Common Major Antigens Clinically Significant Antibodies
Rhesus (Rh): 50 D, C, E, c, e Rh+ DD; Dd Rh− dd Anti-D; Anti-c; Anti-C; Anti-E; Anti-e Kell or Kell – Cellano:
25 K, k Anti-K; Anti-Ku; Anti-k; Anti-Kpa
Anti-Kpb; Anti-Jsa; Anti-Jsb
MNS: 46 M, N, S, s, U Anti-S; Anti-s; Anti-U; Anti-M; Anti-N Duffy: 6 Fya; Fyb; Fy3; Fy4; Fy5, Fy6 Anti-Fy3; Anti-Fya; Anti-Fyb
Kidd: 3 Jk1 (Jka); Jk2 (Jkb) and Jk3 Anti-Jka; Anti-Jkb
Derived from: Dean L. Blood Groups and Red Cell Antigens [Internet]. Bethesda, MD – National Center for Biotechnology Information (US), 2005.
Frequency of Blood Types in the U.S. Population: Blood Type Caucasian African American Hispanic Asian
O+ 37% 47% 53% 39% O− 8% 4% 4% 1% A+ 33% 24% 29% 27% A− 7% 2% 2% 0.5% B+ 9% 18% 9% 25% B− 2% 1% 1% 0.4% AB+ 3% 4% 2% 7% AB− 1% 0.3% 0.2% 0.1%
Source: American Red Cross Blood Types Chart.
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symptoms of myasthenia gravis include ptosis, diplopia, and muscle weakness after exercise that improves with rest.
Hyperacute Graft Rejection Another type II hypersensitivity mechanism for antigen–antibody binding that involves both effector cells and complement is the hyperacute graft rejection that affects transplanted tissues. It occurs when the transplanted donor tissue has an antigen to which the recipient has preformed antibodies. For example, when tissue from a blood type A or B donor is transplanted into a blood type O recipient, the recipient has anti-A and anti-B antibodies. These antibodies will immediately attack the foreign transplanted tissue.
Onset begins immediately after revascularization of the transplanted tissue. At this time, the blood supply from the patient is established in the newly transplanted organ. The patient’s antibodies attack the foreign protein antigens and form an antigen–antibody complex. Effector cell infiltration and complement-mediated lysis of donor tissues, inflam- mation, vascular thrombosis, and hemorrhage occur. The reaction happens so quickly that within 48 hours after transplantation the graft tissue is no longer functioning.
To prevent hyperacute graft rejection, tissue and blood typing of donors and recipients of transplanted tissue is extensive. Lists of potential recipients are matched to donors through organ donation laboratories both regionally and nationally. Only rarely has hyperacute graft rejection occurred because of an error in tissue or blood typing.
Type IIb Hypersensitivity Graves Disease Graves disease is an example of a type IIb hypersensitivity reaction that occurs as a result of an immune attack on the thyroid gland. The mechanism for antigen–antibody binding in this type IIb hypersensitiv- ity reaction is mediated by lymphocytes, which infiltrate the thyroid parenchyma. The underlying mechanism(s) that triggers this process is still being investigated, but infection, diet, iodine, stress, and smoking may be contributing factors. In Graves disease, circulating IgG autoantibodies (called anti-TSHR antibodies) attack the thyroid-stimulating hormone receptor. This causes the cells to malfunction, stimulating the receptor and producing excess thyroxine (T4) and triiodothyronine (T3). The major symptoms of hyperthyroidism include tachycardia, fatigue, weight loss, tremor, heat intolerance, diarrhea, and emotional/mental changes.
Type III Hypersensitivity Etiology Type III hypersensitivity results from failure of the immune and phagocytic systems to effectively remove antigen–antibody immune complexes and is not tissue specific. It is also known as an immune complex reaction. Type III hypersensitivity is characterized by antigen– antibody complex deposition into tissues, with consequent activation of complement and a subsequent self-sustaining inflammatory reaction. It is not an immediate reaction; it occurs over a period of several hours or longer (i.e., glomerulonephritis) and is often ongoing.
Three possible scenarios can precipitate type III hypersensitivity. First, a recent history of infection or persistent low-grade infection by a microbial or viral agent can stimulate a weak antibody response. The continuing nature of persistent infection or untreated/undertreated infection provides a source of circulating antigen. The antigen and antibody response leads to chronic immune complex production. These immune complexes are not successfully removed from the blood and are deposited in many sites, including blood vessels, glomeruli, and joints. Second, an extrinsic environmental antigen from molds, plants, or animals can be inhaled into the lung, where it is exposed to antibody in the body fluid. This inhalation of an antigen causes antigen–antibody
a positive antibody titer for fetal Rh antigens. The routine administration of RhoGAM to women at risk is clinically effective with rare findings of hemolytic disease of the newborn.
If the mother is Rh negative, already has fetal Rh antibodies (i.e., is sensitized), and is carrying an Rh-positive fetus, she will not exhibit any significant physiologic effects except some discomfort from potential polyhydramnios. The mother may experience psychological distress. Most of the symptoms of Rh sensitization occur in the fetus, including signs of anemia, hypoxia, decreased fetal activity, ascites, congestive heart failure, and an elevated baseline heart rate of 180 beats/minute or greater with late decelerations. As a result, there is frequent fetal surveillance by 26 weeks’ gestation, including assessment of fetal heart rate, biweekly performance of nonstress tests, execution of serial amniocenteses to measure levels of bilirubin, and/or direct evaluation of fetal hemoglobin and hematocrit levels by means of percutaneous umbilical blood sampling. If fetal anemia becomes severe any time after 18 weeks’ gestation, an intrauterine blood transfusion may be necessary to try to prolong the time the fetus is able to stay in utero. After 34 weeks, the fetus is often taken by cesarean section.
Myasthenia Gravis Myasthenia gravis is an autoimmune disease of the neuromuscular junction. Antibodies are directed primarily against the nicotinic ace- tylcholine receptor (AChR) on the postsynaptic membrane at the neuromuscular junction. However, antibodies against other proteins can occur, including muscle-specific kinase, or low-density lipoprotein receptor–related protein 4 on muscle membrane surfaces, especially the motor end-plate, or agrin in the postsynaptic membrane at the neuromuscular junction (Fig. 10.3). With antigen–antibody formation at the receptor site, complement is activated and disrupts the muscle cell membrane. B cells are the principal mediator cells. The thymus gland is believed to be the site of anti–AChR antibody development. It also sustains the autoimmune, hypersensitivity reaction. The loss of acetylcholine stimulation at the motor end-plate causes the extreme muscular weakness associated with myasthenia gravis. The major
Neuron
Axon terminal
Antibodies to acetylcholine receptors
Acetylcholine receptor
Acetylcholine vesicles
Acetylcholine
Motor end-plate postsynaptic folds
FIG 10.3 Type II hypersensitivity reaction in a person with myasthenia gravis. Having limited receptors available for acetylcholine impairs neuromuscular transmission.
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and is deposited into tissues. When only the antibody is soluble, the antibody reacts with fixed antigen in the tissues. Then the antibody within the complex links with the complement system by its Fc receptors (Fig. 10.4).
Activation of the classic complement cascade causes release of C3a and C5a, as well as the membrane attack complex. C3a stimulates the release of histamine from mast cells, indirectly increasing vascular permeability and vasodilation. Bronchial smooth muscle contraction occurs, resulting in bronchial constriction, wheezing, and coughing. C3a also causes the endothelial cells to become rounder, thereby increasing vascular permeability. The increased vascular permeability leads to edema formation, which provides more space for the movement of cellular inflammatory components. It also dilutes and limits the duration of action of mediators. C5a is an even more powerful component than C3a.
complex formation in alveoli with immune complex deposition in the alveolar walls. Third, an autoimmune process can develop in which autoantibodies attack self antigens. In this case the body forms both parts of the immune complex. Autoantibodies to either circulating or tissue-fixed self antigens may be produced. Because the self antigens persist over time, chronic immune complex production and deposition in tissues take place.
The mechanism of injury in type III hypersensitivity reactions is from activation of complement and other proinflammatory mediators in response to the antigen–antibody complex deposition. The antibody– antigen complex deposition does not cause the injury directly. The tissue injury is caused by an inflammatory reaction to the antibody– antigen complex. Therefore it is not a tissue-specific reaction. The onset of this reaction occurs up to 6 or more hours after exposure to the antigen. IgG and IgM are the principal antibodies. The principal effector cells are neutrophils and mast cells. The principal mediator of the reaction is complement. Examples of type III hypersensitivity reaction include SLE, immune complex glomerulonephritis, serum sickness, and drug- induced vasculitis. Diseases associated with type III hypersensitivity are listed in Table 10.4.
Pathogenesis Type III hypersensitivity reactions tend to be ongoing with variations in symptoms based on the fluctuation of antibody-to-antigen ratios, the amount of complement available to mediate the inflammation, and the dynamic nature of the antibody–antigen reaction. It is sometimes difficult to differentiate between type II and type III hypersensitivity reactions. The key differences between a type II and a type III reaction are the location of antigens and the mechanism of injury. As previously described, type II reactions occur in response to tissue-specific antigen located on cell surfaces and involve direct cell death or malfunction from the antigen–antibody reaction. Type III hypersensitivity reactions involve antigens forming antigen–antibody complexes that precipitate out of the blood or body fluid and are deposited into tissues.
Type III hypersensitivity reactions involve a sequential process that begins with interaction between a circulating soluble antigen and soluble antibody or between an insoluble antigen and a soluble antibody. Depending on the concentration of antigen and antibody, multiple cross-linking of antigen and antibody occurs and immune complexes are formed. Most immune complexes are removed effectively before they can cause injury. In type III hypersensitivity, the immune complexes are not removed, which causes an inflammatory process leading to tissue injury.
When both antigen and antibody are small or intermediate in size and soluble, the immune complex precipitates out of the body fluid
TABLE 10.4 Diseases Associated With Type III Hypersensitivity
Disease Antigen
Immune complex glomerulonephritis
GBM, exogenous antigens, drugs
SLE Double-stranded DNA, DNA-histone complex, Sm, RNP, Ro:SSA, La:SSB, centromere
SLE-associated glomerulonephritis
Double-stranded DNA, DNA-histone complex, Sm, RNP, Ro:SSA, La:SSB
Acute allergic alveolitis Various puffball spores from moldy dwellings Farmer’s lung disease Thermophilic Actinomycetes from
contaminated hay or grains Chemical worker’s lung Isocyanates Still disease—
postinfectious arthritis RANA, or none identified
Rheumatoid arthritis RANA Serum sickness Lymphocytes or thymocytes from
heterologous serum Henoch–Schönlein purpura Upper respiratory tract viruses, drugs
(antibiotics and thiazides), foods (milk, fish, eggs, rice, nuts, beans), and immunizations
Drug-induced vasculitis Drugs (antibiotics and thiazides) Polyarteritis nodosa Antineutrophil cytoplasmic Wegener granulomatosus Antineutrophil cytoplasmic Goodpasture syndrome GBM
GBM, Glomerular basement membrane; La, Lane; RANA, rheumatoid arthritis nuclear antigen; RNP, ribonucleoprotein; Ro, Robert; SLE, systemic lupus erythematosus; Sm, Smith; SS, single stranded.
Deposits in tissue
Antigen-antibody complex formed
in blood Activation of complement
and chemoattraction of neutrophils
Release of enzymes and free radicals
Fc receptor
Tissue destructionBasement membrane
FIG 10.4 Type III hypersensitivity reaction.
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hematuria, hypertension, oliguria, and red cell casts in the urine (see Chapter 27). In some types of glomerulonephritis, the patient may have nephrotic syndrome and acute renal failure that may progress to chronic renal failure.
Treatment of glomerulonephritis involves the use of corticosteroids and other medications to decrease inflammation. Antihistamines and antiserotonins have been tried in attempts to decrease vasoactive media- tors and vascular permeability. Anticoagulants and antiplatelet medica- tions such as aspirin, as well as plasmapheresis, are currently being studied. In plasmapheresis, plasma is removed from the blood and fresh frozen plasma or albumin is used to replace the withdrawn plasma.
Systemic Lupus Erythematosus Etiology. SLE is an example of a type III hypersensitivity reaction
caused by autoantibody production. SLE tends to occur more frequently in women than in men (ratio of 7 : 1) and with an incidence of 20 cases per 100,000 persons. It is primarily characterized by the development of antibodies against nuclear antigens such as DNA, deoxyribonucleohistone, and RNA. Production of autoantibodies to RBCs, neutrophils, platelets, lymphocytes, and other organs or tissues may also occur. The antinuclear antibodies (ANAs) and anti-DNA autoantibodies attach to components of the nucleus to form immune complexes that are deposited on collagen- rich tissues, including the glomerular basement membrane and the dermal-epidermal junction. The exact mechanism causing cell damage and the release of nuclear components and subsequent development of ANA and anti-DNA antibodies is not known. It is proposed that the release of nuclear material from the cell occurs during cell death or secondary to pyroptosis, a proinflammatory process that leads to the release of intact nuclei. Once formed, the autoantibodies can react with DNA and nuclear components from damaged cells anywhere in the body. The resulting inflammatory response causes increased cell damage and further antigen–antibody immune complex formation, thus leading to a cyclic process. The immune complex deposition and resulting inflammatory response cause the signs and symptoms of SLE.
Clinical manifestations. SLE can affect any organ system and, as such, it can present with a variety of signs and symptoms. Because of the variable presentation, diagnostic-specific criteria based on the presence of specific signs, symptoms, and laboratory findings have been developed. Kidney involvement is common and may lead to nephritis and glomerulonephritis. Skin symptoms are wide ranging and include malar “butterfly” rash, erythematous rash on exposed skin, purpura, alopecia, mucosal ulcerations, subcutaneous nodules, and splinter hemorrhages. The malar butterfly rash occurs across the nose onto the cheeks in approximately 26% of patients with acute SLE. The butterfly rash can be flat or raised and always spares the nasolabial folds. The rash that occurs on sun-exposed skin can be superficial or indurated and is nonpruritic. It can occur on the face, chest, shoulders, extensor surfaces of the arms, and backs of the hands. The color ranges from red to reddish purple. Most patients have symptoms of arthritis or polyarthralgia. Other symptoms include pleurisy, pericarditis, restrictive pulmonary disease, retinal changes, thrombocytopenia, anemia, and gastrointestinal ulceration. Central nervous system involvement includes neuritis, seizures, depression, or psychosis. A positive ANA test is usually present with positive anti-DNA (antibody to native DNA) and anti-Sm (antibody to Smith nuclear antigen) (see Chapter 52 for more information).
Treatment. Treatment of SLE depends on the organ system affected and includes administration of nonsteroidal antiinflammatory drugs (NSAIDs) such as aspirin, systemic corticosteroids, antimalarials such as hydroxychloroquine (Plaquenil), alkylating agents such as cyclophos- phamide, and immunosuppressives such as methotrexate, abatacept or belimumab (Benlysta). NSAIDS are used for arthritis symptoms, general- ized aching, and fever. Antimalarials are a common treatment for SLE
It causes a powerful release of proinflammatory mediators with actions that are identical with those of C3a. It is also a powerful chemotactic agent for neutrophils and causes a respiratory burst within neutrophils in which oxygen consumption is increased to 50 times normal along with increased glucose uptake and procoagulant activity.
As a result of the activation of complement, neutrophils, macrophages, and mast cells are attracted to the area and are activated. These cells begin lysis and destruction of tissue via the release of cytokines and the inflammatory response. The inflammation causes tissue destruction, scarring, and further reaction of the immune system against the damaged tissue (see Fig. 10.4). The persistence of the inflammation is due to the ongoing release of autoantigen particles in the damaged tissue that stimulate autoreactive B cells, leading to the formation and deposition of more immune complexes.
Tissue Deposition Antigen–antibody complex deposition in tissues is affected by a number of factors, including size and clearance rate. Smaller immune complexes are able to circulate for longer periods, which may increase the immune response. However, small complexes also can be removed more easily because they can pass through the glomerular basement membrane. The very large complexes can be phagocytized more easily because they are easily marked or fixed by complement and bound to red blood cells. The large complexes can then be transported to the liver, where they are phagocytized by the reticuloendothelial system—particularly the Kupffer cells in the liver—and easily removed from the system. However, large complexes can become stuck in the kidney where they are unable to cross the glomerular basement membrane.
Increased vascular permeability as a result of histamine or other vasoactive mediator release is also hypothesized to be an important factor in tissue deposition. Researchers have found that small immune complexes can be deposited in tissues treated with vasoactive mediators. Sites of increased turbulence and blood pressure tend to have increased immune complex deposition. These sites include the glomerular capil- laries, joint linings, ciliary body, pulmonary alveolar membranes, and vascular endothelial linings, especially around curves or bifurcations.
Intermediate-sized immune complexes tend to be deposited because they do not fix complement well, do not bind with RBCs well after fixa- tion, and are not readily removed by the mononuclear phagocyte system. Large numbers of any size immune complex can be deposited if they are so numerous that the phagocytic cells are overwhelmed. Deposition of immune complexes also depends on their immunoglobulin class and the affinity between the antigen and antibody. Finally, deposition may be affected by the type of antigen or by the relationship between the immune complex and sites with increased collagen. Because DNA and collagen have a strong affinity, an increased quantity of DNA–anti-DNA immune complexes may be deposited in collagen membranes, such as in the kidney. The electrical charge of the immune complex may affect where it is deposited. For example, a positively charged immune complex may be attracted by a negatively charged basement membrane.
Immune Complex Glomerulonephritis Etiology. Immune complex glomerulonephritis (an inflammatory
renal disorder) is an example of a type III hypersensitivity reaction typically occurring 10 to 14 days after infection with a Streptococcus or staphylococcal bacterial strain. It involves the interaction of soluble bacterial antigens with soluble antibodies and is a frequent cause of glomerulonephritis. The circulating immune complex is then deposited in the glomerular capillary wall and mesangium.
Clinical manifestations and treatment. This deposition causes glomerular inflammation, activation of mesangial cells, and ultimately damage to the glomerular basement membrane with resultant proteinuria,
CHAPTER 10 Alterations in Immune Function 207
because of failure of lysosome–phagosome fusion, as in tuberculosis and leprosy, or because of the resistance of various materials to internal lysozymes, as in retained suture material or talc. In an effort to protect the host, lymphocytes and macrophages actually cause the tissue damage by releasing cytokines and stimulating an inflammatory response.
Antigen is engulfed and ingested by macrophages attempting to destroy the antigen, but these actions are unsuccessful in type IV hypersensitivity. The macrophages form a core of inflammatory cells that include lymphocytes, tissue histiocytes, eosinophils, plasma cells, giant cells, and epithelioid cells. This collection of inflammatory cells develops into a ball-like mass called a granuloma. The predominant cell in the granuloma is the macrophage. Epithelioid cells originate from macrophages and are large, flat cells with a large amount of endoplasmic reticulum. When epithelioid cells fuse, they form multinucleated giant cells. This core is surrounded by lymphocytes. Gradually, fibroblastic activity and increased collagen synthesis cause the granuloma to become fibrotic with scar formation. Often, central necrosis occurs within the granuloma and is called caseous or cheesy necrosis. Patients with granulomatous disease have a variety of symptoms. Granulomatous disease examples and the pathogens associated with them are listed in Table 10.5.
Testing for granulomatous diseases also involves skin testing. For example, the tuberculin skin test (i.e., Mantoux or purified protein derivative [PPD]) identifies infection but is not diagnostic of active disease. The test involves intradermal injection of 0.1 mL of PPD into the volar surface of the forearm. There should be a clear bleb at the site of the test. The skin test is then read in 48 to 72 hours. A negative PPD skin test is one in which there is either no reaction or only redness at the site. A positive result is one in which there is equal to or greater than 10 to 15 mm of induration (or tissue firmness) at the site. In patients with HIV a positive result is equal to or greater than 5 mm of induration. However, if the HIV patient’s CD4+ cell count is low (<200 cells/µL), or if the patient is febrile or elderly, there may be no reaction to any skin testing. This is called anergy and causes a false negative in many cases.
Type IVa – Tuberculin-Type Hypersensitivity Tuberculin-type hypersensitivity is a type of allergic contact dermatitis and occurs when someone who has been previously infected by tuber- culosis is exposed to tuberculin antigen in a tuberculin test. It is a dermal phenomenon that peaks in 48 to 72 hours. The person experiences erythema, induration, and inflammation at the site of the intradermal injection. Because the amount injected is so small, the reaction disappears when the antigen has degraded. However, people with severe reactions may experience tissue necrosis at the site.
Type IVa – Allergic Contact Dermatitis Allergic contact dermatitis is the most familiar kind of type IV hyper- sensitivity. It is an immune or inflammatory response to a wide variety
because of their effectiveness in treating arthritis and rash symptoms. The major side effect of antimalarials is ocular toxicity, which can be prevented by limiting therapy to 10 years or less, not exceeding 6.5 mg/ kg/day dosages, and undergoing yearly ophthalmic evaluations. Other side effects include myopathy, pigmentation changes, gastrointestinal effects, liver enzyme changes, dizziness, and emotional changes.
Corticosteroids decrease inflammation and provide immunosup- pression, which can decrease symptoms and add to the patient’s quality of life. Corticosteroids are used for kidney and central nervous system involvement in SLE. If the patient does not respond to corticosteroids, immunosuppressives or cytotoxic agents can be used. Methotrexate is a commonly used immunosuppressive (see earlier). Benlysta is a monoclonal antibody that inhibits B cells and is used only when there is severe, aggressive disease. It is given intravenously every 4 weeks and is very expensive. It is associated with risks for infection, malignancy, and depression. Antibiotics are commonly prescribed because of frequent infections secondary to immune system compromise. Sunscreens with maximum sun protection factor values are necessary to prevent pho- tosensitivity reactions. Patients are also encouraged to avoid direct sunlight from 10 am until at least 3 pm.
Type IV Hypersensitivity Type IV hypersensitivity, also known as a delayed hypersensitivity reaction, is characterized by tissue damage resulting from a delayed cellular reaction to an antigen. This hypersensitivity category has been reclassified into four subclasses that are divided by the type of principal mediator and cytokines involved. The principal mediators are lymphocytes, including CD4+ T helper (Th1) cells, Th2 cells or antigen-sensitized cytotoxic CD8+ T cells (Tc), macrophages, mast cells (in the early phases), and neutrophils. They mediate the reaction by releasing a cascade of cytokines. This reaction is slow in onset and evolves gradually—beginning 24 hours after exposure and lasting up to 2 to 4 weeks after exposure. Clinical manifestations may linger for an even longer period.
Mast cell degranulation occurs early in the evolution of a delayed hypersensitivity reaction, followed by lymphocyte and macrophage invasion. The mast cells are gatekeepers that regulate leukocyte migration in the microvasculature. Unlike that occurring in type I hypersensitivity reactions, the mast cell degranulation is more limited and localized. The reaction is also limited by the action of suppressor T cells, which inhibit other T-cell actions. The reasons for mast cell activation in this type of hypersensitivity reaction are not well understood. However, the combined action of mast cell and T-cell mediators recruits other T cells and macrophages to the site.
The four subclasses of type IV hypersensitivity are IVa) mediated by CD4+ Th1 cells and macrophages/monocytes with cytokines interferon (IFN) gamma, IL-1, IL-2, IL-3, and IL-31; IVb) mediated by CD4+ Th2 cells and eosinophils with cytokines IL-5, IL-4, and IL-13; IVc) mediated by cytotoxic CD8+ T cells with perforin, granzyme B, and Fas ligand; and IVd) mediated by CD4+ T cells, CD8+ T cells, and neutrophils with cytokines IL-6, IL-8, IL-17A, IL-17F, IL23, IL-36, and granulocyte- macrophage colony-stimulating factor.
Many types of delayed hypersensitivity reactions are recognized, including granulomatous hypersensitivity, persistent asthma, allergic contact dermatitis, tuberculin-type hypersensitivity, SJS, toxic epidermal necrolysis (TEN), and pustular psoriasis (PP).
Type IVa — Granulomatous Hypersensitivity Granulomatous hypersensitivity reaction is a primary defense against intracellular infections and represents a chronic type IV hypersensitivity reaction. It is a protective defense reaction that eventually causes tissue destruction because of persistence of the antigen. In this type of hypersensitivity, antigen is not destroyed within the macrophages, either
TABLE 10.5 Granulomatous Disease Associated With Type IV Hypersensitivity
Disease Bacterium
Tuberculosis Mycobacterium tuberculosis Leprosy Mycobacterium leprae Histoplasmosis Histoplasma capsulatum Coccidioidomycosis Coccidioides immitis Brucellosis Brucella abortus
Brucella suis (less common) Brucella melitensis (less common)
Tularemia Francisella (Pasteurella) tularensis
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dendritic cells or Langerhans cells are the antigen-presenting immune cells of the skin and mucous membranes. These cells then move to the local lymph channel, where they migrate to the regional lymph node. Within the lymph node, the dermal dendritic cells display the now- processed complete antigen to CD4+ T cells in the paracortex. Then the antigen-sensitized CD4+ T cells release a cytokine cascade of vasoactive substances, which initiate an inflammatory response and attract other effector cells. The primary cytokines include IL-2, IL-3, IL-31, IFN, TNF, and macrophage-stimulating factors (Fig. 10.5). After about 72 hours, the reaction begins to decrease because of degradation of the antigen and production of prostaglandin E, which inhibits IL-1 and IL-2 production.
As a result of the antigen exposure, T cells bearing receptors for the specific antigen are formed and enter the bloodstream. Any future exposure or contact with the antigen can trigger a cellular reaction, which takes place at each subsequent exposure site. This is called the
of plant oils, chemicals, ointments, clothing, cosmetics, dyes, and adhesives. It is an epidermal phenomenon with two phases: an induction or sensitization phase and an elicitation phase. As a delayed reaction, it peaks in 48 to 72 hours and is usually resolved within 4 weeks, provided that continued exposure to the antigen is avoided.
During the induction phase, a skin-penetrating antigen is applied to or touches the epidermis or a mucosal membrane. The antigen is very small, low in molecular weight, and in an incomplete form. This incomplete, lipid-soluble antigen is called a hapten. The hapten must first penetrate the epidermal barrier (stratum corneum), where it links with a normal body protein, called a carrier. Only after the hapten combines with the carrier is it a complete antigen—often called a hapten conjugate. The means of contact or the antigenic compound itself may help in the sensitization of the epidermis during the induction phase.
The complete antigen is then processed by Langerhans cells or other dermal dendritic cells located in the suprabasal epidermis. The dermal
Hapten Epidermis
Protein (carrier)
1 Exposure to hapten with formation of complete antigen (hapten conjugate)
2 Recognition and processing of antigen by antigen- processing cell (APC)
3 Migration of APC to lymph node where antigens are presented to T cells
4 Release of cytokines that stimulate proliferation of T cells and activate macrophages
Helper T cell
Cytokines
APC
APC
5 Activated T cells and macrophages migrate to the epidermis, release inflammatory mediators, and cause cell destruction
Macrophage T cells
FIG 10.5 Type IV hypersensitivity reaction.
CHAPTER 10 Alterations in Immune Function 209
p53, as well as the release of retinoic acid. The result of this activation causes extensive keratinocyte apoptosis, leading to the symptoms of severe blistering, skin peeling, and multiorgan damage, particularly in the liver. A similar cascade of immune system–activated products occurs when a type IVc hypersensitivity occurs to respiratory infectious agents.
The medications most commonly implicated in SJS/TEN include anticonvulsants (phenytoin, phenobarbital), antibiotics (sulfonamides, aminopenicillins, antifungals), antimalarials, allopurinol, and certain NSAIDs. The treatment of SJS/TEN includes fluid replacement, nutri- tional support, and extensive wound care, as well as the use of medications such as antihistamines, corticosteroids, or immunoglobulin therapy and plasmapheresis.
Type IVd – Pustular Psoriasis PP is a type IVd hypersensitivity reaction. It is a rare and severe form of psoriasis distinguished by the presence of neutrophilic collections intradermally. In type IVd hypersensitivity, CD4+ T cells or CD8+ T cells activate neutrophils as well as a cascade of proinflammatory cytokines, including IL-6, IL-22, IL-23, IL-17A, and IL-17F. The skin lesions are a complex interaction between dendritic cells, keratinocytes, and T cells. Symptoms of PP include repeated attacks of diffuse, erythematous, pustular rash associated with high-grade fever, general malaise, and leukocytosis. The rash is often located in flexural areas. Treatment includes use of topical or systemic corticosteroids and phototherapy, as well as medications including acitretin, cyclosporine, methotrexate, and TNF-blocking medications such as infliximab (Remicade).
elicitation phase. Langerhans cells with the antigen interact with specific T cells, resulting in cytokine activation and release, as well as the prolifera- tion of other inflammatory mediators and CD4+ T cells.
Cross-reactivity with the related substances also occurs. For example, a person with allergic contact dermatitis to nickel will react when exposed to a variety of nickel alloys, including the metal in earrings, zippers, snaps, and belt buckles. Skin symptoms resulting from contact dermatitis include redness (erythema), edema, pruritus, and blisters. People with sensitivities may also experience respiratory symptoms if exposed to aerosolized hapten. This situation could occur when a person is downwind from burning poison ivy or burning tires. Delayed hypersensitivity reaction (type IV) caused by exposure to the compounds in latex gloves is an occupational risk in surgeons and nurses who work in operating rooms.
Patch testing for diagnosis of allergic contact dermatitis is indicated when symptoms persist despite avoidance of the suspected agent and with appropriate use of topical therapy. There are several types of patch tests, including open and closed testing used by dermatologists and allergists. In open patch testing, the suspected allergen is applied twice daily to the upper arm and left uncovered for 2 days. In closed patch tests, the suspected allergen is applied to the skin away from the original site of eruption and is covered with an adhesive bandage. The bandage is then removed in 2 days. The results are graded according to response. A 1+ positive patch test response involves erythema of the entire area of exposure. Patchy pustular responses are not positive and are irritant reactions. A 2+ patch test response involves erythema and vesicles. A 3+ patch test response involves erythema, vesicles, and bullae.
Type IVb – Persistent Asthma Persistent asthma is a form of type IVb hypersensitivity mediated by CD4+ T helper 2 (Th2) cells in response to a variety of stimuli. The CD4+ Th2 cells, as well as other T cells such as Th17, Th 22, and Th9, produce and release inflammatory cytokines and initiate eosinophilic involvement. This production of inflammatory cytokines includes IL-4, IL-5, IL-9, and IL-13, among others, as well as increased levels of IgE and eosinophil production. The interaction of these inflammatory vasoactive substances leads to the development of severe airway inflam- mation and asthma symptoms. The variability of individual asthma symptoms is influenced by multiple genetic, racial, and environmental factors that also influence the reactivity of the individual’s immune system. (See Chapter 22 for further discussion of asthma.)
Type IVc – Stevens–Johnson Syndrome and Toxic Epidermal Necrolysis SJS and TEN are type IVc hypersensitivity reactions in response to medications or upper respiratory tract infection caused by herpes simplex virus or Mycoplasma pneumnoniae. Medications or their metabolites can interact with HLA class I alleles such as HLA-B*57:01 causing CD8+ T-cell activation with the production of cytokines. This type of immune system–mediated reaction is an adverse drug reaction that usually occurs approximately 4 to 14 days after starting a new medication, but may not occur for up to 6 weeks. In these cases, the immune-mediated reaction is a delayed reaction to a medication, in contrast to type I hypersensitivity reactions, which have an onset within 1 hour. In other patients, upper respiratory tract infectious agents interact with CD8+ T cells causing activation and release of cytokines. Because it is a delayed reaction, symptoms may not occur for 3 to 4 days and may last for 6 weeks.
When the onset of SJS/TEN occurs after ingestion of a medication, the medication or its metabolic byproduct binds directly to immune receptors on cytotoxic CD8+ T cells. Activation of the CD8+ T cells causes the release of secretory granulysin, perforin, and tumor suppressor protein
KEY POINTS • Type I hypersensitivity is an immediate allergic or anaphylactic type of
reaction mediated primarily by sensitized mast cells. The reaction is initiated when IgE antibodies located on the mast cell membrane are bound by antigen, with subsequent cross-linking of IgE receptors. Mast cell degranula- tion releases chemicals that mediate the signs and symptoms of anaphylaxis. Released histamine, kinin, prostaglandins, interleukins, and leukotrienes cause increased vascular permeability, vasodilation, hypotension, urticaria, and bronchoconstriction. Examples of type I reactions include acute drug reactions, bee sting reactions, and allergic contact dermatitis.
• Type II hypersensitivity occurs when antibodies are formed against antigens on cell surfaces, usually resulting in lysis of target cells. Cell lysis may be mediated by activated complement fragments (MAC) or by phagocytic cells that are attracted to target cells by the attached antibodies. Examples include transfusion reactions, erythroblastosis fetalis, myasthenia gravis, and hyperacute graft rejection.
• Type III hypersensitivity reactions occur when antigen–antibody complexes are deposited in tissues and result in the activation of complement and subsequent tissue inflammation and destruction. The antigen–antibody complexes activate the complement cascade and subsequently attract phagocytic cells to the tissue. History of persistent low-grade infections, inhalation of antigens into alveoli, and autoimmune production of antibodies may result in chronic production of antigen–antibody complexes. Examples include immune glomerulonephritis and systemic lupus erythematosus (SLE).
• Type IV hypersensitivity reactions are T-cell mediated and do not require antibody production, in contrast to type I, II, and III reactions. Sensitized T cells react with altered or foreign cells and initiate inflammation. Granulo- matous hypersensitivity, tuberculin reactions, persistent asthma, Stevens- Johnson syndrome (SJS), and pustular psoriasis (PP) are examples.
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such as HIV/AIDS. HIV/AIDS is described in Chapter 12, and only the congenital forms of primary immunodeficiency are included here. Primary congenital immunodeficiency disorders are genetic disorders that are often sex linked and occur in 1 in 58,000 infants. The most common primary disorders are listed in Table 10.6. There are also strong genetic epidemiologic data suggesting that many people have some inborn errors of immunity that may vary in clinical significance, expres- sion, and severity. This novel observation is changing how we view immunodeficiency. The first clinical indicators of immunodeficiency disorders are the signs and symptoms of infection.
B-Cell and T-Cell Combined Disorders Severe Combined Immunodeficiency Disorders
Etiology and pathogenesis. SCIDs are inherited PIDs that arise from a variety of genetic defects. There is wide phenotypic and immunologic variability in SCIDs with differences in their severity and clinical features. Nearly all SCIDs are characterized by the absence or dysfunction of T cells, which affects both cellular and humoral adaptive immunity. However, different forms of SCID may also have B-cell and natural killer (NK)–cell absence or dysfunction. For example, depending on the genetic defect, B cells may be present (T−B+) or absent (T−B−). Although B cells may be present, the B cells are unable to produce functional antibodies because of the absence of T-cell help.
T−B+ NK− X-linked SCID is thought to be the most common type of SCID. It is caused by mutations in the IL2RG gene that is responsible for encoding the common γ chain, which is needed by multiple cytokine
DEFICIENT IMMUNE RESPONSES Deficient immune responses result from a functional decrease in one or more components of the immune system. These disorders can affect lymphocytes, antibodies, phagocytes, and complement proteins. Two types of immune deficiency are differentiated: primary and secondary. Primary disorders are immune deficiencies not attributable to other causes; these may be congenital or acquired. Examples of primary immunodeficiency disorders include SCID syndrome, DiGeorge syn- drome, selective IgA deficiency, and HIV/AIDS. Persons with a primary immunodeficiency can be predisposed to multiple deficiencies, as in agammaglobulinemia or SCID, or can have a single phenotype deficiency predisposing to a specific problem, such as in patients with STAT-1 dependent chronic mucocutaneous candidiasis. Secondary immuno- deficiency disorders are a consequence of non–immune system disorders or treatments that secondarily affect immune function. Examples of secondary disorders include those associated with hyperlipidemia or malnutrition, medical treatments such as cancer chemotherapy, or biopsychosocial stress such as postsurgical immune suppression.
PRIMARY IMMUNODEFICIENCY DISORDERS Primary immunodeficiency disorders (PIDs) include congenital phe- notypes that result from abnormal development or maturation of immune cells, as well as acquired primary disorders of immune cells
TABLE 10.6 Primary Congenital Immunodeficiency Disorders
Disorder Functional Deficiency Error
X-linked agammaglobulinemia B cells; antibody btk gene mutation on long arm of X chromosome (Xq21.3-Xq22)
Common variable (acquired) hypogammaglobulinemia
Antibody; B cells may be decreased Unknown: possible CARMA1 variant and BOB1 variant
Selective IgA deficiency IgA antibody Unknown: possible alterations in transmembrane activator, calcium modulator, and cycophilin ligand interactor gene
Chronic mucocutaneous candidiasis B cells; secretory IgA antibody Autosomal-recessive deficiency in IL-17RA; autosomal- dominant deficiency of IL-17F
X-linked hyper-IgM syndrome Low levels of IgG and IgA; normal to elevated IgM antibody
Defect in CD40 ligand on T cells
Selective deficiency of IgG subclasses IgG antibody subclass Unknown Transient hypogammaglobulinemia of infancy Low IgG and IgA antibodies Unknown X-linked lymphoproliferative disease or Duncan
X-linked lymphoproliferative disease Anti–Epstein–Barr virus–linked antigen antibody Mutations in SH2D1A and XIAP (BIRC4)
22a11.2 deletion syndrome Primarily T cells Chromosome 22q11.2 deletion T−B+ NK− SCID — Autosomal recessive T cells, antibody Defects of JAK3 X-Linked recessive, T−B+ NK− SCID T cells, antibody Defects of IL2RG gene T−B−NK+ SCID (Omenn syndrome) T cells, B cells, antibody Mutations of RAG1 or RAG2 MHC class II expression deficiency (bare
lymphocyte syndrome) Lack of antigen Class II gene expression, T cells, antibody
Mutations in genes coding: class II transactivator (CIITA), RFX5 (regulatory factor X5), RFXAP (RFX-associated protein), or RFXANK
Wiskott–Aldrich syndrome (immunodeficiency with eczema and thrombocytopenia)
Antibody, T cells, platelets Mutation of WASp gene; defect of short arm of X chromosome at Xp11.23
Chédiak–Higashi syndrome Natural killer cells, phagocytic cells, granulocytes, platelets
Autosomal-recessive disorder; mutations in LYST (aka CHS1) gene on chromosome 1
Chronic granulomatous disease of childhood Phagocytic cells (neutrophils) Defect in superoxide generation; Mutations in genes CYBA, NCF-1, NCF-2, CYBB; most are X-linked recessive
btk, Bruton tyrosine kinase; JAK, Janus kinase; MHC, major histocompatibility complex; SCID, severe combined immunodeficiency; WASp, WAS protein.
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involved in cytoplasmic signaling, immune cell function, and regulation of the actin cytoskeleton in hematopoietic cells. The WASp deficiency upsets B-cell homeostasis with a decrease in mature peripheral B-cell subsets, which causes a dysfunction in B cells and abnormal serum immunoglobulins. Usually there is decreased IgM level, elevated IgE and IgA levels, and normal-to-low IgG level. This antibody variability is the result of increased antibody catabolism. Other laboratory findings include low-to-absent isohemagglutinins and low platelet count secondary to increased platelet destruction by the spleen due to abnormalities in platelet size and shape. Defects in peripheral self-tolerance are due to dysfunctions in regulatory and effector T cells. Affected infants have particular difficulty mounting immune responses to polysaccharide- encapsulated bacterial antigens.
Clinical manifestations and treatment. Wiskott–Aldrich syndrome is clinically characterized by the presence of microthrombocytopenia, eczema, and increased susceptibility to developing infection and malignancies. Affected children can develop bleeding manifested as bloody diarrhea, or cerebral hemorrhage and infections due to polysaccharide-encapsulated bacteria (S. pneumoniae and H. influenza) including pneumonia, meningitis, otitis media, and sepsis. They can also develop systemic autoimmunity, which increases the severity of their disease. The average age of these infants at death is 3.5 years without treatment.
Infants with Wiskott–Aldrich syndrome are treated with antibody replacement therapy and antibiotic therapy. Splenectomy, bone marrow transplantation, stem cell transplantation, and gene therapy are options used to manage this disorder in affected children.
T-Cell Disorders 22q11.2 Deletion Syndrome (DiGeorge Syndrome)
Etiology and pathogenesis. 22q11.2 deletion syndrome, also known as DiGeorge syndrome, is an autosomal-dominant developmental T-cell disorder due to a hypoplastic or aplastic thymus gland. The development of this syndrome is caused by a chromosomal 22q11.2 deletion (del 22q11) that results in defective fetal development. The abnormal chromosome is usually inherited from the mother. It is the most common microdeletion syndrome with an estimated prevalence of 1 in 4000 live births. Male and female children are equally affected by this condition. The immunodeficiency seen in this syndrome is due to total or partial loss of thymus gland function where T-cell maturation occurs. As a result, T cells are deficient to varying degrees. B cells are usually normal in number and function. Often the immune system impairment is minimal with normal-to-decreased numbers of T cells. In those patients with severe impairment due to absent T cells secondary to an aplastic thymus gland, B-cell function is abnormal as well. These patients have severe immunodeficiency that resembles SCID. There may also be associated genetic modifiers that vary in clinical presentation.
Clinical manifestations and treatment. Because 22q11.2 deletion syndrome is a congenital disorder of fetal organ development, it is often associated with other congenital problems, such as cardiac and great vessel anomalies, hypoparathyroidism with hypocalcemia, hypothyroid- ism, esophageal atresia or reflux, urogenital anomalies, growth restriction, developmental delay, psychiatric or behavioral problems, microcephaly, and dysmorphic facial features, including mandibular hypoplasia, short forehead, and protuberant or low-set ears. If the individual has minimal loss of thymus function, recurrent infections may not be a significant problem. However, recurrent infections occur in many to most patients. This increases the risk of fetal loss or infant death. For these children, thymic transplantation or bone marrow transplantation has been helpful in reestablishing T-cell populations. Specific treatments and therapies are needed for the management of these patients, particularly those with cardiac defects and hypocalcemia with seizures.
receptors, including IL-2, IL-4, IL-7, IL-9, IL-15, and IL-21. This defect results in the loss of all T-cell and NK-cell development. B cells are present but do not function normally. Another type of T−B+ NK− SCID is caused by a mutation in the gene encoding janus kinase 3 (JAK3 deficiency), which is important for differentiation of lymphoid cells. The result of this defect also causes low T cells and NK cells with nonfunctional B cells. The IL-7Ra gene–deficiency SCID is noted for low T cells but normal numbers of nonfunctional B cells and normal NK cells (T−B+ NK+ SCID).
T−B−NK+ SCID patients have a defect caused by mutations of recombination activating genes 1 or 2 (RAG1 or RAG2), both of which are involved in the process of antigen receptor gene assembly. This absence leads to abnormalities in T-cell and B-cell receptor expression and development. NK cell development is not affected because they do not express immunoglobulin-like receptors. Omenn syndrome is an example of this type of defect characterized by SCID, eczema-like rash, hepatosplenomegaly, and alopecia.
Adenosine deaminase deficiency SCID (ADA SCID) patients have a genetic mutation on chromosome 20q12.2-13.11. This T−B−NK− ADA SCID results in a deficiency of ADA, an intracellular enzyme of purine metabolism, whose function is to remove toxic metabolites formed in lymphocytes. As a result of this deficiency, there is an accumulation of toxic metabolites (particularly deoxyadenosine (dAdo) and deoxy- adenosine triphosphate (dATP)) which are lethal to T cells, B cells, and NK cells, as well as their precursors. Patients with this autosomal-recessive form of SCID have a complete absence of lymphocytes. They have severe recurrent infections and skeletal abnormalities.
Clinical manifestations and treatment. Untreated infants with SCIDs are severely ill with high early mortality — usually at less than 1 year. They are usually ill within 3 months of age and present with failure to thrive, persistent oral thrush, persistent diarrhea, severe Candida diaper dermatitis, recurrent severe infections, lymphadenopathy, and hepato- splenomegaly. Depending on the form of SCID, the infant may or may not have lymphopenia. They are prone to sepsis and opportunistic infections because they are unable to fight infections even if their B cells are present. They are susceptible to multiple pathogens such as Candida albicans or Pneumocystis jiroveci, viruses such as CMV or herpes virus, and common childhood diseases such as varicella and measles. Because of their severity, early recognition of infants with SCIDs is important and has led to the development of SCID screening of newborns. Persons with a positive family history can be tested antenatally if the genetic mutation is known, or screening can occur at birth. Newborn screening for SCIDs is currently conducted population-wide in 23 states, the District of Columbia, and the Navajo Nation.
Infants suspected of having SCID should be placed in protective isolation, and all staff involved in the infants’ care should be vigilant about following proper handwashing procedures and avoiding exposure to infections. The practice of avoiding other children is recommended when they are able to be discharged home. Breast feeding is encouraged if the mother is CMV negative and without active infection. Nasogastric or parenteral nutrition may be needed for adequate nutrition. Curative therapy involves hematopoietic stem cell transplantation with either umbilical cord blood or bone marrow preferably from HLA-haploidentical siblings. Other therapies include chemotherapy conditioning regimens, long-term immunoglobulin replacement therapy every 2 to 3 weeks, enzyme replacement therapy, and gene therapy.
Wiskott–Aldrich Syndrome Etiology and pathogenesis. Wiskott–Aldrich syndrome is an X-linked
immunodeficiency disorder occurring only in males. It is caused by a mutation of the WAS protein (WASp) gene and has been mapped to the short arm of the X chromosome at Xpll.23. The WASp gene is
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spleen, Peyer patches, lymph nodes) are poorly developed. The disease is characterized by recurrent bacterial infection and profound hypogam- maglobulinemia resulting from decreased numbers of circulating B cells. Male infants affected by this disorder are typically diagnosed after the infant reaches 4 months of age because of passive maternal IgG protection.
Clinical manifestations and treatment. Patients exhibit failure to thrive and frequent serious infections. The infections are most often attributable to Haemophilus influenzae and S. pneumoniae, which cause pneumonia, otitis media, meningitis, sinusitis, and septicemia. The recurrent infections can lead to tissue destruction and injury. Many children die before the age of 6. If the child survives to adulthood, life expectancy is decreased. Chronic lung disease, large joint arthritis, and the development of B-cell malignancies occur in adults with XLA. Treatment of this disorder includes implementation of antibiotic therapy and prophylactic antibiotics, as well as monthly administration of immunoglobulin infusions. However, passive immunotherapy is not always effective. Currently, curative hematopoietic stem cell–based gene therapy is advocated to correct B-cell and myeloid deficiencies. Children who have been diagnosed with XLA should not be immunized with live virus vaccine due to the risk of the development of severe infection.
Transient Hypogammaglobulinemia Transient hypogammaglobulinemia of infancy is a self-limiting condition in which the infant is slow to acquire normal immunoglobulin levels. The infant experiences a lengthened period of low IgG, IgM, and IgA levels after birth. Normal IgG production begins only after 2 months of life and increases slowly as maternal immunoglobulins are metabolized. Affected infants usually demonstrate normal immunoglobulin levels and immune system function by between 18 and 30 months. During the period of low antibody levels, they are more susceptible to infections, particularly respiratory tract infections.
Common Variable Immunodeficiency Disease Common variable immunodeficiency disease (CVID) is a B-cell disorder characterized by low titers of immunoglobulins, particularly IgG and IgA, as well as abnormal specific antibody responses. The primary defect is the inability of B cells to differentiate into plasma cells. In most cases, there are multiple mutations in several genes that encode the production of antibody subclasses and cytokines. There are usually normal numbers of B cells. The onset of CVID disease is variable from early childhood to the second or third decade of life. Males and females are equally affected with an incidence of 1 in 30,000 people.
Clinical manifestations and treatment. CVID is characterized by recurrent and severe infections, particularly respiratory tract disorders, including sinusitis, otitis, laryngitis, and pneumonia. The most frequent pathogens involved are encapsulated bacteria such as S. pneumoniae and H. influenzae. Infections of the gastrointestinal tract also occur from Giardia and Salmonella. There is an increased incidence of associated autoimmune disorders, including autoimmune thrombocytopenia purpura, arthritis, or thyroiditis; malignancies such as lymphoma, gastric, or colon cancer; granulomas in multiple locations; and gastrointestinal diseases, including colitis. Treatment involves IV or subcutaneous administration of immunoglobulin every 2 to 4 weeks, use of corticosteroids, and prompt treatment with antibiotics as needed. Occasionally stem cell transplantation is used in treatment.
SECONDARY IMMUNODEFICIENCY DISORDERS A number of physical, psychosocial, nutritional, environmental, and pharmacologic factors can singly or in combination lead to the
Chronic Mucocutaneous Candidiasis Disease Etiology and pathogenesis. Chronic mucocutaneous candidiasis
disease (CMCD) is a T-cell disorder caused by an autosomal-dominant mutation affecting STAT 1 GOF with impaired-to-absent IL-17. CMCD results from the deficiency of the cytokine IL-17 or IL-17F, leading to selective susceptibility to fungal infections and Staphylococcus aureus. There is variability in impairment from complete to partial with varying cytokine activity. As a result of these deficiencies, CMCS is characterized by a selective deficiency of cell-mediated immunity against Candida albicans and S. aureus. In this case T cells do not produce the correct cytokines needed for the cell-mediated immunity to C. albicans. This causes persistent or recurrent isolated skin, nail, and mucous membrane infections. B-cell and T-cell functions are usually normal, except for the inability of the T cells to respond to Candida infections. Occasionally IgA or other antibody levels may be affected.
Clinical manifestations and treatment. The goal of treatment is to reduce the severity of skin and mucous membrane infections and to decrease the disfigurement from infection and scarring. Treatment involves antifungal therapy or antibiotic therapy. Gene therapies are being investigated.
B-Cell Disorders IgA Deficiency
Etiology and pathogenesis. The most common B-cell PID is selective IgA deficiency (SIgAD). The incidence of this disorder varies geographi- cally, affecting 1 in 600 persons in Caucasian populations and 1 in 2600 among Asian populations. It is a B-cell disorder characterized by either apoptosis of plasma cells or failure of IgA-bearing lymphocytes to become plasma cells. The result is the lack of IgA antibodies in the serum. Genetically, it can be an autosomal-recessive or autosomal-dominant disease. The B-cell level is normal, but there is a lack of B-cell response to cytokines (IL-4, IL-6, IL-7, IL-10). Serum levels of IgM and IgG, as well as T-cell numbers, are normal.
Clinical manifestations and treatment. People with this disorder may exhibit no symptoms. However, when symptoms occur, they are prone to respiratory, gastrointestinal, and genitourinary tract infections. They tend to have many autoantibodies (including anti-IgA antibodies) with a high incidence of allergic, vascular, endocrine, and collagen autoimmune diseases. They often react to cow’s milk, and inflammatory bowel conditions such as celiac disease can develop. Treatment includes prevention of infection and management of infection with appropriate antibiotics. SIgAD patients are at risk of developing anti-IgA antibodies when exposed to blood or blood products. As a result, exogenous IgA replacement is contraindicated. When blood is needed, washed and packed RBCs with volume expanders are used to avoid serum antibody exposure.
X-Linked Agammaglobulinemia Etiology and pathogenesis. X-linked agammaglobulinemia (XLA)
(also known as Bruton X-linked agammaglobulinemia) is a B-cell genetic disorder caused by a lack of normal B-cell development in the bone marrow. The disorder is linked to a mutation of the gene btk (Bruton tyrosine kinase) located on the long arm of the X chromosome at position Xq21.3 to Xq22. It occurs in about 1 : 200,000 male births. In 1952 it was the first genetic immunodeficiency disorder identified. Females are carriers. This mutation occurs in a cytoplasmic signal- transducing molecule encoded by the btk gene, which results in decreased or absent B cells. The low B-cell numbers cause decreased or absent serum concentrations of IgG, IgA, or IgM immunoglobulins. The number of T cells is normal. The thymus functions normally. Plasmocytes are absent, and reticuloendothelial tissue and lymphoid organs (e.g., tonsils,
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as well as carbohydrate, lipid, vitamin, and mineral deficiencies. Protein and calorie depletion causes T-cell reductions and dysfunction. Antibodies are composed of proteins, levels of which are also low in a state of depletion. Low levels of zinc, an enzyme cofactor needed for lymphocyte function, as well as low levels of folic acid and vitamins B6, A, D, and E, can result in T-cell and B-cell dysfunction. Obesity, low physical activity, and hyperlipidemia can cause chronic systemic inflammation due to local immune response in visceral adipose tissue. Obesity has been found to cause up-regulation of a wide variety of proinflammatory cytokines, including IL-5, IL-10, IL-12, and IFN-γ. Nutritional balance is best for the development of all stem cells, the recognition and process- ing of antigens, and the attainment of optimal immune cell function.
In the elderly, immune system function is altered with decreased response to antigenic stimulation. This decrease is due to increased CD8+ T cells that lack expression of the CD28 molecule. This subset (CD28-CD8+) does not respond well to antigenic stimulation. Immune system cells in the elderly are not able to proliferate or reproduce as effectively as in younger persons, making them less able to respond to “new” antigenic stimuli. Although the total number of T cells remains the same, T-cell function is decreased. T cells are less capable of proliferat- ing and have decreased cytotoxicity. Antibody production also decreases. A rise is seen in autoantibody production, which may influence the increase in autoimmune disease in the elderly.
development of secondary immunodeficiency disorders. Many of these linkages are discussed in Chapter 8.
The direct and indirect linkages between the brain and the endocrine and immune systems are well known. As a result, excessive or defective neuroendocrine responses can lead to disease. For example, an excessive neuroendocrine response to stress with increased secretion of corticosteroids boosts a person’s susceptibility to infectious agents and tumors but enhances resistance to autoimmune disease. On the other hand, a defective neuroendocrine response to stress with low corticosteroid levels enhances autoimmune disease and inhibits infections and tumors. Individuals experiencing physical and psychosocial stress, decreased social support, depression, and bereavement show decreased immune system functioning.
Morbidity and surgery also affect the function of the immune system. After surgery, T-cell and B-cell numbers decrease. This temporary deficiency can last up to 1 month and is most likely a result of the stress of surgery. Some types of surgery, such as splenic surgery, actually reduce the effectiveness of the immune system. Removal of the spleen reduces serum IgM and the antibody response to encapsulated bacteria (e.g., S. pneumoniae, H. influenzae, S. aureus). Disease states such as diabetes mellitus, drug- or alcohol-induced cirrhosis, severe burns, severe trauma, sickle cell anemia, malignancies, and severe infections are associated with secondary immune deficiencies. For example, when blood glucose level rises in patients with diabetes mellitus, white blood cell response to infection declines.
Pregnancy requires immune adaptation in order to be successful. During pregnancy, many factors are released from the placenta influencing the immune system, including B-cell and T-cell function and cytokine balance. The placenta functions to regulate and coordinate all of the components of the complex maternal and fetal immune interface such as the secretion of cytokines: proinflammatory and antiinflammatory.34 Pregnancy’s proinflammatory state requires careful coordination, and failure to adapt can lead to spontaneous abortion or preeclampsia. For example, exosomes (syncytiotrophoblast microvesicles) are shed from the placenta into the maternal circulation. These exosomes have both physiologic and immunologic functions.
A number of pharmaceuticals affect the functioning of the immune system. Cytotoxins and other cancer pharmacotherapeutic drugs cause a state of generalized immunosuppression, including growth retardation, susceptibility to infection, impaired wound healing, and hypertension. For example, methotrexate is a phase-specific cytotoxin in which cells are killed only if they are in the S, or DNA-synthetic, phase. Cyclophos- phamide is toxic to cells in any mitotic phase, although it is better at killing active cells. Anesthetics (e.g., halothane, cyclopropane, nitrous oxide, ether), alcohol, antibiotics, antithyroids, anticonvulsants, anti- histamines, and steroids decrease cellular or humoral immunity by various methods. For example, chronic nitrous oxide toxicity leads to cell-mediated immune deficits. Therapeutic radiation (x-rays) also affects the immune system by destroying rapidly proliferating cells. When T-cell and B-cell clones are needed, irradiation eliminates these cells, thus blunting or reducing the effectiveness of the body’s response.
A number of studies have linked immune system competency and nutritional status. Malnutritional states can lead to protein depletion,
KEY POINTS • Primary deficiencies in immune function may be from congenital, genetic,
or acquired defects that directly affect immune cell function. • Secondary deficiencies are conditions that impair immune function as a
result of other nonimmune system disorders, such as poor nutrition, pregnancy, stress, or drugs, that secondarily suppress immune function.
• Primary genetic immunodeficiency disorders are fairly common, with most causing moderate immune impairment that may not be diagnosed. Severe congenital immunodeficiency disorders are less common, but clinically sig- nificant. Impairment in T cells and B cells results in severe combined immu- nodeficiency (SCID). Functional B and T lymphocytes are lacking, and infants with SCID easily succumb to sepsis and opportunistic infections. Other types of primary immunodeficiency disorders (PIDs) affect a particular cell type: DiGeorge syndrome (now called 22q11.2 deletion syndrome) occurs with T-cell agenesis related to a lack of thymus function; chronic mucocutaneous candi- diasis is caused by abnormal T cells that cannot respond to Candida; and selective immunoglobulin A (IgA) deficiency is caused by B-cell abnormality.
• Problems in neuroendocrine and immune system interactions are a cause of secondary immunodeficiencies. Excessive neuroendocrine response to stress with increased corticosteroid production increases susceptibility to infection.
• Medications such as cytotoxins and other cancer pharmacotherapeutic drugs cause generalized secondary immunosuppression. However, other medica- tions, such as anesthetics, alcohol, antibiotics, and steroids, also affect the immune response and can lead to secondary immunosuppression.
• Malnutrition, a major cause of immune system dysfunction, leads to lym- phocyte dysfunction and altered stem cell development.
Human beings live in internal and external environments teeming with antigens capable of producing immunologic responses. Contact with an antigen, or antigens, usually leads to induction of a normal protective immune response. However, some individuals experience disease and tissue damage caused by either excessive or deficient immune responses.
Excessive immune reactions are common and involve a complex interplay between antigen and components of the immune system. Autoimmune disease is a type of excessive immune reaction in which the immune system reacts against the body’s own cells, such as in rheumatoid arthritis or Graves disease. The tissues that are affected in
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excessive immune reactions depend on the type of antigen, the type of antigen exposure, and the degree of immune responsiveness. Hyper- sensitivity disorders are differentiated by the cell type involved and the time course of the reaction. For example, type I hypersensitivity is a rapid response caused by a host of lethal chemicals generated by but involving only one antibody, IgE, and one effector cell, the mast cell. It is an antigen–antibody reaction causing the release of potent chemicals that can lead to extreme, even life-threatening, anaphylaxis reactions in susceptible individuals.
Deficient immune reactions are caused by genetic or embryonic defects. The lack of or dysfunction of T cells, B cells, and antibodies can lead to lethal or recurrent infections or other diseases that severely
limit the patient’s ability to interact with the environment. The degree of immune system dysfunction or deficiency varies greatly between individuals due to the complex interaction between the various com- ponents of the immune system. For example, the most common type of deficient immune response is SIgA. As a result of variable IgA produc- tion by B cells, the range of symptoms varies from none to recurrent infections with autoimmune disease.
Research into the complex interaction between genetic factors, environmental factors, and the immune system is ongoing. We are challenged to expand our understanding and knowledge of immune components, responses, and their physiologic or pathologic effects on individuals, families, and society as a whole.
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Malignant Disorders of White Blood Cells Marie L. Kotter and Jacquelyn L. Banasik
K E Y Q U E S T I O N S • How do the various types of leukemia, lymphoma, and plasma
cell myelomas differ based on the type of malignant transformation?
• How do the clinical presentations, prognosis, and management of types of acute and chronic leukemia differ?
• Why are malignant disorders of white blood cells commonly associated with bone marrow depression?
• How is Hodgkin disease clinically and histologically differentiated from other types of lymphoma?
• What is the purpose and process of staging procedures for lymphomas?
• What clinical and laboratory findings would suggest a diagnosis of plasma cell myeloma?
C H A P T E R O U T L I N E Classification of Hematologic Neoplasms, 215 Etiology of Myeloid and Lymphoid Neoplasms, 216 General Principles of Management, 217
Diagnosis of Hematologic Neoplasms, 217
Principles of Treatment, 218
Prevention and Management of Complications, 219
Myeloid Neoplasms, 221 Chronic Myeloid Leukemia, 221
Acute Myeloid Leukemia, 222
Lymphoid Neoplasms, 223 Chronic Lymphoid Leukemia, 223
Acute Lymphoblastic Leukemia/Lymphoma, 223
Hairy Cell Leukemia, 224
Plasma Cell Myeloma (Multiple Myeloma), 224
Hodgkin Disease, 227
B-Cell, T-Cell, and NK-Cell Lymphoma (Non-Hodgkin), 229
http://evolve.elsevier.com/Banasik/pathophysiology/
Leukemia, lymphoma, and plasma cell myeloma (multiple myeloma) are common neoplastic disorders of the bone marrow and lymphoid tissues. Depending on the location and specific types of white blood cells involved, these malignancies can be further divided into a number of specific subtypes. Leukemias can be conceptualized as circulating tumors that are disseminated from the beginning of the disease process and primarily involve the blood and bone marrow. Lymphoma tends to localize in lymph tissues, but is often disseminated to other sites at the time of diagnosis. Plasma cell myeloma is a malignant transformation of B-lymphocyte plasma cells and has a predilection to form localized tumors in bony structures.
Malignancies of the blood-forming tissues and lymphatic structures often present with nonspecific symptoms. Malaise, weakness, unexplained fever, night sweats, and recurrent infections should raise suspicion of malignancy. Enlarged, nontender lymph nodes (lymphadenopathy) are a common finding in lymphoma and some leukemias. Often, white blood cell malignancies are found by chance during routine assessment of the complete blood cell count (CBC). A very high total white blood cell count or the presence of abnormal cell types should precipitate an
assessment for hematologic cell malignancy. In general, earlier detection of malignancy is associated with a better prognosis for cure.
CLASSIFICATION OF HEMATOLOGIC NEOPLASMS Various classification schemes have been used to group hematologic neoplasms, with clinicians favoring schemes that use clinical findings and pathologists preferring morphologic criteria. With the advent of technolo- gies to identify specific genetic alterations and molecular characteristics of neoplastic cells, the traditional classification systems have become less useful. However, many clinicians and organizations, such as the American Cancer Society, continue to use traditional groupings to collect statistics and to provide information to the public. The approach used in this chapter incorporates the most recent World Health Organization (WHO) classifications for hematologic neoplasms and includes common clinical terminology. A major force behind the adoption of the WHO classification is the recognition that lymphoid leukemias and lymphomas are not separate disorders, but represent different stages of the same biological disease. Thus the major categories of the WHO system are
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
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ETIOLOGY OF MYELOID AND LYMPHOID NEOPLASMS As in other malignant processes, the exact cause of hematologic neoplasms is unknown. The basic mechanism of malignant transformation involves mutation of cells, which disrupts growth control and differentiation pathways. These processes are thought to be similar to those described for solid tumors (see Chapter 7). A number of specific genetic mutations have been found for several hematologic malignancies. In some cases, these specific mutations indicate prognosis of the disease, and in others they may provide a target for therapy. Monoclonal antibodies have been developed to attach to products of some of these mutated genes, thus allowing therapy to be more targeted to the abnormal cells.
Viruses have long been suspected as mutagenic agents in some neoplasms, particularly retroviruses and herpesviruses. Close associations have been found between a small number of viruses and particular malignancies. For example, human T-cell leukemia virus (HTLV-1) is
based on the cell type of the neoplasm rather than its location in the body. Neoplasms involving cells of the myeloid lineage (Box 11.1) are separated from those of the lymphoid lineage (Box 11.2). The myeloid lineage includes red blood cells, platelets, monocytes, and granulocytes; the lymphoid lineage includes B cells, T cells, and natural killer (NK) cells (Fig. 11.1). There are four major categories of myeloid neoplasms: myeloproliferative diseases, myelodysplastic/proliferative diseases, myelo- dysplastic syndromes, and acute myeloid leukemia (AML). There are three major categories of lymphoid neoplasms: B-cell neoplasm, T-cell and NK-cell neoplasm, and Hodgkin disease. The term non-Hodgkin lymphoma is still in clinical usage and refers to lymphomas of B-cell, T-cell, and NK-cell origin. Non-Hodgkin lymphoma includes such a large and diverse group of malignancies that it has little relevance to prognosis or treatment. The WHO classification does not use this term. There are many etiologic, pathogenic, and treatment similarities among the hematologic malignancies, and these are addressed in a general way first, followed by sections concentrating on specific diseases.
From Arber DA et al: The 2016 revision to the World Health Organization classification of myeloid neoplasms and acute leukemia. Blood 2016;127(20):2391–2404.
Myeloproliferative Neoplasms (MPN) Chronic myeloid leukemia (CML), BCR-ABL1+
Chronic neutrophilic leukemia (CNL) Polycythemia vera (PV) Primary myelofibrosis (PMF)
PMF, prefibrotic/early stage PMF, overt fibrotic stage
Essential thrombocythemia (ET) Chronic eosinophilic leukemia, not otherwise specified (NOS) MPN, unclassifiable Mastocytosis
Myeloid/Lymphoid Neoplasms With Eosinophilia and Rearrangement of PDGFRA, PDGFRB, or FGFR1, or with PCM1-JAK2 Myeloid/lymphoid neoplasms with PDGFRA rearrangement Myeloid/lymphoid neoplasms with PDGFRB rearrangement Myeloid/lymphoid neoplasms with FGFR1 rearrangement Provisional entity: Myeloid/lymphoid neoplasms with PCM1-JAK2
Myelodysplastic/Myeloproliferative Neoplasms (MDS/MPN) Chronic myelomonocytic leukemia (CMML) Atypical chronic myeloid leukemia (aCML), BCR-ABL1−
Juvenile myelomonocytic leukemia (JMML) MDS/MPN with ring sideroblasts and thrombocytosis (MDS/MPN-RS-T) MDS/MPN, unclassifiable
Myelodysplastic Syndromes (MDS) MDS with single lineage dysplasia MDS with ring sideroblasts (MDS-RS)
MDS-RS and single lineage dysplasia MDS-RS and multilineage dysplasia
MDS with multilineage dysplasia MDS with excess blasts MDS with isolated del(5q) MDS, unclassifiable Provisional entity: Refractory cytopenia of childhood Myeloid neoplasms with germ line predisposition
Blastic Plasmacytoid Dendritic Cell Neoplasm
Acute Myeloid Leukemia (AML) and Related Neoplasms AML with recurrent genetic abnormalities AML with t(8;21)(q22;q22.1);RUNX1-RUNX1T1 AML with inv(16)(p13.1q22) or t(16;16)(p13.1;q22);CBFB-MYH11 APL with PML-RARA AML with t(9;11)(p21.3;q23.3);MLLT3-KMT2A AML with t(6;9)(p23;q34.1);DEK-NUP214 AML with inv(3)(q21.3q26.2) or t(3;3)(q21.3;q26.2); GATA2, MECOM AML (megakaryoblastic) with t(1;22)(p13.3;q13.3);RBM15-MKL1 Provisional entity: AML with BCR-ABL1 AML with mutated NPM1 AML with biallelic mutations of CEBPA Provisional entity: AML with mutated RUNX1 AML with myelodysplasia-related changes Therapy-related myeloid neoplasms AML, NOS
AML with minimal differentiation AML without maturation AML with maturation Acute myelomonocytic leukemia Acute monoblastic/monocytic leukemia Pure erythroid leukemia Acute megakaryoblastic leukemia Acute basophilic leukemia Acute panmyelosis with myelofibrosis
Myeloid sarcoma Myeloid proliferations related to Down syndrome
Transient abnormal myelopoiesis (TAM) Myeloid leukemia associated with Down syndrome
Acute Leukemias of Ambiguous Lineage Acute undifferentiated leukemia Mixed phenotype acute leukemia (MPAL) with t(9;22)(q34.1;q11.2); BCR-ABL1 MPAL with t(v;11q23.3); KMT2A rearranged MPAL, B/myeloid, NOS MPAL, T/myeloid, NOS
BOX 11.1 WHO Classification of Myeloid Neoplasms
CHAPTER 11 Malignant Disorders of White Blood Cells 217
immune function are also believed to predispose to the emergence of malignancies.
A number of disease conditions have been linked to the develop- ment of leukemia, although the mechanisms are unclear. A reduction or alteration in normal hematopoiesis, as occurs in such disorders as Fanconi anemia and aplastic anemia (see Chapter 13), is associated with a higher incidence of leukemia. A higher risk also has been noted in some genetic diseases, including Down syndrome and Klinefelter syndrome (see Chapter 6).
GENERAL PRINCIPLES OF MANAGEMENT Diagnosis of Hematologic Neoplasms Manifestations of hematologic neoplasms vary somewhat, depending on the cell type involved. Common manifestations are shown in Box 11.3. Clinical symptoms are related to bone marrow suppression and organ dysfunction secondary to leukemic infiltration. Bone marrow suppression results in varying degrees of leukopenia, anemia, and thrombocytopenia. These three deficiencies cause the most common clinical manifestations and may prompt the patient to seek care.
Anemia, with a hematocrit level of 25% to 30% or a hemoglobin level of 8 to 10 g/dL, may manifest with pallor, fatigue, malaise, shortness of breath, and decreased activity tolerance. The severity of symptoms is determined by the rate of red blood cell decrease, as well as the absolute deficiency. Chronically low hemoglobin and hematocrit values may be better tolerated than a drastic drop in these measurements. Depending on symptoms, transfusion may be indicated when the hematocrit level falls below 30%.
Thrombocytopenia, with a platelet count less than 20,000 cells/µL, can manifest as petechiae, easy bruising, bleeding gums, occult hematuria,
From Hoffbrand AV, Moss PAH: World Health Organization classification of tumours of the haematopoietic and lymphoid tissues. In Essential haematology, ed 6, Oxford, England, 2011, Blackwell, pp 428–429.
Precursor Lymphoid Neoplasms Precursor B lymphoblastic leukemia/lymphomas (precursor B-cell ALL) Precursor T lymphoblastic leukemia/lymphoma
Mature (Peripheral) B-Cell Neoplasms* B cell chronic lymphocytic leukemia/small lymphocytic lymphoma B cell prolymphocytic leukemia Lymphoplasmacytic lymphoma Splenic marginal zone B-cell lymphoma (6 villous lymphocytes) Hairy cell leukemia variant Plasma cell myeloma/plasmacytoma Waldenström macroglobulinemia Heavy-chain diseases Extranodal marginal zone B-cell lymphoma of MALT type Nodal marginal zone B-cell lymphoma (6 monocytoid B cells) Follicular lymphoma Mantle cell lymphoma Epstein-Barr virus positive DLBCL of the elderly Large B-cell lymphoma arising in HHV8-associated multicentric Castleman disease Primary mediastinal (thymic) large B-cell lymphoma Primary effusion lymphoma Burkitt lymphoma/Burkitt cell leukemia
Mature T-Cell and NK-Cell Neoplasms Mature (peripheral) T-cell neoplasms
T-cell prolymphocytic leukemia T-cell granular lymphocytic leukemia
Aggressive NK-cell leukemia Adult T-cell lymphoma/leukemia (HTLV1+) Extranodal NK/T-cell lymphoma, nasal type Enteropathy-type T-cell lymphoma Hepatosplenic γδ T-cell lymphoma Subcutaneous panniculitis-like T-cell lymphoma Mycosis fungoides Sézary syndrome Primary cutaneous anaplastic large cell lymphoma Peripheral T-cell lymphoma, not otherwise characterized Angioimmunoblastic T-cell lymphoma Anaplastic large cell lymphomas (ALK positive or ALK negative)
Hodgkin Lymphoma (Hodgkin Disease) Nodular lymphocyte predominance Hodgkin lymphoma Classical Hodgkin lymphoma Nodular sclerosis Hodgkin lymphoma (Grades 1 and 2) Lymphocyte-rich classical Hodgkin lymphoma Mixed cellularity Hodgkin lymphoma Lymphocyte depletion Hodgkin lymphoma
BOX 11.2 WHO Classification of Lymphoid Neoplasms
*B- and T/NK-cell neoplasms are grouped according to major clinical presentations (predominantly disseminated/leukemic, primary extranodal, predominantly nodal).
linked to the development of adult T-cell lymphoma/leukemia, and human immunodeficiency virus (HIV) is linked to B-cell lymphomas. Epstein–Barr virus (EBV) has been implicated in both Hodgkin disease and Burkitt lymphoma. Effective immune surveillance is thought to keep proliferation in check and prevent progression in immunocompetent individuals.
Radiation exposure is an important etiologic factor for leukemia and lymphoma. Because of the relatively high turnover of hematologic cells, they are more susceptible to radiation-induced damage than most other cell types. An acute whole-body dose of radiation, like that which occurs with nuclear explosions, is known to increase the risk of leukemia. In Japanese survivors of the atomic bomb, the estimated lifetime risk of leukemia is 0.85%, sixfold higher than the norm. There are substantial uncertainties about the risk of low-level, long-term exposure to radiation. The average annual exposure from usual sources, including cosmic rays and medical procedures, is very low and is estimated to account for less than 5% of leukemia cases.
Despite intensive scrutiny only a small number of chemicals have been shown unequivocally to increase the risk of hematologic malignan- cies. Benzene has been implicated in numerous studies, as has cigarette smoking. Other suggested carcinogens have failed to be confirmed, including exposure to hair dye, alcohol, and marijuana. On the other hand, a study from the Children’s Cancer Group found a link between high maternal intake of products high in bioflavonoids (beans, fresh vegetables, and fruit) and an increased incidence of infant leukemia. These bioflavonoids were enzyme inhibitors (topoisomerase II inhibitors) that caused DNA cleavage and chromosome translocations. Many of the antineoplastic drugs used to treat cancers, especially the alkylating agents, are significant factors in the development of posttreatment hematologic neoplasia. Any drugs that suppress the bone marrow or
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monitored. Neutropenia is an absolute neutrophil count less than 500 cells/µL, and an affected patient requires protective isolation (neutropenic precautions) to prevent infection. Infections may be caused by bacterial, viral, fungal, or protozoal organisms. Often, the microorganisms are of the opportunistic variety. That is, they are part of the patient’s own flora, which normally do not cause disease unless the host’s immune system becomes incompetent. It is very difficult to protect patients from their own flora, and infection is the most common cause of death in the immunocompromised leukemic patient. The presence of infection is suspected if fever develops. Infections are managed aggressively with antibiotic agents to prevent development of life-threatening sepsis.
Infiltrative manifestations include lymphadenopathy, joint swelling and pain, weight loss, anorexia, hepatomegaly, and splenomegaly. Sternal tenderness is frequently present in chronic myeloid leukemia (CML). Gingival hyperplasia occurs in AML. Meningeal involvement is frequently encountered in children with acute lymphoid leukemia (ALL). Central nervous system (CNS) infiltration can occur with any type of leukemia and may be difficult to manage because of the poor ability of chemo- therapeutic agents to cross the blood–brain barrier. CNS involvement can present with increased intracranial pressure, seizures, or changes in mental ability. Increased intracranial pressure should be suspected in the leukemia patient who complains of nausea, vomiting, headache, and visual changes.
A key aspect of diagnosis is the evaluation of a peripheral blood sample. Blood cell number and morphologic evaluation are indicative; however, definitive diagnosis is usually made after bone marrow aspiration or lymph node biopsy. Malignant cells can be subtyped according to genetic and molecular characteristics to better determine prognosis and choice of treatment.
Principles of Treatment To make informed treatment decisions, patients and their families need information about the nature and prognosis of their disease, as well as about the risks and benefits of various treatment options. Many treatment protocols are experimental, and the outcomes may be uncertain. Sometimes the side effects of treatment, as well as its limited efficacy, will weigh in favor of palliative care. Treatment decisions are complex
Lymphoid stem cell
Myeloid stem cell
Stem cell
B-cell leukemia/
lymphoma/ myeloma
NK-cell leukemia/ lymphoma
T-cell leukemia/ lymphoma
Granulocytic leukemia
Monocytic leukemia
PV/ erythroid leukemia
Essential thrombocythemia/ megakaryocytic
leukemia
Lymphoid Neoplasms Myeloid Neoplasms
B cellNK cell T cell Neutrophil RBC MegakaryocyteMonocyte
FIG 11.1 Division of hematologic neoplasms into myeloid and lymphoid lineages. PV, Polycythemia vera.
History Fever Weight loss Night sweats Itching (pruritus) Fatigue Bone pain (sternum, tibia, femur, back) Abdominal fullness Bleeding episodes (epistaxis, menorrhagia) Bruising, petechiae Frequent infections Headache, nausea, vomiting
Physical Enlarged spleen Enlarged liver Enlarged lymph nodes Hyperplasia of gums
Laboratory Anemia or polycythemia Thrombocytopenia or thrombocythemia Leukopenia or leukocytosis Blasts on peripheral blood smear Elevated uric acid level Elevated alkaline phosphatase level Hypercalcemia
BOX 11.3 Common Manifestations of Hematologic Malignancies
or retinal hemorrhages. Spontaneous intracranial bleeding can occur and may be fatal. In general, the risk of bleeding increases proportionately to the fall in platelet count. Platelet transfusion may be given when the risk of bleeding is high.
Insufficient numbers of functional leukocytes leave the patient at high risk for development of infection, and the CBC is routinely
CHAPTER 11 Malignant Disorders of White Blood Cells 219
profoundly affect the outcome of chemotherapy. The length of time that a patient remains neutropenic can be shortened with the use of growth factors to stimulate bone marrow production of granulocytes.
Bone marrow transplantation has been an important part of the management of certain leukemias for many years. The intense chemo- therapy used to induce remission can lead to bone marrow failure. Stem cells can be reintroduced into the host’s bone marrow by bone marrow transplantation. The transplanted cells are given intravenously; they find their way to the host’s bone marrow, where they establish residence and begin to produce functional white blood cells, red blood cells, and platelets. A close match between donor and host is necessary for a successful transplantation. Otherwise, the transplanted cells can mount an immune attack on the host’s tissues—a life-threatening problem called graft-versus-host disease (see Chapter 10). In past years, the transplant was obtained by aspiration from the marrow of a suitable donor, and this may still be done in some cases. Peripheral stem cell transplantation allows stem cells to be harvested from the circulating bloodstream. This procedure can be used to collect stem cells from the patient’s own blood to be stored and then reinfused after chemotherapy and irradiation. This type of transplant is called autologous, whereas a transplant from a closely matched relative is called allogeneic (Fig. 11.2). Use of autologous transplants eliminates the problem of graft-versus-host disease and reduces transplant-related mortality, but the potential for disease recurrence is higher than with allogeneic transplants.
It has been noted that in AML and CML, transplantation with allogeneic cells is much more successful in curing leukemia than is autologous transplantation. Transplanted cells in the allograft are thought to detect and kill leukemic cells in a process termed graft versus leukemia. Autologous transplants are appropriate in some cases, especially when a matched donor is not available, because they may extend life even though cure is unlikely. Autologous transplants are well tolerated and cause fewer complications than allografts. Methods to purify a patient’s collected peripheral blood by selectively removing neoplastic cells are available to reduce the risk of reintroducing malignant cells during autologous transplantation. Increased availability of stem cell transplants allows patients to undergo more intensive chemotherapy, aimed at cure rather than palliation, based on the knowledge that bone marrow rescue is possible.
Anemia is a common complication of leukemia and chemotherapy. Red blood cell production by the bone marrow is suppressed, but the size and shape of red blood cells present in the blood are normal. This is called normocytic, normochromic anemia. Administration of eryth- ropoietin growth factors can enhance red blood cell production and moderate anemic episodes. However, patients frequently require red blood cell transfusion therapy to maintain adequate red blood cell counts. Patients with frequent or significant bleeding episodes are also predisposed to severe anemia, and efforts to prevent bleeding will help minimize anemia.
Platelet deficiency (thrombocytopenia) with resultant hemorrhage can be a life-threatening complication of leukemia and chemotherapy. In patients at high risk of bleeding, fresh frozen plasma or pooled platelets may be given to inhibit bleeding. Patients must be protected from trauma and may be placed on activity restrictions.
Pain is a common complication of the diagnostic and treatment protocols used in the cancer patient as well as of the disease process itself. Pain most commonly involves the bones and joints, and is due to pressure caused by infiltration and accumulation of neoplastic cells in the bone marrow. Hemarthrosis (bleeding into joints) can cause acute episodes of joint pain. Chemotherapy may help reduce bone pain, as the number of neoplastic cells is reduced drastically. Patients are subjected to numerous painful procedures during diagnosis, treatment, and monitoring. Frequent collection of blood and bone marrow samples,
and stressful for all concerned. A great deal of support must be available during the diagnostic, treatment, and monitoring phases.
The management of hematologic malignancies relies primarily on the use of combination chemotherapy to eradicate malignant cells and stem cell transplant to rescue and restore bone marrow function. In some cases radiation and tissue-specific drug therapy may be indicated. Unfortunately, the treatment regimen usually causes many serious side effects that must be monitored and treated.
The goal of chemotherapy is to induce long-term remission, that is, the absence of any detectable neoplastic cells in the body. A complete remission (CR) is defined as a return to normal hematopoiesis with normal red blood cell, neutrophil, and platelet counts and no detectable neoplastic cells. For leukemia, the bone marrow must have less than 5% blasts, which are the most immature bone marrow cells, and be maintained for at least 4 weeks. CR is not synonymous with cure. Therefore most treatment protocols include several cycles of chemo- therapy to eradicate the undetected cells. The choice of antineoplastic agents varies with the type of neoplasia and the stage of clinical disease. Most chemotherapeutic agents work by disrupting some aspect of DNA synthesis or cell replication and induce apoptosis (cell death; see Chapter 4). In general, rapidly dividing cells are more susceptible to apoptosis because they have less time for repair. Neoplasms with genetic defects that impair apoptotic pathways may be more difficult to eradicate and require more intense therapy. Unfortunately, these high doses are toxic to normal stem cells as well and can produce fatal bone marrow failure. Therefore to effect a cure, high-dose chemotherapy is often followed by bone marrow “rescue” with transplantation of functional stem cells.
Chemotherapy usually includes two or three treatment phases: (1) remission induction phase, (2) postremission or consolidation phase, and (3) remission maintenance phase. The aim of treatment during the remission induction phase is to eliminate all detectable neoplastic cells and achieve a CR. Postremission consolidation therapy begins after CR is attained in an attempt to eliminate the population of undetected cells that may have escaped initial induction phase treatment. Mainte- nance phase treatment is used in the management of some neoplasms to prolong the remission interval. Intermittent chemotherapy may be continued for 2 to 3 years after initial induction of remission. Drugs that target the neoplastic cells specifically, such as monoclonal antibodies or molecular therapies, are generally less toxic than other agents and may be used for long-term maintenance in patients with residual disease.
In children and adults, the CNS can act as a sanctuary for neoplastic cells in diseases such as ALL and AML. This makes conventional routes of chemotherapy unsuccessful, because they do not permit drugs to cross the blood–brain barrier efficiently. Chemotherapeutic agents administered into the cerebrospinal fluid via lumbar puncture (intrathecal route) can effectively eliminate leukemic cells in the CNS. This therapy carries significant risk for temporary or permanent neurologic damage. A number of different chemotherapeutic agents can be administered safely by the intrathecal route, including methotrexate.
Prevention and Management of Complications Maintenance of adequate nutrition in patients with hematologic malignancy is a major challenge. Anorexia, weight loss, nausea, vomiting, and stomatitis are common findings, especially during the treatment phase. Children and adolescents receiving chemotherapy may experience significant growth delay, and measures to maintain protein and caloric intake are necessary. Newer antiemetic agents have been helpful in reducing nausea, vomiting, and anorexia associated with chemotherapy and should be considered in patients experiencing these symptoms.
Infection is the most troublesome complication for the patient who is immunosuppressed by either disease or treatments. Constant vigilance in prevention, early detection, and rapid management of infections can
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placement of intravenous access lines for drug administration, and manifestations of unpleasant drug side effects all contribute to the pain experience. Nausea and mouth pain (stomatitis) are frequent complaints during chemotherapy. Pain management with a variety of strategies, including narcotic and nonnarcotic drugs, distraction, and biofeedback, is generally helpful. (See Chapter 47 for a discussion of pain and pain management.)
Epithelial cells, with normally high rates of turnover, are particularly susceptible to damage by radiation and chemotherapy. Sloughing of skin and mucous membranes and hair loss (alopecia) are common. Loss of skin and mucous membrane integrity increases the risk of infection and can contribute significantly to the pain and discomfort of treatment. Abnormalities in growth, development, and fertility are complications of particular concern in children undergoing radiation and chemotherapy.
ALLOGENEIC
Donor (related or unrelated) Treatment
Recipient (patient)
Blood/marrow processing; may include T cell depletion
Conditioning: • High-dose cyclophosphamide • Total body irradiation
Conditioning: • High-dose cyclophosphamide • Total body irradiation
Blood/ marrow infusion
RecipientRecipient (patient)
AUTOLOGOUS
Peripheral blood stem cells collected or bone marrow harvested
1
2
3 4 Blood/marrow infusion
RecipientRecipient (patient)
3 4
Blood/marrow processing and storage; may include purging
Peripheral blood stem cells collected or bone marrow harvested
1
2
FIG 11.2 Procedures for allogeneic and autologous stem cell transplantation. For nonmyeloblative (reduced intensity) allogeneic stem cell transplantation, lower doses of chemotherapy, with or without radiotherapy, are used. (From Rodak B et al: Hematology: clinical principles and application, ed 4, Philadelphia, 2012, Saunders.)
KEY POINTS • Classification of the types of leukemia is based on cell type involved (lymphoid
or myeloid) and degree of cell maturation. Common myeloid neoplasms include Chronic myeloid leukemia (CML), polycythemia vera (PV), essential thrombocythemia (ET), and acute myeloid leukemia (AML). Common lymphoid neoplasms include chronic lymphoid leukemia (CLL), acute lymphoid leukemia
(ALL), plasma cell myeloma, Hodgkin disease, and various forms of non- Hodgkin lymphoma.
• Risk factors for the development of hematologic neoplasms include exposure to chemical, viral, and radiation mutagens; consequences of chemotherapy drugs; and effects of immunodeficiency disorders.
• Common manifestations of hematologic neoplasia are due to insufficient produc- tion of normal white blood cells, red blood cells, and platelets, as evidenced by leukopenia, anemia, and thrombocytopenia. Anemia manifests as pallor, fatigue, dyspnea, and decreased activity tolerance. Thrombocytopenia causes petechiae, bleeding gums, hematuria, and prolonged bleeding time. Leukopenia manifests as frequent, recurrent infections. Other manifestations may occur with infiltration of tissues and organs. These include weight loss, anorexia, lymphadenopathy, bone pain, and central nervous system (CNS) dysfunction.
• Chemotherapy is the mainstay of management for most hematologic neoplasms. Several courses may be needed to kill neoplastic stem cells. Most chemotherapeutic agents interfere with some aspect of DNA replication and cell division to induce apoptosis (programmed cell death).
• Treatment is associated with a number of potential complications, including anemia, infection, and bleeding. Rapidly dividing hair cells and mucous membranes are also affected, leading to alopecia and stomatitis. Transfusion of blood products or stimulation of endogenous production with colony-stim- ulating factors and erythropoietin may be necessary. Bone marrow transplanta- tion may be undertaken in some cases to restore stem cell function.
CHAPTER 11 Malignant Disorders of White Blood Cells 221
the Philadelphia chromosome (Ph+). The Philadelphia chromosome is formed because of a balanced translocation between chromosomes 9 and 22 (Fig. 11.4). The translocation causes two genes to be juxtaposed, resulting in a new fusion gene called bcr-abl. This mutation is thought to be critical in the development of CML. Molecular studies have revealed that the protein product of the fusion gene is a functional enzyme that spurs cell proliferation and reduces apoptotic cell death. CML is unusual among human cancers because a single oncogene (bcr/abl) is capable of conferring a malignant state. Numerous mutations are necessary for development of most other cancers (see Chapter 7). The cells in CML are more mature than those found in AML, as noted by the greater degree of nuclear segmentation (Fig. 11.5).
The usual clinical presentation of CML includes a high granulocyte count on the CBC and splenomegaly. Symptoms, when present, may include fatigue, weight loss, diaphoresis, bleeding, and abdominal discomfort from the enlarged spleen.
Prognosis and treatment. CML does not respond well to chemo- therapy. Although most patients will achieve a temporary remission, the overall survival time is poor. In untreated patients the median survival
NeutrophilRBC
Megakaryocyte
Myeloid stem cell
M4
M1
M3 M2
M5
M7
M6
MonocytePlatelets
FIG 11.3 Maturation pathways of myeloid cells showing the different types of leukemia associated with various stages of development. M1, M2, and M3 types result in granulocytic leukemia; M4 has characteristics of monocytic and granulocytic leukemia; M5 is monocytic; M6 is associ- ated with erythroid leukemia; and M7 is associated with megakaryocytic leukemia. RBC, Red blood cell.
MYELOID NEOPLASMS Myeloid neoplasms result from transformation and proliferation of a precursor stem cell in the bone marrow (Fig. 11.3). The progeny of the aberrant stem cell clone accumulate in the bone marrow and are released into the circulation. In many cases, the abnormal stem cell is multipotent and causes the overproduction of more than one cell type, resulting in myeloproliferative disease. The cells produced in myeloproliferative diseases are usually functional and have a normal morphologic appear- ance. The common myeloproliferative diseases are CML, PV, and ET, referring, respectively, to an excess of granulocytes, red blood cells, and platelets. These insidious and indolent disorders have few clinical symptoms and are commonly discovered on routine CBC analysis. Common features of CML, PV, and ET include involvement of a multipotent hematopoietic progenitor cell; hypercellularity of marrow; overproduction of one or more functional blood cells; chromosomal abnormalities involving chromosomes 1, 8, 9, 13, and 20; and eventual spontaneous conversion to AML or development of marrow fibrosis.
In contrast to the myeloproliferative diseases, the myelodysplastic syndromes and AML are characterized by neoplastic cells that are morphologically and functionally abnormal. The prognosis for myelo- dysplastic syndromes and AML is poor, and intensive treatment is necessary to extend life. AML and CML are described next. A discussion of PV and ET can be found in Chapters 13 and 14, respectively.
Chronic Myeloid Leukemia Pathogenesis and clinical manifestations. CML represents approxi-
mately 15% of all cases of leukemia in the United States. The average age of onset is between 40 and 50 years, and CML occurs only occasionally in childhood and adolescence. The majority of CML cases are characterized by malignant granulocytes that carry a unique chromosomal abnormality,
New bcr-abl fusion gene
Philadelphia chromosome
Myelogenous leukemia
9 922
bcr bcr abl
abl
FIG 11.4 Balanced translocation between chromosomes 9 and 22 results in the formation of a Philadelphia chromosome. The translocation causes two genes, abl and bcr, to become juxtaposed, resulting in a fusion gene. This fusion gene, bcr-abl, is thought to be essential for the develop- ment of chronic myeloid leukemia.
FIG 11.5 Peripheral blood smear from a patient with chronic myeloid leukemia (CML). Note that a greater degree of neutrophil segmentation is found in CML than in acute myelogenous leukemia (see Fig. 11.6), reflecting a more advanced stage of development. (From Hoffman R, et. al. Hematology: basic principles and practice, ed 6, Philadelphia, 2013, Saunders.)
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by morphologic characteristics, including myeloid cell of origin and degree of differentiation or maturation. Correct classification increases the accuracy of prognosis and may influence the choice of treatment.
AML presents in a manner very similar to that of ALL, and the two are difficult to distinguish by clinical findings alone. Acute leukemia causes bone pain, anemia, thrombocytopenia, and increased susceptibility to infection. The skin, the genitourinary and gastrointestinal systems, and the respiratory tract are common infection sites. The onset of symptoms is abrupt, with most patients seeking care within a few weeks of disease onset. The prognosis is much worse for AML than for ALL, with fewer than 50% of children and only about 25% of adults achieving long-term survival. An exception is the promyelocytic subtype of AML. Although it accounts for only 10% to 15% of AML cases, acute pro- myelocytic leukemia (APL) deserves special consideration because it is the most curable of all AML subtypes, with a 70% to 80% 5-year disease-free survival. APL is characterized by a chromosomal translocation between chromosomes 8 and 21, which forms a fusion gene called PML/RARα. The PML/RARα protein binds to a repressor complex in the cell nucleus and inhibits myeloid cell differentiation. RARα is a retinoic acid receptor that can be induced to release its inhibitory hold on differentiation when all-trans-retinoic acid (ATRA) is administered. Addition of ATRA to the chemotherapy management of patients with APL significantly improves disease-free survival (see Table 11.1 for a comparison of acute and chronic leukemias).
Prognosis and treatment. Treatment protocols for AML are increasingly incorporating the cytogenetic profile of the leukemic cells to individualize therapy and monitor response. Traditionally the management of AML has two phases: remission induction and consolidation/postremission. A CR is attempted in the remission induction phase, with an attempt to eliminate any undetected residual leukemic cells during the consolidation/postremission phase. Patients with AML who are able to complete only one or two cycles of their chemotherapy because of toxicity almost invariably have recurrence of leukemia even when CR was achieved. To induce remission, most protocols use two cycles of a combination of agents. Postremission therapy commonly includes high-dose Ara-C in younger patients, whereas the elderly require lower-dose regimens. Drug treatment is constantly being evaluated and altered to obtain better outcomes. With the advent of allogeneic stem cell transplantation, the chances for a cure may improve; however, procedure-related mortality is 10% to 25%. New therapies using monoclonal antibodies to detect and destroy leukemic cells have been used and show promise for improving outcomes in AML.
is about 2 years. After discovery of the fusion protein (bcr/abl), drugs targeted to inhibit its action were developed (e.g., imatinib). The goal of anti-bcr/abl therapy is to reduce the number of leukemic cells with the bcr/abl phenotype to undetectable levels. It is not known whether imatinib can cure CML or what duration of treatment is necessary to permanently suppress the leukemic cell population. Some patients with CML have developed drug resistance against imatinib, and research is ongoing. The only known curative treatment is allogeneic bone marrow transplantation from a suitable donor. It is believed that the donor cells detect and kill the host’s leukemic cells. Even with a human leukocyte antigen (HLA)–identical sibling donor, the probability of transplant- related mortality is about 25%, and the likelihood of long-term disease- free survival is 50% to 60%. Transplant-related mortality is about 50% if the HLA-matched donor is unrelated. Bone marrow transplantation with cells harvested from the patient’s own blood (autografting) during the early stages of CML may also be done, but it is less effective in curing the disease. For those not able to undergo stem cell transplantation, standard chemotherapy during the chronic phase may be instituted. Once CML has progressed to the blast phase, essentially becoming AML, the prognosis is poor, regardless of treatment, with an expected median survival of 3 to 4 months.
Acute Myeloid Leukemia Pathogenesis and clinical manifestations. AML is primarily a disease
of adults, comprising 80% of cases of acute leukemia in this population but accounting for only 20% of the cases of acute leukemia of child- hood. The median age at presentation is 64 years. Like CML, AML is a malignant disorder associated with transformation of a myeloid stem cell. The bone marrow aspirate must have more than 20% blasts to be classified as AML. AML can present in a variety of ways because of the potential for myeloid stem cells to produce different cell types. Thus AML has a number of subtypes. Acute granulocytic leukemia is the most common type of disorder, and the term is often used interchangeably with AML. Myeloblastic cells have a large, nonsegmented nucleus and fine chromatin (Fig. 11.6). AML is also subtyped according to genetic abnormalities. Worse outcomes are noted with loss of P53 or RB tumor suppressor gene function. Most are chromosomal translocations or inversions. If cytogenetic class is not apparent, then AML is classified
FIG 11.6 Peripheral blood smear showing typical cells of acute myelog- enous leukemia. (From Eric Jeandidier et. al, A cytogenetic study of 397 consecutive acute myeloid leukemia (AML) cases identified three with a t(7;21) associated with 5q abnormalities and exhibiting similar clinical and biological features, suggesting a new, rare AML entity. Cancer Genetics, 2012;205(7):365–372.)
TABLE 11.1 Comparison of Acute and Chronic Leukemias
Acute Chronic
Age All ages Adult Clinical onset Sudden Insidious Course of untreated disease Weeks to months Months to years Predominant cell Blasts, some mature
forms Mature forms
Anemia Mild to severe Mild Thrombocytopenia Mild to severe Mild WBC count Variable Increased
Adopted from McKenzie S: Clinical laboratory hematology, Upper Saddle River, NJ, 2004, Pearson, p 482.
CHAPTER 11 Malignant Disorders of White Blood Cells 223
Chronic Lymphoid Leukemia Pathogenesis and clinical manifestations. CLL accounts for about
30% of all cases of leukemia in the United States. In 95% of cases, a malignant B-cell precursor is at fault. Only 5% of cases of CLL are associated with T-cell transformation, but this type is more aggressive. In general, B-cell CLL follows an indolent course, which is usually asymptomatic. Often CLL is found by accident on routine blood count examinations. When CLL becomes symptomatic, patients may experience fatigue, weight loss, and anorexia. Because the leukemic B cells do not produce antibodies normally, an increased susceptibility to certain types of infection may occur. Malignant lymphocytes invade lymphoid tissues and bone marrow, disrupting function. Lymphoid invasion often presents as enlarged, painless lymph nodes (lymphadenopathy) or enlarged spleen (splenomegaly). Bone marrow infiltration reduces the production of other cells, including red blood cells and platelets. A typical slide of a bone marrow aspirate from a patient with CLL is shown in Fig. 11.8. Note the preponderance of lymphoid cells. CLL cells are characterized by defective apoptosis and therefore have extended life spans. They are derived from mature peripheral B cells (see Table 11.2 for a comparison of acute and chronic leukemias).
Prognosis and treatment. Certain genetic mutations confer better or worse prognosis. A mutation in the variable region of the immuno- globulin gene (IgV) is associated with a median survival of 24 years or more; those without this mutation have a median survival of less than 8 years. CLL cell types demonstrating short telomere lengths and P53 dysfunction have poor outcomes. Because the average age of patients with CLL is about 65 to 70 years, those with indolent disease may not be treated; they are more likely to die of another disorder rather than CLL. Patients with cell types likely to progress rapidly may receive chemotherapy to induce remission. Those without complete response may consider stem cell transplantation to prolong the duration of remission.
Acute Lymphoblastic Leukemia/Lymphoma Pathogenesis and clinical manifestations. ALL is a malignant
disorder of the lymphoid cell lineage. The great majority of cases are
KEY POINTS • Chronic myeloid leukemia (CML) is a myeloproliferative disorder that primarily
affects adults, has an insidious onset, and responds poorly to chemotherapy. Most cases of CML are characterized by the presence of a gene translocation (Philadelphia chromosome) that produces a fusion gene called bcr-abl. The product of this gene is thought to be responsible for producing the malignancy. This molecular abnormality is the target of new drug therapies to eliminate neoplastic cells. The prognosis of CML remains relatively poor, but may be improved with allogeneic bone marrow transplantation in which transplanted cells destroy leukemic cells.
• AML affects adults primarily, has an acute onset, responds fairly well to treatment, and has a prognosis somewhat worse than that of ALL. AML is usually a malignancy of granulocytes, although other myeloid cell types may be affected. Several gene abnormalities have been identified in AML that may indicate better or worse prognosis. The median survival of patients younger than 60 years is 30% to 40% at 4 years.
FIG 11.7 Maturation pathways of T and B lymphocytes showing the stages at which lymphocyte development is typically arrested in leukemia. Different markers are present on the surface of B cells and T cells at progressive stages of development, which are helpful in identifying the neoplastic cell type and maturity.
LYMPHOID NEOPLASMS The lymphoid neoplasms include malignant transformations of B cells, T cells, and NK cells. When present in blood and bone marrow, lymphoid neoplasms are called leukemias, and when they are localized in lymphoid tissues, they are called lymphomas. The location of lymphoid neoplasms is a consequence of the stage of the disease. The WHO classification uses cell type rather than stage to classify the lymphoid neoplasms, resulting in some difficulty with the traditional conceptualization of leukemias and lymphomas. The factors that determine whether a particular neoplastic cell will present as leukemia or as lymphoma are not presently known. Subcategories of the B-cell and T-cell/ NK-groups are based on the maturity of the neoplastic cells (see Box 11.2). The precursor cell neoplasms are characterized by cells that have arrested development in the early blast stage, whereas the mature cell neoplasms are more differentiated and often located in peripheral sites (Fig. 11.7).
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incidence occurs between the ages of 3 and 7 years. A second peak occurs in middle age. The onset of symptoms is abrupt, with common complaints of bone pain, bruising, fever, and infection. Children may refuse to walk, and their parents may report loss of appetite, fatigue, and abdominal pain. The spleen, liver, and lymph nodes may be enlarged from leukemic infiltration. A small number of children (3%) may present with CNS signs from leukemic infiltration of brain tissues.
Prognosis and treatment. ALL is highly curable in the pediatric population, but less so in adults. The 5-year survival rate is 85% in children and 30% to 50% in adults. Certain forms of ALL are more responsive to therapy. For example, children with the pre–B-cell type have a 90% cure rate, whereas those with mature B-cell or immature T-cell leukemia have a poorer prognosis.
Chemotherapy is used for remission induction. Postremission chemotherapy with or without stem cell transplantation is indicated for most patients. In general, adults with ALL require more intense therapy than children to achieve complete remission (CR). Monoclonal antibodies may be used in patients whose tumors express specific antigens.
Hairy Cell Leukemia Pathogenesis and clinical manifestations. Hairy cell leukemia is
a rare, chronic type of leukemia. The disease represents about 2% of adult leukemias, but it is of interest because of its highly treatable nature. The median age at presentation is about 55 years, and there is a 5-to-1 predominance of males. Hairy cell leukemia has a B-cell phenotype and is characterized by the presence of peculiar cells with hairlike projections on their surface (Fig. 11.10). At diagnosis, patients have hairy cells in the peripheral blood as well as reduced numbers of granulocytes, platelets, and red blood cells. Splenomegaly is a common finding, being present in 90% of patients.
Prognosis and treatment. Treatment may be instituted when a patient becomes symptomatic with an enlarged spleen, recurrent infection, bleeding disorder, or anemia. An appropriate chemotherapeutic protocol produces CR rates of 80%.
Plasma Cell Myeloma (Multiple Myeloma) Pathogenesis and clinical manifestations. Plasma cell myeloma,
also known as multiple myeloma, is a malignant disorder of mature, antibody-secreting B lymphocytes, called plasma cells. Malignant plasma cells have a predilection to invade bone and form multiple tumor sites.
FIG 11.9 Peripheral blood smear showing typical cells of acute lym- phocytic leukemia. (From Onciu M: Acute lymphoblastic leukemia. Hematol Oncol Clin North Am 2009;23(4):655–674.)
FIG 11.8 Bone marrow aspirate showing small lymphocytes with condensed nuclear chromatin typical of chronic lymphocytic leukemia, B-cell type. (From Henderson ES et al, editors: Leukemia, ed 7, Phila- delphia, 2003, Saunders, color plate 11-28.)
TABLE 11.2 Comparison of Acute Lymphocytic (ALL) and Acute Nonlymphocytic Leukemia (ANLL)
ALL ANLL
Age Common in children Common in adults Hematology
results Anemia, neutropenia,
thrombocytopenia Anemia, neutropenia,
thrombocytopenia Cell morphology Small to medium
lymphoblasts, fine chromatin, indistinct nucleoli
Medium to large myeloblasts, distinct nucleoli, clear chromatin, Auer rods
Cytochemistry PAS positive, peroxidase negative, Sudan black B negative
PAS negative, peroxidase positive, Sudan black B positive
Adopted from McKenzie S: Clinical laboratory hematology, Upper Saddle River, NJ, 2004, Pearson, p 487. PAS, Periodic acid–Schiff reaction.
the result of malignant transformation of B cells (80%), with the remainder involving T cells. The abnormal cells resemble immature lymphocytes, called lymphoblasts (Fig. 11.9). Most lymphoblastic neoplasms present as leukemias, but lymphoblastic lymphomas are thought to be the same disease at a different stage. B-cell leukemias are categorized into cytogenetic groups based on common chromosomal translocations. One of these transformations results in the bcr/abl fusion gene discussed previously in the context of CML. Three other types of translocations also form fusion genes that produce abnormal signaling components. These gene derangements have different prognoses and may respond differently to alternative treatment protocols.
Lymphoblasts do not mature and accumulate in large numbers in the blood and bone marrow. At least 20% of the bone marrow cells must be leukemic lymphoblasts to meet the diagnostic criteria for ALL. The space occupied by the accumulation of leukemic cells in the bone marrow prohibits the production of normal red blood cells, platelets, and leukocytes. Circulating blasts are poorly functioning cells and do not provide effective immunocompetence (see Table 11.2 for a com- parison of ALL and acute nonlymphocytic leukemia [ANLL]).
ALL primarily affects children. It is the most common malignancy and the second-leading cause of death in this population. The peak
CHAPTER 11 Malignant Disorders of White Blood Cells 225
urine. When found in urine, these light-chain fragments are called Bence Jones protein. In addition to helping confirm the diagnosis, Bence Jones protein is important to the pathogenesis of plasma cell myeloma because it can accumulate in the kidneys and cause kidney damage. Malignant plasma cells tend to accumulate in bone, where they enhance osteoclastic activity and produce bone lesions. Pathologic fractures, especially compression fractures of the vertebral column, are common. Bone destruction releases calcium into the bloodstream, with resultant hypercalcemia.
Most of the clinical manifestations of multiple myeloma are due to bone and renal damage. The diagnosis of plasma cell myeloma is suspected based on the monoclonal antibody peak, the presence of Bence Jones protein, hypercalcemia, and evidence of bone lesions. The diagnosis is confirmed by bone marrow biopsy. Normally, the plasma cell component of the marrow comprises about 5%. In multiple myeloma, plasma cells may occupy 30% to 95% of the bone marrow (Fig. 11.12). A minimum of at least 10% to 15% of bone marrow plasma cells is necessary for the diagnosis of plasma cell myeloma. The likelihood of bone marrow dysfunction increases as the plasma cell component increases. Normal production of erythrocytes, platelets, and leukocytes can be impaired to varying degrees.
The onset of plasma cell myeloma is generally slow and insidious. A premalignant stage is apparent in some individuals who have excess production of monoclonal antibodies but no evidence of bone lesions or Bence Jones protein in the urine. This stage is called monoclonal gammopathy of undetermined significance (MGUS). Approximately 25% of patients with MGUS progress to malignant disease. Affected individuals remain asymptomatic until the disease is fairly advanced. The asymp- tomatic stage often lasts for many years after malignant transformation. During this time the only complaint may be frequent infections. Diagnosis during the asymptomatic phase is usually made because protein in the urine or high serum calcium levels are found on routine examination. Bone pain is usually the first symptom. Sometimes the evaluation of a fracture or back pain leads to the identification of myeloma. Anemia, recurrent infections, and bleeding tendencies are suggestive of bone marrow depression.
Other tissues may be targeted also, including lymph nodes, liver, spleen, and kidneys. Plasma cell myeloma occurs exclusively in the adult popula- tion, usually affecting individuals older than 40 years, with a median age at presentation of 65 years. Men are affected more often than women.
As with other forms of neoplasia, the exact etiologic process of plasma cell myeloma is unknown, but abnormalities in chromosome structure and number are commonly found. The malignant plasma cells all belong to a single clone, and the excessive antibodies they produce are identical monoclonal antibodies. These accumulate in the bloodstream and can be detected by serum protein electrophoresis. Normally, serum antibodies are of many forms (polyclonal) and show a varied distribution of size on the electrophoresis test. In plasma cell myeloma, there is a large amount of one type of antibody, which forms a characteristic spike (Fig. 11.11). Excessive production of light-chain antibody fragments by malignant plasma cells results in their accumulation in blood and
FIG 11.10 Peripheral blood smear showing cells typical of hairy cell leukemia. (From Skarin AT: Atlas of diagnostic oncology, ed 4, Philadelphia, 2010, Saunders.)
α2α1alb γβ
B
α2α1alb γβ
A
FIG 11.11 Serum protein electrophoresis comparing abnormal myeloma protein in the γ region typical of benign monoclonal gammopathy (A) with the large quantity of monoclonal antibody (spike) γ typical of plasma cell myeloma (B). (From Skarin AT: Atlas of diagnostic oncology, London, 2003, Gower Medical, pp 536–537.)
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after initiation of therapy. High-dose chemotherapy followed by allogeneic bone marrow transplantation is becoming more common and offers a better CR rate. However, the death rate associated with transplantation is high (approximately 40% to 50%). Autologous stem cell transplantation is considered to be the optimal initial therapy for most patients. Pharmacologic management of renal dysfunction is often necessary.
Chronic bone pain is a common problem in the myeloma patient that may require use of multiple remedies. Narcotic and nonnarcotic pain relievers are often necessary. Localized application of radiation to bone lesions may reduce bone pain in some cases.
Renal insufficiency is a complication experienced by approximately 50% of patients with plasma cell myeloma. Impairment of renal function is due to a combination of factors, including hyperproteinemia, high levels of Bence Jones protein, hypercalcemia, and hyperuricemia. Renal function may continue to decline over time, culminating in end-stage renal disease (chronic renal failure).
Bone involvement is a consistent feature of plasma cell myeloma. Radiologic studies of ribs, spine, skull, and pelvis show a characteristic “honeycomb” appearance, attributable to lucid areas of demineralized bone (Fig. 11.13). Minimal trauma is likely to result in fractures. Sometimes fractures occur with no known trauma; these are called pathologic fractures.
Prognosis and treatment. Antineoplastic agents may be used to induce and maintain a remission in plasma cell proliferation. The best chemotherapy regimen has not yet been determined. The remission induction rate is about 60%, with a median survival of about 3 years
FIG 11.12 Bone marrow aspirate from a patient with multiple myeloma showing a large number of abnormal plasma cells with multiple nuclei and cytoplasmic droplets. (From Kocjan G: Diagnostic cytopathology essentials. Churchill Livingstone, 2013, Elsevier.)
A B
FIG 11.13 Vertebral body (A) and skull (B) radiographs showing the characteristic “honeycomb” appearance of demineralized bone associated with multiple myeloma. (Courtesy Marvin J. Stone, MD, Sammons Cancer Center, Baylor University Medical Center, Dallas, TX.)
KEY POINTS • Chronic lymphoid leukemia (CLL) is a neoplastic transformation of a mature,
peripheral B cell that affects adults primarily and has an insidious onset. CLL is usually asymptomatic. Disease in certain genotypes is associated with long survival times and does not require therapy; in other cases, disease is progressive and may be managed with stem cell transplantation or administration of monoclonal antibodies.
• Acute lymphoid leukemia (ALL) affects children primarily, has an acute onset, responds well to therapy, and has a good prognosis. ALL is associated with transformation of precursor “blasts” in the bone marrow. ALL often manifests with bone pain, infections, and a tendency for bleeding. A significant number of children with ALL have CNS involvement, and intrathecal che- motherapy is necessary.
• Plasma cell myeloma is due to malignant transformation of antibody-secreting B lymphocytes. It primarily affects older adults. The onset of symptoms is insidious, with most patients experiencing a 4- to 10-year period of clinical latency. Some patients have a preneoplastic phase called MGUS. When present, symptoms include bone pain, pathologic fractures, anemia, thrombocytopenia, leukopenia, and renal insufficiency. Malignant plasma cells all secrete the same monoclonal antibody, and detection of this antibody in the blood or urine (Bence Jones protein) aids in diagnosis.
CHAPTER 11 Malignant Disorders of White Blood Cells 227
supraclavicular, axillary, and mediastinal nodes. Less commonly, nodes below the diaphragm are the primary site. The inguinal nodes are the most common subdiaphragmatic site. As the disease spreads from the site of origin, other lymph nodes and lymphatic tissues may become involved, including the spleen and bone marrow. Staging procedures are performed to determine the extent of metastasis at the time of diagnosis. Staging dictates the treatment modality best suited to provide the patient with the greatest chance for long-term survival.
Prognosis and treatment. The staging protocol commonly used today was first adopted in 1971 at the Ann Arbor symposium and modified later in 1989 at the Cotswold meeting (Box 11.4). The same procedure is also used for staging non-Hodgkin lymphomas. This protocol uses the presence or absence of certain clinical symptoms as well as the locations of affected nodes to determine the clinical stage of disease. The four stages are shown in Fig. 11.17. The letter A denotes
Hodgkin Disease Hodgkin disease represents about 30% of all cases of malignant lym- phoma, accounting for approximately 8500 new cases annually in the United States. It occurs across the age continuum, with half of cases occurring in persons between the ages of 20 and 40 years. The overall incidence of Hodgkin disease is higher in males, who have a worse prognosis. The overall 5-year survival rate for treated Hodgkin disease, including all stages, is about 85%.
Pathogenesis and clinical manifestations. Hodgkin disease is a malignant disorder of the lymph nodes characterized by the presence of Reed-Sternberg cells on histologic examination. Reed-Sternberg cells originate from B cells in the germinal centers of lymph nodes. Reed- Sternberg cells are malignant, but they tend to grow and spread in a predictable manner. This predictability differentiates Hodgkin disease from other types of lymphoma. Hodgkin disease usually metastasizes along contiguous lymphatic pathways (Fig. 11.14). EBV is frequently found in the genome of transformed Reed-Sternberg cells and is thought to be important in the pathogenesis of Hodgkin disease. The malignant cells are clonal, originating from a single mutant precursor cell, and usually present in a single node or localized chain of nodes. In addition to malignant Reed-Sternberg cells, inflammatory cells accumulate within the node (Fig. 11.15) such that Reed-Sternberg cells constitute only a small minority (2%) of the cells in the lymph node tumor.
There are two types of Hodgkin disease: (1) the rare lymphocyte predominance type, which accounts for 5% of cases, and (2) the classical type (cHD) representing the other 95%. The classical type can be divided further into four subtypes according to the relative number of reactive cells in the tumor. The histologic pattern does not seem to predict the prognosis. The stage of Hodgkin disease is more relevant.
Clinical manifestations of Hodgkin disease are dependent on the site of origin, as well as on the stage of dissemination. Lymphomas often are asymptomatic in the early stages. The usual clinical presentation includes painless lymphadenopathy that may be accompanied by fever, night sweats, pruritus, weight loss, and malaise. Usually enlargement occurs in lymph nodes above the diaphragm, with the cervical nodes being the most common site (Fig. 11.16). Other supradiaphragmatic nodes are the
FIG 11.14 Schematic drawing showing the orderly, contiguous, and predictable spread of Hodgkin disease. (Redrawn and modified from Rosenberg SA: Hodgkin disease: no stage beyond cure. Hosp Pract 1986;21(8):97. After original illustrations by Bunji Tagawa.)
FIG 11.15 Hodgkin/Reed-Sternberg cells. (From Vandenberghe P: Noninvasive detection of genomic imbalances in Hodgkin/Reed-Sternberg cells in early and advanced-stage Hodgkin’s lymphoma by sequencing of circulating cell-free DNA: a technical proof-of-principle study. Lancet Haematol 2015;2(2):e55–e65.)
*Clinical stage (CS) is based on history, physical examination, laboratory studies, and CT scans. Pathologic stage (PS) is based on tissue sampling obtained through invasive procedures such as laparotomy and biopsy.
Stage I Involvement of a single lymph node region or lymphoid structure (e.g., spleen, thymus, Waldeyer ring)
Stage II Involvement of two or more lymph node regions on the same side of the diaphragm. The number of anatomic regions is indicated by a subscript (e.g., II3).
Stage III Involvement of lymph node regions or structures on both sides of the diaphragm • III1: with or without splenic, hilar, celiac, or portal nodes • III2: with paraaortic, iliac, mesenteric nodes
Stage IV Involvement of extranodal site(s) beyond that designated “E” The site is indicated by a letter code followed by a plus sign (+)
Modifying Characteristics For Stages I to III E: Involvement of a single, extranodal site contiguous or proximal to known nodal site
For All Stages A: No symptoms B: Fever (temperature >38°C), drenching sweats, weight loss (>10% body weight over 6 months) X: Bulky disease • >One-third widening of mediastinum • >10 cm maximal dimension of nodal mass
BOX 11.4 Ann Arbor Staging System for Lymphomas With Cotswold Modifications*
Stage I
• Involvement of single lymph node region or • Involvement of single extralymphatic site (stage IE)
Stage II
• Involvement of 2 lymph node regions on same side of diaphragm • May include localized extralymphatic involvement on same side of diaphragm (stage IIE)
Stage III
• Involvement of lymph node regions on both sides of diaphragm • May include involvement of spleen (stage IIIS) or localized extranodal disease (stage IIIE) or both (IIIE+S)
For Hodgkin disease: III1 • Disease limited to upper abdomen—spleen, splenic hilar, celiac, or porta hepatic nodes
III2 • Disease limited to lower abdomen—periaortic, pelvic, or inguinal nodes
Stage IV
• Disseminated (multifocal) extralymphatic disease involving one or more organs (e.g., liver, bone marrow, lung, skin), with or without associated lymph node involvement or • Isolated extralymphatic disease with distant (nonregional) lymph node involvement
NOTE: Stage designation "B" indicates unexplained weight loss >10% of body weight in preceding 6 months and/or fevers of >38C and/or night sweats. Stage designation "A" indicates the absence of the features characterizing "B."
FIG 11.17 Depiction of the locations of malignant cells in the various stages of lymphoma using the Ann Arbor staging system. (From Skarin AT: Atlas of diagnostic oncology, London, 2003, Gower Medical, p 479.)
FIG 11.16 Hodgkin disease (stage IIA). Marked enlargement of cervical lymph nodes is present in this patient. It is usually painless and may be confined to only one area or may affect two or more areas. (From Skarin AT: Atlas of diagnostic oncology, London, 2003, Gower Medical, p 482.)
CHAPTER 11 Malignant Disorders of White Blood Cells 229
the absence of clinical symptoms, whereas the letter B is used when symptoms are present at the time of staging. These symptoms include loss of more than 10% of body weight, unexplained fevers, and night sweats. The clinical stage (CS) is based on history, physical examination, and noninvasive procedures such as computed tomography (CT) scan- ning. The pathologic stage (PS) is determined by the results of invasive procedures such as laparotomy and tissue biopsy. The stage dictates the treatment modalities used. In general, localized tumors are more amenable to application of radiation therapy, whereas disseminated disease responds better to systemic chemotherapeutic agents. Because Hodgkin disease often is detected while localized, radiation therapy is commonly used, with good results (Fig. 11.18).
Patients with nonbulky, stage IA or IIA disease may be candidates for radiation as sole therapy. However, a relatively high rate of relapse has been noted, and combined chemotherapy with limited-field radiation is often used. Patients with bulky disease, “B” symptoms, or stage III
and IV disease require chemotherapy with or without radiation. In early-stage disease, appropriate treatment produces a 90% 10-year disease-free survival. More aggressive chemotherapy is indicated for patients with advanced Hodgkin disease.
B-Cell, T-Cell, and NK-Cell Lymphoma (Non-Hodgkin) The malignancies included in the classification of non-Hodgkin lym- phoma are those that do not have the characteristic Reed-Sternberg cells found in Hodgkin disease. The majority of cases of non-Hodgkin lymphoma arise from lymph nodes, but they can originate in any lymphoid tissue. With the exception of a few subtypes, most cases of non-Hodgkin lymphoma occur in older adults (95%), and males are at a slightly higher risk than females. The incidence of non-Hodgkin lymphoma is on the rise, particularly in areas with large AIDS popula- tions. More than 72,000 new cases of non-Hodgkin lymphoma are diagnosed annually in the United States. The lifetime risk of developing this disease is about 1 in 50.
Most cases of non-Hodgkin lymphoma arise from B cells, T cells, or NK cells. Some of the more common types of non-Hodgkin lymphoma are summarized in Table 11.3. The prognosis and recommended treatment protocols vary according to type. A general schema for grouping non- Hodgkin lymphoma according to indolent or aggressive types is in common usage. Generally, indolent disease is associated with longer survival times, whereas aggressive lymphomas tend to be disseminated at presentation and carry a generally poorer prognosis. As a group, the non-Hodgkin types of lymphoma are more likely to spread early and unpredictably in comparison with Hodgkin disease.
Pathogenesis and clinical manifestations. The etiologic process of non-Hodgkin lymphoma is thought to be similar to that of other malignant transformations. The tumor cells are all derived from a single mutant precursor cell and are clonal. Viruses are suspected in the development of some types of lymphoma. In particular, Burkitt lym- phoma is strongly associated with the presence of EBV. Adult T-cell lymphomas are associated with infection by HTLV-1. The overall 5-year survival rate for all types of non-Hodgkin lymphomas combined is about 70%.
Most patients with non-Hodgkin lymphoma present with advanced disease (stage III or IV). Clinical manifestations may include painless lymphadenopathy, fever, night sweats, weight loss, malaise, and pruritus (similar to Hodgkin disease). A comparison of the features of Hodgkin disease and non-Hodgkin lymphoma is shown in Table 11.4. Extranodal involvement occurs early in the course of non-Hodgkin lymphoma, and patients may present with infiltrative disease of the skin, gastro- intestinal tract, bone, or bone marrow. Complications occur more frequently than in Hodgkin disease. Two of the most serious oncology emergencies are obstruction of the superior vena cava and spinal cord compression. Infection, bone metastasis, and joint effusions are also common. Staging of non-Hodgkin lymphoma is done in the same way as for Hodgkin disease, and the classification system is not different. Earlier clinical stages are associated with the best prognosis for survival.
Prognosis and treatment. The effectiveness of therapy for non- Hodgkin lymphoma is variable. Favorable outcomes are likely in stage I and II disease. However, non-Hodgkin lymphoma is likely to present as stage III or IV disease, which has a poor prognosis. Therapeutic management is determined by the clinical stage, histologic type, patient age, and bone marrow integrity at the time of diagnosis. Radiation, chemotherapy, and tissue-specific therapies such as monoclonal antibod- ies and bone marrow transplants may all be applicable.
FIG 11.18 Typical radiation fields for lymphoma. Different fields of radiation may be used depending on the location of disease.
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TABLE 11.3 Summary of Major Types of Lymphoid Leukemias and Non-Hodgkin Lymphomas
Diagnosis Cell of Origin Genotype Salient Clinical Features
Neoplasms of Immature B and T Cells B-cell acute lymphoblastic
leukemia/lymphoma* Bone marrow precursor B
cell Diverse chromosomal translocations;
t(12;21) involving RUNX1 and ETV 6 present in 25%
Predominantly children; symptoms relating to marrow replacement and pancytopenia; aggressive
T-cell acute lymphoblastic leukemia/lymphoma
Precursor T cell (often of thymic origin)
Diverse chromosomal translocations, NOTCH1mutations (50%–70%)
Predominantly adolescent males; thymic masses and variable bone marrow involvement; aggressive
Neoplasms of Mature B Cells Burkitt lymphoma* Germinal-center B cell Translocations involving MYCand lg
loci, usually t(8;14); subset EBV-associated
Adolescents or young adults with extranodal masses; uncommonly presents as “leukemia”; aggressive
Diffuse large B-cell lymphoma† Germinal-center or postgerminal center B cell
Diverse chromosomal rearrangements, most often ofBCL6 (30%), BCL2 (10%), or MYC (5%)
All ages, but most common in older adults; often appears as a rapidly growing mass; 30% extranodal; aggressive
Extranodal marginal zone lymphoma
Memory B cell t(11;18), t(1;14), and t(14;18) creating MALT1-IAP2, BCL10-IgH, and MALT1-IgH fusion genes, respectively
Arises at extranodal sites in adults with chronic inflammatory diseases; may remain localized; indolent
Follicular lymphoma† Germinal-center B cell t(14;18) creating BCL2-IgHfusion gene Older adults with generalized lymphadenopathy and marrow involvement; indolent
Hairy cell leukemia Memory B cell Activating BRAF mutations Older males with pancytopenia and splenomegaly; indolent
Mantle cell lymphoma Naive B cell t(11;14) creating CyclinD1 -IgH fusion gene
Older males with disseminated disease; moderately aggressive
Multiple myeloma/solitary plasmacytoma†
Postgerminal-center bone marrow homing plasma cell
Diverse rearrangements involving IgH; 13q deletions
Myeloma: older adults with lytic bone lesions, pathologic fractures, hypercalcemia, and renal failure; moderately aggressive Plasmacytoma: isolated plasma cell masses in bone or soft tissue; indolent
Small lymphocytic lymphoma/ chronic lymphocytic leukemia
Naive B cell or memory B cell
Trisomy 12, deletions of 11q, 13q, and 17p
Older adults with bone marrow, lymph node, spleen, and liver disease; autoimmune hemolysis and thrombocytopenia in a minority; indolent
Neoplasms of Mature T Cells or NK Cells Adult T-cell leukemia/
lymphoma Helper T cell HTLV-1 provirus present in tumor cells Adults with cutaneous lesions, marrow involvement,
and hypercalcemia; occurs mainly in Japan, West Africa, and the Caribbean; aggressive
Peripheral T-cell lymphoma, unspecified
Helper or cytotoxic T cell No specific chromosomal abnormality Mainly older adults; usually presents with lymphadenopathy; aggressive
Anaplastic large-cell lymphoma Cytotoxic T cell Rearrangements of ALK(anaplastic large cell lymphoma kinase) in a subset
Children and young adults, usually with lymph node and soft-tissue disease; aggressive
Extranodal NK/T-cell lymphoma NK-cell (common) or cytotoxic T cell (rare)
EBV-associated; no specific chromosomal abnormality
Adults with destructive extranodal masses, most commonly sinonasal; aggressive
Mycosis fungoides/Sézary syndrome
Helper T cell No specific chromosomal abnormality Adult patients with cutaneous patches, plaques, nodules, or generalized erythema; indolent
Large granular lymphocytic leukemia
Two types: cytotoxic T cell and NK cell
Point mutations in STAT3 Adult patients with splenomegaly, neutropenia, and anemia, sometimes, accompanied by autoimmune disease
EBV, Epstein-Barr virus; HIV, human immunodeficiency virus; Ig, immunoglobulin; NK, natural killer. *Most common tumors in children †Most common tumors in adults. Modified from Kumar V et al, editors: Pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 591.
CHAPTER 11 Malignant Disorders of White Blood Cells 231
TABLE 11.4 Clinical Differences in Hodgkin Disease and Non-Hodgkin Lymphoma
Characteristic Hodgkin Disease Non-Hodgkin Lymphoma
Pattern of spread Contiguous spread Noncontiguous spread Extranodal
disease Uncommon More common involvement
of gastrointestinal tract, testes, bone marrow
Site of disease Mediastinal involvement common
Mediastinal involvement less common
Bone marrow involvement uncommon
Bone marrow involvement common
Liver involvement uncommon
Liver involvement common
Extent of disease Often localized Rarely localized B symptoms Common Uncommon
KEY POINTS • Hodgkin disease is characterized by malignant transformation of B cells in
lymph nodes, called Reed-Sternberg cells. The spread of malignant cells occurs along predictable, contiguous pathways. Most commonly, a single cervical lymph node is involved initially, with slow progression to nearby nodes.
• Non-Hodgkin lymphoma constitutes a diverse group of malignant diseases of lymphoid tissue. The characteristic Reed-Sternberg cell of Hodgkin disease is not present. Non-Hodgkin lymphoma is unpredictable in its spread and is often disseminated at diagnosis.
• Manifestations of Hodgkin disease and non-Hodgkin lymphoma are similar. These include painless lymph node enlargement, fever, night sweats, and weight loss. Early-stage disease is often asymptomatic.
• Staging is done to determine the degree of dissemination of disease. When affected lymph nodes are localized to one area (stage I) or one side of the diaphragm (stage II), the prognosis for cure is very good. Dissemination to lymph nodes above and below the diaphragm (stage III) or to extralymphatic organs or tissues (stage IV) carries a poorer prognosis.
• Radiation of the involved field is commonly used for malignant lymphoma in early stages. More disseminated disease may be treated with chemo- therapeutic protocols. Non-Hodgkin lymphoma is routinely treated with chemotherapy because the disease is often well advanced at the time of diagnosis. Treatment may lead to bone marrow suppression and may predispose the patient to anemia, thrombocytopenia, and leukopenia.
Malignant disorders of white blood cells are classified according to cell type and fall into two major categories: myeloid neoplasms and lymphoid neoplasms. Myeloid neoplasms commonly present as leukemia and usually involve transformation of granulocytes. Lymphoid neoplasms may present as leukemia, lymphoma, or plasma cell myeloma. Leukemia is a malignant neoplasm of immature stem cells that is characterized by diffuse replacement of the bone marrow by neoplastic blasts. In most cases the leukemic cells overflow into the bloodstream, where they may be seen in large numbers. These cells may also infiltrate the liver, spleen, lymph nodes, and other tissues throughout the body. Lymphoma is characterized by malignancy of cells found in lymphoid tissues and usually arises in the lymph nodes. Hodgkin disease is a special category of malignant lymphoma that is characterized by the presence of Reed-Sternberg cells. Hodgkin disease is more predictable in its spread than the non-Hodgkin types of lymphoma, and it is generally curable
in the early stages. Non-Hodgkin lymphoma types comprise a large number of different disorders that involve malignant transformation of B cells, T cells, or NK cells. As with Hodgkin disease, earlier stages are more easily cured. However, the non-Hodgkin lymphomas tend to be unpredictable in their dissemination, and the prognosis is less certain. Plasma cell myeloma is a malignant transformation of mature, antibody-secreting B cells. Malignant plasma cells are monoclonal, and all produce identical antibodies, which accumulate in the blood. These cells have a predilection to settle in skeletal structures, where they cause bone demineralization and destruction. Hypercalcemia, bone fractures (pathologic fractures), and renal damage are common complications of plasma cell myeloma. Treatment for the various types of hematologic neoplasms continues to evolve, and excellent disease-free survival is commonly achieved when the disease is diagnosed in the early stages.
S U M M A R Y
RESOURCES Etiology and Classification of Hematologic Neoplasms Henderson ES, Lister TA, Greaves MF, editors: Leukemia, ed 7, Philadelphia,
2002, Saunders. Jaffe ES, Harris NL, Stein H, Vardiman JW, editors: Pathology and genetics of
tumours of haematopoietic and lymphoid tissues, Lyon, France, 2001, IARC Press.
Lowenberg B, Griffin JD, Tallman MS: Acute myeloid leukemia and acute promyelocytic leukemia. Hematology 82–101, 2003. doi:10.1182/ asheducation-2003.1.82.
McKenzie SB, Williams L: Clinical laboratory hematology, Upper Saddle River, NJ, 2015, Pearson Education, 3/E.
National Cancer Institute: https://seer.cancer.gov/statfacts/. Ross JA, Potter JD, Reaman GH, et al: Maternal exposure to potential
inhibitors of DNA topoisomerase II and infant leukemia (United States):
a report from the Children’s Cancer Group. Cancer Causes Control 7(6):581–590, 1996.
Tessoulin B, Eveillard M, Lok A, et al: p53 dysregulation in B-cell malignancies: More than a single gene in the pathway to hell. Blood Rev, 2017. S0268-960X(16)30059-5. doi: 10.1016/j.blre.2017.03.001.
Myeloid Neoplasms American Cancer Society: Cancer facts and figures, 2015, Atlanta, GA, 2003,
Author. Aster JC: The hematopoetic and lymphoid systems. In Kumar V, Abbas AK,
Fausto N, Mitchell R, editors: Robbins basic pathology, ed 8, Philadelphia, 2007, Saunders, pp 421–478.
Barille-Nion S, et al: Advances in biology and therapy of multiple myeloma. Hematology 248–278, 2003. doi:10.1182/asheducation-2003.1.248.
Henderson ES, Lister TA, Greaves MF, editors: Leukemia, ed 7, Philadelphia, 2002, Saunders.
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Hoffbrand AV, Moss PAH: The World Health Organization (WHO) classification of the tumors of haematopoietic and lymphoid tissues. In Essential haematology, ed 6, Oxford, England, 2011, Blackwell.
Keating MJ, et al: Biology and treatment of chronic lymphocytic leukemia. Hematology 153–175, 2003. doi:10.1182/asheducation-2003.1.153.
Linker CA: Blood. In Tierney LM, McPhee SJ, Papadakis MA, editors: Current medical diagnosis and treatment, ed 46, New York, 2007, McGraw-Hill, pp 493–547.
McKenzie SB, Williams L: Clinical laboratory hematology, Upper Saddle River, NJ, 2015, Pearson Education. 3/E,.
Melo JV, Hughes TP, Apperley JF: Chronic myeloid leukemia. Hematology 132–152, 2003. doi:10.1182/asheducation-2003.1.132.
Spivak JL, et al: Chronic myeloproliferative disorders. Hematology 200–224, 2003. doi:10.1182/asheducation-2003.1.200.
Lymphoid Neoplasms Carbone PP, Kaplan HS, Musshoff K, et al: Report of the Committee on
Hodgkin’s Disease Staging Classification. Cancer Res 31:1860–1861, 1971.
Diehl V, Stein H, Hummel M, et al: Hodgkin’s lymphoma: biology and treatment strategies for primary, refractory and relapsed disease. Hematology 225–247, 2003. doi:10.1182/asheducation-2003.1.225.
Iacobucci I, Mullighan CG: Genetic Basis of Acute Lymphoblastic Leukemia. J Clin Oncol 35(9):975–983, 2017.
Lister TA, et al: Report of a committee convened to discuss the evaluation and staging of patients with Hodgkin’s disease: Cotswolds Meeting. J Clin Oncol 7(11):1630–1636, 1989.
Rytting ME, Jabbour EJ, O’Brien SM, Kantarjian HM: Acute lymphoblastic leukemia in adolescents and young adults. Cancer 2017. doi:10.1002/ cncr.30624.
Vose JM, Chiu BCH, Cheson BD, et al: Update on epidemiology and therapeutics for non-Hodgkin’s lymphoma. Hematology 241–262, 2002. doi:10.1182/asheducation-2002.1.241.
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12
HIV Disease and AIDS Faith Young Peterson
K E Y Q U E S T I O N S • What are the common modes of HIV transmission, and how can
infection be prevented? • What is the scope of the HIV/AIDS epidemic in the United States
and the world? • How does infection with HIV lead to progressive
immunodeficiency and AIDS? • How has knowledge of the HIV life cycle led to the development
of multidrug treatment strategies?
• How are CD4+ cell counts and various clinical findings used to classify the stages of HIV disease and AIDS?
• What are the common systemic manifestations of AIDS and associated opportunistic infections?
• What are the current treatment recommendations for HIV disease and AIDS?
C H A P T E R O U T L I N E Epidemiology, 234
History, 234
Types of HIV, 234
Transmission, 236
Prevention of Transmission, 238
Etiology, 239 HIV Structure, 239
HIV Binding and Infection, 239
Pathogenesis, 242 Effect of HIV on Immune Cells at the Cellular Level, 242
Viral Production and Cell Death, 242
Progression of HIV Infection from Seroconversion to AIDS, 244
CDC HIV Classification System, 245
Diagnostic Testing, 245 Monitoring the Progression of HIV, 246 Clinical Manifestations, 248
Systemic Manifestations, 248
Gastrointestinal Manifestations, 249
Pulmonary Manifestations, 249
Mucocutaneous Manifestations, 250
Gynecologic Manifestations, 251
Neurologic Manifestations, 252
Ocular Manifestations, 253
Cardiovascular Manifestations, 253
Manifestations in Other Systems, 253
Manifestations in Children, 254
Treatment, 254 Antiretroviral Therapy Recommendations, 254
Nucleoside Reverse Transcriptase Inhibitors, 255
Nucleotide Reverse Transcriptase Inhibitors, 255
Nonnucleoside Reverse Transcriptase Inhibitors, 255
Protease Inhibitors, 257
Fusion Inhibitors, 257
CCR5 Inhibitors, 257
Integrase Strand Transfer Inhibitors, 257
Other Treatments and Vaccines, 257
http://evolve.elsevier.com/Banasik/pathophysiology/
This chapter focuses on HIV disease and AIDS—from epidemiology to pathogenesis and management. Human immunodeficiency virus (HIV) is the prototypical public health infectious disease of the late twentieth century. It does not act like other infectious organisms that overwhelm the immune system. Although originally thought to be a rapid killer, it is a long-term, complex, chronic disease caused by persistent replication of HIV that leads to immunodeficiency. It triggers chronic widespread and diverse organ involvement with varying signs and
symptoms. It encompasses all the armamentarium of a viral infection that has completed the evolutionary progression from animal to human. HIV has done more than just confuse and captivate scientists and health professionals; it also has mobilized risk groups and placed medicine and society at a crossroads of opinion. In this epidemic, the lines between privacy and public health and between morality and compassion have been debated. HIV disease is complex. However, in its complexity, it has opened the door to better understanding of the immune system.
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
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The rate of persons living with an HIV/AIDS diagnosis also varies by geographic region. The Northeast and South report the highest numbers of HIV/AIDS diagnoses, particularly in urban areas. For example, the South reported 45% of new AIDS diagnoses followed by 24% in the Northeast, 19% in the West, and 13% in the Midwest. The highest rates of new diagnoses of HIV are in African American men and women in all geographic regions except in the West.
Approximately 20% of new HIV infections occur in women, and 23% of those living with HIV are women. HIV infections in women are usually due to heterosexual contact (84%) or injection drug use (16%). It is thought that noninjection drugs (such as crack cocaine or methamphetamine) may also contribute to the spread of HIV/AIDS because of sex trading for drugs, shelter, or money. African American and Hispanic women account for 80% of all HIV diagnoses in women in the United States.
People living with HIV older than age 50 comprise 20% of all HIV infections in the United States. Initial infection in this age group is often as a result of a decreased perception of risk. Despite improved diagnoses and treatment, people older than 50 comprise 50% of HIV deaths. In the 50 to 54 age group, HIV is one of the top causes of death in the United States.
History In 1981 the first descriptions of immunodeficiency disease in previously healthy persons appeared in the medical literature. At that time, previously healthy young homosexual men contracted unusual diseases for their age group in increasing numbers, such as Pneumocystis jiroveci (carinii) pneumonia (PCP) and Kaposi sarcoma, that researchers identified as HIV. The first evidence of alternative forms of transmission of the virus by blood and blood products appeared in 1982. All these early patients were shown to have a type of HIV virus called HIV-1. It was at this time that the term acquired immunodeficiency syndrome (AIDS) was first used. However, the specific retrovirus causing HIV infection and AIDS was not isolated until the early to mid-1980s. The timeline of HIV history is found in Table 12.2.
Types of HIV HIV is a type of retrovirus from the subfamily Lentivirinae, with Lentivirus being its only genus. This subfamily is so named from the Latin word lentus, meaning “slow,” because infection develops gradually. HIV-2, a related but distinct retrovirus, was later identified in 1986 and is most closely related to simian immunodeficiency virus. HIV-2 is differentiated from HIV-1 by a longer clinical latency period from the onset of infection to the development of symptoms. It is also characterized by having lower plasma HIV-2 RNA viral loads and lower mortality rates. HIV-2 infection can progress to AIDS, even though it appears to be less virulent than HIV-1. It is also possible to be coinfected with both HIV-1 and HIV-2.
HIV-1 and HIV-2 are found worldwide. They are similar in structure and function, but are differentiated from each other by their envelope glycoproteins, point of origin, and latency periods. The point of origin for HIV-1 is Central Africa, and for HIV-2 it is West Africa. HIV-1 is the causative organism of most cases found in Central Africa, the United States, Europe, and Australia. HIV-2 is found primarily in West Africa or in countries with strong socioeconomic ties to West Africa (e.g., France, Spain, Portugal, and former Portuguese colonies).
Many subspecies or strains of HIV also exist because of the rapid rate of HIV virion mutation. The subspecies may exist in different hosts, as well as within an individual host. Currently, at least 10 subtypes of HIV-1 have been identified: group N (YBF30), group O, and group M with 8 subtypes (A, B, C, D, E, F, G, and H). Research is currently focusing on the identification of HIV subtypes and strains in different
Human immunodeficiency virus (HIV) infection and acquired immunodeficiency syndrome (AIDS) are acquired immunodeficiency disorders resulting in defective cell-mediated immunity, especially the decrease in CD4+ or T helper/inducer lymphocytes. CD4+ T cells are necessary for appropriate immune responsiveness because they are the cells that mediate between the antigen-presenting cells and other immune cells, such as B cells and other T cells. CD4+ lymphocytes are characterized by the presence of the CD4 receptor.
EPIDEMIOLOGY HIV infection is a primary immunodeficiency disease caused by the retroviruses HIV type 1 and HIV type 2. Despite research and public health surveillance and prevention activities, the virus has continued mutating and spreading globally. HIV infects people worldwide. Since its identification in the early 1980s, the HIV global epidemic continues with an estimated 36.9 million people living with HIV worldwide as of 2014 and a total of 1.2 million AIDS deaths worldwide in 2014. The number of adults living with HIV is estimated to be 34.3 million. Of those, 17.4 million people are women. There are also 2.6 million children (<15 years) estimated to be living with HIV globally. AIDS-related deaths worldwide have fallen by 42% since 2004. Selected aspects of the global impact of HIV and AIDS are illustrated in Table 12.1.
According to the World Health Organization (WHO), the number of new HIV infections globally declined 35% since 2000, attributable to expanded and improved HIV programs. There were approximately 2 million people estimated to be newly infected with the HIV virus in 2014. New HIV infections in children have decreased 58% since 2000 with 220,000 children newly infected with HIV and 150,000 deaths in children in 2014. Of the newly infected people with HIV, 15 countries account for more than 75%. These 15 countries include Brazil, Cameroon, China, India, Indonesia, Kenya, Mozambique, Nigeria, Russian Federation, South Africa, Uganda, United Republic of Tanzania, United States of America, Zambia, and Zimbabwe. HIV infection rates are influenced by location and population and as such continue to increase in sub- Saharan Africa, which has the highest number of people living with HIV (24.8 million), as well as in Eastern Europe (1.5 million) and central Asia (5.0 million). In those countries, people infected with HIV have more limited access to testing and medication for treatment, as well as limited information for prevention because of the effects of gender inequity and harmful social norms that drive transmission.
In the United States it is estimated by the Centers for Disease Control and Prevention (CDC) that there are more than 1.2 million persons living with HIV/AIDS in the United States, with 47,352 people newly diagnosed with HIV infections in 2013. In the United States and other industrialized countries where access to medication, care, and prevention is greater, the number of patients diagnosed with and dying from AIDS is stable or declining (Fig. 12.1). In 2013 26,688 people were diagnosed with AIDS. However, the CDC estimates that approximately 12.8% of the people who are infected with HIV in the United States may be unaware that they are infected. Since 1981, 658,507 people with AIDS in the United States have died.
Current statistics show that of the people diagnosed with HIV/AIDS in the United States, men who have sex with men (MSM), injection drug users, racial and ethnic minorities, and women of color are dis- proportionately affected. Among racial and ethnic groups, 41% of people living with HIV infection and most of the new cases are African Americans, especially those in the youngest age group. Hispanics account for approximately 20% of people living with HIV infection and 21% of new HIV infections. According to the CDC, 63% of new HIV infections occur in MSM. New HIV infections occur in approximately 8% of injection drug users, who represent 15% of those living with HIV.
CHAPTER 12 HIV Disease and AIDS 235
TABLE 12.1 Global Health Considerations for HIV/AIDS
Country/ Region
Prevalence of Disease Cultural Factors
Most Common Means of Transmission Treatment
Economic/Social Impact
Sub-Saharan Africa
25.8 million people affected. This region carries most of the world’s HIV/AIDS burden. Nigeria, South Africa and Uganda account for 48% of all new HIV infections. Adult prevalence % = 4.8%
Adult and child deaths due to AIDS = 790,000
Gender inequalities: Males dominate sexual decision making and adolescent girls and young women are disproportionately infected.
Heterosexual sex and mother-to-child transmission
Treatment is available but it depends on the country. Treatment coverage = 90% of those who test positive for HIV. 76% of people on HAART achieve viral suppression. However, Central African Republic, Democratic Republic of the Congo, Nigeria and South Sudan have high HIV burden, low treatment coverage, and no or little decline in new HIV infections.
Life expectancy depends on access to treatment. Untreated populations have decreased life expectancy. Stigma associated with disease causes people to lose property.
Middle East and North Africa
240,000 people affected. Adult prevalence % = 0.1%. Adult and child deaths due to AIDS = 12,000
Gender inequalities: Males dominate sexual decision making. Marked stigma.
Heterosexual sex and mother-to-child transmission
Only 11% of infected people are receiving antiretroviral therapy New infections have risen by 7%. AIDS-related deaths have risen by 66% since 2005.
Asia/Pacific 5.0 million people affected.
Adult prevalence % = 0.2%. Adult and child deaths due to AIDS = 240,000
Growing male demographic has led to a growing sex industry.
Intravenous drug use, prostitution, and transmission through migrant workers
Medical coverage in rural areas is poor, so a large proportion of the population must pay out of pocket. Treatment coverage: 31%
Cost of therapy generally exceeds annual income. Stigma is so great that many people do not disclose their HIV status to their families and thus do not seek treatment.
Western and Central Europe and North America
2.4 million people affected. Adult prevalence % = 0.3%. Adult and child deaths due to AIDS = 26,000.
Continued stigma Men having sex with men (MSM), intravenous drug use, heterosexual transmission, and prostitution
Treatment available to most people. The percentage of people receiving treatment is highest at 51%.
New infections have risen by 8% by 2005.
Cost of therapy is high but programs are available for assistance
Eastern Europe and Central Asia
1.5 million people affected. Adult prevalence % = 0.9%. Adult and child deaths due to AIDS = 62,000
Continued stigma MSM, intravenous drug use, heterosexual transmission and prostitution
Treatment availability varies. Russian Federation has low treatment coverage and no or little decline in new HIV infections. New infections have risen by 5% since 2005.
AIDS-related deaths have risen by 5% since 2005.
Caribbean 280,000 people affected. Adult prevalence % = 1.1%. Adult and child deaths due to AIDS = 8,800
Continued stigma MSM, intravenous drug use, heterosexual transmission, and prostitution
New infections declined most = 40% since 2005
Latin America 1.7 million people affected. Adult prevalence % = 0.4%. Adult and child deaths due to AIDS = 41,000
MSM are highly stigmatized, so prevention efforts overlook this group. Drug use is commonplace
MSM, intravenous drug use, and prostitution
45% of infected people are receiving antiretroviral therapy. The government provides therapy for free.
Government has had a strong and positive response to the epidemic: its efforts have reduced stigma, improved social reintegration, and reduced HIV prevalence among high-risk populations.
UNAIDS Press Release. UNAIDS report shows that 19 million of the 35 million people living with HIV today do not know that they have the virus. Geneva, July 16, 2014.
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concomitant sexually transmitted diseases or genital lesions increase the risk of HIV infection. In women, high-risk heterosexual contact is influenced by lack of HIV knowledge, low socioeconomic status, low perception of risk, concomitant drug or alcohol use, relationship dynamics such as fear of abuse or loss of relationship, and the increased biological vulnerability of HIV contraction during vaginal intercourse, especially in the presence of other sexually transmitted diseases or vaginal inflammation. In both men and women, the use of noninjection drugs (such as crack cocaine) contributes to HIV transmission by decreasing inhibition, allowing the person to engage in risky sexual behaviors or to trade sexual relations for drugs or money.
Blood bank screening and testing procedures have nearly eliminated the transmission of HIV-contaminated blood in the United States. In the United States all blood and blood products have been tested by HIV-1, HIV-2, and HIV-1 p24 antigen tests since 1996. However, this route of transmission continues in third-world countries, where there is a high number of HIV-infected persons and much of the blood and blood products are not screened before use.
Health care workers who are exposed to blood or infected body fluids or needles/sharp instruments are at risk of contracting HIV. The risk of developing HIV is greatest for those health care workers who have a deep injury with visible blood from a contaminated needle or sharp instrument or who have a direct puncture into an artery or vein. They also are at risk if they have prolonged blood–skin contact, especially if extensive. The risk of infection is much lower when both universal precautions and postexposure prophylaxis are employed.
Transmission from an infected mother to her infant may occur in the intrauterine period, in the intrapartum period at the time of delivery, or in the postpartum period via breast feeding; it may also be transmitted in some cultures from saliva attributable to premastication. Of these, intrapartum transmission at the time of delivery is thought to be the most common. HIV infection does not cause any specific congenital abnormalities, but there is an increased risk of spontaneous
populations and geographic areas. For example, in the United States, Europe, and Australia, most infected persons have HIV-1, subtype B, whereas in India, HIV-2 is found near Goa, and HIV-1 strains A, B, and C are also present.
Transmission HIV-1 and HIV-2 are relatively weak viruses outside of the body. HIV viruses can infect people through three major types of transmission: sexual transmission via semen or vaginal and cervical secretions through homosexual, bisexual, or heterosexual intercourse; parenteral transmission via blood, blood products, or blood-contaminated needles or syringes; and perinatal transmission in utero, during delivery, or in breast milk. Of these forms of transmission, sexual transmission through unprotected vaginal or anal intercourse is the most common mode of infection globally. HIV is found in every bodily fluid and is broadly disseminated in the body. In very low titers, HIV is known to be present but has not been shown to be transmitted via urine, saliva, tears, cerebrospinal fluid, amniotic fluid, and feces. HIV is not known to be transmitted via aerosol routes. In the United States those at greatest risk of HIV infection include (1) MSM; (2) intravenous drug users (IVDs) who share needles or syringes; (3) sexual partners of those in high-risk groups, particularly heterosexual women; and (4) infants born to infected mothers. Heterosexual intercourse with infected partners, contact with contaminated blood, and prenatal or perinatal exposure of the infant are the major routes of transmission of HIV in Africa, South and Southeast Asia, and developing countries. In these countries, an equal proportion of males and females are infected.
Common modes of transmission include needle/syringe sharing between IVDs, unprotected sex with infected partners, recipients of HIV-contaminated blood or blood products or infected semen during artificial insemination, unanticipated needle or scalpel injury during care or surgical treatment of infected patients, and neonatal transmission from an infected mother to her infant. In both men and women,
Classifications
Year of classification
Note. Deaths of persons with HIV infection, stage 3 (AIDS) may be due to any cause.
Stage 3 (AIDS) Classifications, Deaths, and Persons Living with Diagnosed HIV Infection Ever Classified as Stage 3 (AIDS) 1985–2014–United States and 6
Dependent Areas C
la s s if
ic a ti
o n
s a
n d
d e a th
s , N
o .
(i n
t h
o u
s a n
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P re
v a le
n c e
, N o
. (i
n t
h o
u s a n
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Deaths
Prevalence
1985 1986
1987 1988
1989 1990
1991 1992
1993 1994
1995 1996
1997 1998
1999 2000
2001 2002
2003 2004
2005 2006
2007 2008
2009 2010
2011 2013
2014 2012
90
80
70
60
50
40
30
20
10
0
600
500
400
300
200
100
0
FIG 12.1 Estimated AIDS incidence and deaths among persons with AIDS, by year of diagnosis or death and year-end prevalence, United States, 1985 to 2014. Data were adjusted for delays in reporting of cases and deaths. (From Centers for Disease Control and Prevention. https://www.cdc.gov/hiv/library/slideSets/ index.html.)
CHAPTER 12 HIV Disease and AIDS 237
of HIV perinatal transmission is reduced with the use of antiretroviral therapy during pregnancy and during the first months of the infant’s life.
Routine social contact with people who are HIV positive does not increase one’s risk of HIV infection. The following examples are safe practices and will not cause exposure to HIV infection: using public restrooms, swimming in public swimming pools, touching or hugging someone who is HIV positive, and eating with community utensils or in restaurants. Insects such as mosquitoes cannot transmit the HIV virus to humans.
abortion. The overall risk to the fetus of HIV transmission is estimated to be between 15% and 40% for each pregnancy, with increasing risk in subsequent pregnancies for each HIV-positive fetus born. Increased risks of antepartum transmission include increased maternal viral load or high viremia during early infection, advanced maternal clinical disease as evidenced by low CD4+ counts, and breaks in the placental barrier. Increased risks of intrapartum transmission include high maternal viral load at the time of delivery, prolonged ruptured membranes (more than 4 hours), infant exposure to blood/secretions, abruptio placentae, infant prematurity, and the presence of coinfections. The rate
TABLE 12.2 HIV History Timeline Synopsis 1900 Retroviruses identified as cause of cancer in chickens 1930s HIV-1 precursor virus crossed species from chimpanzees to humans during hunting from contact with infected chimpanzee blood 1950s Positive tests on serum from man in Leopoldville (now Kinshasa) Congo 1960s Virus reaches Haiti 1968 First case in United States in sexually active 15-year-old African American male in St. Louis 1980 First retrovirus identified in humans affecting T cells (human T-cell lymphocytic virus, HTLV-1) 1981 Syndrome of HIV first reported in healthy young homosexual men in Los Angeles and New York. First clinical article in MMWR. 1982 Identification of HIV transmission by blood/blood products with first use of term AIDS. Syndrome also identified in women, infants, Haitians,
and persons who had received blood or blood products 1983 CDC publishes first Blood and Body Fluid Precautions.
First WHO meeting on AIDS. 1985 First HIV-1 antibody testing (ELISA and Western Blot).
First international conference on AIDS 1987 HIV-2 identified in visitor to United States from West Africa.
First anti-HIV drug approved. CDC revises guidelines with identification of mucocutaneous exposure – “Universal Blood and Body Fluid Precautions.”
1988 World Health Organization (WHO) declares December 1 as World AIDS Day. 1989 FDA approves aerosolized pentamidine for PCP prophylaxis.
Second federal commission on AIDS established. 1990 Ryan White Comprehensive AIDS Resources Emergency Act signed into law. 1991 Earvin (Magic) Johnson announces his HIV-positive status.
OSHA mandates Universal Precautions. 1992 FDA approves the use of AZT and zalcitabine (ddC, Hivid) for concurrent treatment of HIV infection. 1993 Scientists reveal AZT-resistant HIV strains are being transmitted to newly infected individuals. 1994 CDC announces that AIDS is leading cause of death among Americans 25–44 years old 1995 FDA approves the first protease inhibitor (saquinavir).
Establishment of the Presidential Advisory Council of HIV/AIDS. U.S. PHS recommends that pregnant women be offered AZT to reduce the possibility of perinatal transmission.
1996 Combination antiretroviral therapy (HAART) is introduced. 1997 CDC warns that the number of AIDS cases among people over age 50 is slowly increasing. 1999 Researchers discover origins of HIV-1 from chimpanzee species (see 1930s).
Behavioral studies report recidivism in regard to safer sex practices among MSM in both Europe and the United States. 2006 WHO declares March 8 as National Women’s & Girls HIV/AIDS Awareness Day.
SMART trial found that episodic antiretroviral therapy more than doubles risk of AIDS or death in people with HIV infection 2014 Worldwide, HIV/AIDS is the leading cause of death for women in their reproductive years.
WHO report indicates that 19 million of the 35 million people living with HIV do not know their HIV status. 2015 WHO issues new guidelines for treatment of all HIV-infected persons at the time of diagnosis regardless of CD4+ T cell count.
Compiled from the following sources: Balter M: Virus from 1959 sample marks early years of HIV, Science 279:801, 1998. Garry RF et al: Documentation of an AIDS virus infection in the United States in 1968, JAMA 260(14):2085-2087, 1988. Lemey P et al: Tracing the origin and history of the HIV-2 epidemic, Proc Natl Acad Sci USA 10.1073/pnas.0936469100, 2003. Ungvarski PJ: The past 20 years of AIDS. AJN, 101(6):26-29, June, 2001. Varmus H: Retroviruses. Science 240:1427-1435. UNAIDS: Press Release: UNAIDS report shows that 19 million of the 25 million people living with HIV today do not know that they have the virus and Core Epidemiology Slides, Geneva, July 16, 2014, World Health Organization (WHO). Division of HIV/AIDS Prevention: HIV in the United States: At a Glance, Atlanta, GA, July, 2014, Centers for Disease Control and Prevention (CDC). Division of HIV/AIDS Prevention: HIV and AIDS in the United States by Geographic Distribution, Atlanta, GA, May 11, 2015, Centers for Disease Control and Prevention (CDC).
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use. When using bleach, the user must rinse out all blood first; then fill the needle and syringe with full-strength bleach at least three times for 30 to 60 seconds.
Medical and health care personnel are at risk through occupational exposure to blood and body fluids. The degree of occupational risk varies with the type and severity of exposure. For example, the average risk for HIV transmission after a needle-stick exposure to HIV-infected blood is estimated to be approximately 0.3%. Self-protection through the use of standard precautions can decrease risk by reducing exposure. Health care providers should carefully wash their hands before and immediately after patient contact even when using gloves. It is essential to wear disposable gloves for any actual or potential contact with blood or body secretions, when handling items contaminated with blood or body fluids, when performing finger sticks or heel sticks, or when the health care provider has scratches or cuts on the hand.
Gowns or plastic aprons, masks, goggles, or face shields should be worn to protect the face and clothing when there is risk of splashes and airborne droplets of blood or body fluids. Protective gear should be changed between patients. Careful prevention of parenteral exposure when using needles or other equipment should be emphasized. Needles and sharp implements should be disposed in rigid, puncture-proof containers. Such implements should not be bent, broken, or recapped before disposal. In combative patients who must have blood drawn or injections given, careful use of humane and limited restraint devices may be necessary to prevent injury to the involved health care workers. Resuscitation bags and masks should be readily available to minimize the need for mouth-to-mouth procedures.
Unfortunately, accidents necessitating the development of postexpo- sure prevention protocols do occur. If a health care worker sustains an injury with significant exposure to blood or body fluids such as a needle stick and the source patient is HIV positive, prophylaxis should be given immediately after a workplace postexposure prevention protocol. If the source patient tests negative, if there is concern about new infection, or if the HIV status is unknown, the health care worker should be offered prophylaxis. The selection of a drug regimen for HIV postexposure prophylaxis must balance the risk for infection against potential toxicities and side effects of the medication(s). The postexposure protocol usually involves the administration of three medications—emtricitabine/tenofovir (Truvada) and raltegravir (Isentress)—for 4 weeks. This combination of medications is usually well tolerated and has fewer drug interactions. The length of administration of the agents depends on multiple factors and may be longer. This same protocol has been advocated for use as postsexual exposure prophylaxis.
Exposure to HIV does not mean that one will contract HIV or AIDS, and it does not mean rapid progression. HIV-1 transmission rates are generally low and range from 0.1% to 10% per exposure. The interacting forces between viral and host factors influence whether a person will contract HIV infection, particularly the amount and virulence of the virus and the host’s response by T-cell–mediated cytotoxicity or by cytokines. In studies of patients with hemophilia who received tainted blood products, 10% to 25% of the individuals evaded infection. Because of genetic differences that either increase or decrease susceptibility to the infection, the risk of acquiring HIV and the response to infection also vary within populations. Some individuals, despite high-risk exposure, do not exhibit any signs of infection or immunodeficiency.
Researchers have identified an HIV resistance mutation of the CCR5 gene, called CCR5-delta 32, which is associated with natural resistance to HIV infection in certain people. When inherited from both parents, the mutant CCR5-delta 32 gene appears to protect individuals from infection even after multiple exposures. When only one gene is inherited, the progression to AIDS tends to be slower. The CCR5 gene is not equally distributed among people. Persons of Caucasian American and Caucasian-European descent have the highest number of mutant allele genes, approximately 10%, whereas Native American, African, and East Asian people have the lowest number of mutant alleles. A recent study on the protective effect of the CCR5-delta 32 allele in Mexican women found that there was an inverse relationship between allele frequency and the risk of HIV-1 transmission.
Researchers have also found that other mutations in the CCR5 gene can delay progression of HIV infection, such as polymorphism-2459 (A/G). Other proteins bind to CCR5 and demonstrate antiviral activity, such as macrophage inflammatory protein-1α (MIP-1α) and MIP-β, human neutrophil peptide 1 (hNP-1), as well as other chemokines. People who have fewer genes encoding CCL3L1, a potent HIV-blocking protein that interacts with CCR5, are more susceptible to HIV infection and have more rapid progression to AIDS, whereas individuals with natural killer (NK) cells that produce interferon-γ, tumor necrosis factor-α (TNF-α), CCL3, CCL4, and CCL5 are less likely to develop HIV infection. Because the susceptibility to and progression of HIV are multifactorial and exhibit significant interindividual variation, many aspects of the pathogenesis of HIV are still unknown.
Prevention of Transmission Prevention is essential, because effective management of HIV is expensive and a cure is not yet possible. However, one-time exposure to information or a single message is usually less successful than programs that teach prevention skills and reinforce positive behavior. The primary way to prevent transmission is to use safe sex practices. Safe sex practices include abstaining from sex, using a condom (barrier protection) during sexual intercourse, avoiding multiple sexual partners, and knowing the HIV status of all sexual partners. It is important that education regarding safe sex practices be tailored to appropriate age groups, ethnicity, culture, and sexual preference. Patient visits to health care providers are an excellent opportunity to encourage individual HIV protection.
Spermicides such as nonoxynol 9 or C31G do not inactivate HIV or other sexually transmitted microorganisms. No studies suggest any benefit from using progestins such as levonorgestrel (Norplant) or medroxyprogesterone (Depo-Provera), the diaphragm, or oral contracep- tives to prevent HIV transmission. The early use of antepartum and intrapartum antiretroviral therapy and avoidance of breast feeding can prevent maternal–child HIV infection.
HIV infection in drug users can be prevented with the use of sterile needles via improved access to clean needles and avoidance of dirty or shared needles. Such intervention includes needle/syringe exchange programs for IVDs and cleaning of dirty needles with bleach before
KEY POINTS • HIV disease is a primary immunodeficiency disorder caused by viral infection
of CD4+ cells. It is a major health concern because it causes chronic, severe, long-term disease in industrialized countries with access to medication, care, and prevention. In third-world countries where therapy is unavailable, the prognosis for HIV is very poor and death is more likely.
• HIV types 1 and 2 are retroviruses that primarily infect CD4+ lymphocytes and macrophages. HIV-1 is the primary causative virus infecting persons in Central Africa, the United States, Europe, and Australia.
• HIV is acquired primarily through sexual transmission via semen and vaginal and cervical secretions; through parenteral transmission via blood, blood products, and contaminated needles/syringes; and through perinatal transmission from an infected mother to her infant antepartum, intrapartum, and postpartum via breast milk.
• HIV is known to be present in but is not believed to be transmitted via urine, saliva, tears, cerebrospinal fluid, amniotic fluid, feces, or aerosols.
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rev gene encodes proteins that regulate viral messenger RNA expression. Rev proteins inhibit regulatory proteins, allowing the transport of HIV RNA from the nucleus. Rev proteins also enhance viral structural gene production. The vif (virion infectivity factor) gene appears to increase the ability of the virus to infect other cells. It suppresses the human protein (CEM 15) that inhibits HIV-1.
The HIV genome contains all the information regulating the virus’s structural format and growth during its life cycle. The enzymes within the core also are very important because they facilitate the conversion of RNA to DNA. This conversion is the means of information transfer. The enzymes include reverse transcriptase, integrase, and protease. Reverse transcriptase is composed of two associated enzymes called polymerase and ribonuclease. It is the unique enzyme in HIV that allows the virus to copy RNA into DNA. Protease is a complex enzyme that works as a “molecular scissors.” It splits the other viral components by a process known as autocatalysis. Immature, noninfectious virions containing inactive gag/pol, a long precursor protein, are released in the plasma, where they are cleaved by protease into smaller active units. Protease also clips p55, the core gag viral protein precursor, into smaller molecules and is needed to facilitate final mature viral assembly for HIV to be infectious. In other words, HIV infection does not occur unless protease activates the virions. Protease also cleaves and inactivates other cellular proteins, including receptor-interacting protein kinases 1 and 2 (RIPK1/RIPK2). The inactivation of these proteins, which are involved in innate immunity and apoptosis, is another way the virus counters host defense mechanisms.
The viral envelope consists of a membrane derived from the host cell. Viral glycoprotein studs protruding from the cell membrane make it look like a studded ball (Fig. 12.3). Gp120 and gp41 are the two HIV envelope proteins that cover the viral particle surface. Gp120 is the most external and distal part of each “stud,” whereas gp41 is the bridge that holds it onto the virion surface. It is thought that the interaction between gag and the long cytoplasmic tail of gp41 play an important role in viral envelope glycoprotein incorporation. The surface envelope also contains other cell-surface proteins derived from the host cell containing adhesion molecules. Although the viral particle (virion) is usually nearly spherical, great diversity is found in size and shape, such as comet-shaped virions.
HIV Binding and Infection At the time of exposure to the HIV virus, infection occurs when the virus moves across the epithelium or mucosal membrane of the body. Once inside the body, HIV particles are attracted to cells with receptors on their surface called CD4 cells. The HIV envelope protein gp120 specifically binds to the CD4 receptor in the mucosal or other tissue at or near the site of exposure. For example, during heterosexual
ETIOLOGY HIV Structure HIV is an RNA retrovirus that causes a defect in cell-mediated immunity that may progress to AIDS. The viral RNA must be converted to DNA before the viral genes can be expressed to make copies of the RNA virus. Like other retroviruses, HIV differs from DNA viruses in that the RNA genome cannot replicate without undergoing conversion into DNA.
HIV consists of a core or nucleocapsid containing two strands or chains of RNA, protein, and enzymes surrounded and protected by a spherical lipid bilayer viral envelope that is 0.0001 mm in diameter. Between the envelope and core is a protein layer called p17. The nucleocapsid or core is composed of a protein called p24. Within the nucleocapsid, the two strands of RNA compose the HIV genome (Fig. 12.2). The HIV genome consists of at least nine genes. The gag gene encodes the core antigen proteins that form the virus particle. The pol gene encodes reverse transcriptase proteins. The env gene encodes the viral envelope protein glycoprotein gp160, which is split into two frag- ments, gp120 and gp41, by cellular protease.
Several other genes have been identified, including tat, rev, nef, vif, vpr, and vpu. These genes are primarily regulatory genes. The tat gene encodes proteins that regulate HIV replication and can accelerate HIV viral protein production. It is controlled by tat-binding protein. The
gp41
100 nm
p17 matrix
gp120
p24 capsid
Lipid bilayer
Integrase
Protease
RNA
Reverse transcriptase
FIG 12.2 HIV particle showing the p24 capsid protein surrounding the two strands of viral RNA.
gp41 CD4 receptor
Cell membrane
CD4+ cell (macrophage or
helper T cell)
gp120
FIG 12.3 Schematic view of a retrovirus particle. The core is surrounded by an envelope that is derived from host membranes enriched with viral glycoproteins (gp120, gp41). Interaction of the envelope glycoproteins with a host-encoded cell surface receptor (CD4) is shown.
• Those at greatest risk of HIV infection include homosexual and bisexual men, IVDs who share needles or syringes, sexual partners of those in high-risk groups, and infants born to infected mothers.
• The use of safe sex practices (such as condoms) and safe parenteral practices (such as sterile needles/syringes) decreases the risk of infection.
• Exposure to blood and body fluids of infected individuals through skin, mucous membranes, and accidental needle sticks is the primary risk factor for health care workers. The universal use of standard precautions decreases the risk of infection.
• After significant accidental exposure to HIV-infected blood or body fluids, it is recommended that health care workers receive postexposure antiretroviral medication as soon as possible after exposure and as needed for 4 weeks after the incident.
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Usually T cells are infected before the onset of symptoms. CD4+ T cells are composed of two subsets: T helper-1 (TH1) and T helper-2 (TH2). The TH1 subset produces interferon-γ and interleukin-2 (IL-2). The TH2 subset produces IL-4, IL-6, and IL-10. Of these two subsets, the one that is markedly decreased in advanced disease is TH1.
However, CD4 alone is not sufficient for fusion of the virion and host cell. A number of important coreceptors on the target cells called chemokines are necessary for the virus to gain entry into cells. These important chemokine coreceptors must be present for the virion to fuse with the host cell. The chemokine called CCR5 must be present for the HIV particles to bind to the CD4+ cells, especially in early infection, and another chemokine receptor named CXCR4 is often present in later infection. Since 1996 when the coreceptors were first discovered, a number of other coreceptors have been identified, including APJ, CCR2b, CCR3, CCR8, CCR9, CX3CR1, CXCR4, GPR1, GPR15, STRL33, US28, and V28. The function of most of these coreceptors is unknown. It is hypothesized that some of the coreceptors may be needed for various strains of HIV, for HIV infection in infants and children, or for infection of the brain and nervous system.
The gp120 portion of the virion envelope must combine with the first receptor, CD4. This is done primarily through the V3 variable loop of gp120. It then changes shape by refolding. In the second shape, it combines with the second receptor, either CCR5 or CXCR4, to fuse with the cell. Once the HIV particle is bound to both the CD4 receptor and the chemokine receptor on the host cell, gp41 implants itself in the cell membrane (Fig. 12.5). This sequence of events causes the viral particle and the cell to fuse. The binding of the virion and host cell increases adenosine triphosphate release with activation of a variety of purinergic receptors, which increases intracellular free calcium and opens ion channels (Panx-1 hemichannels). This facilitates viral entry into the host cell. The core of the virus is then injected into the cytoplasm of the host cell, and infection is produced.
Once in the cytoplasm, a single-stranded DNA copy is made by reverse transcriptase from the viral RNA. Using the single-stranded DNA as a template, DNA polymerase copies it to make a second DNA strand and destroys the original RNA strands. The accuracy of DNA transcription is poor, with mutations occurring frequently. This tendency to mutate makes HIV resistant to antiviral medications.
Once formed, the new viral DNA, called viral provirus or preintegration complexes (PICs), migrates to the cell nucleus and is actively transported in the nuclear compartment. Inside the nucleus, integrase splices the viral DNA, or provirus, into the host cell’s DNA. Once in the host cell’s DNA, the viral DNA is replicated together with the host cell’s DNA during every cell division. Now the viral DNA is permanently part of the host cell’s DNA (Fig. 12.6).
transmission of HIV, the virus is attracted to CD4+ cells in the mucosal membranes, such as Langerhans cells, or dendritic cells, which capture the virus and transport it to CD4+ T cells or proximal lymphoid tissues.
HIV virus is initially attracted to the CD4+ cells that have the highest number of CCR5 coreceptors on their surfaces. The numbers of CD4 receptors on cell surfaces vary depending on the kind of CD4+ cells—for example, CD4+ T helper/inducer cells have large numbers of CD4 receptors while macrophages have lower levels of surface CD4. The CD4 receptor is found on many types of cells, including T cells; microglial cells; monocyte-macrophages; follicular dendritic cells; immortalized B cells; retinal cells; Langerhans cells in the skin; bone marrow stem cells; cervical cells; bone marrow–derived circulating dendritic cells; and enterochromaffin cells in the colon, duodenum, and rectum. Of these cells, the CD4+ T helper/inducer cells are most often implicated and involved in the process of infection. Fig. 12.4 illustrates a group of HIV-infected CD4+ cells imaged by scanning electron micrography.
The kind of CD4+ cells that are attracted to the virus change over time. When the virus primarily affects T cells with high levels of surface CD4, it is known as T tropic. When the virus is attracted to macrophages with lower levels of surface CD4, the virus is called M tropic. For example, M tropic viruses occur especially in the brain, infecting microglial cells and perivascular macrophages that migrate into the brain. When the virus affects both macrophages and CD4+ T cells, it is called dual tropic. Most often M tropic and dual tropic variants occur when the host is markedly immunodeficient late in the disease course.
FIG 12.4 Scanning electron micrograph (low magnification) of a population of HIV-infected lymphocytes. (Courtesy Centers for Disease Control and Prevention, Atlanta, Georgia.)
gp41
CD4
CCR5
gp120
FIG 12.5 Early HIV infection, M tropic. In HIV infection, the virus must bind both a CD4 receptor and a coreceptor to fuse with the host cell. In the M tropic phase, the key coreceptor is CCR5.
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The process of building new virus particles begins within the host cell’s DNA. Segments at the end of the viral genome instruct the host cell to make RNA copies of the viral DNA. Some of the genes direct the host cell to manufacture viral envelope proteins (gene name: env) and enzymes (gene name: pol), whereas other RNA strands become future genetic material (gene name: gag). The HIV DNA then hijacks cellular protein pathways to produce the proteins needed for replication of HIV. This complex interaction between the host cellular kinases and factors affects the HIV replication cycle.
To cause further infection, the viral RNA must be produced, leave the nucleus, and migrate to the cell surface. Rev proteins along with a human protein called CRM1 aid in the process of transporting the viral RNA proteins from the cell nucleus. A human RNA helicase enzyme, DDX3, helps to straighten HIV’s twisted strand of RNA before thread- ing it through a small pore in the nucleus. The viral RNAs are then exported from the cell nucleus to the cytoplasm, where viral proteins are synthesized—particularly gag/pol. Once gag/pol is synthesized in the cytoplasm, it is moved to the inner portion of the plasma membrane.
The assembly of new virus particles, called virions, occurs at the cell membrane. The HIV polyproteins direct viral RNA movement to the membrane, promote the incorporation of the viral envelope gly- coproteins, and are involved in the viral particle budding out from the membrane. The protein-cutting enzyme protease separates the envelope proteins from enzymes and RNA genetic material and binds the viral core (Fig. 12.7). Therefore the completed virion has a host cell membrane from which the envelope proteins gp120 and gp41 protrude like spikes.
When CD4+ cells decline, the diversity of CD4+ cells is affected. With antiretroviral therapy, the naive T cells that can respond to new infections persist in low numbers despite an increase in memory T cells. Therefore persons with HIV who are receiving antiretroviral therapy can respond better to previous compared with new infections. This phase is indicative of deterioration in immune system function despite temporary increases in CD4+ cell counts and decreased viral load from antiretroviral therapy.
Once infection occurs, the host’s adaptive and innate immune responses to HIV infection try to control disease progression but are incapable of eliminating the virus. These processes involve multiple and complex interactions between the HIV virus and host innate immune
HIV virion
HIV virion
Protease cleaves proteinFuses with cell
Injects viral RNA
Reverse transcriptase transforms into DNA
Provirus integrated into host cell’s DNA
CD4+
Migrates to nucleus
Messenger RNA
Viral proteins
Viral assembly and budding
HIV RNA
Cell nucleus
Activates cell
FIG 12.6 HIV life cycle. A schematic representation from the time of initial HIV fusion with a host cell to integration into the host cell’s DNA and ending with the replication of a new virion.
FIG 12.7 HIV-1/lymphadenopathy virus found in a hemophiliac patient with AIDS. Virus particles range in size from 90 to 120 nm. Viral budding and the production of new virions are facilitated by protease. (Courtesy Centers for Disease Control and Prevention, Atlanta, Georgia.)
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by high viral load, the duration of infection, and increased viral diversity. Levels of salivary immunoglobulin A (IgA) in HIV-infected children were found to be significantly low before treatment in a recent study. The responsiveness to bacterial cell wall (polysaccharide) antigens that require CD4+ cell activation of B cells is decreased. Immune complexes are increased. Autoantibodies, especially against erythrocytes, platelets, lymphocytes, neutrophils, nuclear proteins, myelin, and spermatozoa, occur either in association with disease processes (e.g., HIV-associated thrombocytopenia) or spontaneously. HIV antibodies are produced, but they are ineffective against the disease.
The envelope glycoproteins (gp120 and gp41) on the surface of HIV virions are the reason for successful HIV infection. HIV env (gp120 and gp41) is one of the most heavily glycosylated proteins known. The immunogenic portions of the viral envelope glycoproteins are well disguised and variable because of the protection afforded by the gly- cosylation. Within the human body, high-carbohydrate substances look like “self” to the immune system. Therefore the virus “hides” under the cover of the glycosylation. Another factor that allows HIV envelope proteins to escape the early antibodies is the way that gp120 and gp41 are bound together. Although the interface between gp120 and gp41 is an area that is highly immunogenic, the gp120 and gp41 molecules are noncovalently bonded together. Early antibodies cannot bind the assembled, functional envelope glycoprotein complex. Later, neutralizing antibodies are effective against the complex, but by that time the infection is well established.
Viral Production and Cell Death A key element in the success of HIV infection is that HIV replicates prolifically from the onset. It generates so many virions that it overwhelms the body’s defenses. Because HIV is primarily a mucosal disease, the gastrointestinal (GI) tract is the major site of HIV replication. Within the first 3 to 6 weeks and continuing throughout the infection, HIV replication is high in the lamina propria of CD4+ T cells of the GI tract. HIV infection is characterized by a high level of virion turnover (HIV replication) and a high level of CD4+ cell turnover (host cell death). HIV-infected CD4+ cells undergo viral budding to generate and produce new virions (Fig. 12.8). At least 10 billion HIV particles are produced and destroyed each day, with a plasma virus half-life of 6 hours and an acutely infected T-cell half-life of 1.1 days. Total T-cell numbers in acute HIV infection decline sharply, but with continuing infection blood T-cell numbers rebound slightly as a result of antiviral immune responses,
system factors, leading to persistent inflammation and chronic immune system activation. HIV virus takes advantage of host metabolic pathways and proteins, allowing the virus to thrive and persist in the host.
Host recognition of HIV virus causes antigen-presenting cells and dendritic cells to initiate host activation of CD4+ T cells and NK cells in the lymph nodes. Proinflammatory cytokines are activated and produced along with induction of T helper-1 cells. HIV-1 viral infection, especially during the M tropic phase, has been shown to increase IL-1β levels, which leads to increased inflammation, immune dysregulation, and CD4+ T-cell depletion. TNF-α is also produced, impairing the tight epithelial junctional barrier, which allows migration of HIV and bacteria to move or translocate across mucosal surfaces. All of these events cause a pathogenic cascade in which the death of CD4+ T cells releases inflam- matory signals that attract more CD4+ T cells, which subsequently die. This ultimately creates a state of chronic inflammation.
KEY POINTS • HIV is an RNA virus known as a retrovirus. It must undergo reverse transcrip-
tion within infected cells to form viral DNA. • HIV consists of a nucleocapsid containing two strands of RNA, protein, and
enzymes surrounded by a spherical lipid bilayer viral envelope. At least nine genes comprise the HIV genome.
• The HIV genome contains all the information regulating the virus’s structural format and growth, including the conversion of RNA to DNA.
• The enzymes needed to convert HIV RNA to DNA include reverse transcriptase, integrase, and protease.
• HIV gains access to CD4+ cells by attaching to the CD4 receptor on the cell surface. Viral envelope protein gp120 and coreceptor chemokines such as CCR5 and CXCR4 mediate attachment.
FIG 12.8 Scanning electron micrograph of HIV-1–infected CD4+ lym- phocytes showing virus budding from the plasma membrane of the lymphocytes. (Courtesy Centers for Disease Control and Prevention, Atlanta, Georgia.)
PATHOGENESIS Effect of HIV on Immune Cells at the Cellular Level The hallmark of HIV infection is the decrease in the number of CD4+ T helper/inducer lymphocytes. T helper/inducer cells are necessary for appropriate immune responsiveness because they are the cells that mediate between the antigen-presenting cells, other immune cells such as B cells, and other T cells. During acute and chronic untreated HIV infection, the immune system is in a hyperactive state with high T-cell death, nonspecific T-cell activation, polyclonal activation of B cells, and elevated levels of proinflammatory cytokines. Normally CD4+ T helper lymphocytes in lymphoid tissues activate and help B cells to develop appropriate humoral immune responses to immune system threats. However, in HIV infection, chronic immune activation causes impairment of the CD4+ T helper cells to adequately activate and help B cells.
Macrophages have CD4+ receptors and act as both targets and reservoirs for HIV. As the infection progresses, they become more functionally impaired with defective phagocytosis and chemotaxis, abnormal antigen presentation, and abnormal cytokine production. They also contribute to the T-cell decline by increasing CD4+ cell death.
Humoral immune system dysfunction is also present, although the effect of HIV on antibody-producing B cells is more poorly understood. B-cell differentiation and response to antigens are decreased, progressively suboptimal, and dysfunctional. The B-cell subset—CD21-/low B cells—has a decreased ability to proliferate in response to HIV viremia, which is referred to as an exhausted cell population. Recent findings indicate that normal production of antibodies does not develop early in HIV-1 infection. B-cell production of nonessential antibodies, as well as failure to respond appropriately to normal immune system signals, are affected
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expressed viral proteins and can cause nef-induced apoptosis, facilitating the depletion of CD4+ T cells. Tat protein can disrupt mitochondrial function and trigger extrinsic and intrinsic apoptosis pathways. Vpr either directly or indirectly causes induction of apoptosis because it causes cell cycle arrest and/or the intrinsic pathway.
Another process of cell death occurs when multiple uninfected cells become fused together with infected cells by the virus. This mass of cells, called a syncytium, can lead to a large number of cell deaths from a single event. During the T tropic phase, there is a greater tendency to produce syncytia, causing even faster depletion of T cells. Myeloid- derived dendritic cells aid in the formation of syncytia when they patrol the body, engulfing the virus and presenting the virus to T cells. During this presentation, virus, receptors, and coreceptors are in close proximity, facilitating infection as well as the development of a syncytium.
Cell death can occur when the immune system makes antibodies to the viral envelope protein. When gp120 is shed, it can bind to uninfected CD4 receptors. The immune system then attacks the uninfected but antibody-coated cells via the complement system (antibody-dependent cellular cytotoxicity) or cytotoxic T cells. Cell death can also be secondary to a type III hypersensitivity reaction. As discussed earlier, gp120 and gp41 hide from the immune system because of the large amount of carbohydrate on the surface of gp120 and gp 41. The binding and glycosylation of gp120 and gp41 cause them to
whereas GI T cell numbers remain low. In children infected with HIV, the virus is more aggressive and leads more rapidly to immune system dysfunction.
The production of new virus is variable between individuals and dependent on the host’s cellular activity, as well as the interaction between HIV regulatory genes (tat, nef, rev, vif ). In some cells, such as T cells, HIV can lie dormant until activated. In other cells, such as macrophages and monocytes, RNA copies of HIV are consistently being made and released, initially without destruction of the host cell. Other host cellular factors that influence viral production of HIV include inhibition by other proteins and low concentrations of initiation factors.
Other proteins in the body can repress or inhibit HIV-1 if present in the cell. One of these is the delta 32 mutation in the CCR5 gene (CCR5-delta32), which involves the chemokine coreceptor needed for HIV to infect cells. Other genetic variants that can affect susceptibility to HIV infection and progression include CCR5 promoter A/G, CC- chemokine receptor 2 mutation 64 isoleucine (CCR2-64l) and stromal cell-derived factor 3′A mutation (SDF1-3′A). The prevalence of these mutations varies in different regions and populations.
Other inflammatory proteins from macrophages decrease the prob- ability of becoming infected with HIV-1 and promote recovery of the CD4 cells after starting therapy, including macrophage inflammatory protein-1α (MIP-1α/CCL3) and macrophage inflammatory protein-1β (MIP-1β/CCL4). HLA-B57 and HLA-B27, part of the major histocompat- ibility complex alleles, have been found to target several gag epitopes, inducing cytolytic destruction of infected cells. NK cells and macrophages secrete soluble factors that can inhibit HIV infection, including TNF-α, interferon, and chemokines CCL3, CCL4, and CCL5. The chemokines tend to compete with the virus for cell adhesion because of their attraction to CCR5. Interferon type 1 also inhibits HIV cell adhesion and induces apoptosis of HIV-1–infected CD4+ T cells. These factors have been associated with lower viral loads and improved survival.
Long-term survivors with HIV often have a lower viral load and strong CD8+ killer T-cell activity. The CD8+ killer T-cell activity suppresses viral replication and thus slows progression of the disease, especially in the early stages. It is also thought that a strong immunologic defense preserves the manufacture of CD4+ T cells that especially recognize and react to HIV. If this ability is lost, these cells may not regenerate, even with treatment. The presence of a weaker strain of HIV, particularly during the M tropic phase, may also lead to longer survival.
Once viral production starts or restarts in activated cells, death of the infected cells may occur by a variety of mechanisms. Cells may die of the accumulation of intracellular viral DNA or from the loss of normal cellular protein synthesis because of the infection. Some cell death may occur due to the action of cytotoxic T cells. Most methods of host cell death involve the envelope protein gp120 or immune processes. Cross-linking of CD4 and gp120 can trigger automatic preprogrammed T-cell death (apoptosis). Apoptosis is the major mecha- nism of CD4 T-cell depletion. B cells also have an increased risk of cell death through apoptosis.
CD4 and gp120 cross-linking can also cause the cell to stop dividing and decreases the cell’s ability to fight new infections—a condition called anergy. Profuse viral production with multiple CD4 receptors in close proximity can rip holes in the cell membrane and cause host cell death (Fig. 12.9). Multiple virion buds with gp120 on their surfaces attach to the surrounding host cell membrane CD4 receptors. This attachment causes tearing of the host cell membrane with subsequent cellular edema and death.
Viral proteins, such as nef (negative regulatory factor), vpr (viral protein R), tat (transactivator of transcription), gag, or protease, also contribute to the causes of cell death in HIV. Exosomes containing nef protein released into the blood are one of the earliest and most abundant
FIG 12.9 High magnification of a CD4+ lymphocyte infected with HIV-1. Note the large number of budding HIV virions, which can lead to host cell death by membrane tearing or syncytium formation. (Courtesy Centers for Disease Control and Prevention, Atlanta, Georgia.)
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have characteristics similar to those of major histocompatibility class (MHC) antigens. In this case immune system cells may fail to recognize the difference between gp120 and “self MHC markers,” causing them to attack normal cells as “nonself.” This phenomenon causes immune cells to attack and destroy large numbers of T cells. Cells also may be affected by T-cell–mediated cytotoxicity or by cytokines and inflammation resulting from infection.
Progression of HIV Infection From Seroconversion to AIDS HIV disease infection progresses over time to AIDS with many manifesta- tions. AIDS is a syndrome, not a disease, which means that the virus can express itself in many ways. No one symptom typifies either HIV infection or AIDS. However, groups of signs and symptoms are useful in staging progress of the infection. HIV is characterized by two major phases: acute and chronic.
Once the HIV virion enters the body, it rapidly replicates (Fig. 12.10). This is the acute stage of infection. HIV is present in the blood and cerebrospinal fluid but is not detected by usual laboratory tests because no antibodies have formed yet. Usually no symptoms are present. It is a time of rapid virus replication with widespread attack of CD4+ T cells in mucosal membranes, especially in the GI system. The person is infectious but does not know it. This stage lasts approximately 3 weeks.
Seroconversion occurs when sufficient antibodies are detected in the blood, usually between 3 weeks and 6 months after exposure (range: 3 weeks to 14 months). At the time of seroconversion, the person experiences signs and symptoms of acute retroviral syndrome or primary HIV infection. Up to 80% of people newly infected with HIV have flulike symptoms that can mimic other viral illnesses. At this time, the symptoms of primary HIV infection include flulike or mononucleosis-like symptoms, such as fever, chills, headaches, nausea, vomiting, fatigue, weakness, arthralgias, sore throat, stiff neck, photophobia, irritability, and rash. The rash is not the same in everyone and may be maculopapular, vesicular, or urticarial. Encephalopathy may even develop. The CD4+ T-cell count is greater than 400 cells/µL. The number of white blood cells, including lymphocytes, is decreased except for an increased number of CD8+ T cells. The number of platelets is also decreased. The person has an elevated erythrocyte sedimentation rate. During this period, the HIV count in the blood and genital fluids is high and the individual is very infectious. Then, after 1 to 4 weeks, the symptoms disappear. However, HIV is still present, and the person continues to be infectious throughout the rest of the course of the infection.
After this period of seroconversion, the patient experiences the clinical latency period, which may last for longer than 10 years (range: 3 to 12 years). During this period, seeded HIV replicates in the lymph nodes and gradually destroys lymph tissue over time. Antiviral immune activity is ongoing. Production of virus is maintained or stabilized at a set level. The person feels well but may experience chronic lymphadenopathy (enlargement of lymph nodes for more than 3 months) or mild general symptoms, including lack of energy, weight loss, frequent fevers, and sweats. The CD4+ T-cell count is greater than 400 cells/µL. Stabilization of the serum level of virus at a certain point is attributable to the antiviral response, the number of CD4+ cells, and the virulence of the HIV strain. During this period of asymptomatic or mild infection, large numbers of virions are produced, destroying the body’s immune system. Up to 2 million viral particles can be produced daily. The lymphade- nopathy is caused by a vigorous immune response against HIV infection. The key point is that although the infection is clinically asymptomatic or mildly symptomatic, the virus is active, not latent.
Immediately after the latency period of infection, a period of rapid virus production occurs for up to 18 months. It is hypothesized that the destroyed lymph nodes are no longer capable of removing or holding
CD4+ T cell Dendritic cell
Virus transported to lymph nodes
Death of mucosal memory
CD4+ T cells
Infection of mucosal tissues
Infection established in
lymphoid tissues, e.g., lymph node
Spread of infection
throughout the body
Immune response
Clinical latency
AIDS
Viremia
HIV-specific CTLs
Anti-HIV antibodies
Partial control of viral replication
Establishment of chronic infection; virus concentrated
in lymphoid tissues; low-level virus production
Increased viral replication
Destruction of lymphoid tissue; depletion of
CD4+ T cells
Other microbial infections; cytokines
FIG 12.10 Progression of HIV infection. The clinical stages of HIV disease correlate with a progressive spread of HIV from the initial site of infection to lymphoid tissues throughout the body. The immune response of the host temporarily controls acute infection, but does not prevent the establishment of chronic infection of cells in the lymphoid tissues. Cytokine stimuli induced by other microbes serve to enhance HIV produc- tion and progression to AIDS. CTLs, Cytotoxic T lymphocytes. (From Abbas AK et al: Cellular and molecular immunology, ed 8, Philadelphia, 2015, Saunders, p 465.)
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CDC HIV Classification System The CDC HIV classification system is a simple matrix classification system for adults and children and is the preferred method of staging. In April 2014, the CDC revised the surveillance case definition for HIV infection in the United States (Table 12.3). This case definition is designed for monitoring HIV infection and population epidemiology. The CDC has defined five stages of HIV infection based on age at the time of the CD4+ T-cell testing. Stage 0 represents acute, early HIV infection based on a negative HIV test within 6 months of the first positive HIV diagnosis. This is recognition of the presence of infection before an antibody response due to more sensitive testing. In children 6 years through adult, Stage 1 occurs when the CD4+ T-cell count is greater than or equal to 500/µL; in Stage 2, the CD4+ T-cell counts range from 200 to 499/µL; and in Stage 3, the CD4+ T-cell count is less than 200/µL. If a Stage 3–defining opportunistic illness has been diagnosed at any time, the stage is defined as Stage 3. A list of AIDS indicator conditions that are listed in the AIDS surveillance case definition is shown in Box 12.1. The CDC considers all HIV infections in the United States to be type 1 (HIV-1) unless laboratory test results are sufficient to classify the HIV infection as type 2 (HIV-2).
DIAGNOSTIC TESTING The CDC and U.S. Preventive Task Force have recommended HIV testing as part of routine care for all adolescents and adults. Testing is also recommended for all pregnant women, as well as for those at high risk for HIV infection. The Food and Drug Administration (FDA) has approved various methods to test for HIV infection. Rapid HIV assays that use blood, serum, or oral secretions can be used. These antibody test results can be obtained in 20 to 30 minutes. However, positive results must be confirmed by further laboratory testing. It is also important to remember that false-negative tests can occur during the initial period of HIV infection before seroconversion, although new fourth-generation assay tests are able to detect seroconversion more rapidly.
To diagnose HIV infection, serum or plasma specimens are tested in approved laboratories using an HIV-1/2 antigen/antibody combination immunoassay. If the first test is positive, an antibody differentiation immunoassay is performed. Usually the enzyme-linked immunosorbent assay (ELISA) and the Western blot are used to detect the presence of HIV antibodies.
The ELISA test result is positive for HIV antibodies if the blood or oral mucosal transudate of an infected person reacts with the surface antigen of a killed HIV virus. The ELISA test uses purified viral proteins placed on plastic beads or in multiwell trays. When the test serum or
virus, thus allowing viral escape into the bloodstream (viremia). During this time, a persistent and continuous drop in the CD4+ T-cell count to less than 400/µL is taking place. The antiviral innate immune activity is less effective as the viral load (level of virus in the blood) increases. Also during this time, HIV can persist for years in pools of resting memory CD4+ T cells. This pool of CD4+ T cells carries only provirus DNA and lacks HIV surface antigens, so they are not detected or destroyed by the immune system.
As the viral loads increase and the immune system declines, the patient enters the stage of symptomatic, chronic HIV infection. At this time, the patient progresses from partially responding to skin testing (partial anergy) to complete anergy with no response to skin testing. Severe viral or fungal infections of the skin and mucous membranes develop. Oral and genital herpes simplex infections, including shingles or candidiasis (yeast) infections, usually develop, as well as oral hairy leukoplakia. The patient also may have persistent skin rashes or flaky skin, short-term memory loss, or pelvic inflammatory disease that does not respond to treatment. Children tend to have growth delays and frequent illnesses. The person may develop cytomegalovirus (CMV) infection, Epstein–Barr virus infection, or both, as well as other oppor- tunistic infections.
An HIV-infected person is not diagnosed with AIDS until the CD4+ T-cell count is less than 200/µL. At that time, the person typically has one or more opportunistic infections, including PCP, Toxoplasma gondii–associated neural toxoplasmosis, cryptosporidiosis (gastroen- teritis), and Mycobacterium tuberculosis. The person usually has one or more tumors or cancers, including Kaposi sarcoma (a connective tissue skin cancer), lymphomas, or cancer of the rectum or tongue. General symptoms of opportunistic infections include coughing or shortness of breath; difficult or painful swallowing (dysphagia); cognitive symptoms such as confusion, forgetfulness, or lack of coordination; seizures; fever; vision loss; severe headaches; and GI symptoms such as abdominal cramps, nausea and vomiting, severe and persistent diarrhea, and weight loss, causing extreme fatigue.
Disease progression in infants and children is determined by the timing of the child’s infection, the viral load, the child’s immune response, and the viral virulence. In general, children with HIV progress more rapidly than adults. Most children fall into two distinct groups: rapid disease progression or slower disease progression. In those with rapidly progressing disease, symptoms develop within the first 6 months of life, sustained decreases in CD4+ T-cell counts are noted, and AIDS develops within the first 2 years of life. Early aggressive treatment in perinatally infected infants may slow disease progression and prolong immune function. Children with AIDS generally manifest the same opportunistic infections as adults and may have severe forms of common childhood diseases, such as conjunctivitis, otitis media, and tonsillitis.
TABLE 12.3 CDC Revised Surveillance Case Definition for HIV Infection – United States, 2014
Stage*
AGE ON DATE OF CD4 T-LYMPHOCYTE TEST
<1 Year 1–5 Years 6 Years Through Adult Cells/µL % Cells/µL % Cells/µL %
1 ≥1,500 ≥34 ≥1,000 ≥30 ≥500 ≥26 2 750–1,499 26–33 500–999 22–29 200–499 14–25 3 <750 <26 <500 <22 <200 <14
*The stage is based primarily on the CD4+ T-lymphocyte count; the CD4+ T-lymphocyte count takes precedence over the CD4 T-lymphocyte percentage, and the percentage is considered only if the count is missing. From Selik RM et al: Revised Surveillance Case Definition for HIV Infection—United States, 2014. Recommendations and Reports MMWR, April 11, 2014, 63(RR03);1-10. https://www.cdc.gov/mmwr/preview/mmwrhtml/rr6303a1.htm.
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appropriate drug treatments. One of the most important laboratory tests is the CD4+ count, which is the specific indicator of disease progres- sion of HIV to AIDS. As the CD4+ T-cell count declines, the risk of progression to AIDS and development of opportunistic infections and malignancies increases. Highly virulent communicable diseases can still occur when the CD4+ count is high. However, when the CD4+ T-cell count drops below 200 cells/µL, the number and severity of low-virulence diseases and opportunistic infections increase. It is at this level that many patients begin taking prophylactic medications to prevent opportunistic and other infections. Also used is the CD4+ lymphocyte percentage, which is more stable and has less variation over time. When the CD4+ lymphocyte percentage is less than 14%, the risk of developing AIDS-defining illnesses is higher.
Another useful test is the plasma HIV nucleic acid test, which either looks for viral RNA directly or viral load. This test indicates the amount of viral replication and helps predict disease progression. The level of HIV RNA in plasma is the strongest predictor of outcome over time. When the plasma HIV RNA content is low, the risk of disease progression declines. The plasma viral load helps the clinician assess the effectiveness of various therapies and is the basis for initiating more aggressive therapies to decrease the viral load. Usually, HIV RNA levels should drop after the onset of therapy and by 6 months should be undetectable in the plasma. The viral load assay counts copies of HIV RNA in 1 mL of plasma and is either a reverse transcriptase polymerase chain reaction or a branched DNA assay. Because each virion contains two strands of RNA, the actual virion level is half the HIV RNA counted. Tests are currently sensitive to 50 copies per milliliter.
Genotypic resistance testing is now part of routine management of HIV infection and is usually part of the initial evaluation of HIV. Genotypic testing identifies viral mutations, whereas phenotypic testing identifies the concentration of antiretroviral drug needed to inhibit viral replication in culture medium. Ideally this testing can help determine the best drugs to be given to the patient. Genotypic resistance tests specifically examine protease and reverse transcriptase and are now used even when the viral loads are less than 1000 copies/mL. Testing for HLA-B*-5701 is a baseline test performed before starting the medica- tion abacavir, which can cause fatal hypersensitivity reaction in those who are HLA-B*-5701 positive. These tests are expensive, which can limit their use in some populations.
Another common test is an anergy test or a delayed hypersensitivity (type IV) test for such organisms as M. tuberculosis or mumps or measles virus. In early HIV infection, these skin test results are normal. However, in advanced cases, the patient will have no response to testing because of the loss of macrophage and CD4+ T-cell functioning.
Other tests include β2-microglobulin and p24 antigen. β2- Microglobulin is a cell-surface protein that indicates macrophage stimulation. Levels greater than 3.5 mg/L are associated with rapid progression of the disease. P24 antigen is indicative of active HIV replication and confirms the diagnosis of HIV infection. It is positive before seroconversion and may be used before confirmation of the disease by ELISA. It is also elevated in later stages of the disease, a period when antibody testing may be unreliable. It is usually part of the antigen–antibody tests for HIV.
Other laboratory and diagnostic tests can assist in the identification, monitoring, and treatment of persons infected with HIV, including a complete blood cell count (CBC), a chemistry panel or screen, and chest radiograph. These tests are routinely used to detect infections and changes in a patient’s physiologic status (Box 12.2). The CBC detects the development of anemia (as a result of infection, chronic illness, or secondary to therapy), neutropenia, and thrombocytopenia, which may occur in advanced stages of the disease. In patients with chronic diarrhea, stool testing is usually indicated, including fecal lactoferrin, fecal
oral mucosal transudate from a patient is contacted by the purified viral proteins, an antigen–antibody reaction occurs. Anti–human antibody added to the reaction can be detected colorimetrically and indicates whether any antigen–antibody compounds have formed. This test is highly sensitive (more than 99%) and specific (more than 99%) in high-risk populations. For the test to be specific, however, it must be performed with both HIV-1 and HIV-2 viral antigens.
When the ELISA test result is positive, a second test, the Western blot, is used to confirm the presence of HIV antibodies. The Western blot test uses an expensive process called electrophoresis, so usually it is used only as a confirmatory test. This test identifies specific antibodies against the HIV protein antigens. The specificity of this test in combination with the ELISA is greater than 99.9%. The problem with this additional testing is that the patient must wait up to 1 to 2 weeks for confirmation.
Testing neonates for HIV is difficult because of maternal transmission of IgG antibodies against HIV. These passive maternal antibodies cross the placenta and can last as long as 15 months. Therefore the best method to determine whether a neonate has HIV is to culture the virus from blood and peripheral tissue.
MONITORING THE PROGRESSION OF HIV After initial diagnosis of HIV, other laboratory tests need to be performed to stage the disease and assist in the selection and monitoring of
From Appendix B of the 1993 Revised Classification System for HIV Infection and Expanded Surveillance Case Definition for AIDS Among Adolescents and Adults, MMWR 41(RR-17).
• Candidiasis of bronchi, trachea, or lungs • Candidiasis, esophageal • Cervical cancer, invasive* • Coccidioidomycosis, disseminated or extrapulmonary • Cryptococcosis, extrapulmonary • Cryptosporidiosis, chronic intestinal (greater than 1 month’s duration) • Cytomegalovirus disease (other than liver, spleen, or nodes) • Cytomegalovirus retinitis (with loss of vision) • Encephalopathy, HIV-related • Herpes simplex: chronic ulcer(s) (greater than 1 month’s duration); or bronchitis,
pneumonitis, or esophagitis • Histoplasmosis, disseminated or extrapulmonary • Isosporiasis, chronic intestinal (greater than 1 month’s duration) • Kaposi sarcoma • Lymphoma, Burkitt (or equivalent term) • Lymphoma, immunoblastic (or equivalent term) • Lymphoma, primary, of brain • Mycobacterium avium complex or M. kansasii, disseminated or extrapulmonary • Mycobacterium tuberculosis, any site (pulmonary* or extrapulmonary) • Mycobacterium, other species or unidentified species, disseminated or
extrapulmonary • Pneumocystis carinii (jirovecii) pneumonia • Pneumonia, recurrent* • Progressive multifocal leukoencephalopathy • Salmonella septicemia, recurrent • Toxoplasmosis of brain • Wasting syndrome attributable to HIV
BOX 12.1 Conditions Indicative of AIDS in HIV-Infected Persons
*Added in the 1993 expansion of the AIDS surveillance case definition.
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Data from U.S. Department of Health and Human Services, Health Resources and Services Administration: Guide for HIV/AIDS clinical care – 2014 edition. Rockville, MD, 2014.
HIV Antibody Confirm diagnosis at entry to care
Complete Blood Cell Count With Differential and Platelets At entry into care and every 3 to 6 months White blood cell count normal to decreased Lymphopenia (<30% of normal number of WBCs) Thrombocytopenia (decreased platelet count)
CD4+ Count/Percentage At entry into care and every 3 to 6 months Reduced CD4+/CD8+ T-cell ratio CD4+ (helper) lymphocytes decreased CD8+ lymphocytes increased
Quantitative Plasma HIV RNA (HIV Viral Load) Perform at entry into care, at initiation of HAART, and every 4 to 8 weeks until viral load suppressed, then every 3 to 6 months Used to monitor effect of HAART
Resistance Testing At entry into care and before initiation of or any modification in HAART Determines viral resistance to HAART
Quantitative Immunoglobulin As needed depending on immune function IgG increased IgA frequently increased
Chemistry Panel At entry into care and every 3 to 6 months Lactate dehydrogenase increased (all fractions) Serum albumin decreased Total protein increased AST and ALT elevated Total bilirubin elevated Serum glucose elevated GFR decreased
Lipid Panel At entry into care and, if abnormal, every 6 to 12 months Total cholesterol increased Triglycerides increased LDL cholesterol increased
Anergy Panel As needed Nonreactive (anergic) or poorly reactive to infectious agents or environmental
materials (e.g., pokeweed, phytohemagglutinin mitogens and antigens, mumps, Candida)
Urinalysis With Urine Protein and Creatinine At entry into care and every 6 to 12 months or as needed To detect urinary tract infections, hematuria or dysfunction Albuminuria or proteinuria elevated
Hepatitis A, B, and C Serology At entry into care and as needed To detect the presence of hepatitis antigens/antibodies
Blood Cultures As needed To detect septicemia
Tuberculosis (TB) Screening At entry into care, every 12 months and as needed
Chest Radiograph At entry into care and as needed To detect latent or active diseases such as Pneumocystis jiroveci (carinii) infection
or tuberculosis
HLA-B5701 Testing If considering use of abacavir
Tropism Testing If considering use of CCR5 antagonist
Papanicolaou Test At entry into care, annually or as indicated by condition To detect dysplasia or abnormal cell changes
Pregnancy Testing If female at entry into care and as needed To detect early pregnancy
Serum VDRL At entry into care and as needed depending on risk factors
Gonorrhea, Chlamydia and Trichomoniasis Testing At entry into care, every 12 months or depending on risk factors
Renal or Abdominal Ultrasound To detect hepatosplenomegaly To detect renal disease
Dilated Retinal Examination At entry into care, every 12 months and as needed To detect CMV, HIV retinopathy or other changes
Cytomegalovirus (CMV) Antibody At entry into care and as needed To be aware of disease risk in advanced disease or to avoid exposure
BOX 12.2 Tests Used to Evaluate Diagnosis and Progression of HIV Infection
ALT, Alanine aminotransferase; AST, aspartate aminotransferase; HAART, highly active antiretroviral therapy.
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One of the most significant systemic symptoms is malnutrition, or wasting syndrome. In Africa, HIV is known as “slim disease” because of the wasting. Malnutrition is defined as unintended, involuntary loss of greater than 10% body weight. The systemic symptoms attributable to HIV infection–related malnutrition include major muscle wasting; weight loss; and loss of protein, vitamins, minerals, and other nutrients. HIV malnutrition is multifactoral, including an elevated metabolic rate with increased resting energy expenditure (REE), chronic inflammation, malabsorption, anorexia, decreased intake of food, and the effect of multiple opportunistic insults. There is a 10% to 30% increase in resting metabolic rate attributable to secondary infections or elevated plasma viral load.
In addition, levels of TNF, IL-1, IL-6, and other proinflammatory cytokines are elevated in HIV infection, causing anorexia as well as
leukocytes, fecal calprotectin, ova and parasites, bacterial culture and sensitivity, and fecal occult blood. In addition to the aforementioned tests, it is important to measure serologic values for hepatitis A, B, and C viruses, as well as to obtain screening tests for sexually transmitted infections in light of the risk of coinfection. To screen for kidney dysfunc- tion, urinalysis, glomerular filtration rate (GFR), and quantitation of albuminuria also need to be performed when diagnosed and periodically thereafter.
KEY POINTS • HIV virions are attracted to cells with CD4 receptors such as T cells; microglial
cells; monocyte-macrophages; follicular dendritic cells; immortalized B cells; retinal cells; Langerhans cells in the skin; bone marrow stem cells; cervical cells; bone marrow–derived circulating dendritic cells; and enterochromaffin cells in the colon, duodenum, and rectum.
• The hallmark of AIDS is a decrease in the number of CD4+ cells, including T helper lymphocytes and macrophages, especially in mucosal membranes. B-cell responsiveness is decreased because of dependence on T helper cell cytokines.
• The key element in HIV infection is the high level of virion production and the high level of CD4+ cell death.
• CD4+ cell death occurs via several mechanisms. Cross-linking of CD4 receptors by viruses may result in T-cell death, apoptosis, or anergy. Virions may cause the linkage of infected and uninfected cells, followed by cell fusion and death. B cells may form antibodies against infected T cells. Viral budding may cause excessive loss of cell membranes.
• Laboratory testing for HIV is accomplished by using either the ELISA or the Western blot test. Usually the ELISA test is performed first. If it is positive, the Western blot test is performed to confirm the presence of specific antibodies against HIV protein antigens.
• HIV is an infectious disease that progresses to AIDS and is characterized by different clinical manifestations at each stage. Individuals move through the stages at different rates.
• Flulike symptoms and the formation of anti-HIV antibodies (seroconversion) characterize the early stage of viral seeding. Next, symptoms of early immune dysfunction are present, including lymphadenopathy, fever, and night sweats. A surge in viral production and a drop in the CD4+ lymphocyte count follow this stage.
• In the later stages, CD4+ counts continue to fall and the person is subject to a number of opportunistic infections and tumor formation. An HIV-positive individual is diagnosed with AIDS when the CD4+ T-cell count is less than 200/µL or when a category C AIDS indicator condition is present.
• Children often have rapidly progressive disease, with onset of AIDS between ages 4 and 8 years.
Viruses Herpes Simplex Virus 1 and 2 (HSV-1 and HSV-2) Human Herpes Virus III (Varicella zoster or herpes zoster) Human Herpes 8 (HHV-8 or Kaposi sarcoma–associated herpesvirus [KSHV]) Cytomegalovirus Polyomavirus – JC virus or John Cunningham virus Epstein–Barr virus Human papillomavirus (HPV) Hepatitis A (HAV) Hepatitis B (HBV) Hepatitis C (HCV) Adenovirus Morbillivirus (Measles RNA virus)
Bacteria Campylobacter spp. Escherichia coli spp. Shigella spp. Neisseria spp. Salmonella spp. Chlamydia spp. Staphylococcus spp. Haemophilus influenzae spp. Legionella spp. Treponema pallidum spp. Mycobacterium avium (MAC) or kansasii spp. Bordetella pertussis spp. Clostridium botulinum spp.
Fungi Candida albicans Cryptococcus neoformans Histoplasma capsulatum Coccidioides immitis Nocardia
Protozoa Pneumocystis jiroveci (carinii) Toxoplasma gondii Isospora belli Cryptosporidium Giardia lamblia Entamoeba histolytica
BOX 12.3 Common Agents of Infection in Patients With AIDS
CLINICAL MANIFESTATIONS HIV affects all body systems, particularly the integumentary, pulmonary, GI, neurologic, and ocular systems. GI manifestations develop in nearly all persons with HIV because of the major effect of HIV infection on the GI system. Pulmonary and cutaneous symptoms develop in approximately 50% to 75% of all persons with HIV, and neurologic symptoms develop in 50% to 60%. Box 12.3 outlines the common agents of infection in patients with AIDS.
Systemic Manifestations The course of HIV infection parallels the functioning of the immune system. As immune function declines, the number of opportunistic infections and malignancies increases and the normal functioning of organ systems declines.
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are often useful in controlling symptoms. In patients who are profoundly immunocompromised, intravenous therapy with an electrolyte replace- ment may be needed.
Whenever chronic diarrhea or other GI symptoms develop in a patient with HIV, it is important to determine the cause: infectious or noninfectious. Infectious causes of GI symptoms can be the result of multiple opportunistic infectious agents. Most patients are less likely to have infectious causes of chronic diarrhea due to improved therapy. For those patients who have infectious diarrhea, some of the most significant infectious agents are viruses such as CMV and herpes simplex; fungi such as Candida; bacteria such as Salmonella, Shigella, Clostridium difficile, Chlamydia trachomatis, E coli, and Campylobacter; and parasites such as Giardia, Isospora, Entamoeba histolytica, and Cryptosporidium. Treatment involves the use of disease-appropriate antimicrobials, depending on the offending organism.
A common cause of diarrhea is the protozoa Cryptosporidium parvum, which infects the intestinal epithelial lining. This organism is transmitted via water, food, animals, and other humans. The onset is generally acute and associated with explosive diarrhea within 4 to 14 days after infection. In nonimmunocompromised persons, the symptoms last up to 2 weeks, but in immunocompromised persons, the diarrhea and symptoms can persist indefinitely. Cryptosporidiosis causes nausea; vomiting; severe, watery, nonbloody diarrhea (more than 15 to 20 L); abdominal pain; cramping; electrolyte disturbances; and dehydration.
Diagnosis is made by stool examination for ova and parasites and by bacterial culture and sensitivity. Antibiotic treatment is not always effective, but antimicrobials such as the macrolides have been used. In the acute phase, some patients must be given intravenous hydration for support. Thereafter, increased oral intake along with low-residue, high-protein, high-calorie diets and loperamide (Imodium) 2 mg tablets, up to 16 to 18 tablets or 36 mg per day, are used to help control the diarrhea.
Prevention of Cryptosporidium infection is most important. Preventive activities include routine testing of well water, using water filters at home, avoiding ice or unfiltered tap water both at home and in restau- rants, and avoiding fresh fruits or vegetables rinsed with unfiltered water. Fruits and vegetables can be washed in bottled water, filtered water, or water with 20 drops of 2% iodine per gallon.
Oropharyngeal and esophageal Candida albicans infections occur in most patients with HIV during the course of their disease. Most often, oral candidiasis is pseudomembranous in type, with white plaques that bleed when removed and leave an erythematous surface. Candida oropharyngeal lesions produce pain and discomfort during eating, loss of taste, and xerostomia (dry mouth). Candida esophageal lesions cause pain with swallowing, dysphagia, and a feeling of “throat swelling.” These lesions lead to worsening wasting syndrome. Management of oropharyngeal candidiasis includes the use of topical antifungal agents (such as clotrimazole or nystatin) in a suspension or lozenges, whereas management of esophageal candidiasis includes antifungal agents by oral or intravenous routes of administration. Side effects include an unpleasant taste and GI side effects, with inconvenient dosing regimens (up to six times per day).
Pulmonary Manifestations Pulmonary manifestations are a major source of morbidity and mortality in AIDS patients. Pulmonary diseases include opportunistic pneumonias, such as those associated with PCP, CMV, M. tuberculosis, Histoplasma, or Staphylococcus, as well as parenchymal lung diseases, including Kaposi sarcoma, lymphoma, nonspecific pneumonitis, and adult respiratory distress syndrome. Infection with M. tuberculosis occurs in 4% of patients with HIV and is particularly problematic in third-world countries where the tuberculosis comorbidity rates are up to 50%. Patients with HIV
increased metabolism of fat and depletion of fat stores. There are deficiencies of vitamins and nutrients, particularly fat soluble vitamins, zinc levels, and selenium. Vitamin B12 and vitamin A are decreased and are associated with HIV disease progression. Malabsorption is affected by the loss of GI-associated lymphoid tissue (especially during the initial phase of HIV infection), impairing the integrity of the epithelial mucosal barrier and predisposing to secondary infections of the GI tract. Low body mass index (BMI), failure to regain weight after weight loss, and continued weight loss after the start of medication hasten disease progres- sion and are risk factors for increased mortality. In children, growth failure is indicative of poor outcomes and mortality.
Malnutrition is a leading cause of death among AIDS patients worldwide. Prevention is key, involving assessment of nutritional parameters as well as nutritional education/counseling and exercise. A patient’s BMI; weight; waist-to-hip ratio; midarm circumference; calorie and protein intake; and prealbumin, serum albumin, and triglyceride levels are frequently measured.
To prevent or delay the wasting process, some medications have been used, including anabolic steroids, growth hormone treatments, cytokine inhibitors, and appetite stimulants. Ketotifen is a TNF inhibi- tor and antihistamine that is used because its side effects are appetite stimulation and weight gain. Thalidomide, which is also a TNF inhibitor, appears to be effective against wasting syndrome and increases fat- free mass. Oxandrolone is an anabolic steroid designed specifically to promote weight gain, particularly lean body mass. Megestrol acetate (Megace), a progestational agent, and dronabinol, an antiemetic, are often used to decrease nausea and increase appetite. Use of human growth hormone (somatropin, Serostim) may also be given to increase lean body mass.
Vitamins A, C, D, and E; the B vitamins; zinc; selenium; sulfur- containing amino acids; and other antioxidants are also prescribed. The use of these nutrients can prevent the up-regulation of inflammatory cytokines and thereby decrease inflammation. High-protein, high-energy meals and snacks are recommended, along with nutritional supplements to meet the required amounts of energy, protein, and micronutrients needed as a result of increased metabolic rates (REE). High-fat foods should be avoided because they increase diarrhea, as can lactose- containing foods. Nutritional supplements (Ensure, Nitrofuel, Sustacal Plus, Advera, Lipisorb), which provide both protein and calories, are full of nutrients and can be formulated either with or without lactose and with or without medium-chain triglyceride oil (a more easily digested fat). Implementation of total parenteral nutrition, including gastrostomy or jejunostomy tube feedings, is reserved for those with severe malnutri- tion and GI manifestations
Gastrointestinal Manifestations GI manifestations are nearly universal in persons with HIV. In fact, the GI tract is the major target organ in HIV infection. It is targeted in all phases of HIV infection, especially in the acute phase. The gut-associated lymphoid tissue is regularly exposed to antigens from microbial and dietary sources, and HIV is a significant direct pathogen in the GI tract. A wide variety of GI symptoms can occur, including chronic diarrhea (due to HIV enteropathy, chronic infectious diarrhea, medication-related diarrhea, or irritable bowel syndrome), oral candidiasis, dysphagia, mucous membrane ulcerations, (as a primary manifestation or secondary to inflammation), abdominal pain, anorectal disease, GI bleeding, GI Kaposi sarcoma, and GI non-Hodgkin lymphoma.
The most common HIV GI complication is chronic diarrhea, which increases with decreasing CD4+ counts. The diarrhea, often watery or bloody, causes malabsorption and consequently severe weight loss. This complication of HIV-related malnutrition causes muscle loss leading to increased morbidity and risk of death. Antiemetics and antidiarrheals
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FIG 12.11 Pneumocystis jiroveci (carinii). A chest radiograph shows bilateral lower lobe interstitial infiltrates. (Courtesy Dr. Paula Karvalho, Veterans Administration Medical Center, Boise, Idaho.)
FIG 12.12 Herpes zoster in an HIV-infected individual. (From Gawkrodger DJ. Dermatology: an illustrated color text, ed 6, 2017, Elsevier Ltd.)
have an increased risk of being infected with a multidrug-resistant type of tuberculosis organism.
PCP is a common initial opportunistic infection in HIV and is an AIDS-defining diagnosis in the United States and Europe. However, the incidence of P. carinii has decreased with the use of prophylaxis. P. carinii is a fungus (renamed P. jiroveci). This organism prefers alveolar environments and infects most people during early childhood. Children usually have Pneumocystis antibodies by 2 to 3 years of age, but the organism does not cause disease in immunocompetent persons. With immunodeficiency and CD4+ T-cell counts below 200/µL, Pneumocystis becomes activated. The nonspecific symptoms of PCP include flulike fever, fatigue, and weight loss. The major pulmonary feature of PCP is severe hypoxemia with a PaO2 less than 60 mm Hg. The most severe pulmonary symptoms are similar to those of adult respiratory distress syndrome (Fig. 12.11). These symptoms include decreased phospholipid (surfactant) production, early dry cough, dyspnea, tachypnea, chest discomfort, and marked pallor and cyanosis.
Diagnosis of PCP is by chest radiography, and organisms are identified in sputum with Wright–Giemsa stain. Pneumocystis cannot be cultured. Sputum is induced by using 3% saline via nebulizer, and patients must avoid brushing their teeth, using mouthwash, or eating for 8 hours before expectoration of a sputum sample. However, the gold standard for diagnosis of PCP is bronchoalveolar lavage with microscopy to identify organisms. Other tests that can be performed include bron- choalveolar biopsy, gallium scanning, and obtaining serum (1>3)-B-d- glucan (BG) testing. BG testing is being used more frequently in the diagnostic workup of HIV-positive patients with dyspnea. It is a serum test that identifies a polysaccharide present within the cell wall of Pneumocystis. Treatment usually includes the use of intravenous or oral
trimethoprim-sulfamethoxazole (Bactrim, Septra) and parenteral and aerosolized pentamidine (NebuPent, Pentam 300).
To prevent PCP infections by prophylaxis, patients with CD4+ counts of less than 200 cells/µL are given trimethoprim-sulfamethoxazole tablets either daily or three times per week to prevent the recurrence of infection. This is a highly effective suppressive therapy that prevents life-threatening PCP. However, there is growing concern about trimethoprim- sulfamethoxazole drug resistance. If patients cannot tolerate it, substitutes include aerosolized pentamidine, dapsone, or dapsone with pyrimeth- amine and leucovorin.
Mucocutaneous Manifestations Mucocutaneous manifestations occur both early and late in the course of HIV infection. The early viral exanthem of HIV infection, associated with seroconversion, is an erythematous, fine maculopapular rash found on the face, trunk, and arms. It is a self-limited manifestation that occurs in 40% to 60% of all HIV-infected persons. It is generally seen within 2 to 6 weeks of exposure and lasts up to 1 to 2 weeks. It is associated with mild pruritus, fever, malaise, night sweats, fatigue, pharyngitis, weight loss, diarrhea, headache, and lymphadenopathy.
Other mucocutaneous manifestations may be allergic, infectious, or neoplastic in origin. Cutaneous symptoms depend on the cause and location. Allergic causes may be the result of drug reactions or the development of seborrheic dermatitis, psoriasis, or skin-colored papular eruptions.
Viral causes include herpes simplex virus, varicella zoster virus (Fig. 12.12), Epstein–Barr virus, and human papillomavirus. The development of genital warts (condylomata acuminata) from human papillomavirus is an early symptom of HIV disease in women. For mucocutaneous viral infections, acyclovir (Zovirax) or vidarabine is the recommended antiviral agent.
Oral hairy leukoplakia is an example of an oral mucous membrane infection first described in 1984. It occurs only in immunosuppressed individuals and is associated with Epstein–Barr virus. It occurs in up to 50% of patients with untreated HIV, especially when the CD4+ count declines. Oral hairy leukoplakia is characterized by white to gray, thickened, raised lesions with vertical folds, corrugations, or “hairs” that form on the tongue and buccal mucosa. Usually they form on the
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in darkly pigmented persons. They may occur anywhere on the body and usually begin on the head—face, eyelids, conjunctivae, pinnae, scalp, or buccal membranes (Fig. 12.16). Lesions range in size from a few millimeters to coalesced patches covering large areas of the body. The lesions are highly vascular but do not bleed excessively. The lesions also may occur internally in either the lungs or the intestines in approximately 40% of patients.
Kaposi sarcoma is usually managed with a combination of chemo- therapy and highly active antiretroviral therapy (HAART). Occasionally radiation therapy is also used. Surgery is rarely indicated except to remove large, uncomfortable lesions. Radiation therapy is used primarily for oral or cutaneous lesions. Mitotic inhibitors (e.g., vinblastine, vincristine), liposomal anthracyclines (bleomycin, doxorubicin), or immunomodulators (e.g., interferon-α-2b) have been useful chemo- therapeutic agents in the management of Kaposi sarcoma. Smaller lesions may be managed with intralesional injections of a mitotic inhibitor. Those with the best prognosis tend to have limited disease; no other opportunistic infections; and no weight loss, fevers, or night sweats.
Gynecologic Manifestations The primary genital barrier to HIV virus is the genital epithelial cell. When proinflammatory cytokines are produced in response to HIV
sides of the tongue (Fig. 12.13). These lesions cannot be removed with a tongue blade, which differentiates this infection from oral candidiasis or thrush. They are not usually painful. There is no specific treatment for oral hairy leukoplakia. It will often resolve with treatment of the HIV infection with improvement in the CD4+ cell count.
In HIV-infected persons, herpes simplex viruses 1 and 2 cause the formation of large groups of painful vesicles on an erythematous base. The HSV-1/-2 vesicles then rupture, crust, and become large, ulcerative, and occasionally necrotic. They are chronic and painfully persistent and usually occur on the genitalia, digits, and perianal or perioral areas. Herpes simplex virus may produce protein that enhances the replication of HIV.
Bacterial infectious causes of mucocutaneous manifestations include Mycobacterium avium or Staphylococcus aureus. Staphylococcus is a common bacterial skin infection in patients with HIV associated with folliculitis, furuncles (boils), or bullous impetigo. Occasionally sepsis may occur. Treatment includes application of topical antibiotics, use of an antibacterial soap, and administration of systemic antibiotics, either oral or intravenous, as needed. Abscesses usually are surgically opened and drained.
Fungal skin infectious agents include Candida (Fig. 12.14), Cryptococ- cus, or Histoplasma. Vaginal candidiasis is the most common early skin symptom in HIV-positive women. Other infectious agents include parasites such as the mites that cause scabies. Treatment is with topical, oral, or intravenous antifungal or antiparasitic agents, depending on the severity of the infection.
Neoplasms can also occur, including Kaposi sarcoma, squamous cell carcinoma, basal cell carcinoma, or cutaneous lymphomas. Kaposi sarcoma is a vascular neoplasm that affects the skin and mucous membranes, lymphatics, and other internal organs. It occurs in immu- nosuppressed patients and is caused by human herpesvirus 8 (HHV-8). Kaposi sarcoma is one of the few neoplasms indicative of immune system dysfunction. It is the second most common tumor found in HIV-infected patients worldwide and the most common cancer in sub-Saharan Africa.
The skin lesions of Kaposi sarcoma are individual tumors that begin as flat or macular subcutaneous patches. The patches initially range from light pink to deep purple and are painless, nonblanching, and nonpruritic (Fig. 12.15). The lesions evolve from patches into thickened plaques or large nodules that may change to brown over time, especially
FIG 12.13 Oral hairy leukoplakia, a manifestation of Epstein–Barr virus infection in HIV-infected individuals. (From Hall LD et. al. Epstein–Barr virus: dermatologic associations and implications. J Am Acad Dermatol 2015;72(1):1–19.)
FIG 12.14 Candida albicans in an HIV-infected person. (From Taylor SC et al. Treatments for skin of color, Philadelphia, 2011, Saunders.)
FIG 12.15 HIV-associated Kaposi sarcoma in the macular stage. (From Schwartz RA et. al. Kaposi sarcoma: a continuing conundrum. J Am Acad Dermatol 2008;59(2):179–206.)
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levels of the enzyme glutaminase, which produces increased extracellular glutamate concentrations leading to increased neurotoxicity.
Central and peripheral nervous system manifestations can be caused by HIV infection directly, as a result of infectious agents, secondary to neoplasms causing space-occupying lesions, or from secondary immune- inflammatory reactions. Opportunistic infectious agents affecting the neurologic system include Toxoplasma and Cryptococcus. A variety of peripheral neuropathies can result from HIV infection directly, although some may be caused by herpes zoster infection. History of coinfection with hepatitis C, substance abuse, and other comorbidities can compound the neurologic manifestations associated with HIV infection. Socio- economic factors (such as low educational level) and psychological factors (such as depression, mood disorders, and sleep disorders) may also contribute to some neurologic dysfunction.
The most common HIV-associated neurologic manifestation is known as HIV-associated neurocognitive abnormality (HAND). HAND is divided into three subdisorders, also known as Frascati criteria. They include asymptomatic neurocognitive impairment (ANI), mild neurocogni- tive disorder (MND), and HIV-associated dementia (HAD). HAND is caused directly or indirectly by HIV infection or viral products, by cytokine-related cellular damage, or by the competition or interference between gp120, tat, or vpr and neuroleukin, a nerve growth factor. This disorder can affect both adults and children and is often undiagnosed in its early stages. Perinatally infected children with HIV have poorer overall cognitive function compared with non–HIV-infected children in a recent study.
In early disease with ANI, the symptoms involve an abnormality in two or more cognitive abilities with no functional impairment. Progression to MND involves cognitive impairment with mild functional impairment. HAD is characterized by marked cognitive impairment with marked functional impairment. HAD can occur when other opportunistic infec- tions begin to appear later in the disease process and is characterized by progressive cognitive impairment or subcortical dementia. In other words, the patient is alert but demented and confused. Computed tomography shows diffuse atrophy in the cerebral cortex, widened sulci, ventricular enlargement, and shrinking of the basal ganglia. Cerebrospinal fluid analysis shows elevated protein and abnormal IgG levels.
The cognitive neurologic symptoms associated with HAND include inattentiveness, confusion, forgetfulness, loss of concentration, slower verbal response, headache, apathy, and inability to complete or perform complex tasks. Symptoms may wax and wane over the course of a day, with intermittent periods of lucidity and confusion. Symptoms can progress to global dementia associated with marked memory impairment and disorientation. Before motor strength declines, the patient may forget time, place, person, and activities, leading to safety issues such as wandering, leaving appliances on, and forgetting to take medications. The associated focal motor deficits include slower motor responses, clumsiness, weakness, loss of balance, handwriting changes, and slurred speech. With progression, motor strength declines, with subsequent large muscle weakness causing difficulty walking and moving. Associated generalized symptoms consist of fever and mild metabolic acidosis. Behavioral symptoms include personality changes, social withdrawal, depression, poor hygiene and grooming, lack of insight, apathy, agitation, and, less commonly, anxiety and hyperactivity. In children, head cir- cumference does not increase with age. As the disorder progresses, the neurologic symptoms become more severe. Ataxia, hypertonia, tremors, and incontinence appear. The person may be alert but cognitively impaired, mute, and paraplegic. Hemianopia (partial blindness), myoclonus, and seizures also may develop. The person may become comatose and lethargic with other systemic dysfunctions.
Management of HAND includes treatment with antiretroviral agents and neuroleptics (to control agitation), as well as coordination of home
FIG 12.16 HIV-associated Kaposi sarcoma in the nodular stage. (From Schwartz RA et. al. Kaposi sarcoma: a continuing conundrum. J Am Acad Dermatol 2008;59(2):179–206.)
FIG 12.17 Cervical dysplasia showing epithelial cells of irregular shape and size. Women with AIDS require more frequent monitoring because cervical dysplasia commonly occurs and progresses rapidly.
virus, the usually tight epithelial junction barrier becomes impaired, allowing HIV virus to move across the epithelium. The gynecologic manifestations of HIV disease are marked by persistent monilial vaginitis secondary to C. albicans, cervical dysplasia, and neoplasia, as well as pelvic inflammatory disease (PID). PID is common in HIV-positive women. It is caused by a variety of organisms, including C. trachomatis, and is managed with antibiotics.
Cervical dysplasia affects 40% of HIV-infected women (Fig. 12.17). Cervical dysplasia has no symptoms, but the cell changes can lead to neoplasia (cancer). Therefore either Papanicolaou smears or colposcopic examinations should be performed every 6 months to detect cervical cancer early in HIV-positive women. Cervical cancer is particularly aggressive in women with HIV.
Neurologic Manifestations Neurologic manifestations are often the reason that people with HIV seek treatment. HIV invades the central nervous system (CNS) early in the course of its infection during primary systemic viremia through migrating myeloid and lymphoid cells. HIV then infects perivascular macrophages, astrocytes, and microglial cells, which are the main cellular targets of HIV in the brain. Microglial HIV infection results in elevated
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chest pain, creatine kinase (CK) elevations, ventricular and valvular dysfunction, and pulmonary edema. The treatment of HIV-associated cardiovascular disease includes education/counseling on heart-healthy diet, exercise, and smoking cessation; management of hypertension and diabetes if present; treatment of dyslipidemia with medications as needed; and use of antiplatelet agents. The treatment of dyslipidemia includes the use of fish oils, fibrates, statins, niacin, and ezetimibe. Of the statins, atorvastatin (Lipitor), pravastatin (Pravachol), rosuvastatin (Crestor), and pitavastatin (Livalo) are less likely to cause adverse interactions with HAART medications. Simvastatin is contraindicated when taking protease inhibitors because of toxic drug–drug interactions when taken together. Fibrates, such as gemfibrozil, are generally well tolerated and do not interact adversely with most HAART medications. Ezetimibe, in combination with Pravachol, appears to benefit most patients. However, ezetimibe, which blocks cholesterol absorption in the intestine, does not appear to lower lipid levels alone.
Manifestations in Other Systems Renal impairment can also occur with HIV infection. This is due to high circulating levels of immune inflammatory markers, such as TNF receptor 2, IL-2, and others, and/or the effect of antiretroviral therapy. Increased kidney dysfunction over time, as indicated by a decline in GFR and increasing albuminuria, can lead to AIDS-associated nephropa- thy (AIDS-related glomerulopathy or HIV-associated nephropathy), drug-induced ischemia, and renal failure. It is recommended that frequent renal function screening be performed to monitor for renal impairment.
Hematologically, individuals with HIV have anemia, thrombocyto- penia, and granulocytopenia. Liver dysfunction is also a problem in persons with HIV because there is an increased risk of concomitant hepatitis C or B (HCV/HBV) infection. This comorbidity of HIV/HCV or HIV/HBV causes increased mortality from end-stage liver disease. Also compounding liver dysfunction in patients with HIV is the effect of multiple medications on the liver itself.
HIV-related endocrine and metabolic abnormalities are due to direct HIV infection; chronic inflammation; destruction of endocrine tissue from infection, cancer, or inflammation; use of pharmacologic agents; or the effect of severe illness on hormonal function/secretion and metabolic homeostasis. Insulin resistance is a major metabolic complica- tion of HIV. Changes in the glucocorticoid and insulin sensitivity of target tissues and altered cytokine production may be due to the effects of HIV proteins on the hypothalamic–pituitary–adrenal axis or excess renin–angiotensin–aldosterone system activation. These effects can be either direct (from insulin signal interference at the cellular level) or indirect (from antiretroviral therapy and lipid dysfunction). Insulin resistance leads to the development of abnormal glucose metabolism, which can cause metabolic syndrome changes, including obesity and diabetes mellitus. The adrenal gland is another organ affected by HIV infection because of increased adrenal secretion of cortisol with stress. Injury to the adrenal gland rarely leads to frank cortisol deficiencies. Levels of thyroid hormones (e.g., triiodothyronine [T3], thyroxine [T4], and thyroid-stimulating hormone) may be elevated or decreased. Thyroid hormone abnormalities, dysregulation of the autoimmune response, and development of Graves disease can occur in some HIV-infected patients. Hypogonadism can be primary in HIV infection or secondary to antiretroviral therapy.
Adipose tissue endocrine function is also affected by HIV infection and antiretroviral therapy. This dysfunction may cause the development of HIV-1 HAART-associated lipodystrophy syndrome in some persons. It is characterized by subcutaneous adipose tissue atrophy, dorsocervical fat (“buffalo hump”) accumulation, and visceral adipose tissue hypertrophy. The cause of this dysfunction is multifactorial due to the effects on
and environmental safety plans and patient/family support. Use of neurocognitive function testing is important. Simple self-administered tests can be used when patients come to a clinic for screening. More detailed screening tests such as the HIV Dementia Scale are useful for more comprehensive evaluations of patients who are increasingly symptomatic.
Ocular Manifestations Eye diseases occur in up to 70% of patients who have HIV infection. Ocular manifestations of HIV infection may be of infectious or noninfec- tious origin. Noninfectious causes of ocular problems include HIV retinopathy, vascular anomalies, malignancy, and diseases induced by medication. Infections, particularly opportunistic infections, are the most common causes of eye diseases in HIV patients. Infectious causes include bacteria such as Treponema pallidum (syphilis) and Staphylococcus; fungi including Candida, Cryptococcus, and Histoplasma; protozoa such as Pneumocystis and Toxoplasma; and viruses such as herpes simplex and CMV.
The most common and severe type of ocular infection is CMV retinitis, which affects up to 30% of HIV patients usually late in the disease course when CD4+ T-cell counts are low. After an insidious onset, ocular CMV causes perivascular hemorrhages, fluffy exudates, and vasculitis in the retina, leading to destruction and necrosis of the retina with resulting blindness. Symptoms include decreased visual acuity, floaters, and damage to the retina, leading to optic nerve atrophy, optic neuropathy, retinal detachment, and blindness. Treatment of CMV retinitis involves the use of anti-CMV agents (e.g., ganciclovir or foscarnet) intravenously and the use of oral anti-CMV agents for prophylaxis. An intraocular sustained-release anti-CMV implant is also available for the management of acute and chronic CMV retinitis.
HIV-associated retinopathy causes the development of cotton-wool spots and microvascular retinal changes. Cotton-wool spots are small, indistinct white spots with associated hemorrhage. These changes are not as severe as CMV retinitis and may remit spontaneously.
Cardiovascular Manifestations Cardiovascular disease is an important treatment consideration in an aging HIV-positive population due to preexisting cardiovascular disease, age, sex, race/ethnicity, comorbidities, and hereditary factors, as well as the direct effect of HIV infection and treatment. HIV-infected patients have an increased risk for a variety of cardiovascular diseases, including dyslipidemia, earlier incidence and progression of athero- sclerosis, hypertension, acute myocardial infarction, coronary artery disease, cardiac arrhythmias, and cardiomyopathy. Lipid abnormali- ties and cardiovascular disease are due to HIV immunosuppression, CD4+ T-cell count, HIV viral load, endothelial function, HAART, or a combination of these factors. Cardiomyopathy and myocarditis are due to direct invasion of myocardial cells by HIV virus or as a result of inflammation and autoimmune mechanisms, although the exact mechanisms are not clear. Studies of autopsy findings have found 50% of AIDS patients have myocardial inflammation. Hypertriglyceridemia and lipogenesis are the result of inflammatory responses to HIV infec- tion secondary to elevated serum IFN-α level, as well as decreased triglyceride clearance from the blood in HIV infection. Antiretroviral therapies may also cause dyslipidemias primarily because of the effects on hepatocytes. Nonucleoside reverse transcriptase inhibitors (NRTIs) affect plasma lipids less than ritonavir-boosted protease inhibitors. In general, newer antiretroviral therapies affect lipid profiles less than older therapies.
Symptoms of cardiovascular disease in HIV-infected patients vary from vague symptoms such as weakness, dyspnea, and fatigue to acute
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TREATMENT Antiretroviral Therapy Recommendations The WHO issued new guidelines for the treatment of HIV-1 infection in 2015. WHO recommends lifelong treatment for all children, all pregnant women, and all adults and adolescents regardless of CD4+ count with priority for those with CD4+ counts below 350 cells/mm3 and those with AIDS-defining illness. They also recommend preexposure prophylaxis as additional prevention for people at substantial risk of HIV infection. These guidelines were developed as a result of the TEMPRANO and START trials, which showed starting early treatment (CD4+ cell count above 500 cells/mm3) results in less serious illness and fewer AIDS-related deaths. Early antiretroviral treatment seems to be better tolerated by patients and helps to prolong life, but it is imperative that patients starting antiretroviral therapy be committed to lifelong treatment and adherence to therapy with knowledge of the risks and benefits.
The goal of medication and therapeutic management of HIV/AIDS is to delay disease progression, restore or preserve immunologic function, suppress plasma HIV viral load, minimize clinical manifestations, reduce morbidity, prolong survival, and prevent HIV transmission. Drug management of HIV infection has evolved from monotherapy, or therapy with one agent, to the use of multiple medications, called HAART. This polydrug therapy approach involves the administration of multiple antiretroviral agents. It provides better viral suppression, thereby decreasing viral load, increasing CD4+ counts, and decreasing resistance for a longer period. The objective of HAART is to provide the greatest viral suppression for the longest time to prevent viral mutations. This approach makes good sense. If one drug blocks 90% of viral replication, the others may eliminate the rest of the resistant virions. However, even with HAART, complete viral eradication is not possible with current treatment strategies. It has also been found that continuous HIV therapy
systemic metabolism, as well as enhanced production of proinflam- matory cytokines and excessive free fatty acid release and is not well understood. Not all people treated with antiretroviral therapy develop lipodystrophy. It is suspected that there may be a genetic component or predisposition to development, history of dyslipidemia, or long-term treatment.
Rheumatologic manifestations of HIV infection are varied, encom- passing osteoporosis, osteopenia, myopathies, and musculoskeletal infections (infectious arthritis and osteomyelitis). Musculoskeletal infections are caused by a decrease in the number of CD4+ T cells. The most common infectious organisms include S. aureus, Streptococcus pneumoniae, C. albicans, Mycobacterium kansasii, and Mycobacterium avium-intracellulare. Other manifestations are caused by immune- mediated arthritis (such as Reiter disease, psoriatic arthritis, and undifferentiated spondyloarthropathy syndromes) or occur as a direct result of the immune response to HIV (including polymyositis, vasculitis, and immune complex diseases related to the production of autoantibod- ies). The increasing incidence of osteopenia, osteoporosis, and osteo- necrosis in the HIV population is significant and may be due either to HIV infection or to antiretroviral therapy. Treatment includes using vitamin D plus calcium replacement, bisphosphonate medications, and selective estrogen receptor modulators as well as risk factor modification through lifestyle changes.
Manifestations in Children Children with HIV become symptomatic much faster than adults— usually within their first year of life. Because of the invasion of virus, children’s growth and development are markedly affected, including physical growth retardation with failure to thrive, impaired intellectual development, and impaired motor functioning with decreased coordina- tion. The infant develops normally until the virus begins its nervous system invasion. After that time, neurologic impairment is characterized by development of weakness, loss of previously accomplished develop- mental milestones, hypotonia, or hypertonia. Extensive candidiasis without any relationship to antibiotic therapy may be an early symptom. Respiratory problems, including the development of PCP, are common. Endocrine changes in children, including adrenal insufficiency, growth disorders, thyroid dysfunction, metabolic abnormalities, and osteopenia, can occur.
Serious bacterial and viral infections can also develop in HIV-infected children. Without treatment or vaccination, HIV-infected children develop severe and repeated bouts of communicable diseases such as chickenpox or measles, as well as opportunistic infections. Routine vaccinations for all vaccine-preventable diseases such as tetanus and measles are recommended for HIV-infected children. The long-term response to the vaccines is poor due to defective cellular immune responses and T-cell anergy. Over time, the antibodies to these diseases decline with decreasing seroprotection rates. As a result, it is recom- mended that all children and adolescents have booster doses of vaccines to maintain effective antigen-specific immune response.
For HIV-positive and -negative infants, the current recommendation is for HIV-positive mothers on antiretroviral therapy to breast feed their infants. Breast milk of HIV-positive mothers on antiretroviral therapy has been found to inhibit HIV transmission with low risk of breast-feeding transmission. This is particularly helpful in resource- limited settings where access to infant formula is limited. Because lactose intolerance is common in HIV-infected children, soy formulas are often used when formula feeding. Dairy products may be introduced into the diet gradually, as tolerated. Children need particular attention to their diet for adequate growth and development with increased intake of calories and protein, as well as nutrient-rich snacks such as raisins, fruits, and nuts.
KEY POINTS • All body systems are affected by HIV. • Early HIV infection is characterized by fever, chills, headaches, nausea,
vomiting, diarrhea, fatigue, weakness, arthralgia, sore throat, stiff neck, photophobia, irritability, and rash.
• The most significant systemic symptom is malnutrition or wasting, which is due to a combination of factors, including an elevated metabolic rate, chronic inflammation, malabsorption, anorexia, and the effect of multiple opportunistic insults.
• GI symptoms occur frequently in patients with HIV. Symptoms include diarrhea caused by Cryptosporidium or other agents, ulceration, and candidiasis, as well as multiple opportunistic infections.
• Pulmonary symptoms include opportunistic pneumonias (particularly PCP), tuberculosis, and adult respiratory distress syndrome.
• Mucocutaneous symptoms occur both early and late in the course of HIV infection. One of the first symptoms is the viral exanthem that occurs during the primary infection. Other manifestations may be allergic; infectious, such as candidiasis or herpes, human papillomavirus, and Epstein–Barr virus infections; or neoplastic, such as Kaposi sarcoma.
• Neurologic manifestations include peripheral neuropathy, encephalopathy with dementia, headache, apathy, and focal deficits.
• Gynecologic manifestations include persistent monilial vaginitis, cervical dysplasia, and PID.
• Ocular manifestations include HIV-associated retinopathy, CMV retinitis, malignancy, and a variety of infectious causes.
• Children with HIV have growth and development problems, including impaired physical growth, intellectual development, and motor functioning.
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The major classes of antiretroviral medications are nucleotide and nucleoside reverse transcriptase inhibitors (NRTIs), nonnucleoside reverse transcriptase inhibitors (NNRTIs), protease inhibitors (PIs), fusion inhibitors, integrase strand transfer inhibitors (INSTIs), CCR5 inhibitors, and antiretroviral boosters. The current optimal combination of medications for treatment of HIV-1 involves using at least three different drugs from two different classes for initial treatment. Usually there are two nucleoside analogs (NRTIs), such as tenofovir and emtricitabine or abacavir and lamivudine, and one active drug from one of the following classes: PIs boosted with ritonavir, an NNRTI (which is called a protease-sparing regimen), an INSTI, or a CCR5 antagonist. Viral resistance to treatment is reduced by the complete suppression of the virus with multiple drugs (Fig. 12.18). There are now a variety of antiretroviral medication choices available to meet patient needs, tolerance, and cost concerns (Table 12.4). Medication treatment options for HIV-2–infected patients are more limited. HIV-2 is resistant to NNRTIs, although it may be sensitive to NRTIs.
Nucleoside Reverse Transcriptase Inhibitors NRTIs resemble the natural substances used by the virus to build HIV DNA. NRTIs prevent HIV replication by inhibiting HIV reverse tran- scriptase, thereby preventing HIV DNA synthesis. They have been found to slow progression of the disease. Nucleoside analogs include zidovudine, didanosine, zalcitabine, stavudine, lamivudine, and abacavir. All must be converted to an active state intracellularly.
Nucleotide Reverse Transcriptase Inhibitors Nucleotide RTIs act like the nucleoside RTIs noted earlier, but they use a different enzyme to become activated intracellularly. They are able to be activated in more cells due to this difference. Tenofovir is the major nucleotide RTI.
Nonnucleoside Reverse Transcriptase Inhibitors NNRTIs also inhibit reverse transcriptase, but by a different mechanism. Drugs in this class include efavirenz (Sustiva), nevirapine (Viramune), and delavirdine (Rescriptor). These medications need not be converted intracellularly to be activated. The greatest benefit is that they are potent antiretrovirals. The biggest problem is that they affect the cytochrome P450 system, which increases drug interactions and means they must
is more beneficial than treatment interruption with prolonged drug treatment holidays.
Antiretroviral therapy in HIV infection is more successful in some patients than in others, depending on both internal and external factors. Some important factors include prescribing the appropriate polydrug therapy and ensuring maximal convenience of therapy, as well as aiding patient adherence to the treatment regimen. Other factors include early identification of HIV infection and starting early HAART. However, there are also unknown factors involving the response of individual patients to the therapy, including the rate of reduction of viremia in response to treatment. People who present for treatment later in HIV infection with higher viremia and lower CD4+ counts tend to have increased morbidity, increased progression, and decreased immune system responses, as well as poor adherence to therapy.
HIV drug treatment failure is the result of HIV resistance, which is a widespread concern and is usually caused by poor adherence to HAART, poor toleration of the drugs, prior exposure to single or multiple antiretroviral drug therapy, or counteracting interactions among the drugs used. Virus resistance increases with treatment protocol noncompliance. It is easy to see why persons taking the multidrug regimen may fail to comply with nutritional and drug therapy because of the sheer volume of drugs to be taken in a day. A person infected with HIV may take up to 13 to 30 pills per day; he or she must also remember which medica- tions should be taken with food or on an empty stomach and which medications cannot be taken together simultaneously. In addition, some persons with HIV infection may be demented because of the disease, homeless, or addicted to intravenous drugs—any of which limits the person’s ability to adhere to the strict treatment regimens. Finally, some of the treatments for opportunistic infection or cancer involve many other drugs: intravenous, oral, and intracavital. Patient compliance with complicated drug therapy that has many side effects and high cost is often variable. Therefore the key appears to be encouraging patient compliance by tailoring medication regimens that improve tolerability and convenience.
Some of the current medications available to adults with HIV have not been recommended for children younger than 13 years. In the past, treatment for infants and children was often delayed weeks or months. This is because virion levels are usually not detectable for up to 2 weeks after birth. With the new guidelines, treatment is started early.
HIV virion
Protease inhibitors interrupt formation of new virions
CCR5 antagonists prevent HIV viron binding to the cell membrane by blocking the coreceptor CCR5
Fusion inhibitors block the fusion between the virus and target cell membranes extracellularly
Fuses with cell
Injects viral RNA
Integrase transfer inhibitors stop the virus from being
incorporated into the host cell’s DNA
Provirus integrated into host cell’s DNA
CD4+ Cell
Migrates to nucleus
Messenger RNA
Viral proteins
Cell nucleus
Activates cell
Reverse transcriptase
inhibitors stop formation
of DNA
FIG 12.18 Antiretroviral therapy. The stages in the life cycle of HIV in which antiretroviral therapy is effective are shown.
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TABLE 12.4 Antiretroviral Therapy
Class Generic Name (Trade Name)
Use in Pregnancy or Children Side Effects Monitoring
Nucleoside reverse transcriptase inhibitors
Zidovudine (AZT, Retrovir)
Lamivudine (3TC, Epivir) Didanosine (DDI, Videx) Stavudine Emtricitabine (Emtriva,
FTC) Abacavir (Ziagen, ABC)
Pregnancy Class B or C: approved and used in pregnancy as early as 10 weeks’ gestation
Can be given to infants and children.
Unlikely to interact with drugs metabolized by cytochrome P450 enzyme system.
Pancreatitis, bone marrow toxicity, anemia/neutropenia, peripheral neuropathy, dyslipidemia, insulin resistance, hepatic toxicity, headache, nausea, vomiting, diarrhea, insomnia, malaise, myalgia, hypersensitivity, lactic acidosis, osteopenia, confusion
Abacavir hypersensitivity reaction in patients with positive HLA-B’5701.
Liver function studies, CBC, metabolic panel studies (chem 14)
Nucleotide reverse transcriptase inhibitors
Tenofovir (Viread, TDF) Pregnancy Class B. Avoid concomitant use with
NSAIDS. Necessary to stay hydrated.
Renal dysfunction, bone loss, dehydration
Liver function studies, CBC, metabolic panel studies (chem 14), serum phosphate
Nonnucleoside reverse transcriptase inhibitors
Nevirapine (Viramune) Delavirdine (Rescriptor) Efavirenz (Sustiva, EFV) Etravirine (ETR,
Intelence) Rilpivirine (Edurant)
Pregnancy Class D: not approved d/t teratogenic and CNS defects
Avoid during lactation Approved in children over 3 yr Should be taken with a high-fat
meal. Significant potential for effect on
cytochrome P450 enzyme system.
CNS effects, dizziness, drowsiness, concentration problems, insomnia, vivid dreams, depression, headache, maculopapular rash, nausea, vomiting, diarrhea, myalgia, hyperlipidemia, hyperglycemia, liver enzyme elevations, Stevens–Johnson syndrome, hepatitis, vitamin D deficiency
Liver function studies, CBC, chem 14, lipid function; take between 6 and 9 PM to sleep through side effects
Protease inhibitors Saquinavir (Invirase, SQV)
Ritonavir (Norvir, RTV) Atazanavir (Reyataz,
ATV) Nelfinavir (Viracept) Tipranavir (Aptivus, TPV) Fosamprenavir (Lexiva,
FPV) Darunavir (Prezista, DRV)
Pregnancy Class B or C: approved in pregnancy and in children
Avoid during lactation. Must take with food. Have many serious drug
interactions especially with statins.
Often combined with other antivirals to overcome viral resistance and lower drug dosages.
Hyperlipidemia, lipid abnormalities, lipodystrophy, elevated LFTs/uric acid, dizziness, anxiety, bleeding, pancreatitis, MI, stroke, weakness, asthenia, headache, nausea, diarrhea, vomiting, anorexia, abdominal pain, taste perversion, paresthesias, spontaneous bleeding in people with hemophilia
Liver function studies, CBC, chem 14, lipid function, uric acid levels
Fusion inhibitor Enfuvirtide (ENF, Fuzeon) Pregnancy Class B: approved. Approved in children older than
6 yr Must be given twice daily by
subcutaneous injection.
Fatigue, insomnia, diarrhea, nausea, abdominal pain, anorexia, elevated CPK, myalgia, cough, bacterial pneumonia, flulike syndrome, thrombocytopenia, hyperlipidemia, elevated LFTs
Liver function studies, chem 14, lipid function
CCR5 antagonist Maraviroc (Selzentry) Pregnancy Class B: approved. Approved in adolescents 16 yr
and older Not recommended in lactation.
Hepatotoxicity, hypersensitivity reactions, fever, cough, vascular hypertensive disorder, dizziness, insomnia, pruritus, lipodystrophy, elevated LFTs, peripheral neuropathy, myalgia
Liver function studies, CBC, chem 14, lipid function
Integrase transfer inhibitor
Raltegravir (Isentress, RAL)
Dolutegravir (Tivicay, DTG)
Pregnancy Class B or C: approved. Approved in adolescents 16 yr and older
Myopathy, rhabdomyolysis, hyperlipidemia, hypertension, fatigue, dizziness, elevated glucose/lipase/LFTs/creatinine, anemia, thrombocytopenia, diarrhea, nausea
Liver function studies, CBC, chem 14, lipid function, uric acid levels
CBC, Complete blood cell count; CNS, central nervous system; CPK, creatine phosphokinase; d/t, due to; LFTs, liver function tests; MI, myocardial infarction; yr, year.
CHAPTER 12 HIV Disease and AIDS 257
be given cautiously. They can only be administered in combination with other antiretrovirals.
Protease Inhibitors PIs attack at another phase in the viral life cycle. These medications inhibit the enzyme protease, whose action is to clip the viral protein precursors to the appropriate size and is essential for HIV maturation, infection, and replication. As a result, immature, defective, and noninfec- tious viral particles are released. Drugs in this class include saquinavir, ritonavir, indinavir, nelfinavir, fosamprenavir, atazanavir, ritonavir- boosted tipranavir, and ritonavir-boosted darunavir. They also affect the cytochrome P450 system. Protease inhibitor therapy is extremely expensive, with a retail price of approximately $6000 to $8000 per year. Protease inhibitors are never used as single agents because of the potential for a patient to develop resistance. PIs have poor CNS penetration. The advantages of ritonavir-boosted drugs include overcoming viral resistance, lower drug dosages with fewer pills, and less frequent dosing.
Fusion Inhibitors Fusion inhibitors (e.g., enfuvirtide [Fuzeon, ENF]) work extracellularly by blocking fusion between viral and target cell membranes. They are always used with other treatment regimens to decrease viral load, never as monotherapy. They increase the effects of protease inhibitors. They are given only by subcutaneous injection. The pediatric dosage is weight based and given twice daily. The adult dose is usually 90 mg twice daily. They are also very expensive—up to $3250 for a 30-day supply.
CCR5 Inhibitors CCR5 inhibitors are best suited for earlier infection when the CCR5 tropic virus (T tropic phase) predominates (see Fig. 12.5). The major drug in this category is maraviroc. This medication acts to prevent infection by blocking the coreceptor CCR5 and preventing HIV binding to the cell membrane. Tropism testing is necessary before treatment with this medication. It is always given with other antiretroviral medica- tions. It also interacts with the P450 system.
Integrase Strand Transfer Inhibitors INSTIs are the newest class of antiretroviral medications. These medica- tions target and inhibit integrase encoded by the viral pol gene. This prevents the insertion of viral DNA in the human chromosome. The first INSTI approved by the FDA was raltegravir (Isentress). They are generally well tolerated.
Other Treatments and Vaccines Antibiotics, antivirals, antifungals, antiparasitics, and antimycobacterial medications are administered as needed to treat the many opportunistic infections that are secondary to HIV infection. Human granulocyte colony–stimulating factor (filgrastim [Neupogen]) may be used to improve innate immunity by increasing the number of neutrophils in persons with neutropenia. This agent is helpful in decreasing medication- induced neutropenia. It is given daily in a subcutaneous dose calculated according to the patient’s weight. However, it is of questionable value because it may act as a growth factor for cancers. Epoetin alfa (eryth- ropoietin) is used to manage medication-induced anemia. An associated side effect is hypertension. Intravenous immunoglobulin can sometimes be used in HIV-infected children with T-cell counts greater than 200/µL. It helps to decrease the incidence of serious bacterial, minor bacterial, viral, and opportunistic infections. Interferon alfa-2b (Intron A) is used to treat AIDS-related Kaposi sarcoma in adults. Other studies are being conducted in an effort to find ways to rebuild the immune system. Researchers want to make sure that the T cells cloned after initiation of antiretroviral therapy will respond to both new and old infections.
Prevention of HIV infection by vaccine-conferred active immunity is the ultimate goal of current research. This task is extremely difficult because of HIV strain variability and HIV mutation frequency. To date, none of the vaccine trials have been successful, and several have been stopped in phase II. Ongoing research is being carried out in an effort to quantify the effectiveness of other vaccines in stimulating both cellular and humoral responses to HIV. At this time, there is no effective vaccine available for prevention of HIV.
HIV is an RNA virus that primarily infects and destroys the immune system. In so doing, it destroys one of the basic foundations of human regulation and protection. HIV decreases the body’s ability to fight organisms, opens the door to opportunistic infections, and allows
neoplasms to emerge. HIV can infect anyone of any age. The ultimate intracellular pathogen, it slowly destroys the host while manufacturing billions of copies of itself. Study of this virus has improved our under- standing of the immune system as well as of cellular function.
S U M M A R Y
KEY POINTS • Management of HIV and AIDS includes the use of antiretroviral medications,
including NRTIs, NNRTIs, PIs, fusion inhibitors, INSTIs, and CCR5 antagonists. • The current optimal combination of medications is multidrug therapy with
two nucleoside analogs (NRTIs) and one active drug from one of the following classes: PIs boosted with ritonavir, an NNRTI, an INSTI, or a CCR5 antagonist.
• Efforts to stimulate immune function with peptide growth factors and the development of vaccines are under investigation.
• Aggressive treatment of opportunistic infections with appropriate antibiotics and antivirals is a large part of the treatment regimen.
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Kuhar DT, et al: Updated US Public Health Service Guidelines for the Management of Occupational Exposures to Human Immunodeficiency
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Elbirt D, et al: HIV-associated neurocognitive disorders (HAND). Isr Med Assoc J 17:54–59, 2015.
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Price RW, et al: Evolving character of chronic central nervous system HIV infection. Semin Neurol 34(1):7–13, 2014.
Salerno D, et al: Serum and bal beta-D-glucan for the diagnosis of Pneumocystis pneumonia in HIV positive patients. Respir Med 108(11):1688–1695, 2014.
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Selik RM, et al: Revised surveillance case definition for HIV infection – United States, 2014. MMWR Recomm Rep 63(RR03):1–10, 2014.
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Sticchi L, et al: Seroprevalence and vaccination coverage of vaccine-preventable diseases in perinatally HIV-1-infected patients. Hum Vaccin Immunother 11(1):263–269, 2015.
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Weetman AP: Thyroid abnormalities. Endocrinol Metab Clin North Am 43(3):781–790, 2014.
World Health Organization: Guidelines on when to start antiretroviral therapy and on pre-exposure prophylaxis for HIV. September, 2015.
Virus and Recommendations for Postexposure Prophylaxis. Infect Control Hosp Epidemiol 34(9):2013.
Kwong J, Gabler S: Counseling, screening, and therapy for newly-diagnosed HIV patients. Nurse Pract 40(10):34–43, 2015.
Swanstrom R, Coffin J: HIV-1 pathogenesis: the virus. Cold Spring Harb Perspect Med 2(12):a007443, 2012.
Taborda-Vanegas N, et al: Genetic and immunological factors involved in natural resistance to HIV-1 infection. Open Virol J 5:35–43, 2011.
UNAIDS: Press Release: UNAIDS report shows that 19 million of the 25 million people living with HIV today do not know that they have the virus and Core Epidemiology Slides, Geneva, July 16, 2014, World Health Organization (WHO).
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Pathogenesis, Clinical Manifestations, and Management Abraham AG, et al: Kidney dysfunction and markers of inflammation in the
Multicenter AIDS Cohort Study. J Infect Dis 212(7):1100–1110, 2015. Bhutia E, et al: Lipodystrophy syndrome among HIV infected children on
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259
UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
13
Alterations in Oxygen Transport Susan G. Trevithick
K E Y Q U E S T I O N S • What factors are necessary for normal red blood cell production? • How are oxygen and carbon dioxide transported in the
circulation? • How are laboratory tests used to detect anemia and
polycythemia? • What are the general effects of anemia on body systems?
• How are history, clinical manifestations, and laboratory studies used to differentiate the various forms of anemia?
• How are history, clinical manifestations, and laboratory studies used to differentiate the various forms of polycythemia?
• What are the appropriate treatment measures for each of the common types of anemia and polycythemia?
C H A P T E R O U T L I N E Composition of Blood, 260
Organic and Inorganic Components, 261
Cellular Components, 261
Erythrocytes, 262 Leukocytes, 262 Platelets, 262
Structure and Function of Red Blood Cells, 262 Hematopoiesis, 263
Hemoglobin Synthesis, 265
Hemoglobin Synthesis in Infants, 266
Nutritional Requirements for Erythropoiesis, 266
Energy and Maintenance of Erythrocytes, 267
Red Cell Production, 267
Red Cell Destruction, 268
Gas Transport and Acid–Base Balance, 268 Oxygen Transport, 268
Carbon Dioxide Transport, 270
Alterations in Oxygen Transport, 270
Anemia, 272 General Effects of Anemia, 272
Anemia Related to Decreased Red Cell Production, 277 Aplastic Anemia, 277
Anemia of Chronic Renal Failure, 277
Anemia Related to Vitamin B12 (Cobalamin) or Folate Deficiency, 278
Iron Deficiency Anemia, 279
Anemia Related to Inherited Disorders of the Red Cell, 279 Thalassemia, 279
Sickle Cell Anemia, 281
Hereditary Spherocytosis, 282
Glucose-6-Phosphate Dehydrogenase Deficiency, 282
Anemia Related to Extrinsic Red Cell Destruction or Loss, 284 Hemolytic Disease of the Newborn, 284
Antibody-Mediated Drug Reactions, 284
Acute Blood Loss, 285
Other Extrinsic Abnormalities, 285
Transfusion Therapy, 286 Polycythemia, 286
Polycythemia Vera, 286
Secondary Polycythemia, 292
Relative Polycythemia, 293
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
260 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
RBCs carry carbon dioxide wastes away from the cells and back to the lungs for expiration.
COMPOSITION OF BLOOD The total blood volume averages 75.5 mL/kg in men and 66.5 mL/kg in women, which is 5 to 6 L or 7% to 8% of body weight. The blood cells comprise approximately 45% and the blood plasma 55% of the
Blood is a critical body fluid composed of formed elements and cells suspended in plasma that circulates through the cardiovascular system. As the primary transport system of the body, blood is involved in the physiologic and pathologic activities of all organs. The red blood cell (RBC), or erythrocyte, is essential to oxygen transport within the circula- tory system. RBCs contain large numbers of hemoglobin molecules, which are designed to move oxygen efficiently from the lungs to other body tissues. Hemoglobin also aids in acid–base balance. In addition,
WHOLE BLOOD (Volume)
FORMED ELEMENTS
(Number per cubic millimeter)
LEUKOCYTES (Differential)
EOSINOPHILS 1%–3%
BASOPHILS 0%–0.75%
LYMPHOCYTES 25%–33%
PROTEINS
ALBUMIN 54%
GLOBULINS 38%
GLOBULINS
ALPHA 14%
BETA 13%
GAMMA 11%
FIBRINOGEN–7%
PROTHROMBIN Less than 1%
ERYTHROCYTES 4.2–6.2 million
NEUTROPHILS 57%–67%
PLATELETS 140,000–340,000
PLASMA WEIGHT
WATER 91.5%
Inorganic salts, lipids, enzymes,
hormones, vitamins, carbohydrates
1.5%
PROTEINS–7%
FORMED ELEMENTS
45%
PLASMA 55%
OTHER FLUIDS
AND TISSUES
92%
BLOOD—8%
MONOCYTES 3%–7%
SERUM PROTEINSPLASMA PROTEINS
LEUKOCYTES 5000–10,000
FIG 13.1 Composition of blood in the normal adult.
CHAPTER 13 Alterations in Oxygen Transport 261
It is the inactive precursor of fibrin, which forms the framework of blood clots. Regulatory proteins, such as hormones and enzymes, are also present in the plasma. Diffusible nonorganic substances, such as sodium chloride, calcium, potassium, iodine, and iron, are used by body cells and constitute 0.9% of plasma. Diffusible organic constituents, such as urea, uric acid, xanthine, creatine, creatinine, and ammonia, are products of tissue metabolism that are transported from the tissues to the kidneys and skin for excretion. Also included in this category are nutritive organic materials, such as amino acids, glucose, fats, and cholesterol, which are foodstuffs in solution absorbed from the gastrointestinal (GI) tract. They are transported to other body tissues for utilization and storage (Table 13.1).
Cellular Components The amounts of the different cellular components in the blood vary with age. Table 13.2 gives normal values from birth to 21 years.
blood volume. Blood plasma is composed of about 92% water and 7% plasma proteins (Fig. 13.1). The arterial pH of normal blood is 7.35 to 7.45.
Organic and Inorganic Components The plasma proteins are formed mainly in the liver. They are unable to leave the vascular space under normal circumstances and assist in regulating blood volume and the body’s fluid balance. Plasma proteins contribute to colloid osmotic pressure, which is important in maintaining blood pressure. There are three general types of plasma proteins. The first is serum albumin, which is an essential factor in maintaining blood volume and pressure. The second is serum globulin, which is composed of three general fractions: the α fraction is associated with the transport of bilirubin, lipids, and steroids; the β fraction is associated with the transport of iron and copper in plasma; and the γ fraction contains the antibody molecules. Fibrinogen is the third major type of plasma protein.
TABLE 13.1 Organic and Inorganic Components of Blood
Constituent Amount/Concentration Major Functions
Water 92% of plasma weight Medium for carrying all other constituents Electrolytes Total <1% of plasma weight Keep H2O in extracellular compartment; act as buffers; function in membrane
excitability Na+ 136–145 mEq/L (142 mM) K+ 3.5–5 mEq/L (4 mM) Ca2+ 4.5–5.5 mEq/L (2.5 mM) Mg2+ 1.5–2.5 mEq/L (1.5 mM) Cl− 100–106 mEq/L (103 mM) HCO3
− 27 mEq/L (27 mM) Phosphate (mostly HPO4
2−) 3–4.5 mEq/L (1 mM) SO4
2− 0.5–1.5 mEq/L (0.5 mM) Proteins 6–8 g/dL (2.5 mM) Albumin 3.5–5.5 g/dL Provides colloid osmotic pressure of plasma; acts as buffers; binds other
plasma constituents (e.g., lipids, hormones, vitamins, metals) Globulins 1.5–0.3 g/dL Enzymes; enzyme precursors; antibodies (immune globulins); hormones Fibrinogen 0.2–0.4 g/dL Clotting factor Gases, arterial plasma CO2 content 22–30 mmol/L of plasma By-product of metabolism; most CO2 content is from HCO3
− and acts as buffer O2 PaO2, 80 mm Hg or greater (arterial);
P vO2 , 30–40 mm Hg (venous) Oxygenation
N2 0.9 mL/dL By-product of protein catabolism Nutrients Provide nutrition and substances for tissue repair Glucose and other carbohydrates 70–105 mg/dL (5.6 mM) Total amino acids 40 mg/dL (2 mM) Total lipids 450 mg/dL (7.5 mM) Cholesterol 150–250 mg/dL (4–7 mM) Individual vitamins 0.0001–2.5 mg/dL Individual trace elements 0.001–0.3 mg/dL Waste products Urea (BUN) 10–20 mg/dL (5.7 mM) End product of protein catabolism Creatinine 0.7–1.5 mg/dL (0.09 mM) End product of energy metabolism Uric acid 2.5–8 mg/dL (0.3 mM) End product of protein metabolism Bilirubin 0.3–1.1 mg/dL End product of red blood cell destruction Direct conjugated 0.1–0.5 mg/dL Indirect unconjugated 0.1–0.7 mg/dL Individual hormones 0.000001–0.05 mg/dL Functions specific to target tissue
Adapted with permission from Vander AJ et al: Human physiology: the mechanisms of body function, ed 7, New York, 1998, McGraw-Hill.
262 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
also transported in the circulatory and lymphatic systems. The average adult has approximately 5000 to 10,000 leukocytes per cubic millimeter of blood. Monocytes and granulocytes are WBCs that share a common lineage with RBCs and platelets. Because of the interrelationship of RBCs, WBCs, and platelets, which are all derived from the myeloid stem cell (Fig. 13.3), abnormalities in these cells are seen in some red cell diseases. Leukocyte structure and function are discussed in detail in Chapter 9.
Platelets Platelets are essential in the formation of blood clots and in the control of bleeding. They are not cells but are circulating cytoplasmic fragments of megakaryocytes and are incapable of mitotic division. They contain cytoplasmic granules that release biochemical mediators involved in the hemostatic process. Normally, 150,000 to 400,000 platelets/mm3 circulate freely in the blood. An additional one-third of the body’s platelets are in a reserve pool in the spleen. The average life span of platelets in the peripheral blood is approximately 4 to 5 days.
Erythrocytes Of the cellular elements of blood (Table 13.3), RBCs, or erythrocytes, are the most numerous, with normal concentrations ranging from 4.2 to 6.2 million cells/mm3. RBCs are responsible for transporting oxygen to the tissues and participate in both removing carbon dioxide from the tissues and buffering blood pH. They have no cytoplasmic organelles, nucleus, mitochondria, or ribosomes. Therefore RBCs cannot synthesize protein or carry out oxidative reactions. Instead the erythrocyte’s cytoplasm consists of a solution containing proteins, hemoglobin, and electrolytes that regulates diffusion through the cellular membrane. RBCs live for 80 to 120 days in the circulation; then they die and are replaced. Hemoglobin is the main functional constituent of the red cell. It is a protein that enables the blood to transport 100 times more oxygen than could be transported in plasma alone. An enzyme inside RBCs, carbonic anhydrase, is responsible for the buffering mechanism of red cells.
The erythrocyte’s size and shape also contribute to its function as a gas carrier (Fig. 13.2). It is a small, biconcave disk (about 7.2 µm in diameter) that must circulate through splenic sinusoids and capillaries, which are only 2 µm in diameter. This remarkable feat is accomplished through a property called reversible deformability, which allows the RBC to assume a torpedo-like conformation and then return to a biconcave disk shape.
Leukocytes White blood cells (WBCs), or leukocytes, protect the body by phago- cytosis of microorganisms and other debris and participate in immune antibody formation. Leukocytes act primarily in the tissues, but are
TABLE 13.2 Age-Related Changes in Hematologic Values
Age Hemoglobin (g) Hematocrit (%) RBC Count (millions/mm3)
Platelets (thousands/mm3) Reticulocytes (%)
Birth 17.6 55 5.5 350.0 5.0 24 hr 18.0 56 5.3 400.0 5.2 1 wk 17.0 54 5.0 300.0 1.0 2 mo 12.4 30 4.3 260.0 0.5 6 mo 11.5 34 4.6 250.0 0.8 2 yr 12.9 40 4.8 250.0 1.0 6 yr 14.1 42 4.8 250.0 1.0 14 yr 15.0 M: 45; F: 42 5.1 250.0 1.0 21 yr 15.0 M: 45; F: 42 5.1 250.0 1.0
Data from Platt W: Color atlas and textbook of hematology, ed 2, Philadelphia, 1979, Lippincott, p 4. Reproduced by permission of William R. Platt, MD.
KEY POINTS • Of the 4 to 6 L of blood in the circulatory system, approximately 45% is
blood cells and 55% is plasma. The plasma fraction contains dissolved substances, including nutrients, ions, plasma proteins, metabolic wastes, hormones, and enzymes.
• Red cells function to carry oxygen and carbon dioxide in the blood. They have a limited life span of 80 to 120 days because they contain no cytoplasmic organelles and thus are incapable of replacing lost or damaged cellular components. The normal red cell concentration is 4.2 to 6.2 million cells/ mm3.
• Leukocytes, or WBCs, are the other cell type present in blood. Leukocytes circulate in much lower numbers than RBCs (5000 to 10,000/mm3). Leukocytes are important mediators of immunity.
• Platelets are not cells but are small fragments of megakaryocytes. The normal platelet count is 150,000 to 400,000 cells/mm3.
FIG 13.2 Mature erythrocytes. A mature neutrophil is also shown. (Courtesy Beth Payne, Sacred Heart Medical Center, Spokane, WA.)
STRUCTURE AND FUNCTION OF RED BLOOD CELLS The cellular components of blood originate in the yolk sac mesenchyme, move to the liver and spleen during fetal life, and finally are limited to the marrow of the body skeleton (Fig. 13.4). Bone marrow provides a special environment for hematopoietic cell proliferation and maturation. Developing cells are held in a fine reticular meshwork, which provides free access to plasma nutrients but retains developing cells until their maturity allows penetration of the endothelial barrier. In times of need,
CHAPTER 13 Alterations in Oxygen Transport 263
cells probably derive from a single totipotent stem cell pool in fetal development, but it is uncertain if this is the functioning stem cell after birth (Fig. 13.5). Research suggests that a pluripotential stem cell that is stimulated by erythropoietin and other poietins to cause further differentiation into separate cell lines may be the primary stem cell in adults.
Hematopoiesis is a two-stage process that involves mitotic division (proliferation) and maturation (differentiation). Each type of blood cell has stem cells that undergo mitosis when stimulated by a specific biochemical signal, indicating that the number of circulating cells
immature cells (reticulocytes and nucleated red blood cells, or NRBCs) are released early into the circulation; their presence in increased numbers is a sign that the hematopoietic system is stressed or is experiencing disease.
Hematopoiesis Hematopoiesis is the developmental process leading from pluripotential stem cells to mature, differentiated red cells, neutrophils, eosinophils, basophils, monocytes, and platelets. Lymphopoiesis describes this process for lymphocytes. Both hematopoietic and lymphopoietic stem
TABLE 13.3 Characteristics of Blood Cells
Cell Structural Characteristics Normal Amounts in Circulating Blood* Function Life Span
Erythrocyte (red blood cell)
Nonnucleated biconcave disk containing hemoglobin
Males: 4.7–6.2 × 1012/L Females: 4.2–5.4 × 1012/L
Gas transport to and from tissue cells and lungs
80–120 days
Leukocyte (white blood cell)
Nucleated cell 5.0–10 × 109/L Body defense mechanisms See later
Lymphocyte Mononuclear immunocyte 1.2–3.4 × 109/L; 20%–44% leukocyte differential
Humoral and cell-mediated immunity Days or years, depending on type
Neutrophil Segmented polymorphonuclear granulocyte with neutrophilic granules
1.4–6.5 × 109/L; 50%–70% leukocyte differential
Phagocytosis, particularly during early phase of inflammation
5 days
Eosinophil Segmented polymorphonuclear granulocyte with eosinophilic granules
0–0.7 × 109/L; 0%–4% leukocyte differential
Phagocytosis, antibody-mediated defense against parasites; participates in mucosal immune response
Unknown
Basophil Segmented polymorphonuclear granulocyte with basophilic granules
0–0.2 × 109/L; 0%–2% leukocyte differential
Transport and release of heparin and histamine; involved in immune and inflammatory responses
Unknown
Monocyte-macrophage Large mononuclear phagocyte 0.11–0.59 × 109/L; 2%–9% leukocyte differential
Phagocytosis; process and present antigens
Months to years
Platelet Discoid cytoplasmic fragment derived from megakaryocytes
150–400 × 109/L Hemostasis after vascular injury; forms hemostatic plug, provides cofactors, maintains vascular endothelium
4–5 days
Illustrations from Patton KT, Thibodeau GA: Anatomy & physiology, ed 8, St Louis, MO, 2013, Mosby, p. 606. *Given in SI units.
264 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
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CHAPTER 13 Alterations in Oxygen Transport 265
to a reticulocyte, which is a small disk that has lost its nucleus. The reticulocyte (Fig. 13.6) leaves the marrow, enters the bloodstream, and matures into an erythrocyte in 24 to 48 hours. During this period, mitochondria and ribosomes disappear; the cell can no longer synthesize hemoglobin, and it relies on glycolysis for adenosine triphosphate (ATP) production. The normal reticulocyte count is 1% of the total RBC count. This makes it a useful test to determine effective erythropoietic activity because erythropoietin stimulates uncommitted stem cells to differentiate into proerythroblasts.
Hemoglobin Synthesis The immature red cell can be viewed as a factory for hemoglobin synthesis. In a mature red cell, hemoglobin, the oxygen-carrying protein, composes about 90% of the cell’s dry weight in the form of approximately 300 hemoglobin molecules. Hemoglobin that is carrying oxygen is called
has decreased. Medullary or bone marrow hematopoiesis continues throughout life and can be accelerated by several mechanisms, including (1) an increase in differentiation of daughter cells, (2) an increase in number of stem cells, and (3) conversion of yellow (fatty) bone marrow (which does not produce cells) to red marrow (which does produce cells). Marrow conversion is stimulated by erythropoietin, which is the hormone from the kidney that stimulates erythrocyte production. In adults, extramedullary hematopoiesis, or production of blood cells in tissue other than bone, is usually due to disease.
Erythrocyte development is shown in detail in Fig. 13.3. During this process, the cell changes from a large nucleated cell, rich in ribosomes,
10 0
Yolk sac
Spleen
Liver
Fetal months Birth Age in Years
32
20
40
60
80
100
4 65 7 98 10 20 30 40 50 60 70
C e llu
la ri ty
, %
Bone marrow
Prenatal Postnatal
Tibias Femurs
Vertebrae and pelvis
Sternum
Ribs
FIG 13.4 Location of active marrow growth in the fetus and adult. During fetal development, hematopoiesis is first established in the yolk sac mesenchyme, later moves to the liver and spleen, and finally is limited to the bony skeleton. From infancy to adulthood, there is progressive restriction of productive marrow to the axial skeleton and proximal ends of the long bones, which appear as shaded areas on the drawing of the skeleton.
HEMATOPOIESIS
Pluripotential stem cells
Hematopoietic stem cells
Committed progenitors of erythrocytes,
granulocytes, monocytes, and megakaryocytes
Lymphopoietic stem cells
Immature hematopoietic precursors
Immature lymphocyte precursors
Mature, functional blood cells
Mature, functional lymphocytes
LYMPHOPOIESIS
Committed progenitors of B-lymphocyte types
and T-lymphocyte classes
FIG 13.5 Stem cells and normal hematopoiesis.
FIG 13.6 Reticulocytes seen on peripheral blood smear. The two reticulocytes in the center (arrows) still contain remnants of intracel- lular organelles. (Courtesy Beth Payne, Sacred Heart Medical Center, Spokane, WA.)
266 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
bound to ferritin or hemosiderin-containing macrophages and hepatic parenchymal cells. The remaining 3% is lost daily in urine, sweat, bile, and epithelial cells that are shed in the intestines. The mitochondria are responsible for the synthesis of protoporphyrin. The final heme molecule consists of four porphyrin moieties assembled in a ring structure around a central iron molecule.
Hemoglobin Synthesis in Infants When an infant is born, many mechanisms occur to decrease the infant’s hemoglobin level. At birth, erythropoietin, a hormone that stimulates RBC production, disappears from blood plasma; there is an increase in arterial oxygen saturation; and the infant is born with immature bone marrow. These mechanisms cause a slow rate of RBC production at birth. In addition, infants primarily have fetal hemoglobin, accounting for about 70% of their total hemoglobin. Although fetal hemoglobin is a more efficient oxygen carrier, it has a shorter life span than adult hemoglobin. This causes RBCs to be turned over every 70 to 90 days, instead of 120 days for adult RBCs. Fetal hemoglobin may suppress production of erythropoietin.
Hemoglobin levels gradually decrease in the infant over the first 2 to 3 months because of the rapid destruction of fetal hemoglobin, decreased RBC production and depressed erythropoietin production. Additionally, the infant experiences rapid growth during this time, which creates quick expansion of blood volume that further dilutes the supply of hemoglobin. Maternal iron stores are rapidly depleting at this time, and the baby’s iron stores will gradually diminish by 6 months.
As fetal hemoglobin is metabolized, the iron is released and stored. The body has enough iron to synthesize hemoglobin, but there is no stimulation to create hemoglobin at this time. Hemoglobin levels will continue to decrease until the oxygen needs of the tissues in the body are depleted enough to stimulate erythropoietin production. Release of erythropoietin causes erythropoiesis to resume. Adult hemoglobin is made at this time with the iron stored in the body. Hemoglobin levels will steadily increase in the infant starting about 6 months of age as fetal hemoglobin is replaced by adult hemoglobin.
Globin is assembled from two pairs of polypeptide chains produced on specific ribosomes. The protein chain produced in fetal life is altered after birth by sequential gene suppression and activation. At birth, red cells contain mainly fetal hemoglobin (hemoglobin F), which is composed of two α chains and two γ chains. Hemoglobin F is a more efficient gas carrier under decreased oxygen tension than hemoglobin A and releases CO2 more readily. Within 120 days, fetal hemoglobin disappears and is replaced by adult hemoglobin (hemoglobin A) (Fig. 13.9). This switch is the result of globin genes and is not well understood. Hemoglobin A is composed of two α chains and two β chains and constitutes 97% of the hemoglobin found in adults. Hemoglobin A2 comprises 2% to 3% of hemoglobin found in adults and is composed of α2δ2.
Several hundred hemoglobinopathies have been described that have changes in the two α chains or two β chains. Most are characterized by the substitution of only one amino acid and are classified by the polypeptide chain in which the substitution occurs.
Nutritional Requirements for Erythropoiesis In addition to iron, which is required for hemoglobin synthesis, the normal development of erythrocytes requires adequate supplies of protein, vitamins, and minerals. Erythropoiesis cannot proceed in the absence of vitamins, especially B12, folate, B6, riboflavin, pantothenic acid, niacin, ascorbic acid, and vitamin E. Folates and vitamin B12 (cobalamin) are absorbed from food by the ileal mucosa. Folate deficien- cies or vitamin B12 deficiencies lead to impaired DNA synthesis in erythroid cells because the vitamins are coenzymes in a large number of key reactions in cellular metabolism. Absorption of vitamin B12
oxyhemoglobin. Hemoglobin is composed of two pairs of polypeptide chains—the globins. Each globin has an attached heme molecule that is composed of iron plus a protoporphyrin molecule (Fig. 13.7).
After dietary iron is absorbed in the duodenum and proximal jejunum, it is transported through the plasma by the protein transferrin to transferrin iron receptors on the RBC membrane. The transferrin- receptor complex is engulfed by the cell into an invagination of the cell surface. The invagination becomes sealed off and forms an intracyto- plasmic vacuole. Iron is then released and either stored as ferritin or used to synthesize heme (Fig. 13.8). About 67% of total body iron is bound to heme in erythrocytes and muscle cells, and 30% is stored
Heme
Heme
α2
α1
β1
β2
FIG 13.7 Molecular structure of hemoglobin. The molecule is a spherical tetramer weighing approximately 64,500 daltons. It contains two α- and two β-polypeptide chains and four heme groups.
+
Heme
Hemoglobin
Apotransferrin
Transferrin- iron uptake
Fe Ferritin
α2 β2
Polyribosomes
FIG 13.8 Intracellular pathways for iron uptake and incorporation into hemoglobin in erythroblasts in the bone marrow. The iron–transferrin complex is picked up by a membrane-associated receptor and brought into the cell by invagination and formation of an intracytoplasmic vacuole. The iron is then released and stored as intracytoplasmic ferritin or used to synthesize heme, the precursor of hemoglobin. The transferrin–receptor complex is returned to the cell membrane, where the apotransferrin is expelled back into the circulation. (Redrawn from Hillman RS, Finch CA, editors: Red cell manual, ed 6, Philadelphia, 1992, FA Davis, p 8.)
CHAPTER 13 Alterations in Oxygen Transport 267
α chain β chain (adult) δ chain (Hb-A2)
γ chain (fetal) ε chain (embryonic) ξ (embryonic)
% P
o ly
p e p tid
e c
h a in
s p re
se n t
0
10
20
30
40
50
–6 –3 Birth 3 6
Months
KEY
FIG 13.9 Changes in hemoglobin with development. Sequential sup- pression and activation of individual globin genes in the immediate postnatal period result in a switch from fetal hemoglobin (hemoglobin F: two α chains and two γ chains) to adult hemoglobin (hemoglobin A: two α chains and two β chains). A small amount of hemoglobin A2 (two α chains and two δ chains) is also present in the adult. (From Young NS et al, editors: Clinical hematology, Philadelphia, 2006, Mosby, p 24.)
requires intrinsic factor in the gastric juice. Intrinsic factor is secreted by the stomach parietal cells and binds to vitamin B12. The complex then moves down the GI tract to the ileum, where it attaches to specific receptor sites on the ileum mucosal cell. It is absorbed into the cell, released, and transported in the blood to the tissues and liver.
Energy and Maintenance of Erythrocytes For the RBC to perform efficiently and survive in the circulation for the full 120-day life span, it must have a source of energy. Without an energy source, ion pumps fail and the RBC becomes sodium logged
and potassium depleted. The shape changes from a biconcave disk to a sphere, and it is quickly removed from the circulation by the filtering action of the spleen and the mononuclear phagocyte system. The metabolism of the RBC is limited because of the absence of a nucleus, mitochondria, and other subcellular organelles. Although the binding, transport, and release of O2 and CO2 is a passive process that does not require energy, other energy-dependent metabolic processes occur that are essential to RBC viability. The chief metabolic pathway, accounting for about 90% of the glucose used, is the anaerobic or Embden–Meyerhof pathway. The Embden–Meyerhof pathway provides ATP for regulation of intracellular Na+, K+, Ca2+, and Mg2+ concentrations via cation pumps. About 10% of the glucose undergoes aerobic glycolysis in the hexose monophosphate shunt. The hexose monophosphate shunt provides nicotinamide adenine dinucleotide phosphate (NADPH) and glutathione (GSH) to reduce cellular oxidants. This protects the cell from permanent oxidant injury. The methemoglobin reductase pathway protects hemo- globin from oxidation via nicotinamide adenine dinucleotide (NADH) and methemoglobin reductase. Last, the Rapoport–Luebering pathway forms 2,3-diphosphoglycerate (2,3-DPG), which facilitates oxygen release to the tissues. These pathways contribute energy for maintaining (1) high intracellular K+, low intracellular Na+, and very low intracellular Ca2+ levels (cation pumps); (2) reduced hemoglobin concentration; (3) high levels of reduced GSH; and (4) membrane integrity and deform- ability. Deficiencies of enzymes that regulate these pathways can be due to natural causes, such as the normal aging process, or to an inherited deficiency of an enzyme.
Red cell membrane structures are matrices formed from a double layer of phospholipids. In the red cell membrane, the globular proteins floating on the “sea of lipids” form a protein network on the cytoplasmic surface of the membrane. Half of the mass of the membrane is lipid, which is partially responsible for many of its physical characteristics. Both passive cation permeability and mechanical flexibility can be significantly influenced by changing the lipid composition of the membrane. Maintenance and renewal of membrane lipids in well- developed RBCs is important, and problems in these pathways result in premature cell death.
Red Cell Production When blood is described as a single body system, it is called the erythron (Fig. 13.10). The erythron includes the blood cells and their bone marrow
Stem cells
Nucleated erythrocytes 5 X 109/kg
Marrow reticulocytes 5 X 109/kg
Circulating reticulocytes 3.3 X 109/kg
Circulating erythrocytes 330 X 109/kg
FIG 13.10 Scale model of the erythron, showing the relative proportions of each component. The numbers below each box indicate the average number of cells per kilogram of body weight. (Redrawn from Wintrobe M et al, editors: Clinical hematology, ed 8, Philadelphia, 1981, Lea & Febiger, p 109.)
268 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
amount of liver glucuronidase available for bilirubin conjugation is low, which may cause an accumulation of toxic unconjugated bilirubin. Unconjugated bilirubin is toxic because in this form it is lipid soluble and can easily cross cell membranes. This form of bilirubin has a high affinity for basal ganglia of the central nervous system. The conjugated form of bilirubin is water soluble but lipid insoluble, so it cannot cross cell membranes.
precursors. The size of the erythron increases or decreases based on the erythropoietic process and the pathologic changes in red cells seen in anemia. Erythropoiesis is controlled by a system sensitive to alterations in the concentration of hemoglobin in the blood. A decrease in hemo- globin level decreases the tissue oxygen tension in the kidney. In response to this hypoxia, the kidney secretes a hormone, erythropoietin, that stimulates primitive stem cells in the bone marrow to differentiate into proerythroblasts or pronormoblasts, thereby increasing the erythron (Fig. 13.11). Hypoxia from a low hemoglobin saturation level and other causes, such as high altitudes, can also initiate this response.
Red Cell Destruction As the red cell ages, the various enzyme activities decrease, amounts of membrane lipids decrease, levels of hemoglobin A2 and methemoglobin increase, and changes in cell size occur. Methemoglobin is formed when the iron of the hemoglobin molecule is oxidized to the ferric state (Fe3+). The cell loses its ability to deform and becomes increasingly fragile. These aging red cells are then removed by the mononuclear phagocytic system. The red cells are digested by proteolytic and lipolytic enzymes in phagolysosomes of macrophages. Almost 80% to 90% of this process occurs in macrophages of the spleen and liver. Only 10% to 20% of normal destruction occurs intravascularly.
Globin is broken down into amino acids, and the iron is recycled. Porphyrin is reduced to bilirubin, which is transported to the liver and conjugated by the enzyme glucuronyl transferase. Finally, conjugated bilirubin is excreted in the bile as glucuronide. Bacteria in the intestine convert conjugated bilirubin into urobilinogen, which is excreted primar- ily in the stool but also in the urine (Fig. 13.12). Any condition causing increased red cell destruction increases the load of bilirubin to be cleared, which leads to increased serum levels of unconjugated bilirubin and increased excretion of urobilinogen. Increased levels of circulating bilirubin give the skin a yellowish tone, which is called jaundice. In newborns, the albumin levels for bilirubin transport are low and the
Stem cells Bone marrow
Erythrocyte production
Red cell mass
Kidney
Erythropoietin
Oxygen sensor
FIG 13.11 Feedback circuit illustrating the role of erythropoietin in the regulation of red cell mass.
KEY POINTS • Red cell development from pluripotential stem cells in the bone marrow is
stimulated by a hormone growth factor called erythropoietin. Erythropoietin is secreted into the bloodstream by kidney cells in response to low oxygen tension in the blood.
• During development, red cells lose their nuclei and other cytoplasmic organelles. A reticulocyte is an immature red cell that still retains some cellular organelles. An increased blood reticulocyte count is a useful indicator of increased red cell production.
• Hemoglobin is the major component of red cells. It is composed of two pairs of polypeptide chains, each of which has a heme molecule attached. Oxygen can bind reversibly to an iron molecule at the center of each heme. When fully saturated, a hemoglobin molecule carries four oxygen molecules and is referred to as oxyhemoglobin.
• Red cell production requires adequate amounts of several nutrients, par- ticularly iron, vitamin B12, and folate. Lack of intrinsic factor inhibits absorption of B12 from the small intestine and is a risk factor for anemia.
• Red cells rely on glycolysis for energy production because they do not contain mitochondria. As energy production declines because of red cell aging and loss of essential glycolytic enzymes, the cell swells, is trapped in the spleen, and is removed from the circulation. Red cell degradation releases bilirubin, a toxic substance that is conjugated in the liver and excreted in urine and bile.
GAS TRANSPORT AND ACID–BASE BALANCE
RBCs have many important functions in the body related to gas transport and acid–base balance. RBCs contain hemoglobin, which is responsible for oxygen transport to the body tissues. Oxygen combines with the heme portion of hemoglobin to form oxyhemoglobin in a reversible bond in the pulmonary capillary attributable to a high partial pressure of oxygen (PO2) and is carried to the tissues, where it is released. Large quantities of carbonic anhydrase in RBCs catalyze the reaction between CO2 (produced by cellular metabolism in the tissues) and water to form carbonic acid, which dissociates into hydrogen and bicarbonate ions for elimination by the lungs and kidneys. Approximately 90% of the CO2 in the arterial blood and 60% of the CO2 in the venous blood are transported as bicarbonate. Finally, the hemoglobin protein directly binds with the remaining CO2 to form carbaminohemoglobin for CO2 transport. Carbamino compounds are acid–base buffers responsible for as much as 50% of the whole blood–buffering power.
Oxygen Transport Transport of oxygen to the body tissues and removal of carbon dioxide is a complex process involving interdependent functioning of the lungs, heart, and blood (Fig. 13.13). Approximately 97% of oxygen in the blood is transported on red cells reversibly combined with hemoglobin (oxyhemoglobin), and 3% is dissolved in plasma. Each hemoglobin molecule can bind four atoms of oxygen. Despite a combining potential of 1.39 mL of oxygen per gram of hemoglobin in pure hemoglobin, a maximum of about 1.34 mL of oxygen per gram of hemoglobin is
CHAPTER 13 Alterations in Oxygen Transport 269
hemoglobin. The partial pressure affects the tendency of oxygen to bind with hemoglobin. The partial pressure of oxygen in arterial blood (PaO2) is usually 80 to 100 mm Hg, whereas the partial pressure of oxygen in venous blood (PvO2) is usually 35 to 40 mm Hg. The amount of hemoglobin bound to oxygen relative to the total amount of hemoglobin is expressed as the oxygen saturation and is given in a percentage. Satura- tion of arterial blood with oxygen (SaO2) is normally 95% to 100%, whereas that of venous blood (SvO2) is 60% to 80%.
The oxygen–hemoglobin dissociation curve (Fig. 13.14) describes the relationship between PO2 and SO2. The upper part of the curve represents oxygen uptake in the lungs and demonstrates that significant changes in PO2 result in only small changes in SO2 to help ensure adequate oxygen delivery to the tissues. On the steep lower portion of the curve, reflecting the venous blood, small changes in venous PO2 result in large changes in SvO2. Therefore the tissues are protected with an available oxygen reserve as large quantities of oxygen are released from the blood for relatively small decreases in PO2. Normally, tissue PO2 does not rise above 40 mm Hg to enhance diffusion of oxygen from the blood to the tissues. The strength of the bond between hemoglobin and oxygen is called the oxygen–hemoglobin affinity. For any given PO2, hemoglobin saturation will be higher when affinity is increased and saturation will be lower when affinity is decreased. Changes in hemoglobin affinity are represented by shifts in the oxyhemoglobin dissociation curve (see Fig. 13.14). Shifts in the oxyhemoglobin curve affect the ability of hemoglobin to bind O2 in the lungs and release it in the tissues. The ability of hemoglobin to release oxygen to the tissues is commonly assessed at point P50 on the oxygen–hemoglobin dissocia- tion curve. The P50 is the PO2 at which 50% of the hemoglobin is saturated. A decrease in oxygen affinity (shift to the right on the oxy- hemoglobin dissociation curve) or an increase in oxygen affinity (shift to the left) can be caused by the conditions listed in Fig. 13.14.
A shift of the oxyhemoglobin dissociation curve attributable to changes in the blood levels of PCO2 and the H
+ concentration is important to enhance oxygen uptake by the blood in the lungs and the release of oxygen from the hemoglobin to the body tissues. This is called the Bohr effect.
A shift of the oxyhemoglobin dissociation curve to the right enhances oxygen release to the cell. The shift provides the increase in oxygen delivery that is needed during exercise and other types of stress, as well as in chronic disease states. A shift of the oxyhemoglobin dissociation curve to the left is seen with a decrease in H+ ion concentration, with a decrease in PCO2, with an increase in pH, with a decrease in temperature, with a decrease in 2,3-DPG concentration, in some congenital hemo- globinopathies, and with increased carboxyhemoglobin concentration.
Another important factor affecting O2 delivery to tissues is the arterial oxygen content (CaO2). Arterial blood oxygen content (CaO2) and venous blood oxygen content (CvO2) can be calculated by adding the amount of oxygen combined with hemoglobin and the amount of oxygen dissolved in plasma (Table 13.4).
Oxygen delivery, or (ḊO2), is the amount of oxygen (in milliliters) delivered per minute to the tissues. It is calculated by multiplying the arterial oxygen content (CaO2) by the cardiac output (CO). CO is usually between 4 and 8 L/min. Therefore oxygen delivery is approximately 1000 mL/min.
Oxygen consumption (V̇O2) is the amount of oxygen consumed by the tissues and is measured in milliliters of oxygen per minute. Once the oxygen reaches the tissues, oxygen consumption is controlled by the rate of energy expenditure within the cells, or the rate at which adenosine diphosphate (ADP) is formed from ATP to provide energy. The increasing concentration of ADP enhances the metabolic utilization of oxygen. Oxygen consumption can be determined by subtracting the oxygen remaining in the venous blood (CvO2) from the oxygen delivered
available due to a reduction of about 4% by impurities such as met- hemoglobin. The blood of an average person contains approximately 15 g of hemoglobin per 100 mL of blood. Therefore in the average person, the hemoglobin in 100 mL of blood can combine with approxi- mately 20 mL of oxygen if the hemoglobin is 100% saturated. This value is expressed as 20 vol%.
The partial pressure of oxygen (PO2) reflects the pressure or tension that oxygen exerts when it is dissolved in blood. Partial pressure is measured in millimeters of mercury (mm Hg). In the pulmonary capillaries, where PO2 is high, oxygen binds efficiently with hemoglobin, but in the tissue capillaries, where PO2 is low, oxygen is released from
Haemoglobin Erythrocytes
Spleen
Blood
Kidney
Liver
Bile
Enterohepatic circulation
Urine
Gut
Faeces
Splenic macrophages (engulf and digest erythrocytes)
Haemoglobin
Haem Globin
Bilirubin (unconjugated/ protein bound)
Bilirubin (conjugated/
water-soluble)
Urobilinogen
Conjugation
Urobilinogen
Urobilinogen Urobilin (oxidized urobilinogen)
Stercobilin (oxidized urobilinogen)
FIG 13.12 Most hemoglobin degradation occurs in the macrophages of the spleen. The globin and iron portions are conserved and reused. Heme is reduced to bilirubin, eventually degraded to urobilinogen, and excreted in the feces. Thus indirect indicators of erythrocyte or erythrocyte destruction include the blood bilirubin level and urobilinogen concentration in the feces. (From Cross SS: Underwood’s pathology: a clinical approach, ed 6, Churchill Livingstone, 2013, Elsevier Ltd.)
270 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
acid (H2CO3), but in the red cell the presence of carbonic anhydrase acting as a catalyst significantly accelerates this reaction. Carbonic acid rapidly dissociates into hydrogen ions (H+) and bicarbonate ions (HCO3
−). As the concentration of HCO3 − in the red cell increases, it
diffuses into the plasma, whereas the H+ remains. This increase in intracellular cation concentration causes the anion chloride to diffuse from the plasma into the red cell to maintain electrical neutrality. This is referred to as the chloride shift.
Hemoglobin provides an excellent acid–base buffer by reacting with the free hydrogen ions and directly with carbon dioxide to form carbaminohemoglobin (HbCO2), which is easily dissociated in the lungs to yield free carbon dioxide for exhalation. Unloading of oxygen in the tissue facilitates the loading of carbon dioxide and is referred to as the Haldane effect.
Alterations in Oxygen Transport There must be sufficient circulating hemoglobin mass to meet the metabolic needs of the body. A feedback mechanism ensures that when the amount of oxygen reaching the tissues decreases, a compensatory increase occurs in the production of red cells. The feedback mechanism regulating RBC production is under the control of erythropoietin (Fig. 13.16).
to the tissues by the arteries (CaO2), and is known as the Fick equation.
Gas values (pressure and content) relative to the oxygenation of blood are summarized in Table 13.4.
Carbon Dioxide Transport RBCs are also important in the transport of carbon dioxide in the blood. Carbon dioxide, a by-product of cellular metabolism, is trans- ported in three forms in the blood: (1) as dissolved gas, (2) as bicarbonate ion (HCO3
−), and (3) in association with hemoglobin (Fig. 13.15). The partial pressure of carbon dioxide (PCO2) reflects the pressure or tension that carbon dioxide exerts when it is dissolved in the blood. Partial pressure is measured in millimeters of mercury (mm Hg). In the pulmonary capillaries, carbon dioxide easily dissociates from hemoglobin and then diffuses across the alveolar membrane into the alveolar sacs. In the body tissues, the carbon dioxide inside the cells diffuses into the blood and attaches to the hemoglobin as oxygen is released to the tissues. The partial pressure of carbon dioxide in the arterial blood (PaCO2) is usually 40 mm Hg and in the venous blood (PvCO2) it is usually 45 mm Hg. These differences are much smaller than those of oxygen, but carbon dioxide diffuses much more readily. Dissolved carbon dioxide combines slowly with water in the plasma to form carbonic
Air pump Blood pump
Internal respiration
End product of external and internal respiration
PaO2 = 100 mm Hg SaO2 = 98%
CvO2 = (0.003 X PvO2) + (1.34 X Hb X SvO2) CvO2 = 15.2 volume % or = 15 volume %
DO2 = CO X CaO2 X 10
DO2 = 1000 ml/min
• •
Venous CaO2 = (0.003 X PaO2) + (1.34 X Hb X SaO2)
CO = 5 L/min CO = HR X SV
1. Preload 2. Contractility 3. Afterload
External respiration 1. Ventilation 2. Distribution 3. Diffusion 4. Perfusion
CaO2 = 19.9 volume % or = 20 volume %
Arterial
Hb 15 g/dl
O2
˜ ˜
˜
PvO2 = 40 mm Hg SvO2 = 75%
VO2 = CO X (CaO2 – CvO2) X 10
VO2 = 250 ml/min
• •
˜
FIG 13.13 Oxygen transport. Diffusion of oxygen into the pulmonary capillaries occurs when alveolar PO2 exceeds capillary PO2. Maintenance of this gradient is dependent on adequate alveolar ventilation and perfusion. Delivery of oxygenated blood to the tissues (ḊO2) is determined by the content of oxygen in the blood (CaO2) and the cardiac output (CO). The difference between arterial and venous oxygen is a reflection of oxygen consumption by tissues ( V̇O2). Hb, Hemoglobin; HR, heart rate; SV, stroke volume.
CHAPTER 13 Alterations in Oxygen Transport 271
100
Right
O xy
g e n s
a tu
ra tio
n , %
Left
A
P50
PaO2, mm Hg
B C
90
80
70
60
50
40
30
20
10
10 20 30 40 50 60 70 80 90 100 110 120 130 140
Factors shifting curve to the right
1. [H+], pH
2. PCO2 3. Temperature
4. 2,3-DPG
a. Pyruvate kinase deficiency
b. Hyperthyroidism
c. Anemia
d. Chronic hypoxemia
(1) High altitude
(2) Congenital heart disease
5. Some congenital hemoglobinopathies:
a. Hemoglobin Kansas
b. Hemoglobin Seattle
Factors shifting curve to the left
1. [H+], pH
2. PCO2 3. Temperature
4. 2,3-DPG
a. Hexokinase deficiency
b. Hypothyroidism
c. Bank blood
5. Some congenital
hemoglobinopathies:
a. Hemoglobin Rainier
b. Hemoglobin Hiroshima
c. Hemoglobin
San Francisco
6. Carboxyhemoglobin
FIG 13.14 Oxygen–hemoglobin dissociation curve: factors affecting hemoglobin’s affinity for oxygen. Curve B is the standard oxyhemoglobin dissociation curve. Factors that shift the curve to the left are represented in curve A; factors that shift the curve to the right are represented in curve C. 2,3-DPG, 2,3-Diphosphoglycerate. (Redrawn from Gottlieb JE: Breathing and gas exchange. In Kinney MR et al, editors: AACN’s clinical reference for critical care nursing, ed 3, New York, 1993, McGraw-Hill, p 672.)
Capillary
Dissolved CO2 (5%)
Hb + CO2 CO2
3
H+
+ HCO–
3HCO –
H2CO3 H2O
Cl–
CO2
RBC
RBC
Carbaminohemoglobin (20%)
Carbonic anhydrase
Bicarbonate ion (75%)
Plasma
Cell
Cellular respiration
+
FIG 13.15 Carbon dioxide is transported in three forms in the blood. Transportation of CO2 (1) as dissolved gas, (2) as bicarbonate ion (HCO3
−), and (3) in association with hemoglobin (Hb).
KEY POINTS • Nearly all (97%) of the oxygen transported in blood is bound to hemoglobin
within the red cells. Only 3% is dissolved in plasma. It is this 3% that is measured as PaO2. At a normal PaO2, hemoglobin is 95% to 100% saturated with oxygen. About 25% of the bound oxygen is unloaded to the tissues, resulting in a venous hemoglobin saturation of about 75%.
• The oxyhemoglobin dissociation curve describes the relationship between the partial pressure of oxygen and hemoglobin saturation. In the lung, where PO2 is high (100 mm Hg), oxygen is loaded onto hemoglobin. In the tissues, where PO2 is low (40 mm Hg), oxygen is unloaded from hemoglobin to tissues.
• The affinity of hemoglobin for oxygen is affected by temperature, acid–base status, 2,3-DPG levels, and carbon dioxide concentration. Affinity decreases at the tissue level because of increased levels of acid, 2,3-DPG, and carbon dioxide. This shift to the right of the oxyhemoglobin dissociation curve enhances unloading of oxygen to the tissue. A shift to the left occurs in the lungs, where blood is more alkalotic and carbon dioxide levels are lower. The increased affinity of hemoglobin for oxygen at the lung facilitates oxygen binding.
• The oxygen content of arterial blood is calculated by adding the amount bound to hemoglobin (Hb) plus the amount dissolved in plasma: CaO2 = (Hb × 1.34 × SaO2) + (PaO2 × 0.003). Oxygen delivery to the body tissues is calculated by multiplying CaO2 by cardiac output (CO): ḊO2 = CaO2 × CO × 10.
• The consumption of oxygen by tissues can be estimated using the Fick equation: �VO CO CaO CvO2 2 2 10= × − ×( ) . Oxygen consumption increases with increased tissue metabolism.
272 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
• Hemoglobin is an important factor in carbon dioxide transport in the blood. In the tissues, hemoglobin binds carbon dioxide to form carbaminohemoglobin, which then releases carbon dioxide in the lungs. RBCs contain the enzyme carbonic anhydrase, which greatly increases the conversion of carbon dioxide and water into HCO3
− and H+ at the tissue level. In the lungs, the reaction proceeds in reverse, producing carbon dioxide, which is eliminated by the lungs.
• Factors that decrease hemoglobin mass (such as anemia) or decrease arterial saturation (such as hypoxia from either cardiac or pulmonary conditions) impair oxygen delivery to the body tissues. This stimulates an increased release of erythropoietin and the production of RBCs.
ANEMIA Erythrocyte disorders are divided into two groups: (1) anemia, defined as a deficit of red cells, and (2) polycythemia, defined as an excess of red cells (Box 13.1). An anemic patient has tissue hypoxia attributable to the low oxygen-carrying capacity of the blood. In contrast, a patient with polycythemia has increased blood viscosity and volume attributable to the increase in the number of RBCs. (Polycythemia is discussed in
Bone marrow
ANEMIA
Stem cells
Erythrocyte production
Decreased red cell mass
Kidney
Increased erythropoietin
Oxygen sensor
Decreased arterial oxygen
saturation
Increased erythropoietin
Bone marrow
HYPOXIA
Stem cells
Erythrocyte production
Kidney
Oxygen sensor
Increased red cell mass
Decreased erythropoietin
Bone marrow
POLYCYTHEMIA VERA
Stem cells
Erythrocyte production
Kidney
Oxygen sensor
A
B
C
FIG 13.16 Alterations in the erythropoietin feedback circuit. Any factor decreasing oxygen delivery to the oxygen sensor cells results in increased secretion of erythropoietin and a compensatory increase in erythrocyte production as illustrated in (A) for anemia, with a decrease in erythrocyte mass; and in (B) for hypoxia, with a decrease in arterial oxygen saturation. An increase in erythrocyte mass, as occurs with polycythemia vera (C), decreases erythropoietin production.
greater detail later in this chapter.) Table 13.5 presents the laboratory findings for erythrocyte disorders in terms of relative anemia, absolute anemia caused by decreased RBC production, and absolute anemia caused by increased RBC destruction.
Relative anemia is characterized by normal total red cell mass with disturbances in the regulation of plasma volume. For example, in pregnant women the average plasma volume is 43% greater than in nonpregnant women, which causes a “dilutional anemia.”
Absolute anemia includes those types of anemia with an actual decrease in the numbers of red cells. This can be caused by decreased production of red cells or increased destruction of red cells.
General Effects of Anemia The clinical manifestations of anemia include a reduction in oxygen- carrying capacity, tissue hypoxia, and compensatory mechanisms to restore tissue oxygenation. Increased pulmonary and cardiac function increases the oxygen supply, and an increase in oxygen extraction occurs to protect tissues. Specific adaptations to anemia to increase oxygenated blood flow include an increase in the heart rate, cardiac output, and circulatory rate and a preferential increase in blood flow to vital organs. Specific adaptations to anemia to increase oxygen utilization by tissues include an increase in 2,3-DPG concentration in erythrocytes and a decreased oxygen affinity of hemoglobin in tissues. Selective tissue
CHAPTER 13 Alterations in Oxygen Transport 273
TABLE 13.4 Gas Values Significant to the Oxygenation of Blood
Gas Values Description Measurement/Reflection Calculation/Formula Normal Value/Formula
CaO2 Arterial blood oxygen content is amount of oxygen carried in arterial blood
Measured in milliliters of oxygen per deciliter of blood (mL/dL), or vol%
Sum of oxyhemoglobin (15 Hb g/100 mL × 1.34 mL O2/g Hb × 97.5% arterial saturation = 19.6 vol%) + amount of oxygen dissolved in plasma (PaO2 = 100 mm Hg × 0.003 vol%/mm Hg = 0.3 vol%)
~20 vol% Formula: 19.6 vol%
oxyhemoglobin + 0.3 vol% dissolved in plasma = 19.9 vol%
CvO2 Venous blood oxygen content is amount of oxygen carried in venous blood
Measured in milliliters of oxygen per deciliter of blood (mL/dL), or vol%
Sum of oxyhemoglobin (15 Hb/100 mL × 1.34 mL O2/g Hb × 75% venous saturation = 15.0 vol%) + amount of oxygen dissolved in plasma CvO2 = 40 mm Hg × 0.003 vol%/mm Hg = 0.12 vol%)
~15 vol% Formula: 15 vol%
oxyhemoglobin + 0.12 vol% dissolved in plasma = approximately 15 vol%
ḊO2 Oxygen delivery or transport is amount of oxygen delivered to tissues
Measured in milliliters of oxygen per minute (mL/min)
Normal arterial: ḊO2 = cardiac output (L/min) × CaO2 × 10 Normal venous: �DO cardiac output L CvO2 2 10= × ×( min)
Normal arterial: ~1000 mL of O2/min
Normal venous: ~750 mL of O2/min
PaO2 Partial pressure of oxygen in arterial blood
Measured in millimeters of mercury (mm Hg)
Reflects tension or pressure that is exerted by oxygen when it is dissolved in plasma
Normal PaO2 is 80–100 mm Hg
PaCO2 Partial pressure of carbon dioxide in arterial blood
Measured in millimeters of mercury (mm Hg)
Reflects tension or pressure that is exerted by carbon dioxide when it is dissolved in plasma
Normal PaCO2 is 35–45 mm Hg
PvO2 Partial pressure of oxygen in venous blood
Measured in millimeters of mercury (mm Hg)
Reflects tension or pressure that is exerted by oxygen when it is dissolved in plasma
Normal PvO2 is 35–40 mm Hg
PvCO2 Partial pressure of carbon dioxide in venous blood
Measured in millimeters of mercury (mm Hg)
Reflects tension or pressure that is exerted by carbon dioxide when it is dissolved in plasma
Normal PvCO2 is 41–51 mm Hg
SaO2 Amount of hemoglobin bound to oxygen relative to total amount of hemoglobin, both reduced and bound, in arterial blood
Expressed as percentage Normal SaO2 is 95%–100%
SvO2 Amount of hemoglobin bound to oxygen relative to total amount of hemoglobin, both reduced and bound, in venous blood
Expressed as percentage Normal SvO2 is 60%–80%
V̇O2 Oxygen consumption is amount of oxygen consumed by tissues
Measured in milliliters of oxygen per minute (mL/min)
�VO cardiac output CaO CvO2 2 2 10= × − ×( ) Normal V̇O2 is 200–250 mL of O2/min
Oxygen consumption is derived from difference between arterial oxygen transport and venous oxygen transport
274 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
weakness, and loss of stamina, followed by tachycardia and exertional dyspnea. Healthy young patients may present with very few symptoms at hemoglobin levels of 7 to 8 g/dL; however, elderly patients and patients with cardiovascular or pulmonary disease may have symptoms with even modest degrees of anemia and hemoglobin levels of 9 to 11 g/dL. Specific symptoms related to moderate to severe anemia are orthostatic and nonorthostatic hypotension, vasoconstriction, pallor, tachypnea, dyspnea, tachycardia, transient murmurs, angina pectoris, heart failure, intermittent claudication, night cramps in muscles, headache, light- headedness, tinnitus, roaring in the ears, and faintness.
perfusion provides shunting to vital organs in short-term compensation, and increased erythropoietic activity is stimulated to provide long-term compensation. The extent of the physiologic adaptations is influenced by (1) the severity of the anemia; (2) the competency of the pulmonary and cardiac systems; (3) the oxygen requirements of the individual, which are dependent on physical and metabolic activity; (4) the duration of the anemia; (5) the underlying disease or condition; and (6) the presence and severity of coexisting disease. Mild anemia is usually associated with no clinical symptoms; however, early symptoms in patients with mild to moderate anemia include fatigue, generalized
Adapted from Prchal JT: Clinical manifestations and classification of erythrocyte disorders. In Lichtman MA, Kipps TJ, Seligsohn U, Kaushansky K, Prchal JT, editors: Williams hematology, ed 8, New York, 2010, McGraw-Hill. Accessed at www.accessmedicine.com/content.aspx?aID= 6108487.
I. Anemia A. Absolute
1. Decreased red cell production (a) Acquired 1) Pluripotent stem cell failure a) Aplastic anemia {1} Radiation induced {2} Drugs and chemicals {3} Viruses {4} Idiopathic b) Anemia of leukemia and myelodysplastic
syndrome c) Anemia associated with marrow infiltration d) Anemia associated with chemotherapy 2) Erythroid progenitor cell failure a) Pure red cell aplasia b) Endocrine disorders c) Acquired sideroblastic anemia 3) Functional impairment of erythroid progenitors {1} Megaloblastic anemias a) B12 deficiency b) Folate deficiency c) Acute megaloblastic anemia due to nitrous oxide d) Drug-induced megaloblastic anemia {2} Iron deficiency anemia {3} Anemia from other nutritional deficiencies {4} Anemia of chronic disease {5} Anemia of renal failure {6} Anemia caused by chemical agents {7} Anemia caused by thalassemias {8} Erythropoietin antibodies (b) Hereditary 1) Pluripotent stem cell failure {1} Fanconi anemia {2} Shwachman syndrome {3} Dyskeratosis congenita 2) Erythroid progenitor cell failure {1} Diamond–Blackfan syndrome {2} Congenital dyserythropoietic syndrome 3) Hereditary sideroblastic anemia 4) Thalassemias
2. Increased red cell destruction or loss (a) Acquired 1) Mechanical a) Macroangiopathic (artificial heart valves) b) Microangiopathic (disseminated intravascular coagulation
[DIC]) c) Parasites and microorganisms 2) Antibody mediated 3) Hypersplenism 4) Chemical and physical injury 5) Acute blood loss (b) Hereditary 1) Hemoglobinopathies (sickle cell) 2) Red cell membrane disorders 3) Red cell enzyme defects 4) Porphyrias
B. Relative (increased plasma volume) 1. Macroglobulinemia 2. Pregnancy 3. Athletes 4. Postflight astronauts
II. Polycythemia (Erythrocytosis) A. Relative (decreased plasma volume)
1. Dehydration 2. Diuretics 3. Stress or smoker’s erythrocytosis
B. Absolute (increased red cell volume) 1. Primary polycythemia
(a) Acquired (polycythemia vera) (b) Hereditary congenital polycythemia
2. Secondary polycythemia (a) Appropriate 1) Altitude 2) Cardiopulmonary disorders 3) Increased hemoglobin affinity for oxygen (b) Inappropriate 1) Renal cysts and tumors 2) Hepatoma 3) Cerebellar hemangioblastoma 4) Essential
BOX 13.1 Classification of Anemia and Polycythemia
CHAPTER 13 Alterations in Oxygen Transport 275
T A
B L E
1 3
.5
L a b
o ra
to ry
F in
d in
g s
fo r
E ry
th ro
cy te
D is
o rd
e rs
D is
e a se
H C
T H
B M
C V
M C
H M
C H
C R
e ti
c R
B C
W B
C P
L T
B lo
o d
S m
e a r
L a
b o
ra to
ry T
e st
s D
ia g
n o
st ic
C
h a
ra ct
e ri
st ic
s
Re la
tiv e
an em
ia Lo
w Lo
w N
or m
al Lo
w Lo
w N
or m
al Lo
w Lo
w Lo
w N
or m
al Pl
as m
a vo
lu m
e in
cr ea
se d,
ca
us in
g re
la tiv
e de
cr ea
se in
n um
be r
of
ce lls
In cr
ea se
d vo
lu m
e ca
n be
c au
se d
by
pr eg
na nc
y,
sp le
no m
eg al
y, IV
in
fu si
on s
A b
so lu
te A
n e m
ia A
pl as
tic a
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yp oc
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; l ac
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ly m
ph oc
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m ay
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in cr
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d;
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hr op
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in in
cr ea
se d;
bo
ne m
ar ro
w a
pl as
tic
Sp ec
ifi c
ca us
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ou ld
be
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tifi ed
a nd
re
m ov
ed f
ro m
en
vi ro
nm en
t Ch
ro ni
c re
na l
fa ilu
re Lo
w Lo
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w Lo
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oc yt
ic ,
no rm
oc hr
om ic
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s;
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o ft
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ec re
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; bo
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ar ro
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ro du
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pp re
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Ki dn
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a bn
or m
al
Pe rn
ic io
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ia Lo
w Lo
w H
ig h
H ig
h N
or m
al Lo
w Lo
w Lo
w Lo
w O
va l m
ac ro
cy te
s;
hy pe
rs eg
m en
te d
se gs
D ec
re as
ed B
12 le
ve l;
po si
tiv e
Sc hi
lli ng
t es
t N
eu ro
lo gi
c sy
m pt
om s;
in
cr ea
se d
bi lir
ub in
Fo la
te d
efi ci
en cy
Lo w
Lo w
H ig
h H
ig h
N or
m al
Lo w
Lo w
Lo w
Lo w
O va
l m ac
ro cy
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hy
pe rs
eg m
en te
d se
gs D
ec re
as ed
f ol
ic a
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le ve
l; ne
ga tiv
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hi lli
ng t
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N o
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ic
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pt om
s Iro
n de
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nc y
Lo w
Lo w
Lo w
Lo w
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N or
m al
or
lo w
Lo w
N or
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N or
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M ic
ro cy
tic , h
yp oc
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Se ru
m ir
on d
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; iro
n- bi
nd in
g Bo
ne m
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ea se
d Th
al as
se m
ia Lo
w Lo
w Lo
w Lo
w Lo
w H
ig h
Lo w
N or
m al
N or
m al
M ic
ro cy
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yp oc
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ic
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D ec
re as
ed o
sm ot
ic
fr ag
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; h em
og lo
bi n
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si s
di ag
no st
ic ; s
er um
ir on
, TI
BC , a
nd f
er rit
in n
or m
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H er
ed ita
ry d
is ea
se
A b
so lu
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n e m
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a u
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n cr
e a se
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In
tr in
si c
A b
n o
rm a li
ty Si
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c el
l Lo
w Lo
w N
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or m
al N
or m
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N or
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N or
m oc
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, no
rm oc
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BC
ta rg
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; s ic
kl e
ce lls
; N RB
Cs
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p re
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o n
el ec
tr op
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si s
H er
ed ita
ry d
is ea
se Co nt
in ue
d
276 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
T A
B L E
1 3
.5
L a b
o ra
to ry
F in
d in
g s
fo r
E ry
th ro
cy te
D is
o rd
e rs
— co
n t’
d
D is
e a se
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T H
B M
C V
M C
H M
C H
C R
e ti
c R
B C
W B
C P
L T
B lo
o d
S m
e a r
L a
b o
ra to
ry T
e st
s D
ia g
n o
st ic
C
h a
ra ct
e ri
st ic
s
H er
ed ita
ry
sp he
ro cy
to si
s Lo
w Lo
w N
or m
al N
or m
al N
or m
al
to
hi gh
H ig
h Lo
w N
or m
al N
or m
al Sp
he ro
cy te
s pr
es en
t Bi
lir ub
in e
le va
te d;
ha
pt og
lo bi
ns r
ed uc
ed ;
ab no
rm al
R BC
f ra
gi lit
y
H er
ed ita
ry d
is ea
se
G 6P
D d
efi ci
en cy
Lo
w Lo
w N
or m
al N
or m
al N
or m
al H
ig h
Lo w
H ig
h N
or m
al H
ei nz
b od
y sm
ea r
po si
tiv e
Te st
s on
ly a
bn or
m al
in
he m
ol yt
ic e
pi so
de s
H er
ed ita
ry d
is ea
se
E x
tr in
si c
A b
n o
rm a li
ty H
D N
B Lo
w Lo
w N
or m
al N
or m
al N
or m
al H
ig h
Lo w
H ig
h N
or m
al Sp
he ro
cy te
s, N
RB Cs
Bi lir
ub in
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va te
d; C
oo m
bs
te st
p os
iti ve
; u rin
ar y
ur ob
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in cr
ea se
d
Ja un
di ce
; e de
m a;
he
pa to
sp le
no m
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y
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ib od
y- m
ed ia
te d
dr ug
r ea
ct io
ns Lo
w Lo
w N
or m
al N
or m
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or m
al H
ig h
Lo w
N or
m al
N or
m al
Po ly
ch ro
m at
ic R
BC s
du e
to in
cr ea
se d
re tic
ul oc
yt es
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ub in
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d; C
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bs
te st
p os
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; u rin
ar y
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in cr
ea se
d
Ja un
di ce
A cu
te b
lo od
lo ss
N or
m al
to
lo w
N or
m al
to
lo w
N or
m al
N or
m al
N or
m al
H ig
h N
or m
al
to
lo w
N or
m al
to
lo w
N or
m al
to
lo w
A pp
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n or
m al
u nt
il re
tic ul
oc yt
es in
cr ea
se Va
lu es
d ep
en d
on s
ev er
ity
of h
em or
rh ag
e an
d w
he n
bl oo
d is
d ra
w n
P o
ly cy
th e m
ia s
Re la
tiv e
po ly
cy th
em ia
H ig
h H
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N or
m al
N or
m al
N or
m al
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m al
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h H
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h N
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as m
a vo
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cr ea
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ca
us in
g re
la tiv
e in
cr ea
se
in n
um be
r of
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D ec
re as
e in
v ol
um e
A bs
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e po
ly cy
th em
ia v
er a
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h H
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m al
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m al
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m al
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s, m
ac ro
cy te
s,
an d
N RB
Cs m
ay b
e pr
es en
t; sh
ift t
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n di
ff er
en tia
l
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sa tu
ra tio
n no
rm al
; bo
ne m
ar ro
w
hy pe
rc el
lu la
r; al
l t hr
ee
ce ll
lin es
in cr
ea se
d Se
co nd
ar y
po ly
cy th
em ia
H ig
h H
ig h
N or
m al
N or
m al
N or
m al
H ig
h H
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N or
m al
N or
m al
N or
m al
H yp
ox em
ia m
ay b
e ev
id en
t; se
ru m
er
yt hr
op oi
et in
e le
va te
d
Lu ng
d is
ea se
m ay
b e
pr es
en t
G 6 P
D ,
G lu
co se
-6 -p
h o sp
h at
e d
e h yd
ro g e n as
e ;
H b ,
h e m
o g lo
b in
; H
ct ,
h e m
at o cr
it ;
H D
N B
, h e m
o ly
ti c
d is
e as
e o
f th
e n
e w
b o rn
; M
C H
, m
e an
c o rp
u sc
u la
r h e m
o g lo
b in
; M
C H
C ,
m e an
c o rp
u sc
u la
r h e m
o g lo
b in
c o n ce
n tr
at io
n ;
M C
V ,
m e an
c o rp
u sc
u la
r vo
lu m
e ;
N R
B C
, n u cl
e at
e d r
e d b
lo o d c
e ll;
P L T ,
p la
te le
t; R
B C
, re
d b
lo o d c
e ll;
R E
T IC
, re
ti cu
lo cy
to si
s; S
e g s,
s e g m
e n te
d n
e u tr
o p h ils
; T IB
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CHAPTER 13 Alterations in Oxygen Transport 277
ANEMIA RELATED TO DECREASED RED CELL PRODUCTION Aplastic Anemia
Etiology and pathogenesis. Aplastic anemia is a stem cell disorder that is characterized by a reduction of hematopoietic tissue in the bone marrow, fatty marrow replacement, and pancytopenia. The decrease in functional bone marrow mass is usually caused by toxic, radiant, or immunologic injury to the bone marrow stem cells, which causes a decrease in the levels of red cells, white cells, and platelets, or pancytopenia.
Aplastic anemia can be classified as acquired or familial. Acquired aplastic anemia can be caused by chemical and physical agents, such as those listed in Table 13.6. Other causes include certain viral infections (e.g., hepatitis, Epstein–Barr virus, HIV, dengue), some mycobacterial infections, diffuse eosinophilic fasciitis, pregnancy, Simmonds disease, and sclerosis of the thyroid. Familial aplastic anemia is associated with Fanconi constitutional pancytopenia, pancreatic deficiency in children, and putative hereditary defect in cellular uptake of folate.
Laboratory features. Pancytopenia is characterized by low red cell, white cell, and platelet counts. The magnitude of the granulocytopenia is very important for the immediate prognosis. An absolute granulo- cyte count of less than 200/mm3 results in immediate susceptibility to infectious complications. Coagulation tests are generally normal except for the bleeding time, which reflects the low platelet count. The ultimate diagnosis of aplastic anemia rests on the interpretation of an adequate bone marrow biopsy specimen, although important clues to the cause of pancytopenia can be obtained from the history, physical examination, and laboratory data. Pancytopenia that is not primarily hematologic in origin but secondary to other disease processes is usually an obvious diagnosis.
Clinical manifestations. Aplastic anemia is a disease of the young, with most patients presenting between 15 and 25 years of age. Another age group likely to present with aplastic anemia are those ≥60 years old. The most common form of aplastic anemia is iatrogenic—resulting from a transient marrow failure after treatment with cytotoxic chemo- therapeutic drugs or irradiation. Certain chemical or physical agents directly injure proliferating and quiescent hematopoietic cells. The onset is usually insidious, and patients often present only after the late manifestations of pancytopenia are evident. The symptoms attributable to the gradual decrease in the number of RBCs include weakness, fatigue, lethargy, pallor, dyspnea, palpitations, onset of transient murmurs, and tachycardia of anemia. Fever, chills, and bacterial infections (particularly in the mouth or perirectal area) are seen secondary to neutropenia. Petechiae, bruising, nosebleeds, retinal hemorrhage, and increased menstrual flow are manifestations of aplastic anemia.
Treatment. Treatment for aplastic anemia is multifaceted and dependent on the etiology and severity of the disease. Treatment includes (1) identification and avoidance of further toxin exposure; (2) human leukocyte antigen (HLA) and ABO typing of family members to identify serologically defined loci and potential bone marrow transplant donors;
(3) maintenance of minimally essential levels of hemoglobin and platelets; (4) prevention and management of infection; (5) determination of efficacy of bone marrow transplantation; and (6) implementation of other forms of therapy, such as immunosuppressive therapy or stimula- tion of hematopoiesis and bone marrow regeneration in patients not suited for transplantation. In patients with severe disease, the major curative approach is allogeneic bone marrow transplantation; however, only one-third of all patients have compatible donors. Preparative regimens using cyclophosphamide and antithymocyte globulin fol- lowed by posttransplant immunosuppression with cyclosporine and methyltrexate as prophylaxis against graft-versus-host disease (GVHD) have resulted in a 90% disease-free survival rate at 2 years for patients with bone marrow transplants derived from an HLA-matched sibling donor.
Course and prognosis. Bone marrow transplantation is highly successful and curative for 80% to 85% of untransfused patients and 55% to 60% of patients with multiple previous transfusions. Approxi- mately 20% to 30% of transplantation survivors with multiple previous transfusions experience severe GVHD, which can be significantly improved by immunosuppressive therapy in 50% to 70% of patients. The risk of graft failure in patients who have not been transfused is less than 5%. Prognosis is related to the absolute neutrophil count and the platelet count. Children respond better than adults with both bone marrow transplantation and immunosuppression therapy, especially in patients with mild to moderate disease. Aplastic anemia is fatal unless successfully managed with bone marrow transplantation.
Anemia of Chronic Renal Failure Etiology and pathogenesis. The anemia of chronic renal failure
occurs primarily from failure of the renal endocrine function, which causes impaired erythropoietin production and secondarily from failure of the renal excretory function, leading to hemolysis, bone marrow cell depression, and blood loss.
Laboratory features. This anemia is characterized by a decreased red cell count and low hemoglobin and hematocrit values. Some red cells appear grossly deformed with a few large spicules (Fig. 13.17). The total leukocyte differential cell count, leukocyte counts, and platelet count are usually normal. The red cell indices—mean corpuscular volume (MCV), mean corpuscular hemoglobin (MCH), and mean corpuscular hemoglobin concentration (MCHC)—are also normal.
Clinical manifestations. Any of the clinical manifestations described earlier (see “General Effects of Anemia”) may be evident in chronic renal failure. The hematocrit falls in proportion to the degree of renal insufficiency, and uremia occurs as the glomerular filtration rate drops below 40 mL/min. Signs and symptoms of anemia usually manifest when the hematocrit decreases to ≤20%.
Treatment. Therapy consists of dialysis when the glomerular filtration rate is less than 15 mL/min, and erythropoietin is administered to achieve the target hematocrit concentration of 33% to 36% and hemoglobin level of 11 to 12 g/dL. However, excessive correction of the hemoglobin level to greater than 12 g/dL may be associated with an increased incidence of cardiovascular and thromboembolic events. Therefore the
TABLE 13.6 Drugs Associated With Aplastic Anemia
Dose Dependent Effects Patient Dependent (Idiosyncratic) Effects
Alkylating agents (e.g., nitrogen mustard) Anti-inflammatory (e.g., phenylbutazone, penicillamine) Antimetabolites (e.g., fluorouracil, methotrexate) Anti-seizure (e.g., hydantoin, carbamezepine) Antibiotics (e.g., chloramphenicol) Gold salts
Modified from Kumar V: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Elsevier.
278 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
in the peripheral nerves and degeneration of the white matter in the spinal cord in animals.
Folate deficiencies resemble vitamin B12 deficiencies except for the neurologic disease, which is more characteristic of vitamin B12 deficiency. Folate deficiencies are usually the result of dietary deficiencies, alcoholism and cirrhosis, pregnancy, or infancy.
Laboratory features. The peripheral blood shows low RBC counts of 500,000 to 750,000 cells/mm3, low WBC counts of 4000 to 5000 cells/mm3, and low platelet counts of 50,000 cells/mm3. These counts are usually not as low as those seen in aplastic anemia. The bone marrow shows megaloblastic dysplasia, which results in a peripheral blood picture of macrocytosis and hypersegmented neutrophils. The red cell indices reveal normal MCH and MCHC and increased MCV. The Schilling test, which measures excretion of radioactive vitamin B12, indicates low levels, and the serum level of vitamin B12 is low. Gastric analysis indicates a lack of free hydrochloric acid in the gastric juice (achlorhydria).
Clinical manifestations. The clinical features of vitamin B12 deficiency include paranoid ideation, dementia, cognitive dysfunction, delusions, and hallucinations, often referred to as megaloblastic madness. The neurologic abnormalities include symmetric paresthesias of the feet and hands with vibratory sense and proprioception disturbances. The paresthesias progress to spastic ataxia as a result of degenerative changes of the dorsal and lateral columns of the spinal cord. Cerebral signs include irritability; somnolence; memory impairment; and perversion of taste, smell, and vision. Manifestations of pure folate deficiency include a blunted affect in general demeanor with evidence of depression, sleep deprivation, and irritability. History of circumstances likely to result in folic acid deficiency includes poor or fad diet, frank malabsorption, or alcoholism. In folate deficiency, cerebral symptoms, such as irritability, memory loss, and personality changes, are seen. Clinical manifestations that are seen in both vitamin B12 and folate deficiencies include pedal edema, nocturia, tachypnea, dyspnea, and tachycardia associated with heart congestion; glossitis, weight loss, malabsorption, and episodic or chronic diarrhea with steatorrhea are GI manifestations. Musculoskeletal symptoms of arthralgia and frank arthritis are seen in autoimmune diseases; nocturnal pain and upper and/or lower extremity cramps often indicate spinothalamic tract involvement. Dermatologic symptoms include blotchy brown skin pigmentation, especially in nail beds and skin creases. When this is associated with vitiligo, autoimmune processes should be suspected.
Research has reported an association between low folate levels and the risk of neural tube defects and abnormalities of the heart, urinary tract, and limbs in neonates. These data support the routine supplementa- tion before pregnancy of all women who might become pregnant with 1.0 mg/day of folic acid. This is the largest dose that will not mask vitamin B12 deficiency.
Treatment. Routine treatment with full doses of parenteral vitamin B12 (1 mg/day) and oral folate (1 to 5 mg/day) before the cause of the deficiency is identified should only be used in critically ill patients. In managing the anemia related to vitamin B12 or folate deficiency, it is important to (1) recognize that megaloblastic anemia is present; (2) ascertain if vitamin B12, folate, or a combined deficiency is the cause; and (3) diagnose the underlying disease and mechanism responsible for the deficiency. In vitamin B12 and folic acid deficiency anemia, replacement therapy for vitamin B12 is oral cobalamin and folic acid. Transfusion therapy may be indicated in elderly or critically ill patients. Hypokalemia should be managed with potassium supplements to prevent sudden death, reportedly associated with a sharp drop in serum potassium level seen in vitamin B12 therapy.
Course and prognosis. The majority of patients respond well to replacement therapy; however, continued assessment and monitoring
FIG 13.17 Burr cells found in acute kidney disease. (Courtesy Beth Payne, Sacred Heart Medical Center, Spokane, WA.)
use of erythropoiesis-stimulating agents to increase hemoglobin values to greater than 12 g/dL is not routinely recommended. The hematocrit and hemoglobin values are monitored at least every 2 weeks to ensure adequate oxygen-carrying capacity and minimize an increased respiratory rate and heart rate. When the target hematocrit is achieved, adult patients can be maintained by administering 50 to 100 units per kilogram per week in divided doses. Pediatric patients younger than 5 years usually require higher initial and maintenance doses. Patients with chronic renal failure are also prone to nutritional anemias (lack of iron, folate, and B12) because of dietary restrictions and anorexia. Patient replacement of iron, folate, and B12 to adequate levels should be considered a treatment goal. Some patients may fail to respond or may be resistant to the effects of erythropoietin. The most common cause for a failure in response is iron deficiency.
Course and prognosis. More than 95% of patients respond to erythropoietin therapy. Patients who do not respond or first respond when larger doses are given should be evaluated for an adequate iron supply, infection, or excessive splenic hemolysis.
Anemia Related to Vitamin B12 (Cobalamin) or Folate Deficiency
Etiology and pathogenesis. The anemia resulting from a deficiency of either vitamin B12 (cobalamin) or folate is caused by a disruption in DNA synthesis of the blast cells in the bone marrow. This disruption produces very large abnormal bone marrow cells called megaloblasts. In the peripheral blood, the red cells are larger than normal (macrocytic); the granulocytes are hypersegmented; and the numbers of red cells, white cells, and platelets are decreased. All of these signs can be seen on the peripheral blood smear.
The classic anemia in this classification is pernicious anemia. The fundamental defect causing pernicious anemia is the lack of intrinsic factor. Without it, vitamin B12 cannot be absorbed, thus leading to vitamin B12 deficiency. This deficiency results in disordered nucleic acid metabolism, which causes megaloblastic dysplasia, a condition involving abnormal production and maturation of red cell, white cell, and platelet systems. There is strong evidence that pernicious anemia develops as a result of genetically determined autoimmune disease, which is manifested by serum and gastric juice antibodies against intrinsic factor and parietal cells. The biochemical basis of the neurologic lesions in pernicious anemia is not known. There can be peripheral nerve degeneration, degeneration of the posterior columns of the spinal cord, or both. There is some evidence of abnormal fatty acid metabolism
CHAPTER 13 Alterations in Oxygen Transport 279
because of iron losses with menstruation. The goal of therapy for iron deficiency anemia is to supply sufficient iron to repair the hemoglobin deficit and to replenish iron stores. Oral iron is the treatment of choice for almost all patients because of its effectiveness, safety, and economy and should always be given preference over parenteral iron for initial treatment. Iron deficiency anemia is managed with oral administration of ferrous sulfate taken separately from meals in three or four divided doses and supplying a daily total of 150 to 200 mg of elemental iron in adults or 3 mg of iron per kilogram of body weight in children until hematologic normality is reached. Infants may be given 50 to 100 mg daily in divided doses. Thereafter it is important to continue the treat- ment for 4 to 6 months to build iron stores. Urgent treatment may be accomplished with the administration of parenteral ferric gluconate after a test dose to determine possible hypersensitivity. Patients undergoing dialysis should have a serum ferritin level greater than 100 µg/L to optimize their response to erythropoietin administration. Although iron therapy remediates the iron deficiency anemia, the underlying cause must be determined and corrected.
Course and prognosis. The symptoms may be alleviated in the first few days of treatment. The reticulocyte count is an index of erythropoiesis. The reticulocyte count increases as the RBC produc- tion increases and usually reaches maximal levels in 7 to 12 days, and the hemoglobin level is usually normal by 2 months after initiation of therapy. Failure to obtain a complete and characteristic response to iron therapy should cause the clinician to review the findings and reevaluate the patient. One possible problem is an incorrect diagnosis, when the anemia of chronic disease is mistaken for the anemia of iron deficiency. The prognosis is excellent if the underlying cause is benign; however, even in patients with incurable disease states, manage- ment of iron deficiency anemia with iron therapy can increase the comfort level.
ANEMIA RELATED TO INHERITED DISORDERS OF THE RED CELL A number of inherited genetic defects can result in anemia. Abnormali- ties of hemoglobin synthesis causing slow production (thalessemia) or increased RBC hemolysis and destruction (sickle cell disease) can cause anemia. Inherited enzyme deficiencies (G6PD deficiency) or structural abnormalities (spherocytosis) can reduce the lifespan of RBCs resulting in anemia. Common inherited forms of anemia are discussed.
Thalassemia The thalassemias are a group of diseases associated with the presence of mutant genes that suppress the rate of synthesis of globin chains. Thalassemias are classified according to the polypeptide chain or chains with deficient synthesis, such as α-thalassemia or β-thalassemia.
Etiology and pathogenesis. There are two main classes of thalassemia, α and β, in which the α- and β-globin genes are involved, and rarer forms caused by abnormalities of other globin genes. These conditions all have in common an imbalanced rate of production of the globin chains of adult hemoglobin—excess α chains in β-thalassemia and excess β chains in α-thalassemia. Several hundred different mutations at the α- and β-globin loci have been defined as the cause of the reduced or absent output of α or β chains. The high frequency and genetic diversity of the thalassemias are related to past or present heterozygote resistance to malaria. A deficiency in one or more polypeptide chains causes decreased hemoglobin synthesis and an imbalance between α-chain and non–α-chain production. Because of the lack of hemoglobin, the anemia is severe, and the peripheral cells are microcytic and hypochromic. The disruption of the globin balance causes the abundant chains to
of these patients are essential to prevent hematologic or neurologic relapse secondary to inadequate therapy. In patients with neurologic signs and symptoms, the reversibility of the neurologic damage is slow, with a maximal response requiring up to 6 months. Further substantial increases in recovery are unlikely after 12 months. In 90% of patients with subacute combined degeneration, major improvement is seen. The degree of functional recovery is inversely related to the extent of the disease and duration of the signs and symptoms. Patients with signs and symptoms of less than 3 months’ duration may have complete reversal.
Iron Deficiency Anemia Etiology and pathogenesis. Iron deficiency, the most common
nutritional deficiency in the world, is the most common cause of anemia. Iron deficiency results in the unavailability of iron for hemoglobin synthesis. This may be due to low intake, diminished absorption (such as from chronic disease), physiologic increase in requirements (such as during pregnancy), excessive iron loss (such as from acute or chronic hemorrhage), chronic renal failure, hemodialysis, or idiopathic iron loss. The most common cause in men is occult GI bleeding and in women is menorrhagia. Iron is one of the most carefully conserved body substances, and under normal conditions very little is lost except as a result of bleeding. Normal dietary requirements, if 10% is absorbed, are as follows: adult men, 12 mg/day; adult women ages 14 to 30 years, 15 mg/day; and adult women ages 60 years or more, 10 mg/day. Pregnant women require up to 30 mg/day, and children require 10 mg/day. A normal diet supplies the adult with about 10 to 15 mg/day.
Laboratory features. In latent iron deficiency there may be no anemia; however, after patients receive iron, they respond with a significant increase in blood hemoglobin level. In a typical case caused by chronic bleeding, the reduction in hemoglobin concentration is proportionately greater than the reduction in the red cell count. The red cells are smaller and paler than normal RBCs because of the decreased amount of hemoglobin and are described as hypochromic, microcytic red cells. Therefore the red cell indices MCV, MCH, and MCHC are decreased. The white cell counts are usually normal. The platelet count varies, depending on the cause of the deficiency. In severely anemic children and infants, thrombocytopenia may be present. In patients who are bleeding, thrombocytosis may be present. The serum ferritin level is decreased to less than 10 ng/mL, the serum iron level is decreased, total iron binding capacity (TIBC) is increased, and tissue iron stores are decreased.
Clinical manifestations. Patients with iron deficiency may present with (1) no signs or symptoms, only seeking medical attention because of abnormalities noted on laboratory tests; (2) features of the underlying disorder responsible for the development of iron deficiency; or (3) manifestations common to all anemias, such as pallor, weakness, fatigue, dyspnea, palpitations, new and transient heart murmurs, irritability, headaches, or lightheadedness. Patients may also present with (4) one or more of the few signs and symptoms considered highly specific for iron deficiency, including pagophagia or pica (craving for nonfood substances such as dirt, clay, ice, laundry starch, cardboard, or hair), koilonychias (spoon-shaped nails), and blue sclerae. In addition, a high prevalence of iron deficiency with or without anemia has been reported among patients with restless legs syndrome (Ekbom syndrome), especially in the elderly. In severe cases, GI symptoms are seen, such as glossitis, dysphagia, erosions at the corners of the mouth, esophageal webbing, and atrophic gastritis, as well as changes in the fingernails, conjunctival pallor, and splenomegaly.
Treatment. To maintain a normal iron balance in the body, men need to absorb 1.0 to 1.5 mg/day and women need to absorb 2 to 3 mg/day
280 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
Globulin excess
Precipitation in RBC
Hemolysis
Anemia
Abnormal hemoglobin synthesis
Erythropoiesis
Erythropoietin
Bone marrow activity
Iron absorption
Iron overload Liver toxicity
Bone deformity
FIG 13.18 Pathophysiology of β-thalassemia. The deficiency of β globulin results in an excess of unincorporated α globulin.
accumulate and precipitate within the cytoplasm. This damages the cell membranes, which leads to premature cell destruction. The most clinically severe form of the thalassemias is thalassemia major, which occurs in homozygous patients. Thalassemia minor is the term used to describe the heterozygous carrier state. For example, in homozygous β-thalassemia, the deficiency of β-chain synthesis results in the accumulation of α chains, which aggregate to form insoluble inclusions in bone marrow erythroid precursors (Fig. 13.18). These inclusions cause early destruction of 70% to 85% of marrow erythroblasts. In response to this massive destruction, erythroid cell proliferation in homozygous β-thalassemia is significant.
Patients who are significantly anemic have an increased intestinal iron absorption that is related to the degree of expansion of the RBC precursor population. This can be decreased with blood transfusions. The iron accumulates in the Kupffer cells of the liver, the macrophages in the spleen, and the parenchymal cells of the liver.
Laboratory features. Laboratory values vary, depending on the severity of the imbalance, which is determined by the genetic pattern. Because of the decrease in hemoglobin level, the red cells are hypochromic and microcytic, and red cell indices—MCV, MCH, and MCHC—are decreased. Many target cells are present. In homozygous or major syndromes, the hemoglobin concentration is often less than 7 g/dL, and there are nucleated red cells in the peripheral blood. The leukocyte number is usually increased but the platelet number is normal. The bone marrow is hypercellular, with profound erythroblastic hyperplasia. There is evidence of hemolysis with increased unconjugated bilirubin levels and increased excretion of urobilin and urobilinogen. Hemoglobin electrophoresis is performed to determine the type of abnormal hemoglobin. An increased level of fetal hemoglobin ranging from 10% to 90% is characteristic of homozygous α-thalassemia. No hemoglobin α is produced. Excess γ chains form γ4 homotetramers, or Bart hemo- globin. Excess β chains form β4 homotetramers, or hemoglobin H.
Clinical manifestations. Patients may have any of the clinical manifestations described earlier (see “General Effects of Anemia”). The clinical findings are the result of deficient α-globin production in α-thalassemia, or α-globin chain excess and persistent hemoglobin F production in β-thalassemia.
α-Thalassemia is found primarily in Asian individuals; however, it has also been documented in increasing numbers in individuals of Mediterranean or African descent. Usually patients with α-thalassemia minor are silent carriers or present with mild to moderate anemia. They are recognized during familial studies after the identification of a family member with Bart hemoglobin hydrops fetalis or hemoglobin H disease (α-thalassemia major). Infants with Bart hemoglobin hydrops
fetalis are pale and edematous and have hepatomegaly, splenomegaly, and ascites. Individuals with hemoglobin H disease have typical facies and bone changes seen in β-thalassemia, splenomegaly, and hepatomegaly.
β-Thalassemia occurs mainly in individuals of Mediterranean descent and presents as thalassemia major, intermedia, or minor. It is also seen in the Middle East, parts of India and Pakistan, and throughout Southeast Asia. Untreated patients with thalassemia major have skull bone deformi- ties from intramedullary and extramedullary bone marrow expansion, mongoloid facies, bowing and rarefaction of long bones, extension of bone marrow into paraspinal or intraabdominal tumors, icterus, hepa- tomegaly, splenomegaly, and cardiac failure or endocrinopathies such as diabetes mellitus and hypogonadism from excessive intestinal iron absorption. Patients with thalassemia intermedia show fewer effects of iron overload, growth retardation, marrow expansion, and splenomegaly; however, deforming bone and joint disease, chronic leg ulceration, and infection are common in this form of thalassemia. Thalassemia minor is usually relatively asymptomatic.
Treatment. Because the carrier states for the thalassemias can be identified and affected fetuses can be diagnosed by DNA analysis after the ninth to tenth week of gestation, these conditions are widely amenable to prenatal diagnosis. Currently, bone marrow transplantation is the only way in which they can be cured. Symptomatic management is based on regular blood transfusions, iron chelation therapy, and the judicious use of splenectomy. Children with thalassemia are treated with blood transfusion therapy to maintain a hemoglobin level of 11 to 13 g/dL to ensure normal growth and development and to avoid skeletal deformities. Patients should be tested for the presence of hepatitis B antibodies and immunized if they test negative. Splenectomy is recom- mended in children 6 to 7 years of age or in adolescents when their transfusion requirements exceed 1.5 times normal (>200 mL/kg/yr). Before splenectomy, children should be immunized with polyvalent pneumococcal vaccine, Haemophilus influenzae, and Neisseria menin- gitidis. Iron supplements are avoided, and chelation therapy is started when the serum ferritin levels reach 1000 µg/dL. Vitamin C is required for management of iron overload. Bone marrow transplantation has been used with success in severe β-thalassemia. The best candidates are younger children, because older children have high rejection and mortality rates. Two experimental approaches are currently being pursued in the search for more effective therapy of the thalassemias: (1) reactivation or augmentation of fetal hemoglobin production and (2) somatic gene therapy.
Course and prognosis. Infants with Bart hemoglobin hydrops fetalis inherit a defective α-thalassemia gene from both parents who only have
CHAPTER 13 Alterations in Oxygen Transport 281
life span is already shortened by the sickling and may precipitate a hemolytic crisis with jaundice. Sudden massive pooling of red cells, particularly in the spleen, can create a sequestration crisis, which is thought to result in the deaths that occur in the first years of life. Infarctive crises or painful episodes are a result of obstruction of blood vessels, tissue hypoxia, and tissue death and may occur throughout the body. Vasoocclusive events are described in Table 13.7. Children with sickle cell anemia are shorter and experience delayed puberty, but they attain normal height with late adolescent growth. Bony abnormalities, “hand–foot” syndrome with periostitis of the metacarpal and metatarsal bones, splenomegaly, inability to concentrate urine, priapism with subsequent impotence, underdeveloped genitalia and hypogonadism, hepatomegaly, jaundice, gallstones, tachycardia, acute chest syndrome (fever, chest pain, increasing WBC count, and pulmonary infiltrates), retinal vessel obstruction, cerebrovascular accidents, leg ulcers, and infections are all seen in sickle cell disease patients. Pregnant women may exhibit signs of pyelonephritis, pulmonary infarction, pneumonia, antepartum hemorrhage, premature fetal delivery, and fetal death.
Treatment. Stem cell transplantation is curative and the treatment of choice. Currently there are no safe, effective antisickling agents, and treatment is primarily supportive. To avoid precipitation of a vasoocclusive crisis, it is important to prevent dehydration, infection, fever, acidosis, hypoxemia, and cold exposure. Because salicylates impose
the α-thalassemia trait. These infants are usually stillborn or die within hours to days of birth. Some patients with hemoglobin H disease live a full life. Patients with β-thalassemia intermedia can expect to live until middle age; however, iron loading and crippling bone disease occur in the third and fourth decades. Children with adequate treatment with iron chelation before bone marrow transplantation have disease-free survival rates up to 95%, whereas older patients and those exhibiting more than one risk factor have a rejection-free survival rate of less than 75%. Treatments under investigation include manipulation of globin gene expression with drugs such as 5-azacytidine, hydroxyurea, eryth- ropoietin, or butyrate analogs and gene therapy directed at replacing or compensating for the defective β-globin alleles. Because this is a genetically transmitted disease, it is important for patients and parents to receive appropriate genetic counseling.
Sickle Cell Anemia Etiology and pathogenesis. Sickle cell anemia is a genetically
determined defect of hemoglobin synthesis. Sickle cell disease is a disorder in which patients inherit specific mutated variants of the β-globin gene that lead to hemoglobin polymerization. The sickle mutation of the β-globin gene results in the production of an abnormal hemoglobin called sickle hemoglobin S (HbS). In hemoglobin S, valine is substituted for glutamic acid in the sixth position of the β chain, rather than the normal configuration. This apparently minor change in the molecular structure causes profound changes in hemoglobin stability and solubility. Under decreased oxygen tension, hemoglobin S undergoes polymeriza- tion, which causes the red cell to assume a sickled shape (Fig. 13.19). Patients who are homozygous produce only hemoglobin S. No hemo- globin A is synthesized because all the β chains are S chains, which combine with normal α chains to form hemoglobin S. In heterozygous patients with sickle cell trait, both normal and S chains are formed. Because fewer abnormal chains are produced than normal ones, the amount of hemoglobin A usually exceeds that of hemoglobin S. The sickle mutation has undergone positive selection during human evolution because individuals with one copy of the sickle gene and one normal β-globin gene (sickle cell trait) have a survival advantage in malaria- endemic regions. The preferential sickling of cells with malarial parasites reduces the number of parasites and allows children with sickle cell trait who are infected with these parasites to reach reproductive age. This has provided a selective advantage to the hemoglobin S trait, thereby preventing S from being genetically eliminated.
The pathogenetic signs and symptoms of sickle cell disease all relate to the red cell sickling. Sickled red cells have a decreased survival time, which causes anemia, and sickled cells cause vascular occlusion, which results in capillary stasis, venous thrombosis, and arterial emboli. The most dangerous feature of sickle cell anemia is the occurrence of acute episodes of “crisis,” which can be hemolytic or vascular (Box 13.2).
Laboratory features. The laboratory features in sickle cell anemia are distinctive. The anemia is usually severe, with red cells of different shapes and sizes. Target red cells are present, and occasionally sickled cells can be seen on smears (Fig. 13.20). Red cell breakdown products are increased, which increases serum bilirubin, urobilinogen, and urobilin levels. Acute hemolytic crisis is characterized by hemoglobinuria, leukocytosis, and normoblastosis; diffuse intravascular coagulation may develop.
Clinical manifestations. Chronic hemolytic anemia, recurrent painful episodes, and acute and chronic organ dysfunction particularly of the spleen, bones, brain, kidneys, lungs, skin, and heart are the cardinal features of sickle cell anemia. Sickle cell anemia and sickle cell trait are found almost entirely in the black race. Hemolysis of the sickle cells occurs in the spleen or vascular space, and vasoocclusive events occur in the small capillaries and venules caused by sickle cells. The red cell
RBCs containing HbS in presence of oxygen are flexible disks.
When O2 level is low, RBCs sickle, becoming
elongated and rigid.
As the blood circulates through the body, the oxygen
levels may decrease. Erythrocytes sickle and are
unable to pass easily through small arteries. Cell membrane
is damaged and RBC has short life span.
INCREASED HEMOLYSIS of RBC in spleen
Decreased RBC Severe ANEMIA
HYPERBILIRUBINEMIA Jaundice
OCCLUSION OF SMALL ARTERIES
Heart
Sickling
Circulating blood
Occlusion of artery
Tissue damage and multiple infarctions Pain Loss of function
FIG 13.19 Sickle cell anemia: effects of sickling. HbS, Hemoglobin S; RBC, red blood cell. (From Gould BE: Pathophysiology for the health professions, ed 5, Philadelphia, 2014, Saunders, p 199.)
282 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
Course and prognosis. Successful bone marrow stem cell transplanta- tion cures sickle cell anemia. Bone marrow transplantation from a sibling-matched donor has a 94% survival rate and an 84% event-free survival rate. Sickle cell anemia is a serious disorder, and without stem cell transplantation many patients die in childhood, especially in sequestration crisis. In young children with sickle cell anemia, there is a 30% incidence of splenic sequestration crisis with a 15% death rate. Functional hyposplenia predisposes individuals to infections, such as pneumonia and chronic pyelonephritis with renal failure. Heart failure, bone marrow and fat emboli, shock, and organ failure are common causes of death. In developed countries, patients who have not undergone stem cell transplantation may survive into the third and fourth decades, whereas survival past childhood in underdeveloped countries is unusual. The survival rates have increased dramatically because of stem cell transplantation, newborn screening, early diagnosis, preventive measures to avoid sequestration crisis, and patient education.
Hereditary Spherocytosis Etiology and pathogenesis. In hereditary spherocytosis, the red cells
have defective red cell membrane skeletons, altered membrane properties, and altered cell metabolism. This causes them to have a decreased survival time in patients with an intact spleen. The disease is inherited as an autosomal-dominant trait and is characterized by red cells that are fragile microspherocytes. In addition, there is increased destruction of spherocytes (abnormal spherical erythrocytes) in the spleen. Patients have anemia, intermittent jaundice, splenomegaly, and uniform respon- siveness to splenectomy. The principal cellular defect is a loss of membrane surface area attributable to defects of several membrane proteins, including ankyrin, band 3, α-spectrin, and β-spectrin.
Laboratory features. The concentration of hemoglobin within the red cells is increased. Reticulocytosis is present, and microspherocytes are seen on the blood smear. Osmotic fragility is increased, and serum unconjugated bilirubin level is increased. After splenectomy, the hemoglobin level is in the high-normal range.
Clinical manifestations. Hereditary spherocytosis is the most common hereditary hemolytic anemia and is most common in people with a northern European background. The major clinical manifestations are anemia, jaundice, splenomegaly, bile pigment gallstones, and chronic leg ulcers. The anemia is usually mild because of compensation by the erythropoietic bone marrow cells. Aplastic crisis precipitated by an infection may be seen with associated fever, abdominal discomfort, nausea, vomiting, rapidly increasing weakness, pallor, tachycardia, low blood pressure, and shock.
Treatment. Treatment usually consists of splenectomy in children with severe cases (hemoglobin concentration <8 g/dL and reticulocyte count >10%) and children with moderate disease reflected (hemoglobin concentration 8 to 11 g/dL and reticulocyte count of 8% to 10%) when the anemia compromises physical activity. All children undergoing splenectomy should be immunized with polyvalent pneumococcal vaccine, Haemophilus influenzae, and Neisseria meningitidis. Oral penicillin should be given for several years after splenectomy to prevent pneumococcal sepsis. Folic acid therapy to prevent folate deficiency is necessary as well. Transfusion is usually indicated only in aplastic crisis.
Course and prognosis. Most patients have no or mild anemia, fluctuating degrees of jaundice, and episodes of aplastic or hemolytic anemia. Splenectomy is usually curative; however, the subsequent risk of acquiring a serious infection is significant.
Glucose-6-Phosphate Dehydrogenase Deficiency Etiology and pathogenesis. An example of an RBC intracellular
defect caused by an enzyme deficiency is glucose-6-phosphate
an acid load, acetaminophen is the preferred antipyretic. Vaccination for pneumococcal pneumonia should be done before 2 years of age in patients with sickle cell anemia and booster vaccinations given 3 to 5 years later. Penicillin prophylaxis is important to prevent streptococcal pneumonia and pneumococcal septicemia. Other vaccinations include Haemophilus influenzae type B and hepatitis B. Transfusions are used to restore normal hematocrit levels, and splenectomy is performed in children with sequestration syndrome. Treatment with oral hydroxyurea reduces leukocyte, polymorphonuclear, reticulocyte, and sickle cell counts while increasing the hemoglobin and hematocrit levels and resulting in fewer acute painful episodes. Appropriate treatment of pain is important. During pregnancy, folic acid should be given to prevent neural tube defects. If iron deficiency is present, iron supplements should also be administered. Transfusion should be used only when clinical and hematologic indicators are present.
Data from Miale J, editor: Laboratory medicine hematology, ed 6, St Louis, 1982, Mosby, p 637.
Decreased RBC Survival Anemia Reticulocytosis Hyperbilirubinemia Increased pigment excretion Cholelithiasis Hyperplastic bone marrow Osteoporosis Osteosclerosis Siderosis
Acute Hemolytic Crisis Leukocytosis Reticulocytosis Hyperbilirubinemia Hemoglobinuria Normoblastosis Diffuse intravascular coagulation (consumption coagulopathy)
Vascular Occlusion (Capillary Stasis, Venous Thrombosis, Arterial Emboli) Splenomegaly Splenic infarction Splenic atrophy Hepatomegaly Cirrhosis Hematuria Sickle cell dactylitis Aseptic necrosis of bones Infarction of bone marrow Infarction of various organs (brain) Priapism Skin ulcers Pulmonary embolism
Painful Crisis (Occlusive Vascular Crisis) Fever Pain Sudden death
BOX 13.2 Complications of Sickle Cell Anemia
CHAPTER 13 Alterations in Oxygen Transport 283
be screened. Because G6PD deficiency is found in areas where malaria was once endemic, G6PD deficiency is thought to have conferred selective advantage against Plasmodium falciparum malaria infection.
Laboratory features. Usually this anemia is first recognized during or after an infectious illness or after exposure to a suspect drug or chemical. The hematologic tests reflect the severity of the hemolytic episode. The diagnosis of G6PD deficiency is based on the generation of NADPH from NADP as detected either by quantitative spectropho- tometric analysis or by a rapid fluorescent screening test.
Clinical manifestations. Most individuals have no clinical manifesta- tions of this disease. When such manifestations occur, hemolytic anemia is triggered by drug administration, infection, diabetic acidosis, the newborn period, and, in one subset, exposure to fava beans.
Treatment. Treatment is usually preventive and consists of avoidance of drugs that trigger hemolytic episodes and aggressive infection management. Some patients may require transfusion therapy or exchange transfusion in the case of life-threatening hemolysis.
dehydrogenase (G6PD) deficiency. The energy required for RBC membrane function and cellular integrity is derived from the anaerobic metabolism of glucose. Traditionally, hemolytic anemias caused by enzyme deficiencies have been called nonspherocytic to distinguish them from classic hereditary spherocytosis. When black soldiers receiving the antimalarial drug primaquine began suffering hemolytic episodes, a type of hemolytic anemia caused by a deficiency of G6PD (an enzyme in the red cell glycolytic pathway) was discovered. When G6PD-deficient RBCs are challenged by one of several drugs, glutathione is depleted and glucose utilization is inhibited. These events cause RBC membrane damage, which results in removal of the damaged cells by mononuclear phagocytes. Except in rare instances, G6PD-deficient persons do not have hemolytic anemia unless challenged by drugs. G6PD deficiency is the most common metabolic disease of the RBC, affecting hundreds of millions of people worldwide. This gene is found in 11% of African American males and in Sephardic Jews. The responsible gene is an X-linked recessive gene, so close relatives of affected individuals should
A BB
FIG 13.20 A, Blood smear showing sickle cells in sickle cell anemia. B, Scanning electron micrograph of deoxygenated sickled red cells. (A, Courtesy Beth Payne, Sacred Heart Medical Center, Spokane, WA. B, From Young NS et al, editors: Clinical hematology, Philadelphia, 2006, Mosby, p 39.)
TABLE 13.7 Vasoocclusive Consequences of Sickle Cell Disease
Event Incidence Features
Acute Painful episodes >50% of patients with HbSS and HbS
β-thalassemia Mild to severe pain; one or several areas
Chest syndrome 10%–20% of adults Difficult to distinguish from pneumonia; may involve entire lung Priapism 10%–40% of males Can have a more chronic form; causes impotence Cerebrovascular accidents 1%–10% of children Usually subarachnoid bleeding in adults Hepatopathy <2% of adults Bilirubin may reach >80 mg/dL
Chronic Aseptic bone necrosis 10%–25% of adults Hips and shoulders, common in HbSC Proliferative retinopathy 50% of adults with HbSC; <5% HbSS 10% Can lead to retinal detachment Leg ulcers Can be severe and disabling Functional asplenia and autosplenectomy Starts in infancy; >90% of adults with HbSS Predispose to sepsis Nephropathy Renal failure in older patients Nephritic syndrome, renal failure
Adapted from Sternberg MH: Hemoglobinopathies and thalassemias. In Stein JH et al, editors: Internal medicine, ed 5, St Louis, 1998, Mosby, p 658. HbS, Hemoglobin S (sickle hemoglobin); HbSC, hemoglobin SC disease; HbSS, hemoglobin SS (sickle cell anemia).
284 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
Clinical manifestations. The clinical manifestations of HDNB are hemolytic anemia, extramedullary erythropoiesis, and hyperbilirubi- nemia. Jaundice, petechial hemorrhages, hepatomegaly, splenomegaly, heart failure (with pulmonary edema, pleural effusions, ascites, and edema), kernicterus (a condition in the newborn marked by severe neural symptoms associated with high levels of bilirubin in the blood), and diffuse intravascular coagulation are seen in these infants. Many infants die in utero.
Treatment. A standard dose of anti-Rh immunoglobulin (RhoGAM) is given to the mother before or after delivery. This immunoglobulin destroys the infant’s RBCs before they can sensitize the mother. This dose protects the mother against 30 mL of Rh-positive blood. Amnio- centesis and fetal blood sampling are used to evaluate the severity of the disease. In severe cases, in utero transfusion and early delivery have been performed on fetuses with severe erythroblastosis. Exchange transfusion lowers the serum bilirubin level and the antibody content of the neonatal blood and removes cells susceptible to hemolysis. Phototherapy and phenobarbital are used to lower the bilirubin level.
Course and prognosis. The consequences of HDNB range from death, to possible retardation, to a barely perceptible hemolytic process. Severe anemia correlates with equally severe hyperbilirubinemia and high risk of central nervous system complications. Many infants appear normal at birth, only to develop jaundice within 2 to 3 hours. Petechial hemorrhages develop soon after birth, and kernicterus is usually seen late in the second day of significant jaundice. Successful RhoGAM administration prevention programs have reduced the perinatal death rate to about 1% to 2%.
Antibody-Mediated Drug Reactions Etiology and pathogenesis. Drug-induced immune hemolytic anemia
is an example of a disease in which exposure to a drug causes destruction and lysis of the sensitized person’s own red cells. Drugs can lead to red cell hemolysis by four different immune mechanisms (Table 13.8).
Hapten mechanisms. In the hapten mechanism, which is seen with penicillin, cephalosporins, and tetracycline, the drug combines with a component of the RBC membrane. An antibody is developed against the drug. When the drug is given again, it coats the red cells, and the antibody attaches to the drug–red cell complex. The antigen–antibody complex then causes hemolysis.
Neoantigen formation. The old terminology for neoantigen formation is immune complex formation. In this situation, the drug combines with the RBC membrane and the antibody reacts with the new antigenic sites created by the combination of the drug and membrane. The RBC is hemolyzed. The immune complex can also bind to platelet and leukocyte
Course and prognosis. The prognosis is generally good because the episodes of hemolytic crisis are usually self-limiting, except in fava bean–susceptible individuals, in whom shock may develop in a short time.
ANEMIA RELATED TO EXTRINSIC RED CELL DESTRUCTION OR LOSS The final category of types of absolute anemia includes those caused by extrinsic abnormalities. The most important of these category types is immune hemolytic anemia caused by antibodies to red cells. Immune hemolytic anemias are further subdivided into those caused by isoan- tibodies, which may be the result of accidental immunization of individu- als (e.g., hemolytic disease of the newborn [HDNB]), and those caused by autoantibodies (in individuals whose bodies create antibodies against their own red cells).
Hemolytic Disease of the Newborn Etiology and pathogenesis. When fetal red cells cross the placenta,
they may stimulate the production of maternal antibodies against antigens on the fetal red cell not inherited from the mother. These maternal antibodies cross into the fetal circulation and cause destruction of fetal cells. In severe cases, hydrops fetalis may result. Fetal-maternal ABO incompatibility is the most common cause of HDNB, but Rh incompatibility is clinically more important because of the severity of the hemolytic disease in the fetus. With the introduction of Rh treatment, the total incidence of HDNB in Rh-negative women has been greatly reduced.
Laboratory features. Anemia, reticulocytosis (an increased number of circulating reticulocytes), and nucleated red cells are seen in the peripheral blood of the infant. There is a rough correlation between the hemoglobin levels and the severity of the disease. Untreated infants may experience a rapid drop in hemoglobin levels after birth. Leukocytosis is present, but platelet counts are usually normal. Infants with severe disease may have thrombocytopenia. Serum bilirubin, a hemolytic breakdown product, is readily transferred across the placenta. At birth, the infant’s total bilirubin level reflects both the severity of the hemolytic process and the ability of the infant’s liver enzyme system to conjugate and excrete bilirubin. Cord blood red cells show a characteristic positive direct antiglobulin test (Coombs test), reflecting the maternal antibodies attached to the infant’s red cells.
During pregnancy, laboratory tests of amniotic fluid for bilirubin and antibodies and tests of the mother’s peripheral blood for maternal sensitization are useful in predicting whether infants will be affected by HDNB.
TABLE 13.8 Mechanisms of Drug-Induced Hemolysis or Positive Direct Antiglobulin Test
Drug Absorption Neoantigen Autoimmune Nonimmune Absorption
Prototype drug Penicillin Quinidine/stibophen α-Methyldopa First-generation cephalosporins Role of drug Cell-bound hapten Antibody binds drug + RBC Induces drug-independent RBC
antibody Modifies RBC membrane; absorbs
proteins nonantibody-specifically Typical DAT IgG C3 IgG Nonimmunoglobulin Antibody reactions Reacts only with
drug-coated cells Reacts only with drug present Drug independent; panagglutinin No antibody present
Typical clinical presentation Subacute onset; mild to severe hemolysis
Acute onset; severe hemolysis Insidious onset; chronic mild hemolysis
No hemolysis
From Greer JP et al, editors: Wintrobe’s clinical hematology, ed 11, Philadelphia, 2004, Lippincott Williams & Wilkins, p 1176. C3, Complement third component; DAT, direct antiglobulin test; IgG, immunoglobulin G; RBC, red blood cell.
CHAPTER 13 Alterations in Oxygen Transport 285
rapidly decreases the overall blood volume and impairs oxygen delivery.
Laboratory features. A decrease occurs in both hematocrit level and hemoglobin concentration attributable to blood loss. The hematocrit level is less than 40% in men and less than 37% in women. The hemo- globin concentration is less than 14 g/dL in men and less than 12 g/dL in women. Anemia may not be apparent in the early stages because the cells and plasma are diminishing simultaneously. As replacement fluids move into the intravascular space, the anemia becomes apparent in later laboratory tests. The cells have normal MCV, MCH, and MCHC values.
Clinical manifestations. In a normal 70-kg person with a 5000-mL total blood volume, 10% loss of blood (500 mL) rarely causes any clinical signs except occasional vasovagal syncope. A 20% loss (1000 mL) usually causes no clinical symptoms at rest, but tachycardia is seen with exercise, and a slight postural drop in blood pressure occurs. A person with a 30% loss (1500 mL) usually presents with flat neck veins when supine, postural hypotension, and exercise tachycardia. A 40% loss (2000 mL) causes the central venous pressure, cardiac output, and arterial blood pressure to fall below normal while the patient is supine and at rest, with associated air hunger, tachycardia, and cold, clammy skin. A 50% loss of total blood volume (2500 mL) often causes shock and death.
Treatment. Blood volume replacement therapy with crystalloid solutions, colloid solutions (plasma protein, albumin, or dextran), and fresh whole blood is essential in the early management of acute hemor- rhage to restore blood volume and to prevent shock. Complete reliance on fresh whole blood for managing acute blood loss is contraindicated and should be reserved for patients with a low red cell mass in whom tissue hypoxia is a threat. Replacement of red cell mass by increased red cell production is a gradual process, which occurs over 2 to 5 days as the marrow stem cells proliferate and mature. Maximal red cell production is seen by the tenth day after hemorrhage.
Course and prognosis. With adequate replacement therapy, the prognosis is excellent; however, the underlying cause must be identified and managed.
Other Extrinsic Abnormalities Other mechanisms, such as mechanical heart valves or cardiopulmonary bypass machines, may cause physical damage to the red cells, resulting in hemolysis. Drugs and chemicals, physical agents (e.g., burns), or infectious diseases (e.g., malaria) may result in anemia. Venom from bee and wasp stings, spider and scorpion bites, and snake bites has been associated with hemolytic anemia. Finally, hypersplenism and spleno- megaly can cause anemia, leukopenia, or thrombocytopenia severe enough to require splenectomy.
membranes, causing anemia, leukopenia, and thrombocytopenia. Quinidine, hydrochlorothiazide, sulfonamides, isoniazid, tetracycline, and cephalosporin are common drugs that cause this type of reaction.
Membrane modification. In membrane modification, seen in cephalosporin sensitivity, the drug alters the RBC membrane protein. Plasma proteins attach to the altered RBC protein and cause a positive serologic test but no cell hemolysis.
Autoantibody induction. This mechanism was first studied in cases of hemolytic anemia with patients who were taking the antihypertensive agent methyldopa (Aldomet). The drug appears to induce antibody formation to red cell membrane Rh antigens. About 29% of the patients receiving this drug develop a positive antiglobulin test response.
Laboratory features. The laboratory features for all mechanisms show increased red cell turnover and anemia if hemolysis exceeds the rate of RBC production. Serologic tests, such as the direct antiglobulin test, will be positive. In hapten antibody–mediated drug reactions and in immune complex formation, the antiglobulin reaction is positive for immunoglobulins. In autoantibody induction, the antiglobulin reaction is positive for complement. Fragmented RBCs may be seen on the peripheral blood smear. These fragments are called schistocytes (Fig. 13.21). Leukopenia and thrombocytopenia are sometimes seen with drug-induced platelet or leukocyte destruction.
Clinical manifestations. Types of immune drug-induced hemolytic anemia vary in symptoms and severity, depending on the mechanism involved. Hapten (e.g., penicillin) and autoimmune (e.g., methyldopa) drug-induced hemolytic anemias have an insidious onset of symptoms over a period of weeks. The neoantigen formation (e.g., quinine or quinidine) may present with sudden, severe hemolysis with hemoglo- binuria and result in acute renal failure. Other clinical manifestations include acute respiratory distress syndrome and respiratory arrest.
Treatment. Recognition and discontinuation of the responsible drug are usually the only treatment necessary. Steroid therapy and transfusions may be required in cases of severe hemolysis.
Course and prognosis. Immune hemolytic anemia attributable to drugs is usually mild and the prognosis is good; however, with severe hemolysis, death can occur. Laboratory findings for erythrocyte disorders are summarized in Table 13.5.
Acute Blood Loss Etiology and pathogenesis. Acute blood loss anemia may present
after trauma or secondary to a disease process. Acute blood loss anemia
FIG 13.21 Schistocytes are fragments of red blood cells produced by hemolytic pathologies. (Courtesy Beth Payne, Sacred Heart Medical Center, Spokane, WA.)
KEY POINTS • The general effects of anemia are due to tissue hypoxia and efforts to
compensate for low oxygen-carrying capacity. Vasoconstriction, pallor, tachypnea, dyspnea, tachycardia, ischemic pain, lethargy, and lightheadedness may be present. In addition, signs and symptoms relating to the specific cause of the anemia may be present. These accompanying manifestations are helpful in determining the cause of the anemia.
• Anemia may be due to abnormally low production of red cells and/or excessive loss or destruction. Decreased production of red cells may be due to stem cell failure (aplastic anemia); lack of erythropoietin (renal disease); or nutritional deficiencies of iron, vitamin B12, or folate. Excessive red cell loss may be due to hemolysis (e.g., ABO and Rh incompatibility, drugs) or bleeding (e.g., surgery, trauma). Inherited disorders of red cells often impair production and increase destruction of red cells.
286 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
pulmonary edema that follows transfusion. All blood components have been implicated in TRALI, but plasma-containing products are more prevalent. Supportive care is the mainstay of therapy in TRALI with (1) oxygen supplementation, (2) aggressive respiratory support, and (3) intravenous administration of fluids, as well as vasopressors, which are essential for blood pressure support. Corticosteroids can be beneficial, and diuretics should be avoided in TRALI. TACO is defined as an expansion in the intravascular volume when the infused blood components and/ or other fluids exceed the cardiovascular ability to handle the additional workload, and results in congestive heart failure. Diuretics are given in TACO along with the supportive care noted previously.
POLYCYTHEMIA In polycythemia, red cells are present in excess, increasing blood viscosity, which in turn causes clinical manifestations such as hypertension. The three types of polycythemia are classified according to cause. Polycythemia vera is associated with neoplastic transformation of bone marrow stem cells. Secondary polycythemia is due to chronic hypoxemia, with a resultant increase in erythropoietin production. Relative polycythemia is due to dehydration, which causes a spurious increase in the RBC count.
Polycythemia Vera Etiology and pathogenesis. Polycythemia vera, or primary polycy-
themia, is a type of chronic panmyelosis (see Chapter 11) and is part of the spectrum of myeloproliferative disorders. Polycythemia vera arises from the transformation of a single stem cell into a cell with a selective growth advantage that gradually becomes the predominant source of marrow precursors. There is an overproduction of normal red cells, white cells, and platelets. As with many malignancies, the cause is unknown. Possible mechanisms for the proliferation include (1) unregulated neoplastic proliferation of stem cells, (2) presence of abnormal myeloproliferative factor acting on normal stem cells, and (3) increase of stem cell sensitivity to erythropoietin and other hema- topoietins. Some researchers have postulated that it is damage to the undifferentiated stem cell by a virus, radiation, drugs, or other agents that causes mutation and subsequent neoplastic transformation
Laboratory features. The diagnosis depends primarily on results of laboratory studies, which show an absolute increase in red cell mass and leukocytosis and thrombocytosis. The bone marrow shows hyper- plasia of red cells, white cells, and platelets and extension of active hematopoietic marrow into bones of the extremities. Uric acid concentra- tion is increased because of excessive cell proliferation, which results in the destruction of an increased number of cells. Arterial oxygen saturation is normal, which differentiates polycythemia vera from the more common secondary (hypoxemic) polycythemia. Additional findings include increased erythropoietin, elevated serum vitamin B12, and elevated leukocyte alkaline phosphatase levels (Fig. 13.22).
Clinical manifestations. Symptoms include headache, backache, weakness, fatigue on exertion, pruritus, dizziness, sweating, visual disturbances, weight loss, paresthesias, dyspnea, joint complaints, and epigastric distress and pressure. Common clinical manifestations include hypertension, thrombosis, and mucosal hemorrhage attributable to engorgement of retinal and sublingual veins, but each phase of the disease presents somewhat differently. Most of the clinical symptoms of polycythemia vera are related to the increased red cell mass, which gives rise to an increased blood viscosity. The liver and spleen become congested, which increases the risk of clots, acidosis, and organ infarction. The onset is insidious, with variable manifestations in virtually any organ system. Clinical symptoms appear between 60 and 80 years of age, and they appear more often in men and Caucasians. The disorder
TRANSFUSION THERAPY Medical indications for transfusion therapy are restoration or maintenance of oxygen-carrying capacity, blood volume, hemostasis, and leukocyte function. Red cell transfusions are administered to improve tissue oxygenation in the context of anemia or acute blood loss. Adaptive responses to a declining hemoglobin concentration include increased cardiac output, augmented oxygen extraction, blood flow redistribution to the heart and brain, a right shift in the oxyhemoglobin dissociation curve, and increased red cell production by the marrow. These compensa- tory mechanisms help ensure continued oxygen delivery. A summary of blood components, indications, actions, contraindications, precautions, and hazards is presented in Table 13.9. Before transfusion therapy can occur, various donor tests are performed on the blood unit sample. These include ABO and Rh(D); syphilis; HIV antigen and antibodies; hepatitis B and C antigens; and human T-cell lymphotropic virus. Blood centers that produce plasma for fractionation also test for alanine aminotrans- ferase. Specific pretransfusion testing using blood samples from the recipient and the donor unit must be done to ensure that the blood component will not harm the recipient and that the blood component will have an acceptable survival time when transfused. ABO and Rh typing and RBC antibody detection tests are performed, and then a cross-match between the donor unit and the recipient is performed. Types of transfusion reactions, signs and symptoms, usual causes, treat- ment, and precautions are summarized in Table 13.10. Two serious complications of transfusion therapy include transfusion-related acute lung injury (TRALI) and transfusion-related circulatory overload (TACO). TRALI is a syndrome of acute hypoxia as a result of noncardiogenic
• Determination of the cause of anemia is based on the history, differential signs and symptoms, and results of laboratory studies. The important dif- ferentiating features of the major types of anemia are as follows: • Aplastic anemia: History of toxic or radiation injury to bone marrow.
Accompanying leukopenia and thrombocytopenia. Red cells are normocytic and normochromic.
• Chronic renal failure: History of renal disease. Decreased erythropoietin level and erythropoietin responsiveness. Red cells are normocytic and normochromic.
• Vitamin B12 and folate deficiency: History of poor nutrient intake or GI disease. Accompanying neurologic dysfunction. Red cells are megaloblastic (macrocytic).
• Iron deficiency: History of poor nutrient intake or chronic blood loss. Decreased serum ferritin and iron levels. Red cells are microcytic and hypochromic.
• Hemolytic: History of ABO or Rh incompatibility or drug exposure. Increased bilirubin level, jaundice, positive direct antiglobulin test. Red cells are normocytic and normochromic.
• Acute blood loss: History of trauma, surgery, or known bleeding. Accompanying manifestations of volume depletion. Red cells are normal. Anemia may not be apparent until fluid loss is replaced.
• Inherited disorders of the red cell (thalassemia, sickle cell anemia, sphe- rocytosis, G6PD deficiency) predispose red cells to early destruction because of abnormalities in hemoglobin structure, cell shape, membrane structure, or energy production. Manifestations of hemolysis (e.g., bilirubin, jaundice) are often present.
• The general management of anemia is aimed at removing the cause, if possible; restoring oxygen-carrying capacity with blood transfusion when necessary; and preventing the complications of ischemia (e.g., with rest, oxygen therapy) and hemolysis (e.g., increased fluid intake, management of high bilirubin levels).
Text continued on p. 292
CHAPTER 13 Alterations in Oxygen Transport 287
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un iz
at io
n, a
nd C
M V
in fe
ct io
n.
Se e
RB Cs
. Ph
ar m
ac ol
og ic
al ly
tr
ea ta
bl e
an em
ia .
Le uk
oc yt
e re
du ct
io n
sh ou
ld n
ot b
e us
ed t
o pr
ev en
t TA
-G VH
D .
Se e
RB Cs
. M
us t
be A
BO -c
om pa
tib le
. H
yp ot
en si
ve r
ea ct
io n
m ay
oc
cu r
if be
ds id
e le
uk oc
yt e
re du
ct io
n fil
te r
is u
se d.
In fe
ct io
us d
is ea
se s.
H em
ol yt
ic , s
ep tic
/t ox
ic ,
al le
rg ic
a nd
f eb
ril e
re ac
tio ns
(u nl
es s
pl as
m a
al so
r em
ov ed
[e .g
., by
w
as hi
ng ])
TA CO
. TR
A LI
. TA
-G VH
D .
Fo r
m as
si ve
lo ss
, a s
fa st
a s
pa tie
nt c
an
to le
ra te
, b ut
le ss
t ha
n 4
hr .
Co nt
in ue
d
288 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure T
A B
L E
1 3
.9
S u
m m
a ry
o f
B lo
o d
C o
m p
o n
e n
ts —
co n
t’ d
C o
m p
o n
e n
t* M
a jo
r In
d ic
a ti
o n
s P
ro p
e rt
ie s
o f
C o
m p
o n
e n
t N
o t
In d
ic a
te d
f o
r T
h e
se C
o n
d it
io n
s S
p e
ci a
l P
re ca
u ti
o n
s H
a za
rd s
R a
te o
f In
fu si
o n
RB Cs
w as
he d
Se e
RB Cs
. Ig
A d
efi ci
en cy
w ith
an
ap hy
la ct
oi d
re ac
tio n.
Re cu
rr en
t se
ve re
a lle
rg ic
re
ac tio
ns t
o un
w as
he d
re d
ce ll
pr od
uc ts
.
Se e
RB Cs
. W
as hi
ng r
ed uc
es p
la sm
a pr
ot ei
ns .
Ri sk
o f
al le
rg ic
r ea
ct io
ns is
re
du ce
d.
Se e
RB Cs
. Se
e RB
Cs .
Se e
RB Cs
. Se
e RB
Cs .
Fr es
h- fr
oz en
p la
sm a
(F FP
) Cl
in ic
al ly
s ig
ni fic
an t
pl as
m a
pr ot
ei n
de fic
ie nc
ie s
w he
n no
s pe
ci fic
c oa
gu la
tio n
co nc
en tr
at es
a re
a va
ila bl
e. TT
P.
So ur
ce o
f la
bi le
a nd
n on
la bi
le
pl as
m a
pr ot
ei ns
, i nc
lu di
ng a
ll co
ag ul
at io
n fa
ct or
s.
Vo lu
m e
ex pa
ns io
n. Co
ag ul
op at
hy c
an b
e m
or e
ef fe
ct iv
el y
tr ea
te d
w ith
s pe
ci fic
th
er ap
y.
M us
t be
A BO
-c om
pa tib
le In
fe ct
io us
d is
ea se
s. H
em ol
yt ic
, s ep
tic /t
ox ic
, al
le rg
ic , a
nd f
eb ril
e re
ac tio
ns .
TA CO
. TR
A LI
. TA
-G VH
D
< 4 h
r
Li qu
id p
la sm
a,
pl as
m a,
a nd
th
aw ed
p la
sm a
Bl ee
di ng
p at
ie nt
s w
ith d
efi ci
t of
s ta
bl e
co ag
ul at
io n
fa ct
or s.
TT P
So ur
ce o
f pl
as m
a pr
ot ei
ns a
nd
no nl
ab ile
f ac
to rs
. Le
ve ls
a nd
a ct
iv at
io n
st at
e of
co
ag ul
at io
n pr
ot ei
ns in
t ha
w ed
pl
as m
a ar
e va
ria bl
e an
d ch
an ge
ov
er t
im e.
Vo lu
m e
ex pa
ns io
n. Co
ag ul
op at
hy t
ha t
ca n
be m
or e
ef fe
ct iv
el y
tr ea
te d
w ith
s pe
ci fic
th
er ap
y.
M us
t be
A BO
-c om
pa tib
le .
In fe
ct io
us d
is ea
se s.
A lle
rg ic
r ea
ct io
ns .
TA CO
. TR
A LI
.
< 4 h
r
Pl as
m a,
cr
yo pr
ec ip
ita te
re
du ce
d
TT P
Se e
FF P.
Pl as
m a
pr ot
ei n
re pl
ac em
en t
fo r
pl as
m a
in F
FP .
D efi
ci en
t in
fi br
in og
en , v
W F,
a nd
fa
ct or
s VI
II an
d XI
II. D
efi ci
en t
in h
ig h
m ol
ec ul
ar w
ei gh
t vW
F m
ul tim
er s
co m
pa re
d w
ith
FF P
Vo lu
m e
ex pa
ns io
n. D
efi ci
en cy
o f
co ag
ul at
io n
fa ct
or s
kn ow
n to
b e
de pl
et ed
in
t hi
s pr
od uc
t, fib
rin og
en , v
W F,
a nd
fa
ct or
s VI
II, a
nd X
III .
M us
t be
A BO
-c om
pa tib
le .
Se e
FF P.
< 4 h
r
Cr yo
pr ec
ip ita
te d
A H
F; p
oo le
d cr
yo pr
ec ip
ita te
d A
H F
H yp
ofi br
in og
en em
ia .
Fa ct
or X
III d
efi ci
en cy
. Se
co nd
li ne
t he
ra py
o f
vo n
W ill
eb ra
nd d
is ea
se ,
he m
op hi
lia A
a nd
u re
m ic
bl
ee di
ng .
Pr ov
id es
fi br
in og
en , v
W F,
f ac
to rs
VI
II an
d XI
II‡ .
N ot
in di
ca te
d if
sp ec
ifi c
co nc
en tr
at es
ar
e av
ai la
bl e.
D efi
ci en
ci es
o f
an y
pl as
m a
pr ot
ei n
ot he
r th
an t
ho se
e nr
ic he
d in
c ry
op re
ci pi
ta te
d A
H F.
Fr eq
ue nt
r ep
ea t
do se
s m
ay
be n
ec es
sa ry
. In
fe ct
io us
d is
ea se
s. A
lle rg
ic , f
eb ril
e re
ac tio
ns .
< 4 h
r
Pl at
el et
s; p
la te
le ts
po
ol ed
Bl ee
di ng
f ro
m
th ro
m bo
cy to
pe ni
a or
pl
at el
et f
un ct
io n
ab no
rm al
ity , i
nc lu
di ng
an
tip la
te le
t dr
ug s.
Pr ev
en tio
n of
b le
ed in
g fr
om
m ar
ro w
h yp
op la
si a.
Im pr
ov es
h em
os ta
si s.
Pl as
m a
co ag
ul at
io n
de fic
its .
So m
e co
nd iti
on s
w ith
ra
pi d
pl at
el et
de
st ru
ct io
n (e
.g .,
IT P,
TT
P) u
nl es
s lif
e- th
re at
en in
g he
m or
rh ag
e.
M us
t be
A BO
-c om
pa tib
le
w ith
p la
sm a.
Sh ou
ld n
ot u
se s
om e
fil te
rs
(c he
ck m
an uf
ac tu
re r’s
in
st ru
ct io
ns ).
In fe
ct io
us d
is ea
se s.
H em
ol yt
ic , s
ep tic
/t ox
ic ,
al le
rg ic
, f eb
ril e
re ac
tio ns
. TA
CO .
TR A
LI .
TA -G
VH D
< 4 h
r
Pl at
el et
s,
ap he
re si
s‡ Se
e Pl
at el
et s.
Se e
Pl at
el et
s. M
ay b
e H
LA o
r ot
he r
an tig
en
se le
ct ed
.
Se e
Pl at
el et
s. Se
e Pl
at el
et s.
Se e
Pl at
el et
s. <4
h r
Pl at
el et
s, ir
ra di
at ed
; pl
at el
et s,
p oo
le d
irr ad
ia te
d;
pl at
el et
s,
ap he
re si
s irr
ad ia
te d
Se e
Pl at
el et
s. In
cr ea
se d
ris k
of T
A -G
VH D
Se e
Pl at
el et
s. D
on or
ly m
ph oc
yt es
a re
in
ac tiv
at ed
, r ed
uc in
g ris
k of
TA
-G VH
D .
Se e
Pl at
el et
s. Se
e Pl
at el
et s.
Se e
Pl at
el et
s. < 4
h r
Pl at
el et
s,
le uk
oc yt
es
re du
ce d;
p oo
le d
pl at
el et
s,
le uk
oc yt
es
re du
ce d;
ap
he re
si s
pl at
el et
s,
le uk
oc yt
es
re du
ce d
Se e
Pl at
el et
s. Re
du ct
io n
of f
eb ril
e re
ac tio
ns ; r
ed uc
tio n
of H
LA
al lo
im m
un iz
at io
n an
d CM
V in
fe ct
io n.
Se e
Pl at
el et
s. Re
du ct
io n
of le
uk oc
yt es
r ed
uc es
ris
k of
f eb
ril e
re ac
tio ns
, H LA
al
lo im
m un
iz at
io n,
a nd
C M
V in
fe ct
io n.
Se e
Pl at
el et
s. Le
uk oc
yt e
re du
ct io
n sh
ou ld
n ot
b e
us ed
t o
pr ev
en t
TA -G
VH D
.
Se e
Pl at
el et
s. Se
e Pl
at el
et s.
< 4 h
r
G ra
nu lo
cy te
s,
ap he
re si
s N
eu tr
op en
ia w
ith in
fe ct
io n,
un
re sp
on si
ve t
o ap
pr op
ria te
an
tib io
tic s.
Pr ov
id es
g ra
nu lo
cy te
s w
ith o
r w
ith ou
t pl
at el
et s.
In fe
ct io
n re
sp on
si ve
t o
an tib
io tic
s, e
ve nt
ua l
m ar
ro w
r ec
ov er
y no
t ex
pe ct
ed .
M us
t be
A BO
-c om
pa tib
le .
Sh ou
ld n
ot u
se s
om e
fil te
rs
(c he
ck m
an uf
ac tu
re r’s
in
st ru
ct io
ns );
do n
ot u
se
de pt
h- ty
pe
m ic
ro ag
gr eg
at e
fil te
rs .
In fe
ct io
us d
is ea
se s.
H em
ol yt
ic , a
lle rg
ic , f
eb ril
e re
ac tio
ns .
TA CO
. TR
A LI
. TA
-G VH
D .
M ai
nt ai
n ca
ut io
n. P
ul m
on ar
y re
ac tio
ns m
ay o
cc ur
in
pa tie
nt s
re ce
iv in
g co
nc om
ita nt
a m
ph ot
er ic
in
B.
O ne
u ni
t ov
er 2
–4 -h
r pe
rio d.
O bs
er ve
c lo
se ly
f or
re
ac tio
ns
G ra
nu lo
cy te
s,
ph er
es is
irr
ad ia
te d;
gr
an ul
oc yt
es ,
pl at
el et
s irr
ad ia
te d
Se e
G ra
nu lo
cy te
s; s
ee
Pl at
el et
s Pr
ov id
es g
ra nu
lo cy
te s
w ith
o r
w ith
ou t
pl at
el et
s. Se
e G
ra nu
lo cy
te s;
s ee
Pl
at el
et s
Se e
G ra
nu lo
cy te
s; s
ee
Pl at
el et
s Se
e G
ra nu
lo cy
te s;
s ee
Pl
at el
et s
Se e
G ra
nu lo
cy te
s; s
ee
Pl at
el et
s
CHAPTER 13 Alterations in Oxygen Transport 289
* F o r
al l ce
llu la
r co
m p o n e n ts
t h e re
i s
a ri sk
t h at
t h e r
e ci
p ie
n t
m ay
b e co
m e a
llo im
m u n iz
e d .
† R
B C
s an
d p
la te
le ts
m ay
b e p
ro ce
ss e d i n a
m an
n e r
th at
y ie
ld s
le u ko
cy te
-r e d u ce
d c
o m
p o n e n ts
f o r
w h ic
h t
h e m
ai n i n d ic
at io
n s
ar e p
re ve
n ti o n o
f fe
b ri le
, n o n h e m
o ly
ti c
tr an
sf u si
o n r
e ac
ti o n s
an d p
re ve
n ti o n o
f le
u ko
cy te
a llo
im m
u n iz
at io
n .
R is
ks a
re t
h e s
am e a
s th
o se
f o r
st an
d ar
d c
o m
p o n e n ts
, e xc
e p t
fo r
re d u ce
d r
is k
o f
fe b ri le
r e ac
ti o n s.
‡ W
h e n v
ir u s-
in ac
ti va
te d c
o n ce
n tr
at e s
ar e n
o t
av ai
la b le
. A
H F
, A
n ti h e m
o p h ili
c fa
ct o r;
C M
V ,
cy to
m e g al
o vi
ru s;
F F P
, fr
e sh
-f ro
ze n p
la sm
a; H
L A
, h u m
an l e u ko
cy te
a n ti g e n ;
IT P
, id
io p at
h ic
t h ro
m b o cy
to p e n ic
p u rp
u ra
; T A
C O
, tr
an sf
u si
o n -a
ss o ci
at e d
ci rc
u la
to ry
o ve
rl o ad
; T A
-G V
H D
, tr
an sf
u si
o n -a
ss o ci
at e d g
ra ft
-v e rs
u s-
h o st
d is
e as
e ;
T R
A L I, t
ra n sf
u si
o n -r
e la
te d a
cu te
l u n g i n ju
ry ;
IU T ,
in tr
a u te
ri n e t
ra n sf
u si
o n ;
T T P
, th
ro m
b o ti c
th ro
m b o cy
to p e n ic
p u rp
u ra
; vW
F ,
vo n W
ill e b ra
n d f
ac to
r.
C o
m p
o n
e n
t* M
a jo
r In
d ic
a ti
o n
s P
ro p
e rt
ie s
o f
C o
m p
o n
e n
t N
o t
In d
ic a
te d
f o
r T
h e
se C
o n
d it
io n
s S
p e
ci a
l P
re ca
u ti
o n
s H
a za
rd s
R a
te o
f In
fu si
o n
RB Cs
w as
he d
Se e
RB Cs
. Ig
A d
efi ci
en cy
w ith
an
ap hy
la ct
oi d
re ac
tio n.
Re cu
rr en
t se
ve re
a lle
rg ic
re
ac tio
ns t
o un
w as
he d
re d
ce ll
pr od
uc ts
.
Se e
RB Cs
. W
as hi
ng r
ed uc
es p
la sm
a pr
ot ei
ns .
Ri sk
o f
al le
rg ic
r ea
ct io
ns is
re
du ce
d.
Se e
RB Cs
. Se
e RB
Cs .
Se e
RB Cs
. Se
e RB
Cs .
Fr es
h- fr
oz en
p la
sm a
(F FP
) Cl
in ic
al ly
s ig
ni fic
an t
pl as
m a
pr ot
ei n
de fic
ie nc
ie s
w he
n no
s pe
ci fic
c oa
gu la
tio n
co nc
en tr
at es
a re
a va
ila bl
e. TT
P.
So ur
ce o
f la
bi le
a nd
n on
la bi
le
pl as
m a
pr ot
ei ns
, i nc
lu di
ng a
ll co
ag ul
at io
n fa
ct or
s.
Vo lu
m e
ex pa
ns io
n. Co
ag ul
op at
hy c
an b
e m
or e
ef fe
ct iv
el y
tr ea
te d
w ith
s pe
ci fic
th
er ap
y.
M us
t be
A BO
-c om
pa tib
le In
fe ct
io us
d is
ea se
s. H
em ol
yt ic
, s ep
tic /t
ox ic
, al
le rg
ic , a
nd f
eb ril
e re
ac tio
ns .
TA CO
. TR
A LI
. TA
-G VH
D
<4 h
r
Li qu
id p
la sm
a,
pl as
m a,
a nd
th
aw ed
p la
sm a
Bl ee
di ng
p at
ie nt
s w
ith d
efi ci
t of
s ta
bl e
co ag
ul at
io n
fa ct
or s.
TT P
So ur
ce o
f pl
as m
a pr
ot ei
ns a
nd
no nl
ab ile
f ac
to rs
. Le
ve ls
a nd
a ct
iv at
io n
st at
e of
co
ag ul
at io
n pr
ot ei
ns in
t ha
w ed
pl
as m
a ar
e va
ria bl
e an
d ch
an ge
ov
er t
im e.
Vo lu
m e
ex pa
ns io
n. Co
ag ul
op at
hy t
ha t
ca n
be m
or e
ef fe
ct iv
el y
tr ea
te d
w ith
s pe
ci fic
th
er ap
y.
M us
t be
A BO
-c om
pa tib
le .
In fe
ct io
us d
is ea
se s.
A lle
rg ic
r ea
ct io
ns .
TA CO
. TR
A LI
.
<4 h
r
Pl as
m a,
cr
yo pr
ec ip
ita te
re
du ce
d
TT P
Se e
FF P.
Pl as
m a
pr ot
ei n
re pl
ac em
en t
fo r
pl as
m a
in F
FP .
D efi
ci en
t in
fi br
in og
en , v
W F,
a nd
fa
ct or
s VI
II an
d XI
II. D
efi ci
en t
in h
ig h
m ol
ec ul
ar w
ei gh
t vW
F m
ul tim
er s
co m
pa re
d w
ith
FF P
Vo lu
m e
ex pa
ns io
n. D
efi ci
en cy
o f
co ag
ul at
io n
fa ct
or s
kn ow
n to
b e
de pl
et ed
in
t hi
s pr
od uc
t, fib
rin og
en , v
W F,
a nd
fa
ct or
s VI
II, a
nd X
III .
M us
t be
A BO
-c om
pa tib
le .
Se e
FF P.
<4 h
r
Cr yo
pr ec
ip ita
te d
A H
F; p
oo le
d cr
yo pr
ec ip
ita te
d A
H F
H yp
ofi br
in og
en em
ia .
Fa ct
or X
III d
efi ci
en cy
. Se
co nd
li ne
t he
ra py
o f
vo n
W ill
eb ra
nd d
is ea
se ,
he m
op hi
lia A
a nd
u re
m ic
bl
ee di
ng .
Pr ov
id es
fi br
in og
en , v
W F,
f ac
to rs
VI
II an
d XI
II‡ .
N ot
in di
ca te
d if
sp ec
ifi c
co nc
en tr
at es
ar
e av
ai la
bl e.
D efi
ci en
ci es
o f
an y
pl as
m a
pr ot
ei n
ot he
r th
an t
ho se
e nr
ic he
d in
c ry
op re
ci pi
ta te
d A
H F.
Fr eq
ue nt
r ep
ea t
do se
s m
ay
be n
ec es
sa ry
. In
fe ct
io us
d is
ea se
s. A
lle rg
ic , f
eb ril
e re
ac tio
ns .
<4 h
r
Pl at
el et
s; p
la te
le ts
po
ol ed
Bl ee
di ng
f ro
m
th ro
m bo
cy to
pe ni
a or
pl
at el
et f
un ct
io n
ab no
rm al
ity , i
nc lu
di ng
an
tip la
te le
t dr
ug s.
Pr ev
en tio
n of
b le
ed in
g fr
om
m ar
ro w
h yp
op la
si a.
Im pr
ov es
h em
os ta
si s.
Pl as
m a
co ag
ul at
io n
de fic
its .
So m
e co
nd iti
on s
w ith
ra
pi d
pl at
el et
de
st ru
ct io
n (e
.g .,
IT P,
TT
P) u
nl es
s lif
e- th
re at
en in
g he
m or
rh ag
e.
M us
t be
A BO
-c om
pa tib
le
w ith
p la
sm a.
Sh ou
ld n
ot u
se s
om e
fil te
rs
(c he
ck m
an uf
ac tu
re r’s
in
st ru
ct io
ns ).
In fe
ct io
us d
is ea
se s.
H em
ol yt
ic , s
ep tic
/t ox
ic ,
al le
rg ic
, f eb
ril e
re ac
tio ns
. TA
CO .
TR A
LI .
TA -G
VH D
<4 h
r
Pl at
el et
s,
ap he
re si
s‡ Se
e Pl
at el
et s.
Se e
Pl at
el et
s. M
ay b
e H
LA o
r ot
he r
an tig
en
se le
ct ed
.
Se e
Pl at
el et
s. Se
e Pl
at el
et s.
Se e
Pl at
el et
s. <4
h r
Pl at
el et
s, ir
ra di
at ed
; pl
at el
et s,
p oo
le d
irr ad
ia te
d;
pl at
el et
s,
ap he
re si
s irr
ad ia
te d
Se e
Pl at
el et
s. In
cr ea
se d
ris k
of T
A -G
VH D
Se e
Pl at
el et
s. D
on or
ly m
ph oc
yt es
a re
in
ac tiv
at ed
, r ed
uc in
g ris
k of
TA
-G VH
D .
Se e
Pl at
el et
s. Se
e Pl
at el
et s.
Se e
Pl at
el et
s. <4
h r
Pl at
el et
s,
le uk
oc yt
es
re du
ce d;
p oo
le d
pl at
el et
s,
le uk
oc yt
es
re du
ce d;
ap
he re
si s
pl at
el et
s,
le uk
oc yt
es
re du
ce d
Se e
Pl at
el et
s. Re
du ct
io n
of f
eb ril
e re
ac tio
ns ; r
ed uc
tio n
of H
LA
al lo
im m
un iz
at io
n an
d CM
V in
fe ct
io n.
Se e
Pl at
el et
s. Re
du ct
io n
of le
uk oc
yt es
r ed
uc es
ris
k of
f eb
ril e
re ac
tio ns
, H LA
al
lo im
m un
iz at
io n,
a nd
C M
V in
fe ct
io n.
Se e
Pl at
el et
s. Le
uk oc
yt e
re du
ct io
n sh
ou ld
n ot
b e
us ed
t o
pr ev
en t
TA -G
VH D
.
Se e
Pl at
el et
s. Se
e Pl
at el
et s.
<4 h
r
G ra
nu lo
cy te
s,
ap he
re si
s N
eu tr
op en
ia w
ith in
fe ct
io n,
un
re sp
on si
ve t
o ap
pr op
ria te
an
tib io
tic s.
Pr ov
id es
g ra
nu lo
cy te
s w
ith o
r w
ith ou
t pl
at el
et s.
In fe
ct io
n re
sp on
si ve
t o
an tib
io tic
s, e
ve nt
ua l
m ar
ro w
r ec
ov er
y no
t ex
pe ct
ed .
M us
t be
A BO
-c om
pa tib
le .
Sh ou
ld n
ot u
se s
om e
fil te
rs
(c he
ck m
an uf
ac tu
re r’s
in
st ru
ct io
ns );
do n
ot u
se
de pt
h- ty
pe
m ic
ro ag
gr eg
at e
fil te
rs .
In fe
ct io
us d
is ea
se s.
H em
ol yt
ic , a
lle rg
ic , f
eb ril
e re
ac tio
ns .
TA CO
. TR
A LI
. TA
-G VH
D .
M ai
nt ai
n ca
ut io
n. P
ul m
on ar
y re
ac tio
ns m
ay o
cc ur
in
pa tie
nt s
re ce
iv in
g co
nc om
ita nt
a m
ph ot
er ic
in
B.
O ne
u ni
t ov
er 2
–4 -h
r pe
rio d.
O bs
er ve
c lo
se ly
f or
re
ac tio
ns
G ra
nu lo
cy te
s,
ph er
es is
irr
ad ia
te d;
gr
an ul
oc yt
es ,
pl at
el et
s irr
ad ia
te d
Se e
G ra
nu lo
cy te
s; s
ee
Pl at
el et
s Pr
ov id
es g
ra nu
lo cy
te s
w ith
o r
w ith
ou t
pl at
el et
s. Se
e G
ra nu
lo cy
te s;
s ee
Pl
at el
et s
Se e
G ra
nu lo
cy te
s; s
ee
Pl at
el et
s Se
e G
ra nu
lo cy
te s;
s ee
Pl
at el
et s
Se e
G ra
nu lo
cy te
s; s
ee
Pl at
el et
s
290 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
T A
B L E
1 3
.1 0
T
ra n
sf u
si o
n R
e a ct
io n
s
T y
p e
S ig
n s
a n
d S
y m
p to
m s
U su
a l
C a
u se
T re
a tm
e n
t P
re ca
u ti
o n
s
A cu
te in
tr av
as cu
la r
he m
ol yt
ic (i
m m
un e)
H em
og lo
bi ne
m ia
a nd
h em
og lo
bi nu
ria ,
fe ve
r, ch
ill s,
a nx
ie ty
, s ho
ck ,
di ss
em in
at ed
in tr
av as
cu la
r co
ag ul
at io
n (D
IC ),
dy sp
ne a,
c he
st
pa in
, fl an
k pa
in , n
au se
a/ vo
m iti
ng ,
he ad
ac he
, p ai
n at
n ee
dl e
si te
a nd
al
on g
ve no
us t
ra ct
In co
m pa
tib ili
ty b
ec au
se o
f cl
er ic
al
er ro
rs ; i
nv ol
ve s
A BO
(p rim
ar ily
) o r
ot he
r er
yt hr
oc yt
e an
tig en
-a nt
ib od
y in
co m
pa tib
ili ty
St op
t ra
ns fu
si on
; h yd
ra te
; su
pp or
t bl
oo d
pr es
su re
a nd
re
sp ira
tio n;
in du
ce d
iu re
si s;
tr
ea t
sh oc
k an
d D
IC
Po si
tiv el
y id
en tif
y do
no r
an d
re ci
pi en
t bl
oo d
ty pe
s an
d gr
ou ps
be
fo re
t ra
ns fu
si on
is b
eg un
; v er
ify w
ith o
ne o
th er
n ur
se o
r ph
ys ic
ia n.
T ra
ns fu
se b
lo od
s lo
w ly
f or
fi rs
t 15
–2 0
m in
a nd
/o r
in iti
al o
ne -fi
ft h
vo lu
m e
of b
lo od
; r em
ai n
w ith
p at
ie nt
. I n
ev en
t of
si
gn s
or s
ym pt
om s,
s to
p tr
an sf
us io
n im
m ed
ia te
ly , m
ai nt
ai n
pa te
nt
IV li
ne , a
nd n
ot ify
p hy
si ci
an . S
av e
do no
r bl
oo d
to r
e– cr
os s-
m at
ch
w ith
p at
ie nt
’s b
lo od
. M on
ito r
bl oo
d pr
es su
re f
or s
ho ck
. I ns
er t
ur in
ar y
ca th
et er
a nd
m on
ito r
ho ur
ly o
ut pu
ts . S
en d
sa m
pl e
of
pa tie
nt ’s
b lo
od a
nd u
rin e
to la
bo ra
to ry
t o
de te
rm in
e pr
es en
ce o
f he
m og
lo bi
n (in
di ca
te s
in tr
av as
cu la
r he
m ol
ys is
). O
bs er
ve f
or s
ig ns
of
h em
or rh
ag e
re su
lti ng
f ro
m D
IC . S
up po
rt m
ed ic
al t
he ra
pi es
t o
re ve
rs e
sh oc
k. D
el ay
ed e
xt ra
va sc
ul ar
he
m ol
yt ic
(i m
m un
e) Fe
ve r,
m al
ai se
, i nd
ire ct
hy
pe rb
ili ru
bi ne
m ia
, i nc
re as
ed u
rin e
ur ob
ili no
ge n,
f al
lin g
he m
at oc
rit a
nd
he m
og lo
bi n
O cc
ur s
in p
re vi
ou sl
y RB
C- al
lo im
m un
iz ed
pa
tie nt
s in
w ho
m a
nt ig
en o
n tr
an sf
us ed
r ed
c el
ls p
ro vo
ke s
an am
ne st
ic p
ro du
ct io
n of
a nt
ib od
y;
de st
ru ct
io n
of R
BC s;
u su
al ly
in vo
lv es
no
n- A
BO a
nt ig
en -a
nt ib
od y
in co
m pa
tib ili
ty o
cc ur
rin g
2– 14
d ay
s po
st tr
an sf
us io
n
M on
ito r
he m
at oc
rit , r
en al
fu
nc tio
n, c
oa gu
la tio
n pr
ofi le
; n o
ac ut
e tr
ea tm
en t
ge ne
ra lly
r eq
ui re
d
O bs
er ve
f or
p os
tt ra
ns fu
si on
a ne
m ia
a nd
d ec
re as
in g
be ne
fit f
ro m
su
cc es
si ve
t ra
ns fu
si on
.
G ra
ft v
er su
s ho
st
di se
as e
(G VH
D ) o
r TA
-G H
VD
Vi ab
le T
ly m
ph oc
yt es
r ea
ct a
ga in
st
tis su
e an
tig en
s in
r ec
ip ie
nt U
se γ
-ir ra
di at
ed c
om po
ne nt
s to
p re
ve nt
T A
-G VH
D .
Im m
un oc
om pr
om is
ed r
ec ip
ie nt
s m
os t
at r
is k
Fe br
ile Fe
ve r,
ch ill
s, r
ar el
y hy
po te
ns io
n A
nt ib
od ie
s to
le uk
oc yt
es o
r pl
as m
a pr
ot ei
ns St
op t
ra ns
fu si
on ; g
iv e
an tip
yr et
ic s,
ac
et am
in op
he n
(o r
as pi
rin
if pa
tie nt
n ot
th
ro m
bo cy
to pe
ni c)
U se
o f
le uk
oc yt
e- po
or R
BC s
is le
ss li
ke ly
t o
ca us
e re
ac tio
n.
A lle
rg ic
U rt
ic ar
ia (h
iv es
), flu
sh in
g, w
he ez
in g,
la
ry ng
ea l e
de m
a, r
ar el
y hy
po te
ns io
n or
a na
ph yl
ax is
A nt
ib od
ie s
to p
la sm
a pr
ot ei
ns St
op t
ra ns
fu si
on ; g
iv e
an tih
is ta
m in
e; if
s ev
er e,
gi
ve e
pi ne
ph rin
e an
d/ or
st
er oi
ds
A dm
in is
te r
pr et
ra ns
fu si
on a
nt ih
is ta
m in
e; u
se w
as he
d RB
C co
m po
ne nt
s.
H yp
er vo
le m
ic o
r TA
CO D
ys pn
ea , r
al es
, h yp
er te
ns io
n,
pu lm
on ar
y ed
em a,
c ar
di ac
dy
sr hy
th m
ia s,
p re
co rd
ia l p
ai n,
cy
an os
is , d
ry c
ou gh
, d is
te nd
ed n
ec k
ve in
s
Tr an
sf us
io n-
as so
ci at
ed c
irc ul
at or
y ov
er lo
ad f
ro m
t oo
r ap
id o
r ex
ce ss
iv e
bl oo
d tr
an sf
us io
n
In du
ce d
iu re
si s;
p hl
eb ot
om y;
su
pp or
t ca
rd io
re sp
ira to
ry
sy st
em a
s ne
ed ed
Tr an
sf us
e bl
oo d
sl ow
ly . P
re ve
nt o
ve rlo
ad b
y us
in g
pa ck
ed R
BC s
or
ad m
in is
te rin
g di
vi de
d am
ou nt
s of
b lo
od . U
se in
fu si
on p
um p
to
re gu
la te
a nd
m ai
nt ai
n flo
w r
at e.
If s
ig ns
o f
ov er
lo ad
, s to
p tr
an sf
us io
n im
m ed
ia te
ly . P
la ce
p at
ie nt
in s
em i-F
ow le
r po
si tio
n to
in
cr ea
se v
en ou
s re
si st
an ce
.
TR A
LI A
cu te
o ns
et o
f hy
po xe
m ia
w ith
in 6
h r
of a
b lo
od o
r bl
oo d
co m
po ne
nt
tr an
sf us
io n;
d ys
pn ea
, p ul
m on
ar y
ed em
a, n
or m
al c
ar di
ac p
re ss
ur es
A nt
i-H LA
o r
an til
eu ko
cy te
a nt
ib od
ie s
Su pp
or t
bl oo
d pr
es su
re a
nd
ag gr
es si
ve r
es pi
ra to
ry
su pp
or t
th at
m ay
r eq
ui re
in
tu ba
tio n
an d
m ec
ha ni
ca l
ve nt
ila tio
n
U se
w as
he d
RB Cs
; a vo
id u
nn ec
es sa
ry t
ra ns
fu si
on .
H yp
ot he
rm ia
Ch ill
s, lo
w t
em pe
ra tu
re , i
rr eg
ul ar
he
ar t
ra te
, p os
si bl
e ca
rd ia
c ar
re st
Ra pi
d in
fu si
on o
f co
ld b
lo od
p ro
du ct
s M
on ito
r te
m pe
ra tu
re ; i
f m
ar ke
dl y
su bn
or m
al , s
to p
tr an
sf us
io n
A llo
w b
lo od
t o
w ar
m a
t ro
om t
em pe
ra tu
re (<
1 hr
). U
se a
n el
ec tr
ic
w ar
m in
g co
il to
r ap
id ly
w ar
m b
lo od
.
El ec
tr ol
yt e
di st
ur ba
nc es
, hy
pe rk
al em
ia
N au
se a,
d ia
rr he
a, m
us cu
la r
w ea
kn es
s, fl
ac ci
d pa
ra ly
si s,
pa
re st
he si
a of
e xt
re m
iti es
, br
ad yc
ar di
a, a
pp re
he ns
io n,
c ar
di ac
ar
re st
M as
si ve
t ra
ns fu
si on
s or
in p
at ie
nt s
w ith
r en
al p
ro bl
em s
Ka ye
xa la
te e
ne m
as if
po
ta ss
iu m
> 5.
0 m
Eq /L
U se
w as
he d
RB Cs
o r
fr es
h bl
oo d
if pa
tie nt
a t
ris k.
Ci tr
at e
in to
xi ca
tio n
(h yp
oc al
ce m
ia )
Ti ng
lin g
in fi
ng er
s, t
et an
y, m
us cu
la r
cr am
ps , c
ar po
pe da
l s pa
sm ,
hy pe
ra ct
iv e
re fle
xe s,
c on
vu ls
io ns
M as
si ve
t ra
ns fu
si on
o f
bl oo
d St
op t
ra ns
fu si
on ; a
dm in
is te
r IV
c al
ci um
if s
ev er
e In
fu se
b lo
od s
lo w
ly (c
itr at
e re
ac tio
n le
ss li
ke ly
t o
oc cu
r). If
s ig
ns o
f te
ta ny
o cc
ur , c
la m
p tu
bi ng
im m
ed ia
te ly
, m ai
nt ai
n pa
te nt
in
tr av
en ou
s lin
e, a
nd n
ot ify
p hy
si ci
an .
A ir
em bo
li Su
dd en
d iffi
cu lty
in b
re at
hi ng
, s ha
rp
pa in
in c
he st
, a pp
re he
ns io
n,
re sp
ira to
ry o
r ca
rd ia
c ar
re st
A ir
em bo
li fr
om b
lo od
a dm
in is
te re
d un
de r
pr es
su re
St op
t ra
ns fu
si on
; t ur
n pa
tie nt
on
le ft
s id
e; a
sp ira
te r
ig ht
at
ria l/
ve nt
ric ul
ar a
ir em
bo li
W he
n in
fu si
ng b
lo od
u nd
er p
re ss
ur e
be fo
re c
on ta
in er
is e
m pt
y: if
ai
r is
o bs
er ve
d in
t ub
in g,
c la
m p
tu bi
ng im
m ed
ia te
ly b
el ow
a ir
bu bb
le , c
le ar
t ub
in g
of a
ir by
a sp
ira tin
g ai
r w
ith s
yr in
ge o
r di
sc on
ne ct
in g
tu bi
ng a
nd a
llo w
in g
bl oo
d to
fl ow
u nt
il ai
r ha
s es
ca pe
d. Ba
ct er
ia l s
ep si
s Sh
oc k,
c hi
lls , h
ig h
fe ve
r Ba
ct er
ia l c
on ta
m in
at io
n of
b lo
od
co m
po ne
nt o
r en
do to
xi n
re ac
tio n
se en
m or
e co
m m
on ly
w ith
p la
te le
t co
m po
ne nt
s st
or ed
a t
ro om
te
m pe
ra tu
re
St op
t ra
ns fu
si on
; s up
po rt
bl
oo d
pr es
su re
; g iv
e an
tib io
tic s
U se
c ar
e in
b lo
od c
ol le
ct io
n an
d st
or ag
e.
D el
ay ed
r ea
ct io
ns ,
tr an
sm is
si on
o f
in fe
ct io
n
Si gn
s of
in fe
ct io
n af
te r
tr an
sf us
io n
(e .g
., ja
un di
ce f
ro m
h ep
at iti
s;
ba ct
er ia
l o r
to xi
n co
nt am
in at
io n—
hi gh
f ev
er , s
ev er
e he
ad ac
he o
r su
bs te
rn al
p ai
n, h
yp ot
en si
on ,
in te
ns e
flu sh
in g,
v om
iti ng
/d ia
rr he
a)
H ep
at iti
s, A
ID S,
m al
ar ia
, s yp
hi lis
, ba
ct er
ia , v
iru se
s, o
th er
St op
t ra
ns fu
si on
; d o
cu ltu
re
an d
se ns
iti vi
ty t
es ts
; t re
at
sp ec
ifi c
in fe
ct io
n
Bl oo
d is
t es
te d
fo r
H Bs
A g
(h ep
at iti
s B)
, s yp
hi lis
, a nd
, i n
m os
t ce
nt er
s, H
IV (A
ID S)
; p os
iti ve
u ni
ts a
re d
es tr
oy ed
. I nd
iv id
ua ls
a t
ris k
fo r
ca rr
yi ng
c er
ta in
v iru
se s
ar e
de fe
rr ed
f ro
m d
on at
io n.
O
bs er
ve f
or s
ig ns
o f
in fe
ct io
n.
CHAPTER 13 Alterations in Oxygen Transport 291
A d
ap te
d w
it h p
e rm
is si
o n f
ro m
W o n g L
, e d it o r:
N u rs
in g c
ar e o
f in
fa n ts
a n d c
h ild
re n ,
e d 8
, S
t L o u is
, 2 0 0 7 ,
M o sb
y, p
p 1
5 1 3 t
o 1
5 1
4 ;
an d A
m e ri ca
n A
ss o ci
at io
n o
f B
lo o d B
an ks
, A
m e ri ca
n
R e
d C
ro ss
, A
m e ri ca
’s B
lo o d C
e n te
rs a
n d t
h e A
rm e d S
e rv
ic e s
B lo
o d P
ro g ra
m :
C ir cu
la r
o f
in fo
rm at
io n f
o r
th e u
se o
f h u m
an b
lo o d a
n d b
lo o d c
o m
p o n e n ts
, W
as h in
g to
n ,
D C
, D
e ce
m b e r
2 0 0 9 ,
A m
e ri ca
n R
e d C
ro ss
.
T y
p e
S ig
n s
a n
d S
y m
p to
m s
U su
a l
C a
u se
T re
a tm
e n
t P
re ca
u ti
o n
s
A cu
te in
tr av
as cu
la r
he m
ol yt
ic (i
m m
un e)
H em
og lo
bi ne
m ia
a nd
h em
og lo
bi nu
ria ,
fe ve
r, ch
ill s,
a nx
ie ty
, s ho
ck ,
di ss
em in
at ed
in tr
av as
cu la
r co
ag ul
at io
n (D
IC ),
dy sp
ne a,
c he
st
pa in
, fl an
k pa
in , n
au se
a/ vo
m iti
ng ,
he ad
ac he
, p ai
n at
n ee
dl e
si te
a nd
al
on g
ve no
us t
ra ct
In co
m pa
tib ili
ty b
ec au
se o
f cl
er ic
al
er ro
rs ; i
nv ol
ve s
A BO
(p rim
ar ily
) o r
ot he
r er
yt hr
oc yt
e an
tig en
-a nt
ib od
y in
co m
pa tib
ili ty
St op
t ra
ns fu
si on
; h yd
ra te
; su
pp or
t bl
oo d
pr es
su re
a nd
re
sp ira
tio n;
in du
ce d
iu re
si s;
tr
ea t
sh oc
k an
d D
IC
Po si
tiv el
y id
en tif
y do
no r
an d
re ci
pi en
t bl
oo d
ty pe
s an
d gr
ou ps
be
fo re
t ra
ns fu
si on
is b
eg un
; v er
ify w
ith o
ne o
th er
n ur
se o
r ph
ys ic
ia n.
T ra
ns fu
se b
lo od
s lo
w ly
f or
fi rs
t 15
–2 0
m in
a nd
/o r
in iti
al o
ne -fi
ft h
vo lu
m e
of b
lo od
; r em
ai n
w ith
p at
ie nt
. I n
ev en
t of
si
gn s
or s
ym pt
om s,
s to
p tr
an sf
us io
n im
m ed
ia te
ly , m
ai nt
ai n
pa te
nt
IV li
ne , a
nd n
ot ify
p hy
si ci
an . S
av e
do no
r bl
oo d
to r
e– cr
os s-
m at
ch
w ith
p at
ie nt
’s b
lo od
. M on
ito r
bl oo
d pr
es su
re f
or s
ho ck
. I ns
er t
ur in
ar y
ca th
et er
a nd
m on
ito r
ho ur
ly o
ut pu
ts . S
en d
sa m
pl e
of
pa tie
nt ’s
b lo
od a
nd u
rin e
to la
bo ra
to ry
t o
de te
rm in
e pr
es en
ce o
f he
m og
lo bi
n (in
di ca
te s
in tr
av as
cu la
r he
m ol
ys is
). O
bs er
ve f
or s
ig ns
of
h em
or rh
ag e
re su
lti ng
f ro
m D
IC . S
up po
rt m
ed ic
al t
he ra
pi es
t o
re ve
rs e
sh oc
k. D
el ay
ed e
xt ra
va sc
ul ar
he
m ol
yt ic
(i m
m un
e) Fe
ve r,
m al
ai se
, i nd
ire ct
hy
pe rb
ili ru
bi ne
m ia
, i nc
re as
ed u
rin e
ur ob
ili no
ge n,
f al
lin g
he m
at oc
rit a
nd
he m
og lo
bi n
O cc
ur s
in p
re vi
ou sl
y RB
C- al
lo im
m un
iz ed
pa
tie nt
s in
w ho
m a
nt ig
en o
n tr
an sf
us ed
r ed
c el
ls p
ro vo
ke s
an am
ne st
ic p
ro du
ct io
n of
a nt
ib od
y;
de st
ru ct
io n
of R
BC s;
u su
al ly
in vo
lv es
no
n- A
BO a
nt ig
en -a
nt ib
od y
in co
m pa
tib ili
ty o
cc ur
rin g
2– 14
d ay
s po
st tr
an sf
us io
n
M on
ito r
he m
at oc
rit , r
en al
fu
nc tio
n, c
oa gu
la tio
n pr
ofi le
; n o
ac ut
e tr
ea tm
en t
ge ne
ra lly
r eq
ui re
d
O bs
er ve
f or
p os
tt ra
ns fu
si on
a ne
m ia
a nd
d ec
re as
in g
be ne
fit f
ro m
su
cc es
si ve
t ra
ns fu
si on
.
G ra
ft v
er su
s ho
st
di se
as e
(G VH
D ) o
r TA
-G H
VD
Vi ab
le T
ly m
ph oc
yt es
r ea
ct a
ga in
st
tis su
e an
tig en
s in
r ec
ip ie
nt U
se γ
-ir ra
di at
ed c
om po
ne nt
s to
p re
ve nt
T A
-G VH
D .
Im m
un oc
om pr
om is
ed r
ec ip
ie nt
s m
os t
at r
is k
Fe br
ile Fe
ve r,
ch ill
s, r
ar el
y hy
po te
ns io
n A
nt ib
od ie
s to
le uk
oc yt
es o
r pl
as m
a pr
ot ei
ns St
op t
ra ns
fu si
on ; g
iv e
an tip
yr et
ic s,
ac
et am
in op
he n
(o r
as pi
rin
if pa
tie nt
n ot
th
ro m
bo cy
to pe
ni c)
U se
o f
le uk
oc yt
e- po
or R
BC s
is le
ss li
ke ly
t o
ca us
e re
ac tio
n.
A lle
rg ic
U rt
ic ar
ia (h
iv es
), flu
sh in
g, w
he ez
in g,
la
ry ng
ea l e
de m
a, r
ar el
y hy
po te
ns io
n or
a na
ph yl
ax is
A nt
ib od
ie s
to p
la sm
a pr
ot ei
ns St
op t
ra ns
fu si
on ; g
iv e
an tih
is ta
m in
e; if
s ev
er e,
gi
ve e
pi ne
ph rin
e an
d/ or
st
er oi
ds
A dm
in is
te r
pr et
ra ns
fu si
on a
nt ih
is ta
m in
e; u
se w
as he
d RB
C co
m po
ne nt
s.
H yp
er vo
le m
ic o
r TA
CO D
ys pn
ea , r
al es
, h yp
er te
ns io
n,
pu lm
on ar
y ed
em a,
c ar
di ac
dy
sr hy
th m
ia s,
p re
co rd
ia l p
ai n,
cy
an os
is , d
ry c
ou gh
, d is
te nd
ed n
ec k
ve in
s
Tr an
sf us
io n-
as so
ci at
ed c
irc ul
at or
y ov
er lo
ad f
ro m
t oo
r ap
id o
r ex
ce ss
iv e
bl oo
d tr
an sf
us io
n
In du
ce d
iu re
si s;
p hl
eb ot
om y;
su
pp or
t ca
rd io
re sp
ira to
ry
sy st
em a
s ne
ed ed
Tr an
sf us
e bl
oo d
sl ow
ly . P
re ve
nt o
ve rlo
ad b
y us
in g
pa ck
ed R
BC s
or
ad m
in is
te rin
g di
vi de
d am
ou nt
s of
b lo
od . U
se in
fu si
on p
um p
to
re gu
la te
a nd
m ai
nt ai
n flo
w r
at e.
If s
ig ns
o f
ov er
lo ad
, s to
p tr
an sf
us io
n im
m ed
ia te
ly . P
la ce
p at
ie nt
in s
em i-F
ow le
r po
si tio
n to
in
cr ea
se v
en ou
s re
si st
an ce
.
TR A
LI A
cu te
o ns
et o
f hy
po xe
m ia
w ith
in 6
h r
of a
b lo
od o
r bl
oo d
co m
po ne
nt
tr an
sf us
io n;
d ys
pn ea
, p ul
m on
ar y
ed em
a, n
or m
al c
ar di
ac p
re ss
ur es
A nt
i-H LA
o r
an til
eu ko
cy te
a nt
ib od
ie s
Su pp
or t
bl oo
d pr
es su
re a
nd
ag gr
es si
ve r
es pi
ra to
ry
su pp
or t
th at
m ay
r eq
ui re
in
tu ba
tio n
an d
m ec
ha ni
ca l
ve nt
ila tio
n
U se
w as
he d
RB Cs
; a vo
id u
nn ec
es sa
ry t
ra ns
fu si
on .
H yp
ot he
rm ia
Ch ill
s, lo
w t
em pe
ra tu
re , i
rr eg
ul ar
he
ar t
ra te
, p os
si bl
e ca
rd ia
c ar
re st
Ra pi
d in
fu si
on o
f co
ld b
lo od
p ro
du ct
s M
on ito
r te
m pe
ra tu
re ; i
f m
ar ke
dl y
su bn
or m
al , s
to p
tr an
sf us
io n
A llo
w b
lo od
t o
w ar
m a
t ro
om t
em pe
ra tu
re (<
1 hr
). U
se a
n el
ec tr
ic
w ar
m in
g co
il to
r ap
id ly
w ar
m b
lo od
.
El ec
tr ol
yt e
di st
ur ba
nc es
, hy
pe rk
al em
ia
N au
se a,
d ia
rr he
a, m
us cu
la r
w ea
kn es
s, fl
ac ci
d pa
ra ly
si s,
pa
re st
he si
a of
e xt
re m
iti es
, br
ad yc
ar di
a, a
pp re
he ns
io n,
c ar
di ac
ar
re st
M as
si ve
t ra
ns fu
si on
s or
in p
at ie
nt s
w ith
r en
al p
ro bl
em s
Ka ye
xa la
te e
ne m
as if
po
ta ss
iu m
> 5.
0 m
Eq /L
U se
w as
he d
RB Cs
o r
fr es
h bl
oo d
if pa
tie nt
a t
ris k.
Ci tr
at e
in to
xi ca
tio n
(h yp
oc al
ce m
ia )
Ti ng
lin g
in fi
ng er
s, t
et an
y, m
us cu
la r
cr am
ps , c
ar po
pe da
l s pa
sm ,
hy pe
ra ct
iv e
re fle
xe s,
c on
vu ls
io ns
M as
si ve
t ra
ns fu
si on
o f
bl oo
d St
op t
ra ns
fu si
on ; a
dm in
is te
r IV
c al
ci um
if s
ev er
e In
fu se
b lo
od s
lo w
ly (c
itr at
e re
ac tio
n le
ss li
ke ly
t o
oc cu
r). If
s ig
ns o
f te
ta ny
o cc
ur , c
la m
p tu
bi ng
im m
ed ia
te ly
, m ai
nt ai
n pa
te nt
in
tr av
en ou
s lin
e, a
nd n
ot ify
p hy
si ci
an .
A ir
em bo
li Su
dd en
d iffi
cu lty
in b
re at
hi ng
, s ha
rp
pa in
in c
he st
, a pp
re he
ns io
n,
re sp
ira to
ry o
r ca
rd ia
c ar
re st
A ir
em bo
li fr
om b
lo od
a dm
in is
te re
d un
de r
pr es
su re
St op
t ra
ns fu
si on
; t ur
n pa
tie nt
on
le ft
s id
e; a
sp ira
te r
ig ht
at
ria l/
ve nt
ric ul
ar a
ir em
bo li
W he
n in
fu si
ng b
lo od
u nd
er p
re ss
ur e
be fo
re c
on ta
in er
is e
m pt
y: if
ai
r is
o bs
er ve
d in
t ub
in g,
c la
m p
tu bi
ng im
m ed
ia te
ly b
el ow
a ir
bu bb
le , c
le ar
t ub
in g
of a
ir by
a sp
ira tin
g ai
r w
ith s
yr in
ge o
r di
sc on
ne ct
in g
tu bi
ng a
nd a
llo w
in g
bl oo
d to
fl ow
u nt
il ai
r ha
s es
ca pe
d. Ba
ct er
ia l s
ep si
s Sh
oc k,
c hi
lls , h
ig h
fe ve
r Ba
ct er
ia l c
on ta
m in
at io
n of
b lo
od
co m
po ne
nt o
r en
do to
xi n
re ac
tio n
se en
m or
e co
m m
on ly
w ith
p la
te le
t co
m po
ne nt
s st
or ed
a t
ro om
te
m pe
ra tu
re
St op
t ra
ns fu
si on
; s up
po rt
bl
oo d
pr es
su re
; g iv
e an
tib io
tic s
U se
c ar
e in
b lo
od c
ol le
ct io
n an
d st
or ag
e.
D el
ay ed
r ea
ct io
ns ,
tr an
sm is
si on
o f
in fe
ct io
n
Si gn
s of
in fe
ct io
n af
te r
tr an
sf us
io n
(e .g
., ja
un di
ce f
ro m
h ep
at iti
s;
ba ct
er ia
l o r
to xi
n co
nt am
in at
io n—
hi gh
f ev
er , s
ev er
e he
ad ac
he o
r su
bs te
rn al
p ai
n, h
yp ot
en si
on ,
in te
ns e
flu sh
in g,
v om
iti ng
/d ia
rr he
a)
H ep
at iti
s, A
ID S,
m al
ar ia
, s yp
hi lis
, ba
ct er
ia , v
iru se
s, o
th er
St op
t ra
ns fu
si on
; d o
cu ltu
re
an d
se ns
iti vi
ty t
es ts
; t re
at
sp ec
ifi c
in fe
ct io
n
Bl oo
d is
t es
te d
fo r
H Bs
A g
(h ep
at iti
s B)
, s yp
hi lis
, a nd
, i n
m os
t ce
nt er
s, H
IV (A
ID S)
; p os
iti ve
u ni
ts a
re d
es tr
oy ed
. I nd
iv id
ua ls
a t
ris k
fo r
ca rr
yi ng
c er
ta in
v iru
se s
ar e
de fe
rr ed
f ro
m d
on at
io n.
O
bs er
ve f
or s
ig ns
o f
in fe
ct io
n.
292 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
many symptoms for most patients. Phlebotomy of only 200 to 300 mL should be considered for elderly patients or those with cardiovascular disease. In the past, a hematocrit of 50% was used as the upper limit of hematocrit tolerated before phlebotomy was used. Studies have found that increased vascular complications, decreased cerebral blood flow, and decreased mental alertness occurred when hematocrit levels exceeded 45%. Hematocrit levels should be maintained at 42% for females and 45% for males. Phlebotomy is effective in controlling red cell mass, but myelosuppressive therapy is needed when the platelet count increases to more than 800,000 to 1,000,000/µL to control hepatosplenomegaly and thrombocytosis. The agent of choice for myelosuppressive therapy is hydroxyurea, but radioactive phosphorus is also used. Hyperuricemia is treated with allopurinol (100 to 300 mg/day), pegylated interferon (90 to 180 µg/week), or interferon-α (3 × 106 units three times a week; alter dose depending on response and toxicity). Pegylated interferon, which can be administered once weekly, should be considered. As the disease progresses, thrombosis or hemorrhage, systemic symptoms, severe pruritus refractory to histamine antagonists, and painful splenomegaly occur, and a splenectomy is indicated.
Course and prognosis. Unmanaged polycythemia vera has a poor prognosis, with a survival of less than 2 years. The prognosis depends on the nature and severity of the complications, the duration of the erythrocytotic phase, and the duration of the acute myeloid leukemia phase. Treatment in the erythrocytotic phase is essential, or the patient is at extremely high risk for thromboses. The development of thrombosis, hemorrhage, and myeloproliferative syndromes is common. Treated patients have a median survival of 10 to 15 years, with the most common causes of death being thrombosis, hemorrhage, leukemia, and other myeloproliferative conditions.
Secondary Polycythemia Etiology and pathogenesis. Secondary polycythemia is absolute
erythrocytosis caused by increased stimulation of RBC production, usually in response to tissue hypoxia caused by, for example, high altitude
is rarely seen in children. In the preerythrocytic or developmental phase, hepatosplenomegaly, night sweats, and postbathing pruritus are common. Other patients experience mild thrombohemorrhagic symptoms or erythromelalgia (painful erythematous palms and soles from an increased number of circulating platelets).
The evolution of polycythemia vera is shown in Fig. 13.23. The phases include an asymptomatic phase, a plethoric or erythrocytic phase, an inactive phase, and a spent phase when anemia develops. The final evo- lutionary phase of polycythemia vera is that of acute myeloid leukemia.
In the erythrocytic phase, occlusive vascular lesions, such as transient ischemic attacks, cerebrovascular accidents (strokes), myocardial ischemia or infarctions, portal venous obstruction, or superficial venous throm- bosis, occur and may be the first indication of the presence of the disease. The hyperviscosity produces symptoms of reduced cerebral blood flow, such as headaches, dizziness, and visual disturbances. Walking may induce leg pain and spasm, called intermittent claudication.
Mucosal hemorrhagic manifestations include epistaxis, ecchymosis, and GI and genitourinary bleeding. Progressive splenomegaly, intermittent claudication, peptic ulcer, hyperuricemia, and gout are often seen. The most striking feature is a ruddy or florid face, telangiectasias (chronic dilation of capillaries and small arterial branches, producing small, reddish tumors of the skin) of the cheeks and nose, and purplish cyanosis of the lips and ears. Hypertension is seen in about half of patients. Distention of the retinal veins with a dark purple coloration is another important clinical finding. As the disease develops into the spent or postpolycythemia myeloid metaplasia phase, many patients complain only of asthenia (weakness, fatigue); however, progressive hepatosplenomegaly, severe anemia, hemorrhage (particularly cutaneous), weight loss, and wasting often occur. The final phase is the development of acute myeloid leukemia.
Treatment. There is no cure. Treatment is directed at reducing the increased blood volume, blood viscosity, red cell mass, and platelet counts by use of phlebotomy and myelosuppressive therapy with radioactive phosphorus and chemotherapeutic agents. Phlebotomy of 450 to 500 mL every 2 to 4 days until a normal hematocrit level is reached alleviates
Polycythemia With Elevated RBC Mass
Serum erythropoietin
Low �5 IU/L
High �5 IU/L
Polycythemia vera
Malignancy Primary familial or congenital EPOR mutation
Hypoxemia
Yes No
Secondary polycythemia
Congenital VHL mutation
Lung disease
Cyanotic heart defect
FIG 13.22 Algorithm for differentiation of polycythemia. EPOR, Erythropoietin receptor gene; VHL, von Hippel-Landau gene.
CHAPTER 13 Alterations in Oxygen Transport 293
or lung disease. There are other less common types of secondary polycythemia that are caused by renal or other organ tumors, which cause an increase in erythropoietin production.
Because this type of polycythemia demonstrates an increase in red cell mass with no involvement of other marrow elements, it is most commonly seen in association with a known hypoxic stimulus, increased erythropoietin concentration, or excess levels of adrenocortical steroids or androgens.
Laboratory features. The laboratory findings confirm increased red cell production with no increase in white cells or platelets. Erythropoietin levels are increased.
Clinical manifestations. The symptoms are those of the underlying disease state, such as cardiovascular disease with right-to-left shunt, chronic lung disease or alveolar hypoventilation, low barometric pressure and/or high altitude, or abnormal hemoglobin concentration.
Treatment. Because this condition is a physiologic compensation, the clinical treatment is directed at identifying and managing the underlying cause. Phlebotomy has been used to reduce cardiovascular work and appears to be helpful in both cardiovascular and chronic obstructive pulmonary disease. Oxygen administration is helpful in chronic lung diseases.
Asymptomatic
Splenomegaly Isolated erythrocytosis
Isolated thrombocytosis
Postpolycythemic myeloid metaplasia
Anemia Leukoerythroblastosis Thrombocytopenia or
thrombocytosis Enlarging splenomegaly Systemic symptoms
(fever, weight loss)
Erythrocytotic phase
Erythrocytosis Thrombocytosis
Leukocytosis Splenomegaly Thrombosis Hemorrhage
Pruritus
Inactive phase
No longer requires phlebotomy or chemotherapy
Iron deficient
Acute myeloid leukemia
Evolution of Polycythemia Vera
FIG 13.23 Clinical evolution of polycythemia vera. (From Hoffman R et al, editors: Hematology: basic principles and practice, ed 7, New York, 2018, Churchill Livingstone, p 1216.)
Course and prognosis. The course and prognosis are influenced by the underlying disease process.
Relative Polycythemia Etiology and pathogenesis. Relative (spurious) polycythemia is
characterized by an increased hematocrit level in the presence of normal or decreased total RBC mass. Two types of patients manifest this char- acteristic. In the first group, the laboratory finding is secondary to an obvious disturbance in fluid balance, such as is seen in severe dehydration or endocrinologic disorders. Patients in the other group, often described as having stress polycythemia, present with hypertension, increased hematocrit levels, and no increase in total RBC mass or obvious fluid loss. Research is continuing on the etiologic process and pathogenesis.
Laboratory features. All hematologic tests are normal except for elevated hematocrit and hemoglobin levels and RBC count. The size and color of the red cell are normal. Increased levels of cholesterol and uric acid are common.
Clinical manifestations. The manifestations are contingent on the underlying cause. In dehydration, the patient will have flat neck veins, decreased skin turgor, thirst, tachycardia, and, in severe cases, low cardiac output and blood pressure. If the underlying condition is stress related, the symptoms are those of a catecholamine stress response. Patients are usually Caucasian middle-aged men. In patients with spurious polycythemia caused by smoking, the problem is usually chronic, and the symptoms attributable to the hyperviscosity described for polycy- themia vera are often found.
Treatment. Because this is a spurious form of polycythemia, it is important to recognize and manage the underlying cause. Fluid administration and management will resolve dehydration; however, spurious polycythemia is likely to be associated with a long-term condi- tion that will require concurrent medical management. When the condition is a result of stress, identification of the stressors and stress management are indicated, with long-term follow-up. In spurious polycythemia attributable to smoking, the patient must stop smoking in order for the condition to resolve.
Course and prognosis. The long-term prognosis is excellent if the underlying condition is identified and resolved, but patients with chronic anxiety or an inability to quit smoking may experience the same complica- tions related to erythrocytosis as are seen in polycythemia vera.
KEY POINTS • Three types of polycythemia have been identified, according to cause.
Polycythemia vera is associated with neoplastic transformation of bone marrow stem cells. Secondary polycythemia is due to chronic hypoxemia, with a resultant increase in erythropoietin production. Relative polycythemia is due to dehydration, which causes a spurious increase in RBC count.
• Differential diagnosis of the type of polycythemia is based on the history and accompanying manifestations: • Polycythemia vera: Absence of hypoxemia and dehydration, accompanied
by leukocytosis and thrombocytosis. • Secondary polycythemia: History of lung disease or living at high altitude.
Hypoxemia evident on blood gas evaluation. Erythropoietin level is elevated.
• Relative polycythemia: History of fluid loss or poor intake. Accompanying manifestations of dehydration.
• Treatment of polycythemia is aimed at removing the cause, if possible. Phlebotomy and bone marrow–suppressing agents may be used for poly- cythemia vera. Major complications of polycythemia are increased blood viscosity and the risk of thrombi.
294 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
When an infant is born, many mechanisms occur to decrease the infant’s hemoglobin level. At birth, erythropoietin, a hormone that stimulates RBC produc- tion, disappears from blood plasma; there is an increase in arterial oxygen satura- tion; and the infant is born with immature bone marrow. These mechanisms cause a slow rate of RBC production at birth. In addition, infants primarily have fetal hemoglobin, accounting for about 70% of their total hemoglobin. Although fetal hemoglobin is a more efficient oxygen carrier, it has a shorter life span than adult hemoglobin. This causes RBCs to be turned over every 70 to 90 days, instead of 120 days for adult RBCs. Also, fetal hemoglobin is thought to suppress production of erythropoietin.
Hemoglobin levels gradually decrease in the infant over the first 2 to 3 months because of the rapid destruction of fetal hemoglobin, decreased RBC production,
and depressed erythropoietin production. Additionally, the infant experiences rapid growth during this time, which creates quick expansion of blood volume that further dilutes the supply of hemoglobin. Maternal iron stores are rapidly depleting at this time and will gradually diminish by 6 months.
As fetal hemoglobin is metabolized, the iron is released and stored. The body has enough iron to synthesize hemoglobin, but it is not stimulated to create hemoglobin at this time. Hemoglobin levels will continue to decrease until the oxygen needs of the tissues in the body are sufficiently depleted enough to stimulate erythropoietin production. Release of erythropoietin causes erythropoiesis to resume. Adult hemoglobin is made at this time with the iron stored in the body. Hemoglobin level will increase steadily in the infant starting around 6 months of age, and fetal hemoglobin is replaced by adult hemoglobin.
PEDIATRIC CONSIDERATIONS Hemoglobin Synthesis in Infants
Alteration at birth Immature
bone marrow Increase in arterial oxygen saturation
Depresses erythropoietin
Predominantly fetal hemoglobin
Decreased fetal hemoglobin level
Rapid expansion of blood volume
Maternal iron store depleted
Oxygen supply of tissues depleted
Erythropoietin stimulated
Erythropoiesis resumes
Hemoglobin A is made with iron stores
Rapid destruction of fetal hemoglobin
Red blood cell production decreased
Erythropoietin disappears from blood
The purpose of the erythron is to ensure adequate oxygen delivery with respect to oxygen demand. This is enhanced by the unique ability of hemoglobin in RBCs to carry and release oxygen at a suitable tension to support energy-generating systems in the body tissues. Anemia, a deficit in RBCs, poses a serious threat to oxygen
transport and to the ability of the body to receive adequate oxy- genation. Intense research in RBC physiology and pathophysiology continually yields new information for a better understanding of erythrocyte disorders, improved treatment modalities, and improved prognoses.
S U M M A R Y
CHAPTER 13 Alterations in Oxygen Transport 295
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CHAPTER 13 Alterations in Oxygen Transport 297
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298
14 Alterations in Hemostasis and Blood Coagulation Cheryl Rockwell
K E Y Q U E S T I O N S • How do platelets and factors of the clotting cascade contribute to
hemostasis? • What findings from the patient history, physical examination, or
laboratory studies would indicate a potential bleeding disorder? • How are laboratory tests used to differentiate the various
coagulation disorders?
• What vascular alterations result in abnormalities of hemostasis? • What are the common causes of platelet deficiencies, excesses,
and dysfunction? • What are the common causes of inherited and acquired disorders
of coagulation?
C H A P T E R O U T L I N E The Process of Hemostasis, 298
Stages of Hemostasis, 298
Platelets, 299
Blood Coagulation Factors, 299
Fibrin Clot, 299
Fibrinolysis, 301
Evaluation of Hemostasis and Coagulation, 301 Clinical Assessment, 301
Laboratory Tests, 304
Vascular and Platelet Disorders, 304 Vascular Disorders, 304
Vascular Purpura, 304 Hereditary Hemorrhagic Telangiectasia, 306
Platelet Disorders, 306
Thrombocytopenia, 306 Thrombocytosis, 307 Qualitative Platelet Disorders, 307
Coagulation Disorders, 308 Hemophilia, 308 von Willebrand Disease, 309 Vitamin K Deficiency Bleeding in Infancy, 309 Acquired Vitamin K Deficiency, 309 Disseminated Intravascular Coagulation (DIC), 310 Hepatic Disease, 310
http://evolve.elsevier.com/Banasik/pathophysiology/
The term hemostasis means arrest of bleeding or prevention of blood loss after a blood vessel is injured. Hemostasis is accomplished via a complex interaction involving the vessel wall, circulating platelets, and plasma coagulation proteins. If hemostasis is inadequate, bleeding results; if hemostasis is excessive, inappropriate clotting or thrombosis results.
This chapter reviews the process of hemostasis and describes how that process is evaluated by means of clinical assessment and laboratory tests. The focus of this chapter is disorders of hemostasis and coagulation that result in bleeding. Disorders that result in thrombosis are discussed in Chapter 15.
THE PROCESS OF HEMOSTASIS Stages of Hemostasis Primary hemostasis, the initial response to vascular injury, involves the interaction between platelets and the endothelium of the injured blood
vessel. The immediate response of the vessel to trauma is vasoconstriction to reduce blood loss. Although nervous reflex may play a part, this vasoconstriction results primarily from local myogenic spasm that may last from minutes to hours. The more trauma to the vessel, the greater the degree of vascular spasm.
The second component of primary hemostasis is formation of a platelet plug. Platelets not only adhere to endothelial collagen exposed by injury but also aggregate (clump together) at the site of vessel injury. The formation of this platelet plug is usually completed within 3 to 7 minutes.
Secondary hemostasis involves the formation of a fibrin clot, or coagulation, at the site of injury to maintain the hemostasis already initiated. Clotting factors are activated via the intrinsic pathway or extrinsic pathway and participate in a series of events that catalyze or facilitate the conversion of fibrinogen to fibrin. This process takes an average of 3 to 10 minutes.
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• Case Studies • Key Points Review
CHAPTER 14 Alterations in Hemostasis and Blood Coagulation 299
the conversion of prothrombin to thrombin. Platelets also have a role in clot retraction.
Blood Coagulation Factors With the exception of tissue factor (factor III; tissue thromboplastin) and calcium, blood coagulation factors are plasma proteins that circulate in the bloodstream in an inactive state. These factors are listed in Table 14.1 according to the internationally standardized nomenclature. The factors are numbered in the order of their discovery, not the order in which they participate in the clotting cascade. Factors with both active and inactive forms are differentiated with the letter “a” after the Roman numeral to designate the active form.
The liver is responsible for the synthesis of coagulation factors, with the exception of part of factor VIII. Factors II, VII, IX, and X; protein C; and protein S are dependent on vitamin K for synthesis and normal activity. Some of the coagulation proteins also can be synthesized by other cells, such as megakaryocytes and endothelial cells. Antithrombin III (ATIII) and protein C are protein complexes that promote anticoagula- tion. Antithrombin is a potent anticoagulant that binds to and inactivates free thrombin, preventing its binding and cleaving of fibrinogen. Protein C, a plasma protein that inactivates factors V and VIII, prevents clot formation. Protein S assists protein C in binding to phospholipase and stimulates release of tissue plasminogen activator, initiating fibrinolysis. Low-molecular-weight heparins and heparin work by enhancing the activity of antithrombin III (Fig. 14.3).
Fibrin Clot In normal hemostasis, the fibrin clot is produced through activation of the intrinsic or extrinsic pathway and, in turn, the common final pathway. Effective hemostasis is the result of interactions between all of these pathways and is commonly referred to as the coagulation cascade.
Fig. 14.4 illustrates the coagulation cascade. The intrinsic pathway of coagulation begins when blood comes into contact with altered vascular
Clot retraction, the final stage of clot formation, occurs when the components of the fibrin clot—the platelet plug, fibrin strands, and trapped red blood cells—are compressed or contracted to form a firm clot. This stage takes approximately 1 hour.
Platelets Platelets have an integral role in hemostasis; thus it is important to review their nature and function (Fig. 14.1). A normal platelet count is between 150,000 and 400,000 platelets/mm3 of blood. Platelets, also known as thrombocytes, are the smallest of the formed elements in the blood. They are produced in the bone marrow from megakaryocytes, which are derived from the pluripotent stem cell. Most of the platelets are found in the circulation, and about 25% are sequestered in the liver and spleen. Factors such as the stress response, epinephrine, and exercise may stimulate platelet production. The average life span of a platelet is 7 to 12 days. On completion of its life span, a platelet is eliminated from the circulation by the tissue macrophage system.
Platelets play a complex role in the process of hemostasis. Initially, platelets adhere to subendothelial collagen exposed by trauma (Fig. 14.2). After adhesion, the platelets become activated and initiate degranulation, the release of α granules and dense bodies. α Granules release platelet thrombospondin, fibrinogen, fibronectin, von Willebrand factor (vWF), and coagulation factors V and VIII. The dense granules release adenosine diphosphate (ADP), adenosine triphosphate (ATP), and serotonin. The presence of ADP and collagen encourages arachidonic acid formation, which leads to formation of thromboxane A2 (TxA2, a potent platelet aggregation agonist). Aspirin and other cyclooxygenase enzyme inhibitors can be used to block this cascade. Thromboxane A2 stimulates the glycoprotein IIb/IIIa (GpIIb/IIIa) receptors on platelets to be expressed and further promotes platelet adhesion. The glycoprotein IIb/IIIa blockers (e.g., eptifibatide) are useful antiplatelet agents.
In addition to the major role platelets play in primary hemostasis, they are involved in secondary hemostasis and clot retraction. Platelets catalyze interactions between activated coagulation factors, accelerating
S e c re
te d
s u
b s ta
n c e s
R e c e p
to rs
TxA2
Thrombospondin
Fibrinogen
Fibronectin
ADP
VWF VWF
ADP
Epi
Thrombin
TxA2
Fibrinogen
Collagen
Factor V and VIII
(GpIb)
(GpIIa/IIIb)
Platelet
FIG 14.1 Platelets are complex cell fragments containing numerous chemical mediators that are released when platelets are activated. Platelets display a variety of cell surface receptors that mediate both adhesion to exposed subendothelium and aggregation with other platelets. ADP, Adenosine diphosphate; Epi, epinephrine; TxA2, thromboxane A2; vWF, von Willebrand factor.
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vasodilation followed by release of angiotensin II and vasoconstriction. The major role of factor XIa is activation of factor IX to factor IXa in the presence of calcium. Factor IXa then activates factor X to factor Xa in the presence of factor VIII, calcium, and phospholipid. This activation usually takes place on the membrane of stimulated platelets. The common final pathway is initiated by factor Xa.
endothelium or another negatively charged surface, such as glass. This contact phase of coagulation involves four factors: (1) factor XII, (2) high-molecular-weight kininogen (HMWK), (3) prekallikrein, and (4) factor XI. Factor XII is activated to factor XIIa, which in turn activates XI to XIa and prekallikrein to its active form, kallikrein (KAL). KAL liberates bradykinin from HMWK. The release of bradykinin produces an initial
Inactive platelet Activated
platelet
Recruited platelet
VWF
Collagen
Endothelium
Fibrinogen
TxA2 ADPGpIIb/IIIa
GpIb �IIbB3
PGI2NO
A
C
B
↑cAMP ↑cGMP
FIG 14.2 A, Endothelial cells normally prevent platelet adhesion by releasing nitric oxide (NO) and prostaglandin I2 (PGI2), which increases platelet cGMP and cAMP levels, reducing the likelihood of their being activated. B, Injury to the vessel wall exposes collagen and von Willebrand factor (vWF), which are bound by specific receptors on platelets, causing them to adhere and become activated. C, Activated platelets release numerous chemical mediators that bind to and stimulate other nearby platelets. Groups of platelets aggregate together by binding to fibrinogen molecules through their GpIIb/IIIa receptors. ADP, Adenosine diphosphate; TxA2, thromboxane A2.
TABLE 14.1 The Clotting Factors
Factor Action
I: Fibrinogen Factor I is converted to fibrin by the enzyme thrombin. Individual fibrin molecules form fibrin threads, which are the scaffold for clot formation and wound healing.
II: Prothrombin Factor II is the inactive precursor of thrombin. Prothrombin is activated to thrombin by coagulation factor X (Stuart–Prower factor). After it is activated, thrombin converts fibrinogen (coagulation factor I) into fibrin and activates factors V and VIII. Synthesis is vitamin K–dependent.
III: Tissue thromboplastin Factor III interacts with factor VII to initiate the extrinsic clotting cascade. IV: Calcium Calcium (Ca2+), a divalent cation, is a cofactor for most of the enzyme-activated processes required in blood
coagulation. Calcium also enhances platelet aggregation and makes red blood cells clump together. V: Proaccelerin Factor V is a cofactor for activated factor X, which is essential for converting prothrombin to thrombin. VI: Discovered to be an artifact No factor VI is involved in blood coagulation. VII: Proconvertin Factor VII activates factors IX and X, which are essential in converting prothrombin to thrombin. Synthesis is
vitamin K dependent. VIII: Antihemophilic factor Factor VIII together with activated factor IX enzymatically activates factor X. In addition, factor VIII combines
with another protein (von Willebrand factor) to help platelets adhere to capillary walls in areas of tissue injury. IX: Plasma thromboplastin component
(Christmas factor) Factor IX, when activated, activates factor X to convert prothrombin to thrombin. This factor is essential in the
common pathway between the intrinsic and extrinsic clotting cascades. A lack of factor IX is the basis for hemophilia B. Synthesis is vitamin K dependent.
X: Stuart–Prower factor Factor X, when activated, converts prothrombin into thrombin. Synthesis is vitamin K dependent. XI: Plasma thromboplastin antecedent Factor XI, when activated, assists in the activation of factor IX. However, a similar factor must exist in tissues.
People who are deficient in factor XI have mild bleeding problems after surgery but do not bleed excessively as a result of trauma.
XII: Hageman factor Factor XII is critically important in the intrinsic pathway for the activation of factor XI. XIII: Fibrin-stabilizing factor Factor XIII assists in forming cross-links among the fibrin threads to form a strong fibrin clot.
CHAPTER 14 Alterations in Hemostasis and Blood Coagulation 301
EVALUATION OF HEMOSTASIS AND COAGULATION Data obtained from clinical assessment and laboratory tests facilitate the identification and evaluation of a hemostatic abnormality. Evaluation of a patient for a bleeding tendency is indicated in the following cir- cumstances: when there is a personal or family history of bleeding, during active bleeding that is unresponsive to standard interventions, as part of screening before surgery, and for ongoing evaluation of anticoagulation therapy. A bleeding tendency may be inherited or acquired and may result from defects in blood vessels, platelets, or coagulation factors. The purpose of the evaluation process is to determine whether a problem exists and to ascertain the underlying cause so that appropriate management can be initiated.
Clinical Assessment Both the family history and the personal history are important in the evaluation of a bleeding problem (Table 14.2). A family history of bleeding in males is often linked to one of the types of hemophilia, which accounts for the majority of serious inherited coagulation problems. The location, severity, duration, and setting in which bleeding occurs are also important clues to the type of defect that is present. Bleeding associated with vascular or platelet defects usually occurs immediately after trauma (e.g., dental extraction), involves skin or mucous membranes, and is brief. Delayed bleeding or bleeding into muscles or joints is more typical of a coagulation defect.
Systemic diseases, such as renal failure, liver disease, systemic lupus erythematosus, and malignancies, may be associated with a bleeding problem. Medication history, including use of over-the-counter medica- tions, is another important aspect in the evaluation of a hemostatic defect. A common cause of acquired bleeding problems is drug ingestion. Specific drugs that alter hemostasis include aspirin and aspirin-containing preparations, nonsteroidal antiinflammatory agents, some antibiotics, anticoagulants, alcohol, and chemotherapeutic and thrombolytic agents.
Many of the physical findings of bleeding are manifested in the skin and mucous membranes. The individual may appear pale or jaundiced. Pallor is associated with a marked decrease in hemoglobin level; jaundice is associated with liver or gallbladder disease, possible coagulation disorders, and excessive red blood cell destruction.
Petechiae are flat, pinpoint, nonblanching red or purple spots caused by capillary hemorrhages in the skin and mucous membranes (Fig. 14.6). Petechiae are commonly seen with vascular and platelet disorders. They are usually present on dependent areas of the body, such as the
The extrinsic pathway of coagulation begins when the vascular wall is traumatized, as in a crush injury. Tissue factor (factor III) from injured tissue activates factor VII. Factor VIIa activates factor X to Xa, which in turn initiates the common final pathway. Factor VIIa also activates factor IX in the intrinsic system.
The common final pathway of coagulation is initiated by factor X, which is activated by both the intrinsic and extrinsic pathways. Factor Xa, in the presence of factor V, calcium, and phospholipid, converts prothrombin (factor II) to thrombin. This conversion is facilitated by the presence of activated platelets. Thrombin then cleaves fibrinogen to form an insoluble fibrin clot. Thrombin also activates factor XIII, which promotes fibrin stabilization. The clot is further stabilized by clot retraction. Thrombin also helps to perpetuate the clotting cascade by continuing to activate factors V and VIII.
Fibrinolysis At the same time the fibrin clot is forming, the process of fibrinolysis, or clot dissolution, is initiated (Fig. 14.5). Factor XII, HMWK, KAL, and thrombin are involved in the release of plasminogen activators. The plasminogen activators cleave plasminogen, a plasma protein that has been incorporated into the fibrin clot, to its active form, plasmin. Plasmin digests fibrinogen and fibrin and inactivates blood coagulation factors V and VIII. Fibrin split products, or fibrin degradation products, result from the dissolution of the fibrin clot.
The control of fibrinolysis is complex. The Kupffer cells of the liver and macrophages located in the spleen and bone marrow clear the circulation of activated clotting factors and fibrin degradation products. Antiplasmins that inhibit plasmin exist to prevent inappropriate fibrinolysis. All these factors and mechanisms are present to create a balance between clot production and clot dissolution.
ATIII Thrombin
Inhibits activity
Stimulates activity
HEPARIN
FIG 14.3 Antithrombin III (ATIII) can bind and neutralize the activity of thrombin. Heparin is a catalyst that increases the activity of ATIII, making it more effective. Thrombin is a potent inducer of clot formation; thus ATIII and heparin have significant anticoagulant properties.
KEY POINTS • The several critical steps of hemostasis include vasospasm, formation of
a platelet plug, and activation of the clotting cascade to form a fibrin clot. • Factors released from platelets contribute to hemostasis by enhancing
vasoconstriction, platelet aggregation, and vessel repair. • Fibrin clot formation can be initiated by the intrinsic or extrinsic pathway.
Each pathway requires the sequential activation of specific clotting factors, ultimately resulting in enzymatic cleavage of fibrinogen to form an insoluble fibrin clot.
• Initiation of fibrinolysis occurs simultaneously with clot formation to prevent excessive clotting and vessel occlusion.
TABLE 14.2 Clues From Patient History Regarding Bleeding Disorders
Clue From Patient History Possible Cause
Family history of bleeding in both males and females
von Willebrand disease
Family history of bleeding in males Hemophilia A or B Newly acquired bruising Drugs (especially aspirin and NSAIDs,
anticoagulant therapy), thrombocytopenia
Excessive bleeding/bruising during/after surgery
Mild to severe deficiency of coagulation factors, von Willebrand disease; thrombocytopenia, drug ingestion
Bleeding after initial hemostasis Factor XIII deficiency
NSAIDs, Nonsteroidal antiinflammatory drugs.
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When petechiae occur in groups or patches, the term purpura is used (Fig. 14.7). Purpuric lesions are often pruritic (itchy). Fever and malaise may be present, as may effusions into joints or viscera, manifested by joint or abdominal pain.
Ecchymosis occurs when blood escapes into the tissues, producing a bruise (Fig. 14.8). If the area is raised, it is called a hematoma.
legs, or on areas constricted by tight clothing. Not all petechiae indicate a bleeding problem. Petechiae found on other body areas not constricted by tight clothing, such as the abdomen or thorax, may be associated with infectious disease or other pathophysiologic sources. Petechiae may be seen in the newborn as a result of the trauma of delivery, not as a result of a bleeding problem.
Factor XIIa
Factor XIa
HMWK
KAL Factor XII
Factor XI
Factor IXa
Factor VIIa
Tissue factor
Intrinsic Pathway (PTT) Extrinsic Pathway (PT)
Platelets
Common Pathway
Ca2�
Platelets Ca2�
Ca2�
Factor IX
Factor Xa
Va
Factor X
Thrombin (IIa)Prothrombin (II)
FibrinFibrinogen (I)
Fibrinolysis
Clot Platelets
Collagen
Factor VII
VIIIa
Factor XIII
Factor XIIIa
Tissue factor
Vessel wall
– Inhibited by protein C
– Inhibited by heparin/ATIII
– Vitamin K–dependent factor, warfarin-sensitive
FIG 14.4 Coagulation cascade. PT, Prothrombin time; PTT, partial thromboplastin time.
CHAPTER 14 Alterations in Hemostasis and Blood Coagulation 303
Hemarthrosis, manifested by swelling and pain, is bleeding into a joint. Large ecchymoses, hematomas, and hemarthroses are seen in coagulation disorders.
Telangiectasia is a lesion created by dilation of capillaries and small arteries, typically on the lips, tongue, tips of the fingers and toes, and sometimes in visceral vessels (Fig. 14.9). These thin, dilated, tortuous vessels are red to violet in color, blanch with pressure, and tend to bleed with minimal trauma. Spider telangiectasia branch into the subcutaneous and dermal layers of the skin and are often associated with liver disease.
Other significant findings indicative of a bleeding disorder include blood (bright red, rusty, or black) in drainage or excreta, such as feces (hematochezia or melena), urine (hematuria), vomitus (hematemesis), nasal drainage (epistaxis), gastric drainage, or sputum (hemoptysis). Excessive menstrual bleeding may occur (menorrhagia). Acute abdominal or flank pain may indicate internal bleeding. Hypovolemia from bleeding may produce a shock state and present as hypotension, tachycardia,
Plasminogen activators
Plasminogen Plasmin
Fibrinolysis
Fibrin degradation products
FIG 14.5 Fibrinolysis. Plasmin, activated from plasminogen, enzymatically cleaves fibrin proteins in the clot. This results in fibrin split products, which can be measured.
FIG 14.6 Petechiae. (From Dockery GL: Cutaneous disorders of the lower extremity, Philadelphia, 1997, Saunders.)
FIG 14.7 Purpura. (From Hurwitz S: Clinical pediatric dermatology: a textbook of skin disorders of childhood and adolescence, ed 2, Phila- delphia, 1993, Saunders, p 269.)
1
2
3
4
5
FIG 14.8 Ecchymosis. A large patch of capillary bleeding into tissues. Color in a light-skinned person is first red-blue or purple (1) immediately after or within 24 hours of trauma and generally progresses to blue to purple (2), blue-green (3), yellow (4), and brown to disappearing (5). (From Jarvis C: Physical examination and health assessment, ed 6, Philadelphia, 2012, Saunders.)
304 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
VASCULAR AND PLATELET DISORDERS Vascular Disorders Vascular disorders of hemostasis and coagulation are those in which the primary cause of bleeding is a problem with the vascular component of primary hemostasis. The vascular defect may be acquired (e.g., related to ingestion of a specific drug) or inherited.
Vascular Purpura Etiology. Vascular purpura is a disorder in which purpura—patches
of petechiae, or pinpoint hemorrhages, on the skin—are present. The primary cause of the purpura, or more extensive bleeding in some cases, is an abnormality of the vessels or the tissues that support them (see Fig. 14.7).
Allergic purpura (anaphylactoid purpura, Henoch–Schönlein purpura) is most often seen in children under age 8, with an average age of 6 years. Drug-induced purpura may result from many drugs, including atropine, chloral hydrate, and other sedatives; sulfa drugs; procaine penicillin; and warfarin (Coumadin). Purpuric lesions and perhaps severe hemorrhage are components of Ehlers–Danlos syndrome and osteogenesis imperfecta, both of which are inherited disorders of connective tissue. Acquired disorders of connective tissue such as scurvy (vitamin C deficiency), senile purpura (seen in the elderly), and corti- costeroid purpura (associated with chronic steroid drug therapy) may also result in purpuric lesions.
Pathogenesis. The allergic purpuras are thought to result from an autoimmune process that produces inflammation or vasculitis of small vessels. As a result, perivascular infiltration and serosanguineous effusion occur in surrounding tissues to produce the characteristic purpuric lesion. The pathophysiologic process of drug-induced purpura is not well understood.
Structural abnormalities of vessels and perivascular supportive tissue provide the mechanism for bleeding in many of the vascular purpuras. These abnormalities may be inherited or acquired. In Ehlers–Danlos syndrome and osteogenesis imperfecta, the vascular abnormality is thought to result from decreased amounts or poor quality of collagen and elastin; both are necessary for perivascular support. Vitamin C deficiency, which causes scurvy, results in defective collagen synthesis. The lack of proper collagen support for the vessels leads to bleeding. In the elderly (senile purpura), loss of subcutaneous fat and changes in connective tissue allow for more mobility of the skin. Shearing force then causes rupture of small vessels. Steroids induce catabolism of proteins in supportive tissues, decreasing the mechanical strength of the microvasculature.
Clinical manifestations. The purpuric lesions characteristically appear and fade or disappear in groups. The lesions are not elevated and do not blanch with pressure.
With allergic purpura, the lesions tend to be palpable and are found on the proximal extremities, especially on the legs and buttocks; they may be accompanied by fever, pruritus, arthralgia, and paresthesia. Bleeding from the lesions themselves and generalized bleeding are
pallor, altered mentation, and decreased urine output. The two sites at which bleeding is most life threatening are the oropharynx (resulting in airway compromise) and within the brain tissue. One of the leading causes of death in patients experiencing severe disorders of coagulation is intracerebral hemorrhage.
Laboratory Tests Many laboratory tests are available to aid in the diagnosis of hemostasis problems (Table 14.3). Basic screening includes a complete blood cell count (CBC), including a platelet count and peripheral blood smear, bleeding time, prothrombin time (PT) or international normalized ratio (INR), activated partial thromboplastin time (aPTT), and thrombin time. These screening tests evaluate both primary and secondary hemostasis. The CBC determines whether anemia is present, the platelet count determines the number of platelets, and the peripheral smear indicates the number and gross morphologic characteristics of platelets. The bleeding time evaluates vascular status and platelet function. The PT and INR assess the extrinsic pathway of coagulation, and the aPTT assesses the intrinsic pathway. Reporting prothrombin activity as a percentage of PT in seconds can pose difficulty in the adjustment of anticoagulation therapy because the PT varies with each laboratory and the reagent used at that laboratory. Laboratories have tried to compensate for this variation by using the ratio of the patient’s value to the laboratory’s control value, which again varied with the reagent. The INR is a standardized PT value used worldwide that controls for this reagent variability. Thrombin time measures the time needed to convert fibrinogen to fibrin; this reflects the quantity and quality of fibrinogen as well as the influence of any inhibitors. The D-dimer assay reflects fibrinolysis.
Further laboratory investigation is necessary if abnormalities are identified on the screening tests or if, despite normal screening test results, a bleeding problem obviously exists. Specific tests are available to assess abnormal platelet function, the presence of circulating anti- coagulants or fibrin split products, and the levels of individual coagulation factors. Table 14.4 reflects the alterations in laboratory values seen with the major disorders of hemostasis.
FIG 14.9 Telangiectasia (spider or star angioma). A fiery red, star-shaped marking with a solid circular center. Capillary radiations extend from the central arterial body. With pressure, note a central pulsating body and blanching of extended legs. Develops on face, neck, or chest; may be associated with pregnancy, chronic liver disease, or estrogen therapy; or may be normal. (From Hurwitz S: Clinical pediatric dermatology: a textbook of skin disorders in childhood and adolescence, ed 2, Philadelphia, 1993, Saunders, p 266.)
KEY POINTS • Bleeding tendencies may be inherited or acquired. Abnormal bleeding, liver
disease, and anticoagulant drug use may be important risk factors. Physical findings of petechiae, purpura, ecchymoses, telangiectasia, and occult or frank bleeding are indicative.
• Usual laboratory tests include platelet count, bleeding time, PT/INR (extrinsic pathway), and aPTT (intrinsic pathway).
CHAPTER 14 Alterations in Hemostasis and Blood Coagulation 305
TABLE 14.3 Select Laboratory Tests Used to Assess Bleeding
Test Normal Value* Purpose or Significance
Platelet count 150,000–400,000/mm3 Determines number of platelets; decreased in ITP, anemias, DIC, infection, chemotherapy; increased in leukemia, cancer, splenectomy
Bleeding time 3–10 min Assesses platelet and vascular response; increased in thrombocytopenia, vascular defects, severe liver disease, DIC, von Willebrand disease, aspirin ingestion
Prothrombin time 10–14 sec; 100% Evaluates extrinsic pathway of coagulation; increased in vitamin K deficiency, hemorrhagic disease of the newborn, liver disease, DIC, anticoagulant therapy. Evaluates all coagulation factors except VIII and XII.
International normalized ratio 1.5 (low-level anticoagulation for atrial fibrillation) 2.0–3.0 (medium-level anticoagulation for DVT,
pulmonary embolism, MI, stroke prophylaxis) 2.5–3.5 (high-level anticoagulation for mechanical
heart valve)
Evaluates extrinsic pathway of coagulation (as prothrombin time); provides uniformity worldwide, independent of reagents
Activated partial thromboplastin time
33–45 sec Evaluates intrinsic pathway of coagulation; increased in hemophilia, vitamin K deficiency, liver disease, DIC, circulating anticoagulants, heparin therapy
Thrombin time 15 sec, or control + 5 sec Measures conversion of fibrinogen to fibrin; increased in DIC, liver disease, low fibrinogen <100 mg/dl, multiple myeloma
Fibrinogen 200–400 mg/dl Measures fibrinogen level; decreased in liver disease, DIC Fibrin split products or fibrin
degradation products† <3 µg/ml Measures byproducts from breakdown of fibrin clot; increased in DIC,
hypoxia, leukemia, thromboembolic disorders Clot retraction† 1 hr: evidence of shrinking and increased firmness
24 hr: 50% of volume is clot, 50% is serum Approximate measure of platelet function; decreased in
thrombocytopenia, von Willebrand disease Platelet aggregation† Visible aggregates form in <5 min Measures rate and percentage of aggregation; decreased in
mononucleosis, ITP, von Willebrand disease, leukemia, aspirin ingestion, thrombasthenia, Bernard–Soulier syndrome
Tourniquet test (Rumpel–Leede test, capillary fragility test)†
No petechiae or occasional petechiae Evaluates vascular fragility and platelet function; positive test in thrombocytopenia, vascular purpuras, thrombasthenia
Euglobulin lysis time† No lysis of fibrin clot at 37° C for 3 hr; clot is observed for 24 hr
Assesses fibrinolysis; increased lysis in DIC, incompatible blood transfusion, cirrhosis, cancer, obstetric complications
Plasma D-dimer assay <200 ng/ml Assesses fibrinolysis; increased in DVT, pulmonary embolism (highly nonspecific), DIC (high negative predictive value)
*Value may vary, depending on source. †Tests not included in a routine coagulation screen. DIC, Disseminated intravascular coagulation; DVT, deep vein thrombosis; ITP, immune thrombocytopenic purpura; MI, myocardial infarction.
TABLE 14.4 Alterations in Laboratory Values Seen With Major Disorders of Hemostasis
LABORATORY ALTERATIONS
Disorder Platelet Count Bleeding Time PT/INR aPTT TT FSP FVIII FIX
Idiopathic thrombocytopenic purpura ↓ Prolonged N N N N N N Hemophilia A N N/Prolonged N ↑ ↑ ↓ ↓ N Hemophilia B N N/Prolonged N ↑ ↑ N N ↓ von Willebrand disease N Prolonged N ↑ ↑ N ↓ N Vitamin K deficiency N Prolonged ↑ N/↑ ↑ N N N/↓ Disseminated intravascular coagulation ↓ Prolonged ↑ ↑ ↑ ↑ ↓ ↓ ASA/NSAIDs N Prolonged N N N N N N Heparin N/↓ Prolonged N ↑ ↑ N N N Coumadin N Prolonged ↑ N/↑ ↑ N N N Vascular purpura N N/Prolonged N N N N N N Liver disease N/↓ Prolonged ↑ N/↑ N N N N/↓
aPTT, Activated partial thromboplastin time; ASA, acetylsalicylic acid; FIX, factor IX; FSP, fibrin split products; FVIII, factor VIII; INR, International normal ratio; N, normal; NSAIDs, nonsteroidal antiinflammatory drugs; PT, prothrombin time; TT, thrombin time.
306 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
Treatment is primarily supportive and includes humidification of the nasal cavity, use of topical hemostatic agents or cauterization if the bleeding site is accessible, tamponade of the nasal cavity, use of iron replacement therapy, laser treatment for cutaneous lesions, embolization, and administration of estrogen or estrogen with progesterone for epistaxis. Tranexamic acid is used to control severe hemorrhage. Blood transfusions or surgical intervention for uncontrolled bleeding may be considered in selected cases.
Platelet Disorders Platelet disorders of hemostasis and coagulation are those in which the primary cause of bleeding is an abnormality in the quantity or the quality of platelets.
Thrombocytopenia Etiology. Thrombocytopenia is a common cause of generalized
bleeding. Some of the many causes of thrombocytopenia are listed in Box 14.1.
Immune thrombocytopenia (ITP), previously called idiopathic thrombocytopenic purpura, is an acquired immune-mediated disorder. ITP is classified according to the duration of the disease: newly diagnosed, persistent (lasting 3 to 12 months), or chronic (lasting 12 months or longer). ITP occurs at any age and in both genders until midlife, when it is more common in women 30 to 60 years of age. ITP in children may follow a viral illness or have no evidence of previous illness and typically spontaneously resolves in 6 months. ITP in adults has a more insidious onset and tends to be more chronic. A pregnant woman with ITP can deliver a thrombocytopenic infant because the antiplatelet antibody crosses the placenta. Adult ITP may precede or occur in association with diseases of altered immunity, such as systemic lupus erythematosus (see Chapter 10), lymphoproliferative disease (see Chapter 11), or AIDS (see Chapter 12).
Pathogenesis. Four general mechanisms are responsible for throm- bocytopenia: decreased platelet production, decreased platelet survival,
uncommon. Usually, allergic purpura is self-limited, and the prognosis is good.
Generalized purpura is characteristic of drug-induced vascular purpura. The lesions quickly subside when the drug is discontinued. Other bleeding manifestations are uncommon.
The purpuric lesions associated with inherited connective tissue disorders, such as Ehlers–Danlos syndrome, often are accompanied by large ecchymoses and hematomas. Although not common, bleeding into the brain tissue may result in cerebrovascular accident (stroke).
The purpuric lesions seen with scurvy typically occur around hair follicles and on the medial surfaces of the thighs and buttocks. Ecchy- moses and large hematomas may also occur.
Senile purpura and corticosteroid purpura generally occur on the dorsum of the hands and forearms and are aggravated by trauma. Other bleeding is uncommon.
Diagnosis and treatment. The diagnosis of vascular purpura is one of exclusion after platelet disorders and coagulation disorders have been ruled out. An abnormal tourniquet test (positive Rumpel–Leede test) in the setting of a normal or increased bleeding time, normal platelet count, and normal coagulation study results suggest a problem with the vascular component of hemostasis. The tourniquet test is an assess- ment for abnormal capillary fragility. To perform the test, a blood pressure cuff is applied and inflated to a point between the systolic and diastolic blood pressures for 5 minutes. The test is positive if there are more than 20 petechiae per square inch.
Treatment for vascular purpura includes removal or avoidance of the causative agent if one is identified (e.g., penicillin) and interventions to relieve symptoms such as pruritus. If more extensive bleeding accompanies the purpura, identification of the cause and interventions to control the bleeding are necessary.
Hereditary Hemorrhagic Telangiectasia Etiology. A telangiectasia is a dilated or tortuous small blood vessel
found in the skin or mucous membranes that has a tendency to bleed spontaneously or after minor trauma (see Fig. 14.9). Hereditary hemor- rhagic telangiectasia (Osler–Weber–Rendu disease) is transmitted as an autosomal-dominant trait; the vascular abnormalities can be seen in children but become more prominent after puberty, peaking between the fourth and fifth decades. As the telangiectases—the skin spots resulting from the vascular lesion—become more prominent, the frequency and severity of the bleeding increase.
Pathogenesis. The telangiectases result from an abnormality in vascular development. The vessel wall is composed of a single layer of endothelium; thus support and contractile properties are deficient, leading to spontaneous bleeding or bleeding as a result of minor trauma. Any mucosal surface (e.g., respiratory, gastrointestinal, and genitourinary tracts) may be involved. Arteriovenous malformations in the lung, liver, and brain are the most serious complications.
Clinical manifestations. Bright red or purple lesions, ranging from pinpoint to 3 mm in diameter, can be found on the nasal mucous membranes, lips, palate, tongue, face, trunk, palms of the hands, and the soles of the feet. A hallmark symptom is recurrent nosebleeds (epistaxis), with increasing frequency as the patient ages. The severity of the disorder is linked to age of onset. Typically the lesions are flat and blanch with pressure. The most common clinical problem is mucous membrane bleeding, especially epistaxis. However, bleeding may occur from telangiectases in any area. Frequent bleeding episodes may result in anemia.
Diagnosis and treatment. The diagnosis is confirmed by the presence of multiple telangiectases, repeated episodes of bleeding, or a family history of bleeding in both genders. If telangiectases are not easily visible, the diagnosis is more difficult to make.
Decreased Platelet Production Folate/B12 deficiency Radiation therapy Chemotherapy Drugs (e.g., alcohol, thiazides, phenytoin) Aplastic anemia Cancer in bone marrow
Decreased Platelet Survival Drugs (e.g., thiazides, digoxin, heparin, furosemide, certain antibiotics) Mechanical prosthetic heart valves Viral and bacterial infections Circulating immune complexes Increased destruction in the spleen Disseminated intravascular coagulation
Splenic Sequestration (Pooling) Splenomegaly Hypothermia
Platelet Dilution Massive transfusions with blood stored for more than 24 hours
BOX 14.1 Some Causes of Thrombocytopenia
CHAPTER 14 Alterations in Hemostasis and Blood Coagulation 307
response to hemorrhage, inflammatory diseases, malignancy, infection, hemolysis, or splenectomy. Primary thrombocytosis is seen with polycythemia vera and chronic granulocytic leukemia.
Pathogenesis. In all types of thrombocytosis, the number of platelets is increased, but the mechanism of the increase varies. Transitory thrombocytosis results from release of preformed platelets, not increased production. As the name implies, the elevation in platelet count is transient. Secondary thrombocytosis results from an actual increase in platelet production via an unknown mechanism. With primary throm- bocytosis, there is abnormal proliferation of megakaryocytes in the bone marrow, resulting in as much as a 15-fold increase in platelet production.
Clinical manifestations. In general, transitory thrombocytosis and secondary thrombocytosis do not result in hemorrhage or thrombotic complications. Hemorrhage into the skin and mucous membranes and gastrointestinal bleeding may be seen with primary thrombocytosis. The pathogenesis of excessive bleeding in the presence of excessive levels of platelets is not well understood. Thrombosis resulting in peripheral vascular ischemia or pulmonary embolism may further complicate the clinical picture. Thromboembolic events are the most common cause of death. However, the course of thrombocytosis is benign in most patients.
Diagnosis and treatment. The diagnosis is made on the basis of a high platelet count. Bleeding time may be normal or prolonged, and platelet aggregation is normal or impaired. The history and clinical presentation, as well as additional laboratory tests such as bone marrow examination, aid in determining the type of thrombocytosis.
No treatment is necessary with transitory and secondary thrombo- cytosis. To manage primary thrombocytosis, the use of cytotoxic agents or interferon may be used. Antiplatelet therapy (e.g., aspirin or dipyri- damole) also may be used. In the presence of acute bleeding or thrombosis, plasma exchange may be used to temporarily control the platelet count.
Qualitative Platelet Disorders Etiology. Although the number of platelets may be normal, the
ability of the platelets to function in the hemostatic process may be abnormal; thus a qualitative platelet disorder is present. Inherited defects in platelet function, such as Bernard–Soulier syndrome (giant platelet syndrome), von Willebrand disease, and thrombasthenia (Glanzmann disease), are rare. In contrast, acquired disorders of platelet function are common; they are often associated with drugs, especially aspirin; with renal failure; or with a coexisting hematologic disease, such as leukemia.
Pathogenesis. Whether the qualitative platelet disorder is inherited or acquired, at least one aspect of platelet function (adhesion, aggregation, or degranulation or release reaction) is abnormal and a bleeding tendency results. In both Bernard–Soulier syndrome and von Willebrand disease, platelet adhesion is abnormal. Platelet aggregation is the problem in thrombasthenia, due to the absence of the fibrinogen receptor necessary for normal platelet aggregation. Aspirin and other nonsteroidal anti- inflammatory agents inhibit production of thromboxane A2 and thus impair both platelet aggregation and the platelet release reaction.
Clinical manifestations. The clinical presentation of a qualitative platelet disorder is some form of bleeding tendency, such as petechiae or purpura on skin and mucous membranes, epistaxis, gastrointestinal bleeding, or menorrhagia. Acquired platelet function defects also may result in excessive bleeding during and after surgical procedures.
Diagnosis and treatment. With qualitative platelet defects, the bleeding time is prolonged but the platelet count and other routine coagulation screening test results are normal. Although a bleeding time greater than 10 minutes is associated with a slight increase in bleeding
splenic sequestration (pooling), and intravascular dilution of circulating platelets (see Box 14.1). Regardless of the mechanism responsible, fewer platelets are available, and inadequate hemostasis is the potential result.
Platelets are produced by bone marrow megakaryocytes. Production declines when the number of megakaryocytes is reduced or when the process of platelet production (thrombocytopoiesis) is ineffective. Although numerous causes of decreased platelet production are listed in Box 14.1, drugs are often responsible. Bone marrow suppression from chemotherapy, recent immunizations, and alcohol ingestion are common causes of platelet level reduction.
The average life span of a platelet is 7 to 9 days. Decreased platelet survival may be the result of an antibody-mediated immune mechanism that destroys platelets (e.g., ITP, a possible adverse effect of heparin) or the result of increased consumption of platelets, as seen in disseminated intravascular coagulation (DIC). Direct trauma to platelets from vascular or valvular prostheses also may be responsible for decreased platelet survival.
Normally, about 25% of the total number of platelets can be found in the spleen and the remaining 75% are circulating. When the spleen is enlarged (splenomegaly), as much as 90% of the platelets may be pooled or sequestered in the spleen; thus the circulating number of platelets is markedly decreased. If the spleen cannot be palpated on physical examination, platelet sequestration can be ruled out as the primary mechanism of the thrombocytopenia.
The final mechanism responsible for thrombocytopenia is dilution of circulating platelets by administration of massive transfusions. Platelets degenerate in stored blood after 24 hours; thus when a large amount of blood deficient in platelets is transfused, thrombocytopenia results.
Clinical manifestations. Clinical manifestations of thrombocytopenia are generally absent until the platelet count drops below 100,000/mm3. Petechiae and purpura are prominent with platelet counts below 50,000/ mm3. Spontaneous mucosal, deep tissue, and intracranial bleeding may be seen with platelet counts less than 20,000/mm3, though recent evidence suggests serious bleeding is more likely to occur at platelet counts less than 10,000/mm3.
Diagnosis. Thrombocytopenia is diagnosed by the presence of a low platelet count on peripheral blood laboratory examination. The bleeding time is prolonged, and clot retraction is poor or absent. PT/ INR, partial thromboplastin time, and other coagulation studies are normal. The CBC will indicate if the thrombocytopenia is isolated or if an associated problem, such as anemia or leukopenia, is present. Gross morphologic analysis of platelets, evaluated from the peripheral blood smear, and bone marrow examination provide additional informa- tion regarding the mechanism for the thrombocytopenia. Because many drugs are associated with thrombocytopenia, careful review of all medications the patient is taking is also necessary in the search for the cause of the thrombocytopenia.
Treatment. The treatment for thrombocytopenia is based on the identified cause or mechanism and may include any of the following: discontinuation of any suspected drug; avoidance of aspirin and pharmacodynamically similar drugs that alter normal platelet function; and administration of corticosteroids, immunosuppressants, intravenous immunoglobulin, rituximab, and thrombin receptor agonists such as romiplostim and eltrombopag to increase platelet production. Sple- nectomy may be helpful in some cases because it results in removal of a major site of platelet destruction and eliminates a source for production of antiplatelet antibodies.
Thrombocytosis Etiology. Thrombocytosis is generally defined as a platelet count
greater than 400,000/mm3. Transitory thrombocytosis is seen after stress or physical exercise. Secondary or reactive thrombocytosis occurs as a
308 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
Of critical concern in the hemophilic patient are intracranial hemor- rhage and other serious bleeding episodes. Because of advances in treatment, however, a normal life span is possible for many.
Pathogenesis. Hemophilia A results from factor deficiency or the abnormal function of factor VIII. Hemophilia B results from factor deficiency or the abnormal function of factor IX. A deficiency or malfunc- tion in either factor interferes with the normal sequence of events in the intrinsic pathway of coagulation and, in turn, the eventual production of a fibrin clot. Inability to form a fibrin clot results in bleeding.
Clinical manifestations. Once clinical evidence of bleeding is present, hemophilia A and hemophilia B are indistinguishable. Patients with mild hemophilia may not experience symptoms until stressed by surgery or trauma. Prolonged bleeding from relatively minor trauma and occasional spontaneous bleeding episodes are characteristic of moderate hemophilia. With severe hemophilia, frequent episodes of spontaneous bleeding are likely.
Any of the following clinical manifestations may occur: easy bruising, prolonged bleeding from the nasal or oral mucosa, deep tissue hema- tomas, hemarthrosis, bleeding into muscles in the extremities, spontane- ous hematuria, gastrointestinal bleeding, and intracranial bleeding. The hallmark of hemophilia is hemarthrosis. Knees, ankles, and elbows are the most often affected. Repeated episodes of hemarthrosis may result in joint deformity.
Major long-term complications of hemophilia include progressive joint deformity as a result of repeated hemarthroses, hepatitis B or C, cirrhosis, and HIV infection related to repeated transfusions or admin- istration of virus-contaminated factor concentrates.
Diagnosis and treatment. Hemophilia is the suspected cause of bleeding when the family history is positive for bleeding in males, there is a history of joint bleeding and hematomas, and joint deformity is present on physical examination. Laboratory tests consistent with hemophilia include a normal or slightly prolonged bleeding time, a normal PT/INR, and a prolonged aPTT. Factor assay verifies a deficiency in factor VIII or IX. Early in pregnancy, chorionic villus biopsy or amniocentesis may be done to identify factor deficiency, making prenatal diagnosis of hemophilia possible.
The patient and family must learn about hemophilia, including recognition and appropriate response to bleeding episodes, necessary lifestyle changes, and the genetic nature of disease transmission. Preven- tion of injury and avoidance of aspirin and aspirin-like drugs, which alter platelet function, are important parts of treatment. Joint bleeding is managed by immobilization of the limb and application of ice.
With dental procedures requiring administration of a local anesthetic, prophylactic administration of factor VIII should be considered in the patient with hemophilia A. Bleeding episodes from hemophilia A are managed primarily by the administration of cryoprecipitate or other preparations of factor VIII concentrate. Recombinant DNA–derived factor concentrates contain no viruses and are now available. In addition, desmopressin and antifibrinolytics (e.g., tranexamic acid and amino- caproic acid) are possibilities to treat mild bleeding episodes. The goal of therapy is to obtain a factor VIII level of at least 40% to 60% for joint and most muscle bleeding, and 80% to 100% for iliopsoas muscle, throat or neck, central nervous system, or gastrointestinal bleeding. Up to 20% of patients with severe hemophilia develop factor VIII inhibitor, an antibody that rapidly inactivates transfused factor VIII. Plasmapheresis and immunosuppressive therapy are sometimes necessary to maintain adequate factor VIII levels in these patients.
Mild to moderate bleeding resulting from hemophilia B is managed with the administration of fresh or fresh frozen plasma or cryoprecipitate. Concentrates containing factors II, VII, IX, and X are another therapeutic option. These concentrates are now treated in a variety of fashions (heat, pasteurization, solvent detergents, immunoaffinity purification)
tendency, the risk is not significantly increased until the bleeding time exceeds 15 or 20 minutes.
Special laboratory tests that more specifically evaluate platelet func- tion, such as platelet aggregation studies, are necessary to determine the exact cause of bleeding. Coexisting hematologic defects may make diagnosis of a platelet defect difficult.
If the platelet disorder is drug induced, the offending drug is dis- continued. Transfusion with normal platelets is the usual intervention if treatment is necessary because of bleeding. Administration of des- mopressin or cryoprecipitate is the treatment of choice when von Willebrand disease is the underlying cause of bleeding, as well as for patients with aspirin overdose and cirrhosis. von Willebrand disease is described in greater detail in the following section.
KEY POINTS • Disorders of the vasculature that result in altered hemostasis include
inflammation (allergic purpura), structural abnormalities (collagen diseases), and weakened vessel walls (telangiectasia).
• An insufficient quantity of platelets (fewer than 50,000/mm3) results from decreased production, sequestration, increased destruction, or dilution. Important causes of thrombocytopenia include autoimmune destruction (ITP), DIC, and mechanical destruction (artificial valves).
• Excessive quantity of platelets (more than 400,000/mm3) results from excessive production (proliferation of bone marrow cells). Thrombocythemia may result in excessive coagulation with thrombosis or excessive bleeding.
• A normal platelet count does not ensure adequate platelet function. Platelet adhesion, aggregation, and degranulation may be abnormal, resulting in a prolonged bleeding time. The usual cause is drug related (e.g., aspirin); rarely, the platelet defect is inherited (e.g., von Willebrand disease).
COAGULATION DISORDERS Coagulation disorders, or coagulopathies, are defects of the normal clotting mechanism. They may cause bleeding as a result of problems with the formation, stabilization, or lysis of the fibrin clot. Alternatively, the coagulation disorder may be attributable to inappropriate activation of the coagulation cascade, producing excessive clot formation.
Hemophilia Etiology. Hemophilia is rare in the general population, but it is the
most common severe inherited coagulation disorder. Excessive bleeding after circumcision or the formation of a hematoma after vitamin K injection may lead to the diagnosis in the neonate. Some children will not develop bleeding problems until they begin crawling or walking.
Hemophilia A, the classic form of the disease, accounts for approxi- mately 85% of cases of clinical hemophilia. Hemophilia A is caused by factor VIII deficiency. The majority of patients inherit this X-linked recessive disorder; hemophilia is transmitted by an asymptomatic carrier female to an affected son. Approximately 20% of patients with hemophilia A have a negative family history because of a spontaneous mutation of the hemophilic gene.
Less common than hemophilia A is hemophilia B, also known as Christmas disease. Factor IX is deficient in this form of hemophilia.
Hemophilia is often classified according to the extent to which the specific coagulation factor (factor VIII or IX) is deficient. Patients with severe hemophilia have less than 1% normal coagulation factor activity; patients with moderate hemophilia, 1% to 5% normal coagulation factor activity; and patients with mild hemophilia, 5% to 40% normal coagula- tion factor activity.
CHAPTER 14 Alterations in Hemostasis and Blood Coagulation 309
with standard infant formulas; therefore breast-fed babies need vitamin K supplementation.
Hepatic immaturity may also contribute to hemorrhagic disease of the newborn. The liver may be unable to initially produce adequate levels of the vitamin K–dependent coagulation factors.
Clinical manifestations. Evidence of bleeding, such as melena (tarry, black feces composed of partially digested blood), bleeding from the umbilicus, and hematuria, appears on the second or third day of life. Life-threatening complications include intracranial hemorrhage and hypovolemic shock.
Diagnosis and treatment. The diagnosis is based on the clinical presentation, particularly the timing of the onset of bleeding. The PT/ INR is prolonged; levels of vitamin K–dependent clotting factors are decreased.
Prophylactic administration of vitamin K to the newborn prevents the severe decline of the vitamin K–dependent coagulation factors and largely eliminates this coagulation disorder.
If evidence of hemorrhage is present, vitamin K should be admin- istered. For severe hemorrhage, fresh plasma will replenish the deficient coagulation factors and stop the bleeding. Fresh whole blood will correct severe anemia and shock.
Premature infants may experience bleeding attributable to platelet abnormalities and a deficiency in several coagulation factors. Because of hepatic immaturity, vitamin K is ineffective therapy in these infants. Fresh plasma is the treatment of choice for the premature infant with bleeding complications.
Acquired Vitamin K Deficiency Etiology. Acquired vitamin K deficiency may result in bleeding as
a result of a coagulation defect. Vitamin K, a fat-soluble vitamin, is obtained by the ingestion of specific foods (e.g., liver, cheese, butter, egg yolks, and green, leafy vegetables) and by a synthetic process occurring in the intestinal flora. Vitamin K is then absorbed by the intestine and stored in the liver. Normal absorption is dependent on bile acids and adequate mucosal function in the intestine. Vitamin K is necessary for normal synthesis and function of coagulation proteins (factors II, VII, IX, and X) as well as coagulation inhibitors (proteins C and S).
Vitamin K deficiency, with its associated risk for bleeding, may occur with the following: malnutrition, malabsorption (including biliary disease), chronic hepatic disease, antibiotic therapy, and oral anticoagula- tion therapy with warfarin (Coumadin).
Pathogenesis. One of the many functions of the liver is the synthesis and transport of bile, which is necessary for fat digestion and normal absorption in the small intestine. Vitamin K is a fat-soluble vitamin; if fat malabsorption occurs because of a lack of bile, vitamin K is not absorbed, resulting in a vitamin K deficiency. In the newborn, especially the premature infant, vitamin K deficiency may be related to liver immaturity and the lack of vitamin K synthesis by the intestine until the gut is colonized with the flora that produce vitamin K. Coumadin- type drugs are vitamin K antagonists that inhibit the normal activity of vitamin K in the synthesis of clotting factors. The net effect is decreased clotting factor activity.
Although vitamin K is deficient, the liver continues to synthesize some vitamin K–dependent coagulation factors. However, the coagulation activity of these factors is impaired, resulting in bleeding.
Clinical manifestations. Evidence of bleeding may present in a variety of ways, including mucosal and gastrointestinal bleeding, ecchymoses, menorrhagia, and hematuria. Surgical bleeding may be a significant problem in the patient with a vitamin K deficiency.
Diagnosis and treatment. Vitamin K deficiency should be considered the cause for bleeding when the PT/INR is increased but other coagulation studies are normal. Of the vitamin K–dependent clotting factors, factor
to prevent transmission of viruses. A highly purified factor IX concentrate that appears to be safe in terms of both adverse effects and viral transmis- sion is also available.
von Willebrand Disease Etiology. von Willebrand disease is inherited as an autosomal-
dominant disorder of factor VIII carrier protein and platelet dysfunction. In rare cases, von Willebrand disease is an autosomal-recessive disorder. Several less common subtypes of the disease have been identified, but all have some defect in vWF, a plasma protein. von Willebrand disease occurs in both females and males. Bleeding manifestations of the disease tend to become more severe with age.
Pathogenesis. VWF and factor VIII normally circulate in plasma as a complex. VWF is necessary for stabilization of factor VIII in the circulation and for normal adherence of platelets to damaged vascular endothelium. In von Willebrand disease, the level of vWF is decreased or absent. Serum levels of factor VIII range from mildly to severely reduced. Absence of platelet adhesion at the site of vascular injury and deficient factor VIII activity in the intrinsic coagulation pathway contribute to the bleeding seen in von Willebrand disease.
Clinical manifestations. Epistaxis, mucosal bleeding, ecchymoses, gastrointestinal bleeding, and menorrhagia are common clinical manifestations of von Willebrand disease. Once hemostasis is achieved, it can usually be maintained. Hemarthrosis is rare. Although not common, von Willebrand disease should be considered a possible cause of excessive surgical bleeding. Bleeding manifestations may decrease during pregnancy because levels of VWF and factor VIII rise during this time.
Diagnosis and treatment. The history and clinical presenta- tion initially suggest the possibility of von Willebrand disease as the cause of bleeding. Laboratory tests consistent with the disease include a prolonged bleeding time, prolonged aPTT, normal platelet count, and normal PT/INR. More specialized testing will verify that the level of plasma vWF is decreased and that factor VIII activity is reduced.
Mild forms of classic von Willebrand disease can be managed with desmopressin, which causes release of vWF and factor VIII from vascular endothelial cells. Excessive menstrual bleeding can be treated with hormonal suppression therapy. Severe bleeding is addressed by using cryoprecipitate that contains both factor VIII and vWF. Recombinant replacement therapy is available. Aspirin and aspirin-containing drugs, which inhibit normal platelet function in hemostasis, should be avoided in patients with von Willebrand disease.
Complications of therapy for severe von Willebrand disease include hepatitis and AIDS, related to transfusions with blood products. Antibod- ies that inhibit the activity of vWF may develop, but this is rare.
Vitamin K Deficiency Bleeding in Infancy Etiology. As the name implies, this coagulation disorder is seen in
the newborn, typically 48 to 72 hours after birth, through 6 months of age. Hemorrhagic disease of the newborn is more common in breast-fed babies (who do not receive vitamin K supplement) than in formula-fed babies. It is rare in Western countries because of routine administration of vitamin K to newborns.
Pathogenesis. This bleeding disorder results from a deficiency of the vitamin K–dependent coagulation factors II, VII, IX, and X. The levels of these factors are approximately 50% of normal in umbilical cord blood, and they decline rapidly after birth, reaching their lowest levels at 48 to 72 hours. In a small number of infants, the decline is so significant that severe bleeding occurs. After 72 hours, the levels of these coagulation factors gradually increase over the course of several weeks. This increase is primarily caused by absorption of vitamin K from the diet. The vitamin K content of human milk is very low compared
310 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
of coagulation, anticoagulation, and fibrinolysis ultimately leads to hemorrhage.
Clinical manifestations. Although both bleeding and clotting are part of the syndrome, initially bleeding is more apparent clinically. Petechiae and ecchymoses on skin and mucous membranes, as well as bleeding from orifices and any site of injury, such as venipuncture and injection sites, may be present. Acrocyanosis (cold, mottled fingers and toes) may be apparent, attributable to thrombi formation in the microvasculature of the extremities. Thrombi in the pulmonary microcirculation (small vessels) may result in dyspnea, hemoptysis, and crackles or rales, as blood fills alveoli. Patients with DIC are also pre- disposed to acute renal failure because of the presence of microthrombi in the renal microvasculature.
Diagnosis and treatment. The diagnosis of DIC is based on a high index of suspicion drawn from the history and presenting signs and symptoms. The typical clinical picture described previously, plus the presence of a predisposing cause, should make DIC a consideration in the differential diagnosis. Abnormal coagulation studies that help confirm the diagnosis include increased values for bleeding time, PT/INR, aPTT, fibrin split products, and thrombin time as well as decreased measure- ments for the fibrinogen level and platelet count. D-Dimer (a fibrin degradation product) is one of the most useful tests to measure fibrinolysis; this in conjunction with an elevated antithrombin complex is indicative of DIC.
The cornerstone of treatment for DIC is removal or correction of the underlying cause and support of major organ systems. Replacement of depleted clotting factors with fresh frozen plasma, packed red blood cells, platelets, or cryoprecipitate may be necessary. Antifibrinolytics (aminocaproic acid) may be used if there is life-threatening hemorrhage. Some studies have had promising results in decreasing mortality with administration of antithrombin concentrate or activated protein C. Improved mortality was seen in the groups with higher severity ratings. Although controversial, heparin may be used to minimize further consumption of clotting factors. The purpose of heparin therapy is to stop thrombin formation, thus preventing microemboli. Low-dose subcutaneous heparin appears to be as effective as high-dose heparin with fewer complications. Heparin has been found useful in chronic DIC.
Hepatic Disease Etiology. A common complication of many hepatic disorders is
abnormal hemostasis. With the exception of part of the antihemophilic factor, all plasma protein clotting factors and fibrinolytic factors and their inhibitors are synthesized totally or predominantly by the liver. If liver function is altered by disease, bleeding is one manifestation.
Pathogenesis. Several factors may contribute to the abnormal hemostasis seen in liver disease. Liver disease alters the synthesis and transport of bile, which is necessary for normal fat digestion and absorption. Impaired absorption and metabolism of vitamin K, which is fat soluble, results in decreased hepatic synthesis of coagulation factors II, VII, IX, and X. Altered liver function also results in decreased synthesis of fibrinogen and factors V and XI. A deficiency in any of the coagulation factors can interrupt the normal process of fibrin clot formation. In addition to synthesis of coagulation factors, the liver has a role in removing activated coagulation and fibrinolytic proteins from the circula- tion. Failure to filter these proteins adequately may result in an imbalance between clot formation and clot dissolution (fibrinolysis), manifesting clinically as DIC. Liver disease also may alter normal production of inhibitors of coagulation (antithrombin III, proteins C and S), which contributes to the hypercoagulable component of DIC.
Another factor contributing to the bleeding associated with liver disease is thrombocytopenia. A low platelet count is common in liver
VII (extrinsic pathway) has the shortest half-life; thus the PT/INR is prolonged first. Ultimately, the aPTT also will be prolonged as clotting factors in the intrinsic pathway become deficient.
Parenteral administration of vitamin K rapidly restores levels in the liver. Fresh frozen plasma, with an immediate supply of clotting factors, is the treatment of choice for severe hemorrhage. Correction or removal of the cause of vitamin K deficiency also is an important part of therapy.
Disseminated Intravascular Coagulation (DIC) Etiology. DIC is an acquired hemorrhagic syndrome in which both
clotting and bleeding occur simultaneously (Fig. 14.10). This syndrome is also known as disseminated intravascular coagulopathy or disseminated intravascular consumption in some references. Widespread clotting in small vessels leads to consumption of the clotting factors and platelets, which in turn leads to bleeding. DIC is either chronic or acute. The chronic form is seen mainly in the cancer patient with malignancy and presents in a less severe form with bleeding tendencies that are mild to moderate and thrombotic episodes. The liver and bone marrow have sufficient time to replenish consumed factors and platelets, which leads to a more pronounced thrombotic problem. Acute DIC occurs secondary to a variety of factors, including malignancy, sepsis, snake bite, abruptio placentae, trauma and crushing injuries, transfusions of incompatible blood, burns, shock, and severe liver disease. DIC is estimated to occur in 1 of every 900 to 2400 adult admissions in large, urban hospitals. Death rates are reported to range from 50% to 80%.
Pathogenesis. DIC represents a paradox of both thrombosis and hemorrhage. Accelerated intravascular clotting in small vessels is initiated by contact of the blood with damaged vascular endothelium (sepsis, burns), release of procoagulant substances into the blood (snake venom, malignancy), generation of procoagulants in the blood (incompatible blood transfusion), or stagnant blood flow (shock). Coagulation factors, especially prothrombin, platelets, factor V, and factor VIII, are rapidly consumed. At the same time, the fibrinolytic system is activated to break down the clots. The fibrin degradation products or fibrin split products that result act as circulating anticoagulants. The combination
Vascular occlusion
Triggering event
Consumption of clotting factors
Microthrombi and microemboli
Activation of coagulation cascade
Hemorrhagic shock
Excessive bleeding
Organ ischemia
Fibrinolysis
Fibrin split products
FIG 14.10 Pathophysiology of disseminated intravascular coagulation. Clotting and bleeding occur simultaneously, resulting in organ ischemia and hemorrhagic shock.
CHAPTER 14 Alterations in Hemostasis and Blood Coagulation 311
fluid overload. Transfusions of whole blood or, more commonly, packed red blood cells may be necessary to manage anemia from bleeding of significant proportions.
disease. The exact mechanism is unknown but may relate to the spleno- megaly associated with portal hypertension. Sequestration of platelets in the enlarged spleen depletes the number of platelets circulating and available for normal hemostasis. The portal hypertension that develops as blood flow through the liver is obstructed adds to the bleeding problem. While pressure in collateral circulatory beds increases, bleeding is manifested as esophageal varices and hemorrhoids (see Chapter 38).
Clinical manifestations. Patients with chronic rather than acute liver disease are more likely to have clinical evidence of a bleeding problem. Typical clinical features may include any of the following: petechiae, ecchymoses, spider telangiectasia, bleeding from venipuncture sites or esophageal varices, and gastrointestinal bleeding. DIC may complicate the clinical presentation. Bleeding may not be a problem until the patient has surgery or a biopsy.
Diagnosis and treatment. The patient with liver disease and associated bleeding will commonly have a decreased platelet count, normal or decreased fibrinogen levels, and prolonged PT/INR and aPTT values. More specific coagulation studies may be indicated in some situations.
Treatment may be instituted prophylactically before surgery or biopsy, or it may be mandated by a bleeding episode. The degree of abnormality on coagulation tests or the severity of the bleeding will influence the aggressiveness of therapy. Because of the high likelihood of vitamin K deficiency, administration of vitamin K may be the initial intervention. Platelet infusions are appropriate if significant thrombocytopenia is present. Fresh frozen plasma is the primary replacement product used to supply coagulation factors. Administration of large quantities of plasma carries the risk of precipitating hepatic encephalopathy and
KEY POINTS • Coagulation disorders result from defects in the clotting cascade or fibrinolytic
process. These disorders may be inherited or acquired. • Hemophilia is an inherited bleeding disorder that results from deficient
clotting factor production. The most common types are hemophilia A (factor VIII) and hemophilia B (factor IX).
• von Willebrand disease is an inherited bleeding disorder caused by abnormal factor VIII carrier protein production. The disease results in a deficiency of factor VIII in the circulation and decreased platelet function.
• Vitamin K deficiency is associated with several coagulation disorders, including hemorrhagic disease of the newborn and bleeding related to malnutrition and liver disease. Vitamin K is a necessary cofactor for liver production of factors II, VII, IX, and X.
• Disseminated intravascular coagulation (DIC) is an acquired bleeding syndrome associated with a number of etiologic factors, including trauma, malignancy, burns, shock, and abruptio placentae. DIC is characterized by widespread clot formation in small vessels. Clotting factors and platelets are consumed, leaving the patient with deficient resources for appropriate clot formation. The platelet count and fibrinogen levels are typically decreased, and values for PT, aPTT, thrombin time, bleeding time, and fibrin split products are elevated.
The presence of unexpected overt or occult bleeding may signal an acquired or inherited problem with hemostasis. A review of normal hemostasis, as well as information on selected disorders of hemostasis and coagulation, has been presented in this chapter. With a sound
knowledge base, the health care professional is in a position to play a key role in the recognition, diagnosis, and management of a bleeding problem.
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312 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
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15
Alterations in Blood Flow Teresa Grigsby Loftsgaarden
K E Y Q U E S T I O N S • How do the structures of arteries, veins, capillaries, and
lymphatics differ, and how do these differences reflect the functions of each?
• What is the relationship among vessel resistance, blood pressure, and blood flow?
• How is vascular resistance regulated centrally by the autonomic nervous system and locally by tissues?
• What are the determinants of transcapillary exchange of fluids, electrolytes, and nutrients?
• How do arterial and venous obstructions develop? • What are the clinical consequences of acute and chronic arterial
obstruction? • What are the clinical consequences of superficial and deep venous
obstructions?
C H A P T E R O U T L I N E Organization of the Circulatory and Lymphatic Systems, 315
Vessel Structure, 315
Anatomy of Arteries and Veins, 316 Anatomy of Capillaries, 316
Lymphatic Structure, 317
Principles of Flow, 317 Hemodynamics of the Circulatory System, 317
Blood Flow, Pressure, and Resistance, 318 Velocity and Laminar and Turbulent Flow, 319 Wall Tension and Compliance, 320 Dynamics in the Microcirculation: Capillaries and Lymphatics,
321 Control of Flow, 322
Control of Blood Flow, 322
Extrinsic Mechanisms, 322 Intrinsic Mechanisms, 322
Control of Lymphatic Flow, 323
General Mechanisms That Cause Altered Flow, 323 Blood Vessels: Obstructions, 323
Thrombus, 323 Embolus, 324 Vasospasm, 325 Inflammation, 325 Mechanical Compression, 325
Blood Vessels: Structural Alterations, 325
Types of Structural Alterations, 325
Lymphatic Vessels, 326
Alterations in Arterial Flow, 326 Arteriosclerosis/Atherosclerosis, 326
Etiology and Pathogenesis, 326 Risk Factors, 327 Clinical Manifestations and Diagnosis, 330 Treatment, 330
Thromboangiitis Obliterans (Buerger Disease), 330
Raynaud Syndrome, 330
Aneurysms, 330
Classifications, 330 Clinical Manifestations and Diagnosis, 331 Treatment, 331
Acute Arterial Occlusion, 331
Alterations in Venous Flow, 332
Valvular Incompetence, 332
Etiology and Pathogenesis, 332 Clinical Manifestations and Treatment, 332
Varicose Veins, 332
Etiology and Pathogenesis, 332 Clinical Manifestations and Treatment, 332
Chronic Venous Insufficiency, 333
Etiology and Pathogenesis, 333 Clinical Manifestations and Treatment, 333
Deep Vein Thrombosis, 333
Etiology and Pathogenesis, 333 Clinical Manifestations and Treatment, 333
Alterations in Lymphatic Flow, 333
Lymphedema, 333
Etiology and Pathogenesis, 333 Clinical Manifestations, Diagnosis, and Treatment,
334
http://evolve.elsevier.com/Banasik/pathophysiology/
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
314 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
Nutrients are absorbed into the blood as it moves through the gastrointestinal tract via the splanchnic circulation. Oxygen uptake and the release of carbon dioxide occur in the specialized vascular bed of the pulmonary circulation. The liver, with its extensive blood supply, has a major role in metabolism and generation of metabolic waste products. These, and other metabolic by-products, are carried by the blood to the
The primary functions of the circulatory system are the transportation of oxygen and nutrients and the removal of metabolic waste products within the body. To perform these functions, a complex circuitry of vessels traverses the body (Fig. 15.1), powered by the pumping action of the heart. Propulsion of blood through the lungs is provided by the right ventricle, whereas systemic blood flow is driven by the left ventricle.
Axillary a.
Right and left common carotid arteries Right subclavian a.
Brachiocephalic a.
Left subclavian a.
Thoracic aorta
Renal a. Splenic a.
Common iliac a. Inferior mesenteric a.
External iliac a.
Abdominal aorta
Obturator and gluteal a.
Internal iliac a. Femoral a. Deep femoral a.
Ascending aorta
Brachial a.
Hepatic a. Diaphragm
Ulnar a. Radial a. Inguinal ligament Deep palmar arch Superficial palmar arch Digital a. Descending branch of lateral circumflex a.
Peroneal a.
Posterior tibial a. Anterior tibial a.
Dorsalis pedis a.
Digital a.
ARTERIES
VEINS
Superior mesenteric a.
Aortic arch
Internal jugular v. External jugular v.
Superior vena cava
Renal v.
Inferior vena cava
Common iliac v.
External iliac v.
Internal iliac v.
Femoral v.
Brachiocephalic vein
Cephalic v. Brachial v. Basilic v. Hepatic v.
Median cubital v.
Median antebrachial v.
Superficial palmar network
Digital v.
Great saphenous v.
Small saphenous v.
Tibial v.
Dorsal venous arch
Digital v.
FIG 15.1 The primary systemic arterial and venous circulatory networks. a., Artery; v., vein. (From Black JM, Hawks J: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2008, Saunders, p 1273.)
CHAPTER 15 Alterations in Blood Flow 315
approximately 5 L of blood through the entire circuit, takes only about 1 minute.
The lymphatic circulation is a specialized system of channels and tissues (nodes). It is not arranged in a circuit, as is the vascular system. Instead, the lymphatic vessels begin blindly, deep in the connective tissue. One of the functions of the lymphatic system is to reabsorb fluid that leaks out of the vascular network into the interstitium and return it to the general circulation. During the process of cellular exchange within the capillary bed, some fluid moves into the interstitium and fails to return to the vascular bed. This lost fluid can amount to as much as 2 to 4 L/day. At this circulatory level, lymphatic vessels lie in close proximity to the capillary vasculature. The fluid, now called lymph, is absorbed by the lymphatic vessels and returned to the venous circulation by way of the thoracic duct and the right lymphatic duct (Fig. 15.3). Lymphatic drainage of the breast is illustrated in Fig. 15.4.
Vessel Structure To perform their specialized functions, the blood and lymphatic vessels are different in their structure. Knowledge of the morphology of these vessels is essential for an understanding of the alterations in function produced by disease.
The primary differences between the smaller arterial and venous vessels are in terms of the quantities of muscle and connective tissue
kidneys for elimination. Inadequate circulation in the lungs, liver, or kidneys may interfere with the removal of metabolic wastes from the body. Effective transportation of oxygen and nutrients and removal of waste materials depend on proper functioning of the circulatory system.
Aging produces significant changes in the circulatory system, altering the ability of the system to carry out its functions and increasing susceptibility to certain disease processes. The effects of the aging process on the circulatory system are summarized in the box “Geriatric Con- siderations: Changes in the Circulatory System.”
ORGANIZATION OF THE CIRCULATORY AND LYMPHATIC SYSTEMS After passing through the pulmonary circulatory system and leaving the left ventricle, blood flows through a graduated series of tubes to tissues of the body before returning to the right side of the heart. The powerful left ventricle propels the blood to the aorta, arteries, arterioles, and, finally, to the capillary beds. Here the proximity of capillary endothelium to the other cells of the body facilitates movement of nutrients and oxygen into the cells and removal of cel- lular metabolic wastes. Capillary blood is then collected by venules, which flow into veins, returning blood to the venae cavae and the right side \of the heart (Fig. 15.2). The complete process, moving
PULMONIC CIRCULATION
From lungs to heart
Left atrium
From heart to body tissues
Left ventricle
Right atrium
From heart to lungs
Right ventricle
SYSTEMIC CIRCULATION
From body tissues to heart
FIG 15.2 The circulatory system. Beginning from the body tissues, blood returns to the right side of the heart, through the right atria to the right ventricle, which propels it into the lungs. In the lungs, the metabolic waste carbon dioxide is removed and oxygen is replenished. Oxygenated blood leaves the pulmonic circulation and returns to the heart via the left atrium and then to the left ventricle. From the left side of the heart, the oxygenated blood enters the systemic circulation, where oxygen is delivered to the tissues in exchange for metabolic wastes. (From Black JM, Hawks J: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2008, Saunders, p 1344.)
Cisterna chyli
Thoracic duct
Right lymphatic duct
Deep cervical nodes Internal jugular
veins Junction of thoracic duct with venous system
Left subclavian vein
Right subclavian
vein
Bronchial lymph nodes
Mediastinal lymph nodes
Preaortic lymph nodes
Iliac lymph nodes
Inguinal lymph nodes
FIG 15.3 Anatomy of the lymphatic system. Lymphatic capillaries collect the excess fluid from the vascular capillaries, returning it to the venous circulation at the junction of the internal jugular and subclavian veins. (From Monahan FD et al: Phipps’ medical-surgical nursing: health and illness perspectives, ed 8, Philadelphia, 2007, Mosby, p 936.)
316 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
Cross-mammary pathways to opposite breast
Pathways to subdiaphragmatic nodes and liver
Internal mammary
nodes
Subclavian nodes
Rotter nodes
Central axillary nodes
Brachial nodes
Subscapular nodes
Anterior pectoral nodes
FIG 15.4 Lymphatic drainage of the breast to the axillary and subclavian nodes, then to the jugular and subclavian veins. (From Monahan FD et al: Phipps’ medical-surgical nursing: health and illness perspectives, ed 8, Philadelphia, 2007, Mosby, p 1661.)
present. In arterioles, the principal tissue is smooth muscle, whereas in venules, smooth muscle is scarce, and connective tissue dominates. The composition of the walls and the size and shape of the vessels also vary in larger arteries and veins. Capillary walls are composed of a single layer of endothelial cells. These simple structures carry out extraordinarily complex functions.
Anatomy of Arteries and Veins The walls of both arteries and veins are composed of three microscopically distinct layers, or tunicae: the intima, the media, and the adventitia. The histologic constituents of these tunicae are similar in arteries and veins (Fig. 15.5). Generally, the walls of veins are not as thick as the walls of arteries, but the lumina are larger.
Tunica intima
Tunica media
Artery Vein
Tunica adventitia
FIG 15.5 Tunicae of arteries and veins showing the thicker walls of the arteries.
The intima consists of a layer of endothelial cells that is in direct contact with the blood as it flows through the vessel. Periodically, the intimal layer of veins protrudes into the lumen, creating valves that prevent the backflow of blood. Arterial intima is characterized by an inner elastic membrane next to the endothelial cells. This elastic membrane is thickest in the aorta and decreases in density until only scattered elastic fibers can be identified in the smallest arterioles. With increasing age, the intimal arterial wall becomes thicker and less elastic. This interferes with diffusion of nutrients into the wall, causing the internal elastic membrane to degenerate and calcify.
The media, or middle layer, exhibits the greatest difference between arteries and veins. In arteries the media is the thickest of all the tunicae. Large arteries have smooth muscle fibers arranged in a circular pattern and interspersed with elastic fibers. Progressing from arteries to ever- smaller arterioles, the smooth muscle remains, but the elastic tissue disappears. This thick, smooth muscle layer is responsible for the firmness and limited distensibility of arterial vessels. With advancing age, changes in the intima result in decreased nutrition reaching the media, causing degeneration of the smooth muscle tissue. In veins, the media also has smooth muscle, usually arranged in a circular pattern with some longitudinal strands. The quantity of smooth muscle decreases as the veins become larger. Venous media also contains collagenous connective tissue, but elastic tissue is rare, except in the large veins.
In veins, the adventitia is the thickest of the tunicae. It is composed of collagenous connective tissue and longitudinal smooth muscle. In larger arteries there is a discernible external elastic membrane in the adventitia. This membrane disappears as the arteries decrease in diameter. Arterial adventitia consists predominantly of collagenous connective tissue. Some larger vessels also contain isolated, longitudinally arranged fibers of smooth muscle.
Anatomy of Capillaries Capillaries are composed of a single thickness of endothelial cells attached to a protein network called the basement membrane. Moving from the end of an arteriole to the beginning of a venule, capillaries narrow to
CHAPTER 15 Alterations in Blood Flow 317
In the aging individual, changes occur throughout the vascular bed. The micro- vascular bed demonstrates thickening of the basement membrane. This change narrows the vessel lumen and impairs the free exchange of oxygen, nutrients, and metabolic wastes at the cellular level.
In both arteries and veins, the vascular changes occur first in the proximal portions. The intima becomes fibrotic and the endothelial cell variation increases. In the media, the amount of elastin and smooth muscle is reduced, whereas the amount of fibrotic and collagen tissue increases. With collagen cross-linking, the vessel walls lose elastic flexibility and recoil, becoming stiffer and less
compliant. They become inflexible tubes with an increase in systemic vascular resistance (SVR). The increased SVR causes a reduction in tissue and organ blood flow and decreased perfusion.
Baroreceptor function is reduced because of decreased sensitivity of the receptors and diminished responsiveness of the vessels attributable to their rigidity. These factors decrease the body’s ability to respond to hypotensive and hypertensive stimuli. The decreased compliance of the systemic vascular system increases afterload, forcing the left ventricle of the heart to work harder to meet the metabolic demands of the body.
GERIATRIC CONSIDERATIONS Changes in the Circulatory System
Narrowed vessel lumen
Impaired exchange of O2, nutrients, and
metabolic wastes
Increased vein fibrosis, dilation, and stretching
Increased arterial
tortuosity
Decreased baroreceptor
response
Decreased elasticity of arteries
Increased fibrosis in media and thickening of intima
Thickening of basement membrane in microvasculature
Decreased elastin and increased collagen
Increased systolic blood pressure
Increased arterial insufficiency
Increased systemic vascular resistance (afterload)
a diameter barely sufficient for a single red blood cell (RBC) to pass through the aperture. In some tissues, one or two smooth muscle cells form a precapillary sphincter that controls flow through the vessel (Fig. 15.6).
There are spaces between the endothelial cells that vary in size among organ systems. These spaces, or pores, permit certain constituents to pass in and out of the capillaries. For example, capillary beds in the brain have little or no spaces and permit the passage of only certain molecules. The space between endothelial cells of the brain is so small that it is referred to as the blood–brain barrier. In parts of the kidneys, however, capillaries are more porous, allowing much larger molecules to move between the circulation and the filtrate (urine). The size of these spaces determines the capillary permeability of a specific capillary bed.
Lymphatic Structure Lymphatic vessels are thin walled, and most resemble veins in their appearance. Like their counterparts in the circulatory system, they range in size from lymphatic capillaries to vessels of increasing diameter. Like veins, lymphatics have intermittent valves composed of folds of their inner layer that extend into the lumen (Fig. 15.7). The walls of lymphatic capillaries contain contractile fibers that are stimulated when stretched, causing the vessels to contract and propel lymph along the vessel.
KEY POINTS • Arteries and veins have three distinct layers. The intima, the innermost
layer, is composed of a single layer of endothelial cells. The media, or middle layer, is composed of smooth muscle and elastin. Media is thicker in arteries than in veins. The adventitia, the outermost layer, is composed of supporting connective tissue.
• Capillaries have only a single layer of endothelial cells attached to a basement membrane. The permeability of capillaries is determined by the tightness of the endothelial cell connection.
• Lymphatic vessels resemble veins, having thin walls and valves.
PRINCIPLES OF FLOW Hemodynamics of the Circulatory System The principles of blood flow are known as circulatory hemodynamics. These principles govern the quantity of blood passing by a given point in a specific period. Therefore blood flow is measured as a given number of liters, milliliters, or cubic centimeters per second, minute, or hour. A discussion of the hemodynamics of the circulatory system includes the concepts of pressure, resistance, velocity, laminar and turbulent flows, wall tension, and compliance.
318 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
is an inverse one: as resistance increases, blood flow decreases. This force has several determinants, each of which can change resistance considerably; these determinants are represented in physiology by Poiseuille’s law:
Resistance = 8
4
nl rπ
The number 8 is a mathematical constant, as is the value of π; n represents blood viscosity, l represents the length of a given vessel, and r is the radius of the vessel. Using this formula, the effects of changes on the components of resistance are very predictable.
Two of the determinants of resistance are vessel length and vessel radius. As predicted by Poiseuille’s law, resistance changes directly with the length of the vessel, and these changes in resistance significantly affect flow. As illustrated in Fig. 15.8, given three vessels of the same radius, doubling the length increases the resistance and reduces the flow (Q) by 50%. Reducing the vessel length by half decreases resistance and increases the flow by 100%. These changes in flow occur when the pressure gradient remains constant and are caused solely by variations in vessel length. Resistance decreases as the radius of a vessel increases, and resistance is inversely related to the fourth power of the radius of a vessel, or r4. Therefore increasing a vessel’s radius markedly reduces resistance and produces an exponential increase in blood flow. Fig. 15.9 demonstrates the effect of doubling the radius of a vessel on the flow of blood if all other factors related to flow are held constant. The resulting flow of blood is 16 times greater in the larger-diameter vessel.
Although there is variability in the length of vessels throughout the circulatory system, vessels are incapable of altering their own length. They do, however, possess a considerable ability to change their diameters, and many disease processes (e.g., arteriosclerosis) and drug therapies (e.g., vasopressors) are associated with changes in the size of the vessel lumen. Even minor changes will produce major alterations in resistance and, hence, blood flow. This makes changes in diameter the most important determinant of resistance.
Blood Flow, Pressure, and Resistance Blood flow is accomplished by movement along a pressure gradient within the vascular bed. This means that blood moves from an area of higher pressure to an area of lower pressure. The arterial and arteriolar walls, with their muscular media coats, provide the high-pressure end of the gradient. Seeking a lower pressure, blood moves toward the venous system. The thinner, more pliable walls of the venous bed furnish the low-pressure portion of the pressure gradient. The greater the pressure difference, the greater the rate of blood flow.
The movement of blood through the vascular system is opposed by the force of resistance. The relationship between blood flow and resistance
Arterial end Venous end Blood capillary
Lymphatic capillary Lymphatic capillary
FIG 15.7 Lymphatic network. The lymphatic system is integrally related to the systemic vascular system. Excess fluid and plasma diffuse between the capillaries, interstitial spaces, and lymphatic vessels. Because lymphatic capillaries have larger spaces between endothelial cells, they can remove excess interstitial fluid or plasma that venous capillaries cannot reabsorb.
Arteriole
Venule
Capillary
Capillary
FIG 15.6 Capillary network.
CHAPTER 15 Alterations in Blood Flow 319
refers to the resistance throughout the entire vascular system. It can be calculated on the basis of the pressure difference between the arteries and the veins. Clinically, SVR is used to specifically denote resistance peripheral to the heart and lungs. Because the primary determinant of SVR is the resistance vessels (arterioles), diseases or drug therapies that affect these vessels have the most profound impact on the SVR. Any condition that produces an increase in SVR, such as hypertension, requires more work for the heart to overcome the elevated resistance and eject its volume of blood (see Chapter 16). This increased workload means that the heart needs more oxygen and nutrients. When SVR is pathologically decreased, the blood is distributed over a larger area, and blood flow slows dramatically. Individual organs, such as the kidney and brain, may not obtain sufficient blood flow to meet metabolic needs. This is what occurs in distributive shock states (see Chapter 20).
Velocity and Laminar and Turbulent Flow As previously discussed, blood flow is defined as the volume of blood that passes by a given point in a given unit of time. Velocity is a measure of the distance traveled in a given interval of time and is usually expressed in centimeters per second. Velocity is governed by the total cross-sectional area and varies inversely with it. An increase in the total cross-sectional area produces a decrease in velocity, whereas a decrease in the total cross-sectional area produces an increase in velocity. The total cross- sectional area of the aorta and vena cava is small, and they have the most rapid rate of flow, whereas the capillary beds combine to produce the greatest total cross-sectional area and have the slowest flow rate. The dividing and subdividing of vessels within the circulatory system results in greater velocity in the arterial and venous beds than in the capillary bed (Fig. 15.11). An understanding of the concept of velocity enhances discussion of laminar and turbulent flow.
The third determinant of resistance is the viscosity of the blood itself, represented in Poiseuille’s law as n. Viscosity is defined as the thickness of a fluid. When the blood is more viscous, the friction between the cells and the liquid increases, and an increase in resistance to flow is produced. Blood is composed of a suspension of cellular material and plasma. Approximately 99% of the cellular constituents of the blood are RBCs. The ratio of RBCs to plasma is presented in the laboratory value hematocrit. Increasing the number of RBCs or decreasing the plasma component results in more viscous blood (increased hematocrit value), more resistance, and a slowing of blood flow. This is what occurs in dehydration, when the plasma component is relatively decreased, or in polycythemia, when the number of RBCs increases.
The relationship between the variables of driving pressure and resistance and their effect on blood flow is expressed by Ohm’s law, as follows:
Q P R=
Here, Q is the blood flow, P is the pressure difference between two points, and R is resistance. Altering any one of the determinants of resistance (vessel length, vessel radius, or blood viscosity) produces a change in flow. According to Ohm’s law, a change in the pressure dif- ference within the circulatory system also results in a change in the flow of blood. The arterioles are the major site of resistance in the vascular system and require a greater pressure to maintain blood flow. As the resistance decreases across the systemic vasculature, less pressure is necessary to maintain blood flow (Fig. 15.10). Total peripheral resistance
4 cm
Q = 5 ml/sec
2 cm
Q = 10 ml/sec
1 cm
Q = 20 ml/sec
FIG 15.8 Relationship of vessel length to blood flow (Q) with a constant pressure gradient.
Q = 10 ml/sec
r = 2 cm
Q = 160 ml/sec
r = 4 cm
FIG 15.9 Relationship of vessel radius (r) to blood flow (Q) with a constant pressure gradient.
120 Mean
P re
ss u re
( m
m H
g )
100
80
60
40
20
Aorta Vena cava
Arteries Veins
Arterioles Venules
Capillaries
FIG 15.10 Mean pressure changes within the systemic vasculature. A significant decrease in pressure occurs as blood flows through the arterioles into the capillaries. The figure illustrates the role of the arterioles in the determination of vascular resistance. Because of the large number of capillaries, total resistance is not increased with the decreased radius of the capillaries.
320 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
can be predicted at the aortic root and in the branches of major arteries. The same process can be seen in a river, where boulders interrupting the flow produce whirlpools and the characteristic roar of rapids. In the human body, turbulent flow through blood vessels can be aus- cultated as a bruit. Sometimes it can be palpated as well, and then it is called a thrill. This turbulence may be the result of a normal increase in velocity or be attributable to blood moving through vessels that branch at a sharp angle. Pathologically, turbulence results if blood flows around an obstruction in the vessel or over a roughened intimal surface. Regardless of cause, turbulent flow alters the parabolic profile seen with laminar flow, slowing velocity around the source of the turbulence. This slowing can cause cellular components of the blood to adhere to one another, to the turbulent focus itself, and to the intimal wall, promot- ing the formation of a blood clot (thrombus).
Wall Tension and Compliance The relationship between distending pressure and wall tension is expressed by the law of Laplace and is illustrated in Fig. 15.14. This physical principle has broad applications in physiology; however, the present discussion focuses on its implications for blood vessels. The distending pressure (P) is the transmural pressure, or pressure on one side of the vessel wall minus the pressure on the other side of the blood vessel. It is equal to the wall tension (T) divided by the radius of the blood vessel (r). In summary, an increase in radius or distending pressure results in increased wall tension.
Aorta Vena cava
Arteries Veins
Arterioles Venules
Capillaries V
e lo
ci ty
( cm
/s e c)
50
40
30
20
10
C ro
ss -s
e ct
io n a l a
re a (
cm 2 )
5000
4000
3000
2000
1000
FIG 15.11 Effect of increasing cross-sectional area on the velocity of blood flow. Increased cross-sectional area in the capillary bed results in a significant decrease in velocity compared with the arterial and venous networks.
Slowest blood flow
Slowest blood flow
Fastest blood flow
FIG 15.12 Parabolic profile of laminar blood flow.
FIG 15.13 Turbulent flow generated at a blood vessel bifurcation.
P P = T r
T
T
FIG 15.14 Law of Laplace as applied to a blood vessel. Distending pressure (P) is the difference between the pressures on either side of the vessel and is equal to the wall tension (T) divided by the radius of the blood vessel (r).
When blood flows through a long, smooth-walled vessel, it does so in layers. The velocity of the layers varies, with blood in the center moving much faster than blood in the outer layers. The blood in the center layer moves the most quickly because it is in contact with blood only. The outermost layer is also in contact with the intima of the vessel wall, which exerts friction against the cellular components of the blood. Many blood cells stick to the intima; this layer may flow only minimally. Layers of blood between this outer layer and the central core of blood slide over one another with increasing velocity. This is referred to as the parabolic profile of laminar flow and is illustrated in Fig. 15.12.
The streamlined nature of laminar flow is disrupted by normal anatomy and by pathologic processes creating turbulent flow. Turbulent flow is an interruption in the forward current of blood flow by crosswise flow (Fig. 15.13). The propensity for turbulent flow increases with increasing velocity and increased vessel radius, so that some turbulence
CHAPTER 15 Alterations in Blood Flow 321
Pressures opposing filtration Ptissue cap= + π
( . ) ( ) .− + =3 0 28 25 0mm Hg mm Hg mm Hg
Net filtration pressure P Pcap tissue tissue cap= + − +( ) ( )π π
( . ) ( . ) .+ − + = +25 3 25 0 0 3mm Hg mm Hg mm Hg
Clinically, capillary fluid pressure and plasma colloid osmotic pressure are the most important concepts to a discussion of pathophysiology. Capillary fluid pressure is the blood pressure in the capillary. It is the force pushing fluid from the capillary into the interstitium and is often called the hydrostatic pressure. The strength of this force depends on the blood pressure and the resistance within the arterial and venous systems. Pathologic conditions resulting in an increase in either the blood pressure or the resistance to flow can alter this force, increasing it and propelling more fluid into the interstitial space, resulting in the formation of edema.
Plasma proteins are responsible for the plasma colloid osmotic pressure, the primary force resulting in fluid remaining in the capillary. Most plasma proteins normally remain in the capillaries because they are such large molecules that they cannot move through the capillary spaces. The vast majority of plasma protein, by weight, is albumin. Although globulins and fibrinogen have greater molecular weight, albumin is present in plasma in greater quantity. The number of dissolved molecules in the plasma determines the plasma colloid osmotic pressure. The number of dissolved molecules in the interstitial space establishes the interstitial fluid colloid osmotic pressure. Plasma has nearly four times the concentration of proteins than does the interstitium. For that reason, plasma colloid osmotic pressure normally exceeds that in the interstitium, favoring fluids remaining in the capillaries.
As previously illustrated, the net filtration pressure in a typical capillary is 0.3 mm Hg. This pressure difference is responsible for producing the fluid excess in the interstitial space, which is then normally absorbed by the lymphatic system for eventual return to the systemic vascular circulation. If the pressures are altered, an even greater pressure gradient may be produced, and more fluid moves from the capillaries into the interstitial space. Likewise, a change in the permeability (K) of the capillary wall that allows plasma proteins to leak out or a reduction in lymphatic flow will allow fluid to collect in the interstitium. In each case, the result is edema, which can occur with many pathologic condi- tions. When the pathology is an impairment of lymphatic flow allowing
When the pressure of the blood in the vessel begins to decline, wall tension forces exceed distending forces, the radius decreases, flow rate declines, and resistance increases. The distending pressure may fall to a point at which it is no longer possible to hold the blood vessel open. If the pressure reaches 20 mm Hg, a point called the critical closing pressure, blood flow ceases entirely.
The smaller the radius of the blood vessel, as in a capillary compared with an artery or a vein, the less tension is needed in the wall to equalize the distending pressure. Wall tensions decrease rapidly from 170,000 dynes/cm in the aorta to 16 dynes/cm in the capillaries, rising to 21,000 dynes/cm in the vena cava.
Wall tension is a product of the elasticity of the vessel and is a force that opposes the distending pressure. The manner in which wall tension in a given vessel responds to changes in distending pressures is based on its compliance. Compliance reflects the distensibility of a blood vessel—its ability to accept an increased volume of blood. The large quantity of muscle tissue in much of the arterial system limits its distensibility. Veins, however, are highly distensible and compliant, capable of holding a large quantity of blood at a low pressure. Because of this quality, veins are referred to as capacitance vessels. When the body is at rest, 75% of the total blood volume is found in the systemic venous system.
Dynamics in the Microcirculation: Capillaries and Lymphatics The smallest vessels of the vascular system and the lymphatic vessels are commonly referred to as the microcirculation. The primary function of the capillary bed is essentially the essence of the entire circulatory system: the exchange of gases and nutrients. Blood flow in the capillary bed is largely laminar, with minimal turbulence at bifurcations. Within each organ or tissue in the body, capillary blood flow is related to the driving force, which is the difference between arterial and venous pressures, and inversely related to resistance.
The exchange of materials across the capillary endothelium through the interstitial space, either to or from the cells, occurs on an ongoing basis. Substances pass between tissue interstitial fluid and capillary blood by moving along a concentration gradient (diffusion), whereas fluid moves according to a pressure gradient (filtration). As fluid moves through the interstitial space, most of it returns to the capillary bed. Normally, approximately 10% of the fluid remains in the interstitium and is absorbed by the adjacent lymphatic system to be returned to the general circulation. Alteration in the pressure gradient responsible for filtration can allow an excessive amount of fluid to escape into the interstitial space. Increased fluid accumulation in the interstitial space also can occur when the lymphatic flow is impaired or when capillaries become more permeable and “leak” fluid. These are the pathophysiologic mechanisms that result in edema.
The pressure gradient between the capillary and the interstitium is produced and maintained in accord with the balance of four distinct forces or pressures: (1) capillary hydrostatic pressure (Pcap), (2) interstitial fluid colloid osmotic pressure (πtissue), (3) plasma colloid osmotic pressure (πcap), and (4) interstitial fluid pressure (Ptissue) (Fig. 15.15). This delicate balance of forces is summarized by Starling’s hypothesis, which states that the net filtration is equal to the combined forces fostering filtration minus the combined forces opposing filtration. Using the normal values shown in Fig. 15.15, each component of the formula and the resulting net filtration pressure are shown:
Pressures favoring filtration Pcap tissue= + π
( . ) ( . ) .+ + + =17 3 8 0 25 3mm Hg mm Hg mm Hg
Interstitial fluid pressure
(–3.0 mm Hg)
Interstitial fluid colloid osmotic
pressure (8.0 mm Hg)
Capillary Capillary pressure
(17.3 mm Hg)
Plasma colloid osmotic pressure
(28 mm Hg)
FIG 15.15 Components of the capillary pressure gradient. Filtration reflects the difference between the combined forces that push fluid out of the capillary (capillary pressure and interstitial fluid colloid osmotic pressure) and those that attempt to hold fluid in the capillary (plasma colloid osmotic pressure and interstitial fluid pressure).
322 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
parasympathetic nervous system innervation is important to the regula- tion of the heart, it is not important to the regulation of peripheral resistance. Within the medulla, groups of neurons form the vasomotor center. This area plays a major role in the maintenance of blood pressure (see Chapter 16). The vasomotor center responds to direct stimulation and to afferent stimuli of both an excitatory and an inhibitory nature. A basal rate of discharge from the vasomotor center results in a continu- ous minimal level of contraction of vascular smooth muscle, referred to as vasomotor tone.
All blood vessels except the small venules and capillaries contain smooth muscle that is innervated by adrenergic fibers from the SNS. Because arteries have the most smooth muscle, they are most affected by SNS stimulation. Veins, by contrast, have little neural innervation, and venoconstriction has a minor role in controlling blood flow except in the skin and the splanchnic circulatory bed of the gut. In general, the release of norepinephrine, the SNS postganglionic neurotransmitter, results in arterial vasoconstriction via the α1 receptors located on the vascular smooth muscle walls. Likewise, drugs that mimic the α1-receptor response (α1 agonists) produce vasoconstriction, increasing vasomotor tone and diastolic blood pressure. Administration of an α1 antagonist results in the blockade of these receptors and results in vasodilation of the arterial bed, reducing blood pressure.
Although the β2-adrenergic receptors located on blood vessels in skeletal muscle produce vasodilation when stimulated, they are only minimally affected by endogenous norepinephrine from the SNS. Epinephrine, the endogenous catecholamine released by the adrenal medulla, or its exogenous pharmacologic equivalent (adrenalin), stimulates these receptors, producing vasodilation. Therefore their major role is not so much to maintain vasomotor tone but to increase nutrient and oxygen supplies to skeletal muscles during periods of increased demand.
Blood flow through the venous system into the right side of the heart is maintained by the pressure gradient from the veins and by the venous and thoracic pumps. Blood is propelled through the circuit, pushed by the force of left ventricular contraction, and moves forward toward the low-pressure side of the pump on the right side of the heart. In the peripheral veins, what is known as the venous pump is activated by skeletal muscle activity. Folds in the intimal wall of the veins create valves. Contraction of the skeletal muscles bordering the veins compresses them, forcing the valves open and propelling venous blood back toward the heart. Instigation of the venous pump significantly facilitates venous return. Patients who are immobilized by bed rest lose this valuable mechanism, which results in a decrease in cardiac preload to the right heart and increased work of the heart to maintain the cardiac output. The thoracic pump acts to increase venous return to the heart as intrathoracic pressure changes with breathing. Inspiration increases negative intrathoracic pressure, resulting in more venous return (see Chapter 17).
Intrinsic Mechanisms Autoregulation refers to the ability of blood vessels within organs to maintain a relatively constant blood flow, regardless of changes in arterial pressure. This flow is relatively constant because it does have limits; there is a range within which it is maintained, and the range varies slightly from organ to organ. Several processes contribute to the autoregulation of perfusion to meet the needs of individual organs within the body.
It is known that as vascular smooth muscle is stretched, it contracts. Therefore as arterial pressure rises and arterial walls stretch, contraction is stimulated, producing vasoconstriction. Resistance to flow is also increased with stretch by early closing of precapillary sphincters. This process certainly may contribute to autoregulation, but it is not the primary mechanism.
fluid to collect in the interstitium, it is more specifically termed lymphedema.
Once absorbed into the lymphatic system, interstitial fluid is referred to as lymph. It is similar in composition to interstitial fluid but has a lower concentration of protein. Molecules of fat and bacteria are also found in lymph. Lymph circulates throughout the body at a rate of approximately 3 L/day. Lymphatic flow can be increased in several ways: by increasing the capillary pressure, decreasing the plasma colloid osmotic pressure, increasing the interstitial fluid colloid osmotic pressure, or increasing the permeability of the capillaries. The interstitial fluid hydrostatic pressure increases (becomes less negative) when any of these factors changes, producing an increase in lymphatic flow.
KEY POINTS • Physical laws govern the flow of blood through the circulatory system.
Predictions regarding blood flow, blood pressure, and resistance to flow can be made using these laws. The important relationships may be sum- marized as follows: • Flow = pressure/resistance • Blood pressure = flow (cardiac output) × resistance • Resistance = pressure/flow
• The main factors affecting resistance to flow are the radius and length of the vessels and blood viscosity and turbulence. Usually, the radius of the vessel is the most important determinant of resistance. It affects resistance inversely and to the fourth power. A small decrease in radius results in a large increase in resistance.
• The velocity of blood flow varies inversely with the total cross-sectional area of the vascular bed. The capillaries have the greatest total cross-sectional area and, therefore, the slowest flow.
• Laplace’s law describes the relationships among wall tension, distending pressure, and vessel radius (P = T/r; T = Pr). An increase in radius or distending pressure results in increased wall tension. At critical closing pressure, wall tension overwhelms distending pressure and blood flow ceases.
• The transcapillary exchange of fluid and nutrients is accomplished by the processes of diffusion and filtration. Diffusion refers to movement of solute and is determined by capillary permeability and the size of the concentration gradient. Filtration refers to movement of fluid and is affected in the following ways: • Increased capillary fluid pressure and interstitial fluid colloid osmotic
pressure enhance filtration. • Increased interstitial fluid pressure and plasma colloid osmotic pressure
oppose filtration. • Increased permeability (K) enhances filtration.
CONTROL OF FLOW
Blood flow throughout the periphery is controlled by central mechanisms that are mediated by the autonomic nervous system, the venous and thoracic pumps, and intrinsic autoregulatory mechanisms. Lymphatic flow is controlled by increasing interstitial fluid colloid osmotic pressure and by the stimulation of the contractile fibers (often called lymphatic pumps) as they are stretched. In healthy people, these mechanisms of control respond to changes in the internal and external environments and compensate rapidly and efficiently; however, during states of illness these mechanisms may be inadequate to compensate for alterations in flow.
Control of Blood Flow Extrinsic Mechanisms The autonomic nervous system provides the primary extrinsic control of blood flow through the sympathetic nervous system (SNS). Although
CHAPTER 15 Alterations in Blood Flow 323
physical activity, increased blood pressure, or increased respiratory rate. Lymphatic contractions are thought to be the primary factor in lymphatic flow. Lymph is propelled forward when lymphatic capillaries contract in response to being stretched. The rate of contractions increases as the volume of lymph increases.
Over the past several decades, a great deal has been learned about the endothelium of blood vessels. The previous perceptions of the endothelium, as an inactive structure whose function was no more than acting as a barrier between the blood and the more functional layers of the vessel wall, have been proven incorrect. We now understand that the endothelium is a major participant in vascular tone and growth of vascular smooth muscle. The endothelium tissue plays an active role in the immune and inflammatory processes (see Chapter 9), platelet activity in normal coagulation and thrombus formation (see Chapter 14), and arteriosclerosis, discussed later in this chapter. In a discussion of autoregulation, the key is the endothelial role in modulating vascular smooth muscle to produce vasoconstriction or vasodilation. The endothelium is capable of sensing alterations of a chemical or physical nature within the vessel and responding to these stimuli directly or through the release of signals that initiate change. Almost all of the vasodilation occurs because of the effect of nitric oxide (NO). NO is a gas present in most body tissues and is produced by the cells of the vascular endothelium. As a gas, it diffuses from the endothelium to the smooth muscle cells, binding to intracellular receptors to affect cyto- plasmic Ca++ concentration and produce vasodilation. Deficits of NO, or a decreased responsiveness, have been the focus of considerable recent research into the pathogenesis of hypertension (Chapter 16) and heart disease (Chapter 18). Other relaxing factors produced by the endothelium include prostacyclin and endothelium-derived hyperpolarizing factor. Angiotensin II (AII), endothelin, oxygen-derived free radicals, prostacyclin H2, and thromboxane A2 are among the constricting factors. The role of AII as a constricting factor has been the focus of considerable recent research. Because drugs that block the effects of AII are available and in widespread use, the ability of these drugs to improve peripheral vascular blood flow has been an important finding. In addition to substances produced by the endothelium itself, metabolic by-products (metabolites) or substrates have been found to exert a direct effect, altering blood flow to the area. Metabolites might include carbon dioxide or lactic acid. Histamine and prostaglandins are examples of metabolic substrates. Other substances, such as acetylcholine, bradykinin, histamine, and substance P, exert their effect by increasing the formation of NO or are themselves generated by NO. These various chemicals create a balance of forces in health. They may also be affected by aging, disease, or pharmacologic interventions.
A local increase in blood flow is referred to as hyperemia. The increase in local blood flow in response to increased metabolic demand is called active or functional hyperemia. Reactive hyperemia occurs when a temporary reduction in blood flow is reversed. The body responds by briefly increasing circulation to the area, resulting in the characteristic flushing seen, for instance, when a tourniquet is removed. The tissue pressure hypothesis of autoregulation postulates that an acute increase in the pressure within the arterial system causes an increase in interstitial volume and pressure. This increased tissue pressure, external to the vasculature, results in compression of small vessels, which increases resistance and reduces flow.
Control of Lymphatic Flow The movement of lymph is expedited by lymphatic pumps. This is a general concept that encompasses the pumping action of the lymphatics themselves and the pumping effect on the lymphatic vessels produced by activity external to them. Like veins, lymphatic vessels have valves on their intimal surface that allow forward movement of fluid to join the venous return to the systemic circulation. Compression of lymphatic channels by adjacent skeletal muscles, the smooth muscle of organs, and the pulsatile movement of arteries force lymph forward. Intrathoracic pressure changes related to breathing increase lymphatic return as well as venous return. Lymphatic flow is therefore enhanced by increased
KEY POINTS • The blood flow through a particular vascular bed is regulated centrally by
the autonomic nervous system and locally by the organ or tissue. • In most vascular beds, the sympathetic nervous system (SNS) causes constric-
tion, which increases resistance and reduces flow. Smooth muscle cells in these vascular beds have α1 receptors that bind the SNS neurotransmitter norepinephrine, causing contraction. There is no significant parasympathetic innervation of systemic vessels.
• Autoregulation refers to a tissue’s ability to regulate its own flow. Autoregula- tion allows a tissue to maintain optimal flow despite changes in blood pressure or metabolic demands. In instances of high blood pressure or decreased metabolic demand, the arterioles and precapillary sphincters that control flow to the tissue constrict, reducing flow. In instances of low blood pressure or high demand, vessels dilate, increasing flow.
• Lymphatic vessels maintain flow by contracting when stretched with lymph. Intraluminal valves prevent backflow. External compression by contracting muscles enhances lymph flow.
GENERAL MECHANISMS THAT CAUSE ALTERED FLOW A reduction in flow through the systemic vasculature results in the impaired ability to transport gases and nutrients to and from body tissues. Cells of the body vary in their oxygen demands. Hypoxia, an insufficient supply of oxygen, can occur for many reasons, such as a decrease in hemoglobin formation (see Chapter 13) or diminished oxygen transport in the lungs (see Chapter 21). When hypoxia is a result of a decrease in flow through the arterial system, it is called ischemia. Impairment in flow through the venous system interferes with the removal of metabolic waste products and causes fluid pressure to accumulate in the system, a condition known as venous engorgement or venous obstruction. When the lymphatic circulation is altered, the resulting fluid and pressure changes may be visible locally or systemically.
Blood Vessels: Obstructions Pathologic processes affecting blood flow may involve impedance of the arterial or venous system. Some obstructions to flow are specific to either the arterial or the venous portion of the system, but most can occur in some form in both. Obstructions to flow that may interfere with arterial or venous flow are presented in detail in the following discussion. Those that are specifically related to one or the other are detailed more fully later in the chapter.
Thrombus A thrombus is a stationary blood clot formed within a vessel or a chamber of the heart. Thrombosis is initiated by a change in the blood vessel resulting in localized stasis of flow. Inflammation of blood vessels may be the stimulus for thrombosis in either arteries or veins.
Etiology. Thrombosis refers to the pathologic formation of clots at these sites, to differentiate it from the clotting process that takes place as a homeostatic mechanism. Thrombi (blood clots) are composed of aggregated platelets, clotting factors, and fibrin that adhere to vessel
324 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
Clinical manifestations and treatment. Arterial thrombosis is usually manifested by intermittent claudication (pain with activity) in the affected limb that improves with rest. The limb might also be cool to the touch and cyanotic. A late sign is a painful arterial ulcer found usually around one toe.
Symptoms for venous thrombosis may be absent or may be life threatening secondary to pulmonary embolism (PE). Other signs include calf or groin tenderness and swelling of the affected limb with associated increased skin temperature. Pain in the calf with dorsiflexion of the foot (Homan sign) appears in 10% of those with thrombophlebitis.
Interventions in the management of thrombus formation may be medical or surgical. Ideally, thrombosis is prevented in high-risk individu- als through pharmacologic and other medical interventions. The prophylactic (preventive) interventions may include oral or parenteral anticoagulant therapy, or drugs to block platelet activation and/or aggregation. Risk factors must be addressed. Once a thrombus has formed, anticoagulant therapy at a therapeutic level is initiated to prevent the enlargement of the thrombus and formation of further thrombi. However, these drugs are not effective in dissolving an existing clot. These clots must be removed by the body’s own fibrinolytic process, surgically removed, or dissolved by intravenous thrombolytic agents. Anticoagulant therapy is currently used for patients with thrombi in coronary and pulmonary arteries, peripheral arteries in the legs, and cerebral arteries. Their use must be closely supervised; patients receiving thrombolytic therapy are usually in critical care settings. Additional medical prophylactic interventions may include the use of antiembolic stockings or sequential compression devices for immobilized patients and initiation of ambulation as soon as possible. Surgical interventions, such as removal of the thrombus, may be an option.
Because thrombi partially or completely occlude flow through the involved vessel, they can produce ischemia distal to that point in an artery or congestion proximally in a vein. A thrombus that only partially occludes a vessel continues to be affected by the force of blood flow. Eventually, it may break free from the vessel wall and become an embolus.
Embolus An embolus is a collection of material that forms a clot within the bloodstream. This traveling clot is propelled forward in the circulatory system by blood flow to a distant point, where it lodges to produce a new site of obstruction.
Etiology and pathogenesis. An embolus is most often a blood clot, a thromboembolus, having begun as a thrombus that was subsequently dislodged from the vessel intima or from the valvular leaflets in the heart, or having formed within a chamber of the heart. Thromboemboli from the left side of the heart exit the aorta and most commonly lodge in a cerebral artery, resulting in a stroke (see Chapter 44). But most thromboemboli originate in the deep veins of the pelvis and lower extremities. They traverse the venous circulation and return to the right side of the heart, eventually lodging in the arterial side of the pulmonary vasculature and resulting in a PE (see Chapter 21). A thromboembolus from the right side of the heart will also result in a PE. Thromboemboli from the venous circulation are the most common cause of pulmonary emboli, but the cause may be nonthrombotic, as is the case for tumor, fat, air, amniotic fluid, or bacterial emboli; these are less frequent and are further examined later in this discussion.
Clinical manifestations. An embolism exiting the left ventricle may lodge in the cerebral vasculature, leading to an ischemic stroke. Manifesta- tions differ depending on the area of the brain affected. Symptoms include loss of cognitive function, motor changes, and different levels of sensory loss (see Chapter 44). More often, an embolism leaving the right ventricle lodges in the pulmonary vasculature. This PE may be asymptomatic or present with various signs and symptoms, many of
walls. Thrombi may form in the chambers of the heart in association with certain abnormal heart rhythms (see Chapter 19), following a myocardial infarction, or as a result of damage to heart valves or replacement of heart valves with artificial ones (see Chapter 18). More commonly, thrombi develop in either the arterial or the venous peripheral circulatory systems. Activation of the coagulation cascade within the vessel produces a hypercoagulable state resulting in thrombosis (see Chapter 14). Certain drugs, such as oral contraceptives, increase the tendency to form thrombi as well. Thrombosis is also more likely to occur when blood flow slows dramatically or becomes more turbulent, or if there is damage to intimal walls, creating a roughened surface.
Pathogenesis Arterial. The significance of thrombosis rests in the ability of a clot
within a blood vessel to reduce flow and increase turbulence, which enhances thrombus enlargement and the formation of more thrombi. The results of reduced blood flow vary depending on whether the arterial or venous system is involved. If the thrombus forms in the arterial system, decreased distal flow can result in ischemia. This is significant in several pathologic conditions, such as acute arterial occlusion (discussed in this chapter). Other examples of arterial thrombosis are explored elsewhere in this text (e.g., myocardial infarction, Chapter 18; stroke, Chapter 44).
Venous. In the venous system, thrombosis alters venous return, impairing removal of metabolic wastes and producing swelling (edema). When inflammation occurs in a vein (phlebitis) and is accompanied by the formation of a thrombus, it is called thrombophlebitis. The most common cause of thrombophlebitis is the inflammation produced by the presence of a needle or catheter used for intravenous therapy. Thrombosis may also be initiated by a generalized reduction in flow and the accompanying release of vasoactive substances that occur in shock states (see Chapter 20). Systemic derangement in coagulation takes place in disseminated intravascular coagulation, resulting in thrombosis in the microcirculation throughout the body (see Chapter 14). Risk factors associated with both arterial and venous thrombosis are listed in Box 15.1.
General (Arterial and Venous) Hypercoagulable conditions • Polycythemia • Dehydration • Platelet aggregation Pump failure • Heart failure • Shock Dysrhythmias Aging Trauma, including surgery Drugs • Anesthetic agents • Oral contraceptives • Tobacco
Arterial Arteriosclerosis/atherosclerosis
Venous Immobilization/sedentary lifestyle
BOX 15.1 Risk Factors Commonly Associated With Thrombosis
CHAPTER 15 Alterations in Blood Flow 325
may be visible as reddened, tender streaks on the skin. Of more sig- nificance is their potential to serve as foci for the thrombotic process.
Arteritis (angiitis) is a specific term that identifies an inflammatory process of autoimmune origin in arteries. The initiating stimulus is frequently an infectious process that is viral or bacterial (especially streptococcal), or an adverse response to drugs such as sulfonamides or phenothiazines.
Mechanical Compression A variety of forces external to the vascular system may result in partial or complete obstruction of blood flow. Trauma may produce direct pressure on a blood vessel, resulting in occlusion. This same effect may result from constriction from casts or tight dressings. Swelling secondary to bleeding or edema within a fascial compartment created by fascial tissue surrounding groups of muscle, or external compression of the compartment by a tight cast, eventually compromises the circulation distally, producing compartment syndrome (see Chapter 51). Prolonged occlusion produces neurovascular alterations that can be assessed before the ischemia is irreversible. These alterations are identical to those of acute arterial occlusion, discussed later in this chapter. In an untreated patient, compartment syndrome can result in prolonged hypoxia, ischemia, and necrosis of tissues.
Blood Vessels: Structural Alterations An assortment of conditions affecting blood vessel structure will produce alterations in blood flow. The structure of arteries or veins may be changed secondary to congenital anomalies or pathologic processes triggered later in life.
Types of Structural Alterations Valvular incompetence. The intimal folds of veins that form the
valves can be damaged, interfering with the effective flow of blood through a portion of the venous system (valvular incompetence). The subsequent pathologic processes may affect superficial veins (varicose veins) or deep veins (chronic venous insufficiency), resulting in severe tissue hypoxia and venous stasis ulcers.
Arteriosclerosis/atherosclerosis. Arteriosclerosis is a general term for the thickening and hardening of arteries. Atherosclerosis is a type of arteriosclerosis. Atherosclerosis, or hardening of the arteries, is a condition in which plaque builds up inside the arteries. Plaque is made of cholesterol, fatty substances, cellular waste products, calcium, and fibrin (a clotting material in the blood). Atherosclerotic changes are responsible for or contribute to many diseases throughout the body such as hypertension, renal failure, coronary artery disease (CAD), and cerebrovascular disease.
Aneurysms. An aneurysm is a localized dilation of an arterial wall. Aneurysms vary in the severity of their consequences, depending on their size, type, and location. All aneurysms produce an alteration in flow attributable to the changes in vessel diameter. More significant, however, is the fact that the aneurysm represents a weakened area in the artery that may eventually rupture.
Arteriovenous fistulas. An arteriovenous fistula (AVF) is an abnormal communication between arteries and veins. It is usually congenital in origin but may result from traumatic injury. Symptoms depend on the size and location of the fistula. Because AVFs provide a shortcut between the two vascular systems, they can result in alterations in oxygenation to the involved tissues and systemic hemodynamic changes. One of the most common and serious types of AVFs is an arteriovenous malforma- tion (AVM). An AVM is a tangled knot of arteries and veins found most commonly within the brain vasculature. AVMs may be the underlying cause of such conditions as headaches, hemorrhagic stroke, dementia, or seizures (see Chapters 44 and 45).
which are vague and nonspecific. Most common is the sudden onset of shortness of breath (dyspnea), increased respiratory rate, and chest pain. It may be a cause of sudden death.
Treatment. Embolectomy, the surgical removal of an embolus, is usually confined to thromboemboli. The use of this surgical technique is contingent on the location of the embolus. In patients who experience repeated emboli, usually originating from the peripheral venous system, a filter (e.g., Greenfield filter) may be surgically implanted in the inferior vena cava. As the blood passes through the filter, emboli are trapped and cannot progress into the pulmonary circulation. The body’s own thrombolytic enzyme, plasmin, then destroys the trapped emboli.
Emboli produced by other causes. Various other materials, some totally foreign to the bloodstream, can also form emboli if present in sufficient quantity. Fat emboli are aggregates of fat molecules released into the blood after trauma or surgery involving bone. Most frequently the long bones of the legs are the source of these emboli. Increased pressure generated within the traumatized bone by the inflammatory response forces molecules of fat from the interior of the bone into the bloodstream. Malignant neoplasms can metastasize by various means, one of which is via the blood as tumor emboli. Collections of bacteria and infectious exudate may break free from a source within the circula- tion, such as the leaflets of the valves of the heart in bacterial endocarditis. Once in the bloodstream, the bacterial emboli continue to travel, eventually occluding circulation and becoming a new site of infection. Air from the external environment is a foreign material when found in the bloodstream as air emboli. Bubbles of air, having most likely entered the blood through an intravenous catheter, come to rest in small blood vessels and obstruct perfusion. It is difficult to identify the specific volume of air that can sufficiently obstruct flow to result in deleterious effects in humans. In animal studies, the quantity of air needed to produce death varies, partially affected by the speed with which it is injected. Under some circumstances, a 5-mL injection of air will result in death of animal models. At other times, a 100-mL bolus of air will not produce adverse effects.
Increased pressure in the abdomen generated during labor and delivery may force amniotic fluid into the bloodstream as emboli. Here the emboli cause a different set of problems. Amniotic fluid cannot perform the functions of the blood in carrying gases and nutrients, but as a fluid, it does not produce obstruction to flow. Instead, the proteins and cells in amniotic fluid act as antigens, initiating an immune response. There are no clinical signs or symptoms that are specific for PE. This nonspecific presentation is magnified during pregnancy due to an overlap between symptoms seen in patients with PE and those associated with the normal physiologic changes of pregnancy (e.g., dyspnea occurs in up to 70% of normal pregnancies).
Vasospasm Vasospasm is a sudden constriction of arterial smooth muscle that results in an obstruction to flow. In some cases, vasospasm is sufficient to produce hypoxia distally, as in variant (Prinzmetal) angina (see Chapter 18) or vasospasm of cerebral vessels after a hemorrhagic stroke (see Chapter 44). Frequently, the cause of vasospasm is unknown. Certain individuals may be unusually sensitive to hormonal changes or food additives, which may result in vasospasm of cerebral arteries. The vasodilation after cerebral vasospasm is thought to contribute to migraine headaches. Vasospasm may also be mediated by environmental factors, such as exposure to cold or emotional stress, producing a localized response.
Inflammation Vasculitis is inflammation of the intima of an artery. Inflammation of the lining of a vein is called phlebitis. If superficial, these inflammations
326 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
and gastrointestinal tract, are also affected. When atherosclerosis involves the peripheral vascular system, it is most often the lower extremities, and the disease process may be called atherosclerosis obliterans. Box 15.2 lists the manifestations of this arterial peripheral vascular disease. Peripheral arterial disease (PAD) is a sign of systemic atherosclerosis. It affects 10% to 15% of the general population, and approximately 50% of PAD patients are asymptomatic, leading to underdiagnosis and undertreatment of the disease. Symptomatic PAD patients have a worse prognosis than patients presenting with CAD or cerebrovascular disease; unfortunately, their atherosclerosis risk factors may be less intensively treated. Both asymptomatic and symptomatic PAD patients have a high risk of death from cardiovascular disease (CVD); therefore early treatment reduces mortality. Patients with chronic peripheral arterial occlusion may complain of pain with activity (intermittent claudication; Fig. 15.17) and also have pain at rest with advanced disease. Peripheral pulses are diminished. Ulceration may occur (Fig. 15.18). Research
Lymphatic Vessels The lymphatic collection system may be overwhelmed when changes in capillary or interstitial oncotic pressures increase filtration into tissues. The result is edema, the collection of an excessive amount of fluid in the interstitial spaces. A wide variety of conditions can result in edema.
When lymphatic flow is altered because of impairment in the circula- tion of lymph itself, the condition is called lymphedema. The result is also an excessive quantity of fluid in the interstitium, but the underlying cause is an obstruction to flow.
KEY POINTS • Altered blood flow results from obstructive processes. Obstruction results
in reduced flow beyond the obstruction (downstream) and increased pressure before the obstruction (upstream).
• In the arterial system, obstruction manifests primarily as distal ischemia. In the venous system, obstruction manifests as edema.
• The causes of vessel obstruction include thrombi, emboli, vasospasm, external compression (e.g., compartment syndrome), and structural alterations (e.g., atherosclerotic plaques, aneurysms).
• Alterations in pressures within the circulatory system or interstitium produce edema, whereas an impairment of the lymphatic system results in lymphedema.
FIG 15.16 Acute coronary thrombosis superimposed on an atherosclerotic plaque with focal disruption of the fibrous cap, triggering a fatal myocardial infarction. An arrow points to the site of plaque rupture. (Reproduced from Schoen FJ: Interventional and surgical cardiovascular pathology: clinical correlations and basic principles, Philadelphia, 1989, Saunders, p 61.)
Skin Assessment • Cool or cold to touch • Decreased or absent hair growth • Dry, thin, glossy appearance • Thickened nails • Pallor when elevated, rubor when dependent • Diminished or absent pulses
Pain Assessment • Sharp and stabbing • Intensified with activity • Relieved by rest or dependency
Ulcer Assessment • Severely painful • Pale, gray base • Well-defined edges • Located on heels, lateral malleolus, between distal portions of phalanges,
pretibial area
BOX 15.2 Clinical Manifestations of Arterial Peripheral Vascular Disease
ALTERATIONS IN ARTERIAL FLOW Alterations in arterial flow result from obstruction (arteriosclerosis/ atherosclerosis, inflammation, vasospasm, thrombi, emboli, and acute occlusion) or mechanical alterations (AVFs and aneurysms).
Arteriosclerosis/Atherosclerosis Etiology and Pathogenesis Arteriosclerosis is a generic term meaning “hardening of the arteries” and broadly includes three pathologic processes: Mönckeberg sclerosis (medial calcific sclerosis), arteriolar sclerosis, and atherosclerosis. Mönckeberg sclerosis is a noninflammatory, degenerative disorder in which the media of small- and medium-size arteries becomes calcified. The disease is a risk factor for cardiovascular disease, but the pathology is independent of atherosclerosis. The intimal layer is not a part of the pathogenesis; although the vessel becomes increasingly thickened and rigid, it remains patent because of the changes in the medial layer. Arteriolar sclerosis is characterized by thickening and luminal narrowing of the small arteries that occurs in association with hypertension. However, because hypertension is primarily associated with atheroscle- rotic changes, this particular pathology is rarely addressed. Atherosclerosis, the most common arteriosclerotic process, affects intermediate-size and large arteries. Smooth muscle cells and lipids collect along the intimal surface, producing a narrowing of the luminal diameter and a reduction in flow. A clot may form and obstruct the lumen (Fig. 15.16).
Atherosclerosis is the dominant type of arteriosclerosis. The word is derived from two Greek words: athero (gruel or paste) and sclerosis (hardness). It is the pathologic origin for the vast majority of arterial disease that is ultimately the leading cause of death in the United States and western Europe, and is increasing in developing countries. Atherosclerosis tends to develop in large- and medium-size arteries, most frequently the coronary, cerebral, carotid, and femoral arteries and the aorta. Most of the mortality associated with atherosclerosis is the result of occlusion of coronary arteries (CAD), producing myocardial ischemia and infarc- tion. The remainder of atherosclerosis-related deaths is secondary to thrombotic or hemorrhagic processes, primarily in the brain (stroke) and extremities, although other organ systems, including the kidneys, liver,
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understanding of many of the significant aspects of its pathogenesis has evolved. These are summarized in Fig. 15.19. The process is initiated by damage to the endothelial surface of the arterial intima, initiating an inflammatory response and an increase in the vessel wall permeability. Many of the risk factors for atherosclerosis discussed later may be initia- tors of this vessel injury. The increased permeability of the vessel wall allows low-density serum lipoproteins to breach the intimal layer. Leukocytes also are drawn to the site, and along with the endothelial cells, they oxidize the lipids, producing further damage to the vessel wall. Simultaneously, platelets aggregate at the site of injury. They are activated, releasing platelet-derived growth factor, which stimulates growth of smooth muscle cells. Media smooth muscle cells, normally confined to the other tunicae, are drawn to the intima where they proliferate. The result is an atherosclerotic plaque, primarily composed of smooth muscle cells, lipoproteins, and inflammatory debris. While the plaques slowly enlarge, the orifice of the artery is decreased, and perfusion is diminished. In CAD, the plaque may also acutely rupture, initiating thrombus formation and acute loss of perfusion (see Chapter 18).
Risk Factors Risk factors for the development of atherosclerosis are categorized as modifiable or nonmodifiable, according to the degree to which they can be altered (Box 15.3). Historically, health care has focused on prevent- ing atherosclerosis by the manipulation of predisposing modifiable factors. It often is difficult to isolate the effect of a single risk factor because they usually occur in combination.
The most frequently cited prospective research into atherosclerotic risk factors began in 1948 in Framingham, Massachusetts. Initially, 5209 men and women between the ages of 30 and 59 volunteered to be subjects in the study, the purpose of which was to identify factors associated with the development of atherosclerosis over time. The Framingham Study remains ongoing, with researchers now studying the children and grandchildren of the original participants. Much of the available information regarding atherosclerotic risk factors has its origins in the results of this research.
Modifiable risk factors. Fortunately, there are far more modifiable risk factors than nonmodifiable ones, and the changes individuals make have documented effects in risk reduction for CVD. Unfortunately, lifestyle changes are often difficult to make and to maintain.
Tobacco use in any form is atherogenic, but most of the research addresses cigarette smoking. Cigarette smoke contains more than 4000
results from the classic Framingham Study identified the development of lower extremity arterial disease in 5% of the subjects over the first 24-year data collection interval.
Because of the breadth of diseases known to be associated with atherosclerosis, a great deal of research has been accomplished and an
Buildup of metabolic wastes
Irritation of peripheral nerve endings
Anaerobic metabolism
Rest
Pain
Aerobic metabolism
Decreased tissue demand for O2
Decreased metabolic
wastes (Relief)
Increased tissue demand for O2
Decreased tissue supply of O2
Activity Obstruction
FIG 15.17 Pathophysiologic process of intermittent claudication and its relief.
FIG 15.18 Arterial ulcer. (From Mann DL et al: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Saunders, p 1316.)
Modifiable Risk Factors • Smoking • Elevated blood pressure • Glucose intolerance • Elevated cholesterol and low-density lipoproteins • Decreased physical activity • Obesity • Weight fluctuations • Ineffective stress management
Nonmodifiable Risk Factors • Age • Gender • Ethnicity • Heredity
BOX 15.3 Risk Factors Associated With Atherosclerosis
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and increases the production and release of endothelin. The result is dysfunction of the endothelium, increased tendency to form thromboses, and accelerated atherosclerosis. Nicotine also elevates levels of low-density lipoprotein (LDL) cholesterol and triglycerides, and decreases levels of high-density lipoproteins (HDLs). It produces vasospasm and increased platelet aggregation, which can decrease myocardial oxygen supply.
elements; nicotine and carbon monoxide are the two with the most documented damage to blood vessels. Exposure to both active and passive smoke has been found to cause injury, although the precise mechanisms have not yet been elucidated. What is known is that cigarette smoking produces injury to the endothelium, generates superoxide anions, decreases both the production and the bioavailability of NO,
Damaged endothelium
Fatty streak
Fibrous plaque
Complicated lesion Collagen
Lipids
Lipids
Thrombus
Calcium
Collagen (Fibrous tissue)
Proliferation of smooth muscle
Fibroblast
Fibroblast
Migration of smooth muscle into the intima
Atherophil filled with
lipid
Foamy macrophages
Platelets attach to endothelium
Endothelium
Tunica intima
Tunica media
Adventitia
Monocytes Macrophages
Lipids
Platelets
Cholesterol
A
B
C
D FIG 15.19 Pathogenesis of atherosclerosis. A, In response to trauma or irritation to the intima, injury stimulates platelet aggregation and the inflammatory response. B, Medial smooth muscle proliferates and migrates into the intima; LDL cholesterol leaks into the vessel wall. C, A fibrous cap forms over the plaque; the lesion slowly grows to decrease vessel diameter. D, Additional injury may cause rupture of the plaque, resulting in thrombus formation and manifestations of acute occlusion. (From Monahan FD et al: Phipps’ medical-surgical nursing: health and illness perspectives, ed 8, Philadelphia, 2007, Mosby, p 750.)
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basement membrane with elevated blood glucose levels. The incidence of atherosclerotic diseases is much higher among those with diabetes mellitus than in the general population. It does not appear to be related to the degree of hyperglycemia, yet glycemic control has been found to decrease the incidence of acute myocardial infarction.
Obesity, defined as a body weight 30% or greater than ideal, is thought to be a contributing risk factor for atherosclerosis in that it may accelerate the process. Abdominally distributed obesity is a greater risk than an increase in body mass index. A desirable waist circumference for men is less than 40 inches, and less than 35 inches for women. Weight gain is associated with increasing serum cholesterol and LDL levels, increasing systolic blood pressure, glucose intolerance, and a sedentary lifestyle.
Physical activity has been found to increase HDL levels, collateral circulation, and vessel size and to decrease total cholesterol levels, glucose intolerance, body weight, and blood pressure. Clearly, all these findings can retard the development and mitigate the severity of atherosclerosis. Research likewise substantiates physical inactivity as a risk factor for CVD.
Stress and mental health have historically received considerable attention as risk factors for atherosclerosis, and this continues to be the case. It is extremely difficult to isolate these factors and examine them quantitatively and qualitatively. Stress results in the release of endogenous catecholamines that contribute to the increased work of the cardiovascular system. Subjectively, the rushed, stressed person is less inclined to exercise and eat wisely and more inclined to smoke and be hypertensive. Recently depression has been identified as a cardiovascular risk factor. Both stress and depression also may contribute to a delay in seeking treatment.
The importance of managing modifiable risk factors in the reduction of cardiovascular risk cannot be overstated. Recent research continues to substantiate the interrelationship of these risk factors. Many factors interact; for example, exercise can reduce the perception of stress. Stress management is related both to decreased measurements for body weight, total cholesterol and triglycerides, and hemoglobin A1C (an indicator of diabetic glycemic control) and to increased measurements of HDL. Clearly, not only is the reduction of a single risk factor meaningful, but also there is an interactive, additive effect among risk factors.
Nonmodifiable risk factors. Certain risk factors are not modifiable and cannot be manipulated for prevention or to decrease the severity of atherosclerosis and CVD. Age, gender, ethnicity, and genetics are interrelated, and their impact as risk factors can be modulated by lifestyle changes.
With aging, changes occur in the arterial walls (see the “Geriatric Considerations” box) that predispose to the development of athero- sclerosis. Men have a higher incidence of atherosclerosis earlier in life than women, but after menopause, the incidence and prevalence of CVD equalize. Postmenopausal status is often seen as an independent risk factor for CVD, generating increased attention in research regarding the potential cardioprotective role of estrogen. At this time, studies indicate postmenopausal women taking either estrogen alone or in combination with progesterone have an increased risk of thrombotic events (myocardial infarction, deep vein thrombosis, ischemic stroke) and of breast cancer. Consequently, such interventions are not recom- mended for cardiovascular risk reduction.
A strong family history of CAD is an important predictor of its occurrence and subsequent prognosis. The specific mechanism is uncertain, but most likely it is a combination of genetic and environ- mental factors. Certain of the modifiable risk factors are also known to have a genetic component.
Studies of ethnicity as a nonmodifiable risk factor associated with atherosclerosis have predominantly focused on the increased incidence of CAD and hypertension among black Americans compared with white Americans. Degree of risk differs among Caucasians, African Americans,
Endogenous catecholamines are released with smoking, increasing blood pressure and heart rate, which produce an increase in myocardial oxygen demand. Specifically, smoking increases the risk of coronary heart disease to two to four times that of normal. Even smoking only a few cigarettes per day is correlated with an increased risk. This risk is even greater if the individual has hypertension, hypercholesterolemia, glucose intoler- ance, or diabetes because these conditions have a synergistic effect with smoking. Death rates after a myocardial infarction are higher among smokers. Cessation of smoking results in a 50% risk reduction from coronary heart disease within the first year, and a risk equal to that in nonsmokers after 10 years.
Hypertension is both a risk factor for the development of athero- sclerosis and an outcome of it. Increases in both systolic and diastolic blood pressure are associated with an increased incidence of athero- sclerosis. Diastolic blood pressure elevations are probably more significant because they represent the status of the cardiovascular system when it is at rest. Control of hypertension reduces the injury it produces to the vessel walls and, at a minimum, decreases the rate of atherosclerotic formations. Hypertension is often found in the presence of other risk factors. (See Chapter 16 for a discussion of hypertension.)
Cholesterol, the lipoproteins, and triglycerides are important in the discussion of atherosclerosis. Cholesterol is a necessary component of cellular membranes and is used in the manufacture of steroids within the body. Approximately 40% to 50% of the body’s cholesterol is absorbed; the remainder is synthesized by the liver utilizing dietary saturated fats. Cholesterol, like other fats in the bloodstream, is highly insoluble and is transported to and from the body’s cells within lipo- protein shells. Although there are several forms of lipoproteins, LDL and HDL are most important in the discussion of atherosclerosis. Receptors on the surface of the LDL molecule bind with receptors on cell membranes, allowing the molecule to be absorbed into the cell. These receptors abound in the muscle cells of arteries. The protein coat is dissolved, and the cholesterol is then used to meet the body’s cellular needs. The excess cholesterol that is not removed is stored and acts as a cellular irritant, participating in endothelial injury and plaque forma- tion. Since the early 1990s, evidence of the cardiovascular benefit of controlling serum lipid levels has been mounting. The precise mechanism is unclear, but the correlation between high serum levels of LDL and cholesterol is clearly significant in the development of atherosclerosis. HDL seems to serve as a protective mechanism in the formation of atherosclerosis. It is postulated that HDL can remove cholesterol from formations in the arterial walls and transport it back to the liver. Consequently, serum lipid profiles are closely supervised. An acceptable total cholesterol level for an adult who has no coronary disease is less than 200 mg/dL. Levels of LDL are felt to be detrimental if greater than 160 mg/dL. In those with known coronary disease, an LDL value of less than 100 mg/dL is thought to be beneficial. Protective levels of HDL are those greater than 45 mg/dL for men and greater than 55 mg/ dL for women. A major intervention related to atherosclerosis is encouraging the consumption of a moderate-fat diet, with those fats being primarily polyunsaturated (from vegetable sources as opposed to animal). Additionally, exercise and weight control are effective in improving lipid profiles. Pharmacologic management of elevated levels of serum lipids may be recommended.
Glucose intolerance/metabolic syndrome and diabetes mellitus have been found to be associated with elevations in LDL levels and reduced levels of HDL, hypertension, and atherosclerosis. Glucose intolerance is often a precursor of diabetes mellitus, a disease in which an absolute lack of or a significantly decreased response to insulin produces a derangement in metabolism (see Chapter 41). Atherosclerosis is highly correlated with glucose intolerance, probably because of the alterations in carbohydrate and fat metabolism and the direct damage to vessel
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Although both arteries and veins are involved, the signs and symptoms relate to obstruction of arterial flow (see Box 15.2). The rarity of this disease affects the availability of research funding; therefore progress in understanding the pathogenesis is limited. What is known is that this vasculitis is strongly associated with smoking and that smoking cessation is essential to effective treatment. New approaches to angiogenesis have resulted in the development of significant collateral circulation and marked clinical improvement. If patients do not abstain from smoking, the disease is progressive, and amputation may be necessary.
Raynaud Syndrome An extreme vasoconstriction producing cessation of flow to the fingers and toes produces the characteristic signs and symptoms of Raynaud syndrome. Sometimes earlobes or the tip of the nose are also affected. Attacks are recurrent, usually beginning in adolescence. They are most often initiated by cold or emotional distress. The phenomenon is clas- sically characterized by a series of color changes in the involved area, starting with white, corresponding to the vasoconstriction. The affected area then becomes cyanotic, with the desaturation of blood remaining in the area. Finally, the tissue flushes red (reactive hyperemia) with the resumption of perfusion. The attack also commonly affects local nerve function, causing pain and/or numbness.
Raynaud syndrome is more prevalent among women, presenting between puberty and menopause, and there appears to be a genetic predisposition. Women have an increase in sympathetic tone of the vessels of the skin, causing young women to have basal cutaneous flows that are half those of young men. Knowledge regarding the complex regulation of local perfusion has expanded over the years since the condition was identified by Maurice Raynaud in 1862. The pathogenesis is an interplay of intrinsic structural factors (e.g., inflammatory activation and damage), extrinsic neuroregulation, locally produced mediators, and soluble mediators (including estrogen).
Various treatment modalities have been used with differing degrees of success. Because the precise cause of Raynaud syndrome is unknown, interventions have been directed to enhancing the circula- tion. Biofeedback and relaxation techniques may be beneficial. The most widely used drugs are calcium channel blockers, which produce vasodilation by interfering with calcium influx into vascular smooth muscle cells. Sympatholytic drugs have been studied and found to be more effective than placebos. Prostaglandin therapy has proved helpful. Persons with the syndrome are urged to protect themselves from cold temperatures, vibration, and nicotine and to use stress reduction interventions.
Aneurysms As described previously, aneurysms are localized arterial dilations. The arterial wall deteriorates until it is weakened sufficiently to bulge outward. The underlying cause may be atherosclerotic changes in the vessel; a congenital weakness; or a weakening induced by infection, inflammation, or traumatic injury. Aneurysms are most frequently found in the cerebral circulation (circle of Willis or posterior circulation) and in the thoracic and abdominal aorta. Estimates are that between 10 and 15 million individuals are treated for cerebral aneurysms annually, with rupture occurring in 30,000. Mortality and morbidity associated with ruptured cerebral aneurysms are high, so early diagnosis and treatment are most desirable.
Classifications Aneurysms are classified as true or false, depending on the layers of the arterial wall involved (Fig. 15.20). In true aneurysms, all three tunicae are involved (intima, media, and adventitia), whereas in false aneurysms, at least one tunica is left unaffected. In a false aneurysm, the muscle
Hispanics, and Asians. Prevalence of smoking, diabetes, and hypertension is greater for African Americans and Hispanics, whereas Caucasians are more likely to have abnormal serum lipid levels. After correction for age, gender, risk factors, and pharmacologic treatment of hyperlip- idemia, one study reported the least amount of coronary artery calcifica- tion to be among Asian men and women. Historically, American Indians have had very low rates of CVD. However, it is now the leading cause of death in this population, with the majority of CVD cases in those with diabetes, which has a high incidence in this population. These disparities highlight the overlap of genetic and environmental factors and illustrate how ethnicity, as an isolated independent variable, is very difficult to evaluate.
Clinical Manifestations and Diagnosis Disease manifestations vary with the tissues involved and the severity of altered flow. Atherosclerosis is an underlying pathologic condition for much of the hypertension, renal disease, cardiac disease, PAD, and stroke seen in health care practice.
Approaches to diagnosis and treatment of decreased organ or tissue function vary. Patient history and physical assessment provide significant information. Noninvasive tests such as Doppler flow studies may identify areas of occlusion or diminished flow. Plethysmography may be used to measure changes in the relative size of extremities associated with blood flow. Ankle pressures are obtained with a blood pressure cuff and Doppler ultrasonography and compared with brachial blood pres- sures in the ankle–brachial (A/B) index. A normal A/B index is greater than or equal to 1.0; an index less than 1.0 is indicative of diminished arterial flow in the lower extremities. Exercise or stress testing may be performed to evaluate the pain of arterial occlusive disease (IC). Angiography—the radiologic study of blood flow—is a frequently used diagnostic examination. (See Chapter 18 for a discussion of CAD, Chapter 16 for a discussion of hypertension, Chapter 28 for a discussion of renal failure, and Chapter 44 for a discussion of stroke.)
Treatment Identification of and interventions directed toward modifiable risk factors are the major thrusts of treatment, regardless of the organs or tissues affected. Nonpharmacologic interventions, such as reduction of body weight, cessation of smoking, implementation of an exercise program, and consumption of a moderate-fat diet, are the first-line actions. Drug therapy to decrease hypercholesterolemia is considered when the nonpharmacologic approaches are found to be ineffective or inadequate, or the presence of additional risk factors indicates that the patient would benefit from such interventions.
A wide variety of additional interventions may be undertaken, depending on the specific disorder and organ involved. Balloon angio- plasty, the surgical radiologic fragmentation of atherosclerotic plaques by inflation of a specially equipped catheter, is commonly performed on both coronary and peripheral arteries. Laser angioplasty has been combined with balloon angioplasty to create an opening in significantly obstructed peripheral vessels before the balloon is inflated. Balloon angioplasty with stent placement also is used. When balloon angioplasty of the coronary arteries is unacceptable or fails to result in satisfactory improvement, coronary artery bypass graft surgery may be performed. Peripheral arterial bypass grafts are common interventions for the lower extremities and are named for their sites of origin and termination (e.g., aortofemoral, femoropopliteal).
Thromboangiitis Obliterans (Buerger Disease) Thromboangiitis obliterans (Buerger disease) is a rare inflammatory condi- tion affecting both small- and medium-size arteries and veins of the upper and lower extremities, producing varying degrees of obstruction.
CHAPTER 15 Alterations in Blood Flow 331
Diagnostic tests are somewhat dependent on location. Computed tomography (CT) and transesophageal echocardiography (TEE) are common diagnostic modalities for aortic aneurysms. TEE has proven to be reliable and is immediately available in an emergency setting. For cerebral aneurysms, CT, magnetic resonance imaging (MRI), and cerebral angiography are used.
Treatment Dissecting aortic aneurysms are emergency situations and may be managed medically, surgically, or both. Medical intervention is directed at lowering the blood pressure to decrease the speed and severity of the dissection. Vasodilators are often administered parenterally. Surgical intervention involves resection (removal) of the aneurysm and insertion of a prosthetic graft. This procedure may require an open approach, but as with many surgeries, it may be done with a series of smaller incisions in an endovascular approach. If the aneurysm is extremely large, it may be inoperable.
A variety of interventions are used for cerebral aneurysms; these are briefly addressed in Chapter 44.
Acute Arterial Occlusion Acute arterial occlusion is an emergency because it may result in such profound ischemia that the involved limb becomes gangrenous and sepsis may result. Acute arterial occlusion may be caused by a thrombus or embolus lodging in a major artery, or by external mechanical compres- sion producing compartment syndrome. The result is an effective absence of arterial circulation to the extremity. Although it is usually attributable to a thrombus or an embolus, it may occur with vasospastic disease or trauma, as a complication of vascular surgery, or from swelling within a cast or tight dressing.
The classic signs and symptoms of acute arterial occlusion are known as the six Ps. Pallor occurs in the involved extremity. The patient may complain of paresthesia, and some degree of paralysis may be noted, due to the lack of oxygen to nerve cells. Pain is intense, continuous, and unrelated to activity. The skin is cold to touch (polar) and may be pulseless by palpation, although often a weak pulse may be noted by Doppler.
Perfusion must be restored or necrosis will develop because of ischemia to the extremity. The specific interventions vary with the etiol- ogy. Dressings may be loosened or casts cut if the cause is mechanical compression. If the cause is thrombotic or embolic, anticoagulant therapy may prevent enlargement and the formation of further thrombi. Bypass surgery or revascularization through thrombolytic therapy is usually attempted. Surgical removal of an embolism (embolectomy) may be necessary. If these approaches are not successful or ischemia is prolonged, amputation may be required.
tissue and fascia often confine the leaking blood, which enhances thrombus formation. False aneurysms are most often caused by trauma rather than vessel disease. True aneurysms are further divided by their shape and their size. In saccular aneurysms, the weakening is confined to one side of the vessel, producing a lateral ballooning. Fusiform aneurysms represent weakening on both sides of the vessel wall—a central ballooning. A berry aneurysm is the most common cerebral aneurysm; it is shaped like a berry, with a neck or stem.
All aneurysms can affect blood flow. Cerebral aneurysms are addressed in detail in Chapter 44. Of significant clinical concern is the dissecting aortic aneurysm (see Fig. 15.20). Here the tear in the arterial wall creates a channel for blood flow. The tear may be between the intima and media or between the media and adventitia. As more blood escapes into the space, the layers are separated from one another in both direc- tions from the leak, and as the vessel becomes progressively weaker, it may rupture. Rupture can be explained by the law of Laplace—as the radius of the vessel increases, the tension in the wall increases. Rupture of a major vessel such as the aorta carries a high mortality.
Clinical Manifestations and Diagnosis Signs and symptoms of a leaking or ruptured cerebral aneurysm are associated with increasing intracranial pressure and hemorrhagic stroke. Dissecting aortic aneurysms often present as sudden, severe, tearing pain that radiates into the back or abdomen. The patient may show signs and symptoms of shock. Renal blood flow or perfusion of the spinal nerves may be compromised if the descending abdominal aorta is affected. Renal failure or paraplegia may result. If the ascending aorta is affected, arterial blood flow to the head and upper extremities may be affected.
Dissecting aneurysm
Fusiform
True aneurysms
False aneurysm
Saccular
Adventitia
Media
Intima
FIG 15.20 Classification of aneurysms. All three tunicae are involved in true aneurysms (fusiform and saccular). In false aneurysms, blood escapes between tunica layers and they separate. The muscle and fascia confine the leak; a thrombus forms and seals the leak. In a dis- secting aneurysm, a tear in the intima creates a channel into which blood leaks, creating a hematoma. Continued expansion of the hematoma further separates the intima from the other layers, weakening the vessel.
KEY POINTS • Common causes of arterial obstruction are atherosclerosis, inflammation,
vasospasm, and aneurysms. Emboli are the usual cause of acute arterial occlusion.
• Atherosclerosis is the most common cause of chronic progressive arterial obstruction. Several risk factors for the development of atherosclerosis have been proposed, among them smoking, hyperlipidemia, male gender, advancing age, sedentary lifestyle, obesity, glucose intolerance, and a family history of cardiovascular disease (CVD).
• Acute arterial obstruction is accompanied by the classic manifestations known as the six Ps: pallor, paresthesia, paralysis, pain, pulselessness, and polar (cold to touch).
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Prevention interventions include stopping smoking and beginning a walking program. Regular exercise has been shown to decrease future cardiovascular events. Drugs that interfere with platelet aggregation may be initiated, or revascularization procedures may be attempted.
Varicose Veins Etiology and Pathogenesis Varicosities are superficial, darkened, raised, and tortuous veins (Fig. 15.22). The greater saphenous vein is primarily affected, although varicosities may also develop in the lesser saphenous veins. Impaired venous return results in increased capillary pressure, and the involved limb may become edematous.
Clinical Manifestations and Treatment Patients may complain of an aching, heavy discomfort, but they are primarily disturbed by the appearance of the varicosities. Venous ulcers may develop.
Many of the diagnostic tests used for the arterial system are used for the identification of venous disease. The patient history and physical assessment provide important baseline information. Doppler ultrasound and impedance plethysmography are among the most frequently used assessment tools.
Conservative medical interventions are designed to reduce venous pressure and enhance the venous pump, especially the skeletal muscle pump. Patients are encouraged to elevate their legs whenever possible and to avoid standing for long periods. Elastic stockings can facilitate venous return by enhancing the skeletal muscle pump. When sitting, patients are urged to not cross their knees or ankles. Exercise, particularly walking or swimming, is suggested. If appropriate, weight reduction is recommended.
More aggressive interventions may be initiated in severe cases, as illustrated in Fig. 15.22. Sclerotherapy involves the injection of a chemical that initiates an inflammatory process, and subsequent compression dressings force the lumen to collapse. The intima adheres to itself and heals, and the vein is obliterated. Collateral venous circulation meets
ALTERATIONS IN VENOUS FLOW Pathologic venous conditions are the result of obstruction to flow (deep vein thrombosis) or structural alterations (valvular incompetence) and are primarily seen in the lower extremities.
Valvular Incompetence Etiology and Pathogenesis The intimal surface of veins periodically folds into valves to facilitate efficient flow (Fig. 15.21). When the valves are open, blood is propelled forward by the pressure changes exerted by the skeletal muscles and the intraabdominal and intrathoracic pumps. When this pressure decreases, backward flow of blood is prevented by proper closure of the valves (valvular competency). Valvular incompetence results in venous insufficiency. When the superficial veins are involved, the disorder is called varicose veins. Chronic venous insufficiency occurs when the deep veins are affected.
The cause of valvular incompetence is the overstretching of the valves as a result of excessive venous pressures. Veins are designed as low-pressure systems. After the blood leaves the high-pressure arterial bed, it passes into the fine capillary network, which slows flow and reduces the pressure. Blood flow through the veins is essentially accomplished by forces outside the veins—the skeletal muscle, intra- abdominal, and intrathoracic pumps. The highly distensible vein walls are capable of expanding to create a reservoir of blood. When the pressure against which the pumps must push is elevated for a prolonged period, the veins stretch and the valve cusps can no longer meet. Backflow results in further engorgement of the involved veins. The process is most frequently seen in people whose occupations require them to stand for long periods. The effect of gravity on venous flow accentuates the problem. Obesity and pregnancy also elevate venous pressure and may contribute to varicosity formation. As much as 10% of the European and North American population have valvular incompetence.
Clinical Manifestations and Treatment Symptoms may include a feeling of heaviness or tension and pruritus. Thrombi can promote valve obstruction and further thrombus formation. In prolonged insufficiency, edema and stasis dermatitis (discoloration along the lower calf to ankle) may develop. Long-term insufficiency can lead to ulcer formation.
A B C FIG 15.21 The venous valves. A, Open valves permit forward blood flow. B, Closed valves prevent backflow of blood. C, Incompetent valves, unable to close fully, allow blood to flow backward, producing venous insufficiency.
FIG 15.22 Varicose veins. Varicosities are best observed when the patient is standing because standing increases the pressure and causes the tortuous veins to become more visible. (From Black JM, Hawks J: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2008, Saunders, p 1336.)
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Clinical Manifestations and Treatment Deep vein thrombosis of the legs may be asymptomatic. Signs and symptoms, if present, typically include edema, manifestations of local inflammation, and possible dilated superficial veins secondary to the increased venous pressure. Pain may be present due to pressure on adjacent nerves and the inflammatory process.
Deep vein thrombosis is treated aggressively; deep vein thrombosis of the lower extremities and pelvic veins is the most frequent source of pulmonary emboli. Patients are often hospitalized so that intravenous anticoagulation therapy may be initiated; otherwise, they are treated on an outpatient basis with oral anticoagulants. Patients who have previously developed deep vein thromboses are at risk for further hypercoagulation and may undergo long-term prophylactic anticoagula- tion with antiplatelet therapy and parenteral anticoagulants with subsequent hospitalization for any reason.
Skin Assessment • Warm, tough, and thickened to touch • Pigmented areas, reddish brown • Edema, especially at end of day • Visible healed ulcers • Evidence of varicose veins may be present
Pain Assessment • Aching, cramping • Sometimes decreases with ambulation • Relieved by elevation
Ulcer Assessment • Moderately painful • Pink-red base • Irregular, uneven edges • Located on medial malleolus
BOX 15.4 Defining Characteristics of Chronic Venous Insufficiency
the need for venous return from the extremity. Surgical interventions include vein stripping and vein ligation. These are commonly performed as outpatient procedures and are often combined with sclerotherapy. Both of these treatment modalities depend on the presence of adequate deep venous structures to provide alternative routes for venous drainage.
Chronic Venous Insufficiency Etiology and Pathogenesis Chronic venous insufficiency results when valvular incompetence involves the deep veins (superficial femoral, anterior and posterior tibial, peroneal) of the legs. Communicating or perforating veins provide direct access between the superficial and deep veins. Because the pressure in the superficial veins remains elevated for a prolonged period, the deep veins are eventually affected. Individuals with chronic venous insufficiency often also have heart disease and a history of extremity trauma and phlebitis. Previous deep vein thrombosis is a risk factor.
Clinical Manifestations and Treatment Venous stasis ulcers also develop as superficial veins rupture with the increased pressures associated with activity. The skin pigmentation becomes brown as small veins rupture, leaking RBCs, which are eventually broken down. Defining characteristics of chronic venous insufficiency are listed in Box 15.4.
Chronic venous insufficiency is primarily diagnosed clinically, but if necessary, ultrasound is considered the best method of evaluation. Many of the diagnostic techniques described for varicose veins may prove helpful, including Doppler ultrasound and impedance plethys- mography. Treatment of venous ulcers is challenging and incorporates the use of compression as its foundation. Venous ulcers are prone to secondary infection, usually by Staphylococcus aureus, Pseudomonas aeruginosa, or β-hemolytic streptococci, requiring systemic antibiotic therapy. Other interventions previously described for superficial varicosi- ties also are used for chronic venous insufficiency.
Deep Vein Thrombosis Etiology and Pathogenesis The pathophysiologic process of thrombus formation has been previously described. Acute venous obstruction is most frequently secondary to a thrombus in a deep vein of the lower extremities. Upper extremities are less frequently affected by deep vein thrombosis.
KEY POINTS • Common causes of venous obstruction are incompetent valves (as may
occur with obesity, pregnancy, right heart failure, or prolonged standing), producing varicose veins and chronic venous insufficiency, and obstruction by deep vein thrombosis.
• Edema, venous stasis ulcers, and pain usually accompany chronic venous obstruction.
• Deep vein thrombosis is potentially life threatening because of the likelihood of embolization to the pulmonary circulation. It is treated aggressively with the administration of anticoagulants.
ALTERATIONS IN LYMPHATIC FLOW Lymphedema Etiology and Pathogenesis Lymphedema occurs when the normal flow of lymph is obstructed or altered in some fashion (Fig. 15.23). This results in the collection of lymphatic fluid in the interstitium, initiating an inflammatory response, hypertrophy of subcutaneous adipose tissue, and fibrotic changes. Primary lymphedema is related to a congenital anomaly or dysfunction of the lymphatic system. Secondary lymphedema develops in association with a disease process or is iatrogenic (a consequence of medical intervention) in origin. Throughout the world, secondary lymphedema is most commonly caused by an infection by filarial worms that migrate to the nodes of the lymphatic system, producing an obstruction of flow. Infection by this nematode (Wuchereria bancrofti) affects more than 90 million people worldwide. In the United States secondary lymphedema is most frequently caused by the surgical removal of lymph nodes, as with some breast cancers, or by the destruction of the lymphatics from direct radiation to lymph nodes in the management of various malignancies.
Upper extremity lymphedema occurs in 15% to 28% of breast cancer survivors, is most common in those who had axillary lymph node dissection, and can present a few days or 6 to 8 weeks after surgery or radiation therapy. Lower extremity lymphedema occurs in as many as 80% of those who had lymph node dissection in the groin or those who have a compression of pelvic or inguinal lymph nodes.
Cancer-related lymphedema is a progressive and chronic syndrome of abnormal swelling and multiple symptoms resulting from the accumulation of lymph fluid from the obstruction or disruption of the lymphatic system. The most perplexing aspect of this late effect of
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There is no cure for lymphedema; interventions are both medical and surgical. Medical treatment includes use of external pneumatic compression devices, elastic stockings, and exercise. Decongestive lymphatic therapy or complete decongestive physiotherapy combines skin care, massage, compression dressings, and exercise. For many individuals, this therapy results in a 40% to 60% reduction in edema. At this time, no medication has been approved for lymphedema therapy by the Food and Drug Administration; although diuretics have been used with minimal effect, they are not recommended. Surgical interven- tions are limited to very select patients, as they may actually be harmful. Resections (debulking) remove subcutaneous tissue, and bypass pro- cedures use lymphatic-venous anastomosis. A new approach involves the use of liposuction for the removal of subcutaneous fatty tissue.
cancer treatment is that lymphedema can occur even after less invasive surgical procedures, such as sentinel lymph node biopsy or partial mastectomy. In addition, lymphedema affects a large proportion of cancer survivors with a variety of malignancies, including gynecologic cancer (20%), melanoma (16%), genitourinary cancer (10%), and head and neck cancer (4%).
Clinical Manifestations, Diagnosis, and Treatment Most often, lymphedema affects the extremities, but it may be found in the region of the head and neck, trunk, or genitalia. Initially it presents as a soft, pitting edema, but as it progresses the inflammatory response is activated and lipogenesis, fat deposition, and fibrotic changes occur. Without early diagnosis and treatment, lymphedema may progress from an acute problem to a chronic one, where congestion produces thick and roughened skin (brawny edema) and a large deformed limb.
Diagnosis is primarily one of exclusion, with other causes of localized edema being ruled out. A complete history and physical examination will allow the elimination of cardiac, renal, and peripheral vascular etiologies. The primary diagnostic test uses the injection of radioisotopes (lymphoscintigram) to assess the overall function of the lymphatic system. Ultrasound, duplex ultrasound, CT, and MRI are additional options and produce unique results.
A B
FIG 15.23 Types of lymphedema. A, Lymphedema of an arm secondary to surgical alterations in the lymphatic system associated with mastectomy. B, Lymphedema of a leg. (From Black JM, Hawks J: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2008, Saunders, p 1339.)
KEY POINTS • Obstruction of lymph flow is most commonly the result of surgical removal
of, or radiation damage to, lymphatic vessels during treatment of cancer. • Manifestations of lymphatic obstruction include regional edema and thickened
subcutaneous tissue.
The circulatory system is organized to facilitate its dual functions of oxygen and nutrient transport and metabolic waste product removal. The arrangement and unique structure of the circulatory vessels permit these functions to be accomplished.
An understanding of the principles and control of flow aids in the comprehension of the pathologic conditions that result in alterations in flow. Principles of flow, or the hemodynamics of the circulation, include concepts and physical laws relating to relationships of flow, pressure and
S U M M A R Y
CHAPTER 15 Alterations in Blood Flow 335
resistance, velocity, laminar and turbulent flow, and wall tension and com- pliance. Control of blood flow occurs through both extrinsic and intrinsic mechanisms. Lymphatic flow is controlled through the lymphatic pump system, governed by skeletal muscle and the smooth muscle of organs and arteries.
Pathophysiologic changes that result in alterations in blood flow can be classified as being caused by either obstruction (thrombosis, emboli, vasospasm, inflammation, mechanical compression) or structural
alterations (valvular incompetence, arteriosclerosis/atherosclerosis, aneurysms, AVFs). Conditions that produce alterations in arterial or venous flow are the result of one of these primary processes. Pathology of the lymphatic system is essentially the result of disruption of the normal pressure relationships or an obstruction within the circulatory system; proper functioning of the lymphatic system depends on the appropriate functioning of the vascular system.
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Cloutier LM: Diagnosis of pulmonary embolism. Clin J Oncol Nurs 11:343–348, 2007.
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Couri CBE, et al: Mönckeberg’s sclerosis—is the artery the only target of calcification? BMC Cardiovasc Disord 5:34, 2005. Available at: www .biomedcentral.com/1471-2261/5/342005. (Accessed 8 November 2011).
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337
16
Alterations in Blood Pressure Benjamin J. Miller
K E Y Q U E S T I O N S • How do changes in cardiac output and systemic vascular
resistance affect blood pressure? • How is blood pressure regulated on a short- and long-term basis? • What are the risk factors for the development of primary
hypertension? • How is secondary hypertension defined, and what are the
common etiologies?
• How is hypertension detected, classified, and managed? • What are the end-organ consequences of inadequately controlled
hypertension? • What are the differences between hypertensive emergency and
hypertensive urgency, and how are they managed? • What are the risk factors for orthostatic hypotension, and how is
the condition managed?
C H A P T E R O U T L I N E Arterial Blood Pressure, 337
Determinants of Systemic Blood Pressure, 337
Measurement of Blood Pressure, 338
Components of Blood Pressure Measurement, 338 Direct Measurement of Blood Pressure, 339 Indirect Measurement of Blood Pressure, 339
Mechanisms of Blood Pressure Regulation, 341 Short-Term Regulation of Systemic Blood Pressure, 341
Long-Term Regulation of Systemic Blood Pressure, 341
Normal Fluctuations in Systemic Blood Pressure, 343
Hypertension, 343 Definition and Classification, 343
Primary Hypertension, 344
Subtypes, 344 Risk Factors, 344 Outcomes, 345 Treatment Interventions, 346
Secondary Hypertension, 348
Hypertensive Emergencies and Urgency, 349
Low Blood Pressure, 350
http://evolve.elsevier.com/Banasik/pathophysiology/
Meeting the needs of the body’s tissues for oxygen and nutrients requires both adequate blood flow at the tissue level and sufficient perfusion pressure systemically to force that blood forward. The systemic arterial blood pressure provides the momentum, and the tissues depend on its preservation to ensure their metabolic needs are met. This maintenance requires a complex regulatory system. The body’s organs can be damaged if the perfusion pressure is insufficient or if it is excessive.
ARTERIAL BLOOD PRESSURE As described in Chapter 15, oxygenated blood is propelled from the left side of the heart into the arterial circulatory system, and following a pressure gradient, travels to the capillary beds of the body’s tissues (Fig. 16.1). There, oxygen and nutrients are exchanged for metabolic wastes, and the blood then returns to the right side of the heart via the venous circulatory system, where it passes through the lungs to repeat the process. It is the pressure difference between the left and right sides of the heart that produces the gradient allowing this systemic movement of blood. The arterial blood pressure is produced by the force of the
left ventricular contraction overcoming the resistance of the aorta to open the aortic valve, and is the pressure maintained in the arterial system throughout the cardiac cycle.
Determinants of Systemic Blood Pressure The systemic arterial blood pressure is the physiologic result of the cardiac output and the resistance to the ejection of blood from the heart. Cardiac output (CO) is the product of two variables: stroke volume (SV) and heart rate (HR) (CO = SV × HR). SV is the specific volume of blood leaving the heart with each contraction, which itself is deter- mined by the volume of blood in the heart before systole (end-diastolic volume) and the contractility of the myocardium. The end-diastolic volume is determined by the amount of blood returned to the heart between contractions, and is typically called the heart’s preload. Stroke volume multiplied by the number of contractions of the heart per minute (heart rate) determines the amount of blood leaving the heart—the cardiac output, measured in liters per minute. The resistance to ejection into the arterial circulation is known as the systemic vascular resistance (SVR) and is determined by the radius of arteries and the
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
338 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
termed the pulse pressure. Therefore the pulse pressure for a systolic pressure of 110 mm Hg and a diastolic pressure of 70 mm Hg would be 40 mm Hg.
Systolic and diastolic values are normed by age. Standards for the identification of normal blood pressure and levels of abnormal elevation have been established. The most precise standards for children are those based on height, age, and gender (Table 16.1). Standards for blood pressure have likewise been determined for the adult (Table 16.2).
Mean arterial pressure (MAP) is the calculated average pressure within the circulatory system throughout the cardiac cycle. Because more time is spent in diastole than in systole, MAP is not the arithmetic average of diastolic and systolic pressure, but rather reflects the relative time spent in each portion of the cardiac cycle. The calculation may be performed by computer during direct arterial blood pressure measure- ment, as described later, but is most conveniently determined by a
degree of vessel compliance. SVR is synonymous with cardiac afterload, and can be altered by constricting or relaxing (dilating) arterial smooth muscle. It can be calculated by using a derivation of Poiseuille’s law (see Chapter 15). This physical law states that in a tube with laminar flow, resistance is primarily determined by three factors: the radius of the tube, the length of the tube, and the viscosity of the fluid. Applied to SVR, because the viscosity of the blood and the total length of the arterial system are normally relatively constant, the radius of the arterioles becomes the major determinant of resistance. Therefore the formula for blood pressure is BP = CO × SVR. Alteration in any one of these variables will result in a change in blood pressure. This basic concept is important to normal physiologic function, disorders of blood pressure, and the therapeutic interventions undertaken to treat them. The pul- monary vascular bed contributes minimally to total systemic resistance and is seen as a separate resistance system, called pulmonary vascular resistance. It has its own pathology discussed in Chapter 21.
Measurement of Blood Pressure Components of Blood Pressure Measurement Arterial blood pressure is measured from its highest point during cardiac systole to its lowest during diastole. These are referred to as systolic pressure and diastolic pressure, respectively, and are measured in mil- limeters of mercury (mm Hg). During ventricular contraction, the pressure in the aorta rises to an average peak value of approximately 110 mm Hg in the adult (see Fig. 16.1). Whatever this peak pressure may be, it is referred to as the systolic blood pressure. The smooth muscle of the aorta passively recoils from this point, ejecting blood forward into the peripheral arteries at that given pressure. Stroke volume is the primary factor affecting systolic pressure; an increase or decrease in SV produces a corresponding change in systolic blood pressure. During ventricular diastole, the pressure in the arterial system falls to an average minimum value of 70 mm Hg in the adult. The value of this minimum pressure is called the diastolic blood pressure. SVR is the major determinant of diastolic blood pressure; an increase or decrease in diastolic pressure is the result of a corresponding increase or decrease in arterial resistance (SVR). The difference between systolic and diastolic blood pressure is
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FIG 16.1 Normal pressures throughout the vascular system in the supine position. (From Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2016, Saunders.)
TABLE 16.1 Blood Pressure Classification in Children and Adolescents SBP and DBP <90th percentile* Normal for children and
adolescents Average SBP and/or DBP ≥90th percentile
but <95th percentile† or SBP ≥120 and/ or DBP ≥80 mm Hg
Prehypertension in children or adolescents
SBP/DBP ≥95th percentile and <99th percentile plus 5 mm Hg
Stage I hypertension
SBP/DBP ≥99th percentile plus 5 mm Hg Stage II hypertension
Selected data from Xi B, Zong XN, Kelishadi R, et al: Establishing international blood pressure references among nonoverweight children and adolescents aged 6 to 17 years. Circulation, 133(4):398- 408, 2016. DBP, Diastolic blood pressure; SBP, systolic blood pressure. *For age, height, and gender. †For age, height, and gender measured on at least three separate occasions.
CHAPTER 16 Alterations in Blood Pressure 339
Direct Measurement of Blood Pressure Direct measurement of blood pressure is one aspect of hemodynamic monitoring and requires an intraarterial catheter and specialized equip- ment to transduce the arterial fluid pulsations into electrical signals. The catheter most often is placed in the radial artery. These signals are then displayed on a computer screen as waveforms, and the systolic, diastolic, and MAPs are digitally represented. This is the most accurate method of measuring blood pressure available, but is typically only performed in controlled settings, such as surgical or critical care units, and carries its own risk of measurement error. A detailed discussion of hemodynamic monitoring is beyond the scope of this text.
Indirect Measurement of Blood Pressure Blood pressure is most commonly measured by indirect means at the brachial artery, using a sphygmomanometer and a stethoscope for auscultation or an automated oscillometric system such as Dinamap or the Welch Allyn Spot Vital Signs. Wrist or finger monitors are not recommended because of the inaccuracy of the values obtained compared with brachial measurements. Specific, evidence-based standards are available for the correct use of these noninvasive automated systems for adults and children, including scheduled calibration, and they are inherently less accurate if the blood pressure is significantly increased or decreased, or if there are cardiac dysrhythmias. Because the values in blood pressure references are based on the auscultatory method, and it is the easiest method and least stressful to patients, it is the preferred measurement technique. Although the brachial artery is typically used for convenience, certain assessment procedures require recording the blood pressure at other arterial sites (e.g., ankle–brachial index). Several studies have reported differences between the right and left arm pressures, but no pattern of differences is evident. Other studies report that in the absence of disease, systolic pressures do not differ significantly at a clinical or statistical level between the right and left arms. In practice, it is recommended that blood pressures be initially taken in both arms and the arm with the highest value be recorded. In situations such as a shock state, when systolic and diastolic pressures cannot be auscultated, the systolic pressure alone may be obtained by palpation or by amplifica- tion of the pulse using ultrasound technology (Doppler pressure).
Auscultated and oscillometric blood pressure measurements are burdened with the potential of measurement error, in both reliability and validity (Table 16.3). This dictates the need for careful technique, and in most cases enhances the value of trend data as opposed to individual readings. The individual patient’s heart rate, degree of arterial compliance, and dynamics of blood flow may vary over time. Inap- propriate blood pressure cuff size, arm position, and both the visual and auditory acuity of the clinician may affect the accuracy of individual readings. An additional source of error has been named the “white coat effect” for the elevation of blood pressure when taken in a clinic or office environment. First described in 1897 by Scipione Riva-Rocci, who was the first to document assessing the systolic pressure by palpating the brachial artery, these situational elevations in blood pressure are of concern because treatment may be initiated based on inaccurate data. This condition is most common in older individuals of either gender, but may occur at any age. Pickering and colleagues report that in approximately 15% to 20% of patients with stage 1 hypertension, elevated blood pressure may only be persistent under these circumstances. Significant pressure differences have been found using the automatic noninvasive technology between the supine, 45-degree elevation of the head of the bed and sitting position in the same patient, and between multiple body positions using the auscultatory method. Normal values are based on the subject being seated, with the back supported and the arm at heart level. Specific recommendations regarding all aspects of
simple formula using the values of blood pressure obtained indirectly. Several formulas are available, and they may use systolic, diastolic, or pulse pressures; the most common formula uses the systolic and diastolic pressures as follows:
( )2 3
× +diastolic pressure systolic pressure
For a person with a systolic pressure of 110 mm Hg and a diastolic pressure of 70 mm Hg, the MAP would be:
( )2 70 110 250 3 83× + = or approximately mm Hg
MAP is used clinically as part of cardiovascular assessment and in the incremental adjustment (titration) of parenterally administered vasoactive drugs.
TABLE 16.2 Blood Pressure Classification in Adults
JNC 7 Blood Pressure Classification in Adults Category SBP (mm Hg)* DBP (mm Hg)*
Normal <120 <80 Prehypertension 120–139 80–89 Stage 1 hypertension 140–159 90–99 Stage 2 hypertension ≥160 ≥100
DBP, Diastolic blood pressure; SBP, systolic blood pressure; CKD, Chronic kidney disease; DM, diabetes mellitus. From James PA, Oparil S, Carter BL, et al: 2014 evidence-based guideline for the management of high blood pressure in adults: Report from the panel members appointed to the eighth joint national committee (JNC 8). JAMA, 311(5):507-520, 2014.
From Chobanian AV: Seventh Report of the Joint National Committee on Prevention, Detection, Evaluation, and Treatment of High Blood Pressure: The JNC 7 Complete Report, Hypertension 42:1206–1252, 2003. DBP, Diastolic blood pressure; SBP, systolic blood pressure. *Classification determined by the higher value.
ESH-ESC Blood Pressure Classification in Adults Category SBP (mm Hg)* DBP (mm Hg)*
Optimal <120 <80 Normal 120-129 80-84 High normal 130-139 85-89 Grade 1 hypertension 140–159 90–99 Grade 2 hypertension ≥160-179 100-109 Grade 3 hypertension ≥180 ≥110 Isolated systolic hypertension ≥140 <90
From Mancia G, Fagard R, Narkiewicz K, et al: 2013 ESH/ESC practice guidelines for the management of arterial hypertension, Blood Press 23(1):3-16, 2014.
JNC 8 Blood Pressure Treatment Goals in Adults Population SBP (mm Hg)* DBP (mm Hg)*
Age <60 all health states < 140 < 90 Age > 60 with CKD or DM < 140 < 90 Age ≥ 60 without CKD or
DM < 150 < 90
340 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
lower than those obtained by direct, intraarterial blood pressure measure- ment. Older patients often have a period during measurement when the Korotkoff sounds disappear, returning 20 to 40 mm Hg later. This auscultatory gap may be attributed to intraarterial pressure fluctuations associated with hypertension (Fig. 16.2) and can often be eliminated by elevating the arm above the level of the head for 30 seconds before cuff inflation. This approach is postulated to enhance the audibility of Korotkoff sounds by increasing arterial flow following the increase in venous return.
Increasingly, self-monitoring of blood pressure is being performed at home. Potential sources of error as well as optimal schemes of measuring and recording have been identified. It has been found that the values documented in this setting are more accurate, if correctly obtained, because of the elimination of the white coat effect.
indirect measurement are provided by the American Heart Association, and sources of error within pediatric populations also have been documented.
The recommended approach for obtaining an auscultated blood pressure is a two-step approach, beginning with inflating the cuff to the point at which the pressure obliterates the palpated radial pulse (systolic pressure). The pressure is completely released, and after 15 to 30 seconds the cuff is reinflated to 30 mm Hg above that point and then gradually deflated while the clinician listens through the stethoscope with the diaphragm placed over the brachial artery and monitors the position of the mercury in the sphygmomanometer. The return of blood flow through the artery is signaled by the sounds produced by the turbulent flow through the partially occluded artery and named after the Russian physician who first described them in 1905 (Korotkoff sounds). This sound is recorded as the systolic pressure. As the pressure continues to be released, sounds change in intensity until the point at which the Korotkoff sounds disappear, which is noted as the diastolic pressure (Table 16.4). Nurse researchers in Britain found statistically significantly lower diastolic values using this approach compared with a one-step approach. In this approach, the systolic pressure was estimated by palpating the brachial artery during cuff inflation, and inflation continued 30 mm Hg beyond that point before proceeding with deflation. It was postulated that the first inflation and occlusion produced a reactive vasodilation that could be responsible for this difference. Regardless, the auscultation of Korotkoff sounds results in systolic values that are
TABLE 16.3 Intrinsic and Extrinsic Factors That Influence Indirect Blood Pressure Accuracy
Factor Effect on Blood Pressure Measurement
Intrinsic Factors Heart rate Elevated or decreased Arterial compliance Elevated or decreased Alterations in flow dynamics Elevated or decreased Respiratory rate Normal increase on inspiration
Extrinsic Factors Cuff Too small Too large
Falsely elevated Falsely decreased
Supine position ≈5 mm Hg lower DBP Seated, back not supported ≈6 mm Hg increased DBP Crossed legs Increased SBP 2–8 mm Hg Seated, arm position Above heart Below heart
Falsely decreased Falsely elevated
Inadequately supported Falsely elevated Excessive stethoscope pressure Diastolic pressure falsely decreased <1 min between measurements Falsely elevated Deflation rate >3 mm Hg/sec Falsely decreased SBP and
increased DBP Exercise, eating, smoking, intake of
caffeine ≤30 minutes before measurement
Falsely elevated
Talking during measurement Falsely elevated “White coat effect”/anxiety Falsely elevated Decrease in recorder auditory or
visual acuity Falsely elevated or decreased
Recorder bias Falsely elevated or decreased
TABLE 16.4 Korotkoff Sounds
Phase Description
I Initiation of clear tapping sounds—systolic blood pressure II Murmuring or swishing sounds III Increase in intensity and crispness of sounds IV Muffling of sounds V Disappearance of sounds—diastolic blood pressure
X X X X X X X
X
X X X X
Pressure (mm Hg)
Palpation Auscultation
Auscultatory gap
200 180 160 140 120 100 80 60 40 20 0
FIG 16.2 Auscultatory gap. Palpating the blood pressure (BP) before auscultation allows assessment of the true systolic BP. Palpated BP equals 200/P. The same result can often be obtained by elevating the arm overhead for 30 seconds before inflating the cuff. Auscultated BP when the cuff is inflated to only 180 mm Hg results in a falsely low value of 140/80 mm Hg.
KEY POINTS • Systemic arterial blood pressure varies with the cardiac cycle. The highest
pressure (systolic) corresponds to ejection of blood from the left ventricle into the aorta. The lowest point in pressure (diastolic) occurs at the end of diastole, just before the next ventricular contraction.
• Blood pressure is the product of the cardiac output (CO) (HR × SV) and systemic vascular resistance (SVR). Changes in any of these variables will change blood pressure. The arterioles create most of the resistance in the vascular system; changes in the diameter of these vessels profoundly affect SVR and therefore blood pressure.
• The difference between the systolic and diastolic pressures is called the pulse pressure. The average pressure within the systemic arterial system is the mean arterial pressure (MAP), mathematically derived from the two pressure values.
• Blood pressure can be directly measured by placement of a catheter within an artery and utilization of specific computer software. More routinely it is
CHAPTER 16 Alterations in Blood Pressure 341
the lower centers of the brain monitor the body’s internal and external environments. The vasomotor center is directly activated by such stimuli as fever or external stressors to evoke increased activity and elevate systemic arterial blood pressure.
The autonomic nervous system maintains a basal level of arteriolar smooth muscle tone through the SNS and provides heart rate control through a balance of SNS and parasympathetic nervous system (PSNS) activity. Stimulation of the SNS results in the increased release of the neurotransmitters epinephrine and norepinephrine. At the smooth muscle of the arterial system, these neurotransmitters bind to α1 receptors to initiate vasoconstriction and an increase in SVR. Stimulation of the PSNS has almost no effect on most systemic vessels, other than venodilation in localized areas such as the face, producing a blush. Receptors within the brain (α2) provide negative feedback regulation, decreasing the central release of epinephrine and norepinephrine in response to stimulation. In the heart, the binding of these neurotransmitters to β1 receptors results in an increase in the rate of firing at the sinoatrial node, increasing the heart rate in response to increased demands. The PSNS is responsible for maintaining a slower heart rate during periods of rest.
Indirectly, the vasomotor center is stimulated by a decreased rate of discharge by baroreceptors. Pressure-sensitive receptors (baroreceptors) are found in the vessel walls of nearly all large arteries in the thorax and neck, but are particularly plentiful in the sinuses of the carotid arteries and in the arch of the aorta. Signals from the aorta travel through cranial nerve X, and those from the carotids are transmitted through cranial nerve IX; both terminate in the vasomotor center of the medulla. These specialized receptors are sensitive to changes in MAP. They transmit impulses continuously, altering their rate of discharge in response to changes in MAP. Their response to these changes is very brisk, especially when pressure changes occur rapidly, which makes them the perfect mechanism to respond to variations in body position and minimize the gravity-induced decreases in pressure in the upper body. A decrease in sensed pressure induces a decrease in action potential formation by the baroreceptors. This causes the vasomotor center to increase SNS outflow to the heart and arterial bed and to decrease PSNS stimulation to the heart. The net result is an increase in both heart rate and SVR, producing an increase in blood pressure. An increase in sensed pressure results in an increased rate of firing by the baroreceptors and a negative feedback response, lowering systemic arterial pressure. The responsiveness of the baroreceptor reflex declines with age; age-related stiffening of the arterial walls has been implicated along with contributions from pathologic conditions such as hypertension and diabetes mellitus, which are more common in the older population. The results of animal studies indicate that the overall effect of the baroreceptor reflex is a reduction of the minute-to-minute fluctuations in arterial blood pressure by 33% of what it would be without this mechanism. There is abundant evidence that within 1 to 2 days of exposure to chronic elevations of blood pressure, baroreceptors reset to the new level and the rate of discharge begins to decrease and then slowly returns to the norm despite an elevated baseline pressure. This finding suggests that the baroreceptor reflex may contribute to long-term blood pressure regulation through the SNS stimulation of the kidneys discussed in the next section.
Receptors in the carotid and aortic arterials respond to chemical signals of hypoxia (H+ and CO2 level elevations) that occur when arterial pressure declines. These chemoreceptors stimulate the medullary vasomotor center to increase SNS activity. However, this mechanism responds significantly only when systolic pressures decrease below 80 mm Hg, so blood pressure can be prevented from falling even lower.
Long-Term Regulation of Systemic Blood Pressure The regulation of arterial blood pressure on a long-term basis, week after week and month after month, is accomplished through the interplay
MECHANISMS OF BLOOD PRESSURE REGULATION
Arterial blood pressure is physiologically controlled on both a short-term and a long-term basis. Regulation of blood pressure is achieved through changes in factors that affect the primary determinants of blood pressure: heart rate, stroke volume, and SVR (Fig. 16.3). These variables are affected by a complex interplay between neural, humoral, and renal factors to maintain stability in the face of ever-changing internal and external environmental demands. An understanding of these mechanisms is essential to exploring pathophysiologic alterations. Blood pressure normally fluctuates over the course of 24 hours due to physiologic changes associated with circadian rhythm.
Short-Term Regulation of Systemic Blood Pressure Changes in blood pressure must occur quickly to accommodate behavioral changes (e.g., position changes, exercise), emotional changes (e.g., fear, anxiety), and physiologic changes (e.g., fever, volume depletion). Changes in physical activity require the most frequent alterations, and rapid adjustments are initiated in seconds so that the arterial blood pressure may be increased to twice the normal value within 5 to 10 seconds. This short-term regulation is mediated by the sympathetic branch of the autonomic nervous system (the sympathetic nervous system [SNS]). Activation of the SNS influences both heart rate and SVR. The force of contraction is primarily a factor of the circulating volume (preload) and affects long-term regulation of arterial blood pressure.
Modifications in systemic blood pressure are made by activation of the SNS directly or indirectly through stimulation of the baroreceptor reflex. (Autoregulatory changes in pressure at a local level, at the tissues of body organs, are discussed in more detail in Chapter 15.) These SNS activities related to the distribution and pressure of blood are directed through the vasomotor center in the medulla of the brainstem while
Cardiac Output Systemic Vascular Resistance
Heart rate Stroke volume Arterial radius
Volume (preload)
� stimulation
Vagal nerve stimulation (PSNS)
Myocardial contractility �1 stimulation (SNS)
RAAS
�1 stimulation (SNS)
FIG 16.3 Systemic arterial blood pressure is controlled through influences on each of its variables: heart rate, stroke volume, and SVR. Some of these provide short-term adjustments, whereas others affect the long-term management of blood pressure. PSNS, Parasympathetic nervous system; RAAS, renin–angiotensin–aldosterone system; SNS, sympathetic nervous system.
measured by auscultation. Systolic pressure is recorded as the onset of the Korotkoff sounds, and their disappearance is recorded as the diastolic pressure.
• Erroneous blood pressure values may be obtained because of a missed auscultatory gap, hydrostatic pressure changes associated with arm position, inappropriate cuff size, observer error, and other factors.
342 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
bloodstream. Once ADH arrives in the renal vasculature, it binds to receptors in the collecting ducts, resulting in the enhanced reabsorption of water in order to decrease osmolality (Chapter 26).
The physiologic mechanisms of the RAAS are tightly controlled and interdependent (Fig. 16.5). Prorenin, the inactive form of renin, is synthesized and stored by specialized smooth muscle cells located in the afferent arterioles of the kidney situated immediately proximal to the glomeruli. Known as the juxtaglomerular cells, these cells are stimu- lated by a decrease in arterial pressure to enzymatically cleave the precur- sor and release the activated renin enzyme into the vascular bed of the kidney. Most of the renin travels into the general circulation, where it acts on a circulating plasma protein called angiotensinogen, resulting in the release of angiotensin I, a peptide possessing minimal vasoconstric- tive capacity. Angiotensin I continues to be created by renin for about 30 to 60 minutes, until renin is removed from the body. While the blood carrying angiotensin I circulates through the pulmonary vessels, an enzyme produced by the vascular endothelium (angiotensin-converting enzyme [ACE]) comes in contact with angiotensin I, and two amino acids are fragmented from angiotensin I to produce angiotensin II. Inactivated in minutes by angiotensinases, continued production of angiotensin II maintains the profound effects it initiates. Angiotensin II is an extremely potent vasoconstrictor, primarily of the arterial bed, but also slightly affecting the venous system. The SVR is therefore increased, raising blood pressure. The vasoconstrictive response to angiotensin II requires about 20 minutes to reach maximal capacity, but is capable of elevating arterial pressure to 50% of normal after severe hemorrhage. The enhanced venous return attributable to the elevated SVR improves cardiac function by increasing myocardial fiber stretch, producing increased contractility and therefore stroke volume. Angiotensin II also is an intermediary for an additional means of raising blood pressure—increasing circulating volume to significantly increase venous return to the heart and therefore stroke volume. Angiotensin
Increased extracellular fluid volume
Increased blood volume
Increased mean circulatory filling pressure
Increased venous return of blood to the heart
Increased cardiac output
Autoregulation
Increased total peripheral resistance
Increased arterial pressure
FIG 16.4 Mechanism by which an increase in extracellular fluid volume results in an increase in systemic arterial pressure. (From Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2016, Saunders.)
Angiotensinogen
Renin
Angiotensin-converting enzyme
Angiotensin I
Angiotensin II
INCREASE IN BLOOD PRESSURE
Vasoconstriction Aldosterone release
Sodium and water retention
Increased blood volume
FIG 16.5 The renin–angiotensin–aldosterone system (RAAS) and its systemic effects.
of neural, hormonal, and renal interaction and is intimately connected with the body’s fluid volume homeostasis. The balance of the intake of water and sodium with their excretion by the kidney remains the central feature of long-term blood pressure maintenance. Historically, the role of the renin–angiotensin–aldosterone system (RAAS) has been seen as the primary contributor to this process, and although it continues to be a major determinant, mechanisms involving the baroreceptor reflex and the vasomotor center in the brainstem as well as localized renal systems are receiving increased attention in research.
An increase in extracellular fluid (ECF) volume, because of increased intake or decreased excretion, results in an increase in cardiac output; when combined with the volume-induced increase in SVR, this results in an elevation in the arterial blood pressure (Fig. 16.4). Body tissues initiate their local autoregulation mechanisms, constricting arterioles to protect against high-flow damage, which further contributes to the overall arterial resistance in the body. Unless fluid intake or renal func- tions are abnormal, this increase in SVR will not result in a prolonged elevation in arterial pressure. The kidneys will respond quickly, increasing excretion of sodium and water and normalizing pressure within a matter of hours. This physiologic regulatory response may be disrupted if the renal vasculature is constricted, as occurs in hypertension.
Because sodium is not as rapidly eliminated by the kidney as water, elevations in sodium intake are more likely to elevate arterial pressure. Excess sodium also adds to the body’s fluid volume by several mecha- nisms. Sodium increases the osmolality of the ECF and activates the central thirst center, causing an increase in water intake. The increased serum osmolality will be sensed by the hypothalamus and posterior pituitary, causing the release of antidiuretic hormone (ADH) into the
CHAPTER 16 Alterations in Blood Pressure 343
death, myocardial infarction, and stroke are associated with circadian elevations in BP.
II in the general circulation reaches the cortex of the adrenal glands, stimulating the release of the hormone aldosterone. Aldosterone circulates to the kidneys, where it binds to receptors in the renal tubules, causing the kidneys to reabsorb more sodium. Water follows the sodium back into the bloodstream. The result is an increase in blood volume and further elevation in blood pressure. Excessive amounts of angiotensin in the bloodstream have been found to effectively reset this mechanism of blood pressure control to a higher-than-normal level, potentially contributing to hypertension.
Some of the renin released by the juxtaglomerular cells exerts local effects within the kidney to elevate blood pressure. Renin receptors in the mesangium of the glomerulus and below the endothelial cells of the renal arteries are activated to enhance the conversion of angioten- sinogen to angiotensin I. Angiotensinogen has been isolated in tubular and mesangial cells, and ACE is found both in vascular endothelium and in the epithelium of the tubular cells.
Other influences on long-term arterial blood pressure control include the activity of the SNS, levels of natriuretic peptides, and regulation of intrarenal mechanisms such as renal medullary endothelin production. Renin release is increased when neurotransmitters released by the sympathetic nervous system bind to β1 receptors in the kidney. Additional local SNS effects include decreased glomerular filtration rate (GFR) as a result of renal arteriolar constriction and increased tubular reabsorption of sodium and water caused by increased quantities of angiotensin II and aldosterone. These effects contribute to the increased systemic blood pressure associated with severe prolonged stress. Increased SNS activity has been documented to be present in hypertension, and its role is confirmed because antihypertensive drugs that affect autonomic control of heart rate and SVR are so clearly effective in treatment. A number of natriuretic hormones play a role in arterial pressure through their effects on ECF volume regulation; most important of these is atrial natriuretic peptide (ANP). Increased volume in the atria of the heart triggers stretch receptors and stimulates the release of ANP into the bloodstream by cardiac muscle fibers. ANP causes the kidneys to increase water and sodium excretion by increasing GFR and decreasing sodium reabsorption so both sodium and water remain in the filtrate. This diuretic effect reduces circulating volume and therefore blood pressure. Endothelin-1 (ET-1) is a peptide produced in the renal medulla. ET-1 binds to receptors within the kidney, initiating an autocrine-induced vasodilatory response affecting renal perfusion, water and electrolyte movement, and release of renin. This makes ET-1 an important par- ticipant in normal systemic blood pressure control, and levels have been found to be abnormal in hypertension. Most likely, long-term blood pressure control is a reflection of the unified contributions of all the factors discussed here, and more are yet to be identified.
Normal Fluctuations in Systemic Blood Pressure Many homeostatic mechanisms of the body undergo daily variations in their function governed by an area of the brain called the suprachi- asmatic nuclei—the body’s internal clock. Brain wave activity, cell regeneration, cortisol release, body temperature, heart rate, and blood pressure are only a few of the numerous circadian rhythms. In the case of blood pressure, it is known that it rises before awakening (morning surge), is highest in the middle of the morning, then begins to fall, and reaches its lowest level at night (nocturnal dip). In their review of the available research, Peixoto and White found these basic fluctuations to be primarily determined by internal neural and hormonal regulation, as well as by external environmental factors such as sodium intake and physical activity. Additional factors known to affect the normal rhythmic changes in blood pressure include lifestyle influences such as alcohol consumption and cigarette smoking, as well as cognitive activity and emotional state. Development of diabetic nephropathy, sudden cardiac
KEY POINTS • Blood pressure is regulated on a short-term basis through the interaction
of the carotid and aortic baroreceptors, the vasomotor center in the brainstem, and the activation of the sympathetic nervous system (SNS) and inhibition of the parasympathetic nervous system (PSNS) influences on the heart and smooth muscle in the arterioles. Short-term regulation primarily involves heart rate and systemic vascular resistance (SVR).
• Regulation of blood pressure on a long-term basis is complex, involving the influence of the nervous system, release of hormones, and responses of the kidneys to pressure changes. The vasomotor center and activation of α1 receptors in the smooth muscle of the arterioles and the β1 receptors of the heart continue to be involved when pressure changes are sensed by the baroreceptors.
• Secretion of antidiuretic hormone (ADH) in response to osmolality and of aldosterone from the activation of the renin–angiotensin–aldosterone system (RAAS) affects fluid balance, whereas angiotensin II produces an increase in SVR. Natriuretic peptides and intrarenal mechanisms contribute to the process of long-term blood pressure management. Long-term regulation involves all of the blood pressure variables: heart rate, stroke volume, and SVR.
• Normal fluctuations of blood pressure occur in a cyclic pattern attributable to changes in the body’s internal and external environments.
HYPERTENSION The current and projected global prevalence of hypertension is stunning. Hypertension is the most common primary diagnosis in the United States. About 32% or 80 million adults in the United States have high blood pressure. The prevalence of high blood pressure remains higher among non-Hispanic black adults (44.9% & 46.1%; men and women, respectively) compared with non-Hispanic white (32.9% & 30.1%; men and women respectively) and Mexican American adults (29.6% & 29.9%; men and women, respectively). Global estimates suggest more than 40% of adults 25 years of age or older are diagnosed with hypertension, affecting more than 1 billion people. Changes in the standard of living of those in developing countries mirror the trends in economically developed ones: increasing obesity, diabetes, and sedentary lifestyles. Increased consumption of alcohol, cigarette smoking, and diets deficient in fruits and vegetables contribute to the problem of escalating hyperten- sion worldwide. Hypertension will affect nearly half of the adult popula- tion in the majority of the world. India and Asia have the lowest current and projected prevalence, whereas the former socialist republics, sub- Saharan Africa, the Caribbean, and Latin America have the highest rates. Given the risks to health with blood pressure elevations the future impact of hypertension is profound. Hypertension increases morbidity and mortality associated with heart disease, kidney disease, peripheral vascular disease, and stroke. It is responsible for a worldwide annual death rate of 7.6 million, and it is the most common risk factor for cardiovascular disease worldwide. An understanding of the types and causes of hypertension and the interventions associated with its treatment is essential to having an impact on the current and future effects of this disease.
Definition and Classification The standard for the definition and classification of hypertension in adults continues to be drawn from the Seventh Report of the Joint National Committee on Prevention, Detection, Evaluation, and Treatment of High Blood Pressure (JNC 7), published in 2003. For those individuals age 18 years and older, normal blood pressure is defined as <120 mm Hg
344 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
subtype of hypertension in those older than age 55. The level of the systolic pressure, MAP, and the difference between systolic and diastolic pressures (pulse pressure), among other factors, are used to guide pharmacologic interventions. Given this normal age-related development of hypertension, most early and subsequent data related to the increased risk of mortality and morbidity are based on this population, and systolic pressure elevation clearly affects risk more than diastolic, as noted in the earliest and most famous cardiovascular research in the Framingham Study.
Age is not a risk factor for hypertension in childhood or adolescence. Hypertension does occur in these age groups, however, and the distribu- tion of subtypes and the proposed bases and prognosis are worth noting. Determination of hypertension is based on the normal expectations for the child’s age, gender, and height (see Table 16.1). Although IDH is more common among younger adults, ISH can occur. ISH in ado- lescents and young adults (<45 years of age) has been attributed to the increased elasticity of their arteries in the face of rapid growth; this produces an increase in brachial systolic pressure, although aortic pressure is unchanged. Others have found an increase in stroke volume with or without aortic stiffening to be the basis of ISH in this age group. IDH often seems to develop in prehypertensive young adults, and the prognosis remains open to debate. One study found that IDH does not appear to predict the development of ISH but is a strong predictor of the later development of SDH. The report of a review of the literature indicated that below the age of 50, diastolic pressure was a greater predictor of coronary artery disease (CAD), whereas CAD risk in those age 60 and older was greater with elevated systolic pressure. In children, hypertension is a risk both for adult hypertension and for subsequent development of adult cardiovascular disease.
Another significant nonmodifiable risk factor is ethnicity, which combines race with genetics. Adult African Americans have the highest risk, but there is controversy about this finding for the pediatric popula- tion. A concrete reason for this finding in adults continues to elude researchers, although increased salt sensitivity seems most likely. The number of individual genes and their signaling pathways and organi- zational arrangements that affect the control of blood pressure are vast and beyond the scope of this text. Despite the identification of the genetic role in hypertension, specifying the mechanisms themselves is a challenge. Genetics may be responsible for low renin levels and salt
systolic and <80 mm Hg diastolic; stage 1 hypertension begins at a systolic pressure of 140 mm Hg or a diastolic pressure of 90 mm Hg (see Table 16.2). The range of pressures between normal blood pressure and stage 1 hypertension has been identified as prehypertension as part of efforts to initiate interventions early enough to prevent or at least slow the progression of the disease process. In 2014 the Eighth Joint National Committee released treatment goals based on age, but did not change the JNC 7 criteria for defining hypertension (see Table 16.2). These values differ from those established by the World Health Organiza- tion, International Society of Hypertension, and European Society of Hypertension/European Society of Cardiology in that those used in the United States are more conservative, identifying both normal and elevated levels at lower values. Standards for children and adolescents also have been established (see Table 16.1). Differing etiologies and risk factors have led to the differentiation of two major types of hypertension: primary and secondary.
Primary Hypertension Primary hypertension, also called essential hypertension, does not have a clearly identifiable known etiology and is therefore an idiopathic disorder. This differentiates primary from secondary hypertension, in which blood pressure elevation occurs secondarily to another, identifiable cause. Primary hypertension is by far the most common form of the disease, representing somewhere between 90% and 95% of the known cases. Early diagnosis and intervention for adults with hypertension has been a major focus of health care for many decades; the more recent escalating incidence in children has generated alarm. Primary hyperten- sion is increasing in prevalence among children and adolescents and is associated with positive family history of hypertension, obesity, and lifestyle factors. The prevalence of hypertension in children and ado- lescents is approximately 3.5%. Primary hypertension is rare before children reach the age of 10 years. Most of the hypertension diagnosed in preadolescents has a secondary etiology; by adolescence, 85% to 95% of the cases are primary hypertension.
Subtypes Primary hypertension in adults less than 60 years of age has one of several presentations: isolated systolic hypertension (ISH) in which the systolic blood pressure is ≥140 mm Hg and the diastolic pressure remains <90 mm Hg; isolated diastolic hypertension (IDH) in which the diastolic pressure is ≥90 mm Hg with a systolic pressure of <140 mm Hg; and the combination of systolic and diastolic hypertension (SDH) occurring when both systolic and diastolic pressures exceed prehypertension values. The differing subtypes are more prevalent in specific populations, and researchers increasingly focus on subtypes in long-term outcome predic- tions and interventions. The evidence suggests that systolic blood pressure is the major risk for subsequent cardiovascular disease.
Risk Factors In Western populations, there is a 90% lifetime risk for the development of hypertension. Many of the risk factors for hypertension have been known for decades and because so many are modifiable by lifestyle changes, targeted interventions are urged to address them. Other factors remain nonmodifiable, yet predictive of the development of hypertension. Ample data indicate that primary hypertension arises as a consequence of the interplay of several genes and environmental factors. Hypertension risk factors are listed in Table 16.5.
Increasing age is a nonmodifiable risk and an independent risk factor for hypertension beginning at midadulthood. Normal aging produces a rising systolic pressure over the course of a lifetime, whereas diastolic pressure increases for approximately 50 years, levels off during the sixth decade, and remains stable or declines thereafter. ISH is the dominant
TABLE 16.5 Risk Factors for the Development of Primary Hypertension
Nonmodifiable Risk Factors Modifiable Risk Factors
Increasing age Family history
Obesity Sedentary lifestyle Metabolic syndrome Dietary factors • Increased fat intake • Increased sodium intake • Inadequate potassium intake • Inadequate calcium intake Tobacco use Laboratory data • Elevated blood glucose • Elevated total cholesterol • Elevated triglycerides • Decreased high-density lipids (HDL) • Elevated low-density lipids (LDL)
CHAPTER 16 Alterations in Blood Pressure 345
of hypertension from the maternally provided intrauterine environment through the childhood and adolescent period. Maternal smoking, pregnancy-induced hypertension, and maternal dietary habits have been shown to influence the later development of hypertension. Low birth weight, followed later by rapid growth in both height and weight, seems to be more common in the history findings of patients with hypertension. Lower socioeconomic level of the mother and inadequate dietary calcium intake during pregnancy appear to increase the risk for later development of hypertension, whereas breast feeding seems to act as a protective factor against hypertension.
Outcomes End-organ damage. The great concern for the prevention, early
identification, and treatment of hypertension is because of the harm it may cause in body tissues and organs and the resulting significant morbidity and mortality (Fig. 16.6). This end-organ damage is a function of both the stage of hypertension and its duration. Unfortunately, early hypertension causes no overt clinical manifestations, and individu- als may have considerable end-organ damage before the diagnosis is made. This has earned hypertension the moniker of the “silent killer” and explains the rationale for screening programs to encourage early diagnosis. Hypertension is an important independent risk factor for the development of renal failure, stroke, and CAD. CAD and hypertension heighten the risk of angina, myocardial infarction, and heart failure. As the systolic and diastolic pressures rise from normal levels, mortal- ity from ischemic heart disease and stroke also increases linearly and progressively.
Cardiovascular disease is the most commonly recognized outcome of hypertension. For those older than age 50 years, systolic hypertension presents a far greater risk for the development of cardiovascular disease than does an elevated diastolic blood pressure. Risk for the occurrence
sensitivity, heightened responses to angiotensin II, altered amounts or responses to local tissue factors such as endothelin and nitric oxide, and any number of mechanisms accounting for primary hypertension that have been proposed. At the same time, none of the currently identified genetic disorders have been demonstrated to be accountable for a noteworthy proportion of hypertension in the general population, either as individual genes or as several genes working in concert. A family history of hypertension is a risk factor in both adults and children, although these mechanisms are unclear.
Modifiable risk factors are often called lifestyle factors in acknowledg- ment of the role of individual choice in both their development and their control. Both weight gain and obesity are significant risk factors for all subtypes of primary hypertension at all ages. Obesity has reached epidemic proportions and represents between 65% and 75% of the overall risk for the development of hypertension. Diet and activity levels contribute to the development and continuation of obesity in all age groups. Diets high in fat and sodium and low in potassium and in fruits have been found to increase the risk of developing hypertension. Obesity not only increases the risk of hypertension, but also is a risk factor for hyperlipidemia, salt sensitivity, and insulin resistance. Known as metabolic syndrome and characterized by elevated circulating insulin and lipid levels, hypertension, and obesity, this condition was previously only identified as a risk factor for hypertension in adults but is now becoming more common in children. It has been estimated that the prevalence of metabolic syndrome is 7% in adolescents at risk for becoming overweight, 29% in overweight adolescents, and 50% in severely obese adolescents. Elevated blood glucose levels, diabetes mellitus, and elevated total cholesterol level, as well as smoking and excessive alcohol intake, are all implicated as risk factors for hypertension.
Recently the apparent increased incidence of childhood and adolescent hypertension has spawned research into predictors of the development
Hypertension and Atherosclerosis
Heart and Arteries Kidneys
Increased myocardial work
Increased pressure and
decreased flow
Left ventricular
hypertrophy
Aneurysm Autoregulation failure
Increased myocardial
oxygen demand
Stable angina Acute coronary syndrome: Unstable
angina and myocardial infarction
End-stage renal failure
Heart failure Hemorrhage Ischemia
Atrophy
Transient Ischemic
Attacks (TIA)
Blindness
Ischemic stroke
Hemorrhagic stroke
Hemorrhage
Increased pressure and
decreased flow Retinal detachment
Brain Eyes
FIG 16.6 Effects of chronic hypertension and atherosclerosis on target end organs.
346 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
not attained for many patients with hypertension. The problem appears to be even greater in Europe, where only 5% to 12% achieve control compared with 27% in the United States. Cumulative data from clinical drug trials indicate the risk of stroke can be reduced 35% to 40% by decreasing blood pressure, myocardial infarction 20% to 25%, and heart failure by more than 50%. Approaches to treatment are affected by several factors, including the patient’s age, stage of hypertension, identified risk factors, concomitant disorders, ethnicity, and medication history. Interventions fall into two categories: lifestyle alterations and pharma- cologic interventions. Whatever the chosen therapy, it is important to get to the goal or target blood pressure for the individual. For those under 60 years of age, the goal is a systolic BP under 140 mm Hg and a diastolic BP under 90 mm Hg. One of the major changes of JNC 8 was to alter the target systolic BP to less than 150 mm Hg (instead of 140 mm Hg) for those 60 years old and older. The target diastolic BP was not changed and remains at under 90 mm Hg. JNC 8 also eliminated the various target BPs that were suggested in JNC 7 for those with conditions such as diabetes and heart disease. The overall approach to treatment is detailed in Fig. 16.7. Although an in-depth discussion of treatments is beyond the scope of this book, they are summarized in the following text.
Lifestyle alterations assume special importance because addressing modifiable risk factors has a documented effect in preventing hyperten- sion from developing, as well as treating it in adults and children. Primary prevention of hypertension could have a profound influence on the morbidity and mortality associated with end-organ damage throughout the world and includes lifestyle changes and effective screening procedures to facilitate early diagnosis. These lifestyle changes are listed in Table 16.6. Weight loss is clearly an important intervention, with substantial evidence that it reduces cardiovascular mortality. The efficacy of exercise in blood pressure control is also well substantiated by research. Brisk
of cardiovascular disease doubles with each incremental increase of 20/10 mm Hg in BP.
Hypertension itself is directly harmful to the arterial system, but it also acts in concert with the other risk factors associated with the development and acceleration of atherosclerosis. Atherosclerosis is the underlying pathophysiologic basis of coronary artery disease (see Chapter 18). Evidence of atherosclerosis has been found in adolescents and very young children. The increased tension that high blood pressure generates on the walls of arteries precipitates an increase in the accumulation of collagen as well as reduction, fragmentation, and breakage of elastin fibers. An ongoing low level of inflammation occurs in arteries exposed to hypertension, and combined with the dyslipidemia commonly seen, the development of atherosclerotic plaques is escalated. CAD predisposes to stable angina and the acute coronary syndrome of unstable angina and myocardial infarction (see Chapter 18).
Hypertension reflects an elevation in SVR; rising afterload increases myocardial oxygen demand and overall cardiac workload. In an effort to compensate for this increased effort, the left ventricle hypertrophies. The development of left ventricular hypertrophy also has been noted in children and adolescents. The CAD typically found in association with hypertension limits the supply of oxygen to the heart, and this combination of increased demand and decreased supply predisposes the heart to ischemia. Ischemia may result in stable or unstable angina or myocardial infarction. Myocardial infarction and left ventricular hypertrophy increase the risk for the development of heart failure. Patients may seek health care intervention because of these conditions so that the presence of hypertension is discovered only secondarily.
The atherosclerotic process described previously with coronary artery disease (Chapter 18) is likely to be the basis for the damage to the microcirculation of the kidneys that develops with chronic hypertension. Within a proscribed MAP, healthy kidneys are able to autoregulate blood flow delivered to the glomerulus, but with prolonged or severe hypertension this regulatory ability is lost and glomerular damage ensues. Damage to the glomerulus allows large molecules not normally filtered out of the bloodstream to appear in the urine. The presence of micro- albuminuria (proteinuria) is reflective of increased glomerular perme- ability and an early indicator of hypertensive renal injury. At this point, the patient is usually asymptomatic, but if interventions for blood pressure control are not initiated, renal impairment progresses, culminat- ing in end-stage renal disease, which requires long-term renal dialysis or transplantation.
Identifiable damage to the kidneys is often preceded by changes in the microcirculation of the retina of the eye. Atherosclerosis also contributes to the retinal injury produced by hypertension. The result may be retinal detachment or hemorrhage, which can cause blindness.
Hypertension and the accelerated development of atherosclerosis affect arteries of all sizes throughout the body. Decreased flow or rupture of weakened blood vessels within the brain results in strokes. Ischemic strokes are associated with atherosclerosis, whereas hypertension is the major risk factor for hemorrhagic strokes. This type of stroke results in high morbidity and mortality. Hypertension is also the primary risk factor for the development and rupture of aortic aneurysms. The peripheral arteries of the lower extremities are common targets of atherosclerosis, and the resulting peripheral vascular arterial disease is the source of significant impairment of independence and mobility and potential amputation in the elderly.
Treatment Interventions Effective treatment of hypertension results in decreased morbidity and mortality associated with cardiovascular, cerebrovascular, and renal disease. However, the goal of normal systolic and diastolic pressures is
TABLE 16.6 Lifestyle Modifications to Prevent and Treat Primary Hypertension in Adults*
Modification Recommendation Range of Sbp Reduction†
Weight reduction Attain and maintain BMI of 18.5–24.9 kg/m2
5–20 mm Hg/10 kg
DASH diet High in fruits and vegetables and low-fat dairy products with decreased total and saturated fat
8–14 mm Hg
Decreased sodium intake
No more than 100 mmol/day (2.4 gm sodium or 6 gm sodium chloride)
2–8 mm Hg
Exercise plan Regular aerobic activity for at least 30 min/day most days of week
4–9 mm Hg
Moderate intake of alcohol
≤2 drinks/day for men ≤1 drink/day for women
2–4 mm Hg
Modified from Ozemek C, Phillips SA, Popovic D, et al: Nonpharmacologic management of hypertension: A multidisciplinary approach. Curr Opin Cardiol, March 17, 2017. [Epub ahead of print.] BMI, Body mass index; DASH, Dietary Approaches to Stop Hypertension. *Smoking cessation increases the overall reduction in cardiovascular risk. †Results vary based on individual response, amount, and time of modification accomplished.
CHAPTER 16 Alterations in Blood Pressure 347
Adult aged ≥18 years with hypertension
Implement lifestyle Interventions (continue throughout management).
Set blood pressure goal and initiate blood pressure lowering-medication based on age, diabetes, and chronic kidney disease (CKD).
General population (no diabetes or CKD) Diabetes or CKD present
Age ≥60 years Age <60 years All ages Diabetes present No CKD
All ages CKD present with or without diabetes
Blood pressure goal SBP < 150 mm Hg DBP < 90 mm Hg
Blood pressure goal SBP < 140 mm Hg DBP < 90 mm Hg
Blood pressure goal SBP < 140 mm Hg DBP < 90 mm Hg
Blood pressure goal SBP < 140 mm Hg DBP < 90 mm Hg
Nonblack Black
Initiate thiazide-type diuretic or ACEI or ARB or CCB, alone or in combination.a
All races
Initiate thiazide-type diuretic or CCB, alone or in combination.
Initiate ACEI or ARB, alone or in combination with other drug class.a
Select a drug treatment titration strategy A. Maximize first medication before adding second or B. Add second medication before reaching maximum close of first medication or C. Start with 2 medication classes separately or as fixed-dose combination.
At goal blood pressure? Yes
Yes
Yes
Yes
No
Reinforce medication and lifestyle adherence. For strategies A and B, add and titrate thiazide-type diuretic or ACEI or ARB or CCB (use medication class not previously selected and avoid combined use of ACEI and ARB). For strategy C, titrate doses of initial medications to maximum.
Reinforce medication and lifestyle adherence. Add and titrate thiazide-type diuretic or ACEI or ARB or CCB (use medication class not previously selected and avoid combined use of ACEI and ARB).
Reinforce medication and lifestyle adherence. Add additional medication class (eg. β-blocker, aldosterone antagonist, or others) and/or refer to physician with expertise in hypertension management.
Continue current treatment and monitoring.b
SBP indicates systolic blood pressure; DBP, diastolic blood pressure; ACEI, angiotensin-converting enzyme; ARB, angiotensin receptor blocker; and CCB, calcium channel blocker.
a ACEIs and ARBs should not be used in combination. b If blood pressure fails to be maintained at goal, reenter the algorithm where appropriate based on the current individual therapeutic plan.
At goal blood pressure? No
At goal blood pressure? No
At goal blood pressure? No
FIG 16.7 Treatment recommendations for primary hypertension. (From James PA, Oparil S, Carter BL, et al: 2014 Evidence-based guideline for the management of high blood pressure in adults: Report from the panel members appointed to the eighth joint national committee (JNC 8). JAMA, 311(5):507-520, 2014.) ACEI, Angiotensin-converting enzyme inhibitor; ARB, angiotensin receptor blocker; BB, β-blocker; BP, blood pressure; CCB, calcium channel blocker; DBP, diastolic blood pressure; SBP, systolic blood pressure.
348 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
ruled out, but from the age of 18 years, primary hypertension is far more common. Interventions for secondary hypertension are directed at removing the cause, if possible. Drug therapy may be indicated, using the same agents previously discussed in the treatment of primary hypertension. As with primary hypertension, both the severity of the elevation and its duration must be considered because they heighten the risks for end-organ damage. The most common etiologies of second- ary hypertension are discussed next.
Renal disease may be the result of a disease process either involving the parenchyma of the kidney or involving its vascular system. Hyperten- sion is a risk factor for the development of renal failure, but it can also develop secondary to renal pathologies. In adults with renal disease, hypertension is common and develops early, primarily as a result of heightened SNS activity. In children one of the most common causes of hypertension is renal disorders; however, by the age of 12 to 18, the major cause becomes idiopathic primary hypertension. As renal disease progresses, the kidneys’ ability to excrete sodium effectively is lost and the RAAS, as well as the SNS, are inappropriately activated. Renal artery stenosis should be considered in the diagnostic evaluation of new-onset hypertension in patients younger than 30 or older than 55 years, and an abdominal bruit is often found on auscultation.
Another common cause of hypertension in children younger than age 6, along with renal disease, is coarctation of the aorta. Without treatment, median life expectancy is only 31 years, with death from
exercise of at least 30 minutes most days of the week plus the acceptance of the Dietary Approaches to Stop Hypertension (DASH) diet address a number of hypertensive risk factors. Because they have been found to augment drug efficacy, these lifestyle adjustments also are included for those who require medication interventions for primary hypertension; however, it is unlikely that lifestyle interventions alone will be sufficient for those with stage 1 hypertension.
Drug therapy for hypertension addresses one or more of the variables responsible for blood pressure: heart rate, SVR, and stroke volume, which is primarily a function of the volume of blood returned to the heart during diastole. This is reflected in how the classifications of oral medications used in the treatment of hypertension are listed in Box 16.1. Combination drugs, taking advantage of the effects of more than one classification without increasing the total number of medications a patient is taking, are becoming increasingly popular. Because there is considerable variation in individual response to antihypertensive drug therapy, long-term monitoring is essential, and alterations in treatment may be necessary.
Secondary Hypertension When hypertension is found to have a specific identifiable cause, it is termed secondary hypertension. The cause may be a specific pathology or condition that results in hypertension, or the development of high blood pressure may be the result of the ingestion of certain drugs, foods, or chemicals. Conditions associated with secondary hypertension are listed in Box 16.2. Some common substances that increase blood pressure are shown in Box 16.3.
In infants and preschool children, hypertension is usually of a second- ary etiology, and primary hypertension is rare. In a study of 220 hypertensive children, 85% of the cases were found to be of a secondary etiology. The four variables independently associated with primary hypertension were absence of signs and symptoms, normal serum creatinine level, family history of hypertension, and elevated body weight. In the diagnostic assessment of adults, secondary etiologies should be
Reduce Stroke Volume Thiazide diuretics Loop diuretics Potassium-sparing diuretics Aldosterone receptor blockers Angiotensin (ACE) inhibitors Angiotensin II receptor blockers Venodilators
Reduce Systemic Vascular Resistance Combination α1- and β-blockers Angiotensin-converting enzyme (ACE) inhibitors Angiotensin II receptor blockers Calcium channel blockers α1-Blockers Central α2 agonists Direct-acting vasodilators (arterial)
Decrease Heart Rate β-Blockers Combination α1- and β-blockers
BOX 16.1 Drug Classifications Used to Treat Hypertension and the Variables They Affect
Renal (Parenchymal or Vascular) Renal artery stenosis Renal failure* (end-stage renal failure attributable to any etiology; acute renal
failure) Polycystic kidney disease Glomerulonephritis* Hypertensive nephrosclerosis
Cardiovascular Coarctation of the aorta*
Tumors Pheochromocytoma* Neuroblastoma* Wilms tumor* Adrenal adenocarcinoma*
Endocrine Hyperthyroidism* Cushing disease* Congenital adrenal hyperplasia* Primary hyperaldosteronism*
Neurologic Guillain-Barré syndrome* Increased intracranial pressure*
Other Systemic arteritis (e.g., Henoch–Schönlein purpura) Sleep apnea*
BOX 16.2 Common Pathologic Causes of Secondary Hypertension in Children and Adults
*Also seen in children.
CHAPTER 16 Alterations in Blood Pressure 349
Obstructive sleep apnea (OSA) is closely associated with obesity; it is found in 2% to 4% of adults, and hypertension is present in 45% to 60% of those diagnosed with OSA. Historically, there has been debate as to whether OSA itself was an etiologic factor in hypertension or whether obesity simply increased the risk of both. Researchers now take the position that the potential causality between hypertension and OSA entails both an independent role of OSA in chronic blood pressure elevation and the obesity–hypertension linkage. Certain molecular mechanisms, including increased vasomotor activity mediated by angiotensin II, endothelin, and nitric oxide, may occur in both. The severity of OSA has a direct relationship to the level of blood pressure elevation, and when untreated, mortality and morbidity resulting from cardiovascular pathologies is increased. A milder form of OSA is found in children, and evidence is increasing that it, too, is associated with discernible cardiovascular abnormalities, including hypertension, decreased arterial distensibility, and left ventricular hypertrophy.
Pheochromocytoma is a catecholamine-secreting tumor of the adrenal medulla that generates hypertension on either a short-term or a long-term basis. The condition is rare, although well recognized; it can result in angina, myocardial infarction, acute heart failure, dilated cardiomyopathy, cerebral ischemia or hemorrhagic stroke, and cardiac dysrhythmias. Treatment involves control of blood pressure pharmacologically and then surgical removal of the tumor.
Hypertension is a predictable finding in primary hyperaldosteronism. Most frequently it is caused by a hypersecreting benign adenoma of the adrenal cortex or either unilateral or bilateral idiopathic adrenal hyperplasia. Although evidence exists that aldosterone is produced by other body tissues, hormone from the adrenal gland represents by far the majority of circulating aldosterone. The ratio of aldosterone to renin may be genetically influenced, but this has not been consistently documented. For decades, hyperaldosteronism was thought to be a rare cause of hypertension; it is now known to be the most common form of secondary hypertension, responsible for at least 12% of all cases, and it is believed that this number would be higher with improved screening. Screening for hyperaldosteronism is recommended for hypertensive patients with decreased potassium levels or those found to be refractive to three or more antihypertensive agents. Diagnosis requires measurement of serum aldosterone and renin levels. Surgical removal of the involved adrenal gland results in a cure for 30% to 60% of cases and improved blood pressure levels in the remainder. Removal of one or both adrenal glands in bilateral disease rarely appears curative, so bilateral disease is treated medically with agents that block aldosterone’s binding sites in the kidney.
Hypertensive Emergencies and Urgency Acute rises in blood pressure are identified by several names, complicating discussion of the condition. Hypertensive crisis (HTN-C) was the term introduced to replace the initial term malignant hypertension, which originated as early as 1914. Eighty million Americans have been diagnosed with hypertension, and about 7% of these will experience a hypertensive crisis during their lifetime. The 1 year mortality of untreated HTN-C is 79% with a median survivial of 10 months. Most cases of HTN-C seem to be caused by secondary hypertension or poorly or uncontrolled primary hypertension. Some other notable etiologies for hypertensive crisis include autonomic dysfunction, as is seen in Guillain-Barré syndrome, and autonomic dysreflexia, which can manifest in patients with high spinal cord injuries as well as in patients discontinuing certain drugs, such as β-blockers. The contemporary use of hypertensive crisis is associated with two differentiated sub groups: hypertensive emergency and hypertensive urgency. In both cases, the diastolic blood pressure is usually >120 mm Hg. Hypertensive emergencies are situations character- ized by a sudden increase in either or both systolic and diastolic pressures
hypertension-related systemic effects. It is for this reason that palpation of peripheral pulses and measurement of blood pressure in both arms are recommended both in routine pediatric physical examinations and in physical examinations in those whom hypertension is present. Early diagnosis facilitates early surgical intervention, reducing both premature mortality and end-organ damage. Hypertension persists after surgical repair in 20% to 30% of patients, but the pathophysiologic basis of this finding has yet to be determined. Unfortunately, this means that these individuals remain at risk for the long-term effects and increased mortality associated with hypertension.
Hypertension arises in 5% to 12% of all pregnancies. Hypertension during pregnancy is of concern because of increased risk of maternal, fetal, and neonatal morbidity and mortality. Preterm labor, abruptio placentae, disseminated intravascular coagulation, hemorrhagic stroke, liver failure, and acute renal failure are all potential outcomes of hypertension during pregnancy. When hypertension is diagnosed during pregnancy, it is classified into one of four categories: chronic hypertension (preexisting), preeclampsia, chronic hypertension with superimposed preeclampsia, or gestational hypertension. Pharmacologic interventions are used cautiously, and lifestyle interventions such as limiting salt intake and avoiding the use of alcohol or tobacco may be sufficient.
Over-the-Counter Drugs, Prescription Drugs, and Illicit Drugs Sympathomimetic agents (e.g., decongestants, amphetamines) Glucocorticoids Cocaine Calcineurin inhibitors (e.g., cyclosporine, tacrolimus) Oral contraceptives, especially if high in estrogen Nonsteroidal antiinflammatory drugs Erythropoietin Antidepressants Phenylpropanolamine analogs (e.g., ma huang, “herbal ecstasy”) Nicotine (and withdrawal) Anabolic steroids Narcotic withdrawal Ergotamine St. John’s wort
Foods Foods containing tryptophan or tyramine
• Chicken liver • Pickled herring • Yeast extract • Lima beans • Aged cheeses • Beer and wine
Caffeine Sodium chloride Alcohol Licorice
Chemical Elements Lead Mercury Lithium salts Thallium and other heavy metals
BOX 16.3 Substances Known to Contribute to High Blood Pressure
350 UNIT IV Oxygen Transport, Blood Coagulation, Blood Flow, and Blood Pressure
accompanied by evidence of acute end-organ damage. These same references use the term hypertensive urgency to describe similar blood pressure elevations, but without the end-organ damage. The differentia- tion is necessary because it is the presence of end-organ damage and not the level of the blood pressure that usually determines the treatment.
Hypertensive emergencies can occur in the previously undiagnosed patient or the patient with chronic hypertension; these emergencies are twice as common in males as in females, and elderly African Americans have the highest incidence. Hypertensive emergencies can occur at any age and are estimated to be responsible for more than 25% of emergency department visits. Of all the end-organ damage with which hypertensive emergencies are associated, abnormalities of the central nervous system are the most frequent. These include ischemic stroke, encephalopathy, and subarachnoid or intracerebral hemorrhages. Acute heart failure, including acute pulmonary edema, myocardial infarction, and aortic dissection, is among the common cardiovascular complications, and retinopathy is a frequent finding. From a pathophysiologic standpoint, hypertensive emergencies are the result of multiple factors, including an abrupt release of catecholamines, mechanical stress producing endothelial damage, inappropriate activation of the RAAS, and oxidative stress. These changes overwhelm the normal autoregulatory mechanisms and result in a sudden and significant increase in systemic vascular resistance, initiating an inflammatory response. Because of the evidence of end-organ damage, recommendations are for the rapid but controlled reduction of blood pressure using primarily parenteral antihypertensive agents closely monitored in a critical care setting. The standard goal is to decrease the diastolic blood pressure to 100 to 110 mm Hg or about a 25% decrease in the MAP.
Hypertensive urgency is actually more common than hypertensive emergency. The approach to treatment of hypertensive urgency, when end-organ damage is not evident, is quite different. Once measurement error is eliminated, other sources of rapid-onset reactive hypertension should be ruled out. These may include anxiety, pain, abrupt withdrawal of alcohol or antihypertensive medications, postoperative hypertension especially after cardiac and vascular surgery, and full bladder. In some of these cases, interventions other than antihypertensive drugs are indicated. In patients with hypertensive urgency, rapidly decreasing blood pressure has been associated with a substantial mortality. Blood pressure in these patients is usually brought under control over 24 to 48 hours through the use of oral medications, although there are indications for more aggressive intervention with parenteral agents.
KEY POINTS • Primary hypertension has no identifiable etiology, but risk factors include
age; dietary factors, including excess sodium and obesity; ethnicity and family history; sedentary lifestyle; and tobacco use.
• In adults, a normal blood pressure is <120 mm Hg systolic and <80 mm Hg diastolic pressure. Stage 1 hypertension begins with a systolic pressure of 140 mm Hg or a diastolic pressure of 90 mm Hg. Between these values, the individual is said to have prehypertension, and interventions related to lifestyle changes should be initiated.
• Treatment of primary hypertension includes lifestyle modifications and drug therapy. Lifestyle changes address the modifiable risk factors. Drug therapy targets one or more of the variables of blood pressure: heart rate, stroke volume, and systemic vascular resistance (SVR).
• In secondary hypertension, the elevated blood pressure is the result of identifiable pathologic conditions or certain drugs or foods. It is less common in adults, but is the major cause of hypertension in children. The underlying cause must be treated; drug interventions may also be necessary.
• Hypertension is usually asymptomatic until there is significant damage to vulnerable organs or tissues. This process is augmented by atherosclerosis in the coronary, renal, and cerebral arteries. Ultimately, hypertension increases the risk of stroke, angina, myocardial infarction, heart failure, renal failure, and blindness caused by retinopathy.
• Extreme and rapidly developing hypertension is divided into two groups: emergency, where there is evidence of end-organ damage; and urgency, where there is not. Urgencies are treated more slowly and with oral medications; emergencies require hospitalization and more rapid-acting interventions.
LOW BLOOD PRESSURE The mechanism for short-term maintenance of blood pressure described previously is designed to respond rapidly to changes in both internal and external environments. Over the course of the day, this system of increased autonomic activity usually accommodates changes in activity, especially changes in position. Recall that when moving from a supine position to sitting or standing, gravity pulls blood away from the upper body and stimulates the baroreceptors in the carotid arteries and aortic arch; 500 to 1000 mL of a person’s circulating blood volume pools in the venous system of the lower extremities. Messages transmitted from these receptors to the vasomotor center of the brain result in SNS activation, increasing both heart rate and arterial smooth muscle tone. The effect of these SNS-mediated responses to position change is the rapid increase in blood pressure and improved perfusion to the upper body, especially the brain. When this mechanism fails to produce this response in a timely fashion, the drop in blood pressure with position change is called orthostatic hypotension (OH), and may have serious consequences.
OH (postural) is a widespread but often unrecognized disorder with potentially serious consequences. It has been reported to occur in 6% to 30% of healthy elderly persons with normal blood pressures. When perfusion is not rapidly returned to the brain, dizziness, blurred vision, fainting (syncope), and injury from falls are familiar outcomes. But OH can have even more serious consequences. It has been demonstrated to be associated with cardiovascular disease, and research results indicate it may predict stroke, cognitive impairment, and death.
The standard definition of orthostatic hypotension is a decrease in systolic blood pressure of ≥20 mm Hg or a decrease in diastolic pressure that is ≥10 mm Hg within 3 minutes of moving to an upright position. An excessive increase in heart rate, by 20 to 30 beats/minute, is also diagnostic. Some researchers have found that the response can be delayed well beyond that timeframe in the elderly, perhaps up to 10 minutes or more.
An ineffective response to position change may be associated with problems within the nervous system resulting from a number of pathologies, a vasovagal reaction, depletion in circulating volume, or cardiac dysrhythmias. It can also occur as an adverse effect of drug therapy, most frequently antihypertensive, tricyclic antidepressant, and pain medications. The elderly are at special risk of OH when they are taking these medications. They also commonly have an inadequate fluid intake, age-related decreases in autonomic nervous system function, and disorders such as Parkinson disease and diabetes with which postural hypotension is associated. OH also is more common in the presence of arterial stiffness, which may be caused by an alteration in baroreceptor sensitivity. Alcohol ingestion and exposure to heat will also cause vasodilation and may precipitate OH.
A normal response to the SNS activation by the baroreceptors depends on effective functioning of all components of the system. Damage to
CHAPTER 16 Alterations in Blood Pressure 351
Squatting, bending forward to lower the head, or crossing the legs while tightening calf, thigh, and buttocks muscles may counter the effects. Elastic compression stockings and abdominal binders have documented value, as does elevating the head of the bed. Unless contraindicated, liberal intake of both salt and fluids is encouraged. Medication history should be carefully reviewed; a thorough history and physical examina- tion, chemistry panel and blood count, and 12-lead electrocardiogram should be carried out. Elderly patients may find use of a cane with a folded tripod seat or a walker equipped with a seat helpful to reduced OH-related falls.
the vasomotor center or neurons within the central or peripheral nervous system may be responsible for a lack of sufficient response. This may be caused by disease or blunted responses associated with normal aging, prolonged bed rest, or medications. The prevalence of OH in Parkinson disease has been reported to be 37% to 58%. Direct damage to nerve fibers by elevated blood glucose levels in diabetes or an autoimmune injury as in multiple sclerosis can blunt the response, as well as impaired transmission resulting from spinal cord injury. Altered sensitivity of the baroreceptors has been well documented. The vasovagal response is a paradoxical increase in parasympathetic activity and a decrease in sympathetic activity resulting in bradycardia and vasodilation rather than an increase in heart rate and vasoconstriction. This contradictory response can be triggered by other stimuli such as stress, painful or unpleasant events, and activities such as coughing that increase intraabdominal or intrathoracic pressures. Dysrhythmias that impair cardiac output or an inadequate volume in the vascular space to respond to vasoconstriction signals will both also produce OH. Volume depletion as occurs in hemorrhage, burns, or severe diarrhea may reach a point where normal compensatory responses to position changes are inad- equate; this happens after about a 30% volume loss. The development of postural changes in vital signs is a useful clinical indicator of inadequate circulating volume.
Because OH is often caused by physiologic conditions that are not amenable to modification, patients must be taught how to make changes to avoid initiating the response or to reduce its impact. In addition to changing positions slowly to reduce the initial drop in blood pressure, patients are encouraged to avoid hot environments (baths or saunas), because of their vasodilating effects, and large or carbohydrate-heavy meals, because postprandial hypotension can result from the increased blood volume drawn to the splanchnic bed. When symptoms begin, before fainting, actions can be taken to prevent the progression of OH.
KEY POINTS • Orthostatic hypotension (OH) is an extreme response to the change from
supine to upright position, where the activation of the short-term control mechanisms is slow or inadequate in its response. Heart rate and diastolic and systolic blood pressures are more affected by gravitational effects of position change than is normally expected.
• OH results in dizziness, blurred vision, confusion, and possible syncope, which may cause injuries secondary to falls. OH is associated with cardio- vascular disease and is a risk factor for stroke, cognitive impairment, and death.
• OH may be the result of a number of pathologies involving the baroreceptor response, damage to the vasomotor center or the peripheral nervous system, a vasovagal reaction, or cardiac dysrhythmias, or it may be an adverse drug effect. Most often it occurs because of insufficient circulating volume.
• Nonpharmaceutical interventions may be used if the cause cannot be ameliorated.
Adequate perfusion of body organs and tissues depends on the main- tenance of arterial blood pressure. This is accomplished through the highly orchestrated interaction of multiple systems on both a short-term and a long-term basis.
Blood pressure may be elevated secondary to other pathologic conditions or to food or drug ingestion. Secondary hypertension is treated by managing the causative factors, although medication also may be necessary. More commonly the etiology is not discernible, although risk factors are identified, and primary hypertension is
diagnosed. Primary hypertension affects millions of Americans and is a public health concern worldwide. Once identified, lifestyle modifications and pharmaceutical interventions are initiated to avoid the significant pathologic outcomes to body organs.
When the mechanism for short-term blood pressure regulation fails to adequately respond to position changes, the resulting OH can cause syncope and potential injury. If the cause cannot be identified and treated, accommodations can be used to decrease its occurrence and minimize risks.
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UNIT V Cardiac Function
Cardiac Function Jacquelyn L. Banasik
K E Y Q U E S T I O N S • How are events of the cardiac cycle reflected in pressure and
volume changes within the cardiac chambers? • What factors affect the blood supply to myocardial tissue? • How does sarcomere cross-bridge formation lead to muscle cell
contraction? • What is the process of excitation-contraction coupling in heart
muscle cells? • How are action potentials generated and conducted in myocardial
and pacemaker cells?
• How does the electrocardiogram relate to impulse conduction through the heart?
• How do heart rate, preload, afterload, and contractility affect cardiac output and cardiac workload?
• What diagnostic tests are used to evaluate cardiac structure and function?
C H A P T E R O U T L I N E Cardiovascular Anatomy, 355
Heart, 355
Circulatory System, 356
Cardiac Cycle, 358 Isovolumic Contraction, 359
Ventricular Ejection, 360
Isovolumic Relaxation, 360
Atrial Events, 360
Aortic and Pulmonary Artery Events, 360
Coronary Circulation, 360 Anatomy of the Coronary Vessels, 360
Regulation of Coronary Blood Flow, 361
Cardiac Myocytes, 363 Myocyte Structure, 363
Structure of the Contractile Apparatus, 363
Characteristics of Contractile Filaments, 365
Molecular Basis of Contraction, 366 Overview of Contraction, 366
Sliding Filament/Cross-Bridge Theory of Muscle Contraction, 366
Role of Calcium in Muscle Contraction, 367
Energy of Muscle Relaxation, 367
Cardiac Energy Metabolism, 368 Oxygen Utilization, 368
Substrate Utilization, 369
Cardiac Electrophysiology, 369 Cardiac Resting Potential, 369
Cardiac Action Potential, 369
Phase 0, 369 Phase 1, 370 Phase 2, 370 Phase 3, 370 Phase 4, 370
Rhythmicity of Myocardial Cells, 370
Specialized Conduction System of the Heart, 371
Autonomic Regulation of Rhythmicity, 372
Electrocardiography, 372 Determinants of Cardiac Output, 374
Determinants of Heart Rate, 374
Determinants of Stroke Volume, 375
Volume of Blood in the Heart (Preload), 375 Contractile Capabilities of the Heart (Contractility), 375 Impedance to Ejection From the Ventricle (Afterload), 376
Cardiac Workload, 376
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
17
CHAPTER 17 Cardiac Function 355
produces the contractile force; and epithelial tissue, which lines the cardiac chambers and covers the outer surfaces of the heart. The fibrous skeleton includes an extensive network of matrix that supports cardiac cells and four rings that provide a firm scaffold for attachment of the cardiac valves (Fig. 17.2). Four cardiac valves control the direction of blood flow through the heart (Fig. 17.3). The mitral valve (bicuspid) directs blood flow from the left atrium to the left ventricle, whereas the tricuspid valve directs blood from the right atrium to the right ventricle. The edges of these atrioventricular (AV) valves are attached to rings formed by the fibrous skeleton. Valve leaflets are tethered to papillary muscles of the ventricular chambers by connective tissues called chordae tendineae. Papillary muscles attach to ventricular walls and help prevent the valve leaflets from bending backward into the atria during ventricular contraction (Fig. 17.4). The AV valves open passively during diastole when the pressure of blood in the atria exceeds that in the ventricles. Ventricular contraction reverses the pressure gradient and causes AV valves to snap shut, preventing blood from flowing backward into the atria.
Two semilunar valves are located in the ventricular outflow tracts. The pulmonic valve lies between the right ventricle and pulmonary artery, and the aortic valve lies between the left ventricle and aorta. Compared with the AV valves, the semilunar valves are thicker and are not supported by fibrous cords. They open and close passively according to pressure gradients, just as the AV valves do. When intraventricular pressures exceed pulmonary and aortic pressures, the semilunar valves remain open and then close when ventricular pressures fall below aortic and pulmonary artery pressures.
The cardiac muscle layer (myocardium) produces the contractile force that pushes blood through the circulatory system. Heart muscle is organized into four separate chambers of varying muscular wall thickness, reflecting the degree of pressure each chamber must generate to pump blood. Atria serve primarily as conduits and have a thinner
The primary function of the heart is to produce the driving force that propels blood through the vessels of the circulatory system. Along with the lungs, the heart works to distribute oxygenated blood and nutrients to tissues and organs of the body. Complex regulatory mechanisms function to match the cardiac output with the metabolic needs of the tissues. Cardiac dysfunction can lead to abnormal function or death of cells in tissues throughout the body. Cardiovascular disease is the leading cause of mortality in the United States, and a significant proportion of the population suffers from physical limitations associated with impaired cardiac function. Familiarity with cardiac anatomy and physiology is requisite to understanding cardiac diseases and therapy.
CARDIOVASCULAR ANATOMY Heart The heart is located in the mediastinum, suspended between the lungs; behind the sternum; and in front of the vertebral column, thoracic aorta, and esophagus (Fig. 17.1). When viewed from the front, the heart appears to be rotated to the left so that the right atrium and right ventricle are most anterior. The base of the heart protrudes somewhat into the right side of the chest and is relatively fixed in place by its attachments to the great vessels. The apex of the heart lies primarily in the left side of the chest and is directed forward toward the anterior chest wall. With each heartbeat, a characteristic thrust, or point of maximal impulse (PMI), is generated and can be palpated where the apex strikes against the chest. The PMI is normally located on the left side of the chest where the fifth intercostal space and midclavicular line intersect. Variations in heart size and position within the chest may be related to age, body size, shape, weight, or pathologic conditions of the heart and other nearby structures.
Functionally important cardiac tissues include connective tissues, which form the fibrous skeleton and valves; cardiac muscle, which
Esophagus
Vertebral column
Thoracic aorta
Sternum
Lungs
FIG 17.1 Position of the heart in the mediastinum. The base of the heart protrudes into the right side of the chest, whereas the apex lies in the lower left side of the chest.
Endocrine Function of the Heart, 376 Tests of Cardiac Function, 376
Electrocardiography, 376
Magnetic Resonance Imaging and Computed Tomography, 378
Echocardiography, 378
Nuclear Cardiography, 379
Cardiac Catheterization/Coronary Angiography, 379
356 UNIT V Cardiac Function
FIG 17.2 Connective tissue extracellular matrix of the heart with all cells removed developed by Dr. Doris Taylor’s lab. (Image provided by Regenerative Medicine Research Labs at Texas Heart Institute.)
Aortic or pulmonary
TricuspidA B
Atrioventricular (AV) node
Mitral
Right coronary artery
Tricuspid valve
Right ventricleOrifices of the coronary arteries
Aortic valve
Pulmonary valve
Left coronary artery
Coronary sinus
Left ventricle
Mitral valve
FIG 17.3 A, Position of the heart valves as viewed from above. B, Configuration of the heart valves showing the two cusps of the mitral valve and the three cusps of the tricuspid valve. The pulmonary and aortic valves have three leaflets.
layer of muscle than the ventricles. The left ventricular muscle is two to three times thicker than that of the right ventricle because higher pressures are required to eject blood into the systemic circulation than into the pulmonic system. Normal chamber pressures are shown in Table 17.1. Alterations in chamber pressures may reflect pathologic cardiovascular changes such as valvular disorders, blood volume abnormalities, and heart failure (see Chapters 18 and 19).
Cardiac chambers and valves are lined by a layer of squamous epithelial cells called the endocardium. The endocardial layer provides a smooth surface that prevents clotting and minimizes trauma to red blood cells. The endocardium is continuous with the endothelium of the vascular system. Outer surfaces of the heart are also covered by a layer of epithelial cells called the epicardium, which is part of a protective
covering called the pericardium. The pericardium is composed of two layers that envelop the heart like a sac (Fig. 17.5). The inner layer (visceral pericardium or epicardium) is attached directly to the heart’s outer surface, whereas an outer layer (parietal pericardium) forms a sac around the heart. The parietal pericardium is composed of an epithelial layer and a tough fibrous layer.
Visceral and parietal pericardial layers are separated by a thin, fluid- filled space (pericardial space) that usually contains 10 to 30 mL of serous fluid. This fluid lubricates pericardial surfaces and reduces friction while the layers slide against one another during cardiac contraction. Accumulations of fluid in the pericardial space or inflammation of the pericardial sac can restrict cardiac filling and impair cardiac output.
Circulatory System The circulatory systems of the lungs and body can be viewed as two separate but interdependent systems (Fig. 17.6). The left-sided heart chambers produce the force to propel blood through the vessels of the systemic (body) circulation. The left atrium receives oxygenated blood from the lungs by way of the pulmonary veins and delivers it to the
TABLE 17.1 Normal Pressures in the Heart
Location Pressure (mm Hg)*
Right atrium 0–8 Right ventricle 15–28/0–8 Pulmonary artery 15–28/4–12 Left atrium 4–12 Left ventricle 100–120/4–12 Aorta 100–120/60–80
*Right and left atrial pressures listed as means; other pressures written as systolic/diastolic.
CHAPTER 17 Cardiac Function 357
visible pulsations in the jugular veins. An increased right atrial pressure may be observed as distention within the jugular veins.
The right side of the heart receives deoxygenated blood from the systemic circulation and pumps it through the lungs by way of the pulmonary artery. The pulmonary artery divides into left and right branches, which subdivide to supply blood to pulmonary capillary beds. Exchange of respiratory gases occurs at the pulmonary capillaries so that blood delivered to the left atrium by the pulmonary veins is well oxygenated.
Blood flow through the left and right heart chambers is connected in series such that the output of one becomes the input of the other. Thus the functions of the right and left sides of the heart are interde- pendent. Failure of one side of the heart to pump efficiently soon leads to dysfunction of the other side.
Characteristic changes in the anatomy and physiologic functioning of the heart and circulatory systems occur with aging (see Geriatric Considerations: Changes in the Heart). In general, these changes result in a decreased cardiac reserve and a greater predisposition to cardiac muscle ischemia.
left ventricle. This oxygenated blood is pumped by the left ventricle into the aorta, which supplies the arteries of the systemic circulation. Venous blood is collected from capillary networks of the body and returned to the right atrium by way of the vena cavae. Blood from the head returns to the right atrium through the superior vena cava; blood from the body returns via the inferior vena cava. There are no valves between the vena cavae and the right atrium, and the atrial pressure waves that are generated during the cardiac cycle cause characteristic
Left atrium
Aorta
Pulmonary artery
Mitral valve
Left ventricle
Right ventricle
Papillary muscles
Pulmonary valve
Superior vena cava
Inferior vena cava
Tricuspid valve
Chordae tendineae
Right atrium
Aortic valve
FIG 17.4 Chordae tendineae and papillary muscles attach the mitral and tricuspid valve leaflets to the ventricular myocardium.
Endocardium
Myocardium
Pericardial space
Visceral pericardium
(epicardium)
Parietal pericardium
Fibrous layer
FIG 17.5 Pericardial sac is composed of two layers separated by a narrow, fluid-filled space. The visceral pericardium (epicardium) is attached directly to the heart’s surface, whereas the parietal pericardium forms the outer layer of the sac.
Capillaries
Pulmonary circulation
Systemic circulation
Capillaries
Right ventricle
Left ventricle
Left atrium
Right atrium
FIG 17.6 Systemic and pulmonary circulations viewed as separate but interdependent systems. The right ventricle pumps blood through the pulmonary vasculature, whereas the left ventricle pumps blood through the systemic circulation.
358 UNIT V Cardiac Function
CARDIAC CYCLE Each heartbeat is composed of a period of ventricular contraction (systole) followed by a period of relaxation (diastole). The interval from one heartbeat to the next is called a cardiac cycle and includes ventricular, atrial, and aortic (or pulmonic) events. Each of these events is associated with characteristic pressure changes within the cardiac chambers. Pressure changes result in valvular opening and closing and unidirectional movement of blood through the heart. The various events of the cardiac cycle are illustrated as a function of time in Fig. 17.7. Another method of graphing ventricular function is the pressure–volume loop (Fig. 17.8). Pressure–volume loops are useful for assessing the relationships between pressure and volume at various points in the cardiac cycle to evaluate
KEY POINTS • Blood flows from the right atrium to the right ventricle through the tricuspid
valve. The pulmonic valve lies between the right ventricle and the pulmonary artery. Blood flows from the left atrium to the left ventricle through the mitral valve. The aortic valve lies between the left ventricle and the aorta.
• Heart muscle (myocardium) is lined with endothelium on the inner surface and covered with epicardium on the outer surface.
• The pericardial sac envelops and protects the heart from friction. • The right-sided heart chambers pump deoxygenated (venous) blood through
the lungs. The left-sided heart chambers pump oxygenated blood through the systemic circulation.
Ventricular pressure
Ventricular volume
Electrocardiogram
Phonocardiogram
SystoleSystole
120
100
80
60
40
20
0 130
90
50
Diastole
Atrial pressure
Aortic pressure
Atrial systoleDiastasisEjection
Rapid inflow
Isovolumic contraction
Aortic valve opens
Aortic valve closes
A-V valve closes
A-V valve opens
a c v
T
S
R
Q
P
3rd 4th 2nd
1st
Isovolumic relaxation
V o lu
m e (
m L )
P re
ss u re
( m
m H
g )
Dicrotic notch
FIG 17.7 Events of the cardiac cycle showing relationships among left atrial and ventricular pressures, ventricular volume, and aortic pressure. An identical set of events occurs on the right side of the heart, although pressures are lower.
left ventricular function. Abnormalities in these waveforms may occur with diseases of the cardiac valves, changes in blood volume, or changes in pumping capacity of the heart (see Chapter 18). These waveforms are commonly monitored with specialized cardiac catheters in patients with cardiac or hemodynamic disorders.
The cardiac cycle can be described sequentially, beginning with ventricular filling. During diastole the ventricles are relaxed and blood
150
15010050
75
0
P re
ss u re
( m
m H
g )
Isovolumic relaxation
Isovolumic contraction
Ejection
Filling
Volume (mL)
FIG 17.8 Pressure–volume loop showing changes in left ventricular volume and pressure during the cardiac cycle.
CHAPTER 17 Cardiac Function 359
GERIATRIC CONSIDERATIONS Changes in the Heart
With aging, there is a decrease in the number of myocytes, but normally the heart size does not change appreciably. With the loss of overall cardiac muscle tissue, a corresponding expansion occurs in myocardial collagen and fat. The left ventricular muscle wall becomes thicker, with a resulting increase in oxygen demand. The endocardium becomes fibrotic and sclerosed. Cross-linking of the collagen tissue within the heart muscle increases myocardial stiffening, which causes decreased compliance. The decrease in compliance produces a decline in cardiac contractility, which reduces the heart’s pumping ability. The rate of ventricular relaxation decreases.
Fibrotic changes in cardiac valves result from a combination of hemodynamic stress and generalized thickening. There is also a decrease in coronary artery blood flow to the myocardium, which affects myocardial oxygen and nutrient supply. The myocardial cells increase in size, with increased lipofuscin pigment and lipid deposition.
Within the specialized electrical conduction tissue, there is loss of myocytes and fibrosis of conduction pathways, especially in the sinoatrial (SA) node, AV
node, and bundle of His. The number of pacemaker cells in the SA node decreases, resulting in less responsiveness of that node to adrenergic stimulation. Myocardial cell irritability increases. On the ECG, the P wave may be notched or slurred. The PR interval is longer, and the QRS amplitude decreases. The axis may shift left as a result of left ventricular muscle thickening (hypertrophy). The T wave may be notched, and the amplitude may decrease.
The changes previously noted affect cardiac function. The resting heart rate in the elderly is unchanged. During stress or exercise, the aging heart is unable to respond quickly with an elevated rate, and the maximal heart rate elevation is reduced. Once the heart rate is elevated, it takes a much longer time for the heart rate to return to the resting level. The cardiac stroke volume and cardiac output generally decrease with age. Oxygen consumption in the myocardium is reduced, resulting in less efficient function when stressed and an overall decreased cardiac reserve.
Decreased coronary
artery blood flow
Increased rigidity and thickening of valves
Increased myocardial irritability
Decreased pacemaking
and decreased conduction tissue
Decreased number of myocytes
Increased lipofuscin in
myofiber nuclei
Increased collagen and fat
Increased fibrosis
Increased left ventricular
hypertrophy
Decreased myocardial efficiency
Decreased muscle strength
and mobility
Decreased compliance
Decreased contractility
flows in from the atria through open AV valves. Initially, ventricular filling occurs passively because of a pressure gradient between the atria and ventricles. Toward the end of ventricular diastole, the atria contract, squeezing more blood through the AV valves into the ventricles. The “atrial kick” provided by atrial contraction is particularly important during fast heart rates, when the time for ventricular filling is shortened; the atrial contraction helps load the ventricle quickly to prevent a reduction in stroke volume. Ventricular events include isovolumic contraction, ejection, and isovolumic relaxation. Each of these cycle events is further described in the following sections.
Isovolumic Contraction Immediately after atrial systole the ventricles begin to contract, causing intraventricular pressure to rise and the AV valves to close. AV valve closure produces a sound that can be heard at the chest wall and is termed S1. Ventricular pressure rises rapidly during isovolumic contraction because all four cardiac valves are closed, and the volume of blood within the ventricular chamber is forcefully compressed by the powerful ven- tricular myocardium (see Fig. 17.7, red tracing). Volume remains constant during this phase. The rate of rise in pressure is an indication of the
360 UNIT V Cardiac Function
contractile state of the heart. The greater the change in pressure per unit time (dP/dt), the higher the contractile state. Sympathetic nervous system activation increases dP/dt, whereas conditions such as heart failure are characterized by a slower rate of pressure development. The term inotropy is commonly used interchangeably with contractility and is reflected by the velocity and degree of cardiac muscle shortening during systole.
Ventricular Ejection Ventricular contraction results in a rapid rise in ventricular pressure. As ventricular pressure exceeds aortic pressure (or pulmonic), the valve is forced open and a period of rapid ejection of blood from the ventricle follows. The rapid ejection phase is followed by a period of reduced ejection as aortic (or pulmonic) pressure rises and ventricular pressures and volumes fall. The amount of blood ejected with each contraction of the ventricle is called the stroke volume (SV), the volume of blood in the ventricle before ejection is the end-diastolic volume (EDV), and the amount of blood that remains in the ventricle after ejection is the end-systolic volume (ESV). Thus stroke volume equals EDV minus ESV. An important and commonly used index of pumping effectiveness is the ejection fraction (EF), which is calculated by dividing SV by EDV. A normal EF is 60% to 80%; patients with systolic heart failure often have an EF of less than 40%.
Isovolumic Relaxation The isovolumic relaxation phase begins with semilunar valve closure in response to falling ventricular pressures and ends when the AV valves open to allow ventricular filling. Ventricular blood volume remains constant during this period because all four cardiac valves remain closed. Closure of the semilunar valves causes the second heart sound, S2. Opening of the AV valves signals the beginning of rapid ventricular filling and the start of another cardiac cycle. The rate of ventricular relaxation is indicated by the drop in ventricular pressure per unit time and is called the −dP/dt. The rate and degree of ventricular relaxation is called lusitropy and is an energy-requiring process that reflects the efficiency of calcium removal from the cytoplasm. Rapid relaxation is necessary to allow the ventricle to fill quickly and at a low pressure before the next systole. Impaired relaxation (lusitropic dysfunction) is a common finding in patients with heart failure and contributes to the symptoms of congestion (see Chapter 19). Because relaxation of the ventricle is an energy-requiring process, it may become impaired when blood flow and oxygen delivery to the heart are inadequate.
Atrial Events Atrial pressure waves have three characteristic curves: a, c, and v (see Fig. 17.7, green tracing). The a wave corresponds to atrial contraction, which immediately precedes AV valve closure. The c wave occurs early in ventricular systole and is thought to represent bulging of AV valves into the atrial chambers. The v waves have a gradual incline, which represents filling of the atrium as blood returns from the circulation. The v wave drops rapidly as atrial pressure is relieved by AV valve opening. A large v wave is often associated with inadequate closure of the AV valve, resulting in regurgitation of ventricular blood back into the atrium during ventricular systole. The mean right atrial pressure, also called the central venous pressure, is commonly measured as an indicator of the blood volume in the heart, which is dependent in part on the amount of blood being returned from the systemic circulation.
Aortic and Pulmonary Artery Events Aortic and pulmonary artery pressures rise and fall in relation to the cardiac cycle. Arterial pressures fall to their lowest value just before semilunar valve opening. This lowest pressure is called diastolic blood pressure. Arterial pressure reaches its maximum during ventricular
ejection and is called systolic blood pressure. A characteristic notch (dicrotic notch) in the arterial pressure curve may be seen as the semilunar valves close (see Fig. 17.7, blue tracing).
The difference in aortic pressure between systole and diastole is partly dependent on the aorta’s elastic characteristics. During systole, the aorta stretches to accommodate blood ejected by the ventricle. The stretched aorta has “stored,” or potential, energy that is released during diastole to maintain driving pressure and to keep blood flowing continu- ously through the circulation. Aortic stiffening, as occurs with aging or arteriosclerosis, may result in higher systolic and lower diastolic blood pressures attributable to loss of aortic elastic properties. When aortic or pulmonic pressures are chronically elevated, the ventricles must generate more pressure to open the semilunar valves and eject the stroke volume. Over time this extra effort required to increase the pressure can damage the heart muscle and lead to hypertrophy or failure.
KEY POINTS • Characteristic pressure wave changes that occur during the cardiac cycle
may be useful in diagnosing cardiac disease and volume status. • The atria have three characteristic waves: a, c, and v. The a wave corresponds
to atrial contraction, the c wave corresponds to the atrioventricular (AV) valve bulging during ventricular contraction, and the v wave corresponds to atrial filling.
• The ventricles have four important phases: isovolumic contraction, ejection, isovolumic relaxation, and diastolic filling. The rate and amplitude of these pressures reflect chamber volume, contractility, and valvular function. Left ventricular pressure–volume relationships are frequently used to diagnose heart failure.
• Pressure changes in the aorta during a cardiac cycle are partly dependent on the elasticity of the aorta. Differences between systolic and diastolic pressures are less with a compliant aorta. Aortic stiffness results in higher systolic and lower diastolic pressures.
CORONARY CIRCULATION Anatomy of the Coronary Vessels The blood supply to heart muscle is provided by the coronary arteries (Fig. 17.9). Right and left coronary artery openings are located in the sinuses of Valsalva, in the aortic root, just beyond the aortic valve. The right coronary artery originates near the aortic valve’s anterior cusp and passes diagonally toward the right ventricle in the AV groove. In approximately 50% of the population, the right coronary artery gives rise to a posterior descending vessel that supplies blood to the heart’s posterior aspect. In 20% of the population, the left coronary artery is dominant in supplying blood to the ventricles, and in 30% of the population the right and left coronary arteries deliver about the same amount of blood and neither is dominant. The left main coronary artery arises near the aortic posterior cusp and travels a short distance anteriorly before dividing into the left anterior descending and circumflex branches. The anterior descending branch supplies septal, anterior, and apical areas of the left ventricle, whereas the circumflex artery supplies the lateral and posterior left ventricle. The three major coronary arteries give rise to a number of smaller branches that penetrate the myocardium and branch into small arterioles and capillaries. Regular exercise and stable atherosclerotic plaques in the coronary arteries are thought to stimulate the development of more extensive collateral circulation in the heart. Collateral vessels may help limit infarct size in patients suffering acute coronary occlusions (see Chapter 18). Areas supplied by divisions of the coronary arteries are listed in Table 17.2. Most of the heart’s capillary beds drain into the coronary veins, which then empty into the right atrium through the coronary sinus (Fig. 17.10).
CHAPTER 17 Cardiac Function 361
Left ventricle
Great cardiac vein
Left atrium
Left pulmonary artery
Left pulmonary veins
Right coronary artery
Right atrial appendage
Posterior descending (interventricular)
branch of right coronary artery
Brachiocephalic trunk
Aortic arch
Superior vena cava
Right pulmonary artery
Right pulmonary veins
Right atrium
Middle cardiac vein
Right ventricle
Aorta
Left main coronary artery
Left atrial appendage
Circumflex branch of left main coronary artery
Left anterior descending branch of left coronary artery
A
B FIG 17.9 Coronary arteries supplying the heart. The right coronary artery supplies the right atrium, ventricle, and posterior aspect of the left ventricle in most individuals. The left coronary artery divides into the left anterior descending and circumflex arteries, which perfuse the left ventricle. A, Anterior view. B, Posterior view.
Regulation of Coronary Blood Flow Blood flow through coronary vessels is determined by the same physical principles that govern flow through other vessels of the body, namely driving pressure and vascular resistance to flow. According to Ohm’s law, an increase in driving pressure (P) increases blood flow (Q), whereas an increase in resistance (R) reduces blood flow: Q = P/R (see Chapter 15). Driving pressure through the coronary arteries is determined by aortic blood pressure and right atrial pressure. This relationship can be expressed in the following equation:
Coronary driving pressure ABP RAP( )P = −
where ABP is aortic blood pressure and RAP is right atrial pressure. Thus an increase in aortic pressure enhances coronary blood flow, whereas an increase in right atrial pressure opposes coronary flow.
Coronary vascular resistance (R) has two major determinants: (1) coronary artery diameter and (2) the varying degrees of external compression attributable to myocardial contraction and relaxation. Coronary artery diameter is continuously adjusted to maintain blood flow at a level adequate for myocardial demands. Autoregulation is the term used to describe the intrinsic ability of the arteries to adjust blood flow according to tissue needs. Vessel dilation (vasodilation) occurs in response to increased tissue metabolism or reduced driving pressure, whereas decreased metabolic activity or increased driving pressure results in a decreased vessel diameter (vasoconstriction).
The mechanism of autoregulation can be explained by the metabolic hypothesis, which proposes that increased metabolism, reduced oxygen concentration, or decreased blood flow results in a buildup of vasodilatory chemicals in the vessel. Smooth muscle encircling the vessel relaxes in response to the presence of the chemicals, increasing vessel diameter.
362 UNIT V Cardiac Function
of the vascular smooth muscle and short-circuits the depolarizing influences. This inhibits vascular contraction, leading to vasodilation and increased coronary blood flow. Adenosine also contributes to regula- tion of the ATP-sensitive K+ channels, causing vasodilation when adenos- ine levels are elevated.
Nitric oxide (NO) produced by endothelial cells lining the coronary arteries is an important regulator of coronary blood flow. NO is a diffusible gas produced by the enzyme inducible nitric oxide synthase in response to numerous stimuli, including hypoxemia and platelet factors. NO is a potent vasodilator, and inhibition of its production is associated with reduced coronary blood flow. Many known risk factors for coronary heart disease have been shown to impair NO-dependent vasodilation of coronary arteries.
Vessel diameter also is regulated by the autonomic nervous system. The coronary arteries are primarily innervated by sympathetic nerves, but they also receive a small amount of parasympathetic innervation. The sympathetic neurotransmitter norepinephrine (NE) binds to both α1 and β2 receptors in coronary arteries; α1 stimulation results in vasoconstriction, whereas β2 stimulation dilates. Under normal conditions the vasodilator response predominates, but in pathologic states, excessive α1-mediated constriction can occur. The increased metabolic activity associated with sympathetic nervous system stimulation generally causes autoregulatory vasodilation and overrides the direct effect of NE on the vessels. Parasympathetic activity contributes to vasodilation by promoting the production of NO by coronary endothelial cells.
In addition to vessel diameter, coronary resistance is affected by myocardial contraction. During systole, cardiac muscle compression creates a marked rise in coronary resistance that reduces coronary blood flow (perfusion). Blood flow to the left ventricle is greatly decreased during systole because of the pressures generated by the thick muscular layer. Blood vessels that penetrate the myocardium to supply the innermost endocardial areas are more compressed during contraction than are outer epicardial vessels. Even though coronary artery driving pressure is greatest during ventricular systole, little blood flow reaches the left ventricle because of the high external pressure applied to the coronary vessels as the myocardium contracts. Therefore most myocardial blood flow occurs during the diastolic interval between ventricular contractions. The time the heart spends in diastole is directly related to heart rate. Faster heart rates reduce diastolic time and decrease coro- nary artery blood flow.
Cardiac muscle needs a continuous supply of oxygen and nutrients to perform its pumping functions. A disruption in cardiac blood flow (ischemia) generally results in some degree of pump failure and damage to cardiac tissues. Myocardial ischemia may be caused by conditions that reduce coronary blood flow or increase myocardial demands for oxygen. These include (1) reduced driving pressure (e.g., low aortic blood pressure or high right atrial pressure), (2) reduced vessel diameter (e.g., myocardial hypertrophy, arteriosclerosis, thrombosis, vasoconstricting chemicals), (3) reduced perfusion time (e.g., high heart rates, some dysrhythmias), and (4) increased metabolic demands (e.g., fever, sepsis, anemia).
Several vasodilating substances have been proposed, including potassium ions, hydrogen ions, carbon dioxide, nitric oxide, prostaglandins, and adenosine. The endothelial cells that line vessels are known to secrete a variety of relaxing and constricting factors, which may contribute to autoregulation. Vasodilatory substances are washed away as blood flow increases in response to increased vessel diameter. A declining level of vasodilatory chemicals results in vasoconstriction. Thus vessel diameter is continuously adjusted according to concentrations of vaso- dilatory chemicals, which are directly related to the tissue’s metabolic activity.
One mechanism for autoregulation of coronary blood flow involves an adenosine triphosphate (ATP)–sensitive potassium channel in vascular smooth muscle. When ATP levels rise in response to increased coronary flow, the channel closes, making it easier to depolarize the cell and contract vascular smooth muscle. Contraction of vascular smooth muscle reduces the diameter of the coronary arteries and reduces blood flow. The opposite also occurs: a reduction in ATP level, due to low flow or increased metabolism, opens the K+ channels. Potassium then leaks out
TABLE 17.2 Areas Supplied by the Coronary Arteries
Artery Area Supplied
Right coronary Right atrium (55% of persons) Right ventricle Intraventricular septum Sinus node (55% of persons) Atrioventricular node Bundle of His
Left anterior descending Right atrium (45% of persons) Right ventricle (minor) Left ventricle (anterior, apex) Anterior papillary muscles Right and left bundle branches Intraventricular septum
Left circumflex Left atrium Left ventricle (posterior, anterior) Sinus node (45% of persons)
Great cardiac vein
Coronary sinus
Middle cardiac vein (posterior)
Small cardiac vein
Anterior cardiac vein
Superior vena cava
FIG 17.10 Venous drainage of the heart. Coronary veins drain blood from the myocardial capillary bed and deliver it into the right atrium.
KEY POINTS • The right and left coronary arteries originate from the aortic root within the
sinuses of Valsalva. In most people the right coronary artery perfuses the right ventricle, atrioventricular (AV) node, sinoatrial (SA) node, and right atrium.
• The left coronary artery divides into the left circumflex artery and left anterior descending artery, which perfuse the left atrium and ventricle.
• Coronary blood flow is regulated centrally by the autonomic nervous system and locally by autoregulation. The amount of coronary flow depends on
CHAPTER 17 Cardiac Function 363
SR, calcium is bound to specialized proteins, including calsequestrin. This helps keep the free calcium concentration in the SR lower such that the calcium transporters have a lower gradient to pump against.
Cardiac muscle cells are packed with numerous mitochondria that are strategically positioned along the contractile fibers of the cell. The heart is also endowed with an extensive capillary network, approximately one capillary per muscle cell. The large number of mitochondria and abundant oxygen supply are necessary to keep pace with the high ATP requirements of the contractile elements and ion pumps.
Structure of the Contractile Apparatus Microscopic inspection of the cardiac myocyte reveals a typical pattern of banding called striation. This striated appearance is due to an organized structure of the proteins (myofibrils) of the contractile apparatus (Fig. 17.13). The contractile proteins, actin and myosin, are called filaments because they are long and narrow. Myosin filaments are larger and are referred to as thick filaments. Thin filaments are actually composed of several different types of protein bundled together. Actin is the primary constituent of thin filaments, with smaller amounts of the proteins tropomyosin and troponin bound to it.
The thick and thin filaments are specifically arranged in contractile units called sarcomeres (Fig. 17.14). Sarcomeres are defined by dark bands called Z disks (also called Z lines), which lie perpendicular to actin and myosin filaments. A sarcomere extends from one Z disk to the next. Thin actin filaments are attached to Z disks and extend from them. The I bands (isotropic) are light in color and correspond to the position of thin actin filaments extending in both directions from the Z disk. Thick myosin filaments lie parallel to and between the thin fila- ments. They are held in place by a very large and elastic protein called titin that extends from the Z disk to the center of the sarcomere. Each myosin filament is surrounded by six thin filaments (see Fig. 17.14). An efficient, synchronized contraction is enhanced by this precise arrangement of contractile elements.
Intercalated disk
Cell nucleus
Gap junction
FIG 17.11 Myocardial cells, showing long narrow shape and intercon- necting junctions, forming a functional syncytium. The end of one muscle cell is fused to the next by intercalated disks. Within these connections are specialized proteins that form a fluid-filled pore (gap junction) between the fused cells. Ions can travel through the gap junctions to transport changes in membrane potential from one cell to the next.
driving pressure and coronary resistance. Coronary resistance is dependent on vessel diameter.
• Adenosine and nitric oxide (NO) are two important vasodilating chemicals that are produced in response to inadequate oxygen delivery to the heart and help increase blood flow to meet metabolic demands.
• Although driving pressure is highest during systole, there is little coronary flow to the left ventricle because of vessel compression by the contracting myocardium. Most coronary blood flow to endocardial areas of the ventricles occurs during diastole.
CARDIAC MYOCYTES Cardiac muscle cells are divided into two general types: working cells, which have primarily mechanical pumping functions; and electrical cells, which primarily transmit electrical impulses. Both types are excitable: they are able to produce and transmit action potentials. Working myocardial cells are packed with contractile filaments and compose the bulk of the atrial and ventricular muscle. Electrical cells function to initiate and coordinate contraction of the working cells. Differentiated cardiac myocytes are unable to enter the cell cycle to proliferate; however, they can increase in size and synthesize more contractile proteins (hypertrophy). New myocardial cells can be formed from stem cells that have the potential to divide. Stem cells may be recruited from the circulation and stimulated to divide and mature into myocytes within the myocardium. Conditions that increase myocardial cell death are thought to stimulate recruitment of stem cells into the myocardium. A high turnover rate of cardiac myocytes occurs and increases with age, suggesting that the entire population of cells within the heart is completely replaced 11 to 15 times over a lifetime. When the rate of myocardial cell loss exceeds replacement by stem cells, the condition of heart failure may ensue (see Chapter 19).
Myocyte Structure Typical myocardial cells (myocytes) are illustrated in Fig. 17.11. Cardiac myocytes are described as muscle “fibers” because of their long, narrow shape. The plasma membrane (sarcolemma) of one cardiac cell is joined end to end with its neighbors by intercalated disks, which contain gap junctions that allow the rapid passage of electrical impulses from one cell to the next. The intercalated disks permit the many separate cells of the myocardium to function together in a coordinated manner. This arrangement is called a functional syncytium. The sarcolemma also forms membrane-lined channels that penetrate the cell and become the transverse tubules (T tubules) (Fig. 17.12). The T tubules permit extracellular fluid and ions to diffuse near intracellular structures. Movement of ions across the sarcolemma is an essential part of cellular excitation and the subsequent contraction of intracellular elements. Cellular contractile elements are simultaneously activated because signals at the cell surface are rapidly transmitted internally by the T tubules.
The sarcoplasmic reticulum (SR) is an extensive labyrinth of hollow membrane that stores significant amounts of intracellular calcium. It contains Ca2+-sensitive channels that open briefly during depolarization and allow calcium ions to flow into the cytoplasm. An action potential traveling along the T tubule opens voltage-sensitive calcium ion channels (L type) in the plasma membrane. The Ca2+ ions that enter the cell through these channels interact with receptors on the SR membrane called ryanodine receptors (see Fig. 17.12B). Activation of these receptors opens calcium gates on the SR, and Ca2+ rushes into the cytoplasm to initiate contraction. The SR also contains powerful sarcoplasmic endoplasmic reticulum calcium ATPase (SERCA) pumps that recover calcium ions from the cytoplasm and return them to the SR. Inside the
364 UNIT V Cardiac Function
Triad of the reticulum
Z line Myofibrils
Sarcotubules
A bandI band
SarcolemmaTransverse tubule
Transverse tubule
Terminal cisternae
Sarcoplasmic reticulum
Mitochondrion A
B
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FIG 17.12 A, Schematic diagram of a portion of a cardiac myocyte showing the transverse tubules (T tubules), which extend at right angles from the plasma membrane (sarcolemma) into the cell interior. The T tubules are extensions of the plasma membrane that bring the extracellular fluid into juxtaposition with the terminal ends of the sarcoplasmic reticulum (SR). The T tubule with the SR on either side of it is called the triad of the reticulum. B, Calcium ions that enter the cytoplasm through voltage-gated L-type channels on the T-tubule membrane interact with the ryanodine receptors on the sarcoplasmic reticulum. The activated ryanodine receptors allow calcium ions to flow into the cell cytoplasm where they initiate contraction. As soon as they are released, calcium ions are rapidly captured by the sarcoplasmic endoplasmic reticulum calcium ATPase (SERCA) pumps on the SR membrane.
CHAPTER 17 Cardiac Function 365
FIG 17.13 Electron micrograph of muscle fibrils showing characteristic banding pattern. The dark vertical lines are the Z disks. A sarcomere extends from one Z disk to the next. Compare with the schematic drawing in Fig. 17.14. (From Fawcett DW: The cell, Philadelphia, 1981, Saunders.)
A band
Sarcomere
I band
Z disk
Cytoskeletal proteins
Actin-tropomyosinMyosin
Thin filament lattice
Thick filament lattice
Overlap Center of sarcomere
Titin Z disk
H zone
M line
FIG 17.14 Thick and thin filaments are organized into contractile units called sarcomeres. A sarcomere extends from one Z disk to the next and represents the fundamental unit of muscle contraction. See text for description of bands, zones, and lines. Overlap of thick and thin filaments in each area is shown in cross-section at the bottom. Each thick filament interacts with six thin filaments that surround it.
Characteristics of Contractile Filaments Myosin molecules are composed of six polypeptide chains: two heavy (H) chains and four light (L) chains. These light and heavy chains are organized into a tail region and two globular “head” areas (Fig. 17.15). The myosin heads interact with actin filaments to produce muscle contraction. Thick filaments consist of many myosin molecules with tail regions bundled together and heads protruding at intervals along the bundle. The head regions are flexible and can bend and pull on actin filaments to accomplish muscle contraction. Myosin heads are oriented in opposite directions on either side of the center tail region (see Fig. 17.15). Myosin heads have enzymatic properties and can cleave ATP to release the energy necessary for muscle contraction. Different forms of myosin have varying rates of ATP hydrolysis, which affects how quickly the muscle contracts. The serum level of thyroid hormone is known to affect the type of myosin produced in heart cells. Hyper- thyroidism is associated with a fast-cycling type of myosin and hypo- thyroidism with a slow type of myosin. The rate of myosin cycling can also be regulated at the light chain of the myosin protein. Cellular enzymes that attach a phosphate to the light chain accelerate the rate
366 UNIT V Cardiac Function
MOLECULAR BASIS OF CONTRACTION Overview of Contraction The heart’s pumping action is accomplished by the additive contractions of the many myocytes that form the cardiac chambers. Because each myocyte contributes only a small amount to overall muscle shortening, all cells of the chamber must shorten simultaneously to produce a forceful contraction. The specialized cells of the conduction system function to stimulate myocardial contraction in a coordinated way. An action potential traveling down the conduction system is the usual trigger for contraction. Cardiac myocyte depolarization causes ion channels in the plasma membrane and T tubules to open, permitting sodium and calcium entry and release of calcium from the SR. The presence of free calcium in the sarcoplasm (muscle cytoplasm) results in contraction. These events describe the process of excitation-contraction coupling.
Sliding Filament/Cross-Bridge Theory of Muscle Contraction The sliding filament, or cross-bridge, theory of muscle contraction is suggested by the anatomic configuration of the sarcomere described earlier. Muscle shortening is accomplished by increasing the amount of overlap of actin and myosin filaments. The Z disks at the ends of the sarcomere move closer together as overlapping actin and myosin filaments pull past one another. Myosin heads grip binding sites on the actin beads and pull the thin filaments toward the sarcomere’s center. Each time a myosin head binds an actin bead, it forms a so-called cross-bridge. Flexible myosin heads move in a ratchetlike manner to tug on the actin filaments (Fig. 17.17). Each ratcheting motion moves actin filaments only minutely, and many sequential cross-bridge forma- tions are required to shorten the entire sarcomere. Thus myosin heads bend back and forth, binding and pulling on the actin filaments in a steplike fashion. Actin filaments are prevented from slipping back to their original position because some myosin–actin bonds are forming while others are disengaging. The making and the subsequent break- ing of each actin–myosin cross-bridge requires one molecule of ATP. Consequently, tremendous quantities of ATP are hydrolyzed with each cardiac contraction.
ATP hydrolysis, which occurs at the myosin head region, provides the energy for contraction and affects the capability of myosin to bind actin. Myosin has two functional states or conformations: (1) a low- affinity state in which it binds weakly and (2) a high-affinity state in which it avidly binds actin. The affinity of the myosin head for actin depends on whether ATP is bound (low affinity) or ADP and inorganic
Actin binding site
Myosin heavy chain
ATP binding pocket
Essential light chain Regulatory light chain
Tail region
P
FIG 17.15 Thick filament of the sarcomere is composed of myosin proteins. Myosin head groups are oriented in opposite directions on either side of the center tail region. Phosphorylation (P) of the regulatory light chain increases myosin activity and rate of cross-bridge cycling.
of cycling. Phosphorylation is increased by activation of myocardial β1 receptors and enhances contractility.
Thin filaments are composed of several different proteins, including actin, nebulin, tropomyosin, and troponin. Actin filaments are actually polymers of many globular actin proteins that are attached end to end, like two strings of beads, and then twisted together to form a helix (Fig. 17.16). Each of the actin beads has a site that can bind with myosin heads. Nebulin is a long protein that extends the entire length of the thin filament and is thought to regulate the length of the actin polymer such that all of the thin filaments are the same size. Tropomyosins are long, slender proteins that bind to a string of six or seven actin beads. When myocardial muscle is relaxed, tropomyosin molecules inhibit the myosin-binding sites on the actin beads. A third protein complex, troponin, is attached to the thin filament and regulates the availability of binding sites on the actin filament by controlling the position of tropomyosin. Each troponin is composed of three subunits, called troponins T, I, and C. Troponin T binds to tropomyosin, troponin I participates in the inhibitory actions of tropomyosin, and troponin C binds up to four molecules of Ca2+. As described in the following section, tropomyosin and troponin are important regulatory proteins that control the activities of actin and myosin filaments. The specific isoforms (amino acid sequences) of troponins T and I present in heart tissue differ from those in other types of cells, and their presence in the serum can be used to detect myocardial infarction (see Chapter 18).
KEY POINTS • The myocardial cells of the heart behave as a syncytium because they are
joined by gap junctions within the intercalated disks that permit the flow of ions from one cell to the next.
• Myocytes are packed with actin and myosin proteins that form the contractile apparatus. The thick filaments are composed of myosin proteins. Myosin has enzymatic activity and splits ATP, releasing energy needed for movement of the filaments. Titin is a flexible protein that attaches the thick filament to the Z disk.
• The thin filament is composed of actin and two regulatory proteins: troponin and tropomyosin. At rest, tropomyosin inhibits myosin-binding sites on actin. The position of tropomyosin is regulated by the calcium-binding protein troponin. Nebulin is another actin-associated protein that helps regulate thin filament length.
CHAPTER 17 Cardiac Function 367
therefore determines the number of cross-bridges and extent of contrac- tion. The release of Ca2+ into the cytoplasm is regulated by numerous neurotransmitters and hormones that affect contractility as described in later sections of this chapter.
Energy of Muscle Relaxation Although muscle relaxation is generally viewed as a passive phenomenon, it actually requires significant energy to pump calcium ions out of the cytoplasm. As calcium levels fall, calcium diffuses away from the troponin molecules and tropomyosin is induced to cover the actin-binding sites. With actin-binding sites covered, myosin heads are unable to initiate cross-bridge formation, and thick and thin filaments slide back to their resting positions. Removal of calcium ions is an energy-requiring process. Membrane pumps located in the sarcolemma and SR actively move calcium out of the sarcoplasm against a concentration gradient (Fig. 17.18). The sarcolemma contains two different calcium pumps: one that requires ATP and one that uses the potential energy of the sodium gradient to remove calcium from the cell (3 Na+ for 1 Ca2+). Calcium pumps on the SR (SERCAs) require ATP. Thus energy deficiency attributable to myocardial ischemia can impair diastolic relaxation as well as systolic contraction of the heart muscle.
phosphate (Pi) are bound (high affinity). A proposed sequence of cross-bridge cycling is as follows (see Fig. 17.17): 1. Free myosin heads bind ATP and hydrolyze it to ADP and Pi, which
remain on the myosin. Myosin heads now have a high affinity for actin and are in a high-energy conformation.
2. If binding sites on actin are accessible, myosin binds to the actin. 3. Binding results in release of ADP and Pi and a ratchet movement
of the myosin as it assumes its low-energy conformation, which shortens the sarcomere (power stroke).
4. With loss of ADP and Pi, myosin can bind another molecule of ATP. The myosin heads with ATP bound now have a low affinity for actin and are released from the binding site. ATP is again hydrolyzed to ADP and Pi, and another cross-bridge cycle is initiated. Continued cross-bridge cycling is dependent on the availability of
ATP and calcium ions. A lack of ATP results in fewer cross-bridge cycles and inability of the muscle to shorten normally.
Role of Calcium in Muscle Contraction Muscle contraction is dependent on the presence of an adequate amount of calcium ions in the cytoplasm. In the absence of free intracellular calcium, muscle contraction will not take place, even though myosin head groups have high affinity for actin-binding sites. This phenomenon can be explained in the following way. At rest, myosin heads are prevented from binding to actin by tropomyosin proteins, which inhibit actin- binding sites. The position of tropomyosin protein is controlled by troponin. When calcium is absent, troponin induces tropomyosin to inhibit the actin-binding sites. When calcium binds to troponin C, the troponin complex induces tropomyosin to move and expose the binding sites (see Fig. 17.17A and B). Cross-bridge formation immediately ensues because myosin heads have high affinity for these sites in the relaxed state. The concentration of free calcium ions in the myocardial cell determines how many actin sites are exposed and for how long and
Globular actin proteins
Actin helix
Z line
Thin filament
Tropomyosin
A
B
C
D
Troponin
Nebulin
FIG 17.16 Schematic drawing of the proteins that comprise the thin filament. A, Globular actin proteins combine to form long double-helix filaments. B, Nebulin (nebulette) is a long cytoskeletal protein that extends the length of the thin filament and is thought to regulate filament length. C and D, The proteins troponin and tropomyosin combine with the actin helix to form the thin filament.
KEY POINTS • Cardiac myocytes are terminally differentiated cells incapable of proliferation.
New myocytes are formed from stem cells that are recruited from the circulation.
• Contraction of cardiac muscle is accomplished by shortening of individual sarcomeres. This is due to increased overlap of actin and myosin filaments. Myosin heads bind to specific sites on actin and pull the thin filaments toward the center of the sarcomere.
368 UNIT V Cardiac Function
Actin Tropomyosin
Thin filament ADP
Pi
ADP Pi
Myosin binding sites
ADP + Pi
Thick filament
Troponin
ATP
Ca2+Ca2+
Ca2+
A
B
C
D
FIG 17.17 Cross-bridge cycle of muscle contraction. A, The myosin head has hydrolyzed its bound adenosine triphosphate (ATP) to adenosine diphosphate (ADP) and inorganic phosphate (Pi), which remain on the myosin. In this state the myosin has high affinity for actin but cannot bind because the actin-binding sites are not accessible. B, When calcium ions enter the cell and bind to troponin, the tropomyosin-blocking protein moves to allow myosin to bind actin, forming a cross-bridge. C, The act of binding changes the shape of myosin so that ADP and Pi are released. The “power stroke” is accomplished by movement of the myosin neck region. D, When a new molecule of ATP binds to the myosin, it changes to a low-affinity state and releases from the actin. ATP is again hydrolyzed to ADP and Pi to restart the cycle. Each cross-bridge cycle uses one ATP molecule.
• Adenosine triphosphate (ATP) hydrolysis provides the energy for cross-bridging and affects the affinity of myosin for actin. Myosin has high affinity for actin when ADP and Pi are bound and has low affinity when ATP is bound. Myosin cycles between high- and low-affinity states, making and breaking cross-bridges with the actin filament.
• The presence of intracellular free calcium ion (Ca2+) is necessary for muscle contraction to occur. When Ca2+ is absent, actin-binding sites are inhibited and inaccessible for cross-bridging. Binding of Ca2+ to troponin induces the movement of tropomyosin to expose actin-binding sites and allows cross- bridge formation.
• Muscle relaxation (lusitropy) is due to removal of Ca2+ from the cytoplasm. This is an energy-requiring process.
CARDIAC ENERGY METABOLISM The heart, like other tissues in the body, utilizes energy from ATP hydrolysis to drive its energy-requiring functions. Synthesis of ATP in cardiac muscle cells is accomplished by the same glycolytic and oxidative reactions described in detail in Chapter 3.
Oxygen Utilization Because the heart is continuously active, its energy requirements are considerable. Very little ATP is stored in myocardial cells, so a continuous supply of oxygen and nutrients is necessary to support ongoing ATP synthesis. Even under normal resting conditions, the heart extracts a large portion of oxygen from the blood perfusing it. Therefore conditions
CHAPTER 17 Cardiac Function 369
for approximately 85% of myocardial fuel, and glucose contributes only 15%. After eating, when blood glucose levels rise, glucose utilization may increase to about 50%. Fatty acid metabolism requires oxygen and is therefore not useful under conditions of ischemia. The heart is also able to use lactate and ketones as sources of energy when they accumulate in the circulation. Lactate is derived from pyruvate under conditions of anaerobic metabolism, whereas ketones are formed from lipid metabolism when carbohydrate supplies are low. Thus the heart is equipped to use a variety of substrates to produce ATP under varying metabolic conditions.
of increased oxygen demand must be met by increasing the rate of coronary blood flow. When oxygen delivery is insufficient to meet requirements for oxidative phosphorylation, the cell must rely on ATP produced by glycolysis. Unfortunately, glycolysis results in production of only enough ATP to maintain the cell for seconds to minutes. In addition, anaerobic glycolysis results in local buildup of lactic acid, which may further impair cardiac performance.
Under conditions of relative ATP excess, myocardial cells are able to transfer energy to a storage form called creatine phosphate (CP). This transfer is accomplished by the enzyme creatine kinase (CK or CPK), in the following reaction:
ATP creatine ADP CP+ ↔ +
Although amounts of cellular CP are limited, they provide an immediate source of energy when cellular ATP levels drop acutely. Under conditions of ischemia, the enzymatic reaction would proceed in reverse, utilizing CP and adenosine diphosphate (ADP) to produce ATP for immediate use by the cell. This phosphate transfer reaction is important during fluctuations in ATP supply because it does not require the presence of oxygen.
The enzyme CK is also useful in the diagnosis of myocardial cell damage. Myocardial cells that lose membrane integrity (necrosis) leak their enzymes into extracellular fluid and eventually into the bloodstream. Elevated levels of blood CK are indicative of the degree of acute myocardial cell death. Different types of tissue contain different forms of CK (isoenzymes). The myocardial band (MB) form of CK is found in cardiac muscle, and elevated serum levels of this enzyme are indicative of myocardial infarction. Other intracellular proteins, including troponin and myoglobin, are released during myocardial cell death and can be used as markers of myocardial infarction (see Chapter 18).
Substrate Utilization The primary foodstuffs that provide fuel for energy-producing enzymatic processes in cardiac muscle are glucose and fatty acids. Amino acids are less important metabolic substrates for cardiac muscle except during states of starvation. The amount of fatty acids and glucose utilized by heart muscle cells depends on their relative concentrations in the blood. Fatty acids are the preferred fuel, particularly in a fasting state, when glucose levels are lower. Under fasting conditions, fatty acids account
KEY POINTS • Creatine phosphate (CP) is an immediately available storage form of energy.
Under conditions of low adenosine triphosphate (ATP) availability, CP is converted to ATP by the enzyme creatine kinase (CK).
• The primary energy substrates for the heart are fatty acids and glucose, but the heart can utilize a variety of sources to produce energy depending on the nutrients available in the circulation.
Sarcomere
Plasma membrane
Cardiac muscle cell
Ca2+
Na+
Ca2+
ADP + Pi
ATP
ADP + Pi
ATP
SR
Ca2+
FIG 17.18 Calcium ions (Ca2+) are removed from the cardiac muscle cell cytoplasm by energy-dependent protein transporters in the plasma membrane and sarcoplasmic reticulum (SR) membrane. Thus cardiac relaxation is an energy-requiring process. ADP, Adenosine diphosphate; ATP, adenosine triphosphate; Pi, inorganic phosphate. CARDIAC ELECTROPHYSIOLOGY
The plasma membranes of cardiac cells are endowed with special ion channels that make the cells excitable. Excitable tissues are capable of generating and conducting action potentials. The heart is rhythmically activated by action potentials, which are generated and transmitted by a specialized conduction system. Spread of an action potential over cardiac muscle cell surfaces results in myocardial contraction. An understanding of the electrophysiologic properties of the heart is important because many cardiac disorders result in disturbances in electrical function that produce abnormal conduction pathways, dys- rhythmias, and conduction blocks.
Cardiac Resting Potential Like other cells, resting cardiac cells are negatively charged on the inside with respect to the outside (see Chapter 3). A difference in potassium ion concentration across the cell membrane is the primary determinant of the resting membrane potential. Atrial and ventricular muscle cells generally have a resting membrane potential of −85 to −95 mV. Pacemaker cells in the SA node are less polarized, having a resting membrane potential of about −60 mV. An increase in the concentration of extracel- lular potassium ion tends to hypopolarize the cell (make it less negative), and a lower-than-normal extracellular potassium concentration tends to hyperpolarize the cell (make it more negative). The degree of polariza- tion is an important determinant of the ease with which an action potential can be initiated. Abnormalities in serum potassium level are a common source of cardiac dysrhythmias.
Cardiac Action Potential Depolarization of cardiac cells to a threshold point results in activation of voltage-sensitive ion channels in the membrane. A myocardial action potential (Fig. 17.19) results from movement of ions through these open voltage-gated channels. The action potential in atrial and ventricular cells has five characteristic phases. Atrial action potentials are shorter in duration because they have a reduced phase 2 compared with ven- tricular cells.
Phase 0 Phase 0 begins when the membrane potential approaches threshold and voltage-gated “fast” sodium channels open momentarily. As a result of a steep electrochemical gradient for sodium entry, rapid influx of sodium ions occurs. Sodium entry depolarizes the cell by neutralizing
370 UNIT V Cardiac Function
inhibit calcium influx. β-Blockers (class II antidysrhythmics) also reduce calcium ion influx during phase 2 by indirectly inhibiting calcium channels.
Phase 3 Phase 3 is characterized by a rapid return to the resting membrane potential. This is accomplished by closure of the slow calcium channels and continued and even more rapid efflux of potassium ions from the cell through a variety of potassium channels. Sodium channels remain absolutely refractory during phases 1, 2, and early 3. The latter part of phase 3 represents a relative refractory period, when sodium channels may be induced to open, but a larger-than-normal depolarizing stimulus is required. If an abnormally early (premature) depolarization occurs during the relative refractory period, it will be conducted more slowly than usual because few fast Na+ channels are ready to be activated. Slow conduction through the myocardium predisposes to cardiac dysrhythmias, such as ventricular fibrillation (see Chapter 19). Class III antidysrhythmic agents, such as amiodarone, increase the refractory period by inhibiting opening of potassium channels during phase 3.
Phase 4 Phase 4 of the ventricular myocyte action potential corresponds to the period of time between action potentials when no changes in membrane voltage are evident and the resting membrane potential is present. The resting membrane potential in ventricular myocardial cells is flat, and they do not spontaneously depolarize. In contrast, cells in the pacemaker and conduction system automatically depolarize and have a sloping phase 4. The Na+–K+ pumps and Ca2+ pumps work continuously throughout all phases to reestablish the internal and external concentrations of sodium, potassium, and calcium ions.
Rhythmicity of Myocardial Cells Rhythmicity and automaticity refer to regular, spontaneous generation of action potentials. Rhythmic pacemaker cells have a recognizable action potential that is characterized by a sloping phase 4 (Fig. 17.20), in contrast to the flat phase 4 of ventricular muscle cells. A requirement for rhythmicity is that the cell membrane has channels that automatically open during phase 4. These channels begin to open as the membrane potential becomes more negative during the repolarization phase. Progressive channel opening makes the pacemaker cells leaky to Na+, Ca2+, and K+. Gradually the flow of positive ions into a cell offsets the repolarizing currents and depolarizes the membrane, resulting in generation of an action potential. One contributor to the automatic depolarization during phase 4 is the If channel. The If channels originally were named for a “funny” current and later discovered to be sodium channels that are activated by membrane repolarization. Channels that allow calcium and potassium leakage are also operative during phase 4 in pacemaker cells. Late in phase 4, an increase in calcium ion influx occurs through voltage-gated calcium channels called T type, for “transient.” These channels open and close more quickly than the L-type calcium channels that open during the action potential. Spontaneous release of Ca2+ from the SR also contributes to depolarization by activating the 3Na+/Ca2+ exchanger and promoting Na+ influx. Many of these channels can be regulated by various means, including autonomic neurotransmitters, in order to change heart rate. An action potential is initiated when phase 4 depolarization reaches the threshold for the opening of voltage-gated, L-type, slow calcium channels. Repolariza- tion is achieved in large part by an exodus of potassium ions from the cell.
The rate of rhythmic discharge is determined by the relative influx of Na+ and Ca2+ versus the efflux of K+. In a normal heart, a cell with the fastest rate of spontaneous depolarization becomes the pacemaker
the difference in charge (polarity) across the membrane. A steep depolar- izing deflection (upstroke) is recorded. Class I antidysrhythmic agents such as quinidine and lidocaine block voltage-gated sodium channels and interfere with phase 0 depolarization (see Chapter 19).
Phase 1 Phase 1 is identified as a small repolarizing deflection that corresponds to closure of the fast sodium channels and transient efflux of potassium from the cell through K+ channels. The interior of the cell is now more positively charged than at rest, which induces potassium ions to leave the cell.
Phase 2 Phase 2 is also called the plateau phase because little change in membrane potential occurs during this time, even though ions continue to move across the membrane. Phase 2 is primarily associated with an influx of calcium ions, which is offset by an efflux of potassium ions. The ability of K+ to leave the cell down its electrochemical gradient is inhibited during the plateau phase by a relative inhibition of a subset of potassium channels. This is sometimes called potassium rectification. Chloride also may leave the cell during this phase. The voltage-gated calcium channels open and close slowly in comparison to fast sodium channels and are thus referred to as slow channels or L-type channels (long-lasting).
The calcium that enters the cell during phase 2 is linked to muscle contraction as previously described. The L-type calcium channels can be modified by agonists that prolong the open phase, such as catechol- amines, and by antagonists that shorten the open phase, such as ace- tylcholine. Calcium channel–blocking agents (class IV antidysrhythmic agents) are used commonly in patients with cardiovascular diseases to
0
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+20
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FIG 17.19 The ventricular myocardial action potential has five charac- teristic phases, representing changes in ion movement through the plasma membrane. Phase 0: Rapid upstroke attributable to sodium influx. Phase 1: Slight repolarization attributable to closure of sodium channels and initiation of potassium efflux. Phase 2: Plateau attributable to offsetting influx of calcium and efflux of potassium. Phase 3: Rapid repolarization attributable to closure of calcium channels and increased potassium efflux. Phase 4: Resting membrane potential reestablished attributable to closure of all voltage-sensitive channels.
CHAPTER 17 Cardiac Function 371
SA node, atrial internodal pathways, AV node, bundle of His, ventricular bundle branches, and, finally, Purkinje fibers.
The SA node is located in the right atrium near the superior vena cava inlet. It receives innervation from sympathetic and parasympathetic branches of the autonomic nervous system. The SA node generally serves as a pacemaker for the heart, generating about 70 (range, 60 to 100) action potentials per minute in a resting adult. SA action potentials are spread contiguously through gap junctions to adjacent atrial cells at a fast rate. A fibrous skeleton separates atria from ventricles and prevents the spread of impulses from atrial cells to ventricular cells. Several small bundles of atrial muscle cells conduct impulses slightly faster than the usual atrial cell. One such bundle, the anterior interatrial band (Bachmann bundle), conducts impulses from the SA node to the left atrium. Atrial depolarization results in atrial contraction, which increases the volume of blood delivered to the still-relaxed ventricular chambers.
After traversing the atria, the impulse initiated at the SA node arrives at the AV node (AV junction) located in the posterior septal wall of the right atrium just behind the tricuspid valve. There is a characteristic slowing of impulse conduction through the AV node, which allows for completion of atrial contraction before initiation of ventricular systole. The AV node is actually composed of different types of fibers that have somewhat different action potential conduction times. Overall, it normally takes about 0.13 second for an impulse to pass through the AV node. The AV node is richly innervated by the autonomic nervous system. The AV node spontaneously depolarizes at a rate of 40 to 60 times per minute and usually becomes the heart’s pacemaker if the SA node fails.
Purkinje cells (fibers), which lead from the AV node to ventricular myocardium, are vastly different from AV nodal cells. They are large and well structured to conduct impulses very rapidly. After penetrating the AV fibrous barrier, the bundle of Purkinje fibers travels 5 to 15 mm down the intraventricular septum toward the apex. The main bundle then divides into left and right bundle branches, which travel down the left and right sides of the intraventricular septum. Successive branches of Purkinje fibers penetrate the ventricular muscle mass from the endocardial side. Intraventricular septal areas are depolarized first, followed by apical muscle, and finally the lateral walls. Early septal depolarization allows the septum to contract first and provide a stable wall against which the left and right ventricles can contract. The total time elapsed between main bundle branch and terminal Purkinje fiber depolarization is only 0.03 second. Therefore the entire ventricular endocardium is activated almost simultaneously. Purkinje fibers are capable of spontaneous depolarization at a rate of 15 to 40 times per minute and may become pacemakers for the heart if impulses from the SA and AV nodes are interrupted.
Action potentials are rapidly transmitted from the terminal Purkinje fibers to cardiac muscle fibers and then spread contiguously from cell to cell through gap junctions in the ventricular muscle. Approximately 0.03 second is required for the impulse to be transmitted through the ventricular myocardium. Impulses normally travel from the terminations of Purkinje fibers at endocardial surfaces toward the epicardial surfaces. Depolarization of the right ventricle is accomplished slightly sooner than the left because of differences in muscle mass. Depolarization of the ventricular myocardium is followed by contraction and ejection of blood from the ventricles.
The capability of faster pacemakers to suppress the automatic discharge of slower pacemakers is called overdrive suppression. A slower pacemaker may be revealed if the normal pacemaker is suddenly inter- rupted. Sometimes it takes time for the slower pacemaker to “kick in” and begin pacing at its intrinsic rate. A previously rapid rate of depolarization apparently enhances the activity of membrane Na+–K+ pumps, resulting
for the rest of the heart. Cells in the SA node, located in the right atrium, generally function as the heart’s pacemaker because they have the fastest rate of spontaneous depolarization. However, other cells in the conduction system are also capable of spontaneous depolarization and may initiate an action potential in certain circumstances.
The steepness of the slope of phase 4 depolarization determines the rate of action potential generation and therefore heart rate. Several factors determine the steepness of the slope, including membrane permeability to sodium, calcium, and potassium. For example, an increase in potassium ions leaving the cell would slow depolarization and result in a slower rate. Rhythmicity may be influenced by the autonomic nervous system, drugs, and electrolyte balance. These conditions are discussed in the following sections.
Specialized Conduction System of the Heart Some myocardial cells are specialized to conduct action potentials throughout the heart in an organized and rapid manner. These cells constitute the conduction system of the heart, as shown in Fig. 17.21. Normal excitation of the heart follows a pathway beginning with the
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0 SA node
�20
�40
�60
�80
FIG 17.20 Rhythmic cells (A) have a sloping phase 4, in contrast to the flat phase 4 of the atrial (B) and ventricular (C) muscle cells. Spontane- ous depolarization during phase 4 allows pacemaker cells to develop action potentials automatically. SA, Sinoatrial. (Adapted from Hoffman BF, Cranefield PF: Electrophysiology of the heart, New York, 1960, McGraw-Hill.)
372 UNIT V Cardiac Function
ELECTROCARDIOGRAPHY As action potentials spread from cell to cell throughout the myocardium, an electrical current is transmitted to the body surface and can be detected by electrodes placed on the skin. A recording of these electrical currents is called an electrocardiogram (ECG). The ECG is a useful indicator of abnormalities of the heart’s conduction system. Irregularities in initiation of impulses, conduction rates, and conduction pathways can be identified. The ECG has a different appearance from the cardiac action potential described previously because it registers depolarizing and repolarizing currents in the whole heart rather than the activity of individual myocytes (Fig. 17.22).
in a period of hyperpolarization (more negative resting potential) when the faster pacemaker suddenly stops. Thus it takes slightly longer to reach threshold and initiate the first action potential.
Autonomic Regulation of Rhythmicity Both sympathetic and parasympathetic nerves supply the heart. Sym- pathetic innervation is widespread to all areas, including the ventricular myocardium. Parasympathetic innervation, by way of the vagus nerves, is localized primarily in SA and AV nodal areas. The right vagus nerve supplies the SA node, whereas the left vagus nerve supplies the AV node. The autonomic nervous system exerts control over heart rate and velocity of impulse conduction. In general, sympathetic activation increases heart rate (chronotropic effect) and increases speed of conduction (dromotropic effect), as well as inducing heart muscle to contract more forcefully (inotropic effect) and relax more quickly (lusitropic effect). These effects are achieved by release of NE from sympathetic nerve endings. Binding of NE to β receptors on heart muscle cell membranes increases production of cAMP, which regulates several membrane channels and pumps and increases depolarizing ion currents.
Parasympathetic stimulation primarily results in a reduction in heart rate and speed of action potential conduction. Acetylcholine is the neurotransmitter released by parasympathetic nerve endings. Acetyl- choline binding to muscarinic receptors on heart cells inhibits cAMP production and increases membrane permeability to potassium ions, allowing them to leak from the cell. The resulting hyperpolarization makes it more difficult to reach threshold and initiate an action potential. The resting heart is normally under a predominant parasympathetic influence, which results in an SA discharge rate of about 70 beats/min. If parasympathetic activity is blocked, the spontaneous discharge rate of SA nodal cells increases to about 100 beats/min. An increase in vagal activity can reduce heart rate significantly. Breath holding, bearing down during defecation, and pressing on the carotid arteries may increase vagal tone and reduce heart rate. This is sometimes called a vasovagal response and may lead to dizziness and fainting.
R
P
Q S
T
Pulmonary artery
Atrial excitation
Excitation of ventricles begins (initial downward deflection is a Q wave)
Left ventricle
Septum
Right atrium
Internodal pathways
Right ventricle
Left atrium
Sinoatrial (SA) node
Atrioventricular (AV) node
AV bundle (bundle of His)
FIG 17.21 Schematic drawing of the conduction system of the heart. An impulse normally is generated in the sinus node and travels through the atria to the AV node, down the bundle of His and Purkinje fibers, and to the ventricular myocardium. Recording of the depolarizing and repolarizing currents in the heart with electrodes on the surface of the body produces characteristic waveforms.
KEY POINTS • The cardiac resting membrane potential is about −90 mV. The resting
membrane potential is determined by the ratio of intracellular to extracellular K+ concentration.
• The five phases of the cardiac action potential are due to changes in ion conductance through the plasma membrane. The main changes in ion conductance result from opening of the fast Na+ channels (phase 0), slow Ca2+ channels (plateau), and K+ channels (repolarization) in the plasma membrane.
• Spontaneous generation of action potentials in automatic cells is due to a progressive leak of Na+ and Ca2+ into the cell via channels that automatically open during repolarization. The rate of cation leak determines the rate of pacemaker discharge. Parasympathetic influence increases K+ efflux and slows the rate. Sympathetic influence increases influx of Na+ and Ca2+ and increases the rate.
• The usual conduction pathway for depolarization of the heart begins at the SA node, progresses through the atria, enters the AV node, and activates the bundle of His and Purkinje fibers. Purkinje fibers leave the AV node and divide into left and right branches that innervate the endocardial surface of the ventricular myocardium.
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Each deflection on the ECG has a normal characteristic shape and time interval (see Fig. 17.24). The three major wave complexes are the P wave, which corresponds to atrial depolarization; the QRS complex, which represents ventricular depolarization; and the T wave, which reflects ventricular repolarization. The PR interval, between the beginning of the P wave and the beginning of the QRS complex, includes atrial, AV node, and His–Purkinje fiber depolarization. The normal sequence
+ + + + + – – – –
+ + + + +– – – –
+ + + + + – – – – – – – –
Wave of depolarization
Na+ Na+
Wave of depolarization
Na+ Na+
Wave of repolarization Electrode
Electrode
ElectrodeA
B
C
ECG deflection
ECG deflection
ECG deflection
FIG 17.23 Electrocardiographic waveforms may be positive (upward) or negative (downward), depending on the location of electrodes on the chest. A, A wave of depolarization moving toward a positive electrode results in a positive deflection. B, A wave of repolarization moving away from a positive electrode results in a positive deflection. C, A wave of depolarization moving away from a positive electrode results in a negative deflection.
QT interval
QRS interval
ST segment
PR interval
P
R
Q
S
T
FIG 17.24 Usual electrocardiographic pattern recorded from lead II, showing characteristic waves and intervals.
Action potential from a single ventricular muscle cell
ECG of potentials from the heart as a whole
R P P
Q S
T
FIG 17.22 Comparison of the action potential from a single ventricular muscle cell, showing rapid depolarization and prolonged repolarization phases, against an electrocardiogram of potentials from the heart as a whole. Ventricular myocytes remain depolarized and refractory throughout the entire QT interval.
Electrical currents traveling through the heart have both direction and magnitude and are often described as vectors. At any instant, electrical currents are moving in various directions through different regions of the heart. Waveforms recorded at the ECG electrodes are algebraic sums of all of these vectors. Patterns of electrical activity shown on the ECG vary according to the placement of electrodes on the body. In general, a wave of depolarization moving toward a positive recording electrode will register as an upward deflection on the ECG. A wave of repolarization moving away from a positive electrode also will register as an upward deflection on the ECG. A downward deflection results from a wave of depolarization moving away from a positive electrode (Fig. 17.23). Placement of a recording electrode on the lower-left extremity (lead II) results in the typical ECG pattern shown in Fig. 17.24. A description of the usual electrode placements is included in the section “Tests of Cardiac Function” at the end of this chapter.
374 UNIT V Cardiac Function
KEY POINTS • The Electrocardiogram (ECG) represents an algebraic sum of all depolarizing
and repolarizing currents occurring in the heart. ECGs are useful for detecting conduction and rhythm disturbances.
• The major deflections of the ECG are: P wave: atrial depolarization PR interval: atrial, AV node, and Purkinje depolarization Q wave: septal depolarization R wave: apical depolarization S wave: depolarization of lateral walls (base) T wave: ventricular repolarization
QA
B
C
R
S
FIG 17.25 QRS complex results from the sequence of ventricular depolarization. A, In lead II, septal depolarization is in a direction away from the positive electrode, resulting in a negative Q wave. B, Depolariza- tion of the apex of the heart is in a direction toward the positive electrode, resulting in a large positive R wave. C, Depolarization of the lateral walls and base of the ventricles is in a direction away from the positive electrode, resulting in a negative S wave.
of ventricular depolarization begins with the septum, followed by the apex, and finally the base of the ventricular walls. Septal depolarization begins on the left septal surface and then travels toward the right, resulting in a small negative deflection, the Q wave in lead II (Fig. 17.25). A large upright R wave corresponds to a wave of depolarization traveling down the ventricles toward the apex. Depolarization of the ventricular base, because it moves in a direction away from the lower limb electrode, is recorded as a negative S wave. The ST interval, between the S wave and the beginning of the T wave, is isoelectric (flat) because the entire ventricle is depolarized and no detectable current is flowing. The QT interval, from the beginning of the QRS complex to the end of the T wave, is commonly measured as an indicator of ventricular systole. The T wave is normally upright in lead II, representing a wave of repolariza- tion moving away from a positive electrode. In some patients, particularly those with slow heart rates, the T wave is followed by a small positive deflection, called a U wave. Prominent U waves also are a sign of a low potassium level. Abnormalities in any time intervals may indicate abnormal conduction pathways and enhanced or slowed conduction times. Rhythm disturbances are discussed in detail in Chapter 19.
DETERMINANTS OF CARDIAC OUTPUT Cardiac output is a measure of the amount of blood pumped out of the heart each minute. Because the heart’s primary function is to pump enough blood to circulate oxygen and nutrients to tissues, the cardiac output is an extremely important indicator of cardiovascular health. Normal resting cardiac output is approximately 5 to 6 L/min, but it varies with body size and age. Cardiac output is often indexed to body surface area in an attempt to adjust for these differences (cardiac index = cardiac output/body surface area). A normal cardiac index ranges from 2.8 to 3.3 L/min/m2. Regardless of the actual number of liters of blood pumped per minute, the adequacy of tissue perfusion is ultimately important.
Cardiac output is a product of heart rate and stroke volume (CO = HR × SV). Stroke volume refers to the amount of blood ejected from the ventricle with each contraction. An increase in heart rate (to a point) and/or an increase in stroke volume will result in a greater cardiac output. Conversely, a low heart rate and/or a decreased stroke volume will cause cardiac output to fall. To a certain extent, a change in one factor can be compensated for by a change in the other, thus maintaining cardiac output at a constant level. For example, it is common for an individual with limited stroke volume attributable to cardiac disease to have a high resting heart rate. Any physiologic, pharmacologic, or pathologic process that alters heart rate or stroke volume may affect cardiac output and therefore tissue perfusion.
Determinants of Heart Rate Heart rate is primarily influenced by the autonomic nervous system. Release of NE by sympathetic nerve endings results in an increased
heart rate. A similar effect results from circulating NE and epinephrine released from the adrenal gland during sympathetic stimulation. Sympathetic activation of the heart is regulated by several reflex pathways that constantly monitor blood pressure and metabolic activity in the body. In general, detection of inadequate blood pressure, a lack of oxygen, or a buildup of metabolic end products results in activation of the sympathetic nervous system. Specialized sensory nerve endings, called baroreceptors, located in the aortic arch and carotid arteries respond to changes in blood pressure and transmit this information to the central nervous system (CNS) by way of cranial nerves IX and X. A decline in blood pressure causes parasympathetic system inhibition and cardiac sympathetic nerve activation, resulting in a rise in heart rate. Conversely, a rise in blood pressure causes the heart rate to fall because of para- sympathetic activation and sympathetic inhibition. Under normal resting conditions, the heart rate is under parasympathetic influence, with a usual rate of approximately 70 beats/min.
In addition to baroreceptors, other sensory fibers that detect pressure are located in the cardiac chambers. These sensory receptors respond to changes in intrachamber pressure, which reflect the volume of blood in the chamber. Atrial or ventricular overdistention suppresses para- sympathetic influence and increases heart rate (Bainbridge reflex). Heart rate may also be influenced by higher CNS activities that do not involve reflex pathways. Anxiety, fear, stress, excitement, trauma, and fever may
CHAPTER 17 Cardiac Function 375
activate the sympathetic system, for example. A variety of drugs can mimic or block the effects of both sympathetic and parasympathetic systems and therefore influence heart rate (see Chapter 18).
In general, an increase in heart rate results in an increase in cardiac output; however, at very high heart rates, cardiac output may actually fall. At high heart rates (e.g., more than 200 beats/min in the young, even lower in the adult), the time for diastolic ventricular filling can be significantly reduced, resulting in a low stroke volume. The benefit of increased heart rate is therefore undermined by impaired pumping efficiency.
Determinants of Stroke Volume Three major factors influence stroke volume: (1) the volume of blood in the heart (preload), (2) the contractile capabilities of heart muscle (contractility), and (3) the impedance opposing ejection of blood from the ventricle (afterload). Each of these factors is in turn influenced by many other physiologic, pharmacologic, and sometimes pathologic variables.
Volume of Blood in the Heart (Preload) The heart can only pump as much blood as is delivered to it by the circulatory system. Blood returning to the heart from the circulation is often called venous return. Normally, venous return is equal to cardiac output because the circulatory system is just that—a circuit. However, there may be inequalities over several heartbeats when changes in blood volume or blood distribution occur. The heart is well suited to adjust to these beat-to-beat changes in venous return such that the healthy heart pumps essentially whatever amount is delivered to it.
The amount of blood present in the ventricles just before contraction (end-diastolic volume) is an important determinant of stroke volume. The relationship between diastolic volume and the force of myocardial contraction is known as the Frank–Starling law of the heart. In essence, this law states that an increase in resting muscle fiber length results in a greater development of muscle tension. Ventricular muscle fiber length is determined by the volume of blood it contains, commonly called the preload. An increase in preload results in a greater force of contraction and a larger stroke volume. In this way, the ventricle is able to adjust its stroke volume, beat by beat, according to the amount of blood to be pumped.
The Frank–Starling law of the heart (also called the length–tension relationship) may be understood by recalling the molecular structure of contractile units of heart muscle. For contraction to occur, the actin and myosin filaments that make up the sarcomere must form cross- bridges and slide together. Stretching the muscle before contraction is believed to optimize the space between the actin and myosin filaments, bringing them closer together and resulting in more cross-bridge forma- tion (Fig. 17.26). Stretching the muscle before contraction also makes the contractile apparatus more sensitive to calcium ions such that a greater contractile force occurs for a given calcium concentration.
The cardiac function curve describes the effects of preload on ventricular stroke volume (Fig. 17.27). In practice, stroke volume and ventricular end-diastolic volume are difficult to measure, and other indicators, such as ventricular pressure and cardiac output, may be used. Cardiac function curves can be measured in persons with poorly functioning hearts to determine the best filling volume (preload) for optimizing cardiac output. Often, the failing heart requires a higher- than-normal preload to maintain a normal cardiac output. However, there are limits to the improvement in stroke volume with increased diastolic filling, and beyond that point the curve will flatten. On the flat part of the curve, an increase in preload increases the workload of the heart, but does not provide an improvement in output. The workload imposed on the heart chambers by preload is sometimes called the
volume work of the heart. An increase in preload increases the volume work of the heart, which must be met by increased oxygen uptake to maintain adequate ATP production.
Contractile Capabilities of the Heart (Contractility) Heart muscle contractility depends on several factors, including (1) the amount of contractile proteins in the muscle cells, (2) the availability
90
Cardiac
100
80
100
0
Length (% Lmax)
Te n si
o n (
% m
a x)
60
40
20
807060
FIG 17.26 Force of muscle contraction depends in part on its resting length before activation. At optimal lengths, the greatest tension is developed, and cross-bridge formation is enhanced.
76
100
50
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Central venous pressure (mm Hg)
PRELOAD
543210–2 –1
V E
N T
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U L A
R S
T R
O K
E V
O L U
M E
( m
l)
Enhanced contractility (SNS activation)
Depressed contractility (PSNS activation)
Normal contractility
FIG 17.27 Cardiac function curves showing the dependence of ventricular stroke volume on preload. Different hearts have different cardiac function curves and may respond differently to the same degree of preload. PSNS, Parasympathetic nervous system; SNS, sympathetic nervous system.
376 UNIT V Cardiac Function
ENDOCRINE FUNCTION OF THE HEART In addition to its pumping function, the heart has an endocrine function: secretion of natriuretic peptides. Atrial natriuretic peptide (ANP) is synthesized by myocytes in the atria and released in response to atrial stretch. Increased atrial stretch occurs when blood volume becomes excessive. The ventricles produce a related peptide called B-type natriuretic peptide (BNP) when they are chronically overdistended. An elevated BNP value is a marker for congestive heart failure. ANP and BNP cause enhanced excretion of sodium and water by the kidney. In general, the effects of the natriuretic peptides are antagonistic to those of the renin–angiotensin–aldosterone system (see Chapter 26).
TESTS OF CARDIAC FUNCTION In addition to patient history, laboratory results, and physical assessment, a number of diagnostic tests may be employed to evaluate cardiac function. The ECG is routinely obtained and provides information about the heart’s conduction patterns. Echocardiography and nuclear cardiography are tests that use various modes to image the heart. A more direct assessment of cardiac function can be obtained by cardiac catheterization. In addition, a number of methods have been developed to quantify myocardial blood flow. Each of these studies is briefly described in this section.
Electrocardiography The ECG graphically indicates electrical currents generated by cardiac cells. The current is registered by skin electrodes placed in particular positions on the body. The standard ECG has 12 different leads that are obtained through 10 skin electrodes: 3 standard bipolar limb leads, 3 augmented unipolar limb leads, and 6 unipolar chest leads. Bipolar leads represent a difference in electrical potential between two electrodes, one positive and one negative. Augmented unipolar limb leads represent a difference in potential between one electrode and the average of the other two limb electrodes. Unipolar chest leads represent a difference
of ATP, and (3) the availability of free calcium ions in the cytoplasm. Contractility is, by definition, independent of fiber end-diastolic length and is therefore not affected by preload. Given an adequate ATP supply, the contractile state of the normal myocardium is primarily determined by factors that increase the availability of free calcium ions within the myocardial cell. In general, an increased intracellular free calcium level can be accomplished by enhanced release from internal stores, enhanced entry from extracellular fluid, and reduced rates of extrusion across the plasma membrane.
A variety of agents that increase contractility, called positive inotropes, are associated with increased intracellular calcium levels in the heart. These include the sympathetic neurotransmitters NE and epinephrine, thyroid hormone, caffeine, digitalis, and many others. Agents that depress contractility, called negative inotropes, achieve their effects by reducing intracellular calcium levels. These agents include L-type calcium channel blockers, parasympathomimetics, and sympathetic blocking drugs. The baroreceptor reflex, described previously in relation to heart rate, is also an important regulator of stroke volume through its effects on contractility. Positive inotropic agents increase ATP utilization by the myocardium, whereas negative inotropes decrease myocardial workload and reduce ATP requirements.
Cardiac disease may adversely affect contractility because of an inadequate oxygen supply or because of loss of myocardial pumping cells. These disorders are discussed in Chapter 18.
Impedance to Ejection From the Ventricle (Afterload) The third major determinant of stroke volume is afterload, which refers to the impedance or resistance that must be overcome to eject blood from the chamber. Left ventricular afterload is determined primarily by aortic blood pressure. Because high blood pressure increases left ventricular afterload, vasodilating agents that reduce blood pressure can significantly decrease afterload. Normally the aortic valve offers little impedance to flow; however, aortic valve narrowing may significantly increase afterload. An increase in afterload will result in a decrease in stroke volume unless contractility or preload (or both) is adjusted to compensate. Conversely, a decrease in afterload will allow a larger-than- normal volume of blood to be ejected from the heart, requiring less myocardial work. The work done by the heart to overcome afterload is often called the pressure work of the heart. An increase in afterload increases pressure work and requires greater tension development within the walls of the chamber (wall stress). Increased wall stress not only increases myocardial workload and oxygen consumption but also, if prolonged, may trigger structural changes leading to hypertrophy of myocytes.
The ventricles normally eject about 60% to 70% of their end-diastolic volume during contraction; the remaining 30% to 40% remains in the ventricle. Ejection fraction is influenced by afterload as well as preload and contractile state. A reduced ejection fraction is a common finding in persons suffering from myocardial infarction. Ejection fractions less than 40% indicate significant myocardial impairment and may be associated with systolic heart failure (see Chapter 19).
Cardiac Workload The oxygen requirements of the heart are related to the amount of energy (ATP) exerted to perform its pumping function. The four determinants of cardiac output described in the previous section—heart rate, preload, contractility, and afterload—are also the major determinants of cardiac energy requirements. An increase in any of these four factors will increase ATP requirements and therefore cardiac cell oxygen requirements. High afterload is most detrimental because it greatly increases cardiac work without producing a higher cardiac output. When oxygen supply to the heart is impaired, as in coronary atherosclerosis,
it may be beneficial to reduce myocardial oxygen demand by reducing cardiac workload. This may be accomplished by reductions in heart rate, preload, afterload, and contractility.
KEY POINTS • Cardiac output is the product of the heart rate times the stroke volume (CO
= HR × SV). An increase in heart rate or stroke volume will increase cardiac output. An increase in heart rate can compensate for a decrease in stroke volume.
• Heart rate is controlled primarily by the autonomic nervous system. Factors that increase heart rate include low blood pressure (baroreceptors), acidemia (chemoreceptors), atrial and ventricular overdistention (Bainbridge reflex), and emotions. Activation of the vagus nerve will decrease heart rate.
• Stroke volume is influenced by preload. According to the Frank–Starling law, increased preload stretches the sarcomere, resulting in more forceful contraction.
• Increased contractility increases stroke volume by causing a greater percent- age of the ventricular volume to be ejected. Any factor that enhances the availability of cytoplasmic free Ca2+ will increase contractility.
• Increased afterload will decrease stroke volume. Afterload is determined primarily by the resistance of the arterial system. Vasoconstriction and high aortic pressure increase afterload.
• Any factor that increases heart rate, preload, contractility, or afterload will increase the workload of the heart.
CHAPTER 17 Cardiac Function 377
+
+ –
– –
Lead I
Lead II Lead III
FIG 17.28 Positions of standard bipolar limb leads I, II, and III. The positive (+) lead is the recording lead.
I
II
III
FIG 17.29 Normal electrocardiogram recorded from the three standard bipolar limb leads. The R wave is normally upright in leads I, II, and III.
+
+
+
aVR aVL
aVF
FIG 17.30 Unipolar augmented leads aVR, aVL, and aVF.
in potential between the chest electrode and a location at the center of the heart. Each lead provides a different ECG because of its particular “view” of current flow through the heart.
The three standard bipolar limb leads are lead I, lead II, and lead III (Fig. 17.28): lead I measures the current between the right arm and left arm, lead II measures the current between the right arm and left leg, and lead III measures the current between the left arm and left leg. A normal ECG from leads I, II, and III is illustrated in Fig. 17.29.
Electrode placement for the augmented unipolar limb leads is illustrated in Fig. 17.30. Unipolar limb lead electrodes provide the positive pole: lead aVR is recorded from the right arm, lead aVL is recorded from the left arm, and lead aVF is recorded from the left leg. In these leads, a stands for augmented; V stands for voltage; and R, L, and F indicate the location of the unipolar lead (right arm, left arm, and foot [left]). A normal ECG from these leads is illustrated in Fig. 17.31.
Precordial unipolar chest leads are recorded from electrodes placed in six positions over the heart on the anterior chest (Fig. 17.32). Chest leads are designated as V1, V2, V3, V4, V5, and V6. The normal ECG from the chest leads is shown in Fig. 17.33. The chest leads provide a horizontal view of the heart, whereas the limb leads provide a view of the frontal plane.
Twelve-lead ECGs are usually recorded for a short period when the patient is resting (Fig. 17.34). Sequential ECGs are useful for determining changes over time. In some cases it is necessary to monitor the ECG recording for an extended period to capture rhythm problems that
378 UNIT V Cardiac Function
occur infrequently or with particular activities. This is accomplished by continuous ambulatory monitoring (e.g., Holter monitoring) over a 24- to 48-hour period. An ECG can also be recorded during exercise to monitor the effects of exercise stress on cardiovascular function. An exercise test (stress test) is usually performed while the subject progres- sively increases his or her effort on a treadmill or stationary bicycle. The exercise ECG is particularly useful for assessing the adequacy of coronary circulation when the myocardial workload is increased. Impaired myocardial oxygen delivery may be evident on the ECG as ST segment elevation or depression and abnormal T waves.
Magnetic Resonance Imaging and Computed Tomography Magnetic resonance imaging (MRI) and computed tomography (CT) are useful for imaging cardiac structures. Myocardial thickening, pericardial sac disease, valvular structures, and congenital malformations may be visualized by MRI. Contrast-enhanced imaging identifies acute and chronic myocardial infarcts with high specificity and sensitivity. MRI and CT are used to detect coronary plaque burden and assess vulnerable plaque morphology in the arterial walls. Excessive plaque burden and unstable plaques are correlated with a greater degree of coronary atherosclerosis and may be used to predict coronary artery disease risk or progression.
Echocardiography Echocardiography uses reflected sound waves (ultrasound) to provide an image of cardiac structure and motion within the chest. The cardiac echo is obtained by placing a blunt probe on the chest surface, which transmits and receives high-frequency sound waves. Sound waves traveling through chest and heart structures are reflected back to the receiving probe. The time between sound wave emission and detection of reflected waves is used to calculate distances between the probe and reflecting tissue. The sound waves are not heard or felt by the subject and have no known detrimental effects on tissues. The probe is moved across the chest to assess cardiac structures of interest, and recordings are videotaped for later viewing.
Echocardiograms are particularly useful for diagnosis of heart enlargement, valvular disorders, collections of fluid in the pericardial space, cardiac tumors, and abnormalities in left ventricular motion. Estimations of ejection fraction and assessments of ventricular systolic and diastolic function can be made noninvasively by echocardiogram. An echocardiogram is shown in Fig. 17.35.
aVR aVL aVF
FIG 17.31 Normal electrocardiogram recorded from the three unipolar augmented leads. The aVR lead is characterized by a large S wave and an inverted T wave. The aVL and aVF leads have an upright R wave and T wave.
X X
X X X
X
V1 V3 V5 V2 V4 V6
Midaxillary line
Anterior axillary line
Midclavicular line
FIG 17.32 Unipolar chest (precordial) leads V1 through V6.
V1 V2 V3 V4 V5 V6
FIG 17.33 Normal electrocardiogram recorded from the six unipolar chest leads, V1 through V6. Note the progression across the precordial leads as the R waves become increasingly positive.
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direct measurement of pressures within cardiac chambers; visualization of chamber size, shape, and movement; sampling for blood oxygen content in various heart regions; measurement of cardiac output and ejection fraction; and visualization and management of coronary artery obstructions.
Cardiac catheterization angiography is associated with several serious risks, including bleeding, dysrhythmias, heart perforation, and coronary ischemia. The advent of noninvasive high-resolution MRI, echocardio- grams, and SPECT scanning has replaced the need for cardiac catheteriza- tion in many instances; however, the value of information supplied is generally believed to outweigh the risks in certain cases. Catheterization is frequently used for interventions to rapidly improve coronary blood supply and to evaluate suspected or confirmed coronary artery disease, valvular dysfunction, congenital defects, left ventricular dysfunction, and coronary bypass graft patency.
Assessment of the left side of the heart, including the coronary arteries, is achieved by passing a catheter through a femoral or brachial artery into the aorta. The catheter is then manipulated into the left
Nuclear Cardiography Radioactive substances injected into the bloodstream can be used to trace the patterns of blood flow in the heart. Radiation exposure is minimal because very small amounts of radioactive substances are used. Radioactive tracers can be linked to substances that accumulate in normal myocardial cells while the tracer is delivered by coronary blood flow. Areas with impaired perfusion will absorb less radioactivity and appear as “cold spots” on the scan. Scanning usually is done using single-photon emission computed tomography (SPECT), which images numerous slices through the heart, or by planar imaging, which gives an overall picture in one plane only.
Thallium-201 (201Tl) and technetium-99 labeled compounds (99mTc sestamibi) are used to assess the adequacy of blood flow to cardiac tissues. After injection of the radioactive compound, the heart is scanned to visualize the amount of radioactivity absorbed by cardiac tissues. Healthy cardiac tissues that receive adequate blood supply actively accumulate these isotopes. Areas of inadequate blood flow or infarcted tissue do not accumulate isotopes and appear as cold spots on the scan. Resting and exercise scanning are done to assess for exercise-induced perfusion defects.
Gated pool scanning (radionuclide ventriculogram) is used primarily to assess left ventricular motion and ejection fraction. Before it is injected intravenously, radioactive technetium is attached to albumin or red blood cells, and therefore it remains in the bloodstream and is not absorbed by cells. Computer imaging is used to analyze blood flow through the chambers of the heart over many cardiac cycles. The dynamics of ventricular motion, such as hypercontractility or hypocontractility, may be visualized. Separate radionuclide ventriculogram evaluation has largely been replaced by SPECT scanning that allows simultaneous evaluation of perfusion and left ventricular function.
Positron emission tomography scans may also be used to evaluate cardiac perfusion and metabolism. Radiotracers can be incorporated into substances normally used in cellular metabolic processes, such as glucose. Metabolic activity in different areas of the heart can then be tracked over time under different conditions.
Cardiac Catheterization/Coronary Angiography Cardiac catheterization/coronary angiography may be used to determine important structural and hemodynamic characteristics because it affords
FIG 17.34 Example of a normal 12-lead ECG showing R wave progression in V leads.
FIG 17.35 Pathology specimen (left) and echocardiography image (right) of heart with enlarged right atrium and right ventricle. LA, Left atrium; LV, left ventricle; RA, right atrium; RV, right ventricle. (From Connolly H, Oh J: Echocardiography. In Bonow R et al, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 9, vol 1, Philadelphia, 2012, Saunders, p 264.)
380 UNIT V Cardiac Function
then threaded through the inferior vena cava and into the heart. Pressures and blood samples are obtained as the catheter is advanced into the right atrium, ventricle, and pulmonary artery. Right heart catheterization is useful in assessing tricuspid and pulmonary valve disorders, pulmonary hypertension, septal defects, and right ventricular function.
Coronary angiography is commonly followed by interventions to treat detected abnormalities. The coronary catheter can be used to direct thrombolytic agents to the site of coronary thrombosis and rapidly restore blood flow to ischemic areas. Laser therapy, coronary balloon angioplasty, and stent placement can also be performed during coronary angiography. These methods clear the coronary obstruction through thermal and mechanical means. The success of these approaches to management of coronary obstruction depends largely on how soon after an ischemic event they are performed (see Chapter 18).
ventricle or left atrium to assess chamber pressures, and a ventriculogram is obtained. Contrast dye injected into the ventricular chamber is monitored fluoroscopically to assess ventricular function. The catheter is usually pulled back into the aorta and then advanced into one or more of the coronary arteries. The patency of the coronary arteries can be visualized by injecting contrast dye into them and monitoring by fluoroscopy (Fig. 17.36). When contrast dye is in the coronary artery, a period of cardiac ischemia is produced during which the patient may experience angina, dysrhythmias, and coronary spasms. Coronary catheterization may also be done to insert a probe for obtaining intracoronary ultrasounds. Ultrasounds are useful for assessing plaque morphologic characteristics (Fig. 17.37).
Right-sided heart catheterization is done to evaluate right-sided heart structures. The catheter is introduced into a vein, usually femoral, and
FIG 17.36 Coronary artery angiography. The arrows show an area of obstruction of the coronary artery. (From Popma J et al: Coronary arteriography and intracoronary imaging. In Mann D et al, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Saunders, p 414.)
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Mirvis DM, Goldberger AL: Electrocardiography. In Mann D, Zipes D, Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Saunders, pp 114–152.
Opie LH, Bers DM: Mechanisms of cardiac contraction and relaxation. In Mann D, Zipes D, Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Saunders, pp 429–453.
Panteghini M, et al: Use of biochemical biomarkers in acute coronary syndromes. IFCC Scientific Division, Committee on Standardization of Markers of Cardiac Damage, International Federation of Clinical Chemistry. Clin Chem Lab Med 37:683–693, 1999.
Pettersen KH, Bugenhagen SM, Nauman J, et al: Arterial stiffening provides sufficient explanation for primary hypertension. arXiv:1305.0727 [q-bio. TO], 2013.
Popma J, Kinley S, Bhatt DL: Coronary arteriography and intracoronary imaging. In Mann D, Zipes D, Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Saunders, pp 392–423.
Starling EH: The Linacre lecture on the law of the heart, London, 1918, Longmans Green.
Strandring S: Gray’s anatomy, ed 41, London, 2016, Churchill Livingstone.
RESOURCES Canty JM, Duncker DJ: Coronary blood flow and myocardial ischemia. In
Mann D, Zipes D, Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Saunders, pp 1029–1056.
Clerico A, Giannoni A, Vittorini S, Passino C: Thirty years of the heart as an endocrine organ: physiological role and clinical utility of cardiac natriuretic hormones. Am J Physiol Heart Circ Physiol 301(1):H12–H20, 2011.
Fang JC, O’Gara PT: The history and physical examination: an evidence-based approach. In Mann D, Zipes D, Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Saunders, pp 95–113.
Favero G, Paganelli C, Buffoli B, et al: Endothelium and its alterations in cardiovascular diseases: life style intervention. Biomed Res Int 2015. http:// dx.doi.org/10.1155/2014/801896.
Leri A, Rota M, Hosoda T, et al: Cardiac stem cell niches. Stem Cell Research 13(3ptB):631–646, 2014.
Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Saunders, pp 429–453.
A B C
FIG 17.37 Intracoronary ultrasonographic examples of plaque morphology. A, A normal vessel wall. B, Fibrous cap on coronary plaque. C, A soft plaque with rupture of the fibrous cap. (From Braunwald E, Zipes D, Libby P, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 6, Philadelphia, 2001, Saunders, p 416.)
The heart’s primary function is to pump sufficient blood to deliver oxygen and nutrients to the body. The heart may be viewed as two separate pumps: a right-sided pump that perfuses the lungs and a left-sided pump that perfuses the systemic circulation. The left ventricle must generate higher pressures and therefore has a thicker myocardial mass and higher energy requirements. Because little ATP storage in cardiac cells is possible, the coronary arteries must deliver a steady supply of oxygen and nutrients. Cardiac contraction can be described by the sliding filament/cross-bridge theory and occurs only in the presence of ATP and free calcium ions. Factors that enhance intracellular calcium ion concentration will result in generation of a greater contractile force.
A coordinated cardiac contraction is possible because the heart’s conduction system activates the chambers in a sequential manner. The
sinoatrial node is the usual pacemaker because it has the highest intrinsic rate of diastolic depolarization. The diastolic depolarization rate is strongly influenced by the autonomic nervous system. The ECG shows the electrical activity of the heart and is a useful indicator of cardiac conduction abnormalities.
The ultimate indicator of cardiac function is the cardiac output, which is the product of heart rate and stroke volume. The autonomic nervous system is the main regulator of heart rate, whereas stroke volume is influenced by preload, afterload, and contractility. These factors are also the primary determinants of myocardial work and energy expenditure.
S U M M A R Y
382
18
Alterations in Cardiac Function Jacquelyn L. Banasik
K E Y Q U E S T I O N S • What is the role of injury, inflammation, and lipid oxidation in
coronary plaque initiation and progression? • What factors alter the balance between myocardial oxygen supply
and demand? • How do the clinical features of the coronary heart disease
syndromes differ? • How do valvular disorders alter cardiac pressure dynamics and
workload?
• What are the similarities and differences among the cardiomyopathies and myocarditis?
• How do pericarditis and pericardial effusions differ in regard to cause and significance?
• What factors determine whether a congenital heart defect will produce cyanosis?
C H A P T E R O U T L I N E Coronary Heart Disease, 383
Etiology of Coronary Heart Disease, 383
Risk Factors and Mechanisms of Coronary Atherosclerosis, 383
Pathophysiology of Ischemia, 385
Clinical Features and Management of Coronary Syndromes, 388
Angina Pectoris, 388 Acute Coronary Syndrome, 388 Sudden Cardiac Arrest, 393 Chronic Ischemic Cardiomyopathy, 393
Endocardial and Valvular Diseases, 394 Disorders of the Mitral Valve, 394
Mitral Stenosis, 395 Mitral Regurgitation, 396 Mitral Valve Prolapse, 396
Disorders of the Aortic Valve, 397
Aortic Stenosis, 397 Aortic Regurgitation, 397
Diseases of the Endocardium, 398
Rheumatic Heart Disease, 398 Infective Endocarditis, 398
Myocardial Diseases, 399 Myocarditis, 399
Cardiomyopathy, 400
Dilated Cardiomyopathy, 400 Hypertrophic Cardiomyopathy, 400 Restrictive Cardiomyopathy, 401
Pericardial Diseases, 402 Pericardial Effusion, 402
Cardiac Tamponade, 402
Pericarditis, 402
Acute Pericarditis, 402 Chronic Pericarditis, 403
Congenital Heart Diseases, 403 Embryologic Development, 403
Etiology and Incidence of Congenital Heart Disease, 404
Pathophysiology of Congenital Heart Disease, 405
Acyanotic Congenital Defects, 406
Atrial Septal Defect, 406 Ventricular Septal Defect, 407 Patent Ductus Arteriosus, 407 Coarctation of the Aorta, 408 Pulmonary Stenosis or Atresia, 408 Aortic Stenosis or Atresia, 408
Cyanotic Congenital Defects, 408
Tetralogy of Fallot, 408 Transposition of the Great Arteries, 408 Truncus Arteriosus, 409 Tricuspid Atresia, 409
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 18 Alterations in Cardiac Function 383
are the same as those for atherosclerosis in other arteries and are discussed in Chapter 15.
The observation that atherosclerotic plaque is composed primarily of lipid prompted the idea that abnormal lipid metabolism was a probable culprit in the development of CHD, and a great deal of attention has been focused on therapies to reduce levels of serum cholesterol in individuals with dyslipidemia. Lipids are transported through the bloodstream in combination with specific proteins (apoproteins). Certain lipid–protein molecules (lipoproteins) are associated with a greater risk of atherosclerosis. The five major kinds of lipoproteins are shown in Fig. 18.1. High levels of low-density lipoproteins (LDLs), which are high in cholesterol, have been associated with the highest risk. Very- low-density lipoproteins, which have large amounts of triglycerides, also appear to increase the risk. High-density lipoproteins, on the other hand, have been correlated with a decreased risk of atherosclerosis.
High-density lipoproteins are thought to transport cholesterol from the peripheral tissues back to the liver, thus removing atheromatous plaque. The role of low-density and, indirectly, very-low-density lipoproteins is to transport cholesterol to the peripheral tissues (Fig. 18.2). Cholesterol uptake by peripheral cells is mediated by LDL receptors on cell surfaces that bind and promote endocytosis of cholesterol. The liver normally binds and internalizes about 75% of the circulating LDL cholesterol.
The incidence of cardiovascular disease (CVD) increased rapidly in the United States during the last century, but the death rates from CVD declined. CVD accounts for approximately 31% of all deaths. Approxi- mately 45% of these deaths are due to coronary heart disease (CHD), whereas stroke, high blood pressure, heart failure, and others claim the remainder. The decline in cardiac mortality has been achieved in the United States because of improvements in treatment and prevention. More than 16 million people living today have a history of CHD. Men and women are equally represented, although women tend to be older when their heart disease becomes apparent. The direct and indirect economic cost of cardiovascular diseases, including stroke, is well over $315 billion annually. CHD is the most important cardiovascular disorder in terms of numbers affected and economic impact.
CORONARY HEART DISEASE CHD is also called ischemic heart disease and coronary artery disease (CAD) in some sources. These terms are related because CHD is characterized by insufficient delivery of oxygenated blood to the myocardium (ischemia) because of atherosclerotic coronary arteries (CAD). The American Heart Association compiles statistics under the heading of CHD, which includes the diagnoses of angina pectoris and myocardial infarction (MI). CHD causes about one in six deaths in the United States. Other sequelae of CHD include dysrhythmias, sudden cardiac arrest, and heart failure. When metabolic demand for oxygen exceeds supply, the myocardium becomes ischemic, which leads to a dysfunction in cardiac pumping and predisposes to abnormal heart rhythms. If the ischemic episode is severe or prolonged, irreversible damage to myocardial cells may result in MI.
Etiology of Coronary Heart Disease Atherosclerosis of coronary arteries is the source of nearly all CHD. Atherosclerosis causes progressive narrowing of the arterial lumen and predisposes to a number of processes that can precipitate myocardial ischemia, including thrombus formation, coronary vasospasm, and endothelial cell dysfunction. Uncommon causes of cardiac ischemia include abnormalities of blood oxygen content (e.g., respiratory failure) and poor perfusion pressure through the coronary arteries (e.g., hypoten- sion, hypovolemia). Occasionally, patients experience the signs and symptoms of cardiac ischemia but show no evidence of significant coronary artery atherosclerosis when evaluated by angiography. These patients are thought to have abnormalities of the microcirculation. Abnormal vascular regulation by endothelial cells in small vessels of the heart has been suggested as a probable mechanism. Endothelial cells secrete variable quantities of vascular relaxing and contracting factors and play a key role in controlling myocardial blood flow. Abnormalities of the microcirculation are more difficult to detect than coronary artery plaque, which is evident on coronary angiography (see Chapter 17).
Risk Factors and Mechanisms of Coronary Atherosclerosis Knowledge about mechanisms of plaque formation in the coronary arteries has rapidly accumulated in recent decades. Epidemiologic studies reported in the 1960s suggested associations among certain traits and habits and the development of CHD. More recent studies have confirmed and expanded on these risk factors, which include several major risks (e.g., age, family history, abnormal lipid levels, cigarette smoking, hypertension, diabetes, and obesity) and numerous probable risks (Box 18.1). Although males and females succumb to heart disease in equal numbers, male gender is a risk factor for earlier development of heart disease—on average about 10 years earlier. The risk factors for CHD
Nonmodifiable Risks Age: ≥45 years for men; ≥55 years for women Gender: male (earlier onset) Family history of premature coronary heart disease
• Myocardial infarction or sudden cardiac death in male first-degree relative at age less than 55 years or female first-degree relative at age less than 65 years
• Genetic markers identified
Lipid Risk Factors Total cholesterol >200 mg/dL LDL cholesterol >130 mg/dL Triglycerides >150 mg/dL HDL cholesterol <40 mg/dL
Nonlipid Risk Factors Hypertension >140/90 mm Hg Cigarette smoking Thrombogenic state Diabetes Obesity Physical inactivity Poor diet (atherogenic)
Probable Risk Factors (Emerging) Lipoprotein(a) Small LDL particles (pattern B) HDL subtypes Apolipoprotein B Homocysteine Fibrinogen Chronic inflammation Impaired fasting glucose (100–125 mg/dL)
BOX 18.1 Risk Factors for Coronary Heart Disease
384 UNIT v Cardiac Function
and foam cells release inflammatory mediators and growth factors that attract more leukocytes and stimulate smooth muscle proliferation. Excess lipid and debris begin to accumulate within the vessel wall and to coalesce into a pool called the lipid core (Fig. 18.4). Atherosclerotic plaques with large lipid cores are fragile and prone to rupture. Rupture of a plaque exposes subendothelial proteins and initiates platelet aggregation and thrombus formation. Thrombi may be asymptomatic if they are small and do not occlude the artery. Components of the thrombus may be incorporated into the plaque, causing it to enlarge. Older plaques have significant collagen and fibrin, which form a cap and tend to make the plaque more stable. Numerous therapies aimed at stabilizing vulnerable plaques and preventing thrombus formation have been studied in clinical trials.
In addition to lifestyle modification to improve risks, statins are recommended as the drug class of choice for patients with significant risks for cardiovascular events. The groups that benefit most from statin therapy are shown in Box 18.2. The use of nonstatin agents, such as fibrates and niacin, is no longer recommended. In addition, the use of serum lipid measurements as medication dosing targets is no longer recommended because lipid lowering is only one of the mechanisms
Extreme cases of hyperlipidemia occur in individuals who have genetic derangements in lipid metabolism. These disorders run in families, and some are associated with the development of severe coronary atherosclerosis at a young age unless aggressively managed. The most common form of genetic hyperlipidemia (familial hypercholesterolemia) is associated with a defect in the LDL receptor on liver cells. Inability of the liver to efficiently remove cholesterol from the bloodstream results in hyperlipidemia. Genetic disorders of lipid metabolism are described in Table 18.1. Even when lipid metabolism is normal, a high-fat diet can overwhelm the liver’s ability to clear LDL cholesterol from the circulation and results in hyperlipidemia. Dietary fat restriction may be beneficial in reducing cholesterol level in this case.
Atherosclerotic plaque formation is initiated by injury to the coronary artery endothelium. The specific cause of endothelial dysfunction in the early stage of atherosclerosis is uncertain; however, several potential mechanisms have been described. These include chronic hemodynamic wall stress, which may explain the typical localization of plaques at arterial branch points and the role of hypertension as a risk factor; toxins from cigarette smoke; circulating inflammatory cytokines; and hyperlipidemia. Once the injury occurs, the endothelium may become more permeable and recruit leukocytes (Fig. 18.3). LDLs leak through the endothelium and into the vessel wall (insudation) where they are oxidized by endothelial cells and macrophages. Oxidized lipids are damaging to the endothelial and smooth muscle cells and stimulate the recruitment of macrophages into the vessel wall, where they engulf the lipids. Lipid-filled macrophages are called foam cells. The macrophages
85% Triglyceride 5% Cholesterol
Apo-BApo-C
Apo-A
Chylomicron 80 – 1000 nm
55% Triglyceride 20% Cholesterol
Apo-C
Apo-C
Apo-E Apo-B
Very-low-density lipoprotein (VLDL) 30 – 80 nm
30% Triglyceride 40% Cholesterol
Apo-E
Apo-B Intermediate-density lipoprotein (IDL) 25 – 40 nm
5% Triglyceride 55% Cholesterol 20% Protein
Apo-B Low-density lipoprotein (LDL) 15 – 20 nm
5% Triglyceride 20% Cholesterol 50% Protein
Apo-E
Apo-A
High-density lipoprotein (HDL) 5 – 10 nm
FIG 18.1 Serum lipoprotein fractions showing lipid composition and apoprotein components. Binding of lipoproteins to receptors is mediated through apoproteins.
Chylomicrons from dietary fat
absorption taken up by liver
Excess cholesterol returned to liver
70% of LDL
returned to liver
Excess free cholesterol
LDL to tissues to deliver
cholesterol
HDL
HDL
IDL
VLDL
Triglycerides
Peripheral cells
Triglycerides to brain, muscle
LDL
Liver hepatocytes
FIG 18.2 Schematic of lipoprotein metabolism in the body. Chylomicrons from dietary fat absorption are taken up by the liver and resynthesized into high-density lipoprotein (HDL) and very-low-density lipoprotein (VLDL). HDL circulates to the peripheral tissues and takes up excess cholesterol for transport back to the liver. Triglycerides are removed for tissue use from VLDL, which becomes intermediate-density lipoprotein (IDL). More triglyceride removal leads to the formation of low-density lipoprotein (LDL). LDL is absorbed by peripheral tissues to obtain cholesterol. About 70% of the circulating LDL returns to the liver.
CHAPTER 18 Alterations in Cardiac Function 385
affected, although some individuals have only one or two diseased vessels. Surprisingly, the extent and severity of atherosclerotic lesions are not good predictors of the severity of ischemia.
Atherosclerotic coronary lesions have been characterized and attempts have been made to correlate the anatomic descriptions with plaque development and behavior. Typically atherosclerotic lesions begin as fatty streaks and progress to small regions of medial wall thickening with scattered macrophages at a young age. As the plaques acquire more free lipid within the arterial wall, they are more vulnerable to rupture, thrombus formation, and progressive plaque growth. These advanced lesions carry a significant risk of producing disruptions in coronary blood flow. Critical narrowing of the coronary lumen over time or sudden rupture of a plaque followed by thrombus formation causes the clinical syndromes of CHD, including angina, infarction, ischemic cardiomyopathy, and sudden cardiac arrest.
Stable plaques usually are asymptomatic or may be associated with exercise-induced angina pain (stable angina pectoris). However, plaques are vulnerable to rupture or erosion, which can initiate thrombus forma- tion and acute coronary occlusion. A variety of factors have been identified as markers of increased plaque vulnerability. These factors include (1) active inflammation within the plaque, (2) a large lipid core with a thin cap, (3) endothelial denudation (erosion) with superficial platelet adherence, (4) fissured or ruptured cap, and (5) severe stenosis predisposing to high shear stress. Acute coronary syndrome (ACS), or unstable angina or MI, as well as sudden cardiac arrest, is nearly always associated with acute disruption of a vulnerable plaque. Because the types of plaques that are most vulnerable often do not significantly obstruct the lumen before they rupture, ACS frequently occurs in individuals whose disease had been asymptomatic. Patients with a high risk for or known presence of vulnerable plaques benefit from therapies such as statin agents (to stabilize plaques) and antiplatelet agents such as aspirin (to prevent thrombosis).
Pathophysiology of Ischemia Ischemia of cardiac cells occurs when the oxygen supply is insufficient to meet metabolic demands. Myocardial cells are unable to store much
of statin benefit. Instead the doses used are based on risk of cardiovascular events, with higher doses prescribed for those with higher risk (Table 18.2). Nearly 50% of MIs occur in patients who do not have hyperlip- idemia. Statin medications do carry significant risk of liver and muscle damage and should be used in patients only when benefits outweigh these risks. Atherosclerotic lesions generally increase in size over many years and progressively occlude the lumen of vessels. A significant reduction in blood flow can result when plaque occupies 75% or more of the arterial lumen. Clinically significant atherosclerotic plaque may be located anywhere within the three major coronary arteries or major secondary branches. Often all three coronary arteries are simultaneously
TABLE 18.1 Genetic Lipoprotein Disorders
Disorder Gene
LDL Particles Familial hypercholesterolemia LDL-R Familial defective ApoB-100 ApoB Gain of function PCSK9 mutations PCSK9 Autosomal recessive hypercholesterolemia ARH Abetalipoproteinemia MTP Hypobetalipoproteinemia ApoB Familial sitosterolemia ABCG5/ABCG8 Familial LP(a) hyperlipoproteinemia Apo(a)
Remnant Lipoproteins Dysbetalipoproteinemia type III ApoE Hepatic lipase deficiency HL
Triglyceride-Rich Lipoproteins Lipoprotein lipase deficiency LPL ApoC-II deficiency ApoC-II Apo-AV ApoA-V Familial hypertriglyceridemia Polygenic Familial combined hyperlipidemia Polygenic
Hdl Particles Apo-A1 deficiency Apo-A1 Tangier disease, familial HDL deficiency ABCA1 Familial LCAT deficiency syndromes LCAT CETP deficiency CETP Niemann-Pick disease types A and B SMPD1 Niemann-Pick disease type C NPC1
Adapted from Genest J, Libby P: Lipoprotein disorders and cardiovascular disease. In Mann D, Zipes D, Libby P, Bonow R: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Elsevier, p 988. CETP, Cholesteryl ester transfer protein; HDL, high-density lipoprotein; LCAT, lecithin cholesterol acyltransferase; LDL, low- density lipoprotein; Lp(a), lipoprotein a.
For secondary prevention for those with clinical atherosclerotic cardiovascular disease
For those with LDL cholesterol >190 mg/dL For those with diabetes aged 40 to 75 years with LDL cholesterol between 70
and 189 mg/dL For those without diabetes aged 40 to 75 years with LDL cholesterol between
70 and 189 mg/dL who have an estimated risk of ≥7.5% using the pooled cohort algorithm
BOX 18.2 Major Statin Benefit Groups
TABLE 18.2 Statin Therapy for High-, Moderate-, and Low-Intensity Therapy
High-Intensity Therapy
Moderate- Intensity Therapy
Low-Intensity Therapy
Atorvastatin 40–80 mg daily
Atorvastatin 20–40 mg daily
Simvastatin 10 mg daily
Rosuvastatin 20–40 mg daily
Rosuvastatin 5–10 mg daily
Pravastatin 10–20 mg daily
Simvastatin 20–40 mg daily
Lovastatin 10 mg daily
Pravastatin 40–80 mg daily
Fluvastatin 20–40 mg daily
Lovastatin 40 mg daily Pitavastatin 1 mg daily Fluvastatin 40 mg
twice daily Or Fluvastatin XL
80 mg daily Pitavastatin 2–4 mg
daily
From Ridker PM, Libby P, Buring JE: Risk markers and the primary prevention of cardiovascular disease. In Mann D, Zipes D, Libby P, Bonow R: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Elsevier, p 931.
386 UNIT v Cardiac Function
acute or chronic coronary syndromes. Advanced fibrous plaque is thought to produce intermittent ischemia when 65% to 75% or more of the arterial lumen is occluded. Because fibrous plaque progresses slowly over many years, the heart can develop alternative pathways for myo- cardial blood flow. This collateral circulation can preserve blood flow despite almost total occlusion of the coronary artery. Thus stable fibrous plaque may produce no symptoms of ischemia unless the demand of the heart for oxygen is suddenly elevated, as occurs in exercise or stress. When the onset of ischemia is predictable with certain activities and subsides with rest, the patient is said to have a chronic coronary syndrome, called classic or stable angina pectoris.
ACS occurs when sudden obstruction of coronary blood flow results in acute myocardial ischemia. Acute obstruction is usually associated with the formation of a clot in the coronary artery at the site of a vulner- able plaque. Rupture of the plaque exposes a rough area composed of collagen and other molecules that are thrombogenic. A high fibrinogen level, as occurs in smokers, and enhanced platelet adhesiveness, as occurs in hyperlipidemia, may enhance the risk of thrombus formation. Clot formation begins with adherence of platelets to the ruptured plaque. The platelets that initially attach release chemicals that attract more platelets, which aggregate and form a plug. The coagulation cascade
energy in the form of adenosine triphosphate (ATP) and must therefore continuously receive a supply of oxygen for aerobic synthesis of ATP. ATP is essential for powering myocardial contraction as well as for cell maintenance. Because the heart is unable to slow its activity when ATP supplies dwindle, a steady flow of oxygen is essential.
Factors that decrease myocardial oxygen supply or increase myocardial oxygen demand can upset the balance and result in cellular ischemia. Thus the critical factors in meeting cellular demands for oxygen are (1) the rate of coronary perfusion and (2) the myocardial workload. Coronary perfusion can be impaired in several ways, including (1) large, stable atherosclerotic plaque, (2) acute platelet aggregation and throm- bosis, (3) vasospasm, (4) failure of autoregulation by the microcirculation, and (5) poor perfusion pressure.
Myocardial workload depends on heart rate, preload, afterload, and contractility (see Chapter 17). An increase in any of these variables increases myocardial oxygen requirements and may precipitate ischemia. However, even conditions resulting in very high myocardial oxygen consumption will seldom lead to ischemia unless some underlying impairment in coronary perfusion is present.
One or more of the aforementioned mechanisms are operative in producing clinically significant myocardial ischemia resulting in the
LDL
Lumen
Endothelium
Intima
Internal elastic membrane
Media
LDL Cytokines (e.g., IL-1, MCP-1)
+ Oxidized LDL
Macrophage
Lipid uptake
Foam cells
Cytokines/Growth Factors
Smooth muscle cells
Migration of smooth muscle cells
Extracellular lipids and necrotic cells
Proliferation of smooth muscle cells
Extracellular matrix synthesis
Endothelial Injury/Dysfunction
Hyperlipidemia, Hypertension, Smoking, Toxins, Hemodynamic
factors, Immune reactions, Viruses
Normal vessel Progressive development of atherosclerotic plaque
Monocyte adhesion and emigration into intima
Migration of smooth muscle cell precursors
Cholesterol efflux via HDL
LDL
FIG 18.3 Sequence of events in the arteriolar wall associated with development of atherosclerosis. Note that smooth muscle cells migrate from the intima through the internal elastic membrane and into the intimal layer where they proliferate in response to growth factors. Macrophages in the intima release signals that alter the endothelial cell layer and induce expression of cell adhesion molecules that recruit monocytes into the tissue. (From Hovland A et al: The complement system and toll-like receptors as integrated players in the pathophysiology of atherosclerosis. Atherosclerosis 2015;241(2):480–494.)
CHAPTER 18 Alterations in Cardiac Function 387
4. Macrophages and smooth muscle cells engulf lipid
5. Smooth muscle proliferation, collagen and other ECM deposition, extracellular lipid
Lymphocyte
Fibrofatty atheroma
Lipid debris
Lymphocyte Collagen
2. Endothelial dysfunction (e.g., increased permeability, leukocyte adhesion) Monocyte adhesion and emigration.
3. Smooth muscle emigration from media to intima. Macrophage activation.
Fatty streak
1. Chronic endothelial "injury": • Hyperlipidemia • Hypertension • Smoking • Homocysteine • Hemodynamic factors • Toxins • Viruses • Immune reactions
Endothelium Intima Media Adventitia
Response to injury
FIG 18.4 Pathogenesis of atherosclerosis. 1, Chronic endothelial injury leads to 2. 2, Endothelial dysfunction, permeability, and inflammation. 3, Activated monocytes infiltrate the arterial wall and smooth muscle proliferates. 4, Macrophages engulf lipid to become foam cells. 5, A lipid core forms in the arterial wall and a fibrous cap evolves. (From Garden JO, Bradbury AW, Forsythe JLR, Parks RW: Principles and practice of surgery, ed 6, London, 2012, Churchill Livingstone.)
may also be initiated and result in the formation of a platelet–fibrin clot that may occlude the vessel or break loose and travel farther along the vessel. Chemicals released by activated platelets include several vasoactive products (e.g., serotonin, thromboxane) that may contribute to spasm of the coronary vessel, further reducing blood flow.
Thrombosis occurs suddenly and may partially or completely obstruct the artery and cause acute ischemia. The ACS may present as unstable angina, MI, or sudden cardiac arrest. Appreciation of the role thrombus formation plays in coronary obstruction has resulted in the prophylactic use of antithrombotics, such as aspirin. Research indicates that the long-term use of small doses of aspirin reduces mortality from ischemic heart disease.
Vasospasm usually occurs in areas of atherosclerotic plaque, but is also proposed as a mechanism of ischemia in patients who have anginal signs and symptoms but no significant amount of fibrous plaque in the coronary arteries. Variant, or Prinzmetal, angina is the term applied to vasospasm-initiated anginal symptoms. The etiology of spasm in vessels with no significant atherosclerotic plaques is unclear, but usually responds promptly to vasodilating agents. Intense vasospasm can occur in response to certain drugs, such as cocaine.
As previously mentioned, endothelial cells are important regulators of vascular tone. They secrete variable amounts of constricting and relaxing factors to control tissue perfusion. This autoregulation of blood flow allows the microvasculature to dilate when the need for oxygen in a particular area is increased. Failure of endothelial cells to appro- priately regulate flow is a potential mechanism of myocardial ischemia. Endothelial cells can be damaged by circulating toxins from cigarette smoke, immune cells, and infectious agents. Inflammatory disorders that may alter endothelial cell function include lupus erythematosus, Kawasaki syndrome, and polyarteritis nodosa. The importance of inflammatory processes in the pathogenesis of CHD has been recognized, resulting in efforts to find markers (e.g., serum high-sensitivity C-reactive protein) and methods to reduce inflammation in those at risk.
Even if the coronary arteries and microcirculation are functioning properly, coronary perfusion may still be inadequate if perfusion pressure is low. Recall from Chapter 17 that coronary blood flow occurs primarily during diastole and depends on the driving pressure in the aorta. A fall in aortic blood pressure can significantly reduce coronary perfusion, particularly in vessels with high resistance to flow. Conditions such as shock, hemorrhage, and anesthesia may be associated with a decline in blood pressure that decreases driving pressure and coronary perfusion and results in myocardial ischemia. However, the most common cause of cardiac ischemia is atherosclerotic coronary arteries.
KEY POINTS • Cardiac ischemia occurs when the heart’s demand for oxygenated blood
exceeds its supply. In most cases, ischemia is a result of impaired blood flow through the coronary arteries.
• Coronary heart disease (CHD) is associated with coronary atherosclerosis. Risk factors for CHD are the same as those for atherosclerosis of other
388 UNIT v Cardiac Function
by stenotic atherosclerotic coronary vessels that reduce coronary blood flow to a critical level. The stenosed arteries dilate poorly in response to increased myocardial oxygen requirements. Under conditions of increased myocardial workload, such as during physical exertion or emotional strain, coronary perfusion is inadequate and ischemia results (Fig. 18.5). The onset of anginal pain is generally predictable and elicited by similar stimuli each time. Stable angina is generally relieved by rest and nitroglycerin, a drug that causes coronary and peripheral vasodilation, reduces preload, and, consequently, reduces myocardial workload.
Prinzmetal variant angina. Prinzmetal variant angina is characterized by unpredictable attacks of anginal pain. Although most individuals with Prinzmetal angina have some coronary atherosclerosis, the onset of ischemic symptoms is unrelated to physical or emotional exertion, heart rate, or other obvious causes of increased myocardial oxygen demand. Vasospasm has been identified as the probable mechanism leading to variant angina, although the cause of the vasospasm is unknown. Proposed mechanisms include atherosclerosis-induced hypercontractility, abnormal secretion of vasospastic chemicals by local mast cells, and abnormal calcium flux across vascular smooth muscle. Variant angina responds well to treatment with calcium channel–blocking drugs, which inhibit vascular smooth muscle contraction.
Patients with angina are at risk for developing ACS and need aggressive treatment for risk factor reduction and therapies to reduce the risk of plaque rupture, thrombosis, and dysrhythmia.
Acute Coronary Syndrome Unstable angina and MI are difficult to distinguish on the basis of clinical manifestations and are lumped together as ACS. Both are characterized by chest pain that may be more severe and lasts longer than the patient’s typical angina and may occur in individuals whose disease was previously asymptomatic. In both cases, plaque rupture with subsequent acute thrombus development is thought to occur. In unstable angina, the occlusion is partial or the clot is dissolved before the death of myocardial tissue. In MI, the occlusion is complete and the thrombus persists long enough for development of irreversible damage to myocardial cells, resulting in necrosis. In the past, differentia- tion of unstable angina and MI was based on laboratory evaluation of serum biomarker levels (e.g., MB band of creatine kinase [CK-MB], troponins I and T). If cardiac biomarkers were elevated, which is
Clinical Features and Management of Coronary Syndromes Five syndromes can be differentiated according to the severity and onset of cardiac symptoms. Stable angina pectoris and ischemic cardiomyopathy are chronic syndromes that usually progress slowly and are a consequence of chronic obstruction from stable atherosclerotic plaques. ACS has an abrupt onset and life-threatening consequences and is associated with acute changes in plaque morphology and thrombosis. ACS includes unstable angina and MI. Unstable angina and MI are combined together because they are difficult to differentiate in the acute stage when thera- peutic decisions must be made. Any of the coronary heart syndromes may precipitate sudden cardiac arrest and associated dysrhythmias.
Angina Pectoris Angina pectoris literally means chest pain and is associated with intermit- tent myocardial ischemia. Bouts of chest pain and associated symptoms are generally recurrent and may be precipitated by conditions that increase myocardial oxygen demand, such as exercise; stress; sympathetic nervous system activation; and increased preload, afterload, heart rate, or muscle mass. Ischemic pain receptors from the myocardium travel to the central nervous system with the eighth cervical nerve and the first through fourth thoracic dorsal root ganglia. Sensory neurons from the jaw, neck, and arm also travel in these nerve trunks, so heart pain may be perceived as emanating from these body parts. This phenomenon is called referred pain. Anginal pain may be described as burning, crushing, squeezing, or choking. Pain is sometimes represented by expressions such as “an elephant is sitting on my chest” or by the patient placing a tight fist on the chest. Anginal pain may be mistakenly attributed to indigestion or dental pain. In some cases, patients have atypical symptoms of myocardial ischemia, such as back pain, fatigue, or weakness, rather than the classic symptom of chest pain.
Anginal ischemia, even when temporary, may result in inefficient cardiac pumping with resultant pulmonary congestion and shortness of breath. Three patterns of angina pectoris have been described: (1) stable or typical angina, (2) Prinzmetal or variant angina, and (3) unstable or crescendo angina. All these patterns are associated with underlying coronary vessel disease and may be exhibited in a particular individual at different times and under different conditions. Unstable angina may progress to acute ischemia and is discussed in the “Acute Coronary Syndrome” section along with MI.
Stable angina. Stable angina is the most common form and is therefore called classic or typical angina. Stable angina is characterized
↑ HR ↑ Preload ↑ Afterload ↑ Contractility
Coronary plaque ↓ Perfusion pressure ↓ Arterial oxygen content
Increased Demand
Decreased Supply
FIG 18.5 Factors that decrease coronary blood supply or increase myocardial oxygen demand can upset the balance and lead to ischemia and anginal pain.
arteries and include advancing age, male gender, family history, hyperlip- idemia, diabetes, smoking, hypertension, and obesity. Endothelial injury and inflammation and lipid accumulation in the intima are thought to be the primary initiators of coronary atherosclerosis.
• Early atherosclerotic lesions are asymptomatic precursor lesions in which lipids begin to accumulate in the arterial wall. Advanced lesions may cause symptoms because of progressive arterial occlusion or acute plaque disruption and thrombus formation.
• Vulnerable plaques may rupture or become eroded, which stimulates clot formation on the plaque. Plaques with a large lipid core, thin cap, or high shear stress are vulnerable.
• Chronic occlusion of a coronary vessel is associated with the clinical syndrome of stable angina. Acute occlusion is associated with plaque disruption and thrombus formation and results in ACS (unstable angina or MI).
• Myocardial ischemia may uncommonly be caused by coronary vasospasm, hypoxemia, or low perfusion pressure from volume depletion or shock.
CHAPTER 18 Alterations in Cardiac Function 389
and adequacy of collateral blood flow, the relative workload, and the length of time that flow is interrupted. A typical myocardial infarct has several zones composed of cells in various stages of ischemia and death.
Experiments in animal models indicate that complete occlusion of a coronary vessel results in a predictable pattern of cellular dysfunction and death. Depletion of ATP in acutely ischemic cells begins immediately, followed within 1 to 2 minutes by an impaired ability to contract. Within 10 minutes, cellular concentrations of ATP fall to half of normal, and irreversible cell injury occurs after 30 to 40 minutes of complete occlusion (Table 18.3). Ischemic necrosis begins in the subendocardial zone and spreads across the ventricular wall toward epicardial surfaces. Epicardial areas are spared for longer periods because they have the greatest collateral network of arterial vessels. The ultimate size of the infarcted tissue depends on the extent, duration, and severity of ischemia. Areas of necrosis may be intermixed with or surrounded by zones of reversibly injured cells that are marginally perfused by collaterals. Injured cells die both from necrosis and from apoptosis. Restoring perfusion to potentially salvageable cells is an important focus of treatment. (See Chapter 4 for a discussion of necrosis and apoptosis.)
Nearly all infarcts are located in the left ventricular walls. Isolated right ventricular infarction occurs in only 1% to 3% of MIs. Occlusion of the left anterior descending artery causes 40% to 50% of acute MIs, the right coronary artery contributes another 30% to 40%, and the left circumflex contributes 15% to 20%. The locations of the resulting infarcts are shown in Table 18.4. It is common for individuals with CHD to suffer from more than one MI during their lifetime.
The area of necrosis resulting from MI undergoes a series of mor- phologic changes as the infarct ages. These morphologic changes generally cannot be detected on gross examination until 6 to 12 hours after infarct. After 18 to 24 hours, the area of infarction becomes paler than the surrounding tissues. Thereafter the area of infarction becomes obvious because it turns yellowish and soft with a rim of red vascular connective tissue (Fig. 18.7). At 1 to 2 weeks, the necrotic tissue is progressively degraded and cleared from the site. Infarcted myocardium is particularly weakened and susceptible to rupture at this time. By 6 weeks, the necrotic tissue has been replaced by tough fibrous scar tissue.
Diagnosis of MI. The diagnosis of MI is based on three primary indi- cators: signs and symptoms, electrocardiographic changes, and elevations in the levels of specific marker proteins in the blood. Other diagnostic examinations such as cardiac catheterization, echocardiography, and
indicative of necrosis, a diagnosis of MI was made; if not, a diagnosis of unstable angina was appropriate. In a time when monitoring and management of complications were the mainstay of treatment, this approach worked well. With the advent of reperfusion therapy, which is effective only if administered early in the course of infarction, the distinction between unstable angina and MI has become less clinically relevant. Because unstable angina and MI present a similar clinical picture in the acute phase, they have been combined in treatment protocols for ACS (Fig. 18.6). Patients with chest pain and evidence of acute ischemia on the electrocardiogram (ECG) (ST-segment elevation) are candidates for acute reperfusion therapy with fibrinolytic therapy. Patients presenting with symptoms of unstable angina and no ST eleva- tion on the ECG do not benefit from thrombolytics and may be candidates for percutaneous coronary interventions (PCI). PCI is accomplished by inserting a catheter into the coronary arteries followed by interventions to open the occluded artery such as removal of the thrombus, disruption of plaque, or placement of stents in the artery to keep it open. Differentia- tion between unstable angina, NSTEMI (non–ST-elevation MI), and ST-elevation MI (STEMI) is made after obtaining cardiac necrosis markers; those patients with elevations in markers are diagnosed with NSTEMI or STEMI, and those without elevations are diagnosed with unstable angina (see Fig. 18.6).
Etiology and pathogenesis. MI results when prolonged or total disruption of blood flow to the myocardium causes cellular death by necrosis or apoptosis. Acute MI is an important form of CHD resulting in more than 125,000 deaths annually in the United States. An MI may occur at any age, but the frequency rises with advancing age. Females younger than 45 years have a sixfold lesser risk of MI than men of the same age. After menopause, the rate of MI in women approaches that of their male counterparts and becomes essentially equal by age 80.
As previously described, the initiating event in most MIs is believed to be development of a thrombus on top of an ulcerated or cracked atherosclerotic plaque. The initiating event is a sudden change in structure of the plaque. Platelets passing by the surface of the ruptured plaque adhere to it, initiate formation of a platelet plug, and activate the clotting cascade. The resultant thrombus grows until it occludes the vessel and triggers the MI because of prolonged ischemia.
The cellular consequences of an acute interruption in blood flow to the myocardium do not occur instantaneously or uniformly. Acute occlusion causes a range of cellular events, depending on the availability
Presentation
Working diagnosis
ECG
Cardiac biomarkers
Final diagnosis
Signs and symptoms of cardiac ischemia
ACS
ST elevation No ST elevation
Biomarkers Biomarkers Biomarkers
STEMI NSTEMIUnstable angina
FIG 18.6 The etiologies of acute coronary syndrome (ACS) are difficult to differentiate by presenting symptoms because all involve some degree of myocardial ischemia. The electrocardiogram (ECG) is used to distinguish those patients with ST elevation from those with no ST elevation. Serum levels of cardiac biomarkers are then used to make a final diagnosis. Most patients with ACS characterized by ST elevation are diagnosed with MI (STEMI), and a proportion of patients with no ST elevation also will have elevated serum markers and are diagnosed with MI (NSTEMI). Patients who do not exhibit serum enzyme elevations are usually diagnosed with unstable angina.
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more commonly complain of atypical symptoms, including fatigue, nausea, back pain, and abdominal discomfort. Atypical complaints in patients with CHD risk factors should prompt a high suspicion of MI.
Electrocardiographic changes. Myocardial ischemia and infarction often result in characteristic changes on ECG waveforms. Injury and
radionuclide scintigraphy may also be performed to provide additional information (see Chapter 17).
Severe, crushing, excruciating chest pain that may radiate to the arm, shoulder, jaw, or back is the harbinger of MI. Pain is commonly accompanied by nausea, vomiting, diaphoresis (sweating), and shortness of breath. In contrast to anginal pain, infarction pain generally lasts more than 15 minutes and is not relieved by rest or nitroglycerin. In some instances, however, the MI is entirely asymptomatic and may elude detection. Asymptomatic MI has been called silent MI and may be detected only serendipitously at a later date. Pain may be difficult to assess in individuals with atypical presentations or a tendency to ignore or deny their symptoms. Thus although pain is an important indicator of acute ischemia, other clinical information is often needed to correctly distinguish between angina, infarction, and noncardiac sources of pain. Women, the elderly, and patients with diabetic neuropathies
TABLE 18.3 Evolution of Morphologic Changes in Myocardial Infarction
Time Gross Features Light Microscopic Electron Microscopic
Reversible Injury 0– 12 hr None None Relaxation of myofibrils; glycogen
loss; mitochondrial swelling
Irreversible Injury 1
2 –4 hr None Usually none; variable waviness of fibers at border Sarcolemmal disruption; mitochondrial amorphous densities
4–12 hr Dark mottling (occasional) Beginning coagulation necrosis; edema; hemorrhage 12–24 hr Dark mottling Ongoing coagulation necrosis; pyknosis of nuclei; myocyte
hypereosinophilia; marginal contraction band necrosis; beginning neutrophilic infiltrate
1–3 days Mottling with yellow-tan infarct center Coagulation necrosis, with loss of nuclei and striations; interstitial infiltrate of neutrophils
3–7 days Hyperemic border; central yellow-tan softening
Beginning disintegration of dead myofibers, with dying neutrophils; early phagocytosis of dead cells by macrophages at infarct border
7–10 days Maximally yellow-tan and soft, with depressed red-tan margins
Well-developed phagocytosis of dead cells; early formation of fibrovascular granulation tissue at margins
10–14 days Red-gray depressed infarct borders Well-established granulation tissue with new blood vessels and collagen deposition
2–8 weeks Gray-white scar, progressive from border toward core of infarct
Increased collagen deposition, with decreased cellularity
>2 mo Scarring complete Dense collagenous scar
From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 10, Philadelphia, 2015, Saunders, p 544.
TABLE 18.4 Location of Myocardial Infarction According to Coronary Artery Affected
Arterial Obstruction Location of Infarct
Left anterior descending (40%–50% of infarcts)
Anterior wall of LV near apex Anterior portion of interventricular
septum Apex
Right coronary (30%–40% of infarcts) Posterior wall of LV Posterior interventricular septum
Left circumflex (15%–20% of infarcts) Lateral wall of LV
Data from Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 544. LV, Left ventricle.
FIG 18.7 This photograph of a 5- to 7-day-old posterolateral infarction clearly shows a large, pale yellow lesion surrounded by a dark red zone of inflammation. (From Kumar V et al, editors: Robbins basic pathology, ed 7, Philadelphia, 2003, Saunders, p 369.)
CHAPTER 18 Alterations in Cardiac Function 391
not yet become necrotic. Reversibly injured cells have limited ATP supplies to power membrane pumps and are predisposed to leakage of ions across their cell membranes. Abnormal ion flux may result in continuous current flow even when the heart is at rest.
The 12-lead ECG is used to localize the injured region of the left ventricle. Various leads of the 12-lead ECG “view” different regions of the heart. Abnormalities such as Q waves and ST-segment elevation in a particular lead or leads indicate that the damage is localized to the part of the left ventricle “seen” by that lead. MIs may thus be described as anterior, lateral, posterior, septal, inferior, or a combination of these sites. (The 12-lead ECG is described in Chapter 17.)
Serum biomarkers. The appearance of certain proteins in the blood after myocardial cell death is a sensitive and reliable indicator of MI. Myocardial cell death leads to elevated serum levels of myoglobin, troponin, lactate dehydrogenase, and creatine kinase. Cardiac cells contain particular forms of these proteins called isoforms. An increase in the concentration of these proteins suggests leakage from fatally damaged cells that have lost plasma membrane integrity. Cardiac biomarkers have a slightly different amino acid sequence than other cell types. In particular, myocytes contain the isoforms CK-MB, troponin I, and troponin T. An elevated level of serum CK-MB is a highly specific indicator of MI and is considered to be diagnostic. However, the level of CK-MB remains elevated for only 48 to 72 hours after MI. Two proteins that comprise part of the cardiac cell contractile apparatus, troponins I and T, have become the biomarkers of choice for detecting MI. Cardiac troponin levels become elevated in serum at about the same time as the CK-MB level, but they remain elevated for a longer period. Cardiac troponins I and T are highly sensitive and specific for cardiac cell death, but less helpful in detecting new infarction (reinfarc- tion) because levels remain elevated for a prolonged period (Fig. 18.9). Cardiac myoglobin levels are elevated in serum very quickly after MI and may be helpful in early detection; however, cardiac myoglobin is less specific than the other biomarkers. All serum biomarkers are useful diagnostically only during the acute period of MI. Patients with ACS who do not develop elevations of these serum biomarkers are diagnosed with unstable angina, whereas those who do have elevations are classified as STEMI if they had ST elevation during the period of ACS, and NSTEMI if they did not have ST elevation during the acute phase.
Clinical course. In addition to chest pain, electrocardiographic abnormalities, and serum protein marker elevations, a person experienc- ing an MI may exhibit signs of cardiac inflammation, including fever,
ischemia are indicated on the ECG by ST-segment changes. ST-segment elevation is thought to represent acute cellular injury and ischemia. The presence of ST-segment elevation on the ECG indicates that the ischemic injury is ongoing and that immediate efforts to improve perfusion or reduce oxygen demand may be effective in preserving myocardial muscle mass. Patients with ST depression or T wave changes may benefit from timely PCI.
Infarcted muscle that is necrotic and no longer electrically active usually is indicated by the appearance of abnormally deep (>0.1 mV) or wide (>0.03 seconds) Q waves and inverted T waves (Fig. 18.8). These changes are specific for MI and, when present, are diagnostic. Q waves are usually persistent findings, whereas ST-segment and T wave changes may resolve over time. Q waves can take time to develop and may not be present in the acute phase of an MI. Q waves may never develop if the area of infarction is small.
Dysrhythmias and the characteristic ST-segment changes that accompany MI are attributed to injured and ischemic cells that have
Large Q wave
ST elevation
Inverted T wave
A
II
III aVF
I aVR
aVL
V3
V2
V1
V6
V5
V4
B FIG 18.8 A, Typical ECG infarction pattern showing abnormally large Q wave, ST elevation, and inverted T wave. B, Typical ECG in acute inferior myocardial infarction. Note the Q waves and ST-segment elevation in leads II, III, and aVF.
x U
p p
e r
li m
it o
f n
o rm
a l
Hours from onset of infarction
7x
6x
5x
4x
3x
2x
1x 200 40 60 80 100 120 140 160
Myoglobin
CK-MB
Troponin I
Myoglobin
CK-MB
Troponin I
FIG 18.9 Time course of serum marker protein elevations after acute myocardial infarction. The MB band of creatine kinase (CK-MB) and troponin I are the most specific of the protein markers. Myoglobin is an early marker but is not very specific.
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and the presence of other disease processes. Of particular importance is how quickly treatment is sought. Most deaths from MI occur before the victim reaches the hospital. The in-hospital mortality rate of MI is about 5%. In some cases, an MI is not accompanied by any complications (uncomplicated MI) and the patient recovers rapidly. However, the majority of MIs are followed by one or more complications. Potential complications include cardiac dysrhythmias, heart failure, cardiogenic shock, ventricular rupture, pericarditis, and thromboembolism.
Treatment for MI is directed at decreasing myocardial oxygen demand and increasing myocardial oxygen supply while monitoring and managing complications as they arise. Measures to reduce myocardial workload frequently include preload and afterload reduction, heart rate control, pain relief, and activity restriction. Sympathetic antagonists, nitrates, and morphine sulfate are the mainstays of drug therapy. Measures to increase oxygen delivery to ischemic areas include oxygen administration, antiplatelet therapy with aspirin and other antiplatelet agents, throm- bolytic (fibrinolytic) drugs, anticoagulants, angioplasty, stent placement, and coronary artery bypass grafting (CABG) (Fig. 18.12). Therapies aimed at opening the blocked coronary artery are called reperfusion therapies.
Early detection and management of dysrhythmias and conduction disorders are an important part of the immediate care of a patient with MI. Many dysrhythmias are life threatening and, at the very least, lead to decreased cardiac output or increased myocardial workload. Continu- ous electrocardiographic monitoring is generally the standard of care
leukocytosis, and an elevated sedimentation rate. Symptoms of circulatory inadequacy, including fatigue, restlessness, anxiety, and weakness, may be present.
The events associated with MI are summarized in Fig. 18.10. Note that totally ischemic cells, which die and become electrically silent, are the source of the clinical findings of Q waves and release the indicative serum marker proteins (CK-MB, troponins). Partially ischemic cells are potentially salvageable but are unable to maintain normal ion flux across the cell membrane. Abnormal ion flux is responsible for the ST-segment changes in acute ischemia and predisposes to a variety of cardiac dysrhythmias, including ventricular ectopy and conduction blocks (see Chapter 19).
Neither partially ischemic nor totally ischemic cells are able to contract effectively, and poor stroke volume leads to a drop in cardiac output. Decreased stroke volume triggers a number of compensatory actions designed to improve cardiac output. In particular, activation of the sympathetic nervous system increases the heart rate, contractility, blood pressure, and fluid retention by the kidney. Unfortunately, these compensatory efforts impose a greater workload on the heart and may contribute to further ischemic damage. Compensatory mechanisms are shown in Fig. 18.11 and include sympathetic nervous system activation, enhanced preload, and hypertrophy of cardiac myocytes.
Prognosis and treatment. An overall prognosis for acute MI is difficult to determine because many variables affect the outcome, including the extent and location of the infarct, previous cardiovascular health, age,
Myocardial perfusion
Reduced ATP
Accumulation of lactate
Noncontractile
Hypocontractile
Ion leak
Loss of membrane
integrity
Ion pumping and membrane
integrity
Cell rupture and death
Biomarker release
No electrical potentials
Anaerobic metabolism No ATP
Totally ischemic cellsPartially ischemic cells
Cardiac output
Vasoconstriction Heart rate
Q wavesSNS activationDysrhythmias ST changes
on ECG CK-MB and troponin
Inhibition of glycolysis
FIG 18.10 Summary of events after myocardial infarction. ATP, Adenosine triphosphate; CK-MB, MB band of creatine kinase; ECG, electrocardiography; SNS, sympathetic nervous system.
CHAPTER 18 Alterations in Cardiac Function 393
Chronic Ischemic Cardiomyopathy Chronic ischemic cardiomyopathy refers to a disorder in which heart failure develops insidiously as a consequence of progressive ischemic myocardial damage. In most cases, individuals affected have a history of angina or MI, often many years before the onset of heart failure. Heart failure appears to be a consequence of slow, progressive apoptotic death of myocytes from chronic ischemia. The disease is usually found in elderly individuals. Atrophic and dead cells are scattered throughout the myocardium rather than being localized, as occurs with MI. The prognosis for patients with chronic ischemic cardiomyopathy is quite poor, with death from heart failure the common outcome. Heart failure is further discussed in Chapter 19.
because of the high incidence of electrical disturbances after MI. Common dysrhythmias and conduction disorders are described in Chapter 19.
Sudden Cardiac Arrest Also called sudden cardiac death (SCD), this is usually defined as unex- pected death from cardiac causes within 1 hour of the onset of symptoms. Successful resuscitation efforts by those trained in cardiopulmonary resuscitation (CPR) and use of the automated external defibrillators found in many public places have resulted in the increased survival of persons who experience witnessed SCD. Persons who survive SCD are at high risk for recurrence. CHD is the source of the vast majority of cases of sudden cardiac arrest. Sudden cardiac arrest may be a complication of hereditary or acquired structural or electrical abnormalities, such as long QT syndrome. An estimated 350,000 to 400,000 individuals experience SCD each year in the United States. Most cases are associated with coronary atherosclerosis and may be the initial manifestation of the disease. Acute MI occurs in a subset of cases of sudden cardiac arrest. A lethal dysrhythmia, such as ventricular fibrillation, is usually the primary cause (see Chapter 19). Ischemia from multivessel atherosclerosis, diffuse myocardial atrophy, scarring and fibrosis of old MI tissue, and electrolyte imbalances are factors that may predispose the heart to the electrical abnormalities that lead to sudden cardiac arrest.
Fluid retention
Venoconstriction
Immediate-time Intermediate-time
Stroke volume (SV)
Ventricular wall tension
Hypertrophy of cardiac myocytes
Myocardial infarction
Baroreceptor activation
Sympathetic nervous system activation
Renal perfusion and renin-angiotensin-
aldosterone activation
SV, CO
Heart rate, contractility Enhanced preload
SV, CO
Long-time
SV, CO
FIG 18.11 Compensatory responses to increase stroke volume (SV) and maintain cardiac output (CO) after myocardial infarction.
Enzymatic digestion of thrombus to open lumen
Thrombolysis
A
Physical disruption of
plaque to open lumen
Percutaneous transluminal coronary angioplasty (PTCA)
B
Placement of a stent to prevent reocclusion
C
Coronary artery bypass grafting (CABG)
Surgical placement of a new conduit to
bypass occlusion D
FIG 18.12 Management of blocked coronary arteries includes (A) thrombolysis with drugs such as streptokinase and tissue plasminogen activator; (B) plaque disruption with percutaneous transluminal coronary angioplasty, followed by anticoagulation or stent placement; (C) placement of a stent to prevent reocclusion; and (D) coronary artery bypass graft- ing—surgical placement of a new conduit to bypass the occluded area of the artery.
KEY POINTS • The clinical syndromes of CHD include stable angina pectoris, ACS (unstable
angina, NSTEMI, STEMI), chronic ischemic cardiomyopathy, and sudden cardiac arrest. These conditions are associated with coronary atherosclerosis.
• Stable angina is characterized by intermittent bouts of chest pain triggered by exertion and generally relieved by rest. No permanent myocardial damage occurs.
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Normal valve (zero pressure gradient)
Stenosed valve (6 mm Hg pressure gradient)
8 mm Hg4 mm Hg
4 mm Hg 2 mm Hg
Blood flow Blood flow
FIG 18.13 Development of a pressure gradient across a stenosed valve. The chamber behind the narrowed valve opening must work harder to force blood through the valve.
TABLE 18.5 Major Etiologies of Acquired Heart valve Disease
Mitral valve Disease Aortic valve Disease
Mitral Stenosis Aortic Stenosis Postinflammatory scarring (rheumatic heart
disease) Postinflammatory scarring
(rheumatic heart disease) Senile calcific aortic stenosis Calcification of a congenitally
deformed valve
Mitral Regurgitation Aortic Regurgitation Abnormalities of leaflets and commissures: Postinflammatory scarring Postinflammatory scarring
(rheumatic heart disease) Infective endocarditis Mitral valve prolapse Degenerative aortic dilation
Syphilitic aortitis Ankylosing spondylitis Rheumatoid arthritis Marfan syndrome
Drugs (e.g., Fen-Phen) Abnormalities of the tensor apparatus: Rupture of papillary muscle Papillary muscle dysfunction (fibrosis) Rupture of chordae tendineae Abnormalities of left ventricular cavity
and/or annulus: LV enlargement (myocarditis, dilated
cardiomyopathy) Calcification of mitral ring
Modified from Schoen FJ: Surgical pathology of removed natural and prosthetic heart valves, Hum Pathol 1987;18(6):558–567; and from Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 554. LV, Left ventricle.
• Prolonged or severe ischemia results in MI that is characterized by severe, unrelieved chest pain, nausea and vomiting, diaphoresis, shortness of breath, and inflammation (e.g., fever, increased white blood cell [WBC] count, increased sedimentation rate).
• Serum protein biomarker elevations and electrocardiographic changes are diagnostic of MI. The most specific and sensitive serum biomarkers are increased levels of CK-MB and troponins I and T. ECG changes include ST-segment elevation (or depression), large Q waves, and inverted T waves.
• A drop in cardiac output as a result of MI triggers a number of compensatory responses, including sympathetic activation. The sympathetic nervous system increases the heart rate, contractility, and blood pressure, all of which increase myocardial workload.
• Treatment of acute ischemia usually includes efforts to decrease myocardial oxygen demand (e.g., sympathetic antagonists, rest, heart rate control, pain relief, afterload reduction) and increase oxygen delivery (e.g., thrombolysis, PCIs, CABG).
ENDOCARDIAL AND VALVULAR DISEASES Endocardial and valvular structures may be damaged by inflammation and scarring, calcification, or congenital malformations. These processes interfere with the normal valvular property of unimpeded, unidirectional flow. Although congenital malformations may affect any valve, acquired valvular disorders generally involve the mitral or aortic valves. Abnormali- ties in valvular function cause altered hemodynamics in the heart and generally result in increased myocardial workload. Ultimately, heart failure may result from significant valvular dysfunction.
Normally, heart valves open completely, so blood flows through with little or no pressure difference across the valve. Failure of a valve to open completely is termed stenosis. Significant hemodynamic con- sequences generally begin to occur when the valve opening is reduced to half its normal diameter. The severity of stenosis can be estimated by the degree of pressure gradient across the valve (Fig. 18.13). Stenosis results in extra pressure work for the heart because blood must be forced through the high resistance of a narrow valve opening. Stenosis generally progresses slowly over years to decades, which allows time for affected heart chambers to compensate through myocardial cell hypertrophy.
Regurgitation (insufficiency) refers to the inability of a valve to close completely, thereby allowing blood to flow backward across the valve when no flow should be occurring. Regurgitation may develop suddenly from valvular infection or rupture of a supporting papillary muscle. Sudden regurgitation is poorly tolerated inasmuch as little compensation is possible. Regurgitation results in extra volume work for the heart because more blood must be pumped to maintain adequate forward flow.
Diseased valves may exhibit elements of both stenosis and regurgita- tion, although one problem usually predominates. Postinflammatory scarring from rheumatic heart disease and valvular calcification with aging are the primary causes of stenosis (Fig. 18.14). A wide variety of diseases of the endocardium may lead to valvular regurgitation, including rheumatic heart disease and infective endocarditis, which are discussed later in this chapter. Damaged valves are susceptible to infection, and antibiotic prophylaxis may be indicated for dental, surgical, and diagnostic procedures in some patients. The major causes of acquired mitral and aortic valvular diseases are listed in Table 18.5. Valvular disorders are often associated with abnormal turbulence of blood flow that produces heart sounds called murmurs. Careful assessment of the location and character of a murmur can help identify the underlying valvular
abnormality. Defining characteristics of common valve disorders are described in Table 18.6.
Disorders of the Mitral Valve Three important disorders of the mitral valve are stenosis, regurgitation, and prolapse.
CHAPTER 18 Alterations in Cardiac Function 395
TABLE 18.6 Defining Characteristics of Murmurs
valve Disorder Quality Location, Radiation
Mitral stenosis Low-pitched rumble, diastolic
At apex
Mitral regurgitation Loud, pansystolic, high pitched, blowing
Loudest at apex, transmitted to left axilla
Aortic stenosis Harsh, midsystolic, crescendo- decrescendo
Right second intercostal space, transmitted to neck
Aortic regurgitation Faint, blowing, diastolic
Left sternal border, aortic area, apex
Left ventricle
P re
ss u re
( m
m H
g )
Left atrium
c v
Time
120
90
60
30
0
LA/LV pressure gradient
Elevated LA pressure
a a
LA
LV
FIG 18.15 Mitral stenosis is characterized by an abnormal left atrial (LA)–to–left ventricular (LV) pressure gradient during ventricular diastole (shaded area).
A B C D
FIG 18.14 Valvular degeneration and calcification. A, Calcific aortic stenosis of previously normal (three-cusp) valve. B, Calcific aortic stenosis of congenital bicuspid valve. C, Mitral valve calcification. D, Cut section of valve from C. (From Kumar V et al, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 555.)
Mitral Stenosis In mitral stenosis the flow of blood from the left atrium into the left ventricle is impaired. Mitral stenosis is therefore characterized by an abnormal left atrial–left ventricular pressure gradient during ventricular diastole (Fig. 18.15). Normally the pressures in the atrium and ventricle
are nearly equal during ventricular diastole when the mitral valve is open. Fig. 18.15 shows that with mitral valve stenosis, atrial pressure remains higher than ventricular pressure throughout diastole. As the stenosis worsens, the pressure gradient often increases. In normal adults the area of the mitral valve orifice is 4 to 6 cm2, and symptoms of stenosis do not appear until the orifice is narrowed to 2 cm2. When the mitral valve orifice narrows to 1 cm2, a critical stenosis is present and a pressure gradient of 20 mm Hg or more usually develops across the valve. Increased pressure work of the left atrium leads to atrial chamber enlargement and hypertrophy. Progressive narrowing of the mitral valve may lead to markedly elevated left atrial pressures and subsequent increased pulmonary vascular pressure. If uncorrected, mitral stenosis may result in chronic pulmonary hypertension, right ventricular hypertrophy, and right-sided heart failure.
The signs and symptoms of mitral stenosis are due to congestion of blood volume and increased pressure in the left atrium and pulmonary circulation, as well as decreased stroke volume of the left ventricle because of deficient filling. Symptoms are exacerbated by conditions that further decrease left ventricular filling such as an increased heart rate. Atrial dysrhythmias such as atrial fibrillation are common because of excessive atrial volume. Atrial enlargement and fibrillation also predispose to the
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Mitral Valve Prolapse Approximately 2% to 3% of the population have mitral valves that balloon into the left atrium during ventricular systole. This condition is called mitral valve prolapse (Fig. 18.17). Women are affected twice as often as men. In a great majority of cases, the disorder is asymptomatic and diagnosed only incidentally on routine physical examination. In some cases, the prolapse is sufficient to cause a degree of mitral regurgita- tion. The cause of this valvular abnormality is uncertain, although it is commonly associated with other connective tissue disorders such as Marfan syndrome or scoliosis.
development of atrial clots, which may dislodge and result in systemic embolization and stroke. Signs and symptoms of mitral stenosis secondary to pulmonary congestion may include orthopnea, cough, dyspnea on exertion, paroxysmal nocturnal dyspnea, abnormal breath sounds, and poor arterial oxygenation. Reduced left ventricular stroke volume may be apparent as fatigue, poor activity tolerance, and weakness. Exertional dyspnea is the most common complaint. Blood rushing through the narrowed mitral valve during ventricular diastole can sometimes be heard as a low-pitched, rumbling diastolic murmur at the heart’s apex. In many cases, an opening snap may also be heard.
Mitral Regurgitation Mitral regurgitation is characterized by backflow of blood from the left ventricle to the left atrium during ventricular systole. Elevation of left atrial volume and pressure by regurgitant flow leads to characteristic giant V waves on the atrial pressure monitor (Fig. 18.16). The severity of mitral insufficiency is related to the amount of left ventricular stroke volume that is regurgitant and depends, in part, on the aortic resistance to flow (afterload). A high afterload increases the amount of regurgitant flow. The left ventricle must pump a greater volume to compensate for the regurgitant flow and maintain an effective stroke volume. Both the left atrium and the left ventricle generally dilate and hypertrophy to compensate for the extra volume that they are required to pump. In most patients with mitral regurgitation, compensation is maintained for many years before symptoms occur. If severe and uncorrected, mitral regurgitation may eventually lead to left-sided heart failure. The signs and symptoms of mitral regurgitation are similar to those described for mitral stenosis and result from pulmonary congestion and poor cardiac output. Chronic weakness and fatigue are common complaints. The murmur of mitral regurgitation usually occurs throughout ven- tricular systole (pansystolic), radiates toward the left axilla, and has a high-pitched blowing character. The arterial pulse may be helpful in distinguishing the systolic murmur of mitral regurgitation from that of aortic stenosis. The upstroke of the pulse is sharp and full in mitral regurgitation, whereas it is weaker and delayed in aortic stenosis.
Left ventricle
P re
ss u re
( m
m H
g )
Left atrium v
Time
120
90
60
30
0
Regurgitant flow
Large regurgitant V wave
a
a
LA
LV
FIG 18.16 Mitral regurgitation causes characteristic giant V waves on the left atrial (LA) pressure monitor. LV, left ventricular.
FIG 18.17 Appearance of mitral valve prolapse. Note how the valve balloons up into the left atrium. (From Kumar V et al, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 557. Courtesy William D. Edwards, MD, Mayo Clinic, Rochester, MN.)
CHAPTER 18 Alterations in Cardiac Function 397
than 25% of normal (≤1.0 cm2 in an average-sized adult). The symptoms of aortic stenosis are due to diminished cardiac output, with pulmonary complications occurring later as the left ventricle fails. Syncope, fatigue, low systolic blood pressure, and faint pulses are common signs and symptoms. Angina occurs frequently in patients with critical aortic stenosis and is often initiated by exertion and relieved by rest. Angina is thought to occur because of thickening of the ventricular wall with reduced perfusion and high intraventricular wall tension. Syncope and “graying out” spells may occur when cerebral perfusion is inadequate. The onset of atrial fibrillation or heart block may precipitate worsen- ing of symptoms. A characteristic murmur occurs during ventricular systole and varies in intensity, progressively getting louder and then diminishing (crescendo–decrescendo). The murmur of aortic stenosis generally radiates to the neck. The heart rate is usually slow to allow for a necessarily long ejection phase, and a prominent S4 is usually present. Surgical correction is indicated for symptomatic aortic stenosis because medical therapy is not effective.
Aortic Regurgitation Aortic regurgitation results from an incompetent aortic valve that allows blood to leak back from the aorta into the left ventricle during diastole. Causes of aortic regurgitation are similar to those of mitral regurgitation (see Table 18.5). Valvular incompetence may be secondary to an abnormal aortic valve or to aortic root dilation with widening of the aorta such that the valve leaflets no longer appose. Aortic root dilation is a more common cause of aortic regurgitation than primary valvular disease. The aorta may dilate because of degenerative changes with aging or as a consequence of connective tissue disease. The left ventricle becomes volume overloaded because it contains its usual preload, received from the atrium, plus regurgitant blood from the aorta. The left ventricle compensates for this extra volume work with hypertrophy and dilation. A larger-than-normal stroke volume is thus achieved and produces a high systolic blood pressure. Diastolic blood pressure is generally lower than normal because of rapid runoff of blood into the ventricle. The large stroke volume and rapid decline in diastolic blood pressure result in a bounding peripheral pulsation, and the head may bob with each systole (Fig. 18.19).
The finding of 2 mm or more displacement of the mitral valve leaflets above the annulus on echocardiogram is an important diagnostic criterion. Mitral valve prolapse may be detected by a midsystolic click or systolic murmur. Individuals whose disease is symptomatic may experience palpitations, rhythm abnormalities, dizziness, fatigue, dyspnea, chest pain, or psychiatric manifestations such as depression and anxiety. The large majority of affected persons have no untoward effects, and most are unaware of their condition. Complications of mitral valve prolapse are relatively rare and include infective endocarditis, sudden cardiac arrest, cerebral embolic events, and progression to mitral regurgitation.
Disorders of the Aortic Valve The primary disorders of the aortic valve are stenosis and regurgitation.
Aortic Stenosis With the decline in incidence of rheumatic fever, the predominant cause of aortic stenosis is age-related calcification. The hallmark of this disorder is the formation of calcium deposits on the aortic cusps (see Fig. 18.14). Calcification is particularly common in patients with a congenital bicuspid aortic valve. Aortic calcifications accumulate over several decades and generally become clinically apparent in individuals 70 to 90 years old. Rheumatic heart disease, on the other hand, occurs primarily in children and young adults and now accounts for only a small percentage of cases of acquired aortic stenosis in the United States.
Aortic stenosis results in obstruction to aortic outflow from the left ventricle into the aorta during systole. This condition is characterized by a left ventricular–aortic pressure gradient during ventricular ejection (Fig. 18.18). The left ventricle produces high systolic pressure to overcome resistance of the stenotic aortic valve. The slow development of aortic stenosis allows the heart to maintain stroke volume by compensatory left ventricular hypertrophy. The combination of high left ventricular pressure and hypertrophy predisposes the heart to ischemia and attacks of anginal pain. Continued high left ventricular afterload from a stenotic aortic valve may lead to left-sided heart failure.
Critical obstruction is characterized by a mean systolic pressure gradient exceeding 40 mm Hg and an effective aortic valve orifice less
Left ventricle
P re
ss u re
( m
m H
g )
Time
180
150
120
90
60
30
0
Aorta
LA
LV
Elevated LV pressure
FIG 18.18 Aortic stenosis is characterized by an abnormal left ventricular (LV)–to–aortic pressure gradient (shaded area). LA, Left atrium.
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rash. An elevated antibody titer against streptococcal products (anti- streptolysin O, anti-DNase B) may help confirm the diagnosis. Unfor- tunately, individuals who experience rheumatic fever have a high chance of recurrence if they have another pharyngeal streptococcal infection. Prophylactic antibiotic therapy is recommended for individuals who develop rheumatic fever.
Infective Endocarditis Infective endocarditis is caused by invasion and colonization of endo- cardial structures by microorganisms with resulting inflammation. A variety of organisms are known to have an affinity for the endocardium and for the cardiac valves in particular. Valvular lesions include growths of microorganisms enmeshed in fibrin deposits. These growths are called vegetations. They may become quite large, interfering with valvular function and predisposing to embolus formation. Common bacterial culprits are several strains of Streptococcus and Staphylococcus aureus. A requisite for infective endocarditis is invasion of the bloodstream by infective organisms. The portal of entry may be obvious, as with an overt infection, intravenous drug abuse, or invasive surgical or dental procedures. Sometimes the source may be less obvious, such as the gastrointestinal tract or the oral cavity. Once the organism enters the circulation, several factors influence its ability to attack endocardial structures and cause disease.
Acute infective endocarditis may theoretically develop in any indi- vidual if host resistance is low, if the organism is highly virulent, and if the bacterial invasion is sufficiently large. Acute infective endocarditis usually affects individuals with previously normal valves and leads to death in a large percentage of patients. The overall mortality rate for infective endocarditis is relatively high; however, mortality rates vary with the type of infective organism. Intravenous drug abusers are particularly susceptible to acute infective endocarditis. Subacute infective endocarditis has a more insidious onset and generally affects individuals with some preexisting propensity for valvular colonization. The offending organisms are less virulent. Rheumatic heart disease, congenital heart abnormalities, mitral valve prolapse, calcified valves, and prosthetic valves are important predisposing factors. Immunosuppression and repeated exposure through intravenous drug abuse are other predisposing influences. S. aureus and Staphylococcus epidermidis, which colonize the skin, are common offenders in intravenous drug users. The valves on the right side of the heart may be infected in this population.
Organisms associated with subacute infective endocarditis usually are not virulent enough to attack normal healthy endocardium but are able to gain a foothold in hearts with some underlying predisposition. Preexisting cardiac disease may allow the formation of platelet–fibrin deposits on the valves because of abnormal or stagnant blood flow patterns. These deposits become the site of organism attachment. Antibodies against the invader may further assist attachment by causing clustering of organisms.
The diagnostic findings in both acute and subacute infective endo- carditis are much the same. Large, bulky, bacteria-laden vegetations hang from the heart valves and adjacent endocardial surfaces (Fig. 18.20). In addition to the risk of embolization, vegetations may cause erosion or perforation of the underlying valve leaflet. In acute forms, adjacent myocardium may be eroded and abscessed. With time, valvular vegeta- tions become fibrotic and calcified.
Unfortunately, the clinical features of subacute infective endocarditis are quite nonspecific, with low-grade fever the most consistent sign. Nonspecific fatigue, weight loss, and flulike symptoms may be the only clues. Positive blood cultures may help confirm the diagnosis. In contrast, acute infective endocarditis has a more obvious onset with fever, chills, malaise, and, frequently, a heart murmur. Complications such as valvular insufficiency, myocardial abscess, embolization, and renal disease generally
Aortic insufficiency is characterized by a high-pitched blowing murmur during ventricular diastole. Patients may complain of palpita- tions and a throbbing or pounding heart because of the large ventricular stroke volume. The major complication of aortic regurgitation is left-sided heart failure as a result of the high ventricular workload. However, chronic aortic regurgitation is well tolerated for years, and asymptomatic individuals can delay valve replacement surgery. Acute aortic regurgitation is poorly tolerated and necessitates immediate correction.
Diseases of the Endocardium Rheumatic Heart Disease Rheumatic heart disease is an uncommon but serious consequence of rheumatic fever. The incidence of rheumatic fever has steadily declined in the United States, but the disease still affects an estimated 15 million people worldwide. Rheumatic fever is an acute inflammatory disease that follows infection with group A β-hemolytic streptococci.
Damage is due to an immune attack on the individual’s own tissues. For incompletely understood reasons, antibodies against the streptococcal antigens are also directed against self tissues, possibly because of an immune hypersensitivity reaction resulting from cross-reactivity between streptococcal antigens and certain tissue molecules. Epitopes on the bacterial surface are similar to proteins on cardiac myosin, valve, skin, joint, and brain tissue. Most individuals with group A β-hemolytic streptococcal infection do not develop rheumatic fever, and a number of genetic and immune factors are associated with development of the disease.
The acute infection occurs primarily in children and is accompanied by fever and a sore throat. In only 3% of children with pharyngeal streptococcal infection does rheumatic fever eventually develop. Prompt initiation of antibiotic therapy is often effective in primary prevention of rheumatic fever. Rheumatic fever diffusely affects connective tissue in joints, the heart, and the skin. The central nervous system and kidney are also frequently involved. Inflammation of the heart usually includes all layers and results in carditis. Endocardial inflammation results in valvular swelling, erosions, and clumping of platelets and fibrin on valve leaflets. Scarring and shortening of valvular structures become progressively more severe. The myocardium and pericardium may show signs of rheumatic inflammation; however, if there is no associated valvular inflammation, the diagnosis is unlikely to be rheumatic fever. Other hallmarks of rheumatic fever include joint inflammation, involuntary movements (Sydenham chorea), and a distinctive truncal
Aortic regurgitation
P re
ss u re
( m
m H
g )
Time
180
90
0
Normal
FIG 18.19 Typical arterial pressure fluctuation in aortic regurgitation showing a high systolic pressure and a low diastolic pressure.
CHAPTER 18 Alterations in Cardiac Function 399
MYOCARDIAL DISEASES In addition to the diseases already discussed, which secondarily affect the myocardium as a consequence of inadequate blood supply or endocardial infection, two other categories of diseases of heart muscle are myocarditis and cardiomyopathy. Myocarditis is an inflammatory disorder of the heart muscle characterized by necrosis and degeneration of heart muscle cells. Cardiomyopathy includes several disorders of the heart muscle that may be genetic or acquired but are noninflammatory. The division of these categories is somewhat arbitrary; however, the clinical course of myocarditis is generally acute and stormy, with either recovery or death from cardiac failure occurring weeks to months after the onset of symptoms. In contrast, the cardiomyopathies generally evolve more insidiously over years, with few symptoms until the heart slips into failure.
Myocarditis Myocarditis is characterized by inflammation, leukocyte infiltration, and necrosis of cardiac muscle cells. Causes of myocarditis are many and include microbial agents, several forms of immune-mediated disease, and several physical agents. The more common causes of myocarditis are listed in Box 18.3. The true incidence of myocarditis is unknown because the diagnosis relies largely on circumstantial evidence.
Most cases of myocarditis in the Northern Hemisphere are associated with viral infections. Cardiac involvement generally appears days or weeks after a viral infection elsewhere in the body. Documenting a viral cause is often impossible, but a rising antibody titer supports the diagnosis. The mechanism of viral myocarditis is incompletely under- stood. Direct viral cytotoxicity may occur to some extent, and the virus may evoke an immune response directed against the heart. Most investigators currently believe the second mechanism to be most important. In some countries, nonviral organisms are commonly
KEY POINTS • Valvular disorders are of two primary types. Failure of stenotic valves to
open properly causes an abnormal pressure gradient across the valve and increases the pressure work of the heart. Regurgitant valves allow blood to flow backward across the valve and result in extra volume work for the heart.
• Mitral stenosis is characterized by a large left atrial–to–left ventricular pressure gradient during ventricular diastole. Mitral stenosis leads to left atrial and pulmonary congestion.
• Mitral regurgitation is characterized by large V waves in the left atrial pressure tracing and a loud systolic murmur that radiates to the left axilla. Mitral regurgitation increases the work of the left atrium and ventricle and can lead to left-sided heart failure.
• Aortic stenosis results in obstruction to the outflow of blood from the left ventricle. It is characterized by a large left ventricular–to–aortic pressure gradient and a crescendo–decrescendo murmur during systole that radiates to the neck. The extra pressure work can lead to left ventricular hypertrophy and failure.
• Aortic regurgitation is characterized by a high systolic and low diastolic blood pressure and a bounding pulse. The murmur of aortic regurgitation occurs during diastole. Left ventricular failure may result because of the high-volume work.
• Rheumatic heart disease results from immune-mediated damage to the endocardium after group A β-hemolytic streptococcal infection.
• Acute and subacute infective endocarditis results in the growth of bacteria- laden vegetations on heart valves. In addition to valvular erosion and scarring, embolization may occur.
Data from Cooper LT, Knowlton KU: Myocarditis. In Mann D, Zipes D, Libby P, Bonow R: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Elsevier, p 1591.
viral Coxsackie virus/Enterovirus Cytomegalovirus Influenza virus Human immunodeficiency virus
Bacterial Chlamydia pneumoniae Streptococcal species Mycoplasma pneumonia Neisseria meningococcus Lyme disease
Fungal Candida
Protozoal Trypanosoma cruzi
Parasitic Schistosomiasis Trichinosis
BOX 18.3 Common Etiologic Agents of Myocarditis
Toxins Anthracyclines Cocaine Ethanol
Hypersensitivity Clozapine Sulfonamides Cephalosporins Penicillins Tricyclic antidepressants
Autoimmune Activation Giant cell myocarditis Inflammatory bowel disease Sarcoidosis Systemic lupus erythematosus Wegener granulomatosis
FIG 18.20 Mitral valve endocarditis from subacute bacterial infection with Streptococcus viridans. The left ventricle contains numerous abscesses formed by seeding from vegetations traveling in the coronary arteries. (From Kumar V et al, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 560.)
occur early in the course of the disease. The interval between initiation of bacteremia and the onset of symptoms is less than 2 weeks in the majority of cases. Management of the acute and subacute types centers on antibiotic therapy, with surgical replacement of valves when indicated. Prevention through prophylactic antibiotic therapy in individuals at risk is an important consideration.
The endocardium is prey to many other disorders, such as systemic lupus erythematosus (SLE, an immunologic disease), calcium deposition secondary to renal disease, and nonbacterial thrombotic endocarditis secondary to hypercoagulable states associated with cancer.
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In some cases, dilated cardiomyopathy runs in families and has a presumed genetic basis. At least 20% to 35% of patients with DCM have a first-degree relative with signs of the disease. Inherited genetic defects in the protein structure of the myocardial sarcomere and other cytoskeleton proteins appear to be contributory in most genetic forms of DCM.
Postviral myocarditis is an attractive pathogenic mechanism for dilated cardiomyopathy, as previously discussed. Myocardial biopsy specimens often reveal signs of inflammatory injury; however, progression from acute myocarditis to dilated cardiomyopathy is difficult to docu- ment. A variety of other causes have been proposed as well. In fact, dilated cardiomyopathy is a bit of a catch-all term invoked to cover cases of dilated congestive failure having no well-defined origin. The clinical picture is one of slowly progressing biventricular heart failure with low ejection fraction (EF).
Hypertrophic Cardiomyopathy In contrast to dilated cardiomyopathy, hypertrophic cardiomyopathy (HCM) is characterized by a thickened, hyperkinetic ventricular muscle mass. The hypertrophy is often not uniform throughout the heart, and in about 25% of patients the septum is most affected and causes a dynamic aortic outflow obstruction. The left ventricle is usually more involved than the right.
Substantial evidence suggests that this form of cardiomyopathy is transmitted genetically in an autosomal-dominant pattern. Abnormalities of cardiac sarcomere proteins have been identified in several familial forms of the disease. Abnormalities in genes coding for myosin heavy chain, myosin-binding protein C, tropomyosin, and troponin T account for 70% to 80% of HCM cases. The remaining cases are thought to
associated with myocarditis. For example, the protozoan Trypanosoma cruzi, which is endemic in areas of Central and South America, infects tens of thousands worldwide, although the incidence has decreased dramatically in recent decades. A myocarditis called Chagas disease eventually develops in a number of infected individuals and is an important cause of cardiovascular death in endemic countries.
In some cases of myocarditis, the immune system reaction against the myocardium appears to be the primary cause. Antibodies or activated lymphocytes are formed against heart tissue. Several drugs, including penicillin, tend to evoke a hyperactive immune response in some individuals and may cause an allergic-type reaction that affects the myocardium. Myocarditis accompanies some autoimmune disorders, such as SLE and polymyositis. Toxins and chemical causes of myocarditis include cocaine, chemotherapeutic agents, snake bite and insect venoms, lead, and numerous others. Regardless of the specific cause, inflammation of cardiac muscle is characteristic.
Acute myocarditis is commonly characterized by left ventricular dysfunction or general dilation of all four heart chambers. The ventricular myocardium is “flabby” with patchy or diffuse necrotic lesions. The heart muscle appears inflamed and edematous with WBC infiltrates. Endocardial structures are usually normal. The clinical course of acute myocarditis varies in severity from asymptomatic to rapidly evolving heart failure. Generalized symptoms related to the inflammatory process may be present, as well as electrocardiographic changes caused by myocardial cell death. Common presenting symptoms include fatigue, dyspnea on exertion, and dysrhythmia with associated palpitations. Many persons recover completely, whereas others have progressive disease that is manifested years later as dilated cardiomyopathy. Thus myocarditis and the cardiomyopathic forms of myocardial disease overlap and are difficult to separate. Therapy is supportive and usually includes therapy for heart failure (see Chapter 19). Immunosuppressive therapy may be considered for myocarditis associated with autoimmune disease or hypersensitivity reactions.
Cardiomyopathy Cardiomyopathies can be classified by etiology or by functional impair- ments. Recent advances in genetic analysis of cardiomyopathies have led to classification systems that include genetic linkages in addition to morphologic changes in the heart. This has been called the phenome– genome system of classification. Those cardiomyopathies with uncertain cause are classified based on their predominant morphologic features, including dilated, infiltrative, hypertrophic, and restrictive forms (Fig. 18.21). The terms primary cardiomyopathy for dysfunction of unknown cause and secondary cardiomyopathy for myocardial dysfunction of known cause are also in clinical use (Table 18.7). Definitions of primary cardiomyopathy usually exclude hypertensive, ischemic, congenital, valvular, pericardial, and inflammatory myocardial disorders; however, classification of cardiomyopathy continues to evolve as more is under- stood about the genetic contributions to the condition.
Dilated Cardiomyopathy Dilated or congestive cardiomyopathy (DCM) is characterized by cardiac failure associated with dilation of one or both ventricular chambers. Numerous factors are suspected in the initiation of dilated cardiomy- opathy, including alcohol toxicity, genetic abnormality, pregnancy, and postviral myocarditis. Alcohol and its metabolites are toxic to heart muscle cells and are associated with thiamine and other nutritional deficiencies. Peripartum cardiomyopathy is the term applied to cases of dilated cardiomyopathy discovered just before or just after delivery. The etiology is unclear; however, inflammatory factors are implicated, and a high incidence of lymphocytic activation has been reported. A risk of recurrence in subsequent pregnancies has been noted.
A B
C D FIG 18.21 The three types of cardiomyopathy. A, Normal heart. B, Dilated cardiomyopathy demonstrating enlargement of all four chambers. C, Hypertrophic cardiomyopathy showing a thickened left ventricle. D, Restrictive cardiomyopathy characterized by a small left ventricular volume.
CHAPTER 18 Alterations in Cardiac Function 401
Restrictive Cardiomyopathy Restrictive cardiomyopathy (RCM) is the rarest form and is characterized by a stiff, fibrotic ventricle with impaired diastolic filling. Familial forms are rare, and RCM can frequently be attributed to specific clinical disorders, the most common being amyloidosis—abnormal deposition of amyloid protein in tissues. The mechanisms proposed for development of other cases include sarcoidosis, glycogen storage diseases, iron overload, scleroderma, radiation injury, and exposure to agents that promote fibrosis. Regardless of the specific cause, the myocardium becomes fibrosed, rigid, and noncompliant. The major difficulty is restricted diastolic filling with resultant low stroke volume and heart failure. Exercise intolerance, dyspnea, and weakness may be present. RCM is difficult to manage effectively because no specific therapy is available for most types.
have mutations in other cytoskeletal proteins. Although the genetic basis of hypertrophic cardiomyopathy is well established, the events leading from cytoskeletal protein mutations to clinical disease are poorly understood.
There is wide variation in the expression of HCM. It may be asymptomatic or may be associated with symptoms of ventricular outflow obstruction or impaired diastolic filling. Outflow obstruction is par- ticularly problematic when the myocardial hypertrophy is localized in the subaortic septal region. Strenuous activity may precipitate profound outflow obstruction, negligible stroke volume, and sudden death. Other factors contributing to reduced stroke volume are the smaller intra- ventricular chamber size and a noncompliant ventricle characteristic of diastolic dysfunction with preserved EF. Common symptoms of HCM are dyspnea and angina. Microscopically, the hypertrophied muscle cells appear disorganized and haphazardly oriented into disarray, rather than the usual linear arrangement.
The clinical course of HCM is variable, with most patients experienc- ing little change in cardiac function over many years. Surgery to thin the septal thickening (myectomy) is rarely performed any longer because this technique has been superseded by drug therapy. In general, drugs that increase myocardial contractility or heart rate are avoided because they further impair diastolic filling and worsen aortic outflow obstruction. β-Adrenergic antagonists and calcium channel–blocking drugs may be used to dampen the hypercontractility. Normal life expectancy is possible. Myocardial ischemia is common, and the risk of sudden cardiac arrest is significant. Patients who die suddenly from HCM usually have fatal dysrhythmias that may occur when sedentary, but are frequently associ- ated with vigorous physical exertion.
TABLE 18.7 Classification of the Cardiomyopathies
Disorder Description
Dilated cardiomyopathy Dilatation and impaired contraction of left or both ventricles. Caused by familial/genetic, viral and/or immune, alcoholic/ toxic, or unknown factors or is associated with recognized cardiovascular disease.
Hypertrophic cardiomyopathy Left and/or right ventricular hypertrophy, often asymmetric, which usually involves interventricular septum. Mutations in sarcoplasmic proteins cause disease in many patients.
Restrictive cardiomyopathy Restricted filling and reduced diastolic size of either or both ventricles with normal or near-normal systolic function. Is idiopathic or associated with other disease (e.g., amyloidosis, endomyocardial disease).
Dysrhythmogenic right ventricular Progressive fibrofatty replacement of right and, to some degree, left ventricular cardiomyopathic myocardium. Familial disease is common.
Unclassified cardiomyopathy Diseases that do not fit readily into any category. Examples include systolic dysfunction with minimal dilatation, mitochondrial disease, and fibroelastosis.
Specific Cardiomyopathies Ischemic cardiomyopathy Presents as dilated cardiomyopathy with depressed ventricular function not explained by extent of coronary artery
obstructions or ischemic damage. Valvular cardiomyopathy Presents as ventricular dysfunction that is out of proportion to abnormal loading conditions produced by valvular
stenosis and/or regurgitation. Hypertensive cardiomyopathy Presents with left ventricular hypertrophy with features of cardiac failure attributable to systolic or diastolic dysfunction. Inflammatory cardiomyopathy Cardiac dysfunction as a consequence of myocarditis. Metabolic cardiomyopathy Includes a wide variety of causes, including endocrine abnormalities, glycogen storage disease, deficiencies (such as
hypokalemia), and nutritional disorders. General systemic disease Includes connective tissue disorders and infiltrative diseases such as sarcoidosis and leukemia. Muscular dystrophies Includes Duchenne, Becker-type, and myotonic dystrophies. Neuromuscular disorders Includes Friedreich ataxia, Noonan syndrome, and lentiginosis. Sensitivity and toxic reactions Includes reactions to alcohol, catecholamines, anthracyclines, irradiation, and others. Peripartal cardiomyopathy First becomes manifest in peripartum period, but it is likely a heterogeneous group.
Derived from Circulation 2005;112:1825–1852. ACC/AHA 2005 Guideline Update for the Diagnosis and Management of Chronic Heart Failure in the Adult. Reprinted with permission. Table: Stages in the Development of HF/recommended therapy by stage. Copyright © 2007 American Heart Association.
KEY POINTS • Myocarditis is an inflammatory disorder characterized by scattered necrotic
and dead heart muscle cells. Most cases are associated with viral infection. The major complication of myocarditis is left ventricular dysfunction and dilation of the heart chambers, with reduced contractility.
• Cardiomyopathies encompass a number of disorders of heart muscle that may be genetic or acquired. In some cases the exact cause is unknown.
• Dilated cardiomyopathy is characterized by enlargement of both ventricular chambers, reduced contractility, and low ejection fraction (EF).
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chest x-rays being performed for other purposes. Nonsymptomatic pericardial effusions may be aspirated or merely monitored and allowed to resolve spontaneously. Treatment is directed at the underlying cause of the effusion.
Pericarditis Inflammation of the pericardium originates from a variety of causes (Box 18.4). Rarely is the pericardium the primary site of disease. Pericarditis is often categorized as acute or chronic; chronic pericarditis refers to a healed stage of the acute form that results in chronic pericardial dysfunction.
Acute Pericarditis The majority of cases of acute pericarditis are of uncertain etiology, and most are presumed to be viral. Uncomplicated acute pericarditis typically resolves spontaneously within 2 weeks, and nonsteroidal antiinflammatory drugs and colchicines may be the only therapies needed. A small number of cases may be complicated by significant pericardial effusion or by persistent or recurrent inflammation and may require hospitalization for more thorough diagnostic investigation to determine the specific etiology and more intensive therapy.
The symptoms of acute pericarditis are associated with the systemic effects of inflammation and pericardial damage and include fever, leukocytosis, malaise, and tachycardia. Acute pericarditis almost always presents with chest pain and may be confused with anginal pain. Adhesion and friction between the visceral and parietal pericardial layers cause pain that may radiate to the back and be associated with esophageal
PERICARDIAL DISEASES Pericardial disorders are rarely isolated processes of primary cause; rather, they are sequelae of other disorders such as systemic infection, trauma, metabolic derangement, or neoplasia. Despite the diversity of causative factors, pericardial involvement may be asymptomatic, manifested as an accumulation of fluid in the pericardial sac, or mani- fested as painful inflammation of pericardial structures.
Pericardial Effusion An accumulation of fluid in the pericardial sac is called pericardial effusion. Normally, the pericardial space contains only 30 to 50 mL of thin, clear fluid. Under pathologic conditions, as much as 500 mL may accumulate. The compositions of the usual types of effusions are as follows: Serous—a transudate secondary to heart failure or hypoproteinemia Serosanguineous—a mixture of serous fluid and blood that may follow
blunt chest trauma, heart surgery, or CPR Blood—hemopericardium usually resulting from penetrating trauma
to the heart Purulent – infected fluids containing WBC (pus)
Cardiac Tamponade The accumulation of pericardial fluid is generally without clinical significance except as an indicator of underlying disease processes. However, if the fluid accumulation is large or occurs suddenly, the life-threatening condition of cardiac tamponade may ensue. Tamponade refers to external compression of the heart chambers such that filling is impaired.
Signs and symptoms of cardiac tamponade include reduced stroke volume and compensatory increases in heart rate. Systemic venous congestion occurs because blood is prevented from entering the compressed heart by way of the superior and inferior venae cavae. Venous congestion may be apparent as distended neck veins. Changes in intrathoracic pressure during respiration may have exaggerated effects on cardiac filling. The presence of waxing and waning of blood pressure in synchrony with respiration is called pulsus paradoxus. Significant pulsus paradoxus is usually defined as a difference of 10 mm Hg or more in systolic blood pressure between inspiration and expiration. Other manifestations of tamponade include rising filling pressures in the heart chambers, muffled heart sounds, dull chest pain, diminished electrocardiographic amplitude, and a compressed cardiac silhouette on radiographs. The three classic findings in cardiac tamponade— hypotension, distended neck veins, and muffled heart sounds—have been called Beck’s triad.
Treatment is aimed at relieving the pericardial pressure by aspirating the offending fluid (pericardiocentesis). Failure to manage tamponade may result in drastically reduced diastolic filling, cardiovascular collapse, and death. Pericardial effusions occasionally are detected by chance on
Data from LeWinter M, Hopkins WE: Pericardial diseases. In Mann D, Zipes D, Libby P, Bonow R: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Elsevier, p 1638.
Idiopathic Infectious Viral (echovirus, coxsackievirus, adenovirus, cytomegalovirus, hepatitis B,
infectious mononucleosis, HIV/AIDS) Bacterial (Pneumococcus, Staphylococcus, Streptococcus, Mycoplasma, Lyme
disease, Haemophilus influenzae, Neisseria meningitidis, and others) Mycobacteria (Mycobacterium tuberculosis, Mycobacterium avium-intracellulare) Immune-Inflammatory Connective tissue disease (systemic lupus erythematosus, rheumatoid arthritis,
scleroderma, mixed) Late posttrauma Drug induced (procainamide, hydralazine, isoniazid, cyclosporine, others) Neoplastic Disease Secondary: breast and lung carcinoma, lymphomas, Kaposi sarcoma Radiation Induced Early Post–Cardiac Surgery and Post–Orthotopic Heart
Transplantation Hemopericardium Trauma Post–myocardial infarction free wall rupture Device and procedure related: percutaneous coronary procedures, implantable
defibrillators, pacemakers, post–dysrhythmia ablation, post–atrial septal defect closure, post–valve repair or replacement
Dissecting aortic aneurysm Trauma Blunt and penetrating, post–cardiopulmonary resuscitation
BOX 18.4 Categories of Pericardial Disease and Selected Specific Causes
• Hypertrophic cardiomyopathy (HCM) primarily affects the left ventricle and ventricular septum. Genetic mutations in sarcomere proteins are suspected in most cases. Conditions that increase contractility of the heart (exercise, drugs) can result in obstruction of ventricular outflow and reduced cardiac output. EF is preserved, and diastolic dysfunction is predominant. Patients with HCM have a significant risk of sudden cardiac arrest.
• Restrictive cardiomyopathy (RCM) is characterized by a stiff, fibrotic left ventricle that resists diastolic filling. Decreased cardiac output and left-sided heart failure can result.
CHAPTER 18 Alterations in Cardiac Function 403
KEY POINTS • Large accumulations of pericardial fluid can result in cardiac tamponade.
External compression of the heart chambers impairs diastolic filling and results in decreased stroke volume. Distended neck veins, hypotension, muffled heart sounds, pulsus paradoxus, and elevated and equalized intrachamber pressures are indicative.
• Acute pericarditis causes sticking and rubbing of the visceral and parietal pericardial layers. A friction rub, pain radiating to the back, esophageal discomfort, and generalized signs of inflammation are usually present.
• Chronic pericarditis can lead to destruction of the pericardial sac with adhesion of the heart to surrounding mediastinal structures. Cardiac contrac- tion may be impaired.
• Constrictive pericarditis results in a fibrous, scarred pericardium that restricts cardiac filling.
Heart tube
Vena cava
Future atria
Aortic arches
Future left
ventricle
FIG 18.22 Asymmetric loop structure in early embryonic development of the heart.
discomfort and dysphagia (difficulty swallowing). Rubbing of the pericardial layers may be heard as a friction rub. The rub can be transient and intermittent and may sound squeaky or like scratchy sandpaper. Epicardial injury from pericarditis may be apparent on the ECG as ST-segment elevation. Treatment is generally symptom oriented and includes medications to relieve pain and minimize inflammation.
In the past, MI was a common cause of pericarditis, but the incidence of both acute post-MI pericarditis and the delayed pericarditis of Dressler syndrome has decreased with the advent of early reperfusion therapy for MI. Acute post-MI pericarditis occurs within a few days of an MI in which the infarction involves the epicardial surfaces of the heart. The inflammation of the necrotic heart muscle extends to adjacent pericardial structures, causing them to become inflamed as well. The degree of pericardial involvement reflects the size of the MI.
Chronic Pericarditis Healing of an acute form of pericardial inflammation may result in chronic (healed) pericardial dysfunction of two principal kinds: adhesive mediastinopericarditis and constrictive pericarditis. Adhesive medias- tinopericarditis is usually a consequence of suppurative or caseous pericarditis or a complication of previous cardiac surgery. It may also follow significant irradiation of the chest. The pericardial sac is destroyed and the external aspect of the heart adheres to surrounding mediastinal structures. The workload of the heart increases significantly because contraction is opposed by the attached surrounding structures.
Constrictive pericarditis may be a result of previous suppurative or caseous pericarditis, commonly secondary to tuberculosis. However, in many cases the cause of pericardial dysfunction is unknown. The pericardial sac becomes dense, nonelastic, fibrous, and scarred. It encases the heart like a stiff cage and impairs diastolic filling. The constrictive process generally occurs slowly and may be quite advanced by the time symptoms occur.
Symptoms may include exercise intolerance, weakness, fatigue, and systemic venous congestion. Treatment is aimed at relieving the constric- tion by removal of pericardium (pericardectomy) and administration of inotropic agents to improve cardiac contractility.
CONGENITAL HEART DISEASES Congenital heart disease is an abnormality of the heart that is present from birth. A wide variety of defects have been described, and only the pathophysiology of the most common defects will be included here. A brief description of fetal cardiac development is a necessary prelude to a discussion of congenital heart diseases.
Embryologic Development Development of the heart involves a complex orchestration of formation and resorption of structures. Abnormalities in the development of four important heart structures are at the root of most of the common heart defects: (1) development of the atrial septum, (2) development of the ventricular septum, (3) division of the main outflow tract (truncus arteriosus) into the pulmonary and aortic arteries, and (4) development of the valves. Each of these processes is briefly reviewed.
The primitive heart begins as an enlarged tube much like a blood vessel. The tube has three layers. The inner luminal layer is thin and composed of endothelial cells. This layer will eventually line the inner chambers of the heart and valves. The outermost layer is also thin and is called the myoepicardial mantle. The outer mantle will form the epicardial and muscular structures of the heart. In between these two thin layers of cells is a thick layer of gelatinous substance called cardiac jelly. Cardiac jelly is the precursor to endocardial cushion tissue, which is important in the formation of membranes in the heart, including the septa that separate the four chambers of the heart.
By day 23, the heart tube begins to beat. The tube folds on itself to form an asymmetric loop structure (Fig. 18.22). One bulge of the loop forms a primitive single atrium, another forms the future left ventricle, and a third forms the future right ventricle and common ventricular outflow tract (truncus arteriosus). The common atrium is divided into right and left atria by growth of the interatrial septum. Atrial septation occurs in several steps. First, the septum primum is formed passively in the superior surface by an indentation caused by the overlying truncus arteriosus (Fig. 18.23). Next, the superior and inferior endocardial cushions grow and extend toward each other. These flaps of tissue overlap but do not fuse so that blood can pass through from the right atrium to the left atrium. A reverse in the direction of flow, as occurs at birth, normally would push the flap shut and close the hole (see Pediatric Considerations box). This flaplike opening, called the ostium secundum, remains open throughout fetal life and is later called the foramen ovale.
Septal formation between the ventricles follows a similar pattern. The lower portion of the interventricular septum is formed by circular
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growth and fusing of the muscular ventricular walls. Then the muscular septum proliferates upward toward the atria. The inferior endocardial cushion tissue also grows downward to meet the uplifting muscular septum (see Fig. 18.23).
At about the same time that the atrial and ventricular septal structures are being elaborated, the common ventricular outflow tract, the truncus arteriosus, is divided into the pulmonary and aortic channels. This process is accomplished by growth and eventual fusion of mounds of endocardial cushions located in the wall of the truncus arteriosus. The truncal endocardial cushions go on to form the semilunar valves as well (Fig. 18.24).
The atrioventricular septum and valves are similarly formed by growth and fusion of the right and left lateral cushions. Superior and inferior cushions also contribute to formation of the septum between the atria and ventricles. Leaflets of the valves are initially formed by lumps of cushion material, which are replaced by muscle tissue from the ventricular wall. The muscle tissue also forms the chordae tendineae and papillary muscle structures. Eventually, the muscle cells of the leaflets and chordae tendineae are replaced by tough, fibrous connective tissue.
When the embryonic heart is fully developed, two important pas- sageways still permit blood flow to bypass the lungs (Fig. 18.25). The foramen ovale lies between the left and right atria and allows blood to bypass the right ventricle. Blood flows right to left through the atrial opening because the pressure in the left atrium is low. High resistance of the deflated lungs also causes right ventricular pressure to be high, which impedes right ventricular filling. The other important structure is the ductus arteriosus, a channel that connects the pulmonary artery and the aorta. Blood flows from the pulmonary artery into the aorta during fetal life because of high vascular resistance in the collapsed lungs. Both these communications generally close after birth when the lungs inflate and the resistance on the right side of the heart falls. Clamping the umbilical cord also serves to increase systemic vascular resistance, which further augments the reverse in pressure gradient, with left heart pressures now exceeding those on the right.
Vena cava
Muscular septum
Truncus arteriosus
Endocardial cushion
FIG 18.23 Formation of the intracardiac septa.
Day 43
Day 50
Day 55
Truncal cushion
Septation into pulmonary and aortic channels
Formation of pulmonic and
aortic (semilunar) valves
Cross-section of truncus arteriosus
FIG 18.24 Septation of the truncus arteriosus and formation of the semilunar valves.
Deflated lung
(before birth)
Deflated lung
(before birth)
Inferior vena cava
Aorta
Foramen ovale Ductus
arteriosus
FIG 18.25 Fully developed embryonic heart showing the foramen ovale and ductus arteriosus. These structures allow blood to bypass the pulmonary circulation during fetal life.
Etiology and Incidence of Congenital Heart Disease Congenital heart disease is the most common heart disorder in children, with an overall incidence of about 1% to 5% of all live births. The most common heart defects are listed in Table 18.8, with approximate frequencies of occurrence. In the majority of cases, the cause of the heart defect is unknown. Multifactorial inheritance with both genetic and environmental influences is probable. Abnormalities in several genes that
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PEDIATRIC CONSIDERATIONS Changes in the Newborn Heart
When a newborn takes his or her first breath, several changes occur. The alveoli of the lungs expand with the inspired oxygen dilating the pulmonary vessels, which decreases pulmonary vascular resistance. Pulmonary blood flow increases because of this dilation. The increased pulmonary blood flow is from the right side of the heart. Because of this increased flow, the pressures in the right atrium, right ventricle, and pulmonary arteries are decreased. Simultaneously, the umbilical cord is clamped, which increases systemic vascular resistance and increases blood volume. The pressure in the left side of the heart increases as more blood returns to the left atrium from the pulmonary veins related to the clamping. Because the pressure gradient has shifted with higher pressure in the left side of the heart, the circulation of blood through the fetal shunts is reversed.
Foramen ovale closure occurs because of the decreased blood flow from the placenta related to cord clamping. The blood flow from the placenta holds the
foramen ovale open before birth. The change in the pressure gradient closes the foramen ovale at or soon after birth. When this closure occurs, blood from the right ventricle flows entirely into the pulmonary circulation.
Increased oxygen concentration of the blood is the critical factor in closure of the ductus arteriosus. Bradykinin is signaled to be released by high oxygen concentration in blood from the initial aeration of the lungs. Bradykinin has contractile effects on smooth muscle and forces the ductus arteriosus walls to constrict. The secretion of endogenous prostaglandin E and prostacyclin, which maintain the patency of the ductus arteriosus during gestation, is decreased after birth, which further diminishes the opening of the ductus arteriosus. In addition, decreased pulmonary vascular resistance decreases the blood flow from the ductus arteriosus. Functional closure of the ductus arteriosus occurs 4 days after birth, but may be delayed in preterm or ill infants.
Lungs expand with first breath
Umbilical cord clamped
High oxygen content in blood
Walls of ductus arteriosus constrict
Ductus arteriosus closes
Bradykinin released
Pulmonary vessels dilate
Increase in systemic vascular resistance
Increase in volume of blood
Increase in pulmonary blood flow
Decrease in endogenous
prostaglandin E and prostacyclin
Decrease in pressure in right side of heart
Increase in pressure in left side of heart as more blood returns
Pressure higher in left atrium than right atrium
Closure of foramen ovale
Decrease in pulmonary vascular resistance
code for transcription factors increase the risk for congenital anomalies (Table 18.9). Very few cases of congenital malformation can be clearly attributed to environmental factors. Maternal rubella during the first trimester of pregnancy is the best documented environmental cause of heart defects. A large number of cardiac teratogens are suspected from animal studies, including hypoxia, ionizing radiation, and heavy alcohol consumption.
Less than 15% of congenital heart defects can be attributed to genetic or chromosomal abnormalities. A twofold to tenfold increase in the incidence of congenital heart defects is seen in siblings. And several heart defects also occur more frequently in males. Monozygotic twin pregnancies have double the incidence of heart defects compared with singleton pregnancies, but usually only one of the pair is affected even though their genotypes are identical. Thus a complex interplay between
genetic and environmental influences is probable and as yet poorly understood.
Pathophysiology of Congenital Heart Disease The many forms of congenital heart anomalies result in two primary pathologies: shunts and obstructions. A shunt denotes an abnormal path of blood flow through the heart or great vessels. The shunt may be further characterized as right-to-left or left-to-right to indicate the direction of abnormal blood flow. Right-to-left shunts allow unoxygen- ated blood from the right side of the heart to enter the left side and systemic circulation without first passing through the lungs. Infants with right-to-left shunting of blood generally have some degree of cyanosis because of the decreased oxygen content of the arterial blood (cyanotic defect). Conversely, a left-to-right shunt occurs when
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In addition to being classified according to pathologic features as obstructions or shunts, heart defects are classified according to the clinical manifestation of cyanosis. Acyanotic disorders include the obstructive disorders and left-to-right shunts. The cyanotic category includes abnormalities causing right-to-left shunts. Specific heart defects are described further and follow this categorization.
Acyanotic Congenital Defects Atrial Septal Defect During the third to fifth week of fetal development, the left and right atria are separated by flaps of tissue that become the atrial septum. The foramen ovale remains patent during intrauterine life such that blood may pass from the right to the left atrium and bypass the uninflated and nonfunctional lungs. The foramen ovale normally remains open in utero because pressure on the right side of the heart is higher than that on the left. With birth, however, the pressure gradient reverses as the lungs inflate and greatly reduce pulmonary vascular resistance. The higher left-sided pressure forces the flap shut, and fusion of the foramen ovale membrane normally occurs. The majority of atrial septal defects occur at the location of the foramen ovale. The abnormal septal opening may be of variable size. Small defects (1 cm) are well tolerated. Even larger atrial septal defects may be asymptomatic for many years as long as the shunt flow is left to right and therefore acyanotic (Fig. 18.26).
The long-term increase in pulmonary blood flow may eventually lead to pulmonary hypertension, right ventricular hypertrophy, and a reversal of the shunt to a right-to-left pattern. Cyanosis, respiratory
TABLE 18.8 Relative Frequency of Occurrence of Cardiac Malformations at Birth
Disease Percentage
Ventricular septal defect 42 Atrial septal defect 10 Pulmonic stenosis 8 Patent ductus arteriosus 7 Tetralogy of Fallot 5 Coarctation of the aorta 5 Atrioventricular septal defect 4 Aortic stenosis 4 Complete transposition of the great arteries 4 Persistent truncus arteriosus 1 Anomalous pulmonary venous connection 1 Tricuspid atresia 1
Based on 44 published studies. Adapted from Hoffman JI, Kaplan S: The incidence of congenital heart disease, J Am Coll Cardiol 2002;39(12):1890.
TABLE 18.9 Selected Examples of Gene Defects Associated With Congenital Heart Disease
Disorder Genes Gene Product Function
Nonsyndromic: ASD or conduction defects NKX2.5 Transcription factor ASD or VSD GATA4 Transcription factor Tetrology of Fallot ZFPM2 or NKX2.5 Transcription factor
Syndromic: Alagille syndrome – pulmonary artery stenosis or tetralogy of Fallot JAG1 or NOTCH2 Signaling proteins or receptors Char syndrome – PDA TFAP2B Transcription factor CHARGE syndrome – ASD, VSD, PDA, or hypoplastic right side of the heart CHD7 Helicase-binding protein DiGorge syndrome – ASD, VSD, or outflow tract obstruction TBX1 Transcription factor Holt-Oram syndrome – ASD, VSD, or conduction defect TBX5 Transcription factor Noonan syndrome – pulmonary valve stenosis, VSD, or hypertrophic
cardiomyopathy PTPN11, KRAS, SOS1 Signaling proteins
ASD, Atrial septal defect; PDA, patent ductus arteriosus; VSD, ventricular septal defect; From Kumar V et al: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders, p 532.
oxygenated blood from the left side of the heart or aorta flows back into the right side to be recirculated through the lungs. The blood reaching the systemic circulation is oxygenated and the infant is not cyanotic (acyanotic defect). However, the right side of the heart has an increased workload because of the extra shunt blood. In time, the overload of the right side of the heart can result in right ventricular hypertrophy and high right-sided heart pressures. A left-to-right shunt may then progress to a more dangerous right-to-left shunt when right heart pressures exceed left heart pressures. Congenital disorders causing abnormal blood flow through the heart include atrial septal defect, ventricular septal defect, patent ductus arteriosus, tetralogy of Fallot, transposition of the great arteries, truncus arteriosus, and tricuspid atresia.
Some heart anomalies produce obstructions to blood flow because of abnormal narrowings. Stenosis or atresia (failure to develop) of valves and coarctation of the aorta are the most common obstructive defects. Obstructions do not result in cyanosis but generally increase the workload of the affected chamber. Heart failure is a potential consequence of congenital heart defects and presents differently in infants and children than in adults (Box 18.5).
Poor feeding and failure to thrive Respiratory distress (mainly tachypnea) Rapid heart rate (160–180 beats/min) Pulmonary rales or wheezing Cardiomegaly and pulmonary edema on radiogram Hepatomegaly (peripheral edema unusual) Gallop sounds Color (ashen pale or faintly cyanotic) Excessive perspiration Diminished urine output
BOX 18.5 Features of Heart Failure in Infants
CHAPTER 18 Alterations in Cardiac Function 407
pulmonary hypertension and right ventricular hypertrophy may result and cause a reversal of the shunt.
Large ventricular septal defects may be apparent at birth because of rapidly developing right-sided heart failure and a loud systolic murmur. Large, symptomatic defects in infants or moderate defects in older children are repaired surgically to avoid progression to pulmonary vascular disease. Small ventricular septal defects in infants are generally not immediately repaired because of the tendency of such defects to close spontaneously.
Patent Ductus Arteriosus The ductus arteriosus is a normal channel between the pulmonary artery and the aorta that remains open during intrauterine life (Fig. 18.28). Within 1 to 2 days after birth, the ductus arteriosus closes functionally, and within a few weeks it closes permanently. The ductus arteriosus allows blood to flow from the pulmonary artery into the aorta, thus bypassing the lungs. Low oxygen tension and local production of prostaglandins appear to be important in maintaining patency of the channel during fetal life. After birth, flow through the ductus arteriosus switches to left to right because of the higher pressure in the aorta. This change in flow direction brings oxygenated blood through the ductus arteriosus and stimulates it to close. A reduction in prostaglandin E production after birth appears to contribute to constriction and closure. In many cases the reason for abnormal continued patency of the ductus arteriosus after birth is not well understood. Conditions that cause low blood oxygen tension may contribute to continued patency.
Most often a patent ductus arteriosus has no clinical significance early in life because the shunt is left to right and no cyanosis is evident. Surgical management is usually delayed because these defects tend to close spontaneously. Prostaglandin inhibitors may be given to induce closure of the defect. Continued patency of the ductus arteriosus is usually obvious because of a harsh, grinding systolic murmur and often a systolic thrill (vibration). Surgical closure of the patent ductus arteriosus is done as soon as it becomes evident that spontaneous closure is unlikely. As with other left-to-right shunt disorders, uncorrected patent ductus arteriosus results in pulmonary hypertension complicated by respiratory and right-sided heart failure. Eventual reversal of the shunt to a right- to-left pattern results in cyanosis. Because the ductus is usually located
difficulty, and right-sided heart failure may ensue. Large or symptomatic atrial septal defects are commonly repaired surgically early in life, before pulmonary complications occur.
Ventricular Septal Defect A ventricular septal defect is the most common congenital cardiac anomaly. It is frequently associated with other cardiac defects such as tetralogy of Fallot, transposition of the great arteries, and atrial septal defects. The ventricular septum develops between the fifth and sixth weeks of fetal life as the membrane derived from the endocardial cushion fuses with the muscular septum.
The majority of ventricular septal defects are located in the mem- branous septum, very close to the bundle of His. As with atrial septal defects, the functional significance depends largely on the size of the defect. The shunt is initially left to right because left-sided heart pressures are higher (Fig. 18.27). With the increase in pulmonary blood flow,
LA
RA
FIG 18.26 Atrial septal defect. Blood flow through the defect is usually left to right and produces an acyanotic shunt.
LV
RV
FIG 18.27 Ventricular septal defect. Blood flow through the defect is usually left to right and produces an acyanotic shunt.
PA
Aorta
FIG 18.28 Patent ductus arteriosus. Blood flow through the ductus is usually from the aorta to the pulmonary artery and produces an acyanotic shunt.
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extent of narrowing of the pulmonic valve. Pulmonary stenosis is usually due to abnormal fusion of the valvular cusps. Right ventricular hyper- trophy occurs secondary to the high ventricular afterload caused by the narrowed outflow opening. Isolated pulmonary stenosis is easily corrected by surgery; however, the prognosis depends in large part on the health of the right ventricle.
Aortic Stenosis or Atresia Congenital aortic atresia is rare and not compatible with survival. However, depending on its severity, aortic stenosis is correctable and associated with a good prognosis. Aortic stenosis may involve the valvular cusps or the subvalvular fibrous ring just below the cusps. The narrowed aortic outflow tract results in a high left ventricular afterload, which causes the left ventricle to enlarge. A prominent systolic murmur is usually apparent. Surgical replacement is the definitive treatment if the stenosis is severe, progresses, or becomes symptomatic.
Cyanotic Congenital Defects Tetralogy of Fallot The four defining features of tetralogy of Fallot are (1) a ventricular septal defect, (2) an aorta positioned above the ventricular septal opening (overriding aorta), (3) pulmonary stenosis that obstructs right ventricular outflow, and (4) right ventricular hypertrophy (Fig. 18.30).
The severity of the symptoms is related primarily to the degree of pulmonary stenosis. The heart is generally enlarged because of the extensive right ventricular hypertrophy. Even if the condition is untreated, individuals with tetralogy of Fallot may live into adulthood. The defect often results in cyanosis because the overriding aorta receives unoxygen- ated blood from the right side of the heart as well as oxygenated blood from the left side. The degree of cyanosis depends on the amount of blood received from the right side, which in turn depends on the degree of pulmonic obstruction. Surgical correction of the defects is usually recommended because prolonged noncorrective management carries the risk of infective endocarditis and secondary polycythemia.
Transposition of the Great Arteries In the most common form of transposition of the great arteries, the aorta arises from the right ventricle and the pulmonary artery arises from the left ventricle (Fig. 18.31). This anomaly results in the formation
distal to the origin of the subclavian artery, the lower extremities may show cyanosis, whereas the upper extremities remain pink.
Coarctation of the Aorta Coarctation refers to a narrowing or stricture that may impede blood flow. Coarctation of the aorta is a common heart defect that affects males three to four times more frequently than females. Narrowing of the aorta may occur anywhere along its length; however, in most cases the coarctation is located just before or just after the ductus arteriosus (Fig. 18.29). Preductal coarctation (proximal to the ductus arteriosus) is usually more severe and often associated with other anomalies. In some instances, the aortic stricture is so severe that blood flow to the lower part of the body must be maintained solely by flow through the ductus arteriosus. This situation results in a very high workload for the right side of the heart and may lead to heart failure in the early neonatal period. Blood supply to the arms and head is unaffected because these arteries arise proximal to the stricture. Postductal coarctation is generally less severe and may remain unrecognized until adulthood.
The upper extremities typically have an elevated blood pressure, whereas the lower extremities have weak pulses and low blood pressure. An important part of assessment of the newborn is comparison of pulses in the upper and lower extremities to assess for symmetry. All types of coarctation are usually accompanied by systolic murmurs and ventricular hypertrophy. The stricture can be repaired surgically by resection of the narrowed region. If left untreated, significant coarctation may lead to congestive heart failure, intracranial hemorrhage, or aortic rupture.
Pulmonary Stenosis or Atresia Isolated pulmonary stenosis and atresia are included in the category of acyanotic defects because they do not themselves result in cyanosis. However, they often occur in conjunction with other anomalies that allow survival into the neonatal period. The other defects may allow shunting of blood and result in cyanosis. In pulmonary atresia, no communication is found between the right ventricle and the lungs so that blood must enter the lungs by first traveling through a septal opening and then through a patent ductus arteriosus. The right ventricle is typically underdeveloped (hypoplasia), and the atrial septal defect is large. Pulmonary stenosis can be mild to severe, depending on the
Postductal coarctation
FIG 18.29 Coarctation of the aorta. The arterial narrowing can produce a weaker pulse in the lower extremities.
Overriding aorta
Pulmonary stenosis
Ventricular septal defect
Right ventricular hypertrophy
FIG 18.30 Tetralogy of Fallot showing the four characteristic abnormali- ties: pulmonary stenosis, ventricular septal defect, overriding aorta, and right ventricular hypertrophy. Tetralogy of Fallot is a cyanotic defect.
CHAPTER 18 Alterations in Cardiac Function 409
hypertension and right ventricular hypertrophy. Increased pulmonary resistance causes the cyanosis to become more severe as more venous blood enters the systemic circulation. Surgical correction is required for survival.
Tricuspid Atresia Absence of the tricuspid valve is almost always associated with under- development of the right ventricle and an atrial septal defect. Circulation is maintained by the defect, which allows blood to bypass the right ventricle. A patent ductus arteriosus is required to perfuse the lungs. In some cases, a concomitant ventricular septal defect is present and may allow some blood to pass into the right ventricle and enter the pulmonary circulation. Cyanosis is present from birth, and the mortality rate is high. Surgical correction is required for survival.
of two separate, noncommunicating circulations. The right side of the heart receives blood from the systemic circulation and recirculates it through the body by way of the aorta. Blood reaching the body has not passed through the lungs and is therefore not oxygenated. The left side of the heart receives oxygenated blood from the lungs and then recir- culates it through the lungs by way of the pulmonary artery. Unless some mixing of these separate circulations takes place through other heart defects, such as septal defects, transposition is not compatible with life.
Nearly all infants who survive the neonatal period have an interatrial opening, and most also have a patent ductus arteriosus. A good deal of mixing must be maintained after birth for the infant to survive. Surgery may be directed at improving the mixing of systemic and pulmonary blood by enlarging or creating openings in the heart. Cor- rective surgery in which the aorta and pulmonary arteries are excised from the heart and sutured to the opposite ventricular outflow tract is the treatment of choice. The coronary arteries must also be reimplanted into the new left ventricular outflow tract in this procedure.
Truncus Arteriosus Truncus arteriosus is a congenital malformation in which failure of the pulmonary artery and aorta to separate results in formation of one large vessel that receives blood from both the right and left ventricles (Fig. 18.32). A large ventricular septal defect and a single valvular structure are present and lead to the single large artery. Mixing of blood from the right and left sides of the heart results in systemic cyanosis. The amount of blood entering the systemic versus the pulmonary circula- tion depends on the degree of vascular resistance in the two systems. Abnormally high pulmonary blood flow may progress to pulmonary
Pulmonary artery
PDA
ASD
Aorta
FIG 18.31 Transposition of the great arteries. Two separate circulations are formed, which is incompatible with life unless mixing of blood occurs through other defects. ASD, Atrial septal defect; PDA, patent ductus arteriosus.
Truncus arteriosus
FIG 18.32 Truncus arteriosus is a cyanotic defect. Failure of septation results in a common outflow tract from the ventricles. A ventricular septal defect is also present.
KEY POINTS • Different congenital heart anomalies result in two primary pathologic
processes: (1) shunting of blood through abnormal pathways in the heart or great vessels and (2) obstruction to blood flow because of abnormal narrowing.
• Disorders that result in left-to-right shunting of blood or obstruction to flow are generally acyanotic. These disorders include atrial septal defect, ven- tricular septal defect, patent ductus arteriosus, coarctation of the aorta, and pulmonary and aortic stenosis or atresia.
• Disorders that result in right-to-left shunting of blood result in cyanosis. These disorders include tetralogy of Fallot, transposition of the great arteries, truncus arteriosus, and tricuspid atresia.
A variety of disease processes may interfere with the heart’s ability to provide the body with oxygenated blood. Among these processes are CHD, valvular and endocardial diseases, myocardial diseases, pericardial diseases, and congenital heart defects. CHD includes several clinical forms: stable angina pectoris, ACS (unstable angina, MI), chronic ischemic
heart disease, and sudden cardiac arrest. Stenotic coronary lesions obstruct blood flow to the myocardium and result in these ischemic clinical syndromes. Distinction between unstable angina and MI relies on the presence of serum biomarkers of myocardial damage. Unstable angina is ischemia without cellular death and therefore does not result
S U M M A R Y
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Pericardial disorders include accumulations of fluid in the pericardial sac and acute and chronic forms of pericarditis. Pericardial fluid may be serous, serosanguineous, infectious, or frank blood. Pericardial accumula- tions are usually of little consequence except as indicators of underlying pathophysiologic processes. However, if the accumulation is large or rapid, it may compress the heart and interfere with diastolic filling—a process called cardiac tamponade. Pericarditis refers to inflammation of the pericardium. It is usually secondary to other disease processes. Pericardial inflammation generally causes pain and may be associated with a friction rub. Chronic pericarditis can cause erosion of the pericardial sac such that the epicardial layer of the heart may become fused to other mediastinal structures. Alternatively, chronic pericarditis may cause the pericardial sac to become fibrotic and noncompliant such that it restricts expansion of the heart during diastolic filling.
A number of heart disorders may be present at birth and can be categorized as obstructions or shunts and as cyanotic or acyanotic. In general, disorders that allow unoxygenated blood from the right heart to enter the systemic circulation (right-to-left shunt) cause cyanosis. Examples of cyanotic defects include tetralogy of Fallot, transposition of the great arteries, truncus arteriosus, and tricuspid atresia. Examples of acyanotic defects are coarctation of the aorta, atrial and ventricular septal defects, and patent ductus arteriosus.
All heart diseases discussed in this chapter may be complicated by heart failure. Heart failure occurs when the pumping efficiency of the heart is decreased such that cardiac output is subnormal. It is often accompanied by congestion of the lungs or the systemic venous system. Heart failure is discussed in Chapter 19.
in biomarker elevation. MI, on the other hand, is associated with the death of myocardial cells and subsequent release of intracellular components. MI may be complicated by dysrhythmias and failure of the heart to pump efficiently.
Valvular disorders are of two types: those that impede flow because of stenosis and those that allow regurgitation because of failure to close completely. The general consequence of valvular disorders is increased myocardial workload secondary to high afterload (stenosis) or high preload (regurgitation). The heart may eventually decompensate and proceed to heart failure. The endocardial diseases, rheumatic heart disease and infective endocarditis, also primarily affect the heart valves and create stenosis and regurgitation.
Disorders of the myocardium include myocarditis, which is an inflammatory process, and cardiomyopathy, which is a noninflammatory process, usually of genetic cause. Most cases of myocarditis are viral; however, it is the immune system’s response to the virus that appears to cause myocardial damage. Myocarditis results in a dilated, flabby heart with decreased pumping efficiency. The cardiomyopathies are a diverse group of disorders that may be classified as primary (having unknown cause) and specific (caused by a known disease process). Cardiomyopathies include a dilated form, a hypertrophic form, and a restrictive form. The primary problem in the dilated form is poor contractility of all heart chambers. The hypertrophic form may cause left ventricular outflow obstruction that interferes with cardiac output and increases left ventricular strain. Dysfunction in the restrictive form is caused by poor diastolic filling as a result of a stiff, fibrosed ventricular chamber.
RESOURCES American Heart Association: Heart disease and stroke statistics—2017 update,
Dallas, TX, 2017, The Association. Arbustini E, et al: The MOGE(S) classification for a phenotype–genotype
nomenclature of cardiomyopathy: endorsed by the world heart federation. J Am Coll Cardiol 62:2046–2072, 2013.
Kong MH, Fonorow GC, Peterson ED, et al: Systematic review of the incidence of sudden cardiac death in the United States. J Am Coll Cardiol 57:794–901, 2011.
Kumar V, Abbas A, Aster J, editors: Robbins and Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders.
Mann D, Zipes D, Libby P, Bonow R: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Elsevier.
US Preventive Services Task Force: Statin use for the primary prevention of cardiovascular disease in adults: US preventive services task force recommendation statement. JAMA 316(19):1997–2007, 2016.
Yusuf S, Bosch J, Dagenais G, et al: HOPE-3 investigators. Cholesterol lowering in intermediate-risk persons without cardiovascular disease. N Eng J Med 374(21):2021–2031, 2016.
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19 Heart Failure and Dysrhythmias: Common
Sequelae of Cardiac Diseases Benjamin J. Miller and Jacquelyn L. Banasik
K E Y Q U E S T I O N S • What are the common predisposing factors for development of
heart failure? • How does heart failure with systolic dysfunction differ from heart
failure with preserved systolic function? • How do the compensatory responses triggered in heart failure
work to restore cardiac output, and how might they lead to remodeling and progression?
• What are the clinical manifestations of heart failure?
• How are preload, afterload, and contractility managed therapeutically in the patient with heart failure?
• What are the characteristic electrocardiographic features of the common cardiac dysrhythmias?
• What is the clinical significance and usual treatment of each of the common cardiac dysrhythmias?
C H A P T E R O U T L I N E Heart Failure, 412
Pathogenesis and Diagnosis, 412
Systolic Dysfunction with Low Ejection Fraction, 412 Diastolic Dysfunction with Preserved Ejection Fraction, 412
Compensatory Mechanisms, Remodeling, and Progression, 413
Sympathetic Nervous System Activation, 413 Increased Preload, 413 Myocardial Remodeling and Progression, 415
Clinical Manifestations, 417
Left-Sided Heart Failure, 417 Right-Sided Heart Failure, 418 Biventricular Heart Failure, 420
Class and Stage of Heart Failure, 420
Treatment, 421
Cardiac Dysrhythmias, 421 Dysrhythmia Mechanisms, 421
Automaticity, 421 Triggered Activity, 421 Reentry, 422
Dysrhythmia Analysis, 423
Normal Sinus Rhythm, 423
Abnormal Rates of Sinus Rhythm, 424
Sinus Tachycardia, 424 Sinus Bradycardia, 424 Sinus Arrhythmia, 424 Sinus Arrest, 424
Abnormal Site of Impulse Initiation, 425
Escape Rhythms, 425 Atrial Dysrhythmias, 425 Junctional Dysrhythmias, 426 Ventricular Dysrhythmias, 427
Conduction Pathway Disturbances, 428
Disturbances of Atrioventricular Conduction, 428 Abnormal Conduction Pathways, 429 Intraventricular Conduction Defects, 429
Treatment, 431
http://evolve.elsevier.com/Banasik/pathophysiology/
Heart failure (HF) and cardiac dysrhythmias (arrhythmias) may occur in association with cardiac diseases from a number of different causes. Heart failure refers to the inability of the heart to maintain sufficient cardiac output to optimally meet metabolic demands of tissues and organs, and is the end stage of many cardiac diseases. HF involves multiple organ systems and is a progressive syndrome. If the contracting and relaxing abilities of the heart are impaired, then blood flow to the systemic circulation will be reduced, and congestion of blood can occur in the pulmonary
venous circulation. In patients with HF, these symptoms of fluid overload sometimes are described as congestive heart failure (CHF). This chapter includes the chronic forms of HF; acute HF is discussed in Chapter 20 because it commonly results in cardiogenic shock. Disturbances in electrical activity of the heart may signify underlying pathophysiologic processes and may also lead to insufficient cardiac output. Neither HF nor dysrhythmia is a primary cardiac disease; therefore underlying pathophysiologic processes must be investigated.
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
412 UNIT V Cardiac Function
Inadequate supplies of oxygen to the contracting cells may impair contractility because each myosin cross-bridge cycle requires a molecule of adenosine triphosphate (ATP). When ATP production is low, fewer cross-bridge cycles are completed with each contraction, which results in a reduced EF. Ischemia also impairs diastolic relaxation because removal of calcium ions from the cytoplasm is an energy-requiring process that may be slowed with insufficient production of ATP (see Chapter 17).
β1-Receptor down-regulation is thought to be an important mecha- nism of impaired systolic function. Chronic overexcitation of cardiac β1 receptors by sympathetic neurotransmitters (e.g., norepinephrine [NE]) leads to a reduction in β1 receptor function and results in a myocardium that is less responsive to sympathetic stimulation and adrenergic drug therapy. β1-receptor–blocking agents have been shown to improve EF and to reduce mortality, lending support to the view that chronic excessive sympathetic nervous system (SNS) activation is detrimental to cardiac function.
Diastolic Dysfunction With Preserved Ejection Fraction CHD and HTN are associated with development of diastolic dysfunction, just as they are with development of systolic failure. Why the same disease risk factors result in different cardiac dynamics in different individuals is not completely known. HF with preserved EF is more common in women, the elderly, and those with no history of MI. Diastolic failure is a disorder of myocardial relaxation. In this condition, the left ventricle is excessively noncompliant and does not fill effectively. Two separate functional processes normally occur during the diastolic relaxation phase: The first is an energy-requiring process (lusitropy) that removes free calcium ions from the cytoplasm by pumping them back into the sarcoplasmic reticulum and across the cell membrane into the extracellular fluid. Removal of calcium ions inhibits cross-bridge formation and allows the thick and thin filaments of the sarcomere to passively slide apart. Ischemia, with subsequent ATP deficiency, interferes with the efficiency of calcium ion removal and can impair the active phase of diastolic relaxation.
The second process is passive stretch of the ventricular myocardium to accommodate filling. Passive compliance of the ventricle can be decreased by deposition of fibrin and collagen during scar formation or by hypertrophic thickening of the ventricular wall. Both active and passive processes may be impaired together and are difficult to distinguish clinically.
The hallmark of HF with preserved EF is that the patient exhibits clinical manifestations of HF, including pulmonary congestion, and edema formation, but has a normal or near-normal EF (usually defined as greater than 50%), indicating absence of significant systolic impair- ment. Because prognosis and treatment recommendations may differ, an echocardiogram to measure EF is recommended in all patients with HF. A comparison of the left ventricular pressure–volume loops in systolic and diastolic dysfunction is shown in Fig. 19.1. Systolic failure is characterized by higher-than-normal diastolic volume and low EF, whereas the pressure–volume loop in diastolic failure indicates poor compliance with a lower diastolic volume at a higher-than-normal pressure. When the EF is between 35% and 50%, the patient cannot be specifically assigned into the low EF or preserved EF categories.
HF is a significant cardiac disorder affecting about 5.1 million Americans. More than 670,000 new cases are diagnosed in the United States each year, with an incidence of 10 per 1000 population after age 65. HF is a common reason for hospitalization in patients older than 65 years. The increasing incidence and hospitalization rates of HF reflect aging of the U.S. population, as well as better treatment and an improved survival rate after myocardial infarction (MI).
HEART FAILURE Pathogenesis and Diagnosis A large number of cardiac disorders, including most of those discussed in Chapter 18, can lead to the development of HF. Coronary heart disease (CHD) and hypertension (HTN) are associated with the majority of HF cases. CHD contributes to HF progression through mechanisms that include endothelial dysfunction, ischemia, and infarction. CHD and HTN interact to increase the risk of HF. Less common causes of HF include dilated cardiomyopathy, congenital heart defects, valvular disorders, respiratory diseases, anemia, and hyperthyroidism. The diagnosis of HF is based on the presence of a constellation of signs and symptoms that are characteristic of the syndrome. However, different sets of criteria are in use, including the Framingham Criteria and Minnesota Heart Failure Criteria. Commonly used criteria for identifying HF include the presence of dyspnea, pulmonary rales, cardiomegaly, pulmonary edema, S3 heart sound, and tachycardia, although many other criteria may be applied. No single diagnostic test is available for HF. The diagnosis should be based on a thorough medical history and physical examination.
Chronic HF is classified in various ways. It may be categorized as right sided, left sided or biventricular according to the ventricles that are failing. HF also is classified by the ability of the heart to eject blood from the ventricles. Those with a low ejection fraction (EF) have sig- nificant systolic dysfunction, called HF with low EF (HFlEF). EF is calculated by dividing stroke volume by end-diastolic volume. A normal EF is 60% to 80%. Patients with systolic failure have characteristically low EFs (<35%). Patients with EF greater than 50% do not have significant systolic dysfunction and are categorized as HF with preserved EF (HFpEF). Patients diagnosed with HF who have an EF greater than 50% generally have HF symptoms because of poor diastolic relaxation. In general, patients with low EF but no congestive symptoms have a survival rate about the same as those with preserved EF who have congestive symp- toms. The highest mortality occurs in patients with both low EF and congestive symptoms. The overall mortality for HF is high, with about 50% of patients dying within 5 years of diagnosis.
Systolic Dysfunction With Low Ejection Fraction Patients with systolic dysfunction have reduced myocardial contractility evidenced by a low EF and a reduced dP/dt during ventricular systole. The dP/dt is a measure of inotropy—how quickly the ventricle can develop a forceful contraction. The nature of the impaired contractility is only partially understood; however, myocyte loss, mechanical derange- ments of myocardial cells, and dysregulation of neurohormones are believed to be critical elements.
Impaired contractility attributable to MI is a common cause of HF. MI, with cell death and loss of contractile elements, reduces the heart’s contractile force. The degree of pump failure is related to the amount of heart muscle lost. In patients with HF, myocardial cells are also subject to high rates of apoptosis or programmed cell death. Apoptosis can be triggered by excessive stimulation by certain neurohormones and by ischemia. Over time, the loss of myocardial cells contributes to reduced contractility. In severe systolic HF, the EF may fall below 15% or 20%. In general, the prognosis worsens as EF decreases.
KEY POINTS • Heart failure (HF) is the end stage of many cardiac disorders. It occurs when
the heart is unable to provide sufficient cardiac output to meet normal metabolic functions of the body.
• The risk factors for HF include myocardial ischemia from coronary artery disease, hypertension (HTN), and cardiomyopathies.
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 413
renin–angiotensin–aldosterone cascade, leading to salt and water retention by the kidney. Sympathetic activation is an early and immediate compensatory response to insufficient cardiac output.
Sympathetic activation is an effective means for increasing cardiac output in an acute process, such as volume depletion. However, in HF, sympathetic activation becomes a chronic process that is ultimately deleterious. A major problem with excessive sympathetic activation is that afterload on the left ventricle can be increased significantly. A high afterload increases cardiac workload and may decrease stroke volume. Therefore treatment of high blood pressure, if present, is important for improving cardiac function in patients with HF.
Drugs that block β1 receptors have been advocated in the management of HF to inhibit the cardiac effects of sympathetic activation. Many clinicians had been reluctant to use β-blockers in patients with HF because these drugs are negative inotropes and have the potential to reduce cardiac output. In HF, where cardiac output is already low, the use of a negative inotrope would seem to be contraindicated. However, several randomized clinical trials have reported an improved mortality rate in patients receiving certain β1-blockers, and they are now recom- mended as standard therapy in most HF guidelines. Long-term SNS stimulation of the heart may contribute to HF progression and remodel- ing of the cardiac tissue. Remodeling is a process of myocyte loss, hypertrophy of remaining cells, and interstitial fibrosis (Fig. 19.3). The remodeled tissue is less functional and may predispose to worsening failure and cardiac dysrhythmias.
Increased Preload Increased preload in the cardiac chambers is initially a consequence of reduced EF with a resultant increase in residual end-systolic volume. Subsequently, decreased cardiac output to the kidney reduces glomerular filtration, resulting in fluid conservation. In addition, the renin– angiotensin–aldosterone system (RAAS) is activated because of reduced blood flow to the kidney and SNS activation of the juxtaglomerular cells. Angiotensin II (AII) and aldosterone enhance sodium and water reabsorption by the kidney, contributing to an elevated blood volume. Increased preload is a compensatory mechanism that enhances the ability of the myocardium to contract forcefully. An enlarged chamber volume causes the myocardial fibers to lengthen during diastole, which results in greater fiber shortening during contraction (Frank–Starling mechanism). The diastolic length of the muscle fibers is thought to determine the number of effective cross-bridge cycles that can be
Compensatory Mechanisms, Remodeling, and Progression When the heart fails to provide adequate cardiac output to meet tissue demands, a number of compensatory mechanisms are triggered. In the short term, these mechanisms are helpful in restoring cardiac output toward normal levels, but in the long term, they may be detrimental to cardiac structure and function. Much of the current management of HF is aimed at attenuating the harmful consequences of these compensatory responses. Three main compensatory mechanisms are activated in HF: SNS activation, increased preload, and myocardial hypertrophy (Fig. 19.2).
Sympathetic Nervous System Activation Sympathetic activation of the heart is partly a result of baroreceptor reflex stimulation. The baroreceptors (pressoreceptors), located in the aorta and carotid arteries, detect a fall in pressure because of diminished stroke volume and transmit this information to the central nervous system (CNS). The CNS increases activity in the sympathetic nerves to the heart, resulting in increased heart rate and contractility. However, because of impaired contractile ability, the failing heart may have reduced responsiveness to sympathetic activation. Sympathetic activation also causes venoconstriction, which redistributes blood and increases cardiac preload. Sympathetic constriction of arterioles helps maintain blood pressure when cardiac output is reduced. Specialized cells in the kidney called juxtaglomerular cells also receive SNS stimulation when cardiac output falls. The juxtaglomerular cells release renin and initiate the
180
100500
A CB
90
0
180
12050 800
90
0
180
100500
90
0
P re
ss u re
( m
m H
g )
Normal Systolic dysfunction Diastolic dysfunction
Volume (ml) Volume (ml) Volume (ml)
Stroke volume
ESV EDV ESV EDV
ESV EDV
EF = 100–25 = 75%
100 EF = 120–80
= 33% 120
EF = 60–20 = 66%
60
FIG 19.1 Comparison of the left ventricular pressure–volume loop in a (A) normal heart, (B) systolic dysfunction, and (C) diastolic dysfunction. Note that end-diastolic pressure is higher than normal in both systolic and diastolic failure, but end-diastolic volume is lower in diastolic dysfunction. EDV, End-diastolic volume; EF, ejection fraction; ESV, end-systolic volume.
• Impaired contractility resulting in systolic failure is frequently associated with HF symptoms. The biochemical basis of impaired contractility involves loss of cardiac muscle cells, β1-receptor down-regulation, reduced adenosine triphosphate (ATP) production, and altered calcium ion regulation.
• In about half of HF patients, systolic function is preserved and diastolic dysfunction predominates. HF with preserved ejection fraction (EF) is par- ticularly likely to develop in the elderly, in women, and in those without a history of myocardial infarction (MI).
• Left ventricular pressure–volume loops characterize the differences in systolic and diastolic dysfunction. High diastolic volume and reduced EF indicate systolic failure, whereas diastolic failure is characterized by higher diastolic pressures at lower volumes.
414 UNIT V Cardiac Function
Heart failure
Preload
Cardiac output
Heart rate
Contractility Hypertrophy
Myocyte growthFluid retention
Brain
Kidney Heart
SNS activation
Baroreceptor response
RAAS activation Decreased GFR
Ventricular wall tension
FIG 19.2 Major compensatory mechanisms in heart failure that act to restore cardiac output. GFR, Glomerular filtration rate; RAAS, renin–angiotensin–aldosterone system; SNS, sympathetic nervous system.
NE
SNS RAAS
Stretch AII
�1
cAMP
Hypertrophic pathways
Apoptotic pathways
Cell death
Myocardial cell
↑ Size and function
↑ [Ca2�]
↑ Wall tension ↑ Preload/↑ afterload
IP3 DAG
FIG 19.3 Mechanisms of ventricular remodeling in heart failure. Activation of β1 receptors and AII receptors along with stretch of the cell membrane trigger signaling cascades. Under some conditions these triggers lead to effective hypertrophy and an increase in size and function, and in others they trigger apoptotic cell death. AII, Angiotensin II; cAMP, cyclic adenosine monophosphate; DAG, diacylglycerol; IP3, 1,4,5-inositol trisphosphate; NE, norepinephrine; RAAS, renin–angiotensin–aldosterone system; SNS, sympathetic nervous system.
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 415
accomplished during systole (see Chapter 17). Thus up to a point, an increase in the volume or preload of the heart will result in a greater force of contraction (Fig. 19.4). The cardiac function curve flattens out at a certain point, and minimal benefit is obtained despite increasing preload. Patients with systolic failure have a cardiac function curve that is flat and shifted to the right of normal. Thus they require a higher preload to achieve a given stroke volume. However, patients with HF often retain so much volume that their hearts are functioning on the flat part of the curve. These patients benefit from preload reduction, which will decrease systemic and pulmonary congestive symptoms and cardiac workload with little or no reduction in cardiac output. Diuretics are commonly used to achieve moderate preload reduction.
Myocardial Remodeling and Progression Hypertrophy of cardiac muscle cells is the third mechanism of compensa- tion and generally takes much longer to occur than preload enhancement or sympathetic activation. Hypertrophy appears to result, in part, from a chronic elevation of myocardial wall tension. Wall tension may be high as a result of increased diastolic blood volume (high preload) or as a consequence of high systolic pressures generated in the chamber to overcome high afterload. The relationship between myocardial wall tension and intrachamber pressure and diameter is described by the law of Laplace:
tension transmural pressure radius wall thickness= ×( )
When the ventricular chamber enlarges and pressures increase, more tension is created in the ventricular muscle wall (Fig. 19.5). The devel- opment of high systolic pressures in the ventricle may be necessary to overcome a high afterload, such as occurs with arterial HTN and aortic valve stenosis. The hypertrophy of contractile elements in the myocardium increases the heart’s pumping force and helps reduce the wall tension of the heart toward normal levels. In general, an increase in chamber diameter because of excessive preload is thought to contribute to eccentric hypertrophy in which the muscle fibers elongate. High afterload results in concentric hypertrophy in which the muscle fibers grow in diameter and thicken the ventricular wall (Fig. 19.6).
Neurohormones, which include NE and angiotensin (AII), also have hypertrophic effects on the heart. Circulating AII levels are higher than
Pressure (mm Hg) Preload
50
0 0 10
z z
z z
z z
20 30 40
CHF
S tr
o ke
v o lu
m e (
m l)
Optimal
Normal
Overlap
No benefit
FIG 19.4 Effect of increased preload on sarcomere length and stroke volume. Systolic failure results in a shift of the curve to the right and a dampening of maximal stroke volume. A greater preload is required to achieve a given stroke volume compared with the normal ventricle. CHF, Congestive heart failure.
Low PT, small r = low wall tension
High PT, large r = high wall tension
Law of Laplace: Tension = PT • r
Dilated heart
NormalA
B
wall thickness
r
PT r
PT
FIG 19.5 Mechanism of myocardial hypertrophy attributable to increased ventricular wall tension. According to the law of Laplace, an increase in chamber radius or pressure will increase wall tension. The hypertrophic response increases wall thickness and helps relieve wall tension. A, Heart with normal radius (r) and intraventricular pressure. B, Heart with enlarged chamber and high intraventricular pressure. PT, Transmural pressure.
normal in HF because of poor kidney perfusion, which triggers produc- tion of AII through the RAAS. In HF, AII is also produced locally in the heart. AII binds to the angiotensin type 1 (AT1) receptor on cardiac myocytes to activate genes in various growth pathways. Initially, hypertrophy may help the heart compensate for acute loss of myocardial tissue from MI or help maintain cardiac function during chronic HTN. But over time, the signals that promote hypertrophy are thought to trigger a type of ventricular remodeling that contributes to progression of HF. Pathologic remodeling includes loss of myocardial cells through apoptosis and production of fibrous changes in the heart that stiffen the ventricles and contribute to diastolic failure (Fig. 19.7). In addition to NE and AII, a number of other factors and immune cytokines have been implicated in cardiac remodeling (Box 19.1). Many of these factors are under investigation as possible targets for drug therapy.
Evidence for a role of AII in remodeling comes from drug studies in which AII production is inhibited or the actions of AII are blocked at the AT1 receptor. An important enzyme in the pathway of AII produc- tion is angiotensin-converting enzyme (ACE). Drugs called ACE inhibitors (ACEIs) have been developed to inhibit the activity of this enzyme and prevent formation of AII. Another drug class, angiotensin type 1 receptor blockers (ARBs), binds to this AII receptor and blocks the intracellular actions of AII. ARBs were developed as a more selective means of RAAS
416 UNIT V Cardiac Function
RV LV
EccentricA
B
RV LV
Concentric
FIG 19.6 Forms of ventricular hypertrophy. A, Eccentric, in which muscle fibers grow in length and the chamber diameter increases. B, Concentric, in which muscle fibers grow in diameter and the ventricular wall becomes thicker. LV, Left ventricle; RV, right ventricle.
Myocardial Injury
Ventricular remodeling
Progressive myocardial injury and worsening heart failure
Hypertrophy Fibrosis Myocyte loss
Abnormal energy
production
Ventricular dilation
Chronic activation of neurohormonal and biomechanical compensatory mechanisms
FIG 19.7 Mechanisms of cardiac remodeling that contribute to heart failure progression.
• Norepinephrine • Epinephrine • Renin activity • Angiotensin II • Aldosterone • Vasopressin • Neuropeptide Y • Vasoactive intestinal peptide • Prostaglandin • A and B natriuretic peptide • Endothelin • Beta endorphin • Calcitonin gene-related peptide • Growth hormone • Cortisol • Tumor necrosis factor (TNF) alpha • Neurokinin A • Substance P • Adrenomedullin • Other immune cytokines
BOX 19.1 Examples of Neurohormones and Cytokines That Are Dysregulated in Heart Failure
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 417
Clinical Manifestations The clinical presentation of HF differs depending on which ventricle (left, right, or both) is failing to pump blood adequately. Left ventricular failure is the most common presentation of HF. Because of circulatory dynamics, left ventricular failure often leads to right ventricular failure—a condition termed biventricular failure. The etiologic process, clinical manifestations, and management of isolated right ventricular failure differ substantially from those for left ventricular and biventricular failure. Recall that the right side of the heart receives blood from the systemic venous circulation and pumps blood into the pulmonary system, whereas the left side of the heart receives blood from the pulmonary circulation and delivers it to the systemic arterial system (Fig. 19.8). Insufficient cardiac pumping is manifested by poor cardiac output, called forward failure, and by congestion of blood behind the pumping chamber, called backward failure. The clinical manifestations of left and right ventricular failure differ as a result of the anatomic location of the “backward” or congestive processes, but the forward effects of low cardiac output are the same.
inhibition and to improve the safety and tolerability profile of ACEIs. Both ACEIs and ARBs have been shown to significantly reduce HF mortality, and both drug classes are used as standard therapy in HF. In general, ARBs are prescribed if a patient is intolerant of ACEIs. Drugs that block β1 receptors and antagonists of aldosterone have also been shown to improve mortality in HF (see “Treatment” section).
In summary, enhanced preload and cardiac hypertrophy may allow a heart to compensate for reduced ventricular function for an extended period. Unfortunately, these compensatory mechanisms, which serve to restore cardiac output to the tissues, also result in an increase in myocardial work and oxygen requirements and appear to cause pathologic remodeling. Progression and decompensation may occur when the primary disease plus the superimposed burdens of compensation and neurohormonal dysregulation overwhelm the heart’s ability to function. The focus of therapy for HF is to maintain a state of compensation by minimizing cardiac work while optimizing cardiac output and preventing or delaying ventricular remodeling.
KEY POINTS • Compensatory mechanisms are activated in heart failure (HF) in an attempt
to improve cardiac output. Unfortunately, these responses also increase myocardial workload and may perpetuate the HF. Treatment is aimed at attenuating the harmful effects of the compensatory responses and neuro- hormonal dysregulation.
• Sympathetic activation is an early response to reduced cardiac output. Sympathetic nervous system (SNS) activation increases heart rate, contractil- ity, arterial vasoconstriction, and renin release. The failing heart generally has reduced responsiveness to SNS neurotransmitters because of β1-receptor down-regulation.
• Decreased cardiac output reduces kidney perfusion and leads to activation of the renin–angiotensin–aldosterone system (RAAS) and volume retention. Extra blood volume increases cardiac preload. Higher preload results in more forceful ejection of blood from the heart (Frank–Starling law) and improves cardiac output.
• Cardiac hypertrophy is stimulated by elevated myocardial wall tension and the growth-promoting actions of neurohormones, such as NE and AII. Hypertrophy adds contractile filaments and improves contractile force.
• The mechanisms that enable the heart to compensate for reduced stroke volume are detrimental in the long term. Excessive neurohormones, volume overload, and high wall tension contribute to abnormal ventricular remodeling. Gradually, the ventricle loses myocytes and accumulates fibrotic tissue. The remaining myocytes are usually hypertrophied and less efficient. These processes lead to progression of HF over time.
The forward effects of HF are due to insufficient cardiac output with diminished delivery of oxygen and nutrients to peripheral tissues and organs. Inadequate perfusion of the brain may lead to restlessness, mental fatigue, confusion, anxiety, and impaired memory. Generalized fatigue, activity intolerance, and lethargy may be present.
Reduced perfusion of the kidney results in a decline in urine output (oliguria) with subsequent fluid retention. Activation of the RAAS contributes to conservation of sodium and water by the kidney and may also cause blood vessel constriction. Constriction of blood vessels serves to maintain blood pressure and redistribute reduced cardiac output to vital organs. However, this vasoconstriction also increases afterload, so the damaged left ventricle must generate more force to pump the same volume of blood. Depending on how much the afterload increases, the damaged left ventricle may not be able to pump sufficient quantities of blood into the circulation. If renal blood flow becomes severely limited, the patient with left ventricular failure may develop kidney failure. Forward failure also results in activation of the SNS because of the baroreceptor reflex. Sympathetic activation contributes to blood vessel constriction and helps maintain blood pressure in the face of reduced cardiac output; however, as with AII, SNS activation increases left ventricular afterload. SNS activation results in a compensa- tory increase in heart rate that may augment cardiac output to some extent, but also raises myocardial ATP consumption.
Left-Sided Heart Failure Left-sided HF is most often associated with left ventricular infarction and systemic HTN. The backward effects of left-sided HF may produce dramatic clinical symptoms attributable to pulmonary dysfunction (Fig. 19.9). Ineffective pumping of the left ventricle results in an accumulation of blood within the pulmonary circulation. As hydrostatic pressure builds within the pulmonary veins and capillaries, fluid is forced from the capillaries into interstitial and alveolar spaces, causing edema. Pulmonary congestion and edema are associated with a number of clinical findings (Fig. 19.10). Dyspnea, or breathlessness, occurs early in the progression of left-sided HF and may be considered the cardinal symptom. Difficulty breathing may be exacerbated by activity (dyspnea on exertion), lying down (orthopnea and paroxysmal nocturnal dyspnea), and blood volume expansion from excessive salt or fluid intake. Orthopnea and paroxysmal nocturnal dyspnea are due in part to a redistribution of blood volume from the periphery to the heart when the individual lies down. The failing left ventricle is unable to effectively pump extra volume, and pulmonary congestion is worsened. The severity of orthopnea may be quantified by the degree of head elevation (e.g., number of pillows) used to relieve dyspnea. Paroxysmal nocturnal dyspnea refers to intermittent attacks of severe dyspnea during the night and is a most distressing form of orthopnea. The individual experiences a feeling of suffocation and panic at not being able to overcome the dyspnea. Sitting or standing helps relieve the dyspnea because blood pools in the extremities, reducing pulmonary hydrostatic pressure and congestion.
Clinical signs of pulmonary congestion include cough, respiratory crackles (rales), hypoxemia, and high left atrial pressure (LAP). Cough results from bronchial irritation associated with congestion. In severe cases, sputum may be blood tinged, from breakage of fragile capillaries, and frothy, from fluid buildup in the alveoli. The severity of pulmonary edema can be estimated from the location of crackles within the lung fields. Crackles are abnormal sounds caused by the movement of air through partially fluid-filled alveoli. Edema fluid collects in dependent lung fields because of gravity and progressively moves up the lung as more edema fluid accumulates. For example, in mild pulmonary edema, crackles might be heard with a stethoscope only at the base of the upright lung, but with increasing severity they become apparent in the
418 UNIT V Cardiac Function
Acute cardiogenic pulmonary edema is a life-threatening condition associated with left ventricular failure that severely impairs gas exchange, producing dramatic signs and symptoms. The patient exhibits severe dyspnea and anxiety, and a bolt-upright posture is usually assumed in order to maximize respiratory effort. Bubbly crackles may be heard all the way up the lung from the bases to the apices, and pink frothy sputum may be expectorated or well up from the trachea into the nose and mouth. Anxiety and hypoxemia contribute to tachycardia, which may worsen the pumping efficiency of the failing heart. Cyanosis and symptoms of tissue hypoxia are usually apparent. The immediate treatment is aimed at reducing the fluid volume in the lungs and sup- porting oxygenation.
Right-Sided Heart Failure Because the right and left ventricles function in series, left ventricular failure eventually increases the workload on the right ventricle. Con- sequently, the right ventricle may fail. The etiology of right ventricular failure must include all the causes of left ventricular failure. Isolated right ventricular failure is rare and is usually a consequence of right ventricular infarction or pulmonary disease. Pulmonary disorders that result in increased pulmonary vascular resistance impose a high afterload
lower third to half of the lung. Fluid in the alveoli and interstitial spaces also interferes with alveolar–capillary gas exchange and results in some degree of hypoxemia. Hypoxemia may be detected by arterial blood gas analysis or pulse oximetry and may be apparent clinically as cyanosis. Cyanosis refers to a blue coloration of the skin typically seen around the mouth (circumoral cyanosis) and results from the presence of significant amounts of desaturated hemoglobin in the blood. Cyanosis is a late sign and is clinically evident only when a large amount (about 5 g/dL) of hemoglobin is deoxygenated (less than or equal to 75% saturated).
Elevated LAP is a common finding in left-sided HF because of excessive blood volume and the compensatory responses of atrial dilation and hypertrophy. Atrial pressure can be estimated by inserting a balloon- tipped catheter (Swan–Ganz) into the pulmonary artery. If LAP acutely increases to 25 mm Hg (normal is 4 to 12 mm Hg), increased capillary filtration leads to pulmonary edema. Patients with chronic elevations in LAP associated with chronic HF are more resistant to developing acute pulmonary edema and may not experience symptoms until pressures approach 40 mm Hg. On x-ray, findings of fluid overload include an enlarged heart and engorged pulmonary capillaries and lymphatic vessels.
Right heart
Left heart
Forward effects
Liver Gastrointestinal tract
Peripheral capillaries
Pulmonary capillaries
Head
Forward effects
Backward effects
Backward effects
FIG 19.8 Systemic and pulmonary circulations viewed as separate but interdependent systems.
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 419
on the right ventricle. The resultant right ventricular hypertrophy, called cor pulmonale, may progress to right ventricular failure as the lung disease worsens.
Any lung disorder that decreases the total cross-sectional area of the lung vasculature can increase pulmonary vascular resistance and produce right ventricular strain. Hypoxemia, for example, causes the pulmonary arterioles to constrict, which increases pulmonary resistance. Constriction or blockage of the vascular bed, such as occurs with pulmonary HTN or pulmonary embolus, similarly reduces the cross- sectional area of the pulmonary vasculature and leads to increased pulmonary resistance. If the increase in pulmonary resistance and right ventricular workload occurs gradually, the right ventricle can compensate by increasing preload and hypertrophy. However, the thin musculature of the right ventricle has limited ability to adjust to acute changes in workload, as would occur with a right ventricular infarction or large pulmonary embolus.
As with left-sided HF, congestion of blood occurs behind the failing right ventricle because of inefficiency of the pump. The backward effects of right-sided HF are due to congestion in the systemic venous system (Fig. 19.11). Systemic venous congestion results in impaired function of the liver, portal system, spleen, kidneys, peripheral subcutaneous tissues, and brain (Fig. 19.12).
The liver is usually somewhat increased in size and weight, but individual hepatocytes may show signs of atrophy and necrosis attribut- able to chronic passive congestion. Impedance to blood flow through the liver may cause hydrostatic pressure to build in the portal system, leading to edema formation in the peritoneal cavity (ascites). Increased pressure in the portal system is reflected back to the spleen and gastrointestinal tract. The spleen is generally enlarged (congestive splenomegaly), and gastrointestinal symptoms such as anorexia and abdominal discomfort may be present.
Increased systemic venous pressure causes congestion of the kidneys, which contributes to the decreased glomerular filtration and fluid retention. Fluid retention may be perpetuated by the congested liver, which is unable to metabolize plasma aldosterone normally. Excess
Left ventricular failure
Ejection fraction
Fluid
retention
Backward effects
Forward effects
Left ventricular preload
Left atrial pressure
Pulmonary pressure
Pulmonary congestion
Right ventricular afterload
Right ventricular hypertrophy
RAAS activation
Decreased tissue
perfusion
Cardiac output
FIG 19.9 Pathophysiologic process of isolated left-sided heart failure, showing backward and forward effects. RAAS, Renin–angiotensin– aldosterone system.
BACKWARD EFFECTS
Dyspnea on exertion Orthopnea Cough Paroxysmal nocturnal dyspnea Cyanosis Basilar crackles
FORWARD EFFECTS
Fatigue Oliguria Heart rate Faint pulses Restlessness Confusion Anxiety
FIG 19.10 Clinical manifestations of isolated left-sided heart failure.
Right ventricular failure
Ejection fraction
Backward effects
Forward effects
Right ventricular preload
Right atrial pressure
Systemic congestion
RAAS activation
Decreased tissue
perfusion
Output to left ventricle
Left ventricular cardiac output
Fluid
retention
FIG 19.11 Pathophysiologic process of isolated right-sided heart failure, showing backward and forward effects. RAAS, Renin–angiotensin– aldosterone system.
420 UNIT V Cardiac Function
Class and Stage of Heart Failure A variety of clinical criteria have been used to aid in the diagnosis of HF, but to date, no diagnostic test has been universally accepted. A commonly suggested tool for detecting HF in previously undiagnosed individuals is called FACES of HF: fatigue, activity limitation, congestion, edema, shortness of breath. These are classic findings in HF and, if present, indicate a need for further diagnostic assessment. Traditionally, a patient with suspected HF would be diagnosed by x-ray and echo- cardiography. Echocardiography is the gold standard for evaluation of HF and is able to measure chamber size, volume, and dynamics during diastole and systole, as well as determine EF. A blood test for B-type natriuretic peptide (BNP) may also be used to help identify patients with HF. BNP is synthesized by left ventricular myocytes under conditions of increased left ventricular wall stress. A significant correlation between the amount of plasma BNP or the BNP precursor, N-terminal pro-BNP (NT-proBNP), and the severity of HF has been documented.
The severity of symptoms can be used to assign an HF class (New York Heart Association classes [NYHA] I to IV). Another classification scheme has been proposed by the American Heart Association (AHA) to allow inclusion of patients at high risk for HF but whose disease is not yet symptomatic. By including this pre-HF group, efforts aimed at prevention may be instituted in more patients. Class and stage are used to determine prognosis, therapy, and monitoring in HF. These two classification schemes are compared in Table 19.1.
fluid volume and venous congestion caused by right-sided HF result in subcutaneous edema. Edema is usually particularly apparent in the lower extremities or sacral area if the patient is supine.
Drainage of venous blood from the head and neck by way of the superior vena cava is also impeded by right-sided HF. The jugular veins may be abnormally distended, and mental functioning may be impaired. The hepatojugular reflux test can be done to assess the severity of right-sided HF. The liver is manually compressed, causing a sudden increase in venous blood returning to the right heart, while jugular neck veins are observed for sudden distention. In the absence of right- sided HF, the sudden increase in venous return would enter the heart unimpeded, and no neck vein distention would be apparent.
Biventricular Heart Failure In many cases, HF is not isolated to one side of the heart. Biventricular failure is most often a result of primary left ventricular failure that has progressed to right-sided HF. With biventricular failure, cardiac output is reduced and pulmonary congestion exists as a result of left-sided HF, as well as systemic venous congestion attributable to right-sided HF.
BACKWARD EFFECTS
• Hepatomegaly • Ascites • Splenomegaly • Anorexia • Subcutaneous edema • Jugular vein distention
FORWARD EFFECTS
• Fatigue • Oliguria • ↑ Heart rate • Faint pulses • Restlessness • Confusion • Anxiety
FIG 19.12 Clinical manifestations of isolated right-sided heart failure.
TABLE 19.1 Comparison of ACC/AHA Stages of Heart Failure and New York Heart Association Classes
ACC/AHA Stage Description Clinical Clues NYHA Class
A Patients at high risk of developing HF Coronary artery disease, hypertension, diabetes, dyslipidemia, family history of cardiomyopathy
Not applicable
B Patients who have structural heart disease but have never manifested signs or symptoms of HF
Left ventricular hypertrophy (by ECG or echo), valvular disease, past myocardial infarction
I
C Patients who have current or previous symptoms of HF
Dyspnea, fatigue, exercise intolerance, prior HF hospitalization
II–III
D Patients with advanced structural heart disease and marked symptoms of HF at rest
End stage, awaiting transplant, receiving palliative care IV
Adapted from Hunt SA et al: American College of Cardiology; American Heart Association: 2009 focused update incorporated into the ACC/AHA 2005 guidelines for the diagnosis and management of heart failure in adults: summary article, J Am Coll Cardiol 2009;53(15):e3–e62.
KEY POINTS • The clinical manifestations of heart failure (HF) are characterized by the
effects of forward failure (reduced cardiac output) and backward failure (congestion behind the pumping chamber).
• Insufficient cardiac output may be manifested as confusion, fatigue, tachycardia, reduced urine output, and poor peripheral circulation.
• Left-sided HF is characterized by pulmonary congestion, which may manifest with dyspnea, orthopnea, crackles, cough, pulmonary edema, and hypoxemia.
• Right-sided HF is characterized by systemic venous congestion, which may manifest with jugular vein distention, hepatomegaly, splenomegaly, and peripheral edema.
• Left-sided HF frequently leads to development of right-sided HF. With biventricular failure, congestive signs and symptoms are found in both the pulmonary and the systemic venous circulation.
• HF is diagnosed by signs and symptoms, x-ray findings, and echocardiographic findings. A plasma BNP or NT-proBNP level may be used to diagnose HF in patients with shortness of breath.
• The severity of signs and symptoms is used to assign a HF class or stage.
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 421
CARDIAC DYSRHYTHMIAS Dysrhythmia or arrhythmia refers to a cardiac rhythm abnormality affecting impulse generation or conduction. A normal heartbeat is initiated at an appropriate rate in the sinoatrial (SA) node and follows a consistent pathway of depolarization through the atria, atrioventricular (AV) node, His–Purkinje system, and, finally, the ventricular myocardium (see Chapter 17). Electrical depolarization of the heart is normally followed by atrial and then ventricular muscular contraction. A number of factors may lead to disturbances in heartbeat, including hypoxia, electrolyte imbalance, trauma, inflammation, and drugs. Dysrhythmias are significant for two reasons: (1) they indicate an underlying patho- physiologic disorder and (2) they can impair normal cardiac output. Dysrhythmias can be categorized into three major types: abnormal rates of sinus rhythm, abnormal sites (ectopic) of impulse initiation, or disturbances in conduction pathways.
Dysrhythmia Mechanisms Disorders of impulse generation result from abnormalities in the rate of impulse generation from a normal pacemaker or from impulse generation from an abnormal (ectopic) site. Abnormal automaticity and triggered activity are the two mechanisms most commonly cited for dysrhythmias of impulse generation. Abnormalities of impulse conduction include conduction blocks and reentry phenomena.
Automaticity Failure to repolarize to normal resting membrane potential or abnormal plasma membrane leakiness to sodium or calcium ions at rest (phase 4) results in a shift in the resting membrane potential toward threshold, generating an action potential. Ischemia and subsequent ATP deficiency reduce the cell’s ability to control electrolyte flux across the cell mem- brane. Electrolyte imbalance, particularly hypokalemia, contributes to abnormal automaticity. Alterations in spontaneous calcium ion flux from the sarcoplasmic reticulum and the subsequent triggering of calcium influx across the plasma membrane may also contribute to abnormal automaticity (see Chapter 17).
Triggered Activity Triggered activity occurs when an impulse is generated during or just after repolarization because of a depolarizing oscillation of the membrane potential (Fig. 19.13). Early afterdepolarizations occur during the relative refractory period of phase 3. Some of the voltage-gated calcium channels
Treatment Therapy for HF is aimed at improving cardiac output while minimizing congestive symptoms and cardiac workload. These objectives are obtained by manipulating preload, afterload, and contractility. When possible, specific treatment is undertaken to correct the underlying cause of the HF. Use of medications shown to improve mortality are standards of care for all HF patients who are able to tolerate them.
Despite the large number of pharmacologic agents being used in the management of HF, only a few have been associated with significant improvement in mortality risk, particularly ACEIs, ARBs, aldosterone antagonists, and certain β1-blockers.
A better understanding of the underlying molecular mechanisms of HF is needed to improve pharmacologic management, particularly for patients with preserved EF who have been underrepresented in studies. Many patients with HF have signs and symptoms of elevated preload attributable to an expanded intravascular volume and a reduced EF. According to the Frank–Starling law, an elevated preload is desirable to enhance systolic shortening and improve cardiac output. Unfortunately, high preload exacerbates congestive symptoms and adds to the workload of an already damaged heart. Thus the aim of therapy is to optimize preload so that congestive symptoms are minimized but cardiac output is not compromised. The right ventricle is particularly sensitive to reductions in preload, and care must be taken to avoid a significant drop in right ventricular output when intravascular volume is decreased. Drugs, such as diuretics, may be administered to reduce intravascular volume. Diuretics promote the excretion of fluid by increasing renal blood flow, blocking sodium and chloride reabsorption, or both. Patients may also be instructed to modify salt and fluid intake.
With the exception of digitalis, positive inotropic agents are avoided in chronic HF because they are associated with higher mortality. However, when improving cardiac output is necessary to avoid shock, positive inotropic agents may be used (see Chapter 20). Positive inotropes work by increasing the availability of intracellular calcium ions during systole. Drugs that mimic SNS effects, such as NE, isoproterenol, dobutamine, and dopamine, may be used to improve cardiac output, but have a potential for dramatically increasing myocardial oxygen consumption.
Digitalis or a related cardiac glycoside may be used to manage HF symptoms. Cardiac glycosides directly inhibit the sodium–potassium pump present in the cell membrane of all cells. This results in an increase in intracellular sodium accumulation and a decrease in the gradient for sodium entry into the cell. A diminished sodium gradient slows the sodium-dependent calcium pump that normally removes intracellular calcium. This allows more calcium to enter the sarcoplasmic reticulum, thus strengthening myocardial contraction. Digitalis also slows the heart rate through parasympathetic system activation and promotes sodium and water excretion through improved cardiac output to the kidney. Depletion of serum potassium (hypokalemia) may potentiate digitalis toxicity. Unlike the other positive inotropic agents, digitalis does not appear to increase mortality. Digitalis also does not improve mortality and is not recommended as routine therapy.
Patients with enlarged hearts and conduction delays may benefit from pacemakers, which help synchronize ventricular contraction. A wide QRS complex is the usual indication for resynchronization therapy in the HF patient. Pacing electrodes are placed in the atrium and both ventricles to allow coordinated depolarization of the heart muscle. Many patients experience significant improvement in congestive symptoms and activity tolerance with resynchronization.
In addition to the use of ACEIs, ARBs, β1-blockers, and aldoste- rone antagonists for their mortality benefits, treatment goals include controlling etiologic factors, such as HTN, ischemia, and rhythm abnormalities. Measures to assess and improve symptoms and quality of life are paramount.
KEY POINTS • Important aims of treatment are to improve cardiac output, minimize conges-
tive symptoms, and prevent progression. • ACEIs, ARBs, aldosterone antagonists, and some β1-blocking agents have
been shown to improve mortality risk in patients with heart failure (HF). • Diuretics alleviate congestive symptoms and reduce cardiac workload by
reducing preload. • Myocardial contractility may be improved acutely by positive inotropic drugs,
such as β-agonists; however, long-term use is associated with higher mortality. An exception is digitalis, which has positive inotropic effects, does not appear to alter mortality, and may improve symptoms in some patients.
• Resynchronization of ventricular depolarization with pacemakers may improve contraction in patients with wide QRS complexes.
• Efforts to improve etiologic factors, such as atherosclerosis, HTN, and atrial dysrhythmias, are recommended.
• Numerous neurohormonal and cytokine factors are dysregulated in HF and continue to be investigated as potential targets of drug therapy.
422 UNIT V Cardiac Function
reticulum after repolarization. An increase in intracellular free Ca2+ concentration during phase 4 can trigger Ca2+ influx across the plasma membrane and release more Ca2+ from the sarcoplasmic reticulum, resulting in an action potential. A number of genetic abnormalities in intracellular calcium handling have been associated with triggered activity mechanisms.
Reentry Reentry is thought to be the culprit in most tachydysrhythmias, including atrial and ventricular tachycardia, flutter, and fibrillation. Reentry is a complex process in which a cardiac impulse continues to depolarize in a part of the heart after the main impulse has finished its path and the majority of the fibers have repolarized. If the errant impulse proceeds slowly enough, it may eventually meet with nonrefractory cells and initiate an extra, ectopic cardiac depolarization. Reentry processes are produced when electrical conduction in a portion of the heart is abnormally slowed (functional) or has an unusually long pathway (anatomic). A number of theories have been proposed to describe the generation and conduction of reentry depolarizations, including specific subsets of cells that continue to produce waves of activation or more general involvement of the myocardial tissue in propagating waves of conduction. The rate of conduction is controlled in part by the density and structure of gap junctions that connect the cardiac cells together. Recall that a wave of depolarization moves from cell to cell through these gap junctions; however, different regions of the heart may have different gap junction properties that predispose to different conduction rates. Mutations in the genes that code for gap junction proteins (connexins) may increase the predisposition to dysrhythmias (Fig. 19.14). Reentry depolarizations may occur as complex spiral waves in which the activating wavefront follows, or “chases,” its repolarizing tail (Fig. 19.15). If the wavefront encounters only refractory tissue, the reentrant process suddenly terminates. Myocardial ischemia, excessive catecholamines, and electrolyte abnormalities predispose to reentry mechanisms.
are thought to reopen during phase 3 and trigger another impulse (see Fig. 19.13A). Delayed or late afterdepolarizations occur after the repolarization phase is complete and are seen as oscillating depolarizing waves on the electrocardiogram (ECG) (see Fig. 19.13B). If the delayed afterdepolarization reaches threshold, it will trigger an action potential. Digitalis toxicity and excessive catecholamine stimulation may contribute to this mechanism. Delayed afterdepolarizations are thought to occur because calcium ions are spontaneously released from the sarcoplasmic
Early afterdepolarization
ECGA B ECG
Triggered activity
Triggered activity
Late afterdepolarization
FIG 19.13 Mechanisms of triggered activity. A, Early afterdepolarization in ventricular cell showing triggered action potential during the repolarization phase. The electrocardiogram (ECG) shows an R wave occurring on top of the T wave (R-on-T phenomenon). B, Late or delayed afterdepolarization occurs after the repolarization phase has been completed and results in an early beat after the T wave. If the late afterdepolarization does not reach threshold, no triggered beat will occur.
42A
35A
52A
87A
FIG 19.14 Connexons form the gap junction pores in the intercalated disks that connect cardiac myocytes together and allow them to function as a syncytium. Genetic abnormalities in the structure of connexons may contribute to arrhythmia formation by altering the rate of conduction through them. (From Saffitz JE: Cell-to-cell communication in the heart Cardia/Rev 3.86, 1995.)
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 423
Characteristics of normal sinus rhythm are listed in Table 19.2. The rhythm shown in Fig. 19.17 is regular; there is a P wave for every QRS complex; the PR, QRS, and QT intervals are of normal duration; and there are no “funny-looking” beats.
There are several methods for determining heart rate using the rhythm strip. The easiest but least accurate method is to count the number of QRS complexes within 6 seconds and multiply by 10. ECG
Dysrhythmia Analysis ECG recording paper is specifically designed to allow easy measurement of waveform amplitude and duration (Fig. 19.16). Each small box on the ECG paper represents an amplitude of 0.1 mV and a duration of 0.04 second (paper speed at 25 mm/sec). Larger boxes are also marked on the paper and correspond to 0.5 mV in amplitude (five small boxes) and 0.2 second in duration (five small boxes). These markings allow measurement of waveform amplitude, duration, and heart rate. Rhythm strips presented in this chapter are from a single lead only (usually lead II), but it should be emphasized that thorough ECG interpretation often requires several leads to provide different views of electrical conduction through the heart. (Lead placement is discussed in Chapter 17.)
Normal Sinus Rhythm Before one proceeds to the interpretation of dysrhythmias, the features of normal sinus rhythm must be understood. Normal sinus rhythm is generally defined as an impulse rate between 60 and 100 per minute that begins in the sinus node and follows the normal conduction pathway.
Blue =
Red =
reentry circuit initial depolarization
Area of block
A B
Key:
FIG 19.15 Mechanism of reentry. A, A wave of depolarization that travels slowly or by an abnormal pathway may encounter myocardium that has had time to recover and can restimulate it. B, This may result in an extra beat, or the depolarization may continuously “chase its tail” in a circuit, causing defibrillation. The circuit can be relatively fixed or can wander into various “wavelets.”
A m
p lit
u d e (
vo lta
g e )
Duration (time)
5 mm = 0.20 s
5 m
m =
0 .5
m V
1 m
m =
0 .1
m V
1 mm = 0.04 s
FIG 19.16 Electrocardiographic strip showing the markings for measuring amplitude and duration of waveforms, using a standard recording speed of 25 mm/sec.
TABLE 19.2 Electrocardiographic Characteristics of Normal Sinus Rhythm
Characteristic Findings
Rhythm Regular, PP intervals and RR intervals may vary as much as 3 mm and still be considered regular
Rate 60–100 beats/min P waves One P wave preceding each QRS PR interval 0.12–0.20 sec, constant QRS duration 0.04–0.10 sec, constant QT interval 0.40 sec (varies with rate)
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Sinus Bradycardia Traditionally a heart rate of less than 60 beats per minute is called bradycardia; however, lower rates are commonly encountered in physically trained individuals. Sinus bradycardia results from slowed impulse genera- tion by the sinus node in response to increased parasympathetic activity, sleep, drugs, increased stroke volume, or acute HTN (baroreceptor reflex). Important features of sinus bradycardia are shown in Fig. 19.19. Sinus bradycardia may be a normal finding in well-conditioned individuals who have large resting stroke volumes. Abnormal parasympathetic activa- tion can result from pain (vasovagal response), carotid sinus massage, endotracheal suctioning, and the Valsalva maneuver (bearing down). Slow heart rates may be well tolerated by some individuals and not require treatment. If the slow heart rate precipitates low cardiac output, it is usually treated with sympathomimetic or parasympatholytic drugs.
Sinus Arrhythmia A degree of variability in the heart rate, or sinus arrhythmia, is a normal finding associated with fluctuations in autonomic influences and respiratory dynamics. Sinus arrhythmia can be particularly pronounced in children. Sinus arrhythmia must be differentiated from a sinus node irregularity called sick sinus syndrome, in which alternating periods of sinus bradycardia and tachycardia occur (Fig. 19.20). Sick sinus syndrome may necessitate implantation of a permanent pacemaker. Sinus arrhyth- mia is a normal finding and thus requires no treatment.
Sinus Arrest The absence of impulse initiation in the heart results in electrical asystole. It is characterized by a flat ECG lacking recognizable waveforms (Fig. 19.21). Electrical asystole results in mechanical asystole and zero cardiac output. An escape rhythm from a slower pacemaker will generally begin to fire after several seconds of sinus arrest. Sinus arrest may result from MI, electrical shock, electrolyte disturbances, acidosis, and extreme parasympathetic activity. Prolonged complete electrical asystole is unlikely, and fine ventricular fibrillation may be the underlying rhythm. Sinus arrest may be treatable with a cardiac pacemaker.
paper has 3-second marks along the top that can be used to determine a 6-second interval. A more accurate method for determining heart rate is to count the number of small boxes between complexes. The number of boxes is divided by 1500 to determine heart rate because there are 1500 small boxes per minute (1500 × 0.04 second = 60 seconds). Neither of these methods is accurate with irregular rhythms, so heart rate must be calculated for a longer interval, usually 1 minute. With this understanding of rate calculation and methods to measure the duration and amplitude of waveforms, one can analyze dysrhythmias.
FIG 19.17 Normal sinus rhythm (rate, 64/min).
KEY POINTS • Dysrhythmias are initiated by three types of depolarizing mechanisms:
abnormal automaticity, triggered activity from afterdepolarizations, and reentrant circuits.
• Measurement of electrocardiogram (ECG) waveform amplitude, duration, and frequency is necessary to analyze cardiac rhythms. ECG paper is marked in small boxes representing 0.1 mV of amplitude and 0.04 second of duration.
• Normal sinus rhythm is characterized by regular PP and RR intervals, a rate of 60 to 100 beats/min, and normal PR (0.12 to 0.20 second) and QRS (0.04 to 0.10 second) intervals.
FIG 19.18 Sinus tachycardia (rate, 150/min).
FIG 19.19 Sinus bradycardia (rate, 35/min).
KEY POINTS • Sinus tachycardia (more than 100 beats/min) usually occurs from sympathetic
activation of the heart. Sympathetic nervous system (SNS) activation may be compensatory (e.g., occurring in the setting of low blood pressure, low cardiac output, or hypoxemia) or may be due to pain and anxiety.
• Sinus bradycardia (less than 60 beats/min) usually occurs in response to parasympathetic activity. Bradycardia is treated if the slow heart rate precipitates inadequate cardiac output.
• Sinus arrhythmia is usually normal and more pronounced in young persons than in older adults.
• Sinus arrest may lead to prolonged intervals of electrical asystole and zero stroke volume until another pacemaker begins to fire. An artificial pacemaker may be required.
Abnormal Rates of Sinus Rhythm Sinus Tachycardia Sinus tachycardia is an abnormally fast heart rate of more than 100 beats per minute (Fig. 19.18). A number of factors, including sympathetic activation, decreased parasympathetic activity, fever, hyperthyroidism, pain, increased metabolism, low blood pressure, and hypoxia, can lead to sinus tachycardia, making it a common dysrhythmia. Sinus tachycardia often is a compensatory response to increased demand for cardiac output or reduced stroke volume. Treatment is aimed at correcting the underlying cause. In some instances, however, the rate can become so high that ventricular filling is impaired and cardiac output is compromised. The heart rate at which this occurs will vary depending on age and cardiac function. Sympatholytic agents or calcium channel–blocking agents may then be indicated.
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 425
Atrial Dysrhythmias Premature atrial complexes and tachycardia. Premature atrial
complexes (PACs) originate in the atria but not at the SA node. The PAC occurs earlier than normal, is preceded by a P wave, and has a normal QRS configuration (Fig. 19.24). P waves preceding the PAC usually have a different shape (morphology) than the sinus beats. Sometimes the PAC is not conducted through the AV node to the ventricle and is not followed by a QRS complex (nonconducted P wave). Isolated or rare PACs are not clinically significant. However, frequent PACs may indicate an underlying pathophysiologic process and may be precursors to more serious dysrhythmias. Paroxysmal focal atrial tachycardia is a
Abnormal Site of Impulse Initiation Initiation of a cardiac impulse at a site other than the SA node occurs primarily for two reasons. First, SA node failure may allow a slower pacemaker to take over. Takeover by a slower pacemaker is called an escape rhythm. Second, enhanced excitability, triggered activity, or reentrant circuits may cause premature depolarization and override the SA node.
Escape Rhythms Escape beats can originate in the AV nodal region or in the ventricular Purkinje fibers. A junctional escape rhythm originates in the AV node, has a rate of 40 to 60 beats per minute, and has a normal QRS configura- tion (Fig. 19.22). A ventricular escape rhythm originates in the Purkinje fibers, has a rate of 15 to 40 beats per minute, and is characterized by an abnormally wide QRS complex on the ECG (Fig. 19.23). An important clue to identifying escape rhythms is the absence of normal P waves and PR intervals. After the impulse is generated in the Purkinje or nodal cell, it can be conducted backward to the atria (retrograde P wave). Thus a P wave, if present, may be inverted and located before, during, or after the QRS complex. Escape rhythms are usually poorly tolerated because they are slow and associated with decreased cardiac output. Failure of the sinus node can be managed with a pacemaker.
A
B FIG 19.20 A, Sinus arrhythmia is a normal finding that may be particularly pronounced in children. B, Sick sinus syndrome. The strip shows alternating periods of tachycardia and bradycardia.
FIG 19.21 Electrical asystole. FIG 19.22 Junctional escape rhythm (rate, 59/min).
FIG 19.23 Ventricular escape rhythm (rate, 33/min).
426 UNIT V Cardiac Function
majority of atrial depolarizations are blocked at the AV node, with few reaching the ventricles and initiating ventricular contraction. Atrial fibrillation causes the atria to quiver rather than to contract forcefully. This allows blood to become stagnant in the atria and may lead to formation of thrombi. Atrial fibrillation may occur intermittently or be sustained in the long term. Patients with chronic atrial fibrillation often are treated with anticoagulant medications to prevent atrial clot formation. Atrial fibrillation is a significant risk factor for cerebrovascular stroke. Patients with HF may experience more symptoms when they are in atrial fibrillation because the usual “atrial kick” that normally adds 15% to 20% more blood to the ventricle before systole is lost and therefore cardiac output may be reduced. Cardioversion with an electrical shock to the chest is commonly used to manage atrial fibrillation. Numerous antidysrhythmic agents can be used to convert atrial fibril- lation to sinus rhythm or control the ventricular response rate, including calcium channel blockers, β-blockers, digitalis, and amiodarone.
Junctional Dysrhythmias Premature junctional complexes can be initiated in two junctional zones: in the area just proximal to the AV node, where atrial fibers enter, or in the area just distal to the AV node, where nodal fibers enter the bundle of His. The impulse spreads upward into the atrium, causing a P wave, and downward into the ventricle, causing a normally configured QRS complex. The P wave may precede, follow, or be buried in the QRS complex. Premature junctional beats have the same clinical sig- nificance as PACs and are generally well tolerated.
Junctional tachycardia is a rapid junctional discharge in the range of 70 to 140 beats per minute (Fig. 19.28). The rhythm resembles a series of junctional premature beats, with P waves preceding, following, or buried in the QRS complexes. Differentiation of the electrocardio- graphic pattern produced by junctional tachycardia from that produced by atrial tachycardia is often difficult, and the term supraventricular tachycardia may be used for both.
burst of atrial complexes resembling several PACs in a row (Fig. 19.25). The rhythm is regular at a usual rate of 130 to 240 beats per minute. It may be difficult to distinguish this rhythm from sinus tachycardia; however, differences in P wave configuration are usually apparent. The period of atrial tachycardia may last for minutes, hours, or days and can result in ischemia. Patients may perceive atrial tachycardia as palpita- tions and may experience chest pain. Focal atrial tachycardia can occur in persons with no underlying heart disease in response to emotional stress or drugs. An episode may start as a PAC that has an abnormally slow conduction time through the atria and AV node. This is thought to allow the wave of depolarization to reexcite previously depolarized cells, resulting in reentry and perpetuation of the abnormal rhythm.
Atrial flutter and fibrillation. Atrial flutter is typically manifested by a rapid atrial rate of 240 to 350 beats per minute and a characteristic sawtooth pattern of atrial depolarizations (Fig. 19.26). There is overlap in the mechanism of atrial tachycardia and atrial flutter, and several types of flutter have been described. These are commonly categorized according to atrial rate; type I (typical) has rates of 240 to 350 beats per minute, and type II has rates in excess of 350 beats per minute. The QRS configuration is normal; however, some of the atrial depolarizations do not conduct through the AV node, resulting in a slower ventricular rate. The ventricular rate may be irregular if there is a variable block or may be regular if there is a uniform block, such as 2 : 1 or 3 : 1. Reentry is the probable mechanism for typical atrial flutter. Persons exhibiting atrial flutter usually have underlying heart disease, fluid overload, or atrial ischemia.
Atrial fibrillation is a completely disorganized and irregular atrial rhythm accompanied by an irregular ventricular rhythm of variable rate (Fig. 19.27). The atrial impulses appear as small, squiggly waves of various sizes and shapes. Atrial fibrillation is sustained by multiple reentrant “wavelets” that continually change in size and direction. The
FIG 19.24 Premature atrial complex (arrow). Note early P wave and different P wave morphology.
PFAT NSR
FIG 19.25 Paroxysmal focal atrial tachycardia (PFAT) followed by transition to normal sinus rhythm (NSR).
FIG 19.26 Atrial flutter with four atrial depolarizations to one ventricular depolarization.
FIG 19.27 Atrial fibrillation showing an irregularly irregular ventricular response.
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 427
wide, undulating waves. The sinus node usually continues to discharge independently of the ventricular rhythm, and P waves, if seen, are not associated with the QRS complexes.
Reentry is the probable mechanism of ventricular tachycardia in most cases, although automaticity and triggered activity have also been implicated. Ventricular tachycardia is often associated with myocardial ischemia and infarction. Damage to the myocardium alters conduction times and conduction pathways, which sets the stage for reentry loops. High catecholamine levels and an abnormal electrolyte balance may contribute to the dysrhythmogenesis.
Ventricular tachycardia is a serious dysrhythmia that is nearly always indicative of significant heart disease. It may be fatal unless it is suc- cessfully and rapidly managed. Ventricular tachycardia may compromise cardiac output, resulting in loss of consciousness. Treatment consists of administration of antidysrhythmic drugs and, if necessary, cardio- pulmonary resuscitation and electrical cardioversion.
Ventricular fibrillation. Ventricular fibrillation is a rapid, uncoor- dinated cardiac rhythm that results in ventricular quivering and lack of effective contraction. The rhythm is generally easily identified, particularly when assessment of the patient indicates absence of pulse and loss of consciousness. The ECG is rapid and erratic, with no identifiable QRS complexes (Fig. 19.31). Ventricular fibrillation results in death if not reversed within minutes.
The same conditions that result in ventricular tachycardia may cause ventricular fibrillation. A critically timed premature beat or accelerating ventricular tachycardia may be the precursor to ventricular fibrillation. The ventricular depolarization is thought to be fractionated into a number of localized reentrant currents within the myocardial mass. The uncoordinated depolarizations are sustained because of variability in conduction velocities and refractory periods.
Ventricular fibrillation must be rapidly identified and managed with cardiopulmonary resuscitation and defibrillation with electrical current. Defibrillation differs from cardioversion in that the administration of current is not synchronized with the R wave and the amount of energy
Ventricular Dysrhythmias Premature ventricular complexes. Premature ventricular complexes
(PVCs) arise from the ventricular myocardium. The impulse depolarizes the ventricles but does not activate the atria or depolarize the sinus node. Thus the normal rhythm of sinus discharge is not disturbed. The normal sinus impulse is generally buried in the bizarre-looking QRS complex from the premature ventricular beat. The sinus impulse does not result in a QRS complex because the ventricles are refractory from the premature depolarization. The next sinus beat occurs just when it would have occurred normally if there had been no premature beat. Thus the interval between the sinus beat preceding the premature beat and the sinus beat following the premature beat is twice the regular interval (Fig. 19.29). This is known as a compensatory pause and helps confirm the diagnosis of PVCs. The QRS of the premature complex is prolonged (more than 0.10 second) and bizarre in appearance. The T wave is usually in a direction opposite to the main QRS deflection. Premature ventricular beats are commonly associated with coronary artery disease, drug overdose, and electrolyte disturbances—particularly hypokalemia and hypomagnesemia. The clinical significance depends in part on the frequency of the premature beats. The PVCs may occur at regular intervals, such as bigeminy (every other beat) or trigeminy (every third beat). With high frequency, cardiac output may be com- promised. Frequent PVCs may be managed with antidysrhythmic drugs, such as amiodarone. However, prophylactic use of antidysrhythmic drugs in patients with asymptomatic disease is not recommended. In some groups (e.g., after MI), certain antidysrhythmics have been linked to higher mortality.
Ventricular tachycardia. Ventricular tachycardia consists of three or more consecutive ventricular complexes at a rate greater than 100 beats per minute (Fig. 19.30). The rhythm is fairly regular, and the complexes generally have the same configuration (monomorphic). With rapid rates, it may be difficult to distinguish the QRS complexes from the ST segments and T waves, and the ECG depicts a series of large,
FIG 19.28 Junctional tachycardia (rate, 108/min). Note that P waves follow the QRS waves because of retrograde depolarization spreading from the atrioventricular node to the atria. This rhythm may also be called supraventricular tachycardia.
FIG 19.29 Premature ventricular complex.
FIG 19.30 Ventricular tachycardia (rate, 178/min).
FIG 19.31 Ventricular fibrillation.
428 UNIT V Cardiac Function
heart disease. Drugs and organic heart disorders, such as myocardial ischemia and congenital heart defects, may cause first-degree block. First-degree block is generally monitored but is not actively managed except to alleviate the underlying cause if possible.
Second-degree block is diagnosed when some of the atrial impulses are not conducted to the ventricles. Two types of second-degree block are identified by the pattern of nonconducted impulses. Type I (Mobitz type I, Wenckebach) is associated with progressively lengthening PR intervals until one P wave is not conducted (dropped beat). The pattern repeats, causing the QRS complexes to occur in groups. The PP intervals are constant, whereas the RR intervals vary (Fig. 19.33). Type I second- degree block is usually due to reversible ischemia of the AV node, often associated with acute MI. The ischemic node is slow to recover after each depolarization, resulting in a progressively longer nodal delay until one impulse is not conducted. This gives the AV node time to recover, and the next atrial impulse is conducted more quickly, with a nearly normal PR interval, beginning the cycle again. Treatment is rarely required. If the block progresses to a type II block, a pacemaker may be required.
Type II second-degree block is identified by the presence of non- conducted P waves (dropped beats) with a consistent PR interval (Fig. 19.34). The QRS complex is usually, but not always, wide (0.12 second or greater). Type II block is generally associated with pathologic lesion of the bundle of His, the right bundle branch, or both. It is the bundle branch block that causes the QRS complexes to be abnormally wide. Type II second-degree block is less common than type I but is more serious. It is usually associated with anterior septal MI or fibrosis of the conduction system. Type II block may progress to complete heart block with slow ventricular escape rhythm and poor cardiac output. Type II block may also result in severe bradycardia because of the number of dropped beats. Symptomatic type II block may require implantation of a pacemaker.
Third-degree block may occur as a result of a pathologic lesion of the AV node, bundle of His, or bundle branches. No impulses are conducted from the atria to the ventricles, and a junctional or ventricular
delivered is greater (200 to 350 J). The earlier the defibrillation is performed, the better the chance for successful resuscitation. In some instances, the ventricular fibrillation pattern is very fine and is similar to the tracing seen in atrial arrest. Defibrillation is still indicated. Defibrillation and cardiopulmonary resuscitation are usually followed by administration of antidysrhythmic drugs.
KEY POINTS • Failure of the sinoatrial (SA) node to generate impulses may result in a
junctional or ventricular escape rhythm. These rhythms are slow and may be poorly tolerated. Absence of P waves is important in determination of escape rhythms.
• In most cases, premature beats and ectopic rhythms are attributed to reentry mechanisms. Reentry circuits may be established when portions of the heart have abnormal conduction rates or pathways. Enhanced automaticity and triggered activity are alternative mechanisms for generation of ectopic complexes.
• Atrial dysrhythmias include Premature atrial complexes (PACs), tachycardia, flutter, and fibrillation. Atrial dysrhythmias are usually well tolerated unless the ventricular response rate is significantly altered.
• Junctional tachycardias are difficult to distinguish from atrial tachycardias, and they are often regarded together as supraventricular tachycardias.
• Frequent premature ventricular complexes (PVCs), ventricular tachycardia, and ventricular fibrillation are associated with a significant fall in cardiac output and must be rapidly diagnosed and managed.
FIG 19.32 First-degree atrioventricular block. PR interval, 0.32 second.
FIG 19.33 Second-degree atrioventricular block, type I (Wenckebach, Mobitz type I). Note the progressive lengthening of the PR interval until one P wave is not conducted (dropped).
Conduction Pathway Disturbances Disorders of cardiac impulse conduction include delays, blocks, and abnormal pathways. Cardiac ischemia and infarction commonly are associated with conduction blocks and delays, whereas abnormal pathways are usually congenital.
Disturbances of Atrioventricular Conduction A disturbance in conduction between the sinus impulse and its associated ventricular response has been called atrioventricular block. The conduction may be abnormally slowed or completely blocked. The AV block results from a functional or pathologic defect in the AV node, bundle of His, or bundle branches. Three categories of AV block have traditionally been described: first-degree block, second-degree block (which includes types I and II), and third-degree (complete) block. These AV conduction disorders are associated with different pathologic processes and clinical implications.
First-degree block is generally identified by a prolonged PR interval (more than 0.20 second) on the ECG (Fig. 19.32). The rhythm remains regular, and each P wave is associated with a QRS complex. First-degree block is a common finding and may occur in the absence of organic
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 429
to atrial or ventricular fibrillation. Antidysrhythmic agents and measures to interrupt the pathway, such as vagal stimulation or ablation, may be used.
Intraventricular Conduction Defects Abnormal conduction of impulses through the intraventricular bundle branches is called bundle branch block. The two primary bundles are the right bundle branch, which supplies the right ventricle, and the left bundle branch, which supplies the left ventricle. The left bundle branch is further divided into three fascicles: anterior, posterior, and septal (Fig. 19.37). These supply the anterior, posterior, and septal portions of the left ventricle, respectively. Slowed or obstructed conduction occurring in one or more of these bundles results in abnormal ventricular depolarization and wide, bizarre-appearing QRS complexes. Bundle branch blocks are best detected with ECG leads V1 and V6.
Right bundle branch block may be present in almost any form of heart disease. It is occasionally found in individuals with no clinical evidence of heart disease. Right bundle branch block can progress to complete heart block in some cases. The electrocardiographic pattern is indicative of blocked conduction to the right ventricle such that the left ventricle depolarizes first, then spreads to the right ventricle. Right bundle branch block is classically associated with a late R wave in lead V1 and an S wave in V6. These changes are compared with the normal V1 and V6 in Fig. 19.38.
escape rhythm is evident. The ECG shows regularly occurring P waves that are totally independent of the ventricular rhythm (Fig. 19.35). If the QRS complex is narrow, the block is most likely in the AV node, proximal to the bundle of His. A prolonged QRS interval (more than 0.12 second) indicates pathology distal to the bundle of His, within the bundle branches. The severity of symptoms is determined primarily by the heart rate, with slower rhythms being more serious. A pacemaker is generally required.
Abnormal Conduction Pathways Some individuals have congenital abnormalities of the cardiac conduction system called accessory pathways. These extra conduction tracts provide alternative pathways for depolarization of the heart, resulting in abnormally early ventricular depolarizations following atrial depolariza- tions. The best known of these preexcitation syndromes is Wolff– Parkinson–White syndrome. This syndrome is caused by accessory pathways that originate in the atria, bypass the AV node, and enter a site in the ventricular myocardium. This results in more rapid activation of the ventricle, a short PR interval, initial slurring of the QRS (δ wave), and a wide QRS complex (Fig. 19.36). The accessory pathway may provide a mechanism for reentry and the development of supraventricular tachycardia. Identification and treatment of individuals with preexcitation syndromes are desirable to prevent symptoms of supraventricular tachycardia and to reduce the possibility of deterioration of the rhythm
FIG 19.34 Second-degree atrioventricular (AV) block, type II (Mobitz type II). Every third P wave is followed by a QRS complex. The other P waves are not conducted through the AV node. The PR interval on conducted impulses is constant.
FIG 19.35 Complete third-degree atrioventricular block. Note that there is no relationship between P waves and QRS complexes because the atria and ventricles are depolarizing independently.
II Delta wave
FIG 19.36 Electrocardiogram in lead II from a patient with Wolff–Parkinson–White syndrome. Note the slurred upstroke of the R wave (delta wave).
430 UNIT V Cardiac Function
to be activated first, followed by spread in a downward and rightward direction. The electrocardiographic findings include Q wave in leads II, III, and aVF and R wave in leads I and aVL. These electrocardiographic findings may mimic ventricular hypertrophy or inferolateral MI, making recognition difficult.
Slowed or obstructed conduction may occur simultaneously in more than one bundle or fascicle, leading to the terms bifascicular block and trifascicular block. For example, a right bundle branch block occurring in conjunction with a left posterior hemiblock is called a bilateral or bifascicular block. Trifascicular block refers to a bifascicular bundle block (most commonly right bundle branch block with left anterior hemiblock) in addition to a first-degree block (prolonged PR interval). The prolonged
Left bundle branch block causes a delay in left ventricular depolariza- tion. The right ventricle is activated first through the right bundle branch, followed by right-to-left activation of the septum and, finally, left ventricular activation. The QRS complex is abnormally wide (more than 0.12 second) but has a nearly normal deflection pattern in V1 and V6. In V1, the small R wave normally associated with septal depolarization is absent, and V6 consists of a wide R wave (Fig. 19.39).
Left anterior fascicular block is also called anterior hemiblock. Impaired conduction in the anterior fascicle causes the posterior aspect of the left ventricle to be activated first, followed by spread through the left ventricular myocardium in an upward and leftward direction. The electrocardiographic pattern shows small initial R waves followed by large S waves in leads II and III. The duration of the QRS complex is within normal limits.
Left posterior fascicular block (hemiblock) is due to a block in the posterior fascicle of the left bundle, which causes the anterior left ventricle
AV node
RBB
Posterior fascicle of LBB
Septal fascicle of LBB
Anterior fascicle of LBB
FIG 19.37 The right bundle branch (RBB) innervates the right ventricle. The left bundle branch (LBB) has three divisions: the posterior, septal, and anterior fascicles. AV, Atrioventricular.
RBBB
V1
V6
Normal
FIG 19.38 Right bundle branch block pattern. Note late R wave in V1 and abnormal S wave in V6.
V1
V6
FIG 19.39 Left bundle branch block pattern. Note wide S wave in V1 and wide R wave in V6.
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 431
Treatment Dysrhythmias are generally treated if they produce significant symptoms or are expected to progress to a more serious level. A number of antidysrhythmic drugs have proved effective in managing many dys- rhythmias; however, most have also been shown to cause dysrhythmias (prodysrhythmic). These drugs alter the properties of ion movement across cardiac membranes and affect automaticity as well as the rate and duration of depolarization and repolarization. The major electro- physiologic classes of antidysrhythmic (antiarrhythmic) compounds are summarized in Table 19.3. Treatment may also include measures to improve cardiac output, including pacemakers and drugs to improve contractility and blood pressure. Dysrhythmias causing severely reduced cardiac output, such as severe bradycardia, asystole, ventricular tachy- cardia, and ventricular fibrillation, require cardiopulmonary resuscitation until an effective cardiac rhythm is established.
Ablation procedures may be effective in eliminating a focus of dysrhythmia generation if one can be identified. An electrophysiologic study is done to evoke and analyze the dysrhythmia, followed by inter- ruption (ablation) of the area generating it. Ablation is accomplished with high-frequency radio waves (radioablation) or by surgical excision. The electrophysiologic study requires insertion of electrodes directly into the heart by way of a venous or arterial catheter. The electrodes are used to record activity in specific locations and to deliver electric shocks to initiate or terminate an abnormal rhythm. This test is useful in assessing responses to drug therapy and in identifying risk for sudden cardiac arrest. Those at high risk may benefit from insertion of implant- able defibrillators that detect lethal rhythms and apply an electric shock to convert the rhythm.
KEY POINTS • Disturbances of atrioventricular (AV) conduction are generally referred to
as AV blocks. First-degree block is characterized by a prolonged PR interval and usually requires no treatment.
• Two types of second-degree block have been identified. Type I (Wenckebach) is characterized by progressive prolongation of the PR interval until one P wave is not conducted. Type I block is associated with AV nodal ischemia. Type II second-degree block is identified by a rhythm showing a consistent PR interval with some nonconducted P waves. This block is more serious because it has a tendency to progress to complete AV (third-degree) block.
• Third-degree or complete heart block is diagnosed when there is no apparent association between atrial and ventricular conduction. This rhythm is serious because it is typically associated with slow ventricular rhythm and poor cardiac output.
• Accessory conduction pathways are suspected in persons exhibiting preexcita- tion syndromes such as Wolff–Parkinson–White syndrome. Severe tachy- cardias and other reentrant rhythms may occur.
• Disturbances of intraventricular conduction (bundle branch blocks) are characterized by wide, bizarre-looking QRS complexes. Any of the three ventricular fascicles may be affected (right bundle, left anterior fascicle, or left posterior fascicle).
HF may result from a number of cardiac and noncardiac disorders that diminish myocardial contractility or impose an excessive workload on the heart. HF is a clinical diagnosis based on characteristic signs and symptoms. Decreased cardiac output to the tissues results in decreased renal blood flow, fluid retention, activity intolerance, and mental fatigue. Backward effects are due to congestion of blood behind the ineffectively pumping ventricle. With left-sided HF, the congestion is located in the lungs and produces a number of signs and symptoms, including dyspnea, orthopnea, hypoxemia, crackles, and frank pulmonary edema. Isolated right-sided HF causes congestion in the systemic venous system leading to congestion and dysfunction of the liver, spleen, and kidney, as well as peripheral subcutaneous edema and distended neck veins. In the early stages HF may be asymptomatic, and attention to risk factors and early structural abnormalities of the heart may allow early intervention. Two types of HF have been described based on EF. Those with low EF are commonly described as having systolic failure. Those with preserved EF, typically defined as greater than 50%, usually have diastolic failure. Many patients with low EF have both systolic and diastolic dysfunction.
Three major compensatory mechanisms operate to maintain cardiac output in the failing heart: (1) sympathetic activation, (2) increased
preload, and (3) cardiac muscle cell hypertrophy. Unfortunately, these mechanisms also increase myocardial workload and oxygen require- ments and may trigger neurohormonal dysregulation and ventricular remodeling associated with HF progression and decompensation. Progression of HF is related to myocardial remodeling characterized by myocyte loss and myocardial fibrosis. Therapies that slow the remodeling process may slow the progression of HF. The primary aims of therapy are to improve cardiac output, minimize congestive symptoms and cardiac workload, and slow the detrimental remodeling process.
Dysrhythmia refers to an abnormality of electrical impulse generation or conduction. Dysrhythmias may occur in association with a number of cardiac and noncardiac disorders. Disturbances in electrical activity of the heart can indicate underlying pathophysiologic processes but are not themselves primary medical diseases. Dysrhythmias are significant because they can signal underlying pathophysiologic disorders and can disrupt normal cardiac output. Treatment for dysrhythmias centers on maintaining adequate cardiac output, providing antidysrhythmic drugs as needed, and diagnosing and managing the underlying pathologic process.
S U M M A R Y
PR interval is usually due to incomplete block in the left posterior fascicle. Complete trifascicular block would make it impossible for a supraventricular depolarization to activate the ventricles and would be a third-degree or complete heart block.
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TABLE 19.3 Classification of Drug Actions Based on Modification of Vulnerable Parameter
Mechanism Dysrhythmia Vulnerable Parameter (Effect) Drugs (Effect)
Automaticity Enhanced normal Inappropriate sinus tachycardia
Some idiopathic ventricular tachycardias
Phase 4 depolarization (decrease) β-Adrenergic blocking agents Na+ channel blocking agents
Abnormal Atrial tachycardia Maximum diastolic potential (hyperpolarization)
Muscarinic receptor subtype 2 (M2) agonists
Phase 4 depolarization (decrease) Ca2+ or Na+ channel blocking agents; M2 agonists
Accelerated idioventricular rhythms
Phase 4 depolarization (decrease) Ca2+ or Na+ channel blocking agents
Triggered Activity Early afterdepolarization (EAD) Torsades de pointes Action potential duration (shorten) β-Adrenergic agonists, vagolytic agents
(increase rate) EAD (suppress) Ca2+ channel blocking agents; Mg2+;
β-Adrenergic blocking agents Delayed afterdepolarization (DAD) Digitalis-induced dysrhythmias Calcium overload (unload) Ca2+ channel blocking agents
DAD (suppress) Na+ channel blocking agents Right ventricular outflow tract
ventricular tachycardia Calcium overload (unload) β-Adrenergic blocking agents
DAD (suppress) Ca2+ channel blocking agents; adenosine
Na+ Channel–Dependent Reentry Long excitable gap Typical atrial flutter Conduction and excitability (depress) Types IA, IC Na+ channel blocking
agents Circus movement tachycardia
in Wolff–Parkinson–White syndrome (WPW)
Conduction and excitability (depress) Types IA, IC Na+ channel blocking agents
Sustained uniform ventricular tachycardia
Conduction and excitability (depress) Na+ channel blocking agents
Short excitable gap Atypical atrial flutter Refractory period (prolong) K+ channel blocking agents Atrial fibrillation Refractory period (prolong) K+ channel blocking agents Circus movement tachycardia
in WPW Refractory period (prolong) Amiodarone, sotalol
Polymorphic and uniform ventricular tachycardia
Refractory period (prolong) Type IA Na+ channel blocking agents
Bundle branch reentry Refractory period (prolong) Type IA Na+ channel blocking agents; amiodarone
Ventricular fibrillation Refractory period (prolong) K+ channel blocking agents
Ca2+ Channel–Dependent Reentry Atrioventricular nodal reentrant
tachycardia Conduction and excitability (depress) Ca2+ channel blocking agents
Circus movement tachycardia in WPW
Conduction and excitability (depress) Ca2+ channel blocking agents
Verapamil-sensitive ventricular tachycardia
Conduction and excitability (depress) Ca2+ channel blocking agents
From the Task Force for the Working Group on Arrhythmias of the European Society of Cardiology: The Sicilian gambit: a new approach to the classification of antiarrhythmic drugs based on their actions on arrhythmogenic mechanisms, Circulation 1991;84:1831. Copyright © 1991, American Heart Association.
RESOURCES Heart Failure American Heart Association: Heart disease and stroke statistics—2017 update,
Dallas, TX, 2017, The Association. The Digitalis Investigation Group: The effect of digoxin on mortality and
morbidity in patients with heart failure. N Engl J Med 336(8):525–533, 1997.
Kim J, Jacobs DR, Jr, Luepker RV, et al: Prognostic value of a novel classification scheme for heart failure: the Minnesota Heart Failure Criteria. Am J Epidemiol 164(2):184–193, 2006.
Mann D, Zipes D, Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Elsevier.
Yancy CW, et al; Writing Committee Members; ACC/AHA Task Force Members: 2016 ACC/AHA/HFSA Focused Update on New Pharmacological Therapy for Heart Failure: An Update of the 2013
CHAPTER 19 Heart Failure and Dysrhythmias: Common Sequelae of Cardiac Diseases 433
Miller JM, Zipes DP: Therapy for cardiac arrhythmias. In Mann D, Zipes D, Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Elsevier, pp 685– 720.
Rubart M, Zipes DP: Genesis of cardiac arrhythmias: electrophysiological considerations. In Mann D, Zipes D, Libby P, Bonow R, editors: Braunwald’s heart disease: a textbook of cardiovascular medicine, ed 10, Philadelphia, 2015, Elsevier, pp 629–661.
ACCF/AHA Guideline for the Management of Heart Failure: A Report of the American College of Cardiology/American Heart Association Task Force on Clinical Practice Guidelines and the Heart Failure Society of America. J Card Fail 22(9):659–669, 2016.
Dysrhythmias Fernandez-Falgueras A, Sarquella-Brugada G, Brugada J, et al: Cardiac
channelopathies and sudden death: recent clinical and genetic advances. Biology (Basel) 6(1):2017. doi:10.3390/biology6010007.
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20
Shock Benjamin J. Miller
K E Y Q U E S T I O N S • What is the pathogenesis of shock? • What are the common cellular and tissue responses to shock of
any cause? • How does the body try to compensate for insufficient cardiac
output during shock states? • How do the complications of shock affect body functioning? • What are the common causes of cardiogenic, hypovolemic,
obstructive, and distributive shock?
• How do clinical and hemodynamic findings differ among types of shock?
• What is the role of the immune system in septic shock and the progressive stage of other types of shock?
• How is shock managed? • Why does shock have high mortality?
C H A P T E R O U T L I N E Pathogenesis of Shock, 434
Impaired Tissue Oxygenation, 435
Compensatory Mechanisms and Stages of Shock, 437
Types of Shock, 439 Cardiogenic Shock, 439
Etiology and Pathogenesis, 439 Clinical Manifestations, 440 Treatment, 440 Pharmacotherapy, 441 Mechanical Assist Devices, 441
Obstructive Shock, 441 Etiology and Pathogenesis, 441 Clinical Manifestations, 441 Treatment, 441
Hypovolemic Shock, 442 Etiology and Pathogenesis, 442 Classification, 442
Clinical Manifestations, 442 Treatment, 443
Distributive Shock, 443 Anaphylactic Shock, 443 Neurogenic Shock, 444 Septic Shock, 444
Assessment and Hemodynamic Monitoring, 447 Cardiac Output, 447
Arterial Oxygen Content, 447
Distribution of Blood Flow, 448
Hemodynamic Monitoring, 448
Complications of Shock, 449 Acute Respiratory Distress Syndrome, 449
Disseminated Intravascular Coagulation, 449
Acute Renal Failure, 449
Multiple Organ Dysfunction Syndrome, 449
http://evolve.elsevier.com/Banasik/pathophysiology/
Shock is a life-threatening condition characterized by insufficient delivery of oxygenated blood to the microcirculation, resulting in tissue hypoxia and cellular dysfunction. In 1895 John Collins Warren described shock as a momentary pause in the act of death. In spite of advances in the understanding and management of shock, it still has a high rate of mortality. This chapter presents an overview of circulatory shock, including the major causes, cellular and systemic pathogenesis, clinical manifestations, and general therapeutic management.
PATHOGENESIS OF SHOCK Shock is characterized by an imbalance between oxygen supply and oxygen requirements at the cellular level. When the cell does not have adequate amounts of oxygen and nutrients, it is unable to meet its metabolic demands. Cellular hypoxia results in impaired cellular function and may progress to irreversible organ damage and death. The causes of circulatory shock classically are divided into four general types:
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 20 Shock 435
Impaired Tissue Oxygenation The common denominator of all forms of shock is impaired oxygen utilization by cells, which disrupts function and, if ongoing or severe, may lead to cell death, organ dysfunction, and stimulation of inflam- matory reactions. Recent discoveries about the contribution of inflam- matory reactions in the pathogenesis of shock have provided new insight into this complicated syndrome.
The reason for impaired oxygen utilization by cells differs with the various types of shock, but the outcomes are similar. A continuous supply of oxygen is needed by cells to allow sufficient production of energy in the form of adenosine triphosphate (ATP). Inadequate oxygen availability at the cellular level quickly impairs aerobic metabolism of glucose, fatty acids, and amino acids and causes the cells to rely on the relatively inefficient processes of glycolysis to produce cellular ATP. (A review of ATP synthesis can be found in Chapter 3.) Glycolysis is the enzymatic process of converting glucose to pyruvate, with the net production of two ATP molecules per glucose molecule. If oxygen were available, pyruvate would normally enter the mitochondria and proceed through the citric acid cycle. In the absence of cellular oxygen, the citric acid cycle is inhibited, and pyruvate accumulates in the cytoplasm. Pyruvate accumulation would quickly inhibit further glycolysis and shut down ATP production entirely if not for the conversion of pyruvate to lactate. Lactate diffuses from the cell and into the extracellular fluid, and accumulation of lactate in the bloodstream (more than 5 to 6 mmol/L) is considered a sign of significant tissue hypoxia.
An inadequate supply of cellular ATP inhibits energy-requiring cellular functions, including maintenance of ion concentrations across the plasma membrane. Because of their steep electrochemical gradients, extracellular sodium and calcium ions tend to leak into the cell. ATP- dependent pumps in the cell membrane are needed to continuously pump these ions back out. Failure of ion pumps leads to sodium and water accumulation in the cell (hydropic swelling) and an excess of intracellular free calcium. Intracellular calcium ions trigger a cascade of cellular events that further impair energy production and plasma membrane integrity. Cell death from oxygen deprivation takes from minutes to several hours, depending on the rate of cellular metabolic activity. However, even a short period of oxygen deprivation often sets in motion a complex cascade of events that lead to further cell damage (Fig. 20.1). Two important aspects of this cascade are (1) formation of oxygen free radicals, and (2) induction of inflammatory cytokines.
Ischemic cells may produce oxygen free radicals when oxygen supplies are restored. This process has been called reperfusion injury. Reactive oxygen molecules include superoxide (O2−), peroxide (H2O2), hydroxyl radicals (OH−), and singlet oxygen (O). These molecules are unstable and will attack membrane structures, denature proteins, and damage DNA. Another source of oxygen free radicals is immune cells, particularly neutrophils, which are recruited to the area of tissue injury.
cardiogenic, obstructive, hypovolemic, and distributive. Each of these types is associated with a number of primary causes (Box 20.1). Car- diogenic shock results from heart disorders that cause inadequate cardiac output despite sufficient vascular volume. Obstructive shock develops when circulatory blockage disrupts cardiac output, such as a large pulmonary embolus or cardiac tamponade. Because the causes of obstructive shock are associated with failure of the heart to pump sufficiently, some sources include obstructive shock within the category of cardiogenic shock. Hypovolemic shock is associated with loss of blood volume as a result of hemorrhage or excessive loss of extracellular fluids, such as through vomiting, diarrhea, or excessive diuresis. Distribu- tive shock is characterized by a greatly expanded vascular space because of inappropriate vasodilation without actual loss of vascular volume. Vasodilation leads to hypotension and altered perfusion of tissues. Anaphylactic, neurogenic, and septic are forms of distributive shock. Each type of shock has certain unique features (Table 20.1), but all are associated with impaired tissue oxygenation that can progress to refrac- tory shock and organ failure.
TABLE 20.1 Comparison of Clinical Findings in Different Types of Shock
Parameter Cardiogenic Obstructive Hypovolemic Distributive
Hypotension Yes Yes Yes Yes Systemic vascular resistance High High High Low Cardiac output Low Low Low High Cardiac preload High High Low Normal to low Venous oxygen saturation Low Low Low High Urine output Low Low Low Low Skin temperature Cool Cool Cool Warm
Cardiogenic Shock Myocardial infarction Cardiomyopathy Valvular heart disease Ventricular rupture Congenital heart defects Papillary muscle rupture
Obstructive Shock Pulmonary embolism Cardiac tamponade Tension pneumothorax Dissecting aortic aneurysm
Hypovolemic Shock Acute hemorrhage Dehydration from vomiting, diarrhea Overuse of diuretics Burns Pancreatitis
Distributive Shock Anaphylaxis Neurotrauma Spinal cord trauma Spinal anesthesia Sepsis
BOX 20.1 Etiology of Circulatory Shock
436 UNIT V Cardiac Function
distribution of blood flow. Some capillary beds receive inadequate flow and become progressively more hypoxic, whereas other vascular routes are excessively dilated and receive too much flow. Advances in technology have allowed direct visualization of capillary flow through tissue beds and confirmed the presence of perfusion abnormalities in the micro- circulation. These abnormalities differ depending on the primary cause of shock. In cases of reduced cardiac output resulting from hypovolemic or cardiogenic shock, there is a homogeneous reduction in blood flow through a given tissue’s arterioles, capillaries, and venules that is directly related to the severity of cardiac output reduction. In distributive shock states, such as septic shock, the degree of microcirculatory flow is heterogeneous within a tissue, with some capillaries being closed and others open. Often there is high flow rate through some of the venules, and the degree of microcirculatory dysfunction is poorly correlated with systemic hemodynamics. Overall, this imbalance leads to a so-called oxygen debt in the tissues. It has been suggested that the overall oxygen debt can be estimated clinically by the serum lactate level and degree of metabolic acidosis, both of which imply a switch to anaerobic metabolism by oxygen-deprived tissues.
In septic shock, immune cytokines are believed to be at the root of the microcirculatory maldistribution problem. TNF-α, IL-1, and other
Thus cellular injury may continue and progress long after the initial hypoxic insult has been resolved.
The role that immune cytokines play in shock has been studied extensively in septic shock. The roles of these cytokines are thought to be similar in the late stages of other types of shock as well. Macrophages and tissue cells are stimulated to release inflammatory cytokines in response to hypoxic tissue injury and, in the case of septic shock, in response to endotoxin or other microorganism antigens. The levels of tumor necrosis factor-α (TNF-α) and interleukin-1 (IL-1) cytokines in particular have been shown to increase in the bloodstream of patients with septic shock, and these cytokines are thought to be important mediators of vascular failure and progressive organ damage. Numerous other immune cytokines and neurohormonal mediators have been implicated in the pathogenesis of shock (Table 20.2). These mediators represent potential therapeutic targets for a disorder that is notoriously difficult to manage effectively.
A hallmark of shock is failure of the microcirculation to appropriately autoregulate blood flow. Normal tissues are able to match blood flow with metabolic needs across a wide range of blood pressures. This property ensures that blood flow is evenly distributed to tissues according to metabolic needs. In shock, autoregulation fails, leading to an abnormal
↓ Cardiac output
Impaired tissue oxygenation
Pump failure Hypovolemia Vasodilation
Cellular hypoxiaLactic acidosis
Inhibition of Ca2+ pump
Anaerobic metabolism
Free radical production
Macrophage induction
Activation of lipid peroxidase
Recruitment of neutrophils
Inhibition of Na+-K+ pump
Release of enzymes
Hydropic swelling
Impaired membrane
integrity
↑ Intracellular Ca2+ Release of cytokines
Vascular dysregulation
and activation
of coagulation
↓ ATP
Cell death
FIG 20.1 Shock is a complex process involving cellular hypoxia, free radical formation, and systemic inflam- mation. All forms of shock are associated with impaired tissue oxygenation, which triggers a cascade of events leading to tissue injury and death. ATP, Adenosine triphosphate.
CHAPTER 20 Shock 437
or insufficient blood volume to fill the vascular space (hypovolemic, distributive). A number of compensatory mechanisms are triggered in response to inadequate cardiac output in an attempt to restore adequate perfusion pressure (Fig. 20.3). Baroreceptors located in the aorta and carotid arteries quickly sense the decrease in pressure and transmit signals to the vasomotor center in the brainstem medulla. Stimulation of the sympathetic nervous system (SNS) results in increased cardiac output and vascular resistance. Because blood pressure is determined by the product of cardiac output and vascular resistance—an increase in one or both of these factors will help restore blood pressure. The SNS increases cardiac output through several mechanisms. The adrenal medulla is stimulated to release increased amounts of the catecholamines epinephrine and norepinephrine (NE), which circulate to the heart and stimulate β1 receptors. The β1 receptors respond by increasing the heart rate and force of contraction in an attempt to increase cardiac output. The SNS also enhances venous return to the heart by constricting systemic arterioles and venules. Arterial vasoconstriction reduces flow through the capillary bed, which causes hydrostatic pressure in the capillaries to fall. Fluid reabsorption from interstitial spaces helps increase blood volume and improve preload. Blood vessels in the skin, kidneys, and gastrointestinal tract constrict and shunt blood to the heart and brain.
The SNS stimulates cells in the kidney to release renin, which triggers the renin–angiotensin–aldosterone system (RAAS). Renin is also secreted from the kidneys in response to decreased blood flow and pressure in the afferent arterioles. Renin triggers the formation of angiotensin II, which is a potent vasoconstrictor and also stimulates kidney nephrons to conserve sodium and water. Conservation of volume by the kidney is further enhanced by aldosterone, which is secreted from the adrenal cortex in response to angiotensin II. Reabsorption of fluid from the kidney helps increase blood volume and enhances venous return to the heart. Another hormone, antidiuretic hormone (vasopressin), is secreted from the posterior pituitary in response to reduced blood volume. Antidiuretic hormone stimulates the kidney tubules to reabsorb water and improves the vascular response to catecholamines. In shock, urine output may fall to zero as the kidneys attempt to conserve fluid to
TABLE 20.2 Immune Cytokines and Neurohormones Associated With Circulatory Shock
Mediator Associated Dysfunction
IL-1α Inflammation, vasodilation, vascular leakiness IL-1β Inflammation, vasodilation, vascular leakiness IL-6 Fever, increased acute phase protein TNF-α Inflammation, neutrophil activation IL-10 Antiinflammatory, may suppress shock TGF-β Fibrosis, pulmonary edema PAF Platelet activation, chemotaxis PAI-1 Increased clotting, thrombosis Substance P Proinflammatory Chemokines Neutrophil recruitment and binding to vessel
endothelium Nitric oxide Vasodilator C5a Chemotactic Protein C Inhibits thrombus formation Vasopressin Improves vascular tone and responsiveness to NE/E Cortisol Antiinflammatory, improves vascular response to
NE/E Endothelin Vasoconstriction Adrenomedullin Vasodilation Norepinephrine Vasoconstriction Epinephrine Positive inotropic, bronchodilation, Leukotrienes Inflammation, bronchospasm Histamine Increased vascular permeability, edema Heparin Inhibits action of histamine Angiotensin II Vasoconstriction Heat-shock proteins Protect protein structure and function, inhibit
apoptosis
E, Epinephrine; IL, interleukin; NE, norepinephrine; PAF, platelet- activating factor; PAI, plasminogen activator inhibitor; TGF, transforming growth factor; TNF, tumor necrosis factor.
Vasodilation Nitric oxide synthesis
Hypotension Generation of free radicals
Stimulation of macrophages
Tissue injury Toxins
Microorganisms
↑ TNF-α ↑ IL-1
FIG 20.2 Excess production of nitric oxide is an important mechanism of vascular failure in shock. The tumor necrosis factor-α and interleukin-1 cytokines are promoters of inducible nitric oxide synthase. These cytokines are released from macrophages that have been activated by tissue injury or toxins. IL-1, Interleukin-1; TNF-α, tumor necrosis factor-α.
inflammatory mediators induce vascular cells to produce excessive amounts of the vasodilator nitric oxide. Nitric oxide in normal quantity is thought to be protective for tissues during shock, whereas excessive production is detrimental. Nitric oxide is produced in endothelial cells and vascular smooth muscle by two enzymes: nitric oxide synthase (NOS) and inducible nitric oxide synthase (iNOS). TNF-α and IL-1 increase the activity of iNOS and thereby cause excessive production of nitric oxide (Fig. 20.2). Efforts to minimize the microcirculatory oxygen debt in early shock and to quickly restore adequate microcircula- tory blood flow distribution, as evidenced by normalized serum lactate concentration and acid–base balance, are an important focus of therapy for all types of shock.
Compensatory Mechanisms and Stages of Shock A number of compensatory responses are set in motion to restore tissue perfusion and oxygenation in the early stage of shock. Historically, these responses to shock have been divided into three clinical stages: compensated shock, progressive shock, and refractory shock. Although these stages may be useful for determining prognosis and the likelihood of the patient’s recovering, shock is viewed as a continuum in which compensatory mechanisms become progressively less effective as function of the microcirculation becomes increasingly impaired.
Insufficient cardiac output and decreased effective tissue perfusion are early defects in all types of shock. Insufficient cardiac output may be a consequence of an ineffective cardiac pump (cardiogenic, obstructive)
438 UNIT V Cardiac Function
tissues, which makes it difficult for the heart to maintain cardiac output despite sympathetic stimulation to increase the heart rate and contractility.
The early, compensated stage of shock may be difficult to detect clinically (Fig. 20.5). A high index of suspicion is needed in patients with heart failure, trauma, blood loss, and severe infection. In addition, the following clinical findings may be present: • A narrow pulse pressure, with or without hypotension • Tachycardia greater than 100 beats/min • Fast and deep respirations • Decreased urinary output • Increased urine-specific gravity • Cool, clammy skin • Altered mentation • Dilated pupils
At some point, which is highly variable and differs among individuals depending on age, comorbidities, and specific etiology, the compensatory mechanisms can no longer sustain adequate perfusion to tissues, and cells begin to suffer significant hypoxic injury. This condition is sometimes called the progressive stage of shock. Active therapeutic intervention is required at this stage or the patient will probably not survive. As previ- ously described, reduced delivery of oxygen to tissues results in hypoxic injury, free radical damage, and stimulation of the inflammatory response. Lactic acidosis may occur during the progressive stage of shock. In addition to being a marker of anaerobic metabolism, lactate can alter the acid–base balance of the blood and create metabolic acidosis. Metabolic acidosis places a greater burden on the respiratory and renal systems and may contribute to further dysfunction. Metabolic acidosis can affect electrolyte balance and contribute to cardiac dysrhythmias and conduction disturbances. In addition, myocardial-depressant factors
maintain blood volume and cardiac output. Unfortunately, the kidney tubules often sustain damage because of the low-flow state, which may result in the complication of acute renal failure.
These compensatory mechanisms work well in the early stage of hypovolemic shock and may maintain blood pressure within the normal range until the volume of blood loss becomes too great (Fig. 20.4). In other forms of shock, compensatory mechanisms are less effective in restoring cardiac output. In cardiogenic shock, the compensatory responses may worsen the already high preload and impose a greater workload on the failing heart. In distributive shock, the vasculature is not responsive to SNS signals to constrict. Blood pools in the peripheral
Renin-angiotensin- aldosterone activation
↑ SNS activity
Adrenal medulla
Baroreceptor activation
↓ Kidney perfusion
Hypotension
↑ HR, ↑ contractility ↑ Preload
↑ Cardiac output
↑ Cardiac output
↑ Systemic vascular resistance
VasoconstrictionCardiac stimulation
Volume expansion
↑ Blood pressure
NE E
FIG 20.3 Compensatory mechanisms are triggered in shock to help maintain arterial blood pressure despite a fall in cardiac output. E, Epinephrine; HR, heart rate; NE, norepinephrine; SNS, sympathetic nervous system.
Arterial pressure
Percentage of total blood removed
C a rd
ia c
o u tp
u t a n d a
rt e ri
a l
p re
ss u re
( %
o f n o rm
a l)
0 10
Cardiac output
20 30 40 50
100
50
0
FIG 20.4 In early stages of hypovolemia, blood pressure is stable even though cardiac output is falling. When volume losses equal about 25% of the total blood volume, blood pressure falls precipitously. (Redrawn from Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2014, Elsevier, p 294.)
CHAPTER 20 Shock 439
TYPES OF SHOCK In addition to the general pathophysiology of shock just described, each type of shock has special features that affect prevention, diagnosis, and treatment. These features are briefly reviewed here, and the reader is referred to the specific chapters that describe the primary disorders that predispose to shock, including cardiogenic (Chapters 18 and 19), hypovolemic (Chapter 24), anaphylactic (Chapter 10), neurogenic (Chapter 44), and septic (Chapter 8).
Cardiogenic Shock Etiology and Pathogenesis Cardiogenic shock occurs primarily as a result of severe dysfunction of the left, right, or both ventricles that results in inadequate cardiac pumping. The most common cause of cardiogenic shock is myocardial infarction resulting in a significant dysfunction or loss (greater than 40%) of left ventricular myocardium. Other causes of cardiogenic shock include right ventricular myocardial infarction, end-stage cardiomyopathy, papillary muscle dysfunction, free wall rupture, and congenital heart defects.
The low cardiac output state is associated with a high left ventricular diastolic filling pressure (preload), a finding that differentiates cardiogenic from hypovolemic forms of shock (Fig. 20.6). High left ventricular preload leads to movement of fluid from the pulmonary vascular beds into the pulmonary interstitial space, which initially results in interstitial pulmonary edema and later in alveolar pulmonary edema.
The SNS is stimulated as a compensatory mechanism to increase cardiac output. The result is an increase in heart rate and systemic vascular resistance. High systemic vascular resistance increases the workload on the heart. Activation of the RAAS results in further increases
are released that impair myocardial contractility. These factors contribute to reduced cardiac output and a progressive cycle of worsening tissue hypoxia.
As shock continues to progress, the vascular system begins to fail. Arterioles become unresponsive to catecholamines, and previously constricted vascular beds begin to dilate. Widespread dilation and low cardiac output combine to produce severe hypotension. The low blood pressure is not sufficient for organ perfusion. At this stage the effects of shock produce more shock processes. Tissue damage often activates the clotting cascade, which contributes to sluggish blood flow, vascular thrombosis, and more severe tissue ischemia. Release of inflammatory mediators, along with vascular occlusion, may precipitate organ failure. The kidney, liver, and lung are particularly susceptible. At some point, the stage of refractory shock occurs, and the patient becomes unresponsive to therapeutic interventions.
The progressive stage of shock is characterized by the following clinical manifestations: • Low blood pressure, usually lower than 90 mm Hg • Narrow pulse pressure • Tachycardia • Acute renal failure (e.g., oliguria, increased levels of blood urea
nitrogen and serum creatinine) • Decreased level of consciousness • Increased respiratory rates • Metabolic and respiratory acidosis with hypoxemia
↑ Respiratory rate
↑ Heart rate
Hypotension (SBP �90 mm Hg) Decreased pulse pressure
Release of aldosterone and cortisol
Constriction of splanchnic vessels – nausea, abdominal pain
↓ Urine output ↑ Specific gravity
↓ Level of consciousness Thirst, restlessness, Dilated pupils Release of ADH
Cool, clammy, bluish or gray color ↓ Capillary refill
FIG 20.5 Classical manifestations of shock. ADH, Antidiuretic hormone; SBP, systolic blood pressure.
KEY POINTS • Shock represents a diverse group of life-threatening circulatory conditions.
The common factor among all types of shock is hypoperfusion and impaired cellular oxygen utilization. Inadequate cellular oxygenation may result from decreased cardiac output, maldistribution of blood flow, or reduced blood oxygen content.
• During the compensatory stage of shock, homeostatic mechanisms are sufficient to maintain adequate tissue perfusion despite a reduction in cardiac output. Manifestations of sympathetic nervous system (SNS) activation are an elevated heart rate, increased myocardial stimulation, bronchodilation, vasoconstriction, cool clammy skin, dilated pupils, and decreased urine output. Blood pressure is maintained even though cardiac output has fallen.
• During the progressive stage of shock, compensatory mechanisms begin to fail, and hypotension and progressive tissue hypoxia result. Shift of cells to anaerobic metabolism results in lactate production and metabolic acidosis. A lack of cellular adenosine triphosphate (ATP) production leads to cellular swelling, dysfunction, and death. Generation of oxygen free radicals, release of inflammatory cytokines, and activation of the clotting cascade lead to further cellular and organ dysfunction.
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pulmonary occlusion pressures exceed 20 to 40 mm Hg. Arterial blood gas values initially demonstrate a respiratory alkalosis secondary to hyperventilation. As pulmonary edema progresses, respiratory acidosis with hypoxemia may occur. Hypoxemia further impairs myocardial function.
Determination of mixed venous oxygen levels in blood samples obtained from the pulmonary artery catheter is helpful in assessing the adequacy of cardiac output. Decreased tissue oxygen delivery because of low cardiac output increases the degree of oxygen extraction. Mixed venous blood samples show decreased venous oxygen saturation (SvO2) with a decreased cardiac output. An increase in mixed venous oxygenation would be expected with improved cardiac output.
Treatment Cardiogenic shock is difficult to manage because the underlying myocardial damage is often not reversible. Prevention of cardiogenic shock through measures to limit infarct size during acute myocardial ischemia is desirable. Early efforts to restore coronary perfusion are associated with a decrease in the incidence of cardiogenic shock after myocardial infarction. (A discussion of reperfusion therapy can be found in Chapter 18.)
The goal of treatment for cardiogenic shock is to decrease myocardial oxygen demands, increase myocardial oxygen delivery, and increase cardiac output. It is difficult to achieve these goals because interventions to increase cardiac output tend to increase myocardial oxygen demands.
in resistance and preload. The net effect of the activation of compensatory mechanisms is to increase myocardial workload and oxygen demand. Consequently, the compensatory responses can precipitate further cardiac damage and cause a progressive decline in cardiac output.
Clinical Manifestations Sympathetic nervous stimulation increases the heart rate and vascular resistance, which maintain blood pressure even though cardiac output has decreased. As compensatory mechanisms fail, systolic blood pressure falls, and diastolic pressure increases (as a result of the sympathetic stimulation), thus narrowing the pulse pressure. Heart rates exceed 100 beats/min. Peripheral vasoconstriction occurs and produces cool, clammy skin. Auscultation of the lungs reveals coarse crackles resulting from pulmonary edema. An S3 summation gallop may be audible over the left apex as a result of increased preload in the left ventricle.
Frequent assessments of cardiac output and cardiac index are helpful in the clinical treatment of a patient in cardiogenic shock. A pulmonary artery catheter may be inserted to measure cardiac index and left heart filling pressures (e.g., pulmonary capillary occlusion pressure). Pulmonary artery pressures are increased, with the pulmonary capillary occlusion pressure typically being greater than 15 mm Hg (normal, less than 12 mm Hg). When pulmonary capillary occlusion pressure acutely increases, pulmonary congestion may develop because fluid shifts from the capillary into the interstitial and alveolar spaces. Patients with chronic congestive heart failure may not develop pulmonary edema until
↑ Preload
SNS ↑ Afterload
Myocardial failure
↓ Cardiac output
↓ Tissue perfusion
↓ Ejection fraction
Volume retention by kidneys
Hypoxic cell injury
↑ End-systolic volume
↑ Left atrial pressure
Progressive shock
↑ Pulmonary capillary hydrostatic
pressure
Cardiogenic pulmonary
edema Hypoxemia
FIG 20.6 Cardiogenic shock results in decreased tissue perfusion and cardiogenic pulmonary edema because of reduced myocardial function, usually associated with left ventricular failure. SNS, Sympathetic nervous system.
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Obstructive Shock Etiology and Pathogenesis Obstructive shock develops when the heart is prevented from pumping because of a mechanical obstruction to blood flow. Impaired ventricular filling leads to reduced cardiac output and signs and symptoms similar to cardiogenic shock, and is considered by many to be a form of car- diogenic shock. Causes of mechanical obstruction include pulmonary embolism, cardiac tamponade, and tension pneumothorax. These mechanical changes cause a significant increase in the right ventricle (RV) afterload resulting in RV enlargement and left ventricle (LV) compression. With the decrease in LV size and stroke volume, the cardiac output declines. Increased RV preload aggravates the low cardiac output with resultant hypotension. This cycle perpetuates rapidly, resulting in death if not treated. Prompt relief of the obstruction is necessary to restore cardiac output and prevent cardiovascular collapse.
Clinical Manifestations Obstructive shock is usually characterized by manifestations of right-sided heart failure. Depending on the location of the obstruction, elevated pressures in the cardiac chambers may be evident.
Pulmonary embolism results in elevated right-sided heart pressures, but left-sided pressures remain normal to low. Pulmonary emboli are usually generated in the veins of the lower extremities in patients with immobility, trauma, or hypercoagulable states. Pulmonary embolism is manifested as sudden, severe dyspnea and deteriorating arterial blood gas values. A perfusion scan of the lung may demonstrate an area of reduced blood flow. Pulmonary emboli are not generally detectable by chest radiographs.
Cardiac tamponade, which results from an accumulation of fluid in the pericardial sac, causes elevation of pressures on both the right side and the left side of the heart. Despite the elevated pressure, preload in the heart chambers is low, as is stroke volume. The elevated pressure is due to external compression of the heart chambers. Risks for the development of cardiac tamponade include pericarditis, blunt trauma to the chest, and cardiac surgical procedures. In pericarditis, a pericardial friction rub can sometimes be heard and may help with the diagnosis.
Tension pneumothorax results in shifting and compression of mediastinal structures, including the heart, which compromises left ventricular filling. Accumulation of air in the pleural space may occur because of trauma or spontaneous rupture of lung parenchyma. A tension pneumothorax develops when the air in the pleural space begins to exert a positive pressure on lung and mediastinal structures. A deviated trachea and decreased or absent breath sounds may occur. Arterial blood gas values can deteriorate rapidly. Tension pneumothorax is detectable by chest radiography.
Treatment Management of obstructive shock is aimed at identifying and removing the offending obstruction. Compensatory mechanisms are generally ineffective in obstructive shock, and the patient’s condition may deteriorate rapidly.
Pharmacotherapy Positive inotropic drugs are frequently used in the management of cardiogenic shock to increase contractility. Positive inotropes include β-adrenergic agonists such as NE, dobutamine, and dopamine and phosphodiesterase inhibitors that prevent the degradation of cyclic adenosine monophosphate. These drugs have the ability to increase contractility, increase cardiac output, and increase tissue perfusion; however, these drugs increase myocardial oxygen demand. NE is the natural neurotransmitter of the sympathetic nerves and mimics SNS activation by increasing heart rate, contractility, and vascular resistance. Dobutamine increases contractility by stimulating β receptors. However, unlike NE or dopamine, dobutamine has minimal α-receptor activity. The major effect of dobutamine is on contractility rather than heart rate. Dobutamine may contribute to a decrease in vascular resistance and must be used with caution in hypotensive patients. Vasodilators may be used to decrease the workload of the heart by decreasing left ventricular afterload and preload. Examples of commonly used vasodila- tors include nitroprusside and nitroglycerin.
Mechanical Assist Devices Cardiogenic shock is sometimes managed by mechanical assist devices. For temporary management, intraaortic balloon counterpulsation may be indicated. A catheter with a balloon at the distal segment is inserted through the femoral artery and positioned in the aorta just distal to the left subclavian artery. The balloon is connected to a console that triggers the balloon to inflate in diastole and deflate in systole. The effect of balloon inflation during diastole is to increase perfusion pressure of the coronary arteries. Sudden deflation of the balloon just before ventricular systole creates a vacuum effect in the aorta that reduces left ventricular afterload. A reduction in afterload decreases left ventricular workload and increases stroke volume. Balloon counterpulsation restricts mobility and is associated with a number of vascular complications. Long-term management of patients with low cardiac output can be achieved with mechanical pumps that take over the function of the ventricle or ventricles (ventricular assist devices [VADs]). VADs are commonly used in patients waiting for a heart transplant. In some cases, the temporary decrease in cardiac workload afforded by the VAD is associated with significant improvement in cardiac structure and function, and the device can be removed.
KEY POINTS • Cardiogenic shock is usually a result of severe ventricular dysfunction
associated with myocardial infarction. Other causes include cardiomyopathy, ventricular rupture, and congenital heart defects.
• Diagnostic features of cardiogenic shock include decreased cardiac output as a result of left ventricular dysfunction, along with elevated left ventricular end-diastolic pressure, S3 heart sounds, and pulmonary edema. Sympathetic activation leads to an increased heart rate, vasoconstriction, and a narrow pulse pressure.
• Low cardiac output leads to reduced oxygen delivery to tissues. Tissues extract a greater percentage of oxygen from the delivered blood, which leads to reduced Svo2.
• Therapy is aimed at improving cardiac output and myocardial oxygen delivery while reducing cardiac workload. Pharmacologic treatment often includes the use of inotropic agents, afterload-reducing agents (e.g., vasodilators), and preload-reducing agents such as nitrates and diuretics. Intraaortic balloon counterpulsation may be used to reduce afterload and improve coronary artery perfusion. Ventricular assist devices (VADs) may be used for longer-term circulatory support, whereas heart transplantation provides definitive treatment.
KEY POINTS • Obstructive shock results from mechanical obstructions that prevent effective
cardiac filling and stroke volume. • Pulmonary embolism, cardiac tamponade, and tension pneumothorax are
common causes of obstructive shock. • Prompt management of the underlying obstruction is necessary to prevent
cardiovascular collapse.
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in intravascular volume moving into the interstitial space, resulting in a relative hypovolemia
Classification The American College of Surgeons stratifies hemorrhagic shock into four classes according to the degree of blood volume lost (Table 20.3). These values are based on a 70-kg adult and are guidelines that may not apply to all patients with hemorrhage, depending on etiology, rate of blood loss, and comorbidities.
The initial stage hemorrhage (Class I) occurs with blood loss up to 750 mL, or 15% of total blood volume. Compensatory mechanisms maintain cardiac output, and the patient’s vital signs remain within the normal range. Class II compensated hemorrhage is categorized as blood loss between 750 and 1500 mL (15% to 30% of total blood volume). The patient becomes anxious and restless. Blood pressure remains normal when the patient is supine but decreases upon standing (orthostatic hypotension). The heart rate is between 100 and 120 beats/min. The respiratory rate is normal to mildly increased. Urine output is between 20 and 30 mL/hr. The capillary refill time may be prolonged. (The capillary blanch test is performed by depressing a patient’s fingernail and observing how long after release the skin color takes to return to normal. Normal capillary refill times are less than 2 seconds.)
Class III hemorrhage (progressive stage) is blood loss between 30% and 40% of total blood volume (1500 to 2000 mL). The patient is anxious and confused. Blood pressure is decreased with a narrow pulse pressure. The heart rate is greater than 120 beats/min. Respiratory rates are between 30 and 40 respirations/min. Urine output is 5 to 20 mL/ hr. The capillary refill test is prolonged.
Severe Class IV hemorrhage (refractory stage) occurs when more than 40% of total blood volume is lost (2000 mL or more). The patient is lethargic and has severe hypotension with a narrow pulse pressure. The heart rate usually exceeds 140 beats/min, and the respiratory rate is markedly increased. Urine output is negligible. The capillary refill test is prolonged.
The clinical features of other forms of hypovolemic shock are similar to those of hemorrhagic shock, although the volume loss has usually occurred more gradually.
Clinical Manifestations The cardiac output and cardiac index are found to be decreased. Pul- monary artery pressures and pulmonary capillary wedge pressures are decreased because of the decreased preload. The finding of a low preload distinguishes hypovolemic shock from cardiogenic shock. In cardiogenic shock, preload is high and cardiac output is low. In hypovolemic shock, preload and cardiac output are both low.
Systemic vascular resistance is increased as a result of sympathetic activation. This increase is a compensatory mechanism in hypovolemia
Hypovolemic Shock Etiology and Pathogenesis Hypovolemic shock results when circulating blood volume is inadequate to perfuse tissues. The pathogenesis of early-stage hypovolemic shock is straightforward: decreased intravascular volume leads to a decrease in venous return, which causes a decrease in cardiac output (Fig. 20.7). The decrease in cardiac output results in decreased tissue perfusion and decreased oxygen delivery.
Circulatory volume deficits may be the result of internal or external losses. Internal losses can result from internal hemorrhage, fracture of long bones, or leakage of fluid into the interstitial spaces. External losses can result from external hemorrhage, burns, severe vomiting and diarrhea, or diuresis. External hemorrhage is the most common cause of hypo- volemic shock. Other forms of shock (septic and anaphylactic) have characteristics similar to hypovolemic shock. Despite having an absolute loss of intravascular volume, increased capillary permeability results
↓ Preload
↓ Intravascular volume
↓ Cardiac output
Hypotension
↓ Tissue perfusion
Hypoxic cell injury
Progressive shock
FIG 20.7 Pathogenesis of hypovolemic shock.
TABLE 20.3 Classification of Hemorrhagic Shock
Class I (Initial Stage) Class II (Compensated Stage) Class III (Progressive Stage) Class IV (Refractory Stage)
Blood loss (mL) ≤750 (15%) 750–1500 (15%–30%) 1500–2000 (30%–40%) >2000 (>40%) Clinical
features Minimal tachycardia Slight tachycardia Tachycardia Marked tachycardia Normal or increased pulse
pressure Tachypnea Decreased pulse pressure
Tachypnea Decreased systolic blood pressure
Decreased systolic blood pressure Narrowed pulse pressure
Cool, clammy skin Oliguria Markedly decreased urinary output Delayed capillary refill Slight anxiety
Changes in mental status such as confusion and agitation
Loss of consciousness Cold, pale skin
CHAPTER 20 Shock 443
Distributive Shock Distributive shock is characterized by an abnormally expanded vascular space caused by excessive vasodilation. Vasodilation results in peripheral pooling of blood in the venous capacitance vessels and creates a relative hypovolemia. Preload and stroke volume are insufficient to maintain perfusion of the brain and tissues. Anaphylactic, neurogenic, and septic are the types of distributive shock. All are characterized by vasodilation and profound hypotension, but the cause and pathogenesis of each type differ significantly.
Anaphylactic Shock Etiology and pathogenesis. Type I anaphylactic reactions involve
an antigen/immunoglobulin E (IgE) antibody reaction on the surface of mast cells and basophils. IgE antibodies attach to receptor sites on these cells, where they await activation by specific antigens. Exposure to that antigen causes receptors on mast cells and basophils to cross-link and become activated. A host of vasoactive chemicals are released, including histamines, leukotrienes, bradykinins, and prostaglandins. These substances result in bronchoconstriction, peripheral vasodilation, and increased capillary permeability. (A detailed discussion of type I anaphylaxis can be found in Chapter 10.) In some cases, mast cell degranulation is triggered by a mechanism that does not involve IgE. These reactions may be called anaphylactoid (Box 20.2).
Most type I anaphylactic reactions are mild and do not result in shock. Even in more severe anaphylaxis, prompt treatment can prevent the shock syndrome. Shock occurs when peripheral dilation is massive
to maintain perfusion pressure. SvO2 may be decreased because of decreased oxygen delivery and increased oxygen extraction.
Treatment The first intervention for hemorrhagic shock is to control the source of blood loss. Second, volume losses are replaced with appropriate fluids to normalize blood pressure, cardiac output, and perfusion of the microvasculature. In severe, uncontrolled hemorrhage, efforts to increase blood pressure should be postponed until the hemorrhage is under control. Otherwise, the increased blood pressure may worsen the hemorrhage. In all types of hypovolemic shock, fluid replacement is the primary therapy. The three main types of fluid therapy agents are colloids, crystalloids, and blood products. There continues to be con- troversy about which type of fluid is the most appropriate for resuscitation of hypovolemic shock.
Colloids are solutions that increase the serum colloid osmotic pressure within the vascular compartment. Increased colloid pressure pulls fluid from the interstitium into the vascular space. Examples of colloid solutions are normal human serum albumin, dextran, and hetastarch. Colloids generally are not recommended for hypovolemic shock unless the patient has significant interstitial edema.
Crystalloids are solutions that contain electrolytes. Isotonic solutions such as lactated Ringer solution or normal saline solution are commonly used crystalloid solutions. Isotonic fluids are preferred over hypotonic solutions because isotonic solutions remain in the extracellular space and are more effective in increasing blood volume. Isotonic crystalloid fluids are preferred for volume resuscitation in hypovolemic shock that is not associated with severe anemia.
When significant anemia accompanies hypovolemia, blood products may be the treatment of choice. In hemorrhagic shock, whole blood or packed red blood cells (RBCs) with normal saline may be given to replace blood volume loss. Significant anemia may contribute to tissue hypoxia simply because of reduced oxygen-carrying capacity; however, recent research suggests that RBCs may also regulate capillary blood flow by releasing vasodilating substances, including ATP, into the microcirculation under conditions of hypoxia. Significant reduction in RBC flow through capillaries has been suggested as a mechanism for further impairing microcirculatory function.
In general, pharmacologic agents are not indicated for hypovolemia. Restoration of blood volume is essential. However, in some cases of shock, blood pressure remains low despite large amounts of fluid replacement, so vasoconstrictor agents may be used to support blood pressure.
KEY POINTS • Hypovolemic shock results from inadequate circulating blood volume pre-
cipitated by hemorrhage, burns, dehydration, or leakage of fluid into interstitial spaces.
• The classic features of hypovolemic shock are the result of low cardiac output and low intracardiac pressures. Manifestations are due primarily to sympathetic nervous system (SNS) activation: elevated heart rate, vaso- constriction, and increased myocardial contractility.
• The severity of symptoms of hemorrhagic shock correlates with the amount of blood loss; however, there is significant variation in the clinical presentation of hypovolemic and hemorrhagic shock, and careful assessment is required to diagnose it in the early stages.
• Therapy for hypovolemic shock is aimed at fluid replacement and control of the source of volume loss. Colloids, isotonic crystalloids, and blood products may be used as replacement fluids.
Anaphylactic (IgE-Dependent) Foods • Peanuts • Tree nuts • Crustaceans (crab, shrimp) Medications • β-Lactam antibiotics • Other antibiotics • Aspirin and other nonsteroidal antiinflammatory drugs Venoms • Bee sting • Snake bite Animal proteins • Cat • Dog • Horse
Anaphylactoid (IgE-Independent) Radiocontrast media Opioids Muscle relaxants Temperature • Cold • Heat Transfusion reactions • IgG • IgM
Unidentified Triggers Idiopathic
BOX 20.2 Common Triggers of Anaphylaxis
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if mechanical measures are ineffective. The outcome of neurogenic shock depends in large part on the severity of neurologic injury. Shock resulting from head trauma has a poor prognosis, whereas acute neurogenic shock associated with spinal cord injuries may resolve as spinal cord reflexes return in the weeks following the injury.
Septic Shock Septic shock is a common cause of death in intensive care units in the United States, and the incidence continues to increase. The latest annual prevalence estimates are that between 0.4 and 1.0/1000 of the population will develop severe sepsis. Large numbers of immunocompromised individuals in the population and extensive use of invasive technology contribute to the high rates of septic shock. The mortality associated with septic shock averages between 30% and 50% in various clinical trial registries. High mortality is in part because of the underlying diseases that often accompany sepsis, such as trauma, peritonitis, cancer, and immunodeficiency diseases.
Etiology. Sepsis results from an inappropriate host response to the presence of pathogens. Noninfectious causes of systemic inflammatory response include pancreatitis, tissue ischemia, trauma, and surgical tissue injury. Infectious causes are the direct result of bacteria, fungi, and viruses. Most cases of bacteremia do not result in shock, and the body’s defense systems effectively destroy the bacteria, preventing widespread dissemination of the infection. Immunocompromised individuals are prone to disseminated infections called bacteremia (the term septicemia is still in clinical use, but is discouraged because of imprecise meaning). When the body’s response to infection or other insults results in systemic signs and symptoms of widespread inflammation, the term systemic inflammatory response syndrome (SIRS) is applied. Septic shock is a severe systemic inflammatory reaction to infection that results in abnormal vasodilation, hypotension, and tissue hypoxia attributable to the maldistribution of blood flow. In 2016 the European Society of Intensive Care Medicine and the Society of Critical Care Medicine published new definitions of sepsis and the related clinical criteria (Table 20.4).
Patients at high risk for septic shock include the very young and the elderly. Patients in these age groups are less likely to be able to destroy invading microorganisms. Patients who are debilitated, mal- nourished, or immunocompromised by acquired immunodeficiency syndrome or chemotherapy or have chronic health problems are also at increased risk. Medical interventions that predispose a patient to septic shock include the use of invasive lines, catheters, and procedures; surgery; and immunosuppressive therapy.
Pathogenesis. Septic shock commonly is associated with gram- negative infections. Gram-negative bacteria include Escherichia coli, Klebsiella pneumoniae, Enterobacter aerogenes, Serratia marcescens, Pseudomonas aeruginosa, and Proteus species. Gram-positive organisms (Staphylococcus aureus, Staphylococcus epidermidis, Streptococcus pneu- moniae) and fungi (Candida species) are also important causes of septic shock. A frequent portal of entry is the genitourinary tract. Other entry sites include the gastrointestinal tract, the respiratory tract, and the skin.
Gram-negative bacteria have within their cell walls a lipopolysac- charide or endotoxin. The cell wall is composed of an O antigen side chain, an R core, and an inner lipid A, the toxic component of the endotoxin. Endotoxins are released into the blood during bacterial cell lysis and initiate a chain of pathophysiologic events. Macrophages are stimulated by endotoxin to release inflammatory cytokines, including TNF-α and IL-1. As previously described, TNF-α and IL-1 are thought to be major factors in the pathogenesis of septic shock because they stimulate release of more immune cytokines and the overproduction of nitric oxide.
and a type of hypovolemic shock is precipitated. In this case blood volume may be normal, but the sudden enlargement of the vascular space causes blood to pool in the periphery. In some cases, there is also significant leakage of fluid from the bloodstream into the interstitial spaces. Both of these conditions cause cardiac preload to drop, followed by a decrease in cardiac output.
Clinical manifestations. The onset of symptoms is usually within 2 to 30 minutes of exposure to the antigen; however, symptoms may not develop for several hours. The clinical presentation can vary widely in severity depending on the stimulus and rapidity of therapy. Initially the patient appears very anxious, with an increased heart rate and respiratory rate. Hypotension, urticaria (hives), pruritus (itching), and angioedema then develop. Often the patient has a sense of impending doom. Bronchoconstriction causes wheezing and cyanosis, and laryngeal edema results in hoarseness and stridor.
Prevention and treatment. Prevention of anaphylactic shock is achieved by avoidance of precipitating allergens. Anaphylactic shock is most frequently associated with antibiotic therapy, in particular β-lactams. Other common causes include other types of drugs, peanuts and tree nuts, insect stings, and snake bites (see Box 20.2). More than one third of cases are of unknown cause. Anaphylaxis is not a reportable disease, and the incidence is unknown; however, the estimated risk of occurrence is 1% to 3% per person in the United States.
Initial therapy for anaphylactic shock is directed to removing the inciting antigen if possible. Airway management and circulatory support are critical. Tracheal intubation and assisted ventilation may be needed. Bronchodilators can be used to manage bronchospasm. Epinephrine is helpful in stabilizing mast cells to prevent further release of inflammatory mediators and increasing blood pressure. Intravenous fluid therapy is used to increase intravascular volume and fill the enlarged vascular space. Increased preload will enhance cardiac output. A vasopressor may be given in an attempt to constrict the arterioles and raise blood pressure. Steroids may be given for their antiinflammatory effects, but their onset of action tends to be slow. Antihistamines may be administered to block histamine receptors, although their effectiveness is reduced once symptoms are present and the inflammatory mediators have been released. New therapeutics are being developed to target endotoxin and proinflammatory cytokines. Response to therapy for anaphylactic shock is usually rapid with a good outcome if instituted early; however, approximately 1% of anaphylactic episodes are fatal, and the majority of these are associated with antibiotics and nut allergies.
Neurogenic Shock Neurogenic shock is often transitory. It may result from depression of the vasomotor center in the medulla or from interruption of sympathetic nerve fibers in the spinal cord. Causes of neurogenic shock include brain trauma that results in depression of the vasomotor center, spinal cord injury, high spinal anesthesia, and drug overdose.
Interruption of the neural pathway for the baroreceptor reflex results in loss of sympathetic tone in the vasculature. Profound peripheral vasodilation of both arterioles and veins occurs and leads to peripheral pooling of blood and hypotension. Decreased venous return to the heart results in decreased cardiac output and hypotension. Body position greatly influences the development of neurogenic shock. When the body is horizontal, venous return may be adequate, and cardiac output and blood pressure are sufficient. However, when an upright position is assumed, peripheral pooling from gravitational effects causes a severe drop in cardiac output and blood pressure. Syncope and fainting will follow unless measures are taken to redistribute the blood. Elevation of the legs, slow position changes, and the use of pressure stockings on the legs may help prevent peripheral pooling. Vasoconstricting drugs and fluid expansion may sometimes be used to increase blood pressure
CHAPTER 20 Shock 445
stage of septic shock, a relative hypovolemia is present because of the increased size of the vascular compartment. Fluid administration to increase preload to a central venous pressure between 8 and 12 mm Hg is advocated at this stage, even though cardiac output may already be quite high. Cardiac output between 8 and 12 L/min is common in early septic shock. Even this level of cardiac output may be inadequate to perfuse the expanded vascular bed.
The generalized inflammatory response triggered in septic shock affects capillary permeability. Increased capillary permeability results in fluid movement out of the vascular beds into the interstitial space. Generalized soft tissue edema occurs and can interfere with tissue oxygenation and organ function.
Clinical manifestations. In contrast to other forms of shock, the clinical manifestation of early septic shock is a hyperdynamic state characterized by high cardiac output and warm extremities (see Table 20.1).
In the hyperdynamic stage of septic shock, blood pressure falls because of the decreased systemic vascular resistance and decreased venous return. Diastolic pressure declines because of a lack of sympathetic tone, and a widened pulse pressure results. The heart rate and stroke volume increase, and cardiac output is higher than normal, but the patient remains hypotensive. If uncorrected, the myocardium can experience global ischemia, leading to systolic dysfunction resulting in a mixed presentation of both septic and cardiogenic shock.
The patient is usually febrile and may have associated chills. In contrast to cardiogenic and hypovolemic shock, in which the peripheral circulation is reduced and extremities are cool and constricted, the skin is pink and warm to the touch in sepsis as a result of peripheral vasodilation. The patient’s level of consciousness may be altered as a result of cerebral ischemia. In septic shock, Svo2 levels may be higher
Macrophage cytokines activate neutrophils and platelets, which release many toxic mediators such as platelet-activating factor, oxygen free radicals, and proteolytic enzymes. Activation of the arachidonic acid cascade in neutrophils and platelets results in prostaglandin, leukotriene, thromboxane, and prostacyclin release, all of which have profound effects on vascular smooth muscle. Increased levels of thromboxanes A2 and B2 produce pulmonary vasoconstriction, mediate bronchoconstriction, and act as potent platelet aggregators. Prostacyclin is a potent vasodilator and may contribute to the development of hypotension.
A number of other inflammatory cascades are activated in septic shock. The complement system is activated with release of C5a and C3a, and can produce microemboli and endothelial cell destruction. Histamine, a potent vasodilator, is released by mast cells. Histamine also increases capillary permeability, which enhances edema formation. The coagulation system is activated and may enhance the development of thrombi. The kinin system is activated and bradykinin is released, which results in vasodilation and increased capillary permeability. All these immune responses are normal reactions to microbial invasion and are necessary for eradicating infections. In overabundance, however, these mechanisms constitute a systemic inflammatory response that can result in shock. The major components of the complex pathophysi- ologic processes of septic shock are illustrated in Fig. 20.8.
Septic shock is associated with profound peripheral vasodilation. Systemic vascular resistance is decreased, and despite the increased cardiac output, blood pressure falls. The veins also dilate, and intra- vascular pooling occurs in the venous capacitance system. Because of maldistribution of blood flow, some portions of the tissue are under- perfused and some are overperfused. Excessive flow to areas of lower metabolic demand limits oxygen extraction, which contributes to a common finding of lower overall oxygen consumption. In the initial
TABLE 20.4 Definitions Related to Sepsis
Category Old Definition
Bacteremia (fungemia) Presence of viable bacteria (fungi) in bloodstream Infection Inflammatory response to invasion of normally sterile host tissue by microorganisms Systemic inflammatory response syndrome (SIRS) Systemic inflammatory response to a variety of clinical insults that can be infectious or noninfectious;
response is manifested by two or more of the following conditions: T >38° C (100.4° F) or <36° C (96.8° F); HR >90 beats/min; RR >20 breaths/min or PaCO2 <32 mm Hg; WBC >12,000 cells/mm3, <4000 cells/mm3, or >10% immature (band) forms; positive fluid balance (>20 mL/kg over 24 hr); hyperglycemia; plasma C-reactive protein/procalcitonin >2 SD above normal value; arterial hypotension; cardiac index >3.5 L/min; arterial hypoxemia; acute oliguria; creatinine increase >0.5 mg/dL; coagulation abnormalities; ileus; platelets <100,000/µL; bilirubin >4 mg/dL; hyperlactatemia; decreased capillary refill
Sepsis SIRS secondary to infection Severe sepsis Sepsis associated with one or more organ dysfunctions, hypoperfusion, or hypotension; hypoperfusion and
perfusion abnormalities may include, but are not limited to, lactic acidosis, oliguria, or acute alteration in mental status
Septic shock Sepsis with persistent hypotension despite fluid resuscitation, along with presence of perfusion abnormalities; patients taking inotropic or vasopressor agents may not be hypotensive at the time perfusion abnormalities are measured
Refractory septic shock Persistent septic shock requiring dopamine >15 mcg/kg/min to maintain mean arterial blood pressure Multiple organ dysfunction syndrome (MODS) Presence of altered organ function requiring intervention to maintain homeostasis Category* Additional Definitions*
Sepsis Life-threatening organ dysfunction caused by a deregulated host response to infection Septic shock Severe sepsis requiring vasopressor therapy to increase mean arterial pressure to ≥65 mm Hg and a lactate
level >2 mmol/L despite adequate fluid resuscitation
HR, Heart rate; PaCO2, arterial carbon dioxide tension; RR, respiratory rate; SD, standard deviation; T, temperature; WBC, white blood cell count. Adapted from Dipiro JT et al, editors: Pharmacotherapy: a pathophysiologic approach, ed 8, New York, 2011, McGraw-Hill, p 2042. *Adapted from Gotts JE, Matthay MA: Sepsis: pathophysiology and clinical management. BMJ 35(3):i1585, 2016.
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solutions and vasopressors are inadequate, inotropic treatment may be indicated to increase cardiac output and oxygen delivery to tissues. Vascular unresponsiveness to these agents may improve with administra- tion of glucocorticoids. In some cases the normal adrenal production of cortisol may be insufficient, and glucocorticoid replacement is helpful. High-dose and high-potency glucocorticoids are not recommended because of their immunosuppressive activity.
Appropriate broad-spectrum antibiotic therapy is started as soon as septic shock is suspected and after quickly obtaining appropriate cultures. Positive blood cultures can be used to narrow the antibiotic regimen to cover the specific microbes; however, blood cultures are negative in about 50% of cases despite the probable presence of systemic microorganisms. Eradication of the inciting organism reduces the stimulus perpetuating SIRS. Shock itself may propagate sepsis by impairing circulation to the intestinal wall and allowing resident microorganisms to traverse from the colon to the bloodstream. Antibiotic selection for septic shock must be modified as new infective organisms are detected.
Because the inflammatory response is believed to be a critical aspect of septic shock, numerous agents designed to inhibit various components
than normal because of the maldistribution of blood flow. Abnormal vasodilation causes greater flow through areas with low metabolic activity. Oxygen consumption by tissues is decreased because metabolically active tissues do not receive enough flow. Lactic acidosis may be present because of tissue hypoxemia.
In the progressive stage of septic shock, some patients deteriorate to a hypodynamic phase. The hypodynamic phase is characterized by decreased cardiac output and the development of organ ischemia. The pulse pressure narrows, and the skin becomes cool and clammy. Profound hypotension unresponsive to catecholamines generally occurs. Arterial blood gas analysis reveals a metabolic and respiratory acidosis with hypoxemia. Myocardial depression either from ischemia or from toxins acting as myocardial depressants contributes to a decreasing cardiac output, deteriorating tissue perfusion, and refractory shock.
Treatment. The primary treatment in early septic shock is buffered isotonic fluid administration at 30 mL/kg to restore adequate ventricular preload. If fluid administration does not restore hemodynamic stability, vasopressor therapy may be indicated to increase the mean arterial pressure (MAP) to more than 65 mm Hg. In patients where crystalloid
Vascular thrombi
TNF-α, IL-1
Bradykinin
Kinins Macrophage activation
Clotting cascade
Complement cascade
Nitric oxide synthase
Neutrophil recruitment
Altered endothelial cell adhesiveness
Microbial initiators (e.g., endotoxin)
Systemic infections
Elderly Very young
Chronically ill Immunodeficient
Invasive lines Surgical procedures
Nosocomial infections Trauma, burns
Lysis of cell membrane
Proteolytic enzymes
↑ Nitric oxide Free radicals
Maldistribution of blood flow
Hypoxic tissue injury
Vascular injury and obstruction
Organ dysfunction
Vasodilation
FIG 20.8 Pathophysiologic process of septic shock. Septic shock is characterized by immune-mediated mechanisms of cellular injury and organ dysfunction. IL-1, Interleukin-1; TNF-α, tumor necrosis factor-α.
CHAPTER 20 Shock 447
Most hospitalized patients experiencing shock will have monitoring devices in place to facilitate assessment of cardiac output, blood pressure, preload, vascular resistance, arterial oxygen content, and venous oxygen content. In addition, frequent measurement of serum lactate concentra- tion, acid–base status, and urine output can be used to indirectly assess the severity of tissue hypoperfusion and hypoxemia.
An understanding of hemodynamic principles and monitoring techniques is helpful to the discussion of shock states. A more thorough discussion can be found in Chapters 15 and 17, and only the main points are reviewed here. The most important factors determining adequate tissue oxygenation are cardiac output, arterial oxygen content, and distribution of blood flow.
Cardiac Output When the cardiac index falls below 2.2 L/min/m2, the potential for inadequate tissue perfusion is high. The cardiac index is the cardiac output divided by the body surface area. Cardiac output is the product of heart rate and stroke volume. Stroke volume is the amount of blood ejected by the ventricle with each heartbeat. Stroke volume is influenced by three major factors: preload, contractility, and afterload. Preload is the amount of blood in the ventricle at the end of diastole. In patients with low preload, a significant improvement in cardiac output often can be achieved by administering blood or intravenous fluids.
Afterload is the aortic impedance that the left ventricle must overcome to eject blood during systole. The major factors determining aortic impedance are the patency of the aortic valve and the resistance in the systemic vascular system. As resistance to left ventricular ejection increases, stroke volume decreases. Conversely, as resistance falls, stroke volume increases. In patients with high afterload, vasodilating agents may be useful in reducing the workload on the left ventricle. Care must be taken not to lower arterial blood pressure excessively, which would reduce perfusion.
Contractility is the inherent state of activation of cardiac muscle fibers. Contractility depends on the amount of free calcium ions available in the cardiac muscle cells after each electrical impulse. Contractility is influenced by sympathetic and parasympathetic nervous system neurotransmitters and other hormones and drugs. Contractility also depends on the amount of muscle mass and is influenced by myocardial ischemia and necrosis, in addition to myocardial-depressant factors that may be released by tissues in shock. Contractility can be increased by measures that increase myocardial perfusion and oxygenation, as well as by use of positive inotropic agents.
Most of the therapeutic interventions aimed at increasing cardiac output also increase myocardial workload and myocardial oxygen consumption. Especially in cardiogenic shock, these parameters must be carefully monitored and manipulated to avoid further cardiac compromise.
Arterial Oxygen Content Oxygen delivery (Ḋo2) can be determined by multiplying cardiac output and arterial oxygen content (Cao2). Cao2 is the sum of dissolved oxygen and oxygen bound to hemoglobin. Adequate gas exchange in the pulmonary capillaries is necessary to fully saturate hemoglobin with oxygen. Impaired ventilation may result in reduced Cao2 and impair Ḋo2. Mechanical ventilation and supplemental oxygen administration may be used to improve arterial oxygen saturation. For patients with low levels of hemoglobin, blood transfusion may significantly improve Ḋo2.
A concept closely related to Ḋo2 is oxygen consumption (V̇o2). Whereas Ḋo2 is a measure of the oxygen delivered to the tissues each minute, V̇o2 is the amount of oxygen actually used by the tissues per minute. In a normal physiologic state, only about 25% of the oxygen delivered is taken up by tissues, which leaves about 75% of the oxygen
of SIRS have been investigated. Unfortunately, nearly all of these agents have failed to provide significant benefit. Some subgroups of septic patients may be helped by these agents, but overall the trials have been disappointing. Activated protein C is currently recommended for those with severe sepsis and a high-risk score for mortality. Protein C has both antiinflammatory and antithrombotic actions, which may be helpful in sepsis, but the complication of bleeding is common. Therapy for septic shock is complicated and requires intensive monitoring and treatment of complications. These aspects are discussed in the next sections of this chapter.
KEY POINTS • Anaphylactic, neurogenic, and septic shock are types of distributive shock
characterized by excessive vasodilation and peripheral pooling of blood. Cardiac output is inadequate because of reduced preload.
• Anaphylactic shock is a result of excessive mast cell degranulation in response to antigen. Mast cell degranulation usually is mediated by IgE antibodies. Release of vasodilatory mediators, such as histamine, into the circulation by mast cells results in severe hypotension. Urticaria, bronchoconstriction, stridor, wheezing, and itching are usually present. Treatment includes maintenance of airway patency and the use of epinephrine, antihistamines, vasopressors, and fluids to restore blood pressure.
• Neurogenic shock results from loss of sympathetic activation of arteriolar smooth muscle. The usual causes include medullary depression from brain injury, drug overdose, or lesions of sympathetic nerve fibers, such as spinal cord injury.
• Septic shock results from a severe systemic inflammatory response to infection. Gram-negative bacteria, gram-positive bacteria, and fungal infections are common causes of septic shock. In gram-negative shock, endotoxins in bacterial cell walls stimulate massive immune system activation. Septic shock from any organism is characterized by release of large numbers of immune mediators (e.g., cytokines) resulting in widespread inflammation. The clotting cascade, complement system, and kinin system are activated as part of the immune response.
• Widespread inflammation leads to profound peripheral vasodilation with hypotension, maldistribution of blood flow with cellular hypoxia, and increased capillary permeability with edema formation.
• Initially, septic shock is characterized by abnormally high cardiac output resulting from immune-mediated vasodilation and sympathetic activation of the heart. The patient is usually febrile, pink, and warm. Even though cardiac output is high, cellular hypoxia is present because of maldistribution of blood flow. Reduced cellular oxygen utilization is manifested as a high Svo2.
• Therapy for septic shock is aimed at improving the distribution of blood flow and managing infection with antibiotics. Administration of fluid and drugs to increase cardiac and vascular performance is done to improve the distribution of blood flow.
ASSESSMENT AND HEMODYNAMIC MONITORING Astute assessment and appropriate hemodynamic monitoring are essential for the prevention, detection, and management of shock. Although new methods of direct visualization of capillary flow are in development, it is not clinically feasible to directly measure the adequacy of cellular oxygenation in all of the body tissues. A number of indirect measures and clinical signs and symptoms are used to help indicate when tissue hypoxia is probably occurring. Clinical signs of shock represent tissue hypoperfusion and may include alteration of mentation, cool diaphoretic skin, and a reduction in urinary output (less than 30 mL/hr). These same parameters are used to tailor therapy and assess outcomes of that therapy.
448 UNIT V Cardiac Function
pressures, cardiac output, and Svo2 (Fig. 20.9). A catheter lumen in the right atrium allows measurement of right atrial pressure. Right atrial pressure is used to indicate right ventricular end-diastolic volume or preload. The primary value of monitoring right atrial pressure is in the management of blood volume. A low right atrial pressure is associated with a low preload and may indicate a need for extracellular volume replacement to enhance cardiac output. Conversely, a high right atrial pressure may indicate a need for extracellular volume reduction to decrease cardiac workload and congestive symptoms.
to return to the heart in venous blood. When Ḋo2 falls because of low cardiac output, tissues extract a greater percentage of the oxygen delivered such that the amount returning in venous blood is lower. When distribu- tion of blood flow and tissue extraction of oxygen are impaired, as in septic shock, oxygen consumption falls and the amount of oxygen returning in venous blood will be higher than it should be. The amount of oxygen returning to the heart in venous blood can be measured by a special catheter in the pulmonary artery that detects venous oxygen saturation (Svo2). Outcomes of therapy to improve Ḋo2 can be assessed by monitoring Svo2. In cardiogenic shock, for example, one would expect to see Svo2 increase from a low value back toward 75% as cardiac output improves. In septic shock, one would expect to see Svo2 decrease from a high value back toward 75% as distribution of blood flow to metaboli- cally active tissues improves.
Distribution of Blood Flow In addition to adequate cardiac output and arterial oxygen content, optimal blood circulation is imperative to prevent cellular hypoxia and secondary injury. During states of reduced circulating volume a number of compensatory and neurohormonal pathways are activated to maintain tissue perfusion (as described earlier). As prolonged states of cellular hypoperfusion continue, the severity of shock progresses from decom- pensated to irreversible shock and death.
Hemodynamic Monitoring Sophisticated monitoring equipment is available to assess the hemo- dynamic status of patients in shock. Normal values are listed in Table 20.5. A flow-directed, pulmonary artery catheter can be inserted through the jugular or subclavian vein to allow measurement of intracardiac
TABLE 20.5 Hemodynamic Parameters
Parameter Formula Normal Values
Central venous pressure (CVP) (Right atrial pressure)
Direct measurement 2–6 mm Hg
Left ventricular end-diastolic pressure (LVEDP)
Direct measurement 5–12 mm Hg
Mean arterial pressure (MAP) = (SBP − DBP / 3) + DBP
70–105 mm Hg
Pulm art press systolic (PAS) Direct measurement 15–25 mm Hg Pulm art press diastolic (PAD) Direct measurement 8–15 mm Hg Pulm art press mean (PAPM) Direct measurement 10–20 mm Hg Pulm art occlusion pressure
(PAOP) Direct measurement 6–12 mm Hg
Adapted from Parrillo, Dellinger, eds: Critical care medicine: principles of diagnosis and management in the adult, ed 4, Philadelphia, 2014, Elsevier Saunders.
Proximal port
Thermistor connector
Balloon port
Distal port
Distal lumen
Balloon
Proximal lumen
FIG 20.9 Properly positioned pulmonary artery catheter showing the proximal port in the right atrium and the distal port in the pulmonary artery. Cardiac output determinations can be made by injecting hypothermic solution into the proximal port and measuring the degree of warm-up near the distal port. A balloon at the end of the catheter can be intermittently inflated to measure pulmonary capillary occlusion pressure. When the balloon is inflated, it will float into a small artery and wedge there. Then the distal port measures the pressure in the capillary, which is a direct reflection of left atrial pressure.
CHAPTER 20 Shock 449
leads to neutrophil migration to pulmonary capillaries. Neutrophils release destructive proteolytic enzymes, produce oxygen free radicals, and secrete inflammatory chemicals that make pulmonary capillaries leaky. A protein-rich inflammatory exudate leaks into the interstitial spaces and alveoli of the lung, where it interferes with pulmonary gas exchange. Inflammation may also damage type II pneumocytes, that normally produce surfactant. Surfactant deficiency alters alveolar surface tension and causes smaller alveoli to collapse. The effort to breathe is very great in patients with ARDS because of pulmonary edema and alveolar collapse (atelectasis). Further discussion of ARDS and its clinical manifestations can be found in Chapter 23.
Disseminated Intravascular Coagulation DIC is a serious complication of septic shock characterized by abnormal clot formation in the microvasculature throughout the body. DIC is thought to result from immune activation of the clotting cascade. Obstruction of blood flow by small clots in the microcirculation leads to ischemic tissue damage. In addition, widespread clot formation consumes platelets and clotting factors, which leaves the patient at risk for serious bleeding. Laboratory assessment of the platelet count and clotting function is helpful in detecting and monitoring DIC. The platelet count and fibrinogen levels are typically low, whereas levels of fibrin degradation products (e.g., D-dimer) are elevated. Measures of the intrinsic and extrinsic clotting cascades demonstrate an elevated partial thromboplastin time and prothrombin time.
The clinical features of DIC are variable, depending on the location and severity of vascular thrombi. Vascular obstruction may be manifested as acute ischemia of the fingers and toes, with pain, pallor, and poor capil- lary refill. Obstruction of the kidney, liver, spleen, and lung by clots may result in signs and symptoms of organ failure. Patients may demonstrate various degrees of bleeding. Intravenous lines and catheters may begin to ooze around insertion sites. Previously stable incision lines may begin to bleed, and hematuria and hemoptysis may be present. Spontaneous intracranial hemorrhage is a particularly disastrous complication of DIC. Further discussion of DIC can be found in Chapter 14.
Acute Renal Failure In shock, the kidneys undergo prolonged periods of hypoperfusion. Vasoconstriction of the afferent arterioles causes decreased glomerular blood flow, decreased glomerular hydrostatic pressure, and decreased glomerular filtration rates. Hypoxic cellular damage occurs after 15 to 20 minutes of acute ischemia and results in necrosis of tubular epithelial cells. Acute tubular necrosis (ATN) is associated with decreased urinary excretion of waste products such as creatinine and urea. Rapidly increas- ing blood urea nitrogen and serum creatinine concentrations are indicative of ATN.
Urine output quickly falls toward zero, and the kidneys do not respond to fluids or diuretics. Renal tubular epithelial cell casts in the urine indicate sloughing of tubular cells. ATN is potentially reversible, although renal function must generally be supported for a time with dialysis. Recovery of tubular function begins 1 to 2 weeks after the initial injury and may take up to 1 year to be completed. Further discussion of ATN can be found in Chapter 28.
Multiple Organ Dysfunction Syndrome When organ dysfunction develops in two or more systems, the term MODS may be applied. When the patient sustains multiple organ injury from a primary insult such as trauma, the term primary MODS is used. Secondary MODS is associated with SIRS and usually develops days to weeks after the primary insult. Sepsis and septic shock are the most common causes of secondary MODS. Mortality from MODS differs depending on the number of organs affected; involvement of two organ
Another catheter lumen located in the pulmonary artery allows measurement of pulmonary artery pressure. Measurement of pulmonary artery pressure is helpful in assessing pulmonary complications of shock. An increase in pulmonary artery pressure may occur in progressive shock as the lungs react to inflammatory mediators and become edematous. In the absence of lung disease, pulmonary artery diastolic pressure reflects left atrial pressure. Assessment of left atrial pressure is important because it indicates left ventricular preload—an important determinant of cardiac output. A more accurate assessment of left atrial pressure can be obtained by using a small balloon at the tip of the catheter to obtain a pulmonary capillary occlusion pressure. When the balloon is inflated, the catheter tip floats into a small pulmonary artery and wedges itself there. The balloon blocks the arterial pressure events behind it and allows measurement of pressure in the capillary. Pulmonary capillary occlusion pressure is a direct reflection of left atrial pressure. Low left atrial pressure indicates reduced left ventricular preload and may signify the need for extracellular volume replacement (Table 20.5).
KEY POINTS • Hemodynamic monitoring during shock states is helpful for assessing cardiac
output, volume status, oxygen delivery, and oxygen consumption. The pressures usually monitored include right atrial pressure, pulmonary artery pressure, and left atrial pressure.
• Hemodynamic monitoring is used to guide management of cardiac preload, afterload, and contractility to optimize cardiac output, while minimizing cardiac workload.
• Normally, about 25% of the oxygen in arterial blood is extracted by the tissues, so the mixed venous oxygen saturation (Svo2) is approximately 75%. Low cardiac output may result in greater oxygen extraction and lower Svo2; maldistribution of flow, as occurs in septic shock, may result in less oxygen extraction and higher Svo2.
COMPLICATIONS OF SHOCK
The pathologic process of the shock state and the effects on other organs may precipitate life-threatening complications. In severe shock of any cause, particularly in septic shock, a generalized inflammatory reaction may occur and is thought to contribute to the organ damage associated with shock states. Complications associated with shock include acute respiratory distress syndrome (ARDS), disseminated intravascular coagulation (DIC), acute renal failure, and multiple organ dysfunction syndrome (MODS). Damage to organ systems may be ongoing even after the initial precipitating event has been addressed. Inflammatory cytokines are thought to mediate this organ damage by altering metabolism, recruiting neutrophils, initiating the coagulation cascade, and altering capillary permeability. The complexities of this syndrome are being slowly unraveled as the mechanisms of immune signaling are better understood.
Acute Respiratory Distress Syndrome ARDS, a form of respiratory failure, is most commonly associated with septic shock. ARDS is characterized by the development of refractory hypoxemia, decreased pulmonary compliance, and radiologic evidence of pulmonary edema associated with normal cardiac preload (noncar- diogenic pulmonary edema). The mortality in patients with shock that is complicated by ARDS ranges from 34% to 64%. The primary cause of death in ARDS patients is multiple organ failure, not severe hypoxemia.
The lungs are a common target of immune-mediated damage in all types of shock. Tissue ischemia, even in areas distant from the lungs,
450 UNIT V Cardiac Function
systems carries a 54% mortality, and involvement of five organs carries a 100% mortality. In MODS, the body is unable to maintain homeostasis, and intensive intervention is necessary to maintain life.
As with other manifestations of septic shock, MODS is thought to be initiated by immune mechanisms that are overactive and destructive. Immune cytokines affect endothelium throughout the body and cause recruitment of neutrophils and activation of inflammation in vascular beds. Ongoing inflammation leads to tissue destruction and organ dysfunction. Inflammatory cytokines and stress hormones stimulate an increased body metabolism, which places a greater demand on already dysfunctional organs.
KEY POINTS • Shock states result in reduced or inadequate cellular oxygen consumption and
may affect all organs and systems in the body. Complications of shock can be viewed as inflammatory in nature. Inflammation is triggered by hypoxic injury to cells, by antigen, or by endotoxin. Excessive or inappropriate immune system responses lead to leaking capillaries; damage from proteolytic enzymes; and systemic activation of the clotting, complement, and kinin systems.
• Respiratory failure and kidney failure are commonly associated with shock. Inappropriate activation of the clotting cascade may result in disseminated intravascular coagulation (DIC). Multiple organ dysfunction syndrome (MODS) may occur with widespread cellular hypoxia and necrosis.
Shock is a life-threatening syndrome associated with high mortality. Early identification of patients at risk and initiation of therapeutic measures may decrease the development of shock syndrome. Four major categories of circulatory shock have been described: cardiogenic, obstructive, hypovolemic, and distributive. Although each type of shock has specific characteristics, all are associated with a deficiency of cellular oxygen consumption. Tissue ischemia leads to hypoxic cellular dysfunction and
death, generation of oxygen free radicals, and stimulation of a systemic inflammatory response. In late-stage shock and in septic shock, ongoing systemic inflammation leads to progressive organ dysfunction and can precipitate a number of shock complications, including ARDS, DIC, ATN, and MODS. Ongoing research into effective ways to improve microcirculatory function and intervene in the inflammatory cascade is needed to improve outcomes.
S U M M A R Y
Topalian S, Ginsberg F, Parrillo JE: Cardiogenic shock. Crit Care Med 36(Suppl 1):S66–S74, 2008.
Trost JC, Hillis LD: Intra-aortic balloon counterpulsation. Am J Cardiol 97:1391–1398, 2006.
Septic Shock Dellinger RP: Cardiovascular management of septic shock. Crit Care Med
31(3):946–955, 2003. Dellinger RP, et al: Surviving sepsis campaign: international guidelines for
management of severe sepsis and septic shock. Crit Care Med 36(1): 296–327, 2008, 2008.
Del Sorbo L, Slutsky AS: Acute respiratory distress syndrome and multiple organ failure. Curr Opin Crit Care 17(1):1–6, 2011.
Dhainaut JF: International integrated database for the evaluation of severe sepsis (INDEPTH): clinical evaluation committee report on the safety of drotrecogin alfa (activated) therapy. Curr Med Res Opin 24(4):1187–1197, 2008.
Gotts JE, Matthay MA: Sepsis: pathophysiology and clinical management. BMJ 353:i1585, 2016.
Kakihana Y, Ito T, Nakahara M, et al: Sepsis-induced myocardial dysfunction: pathophysiology and management. J Intensive Care 4(22):2016. doi:10.1186/s40560-016-0148-1.
Kang-Birken SL, Killgore-Smith K: Severe sepsis and septic shock. In Dipiro JT, et al, editors: Pharmacotherapy: a pathophysiologic approach, ed 8, New York, 2011, McGraw-Hill, pp 2041–2054.
Levy MM, Dellinger RP, Townsend SR, et al: The Surviving Sepsis Campaign: results of an international guideline-based performance improvement program targeting severe sepsis. Intensive Care Med 36:222–231, 2010.
Simons FE: Anaphylaxis. J Allergy Clin Immunol 125:S161, 2010. Singer ME, Deutschman CS, Seymour CW, et al: The Third International
Consensus Definitions for Sepsis and Septic Shock (Sepsis-3). JAMA 315(8):762–774, 2016.
Trzeciak S, Dellinger R, Parrillo J: Septic shock. In Parrillo J, Dellinger R, editors: Critical care medicine: principles of diagnosis and management in the adult, ed 4, Philadelphia, 2014, Elsevier Saunders, pp 365–378.
RESOURCES Pathophysiology of Shock American College of Surgeons: Advanced trauma life support course for
physicians, Chicago, 2008, Author. Andrades ME, Movina A, Spasic S, Spasojevic I: Bench-to-bedside review:
sepsis—from the redox point of view. Crit Care 15(5):230, 2011. Deleston D, Opal SM: Future perspectives on regulating pro- and
anti-inflammatory responses in sepsis. Contrib Microbiol 17:137–156, 2011.
Devlin JW, Matzke GR: Acid-base disorders. In Dipiro JT, et al, editors: Pharmacotherapy: a pathophysiologic approach, ed 8, New York, 2011, McGraw-Hill, pp 923–942.
Elbers PW, Ince C: Bench-to-bedside review: mechanisms of critical illness—classifying microcirculatory flow abnormalities in distributive shock. Crit Care 10(4):221–228, 2006.
Ellis CG, Jagger J, Sharpe M: The microcirculation as a functional system. Crit Care 9(Suppl 4):S3–S8, 2005.
Rixen D, Siegel JH: Bench-to-bedside review: oxygen debt and its metabolic correlates as quantifiers of the severity of hemorrhagic and post-traumatic shock. Crit Care 9(5):441–453, 2005.
Warren JC: Surgical pathology and therapeutics, Philadelphia, 1895, Saunders.
Cardiogenic and Hypovolemic Shock Erstad BL: Hypovolemic shock. In Dipiro JT, et al, editors: Pharmacotherapy:
a pathophysiologic approach, ed 8, New York, 2011, McGraw-Hill, pp 421–436.
Hochman JS, et al: Early revascularization in acute myocardial infarction complicated by cardiogenic shock. SHOCK Investigators. Should we emergently revascularize occluded coronaries for cardiogenic shock? N Engl J Med 341(9):625–634, 1999.
MacLaren R, Rudis MI, Dasta JF: Use of vasopressors and inotropes in the pharmacotherapy of shock. In Dipiro JT, et al, editors: Pharmacotherapy: a pathophysiologic approach, ed 8, New York, 2011, McGraw-Hill, pp 399–420.
Shoemaker WC, et al: Resuscitation from severe hemorrhage. Crit Care Med 24(Suppl):S12–S23, 1996.
451
Respiratory Function and Alterations in Gas Exchange
Lorna L. Schumann
K E Y Q U E S T I O N S • How do the structures involved in gas exchange in the lungs
differ from conducting structures? • What factors determine the work of breathing? • How are alveolar ventilation and oxygenation estimated and
assessed? • What factors affect the distribution of ventilation and perfusion
in the lungs? • How are oxygen and carbon dioxide transported in the
circulation?
• What pathophysiologic factors might alter ventilation-perfusion matching in the lungs?
• How can the outcomes of ventilation-perfusion mismatching be assessed clinically?
• What pulmonary function test abnormalities are characteristic of obstructive pulmonary disorders?
• What are the risk factors and complications of pulmonary venous thromboembolism and hypertension?
• What are the various types of pulmonary malignancies?
C H A P T E R O U T L I N E Functional Anatomy, 452
Development of the Pulmonary System, 452
Upper Airway Structures, 452
Lower Airway Structures, 453
Pulmonary Circulation, 457
Age-Related Variations, 457
Ventilation, 460 Lung Volumes and Capacities, 460
Dead Space, 460
Minute Ventilation, 460
Alveolar Ventilation/Oxygenation, 461
Mechanics of Breathing, 461
Airway Resistance, 461
Lung Compliance, 462
Distribution of Ventilation, 462
Neurologic Control of Ventilation, 462
Pulmonary Blood Flow, 465 Pulmonary Vasculature, 465
Distribution of Blood Flow, 465
Ventilation–Perfusion Ratios, 465
Hypoxic Vasoconstriction, 466
Diffusion and Transport of Respiratory Gases, 466 Barriers to Diffusion, 466
Oxygen Transport, 467
Carbon Dioxide Transport, 467
Alterations in Pulmonary Function, 468 Hypoventilation and Hyperventilation, 468
Hypoxemia and Hypoxia, 468
Acute Respiratory Failure, 469
Etiology, 469 Clinical Manifestations, 470 Diagnosis, 470 Treatment, 470
Diagnostic Tests, 471 Pulmonary Function Testing, 471
Bronchial Provocation Tests, 472
Alterations in Pulmonary Vasculature, 472 Pulmonary Hypertension, 472
Etiology, 472 Pathogenesis, 472 Clinical Manifestations, 472 Diagnosis, 473 Treatment, 473
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
UNIT VI Respiratory Function
21
452 UNIT VI Respiratory Function
4. The alveolar period (late fetal life to 8 years) is the final period of lung development when alveolar ducts form from terminal sacs and alveoli mature by increasing in size and number. Approximately one eighth to one sixth of the adult number of alveoli are present at birth. During this growth period, there is a lack of structural collateral pathways necessary for maintaining open airways. This may make the individual more susceptible to atelectasis (incomplete expansion) and obstruction. Lung damage during this period may cause per- manent defects in lung development.
Upper Airway Structures The respiratory system can be divided into two major anatomic areas: the upper airway and the lower airway. The upper airway consists of the nasopharyngeal cavity (nasopharynx, oropharynx, laryngopharynx) (Fig. 21.2). The lower airway contains the larynx, trachea, bronchi, bronchopulmonary segments, terminal bronchioles, and the acinus (the alveolar region supplied by one terminal bronchiole, which includes numerous alveoli) (see Fig. 21.2).
The nasal cavity conducts gases to and from the lungs and filters, warms, and humidifies the air. It is a rigid box composed of two-thirds cartilage and one-third bone, which prevents collapse during movement of air. The convoluted turbinates (cone-shaped bones) of the nasal cavity are highly vascular, and their blood flow forms an efficient heat exchanger. Evaporation of water from the turbinate surface and from the mucus secreted by mucosal glands raises the water vapor of the inspired air to normal saturation. Therefore air is warmed to body temperature and humidified.
Air is filtered by the large hairs (vibrissae) of the nasal cavity mucus and cilia that line the nasal cavity. The cilia sweep foreign particles trapped by mucus into the nasopharynx, where they are swallowed or expectorated. An electron micrograph of the tracheobronchial lining is shown in Fig. 21.3. Pseudostratified ciliated columnar epithelium lines the trachea and bronchi. Goblet cells and mucus-producing glands are contained in this area and are responsible for synthesizing approximately 100 mL/day in the adult, more with disease. The composition of mucus is 95% water, with the remaining 5% consisting of mucopolysaccharides, mucoproteins, and lipids. Maintenance of water content and fluid balance is important to the mobilization of secretions. A child has more mucus- producing glands and therefore produces more mucus than an adult. Consequently, in an ill child the overproduction of mucus in combination with small airway size may precipitate tracheobronchial obstruction.
Cilia (Fig. 21.4) beat in a sweeping motion like oars rowing a boat at approximately 1000 to 1500 strokes per minute. Mucociliary transport (movement of mucus and trapped particles upward) is a primary defense mechanism of the tracheobronchial tree. Inhaled particles, bacteria, and macrophages are removed from the respiratory tract by ciliary clearance and the cough reflex. Ciliary function is impaired by smoking, alcohol ingestion, hypothermia, hyperthermia, cold air, low humidity, starvation, anesthetics, corticosteroids, noxious gases, the common cold, and increased mucus production.
The four paranasal sinuses are air-containing spaces adjacent to the nasal passages that provide speech resonance and increase the surface
The primary function of the lungs is gas exchange. Oxygen is transported to the body tissues, and carbon dioxide, a waste product, is transported out of the body. The exchange of these gases takes place at the alveolar- capillary membrane. For effective gas exchange to occur, the processes of ventilation, perfusion, and diffusion must occur simultaneously at the alveolar-capillary interface. Problems with any of these three processes can result in hypoxemia (low arterial oxygen concentration) or hyper- carbia (high arterial carbon dioxide concentration). An understanding of the anatomy and physiology of pulmonary gas exchange is necessary for learning about the pathophysiologic processes that follow.
FUNCTIONAL ANATOMY Development of the Pulmonary System Initially, the laryngotracheal diverticulum includes the esophagus and the trachea as a single tube. Then longitudinal ridges begin to develop along the tube and form a septum (wall), which separates the esophagus from the trachea. Failure of this septum to develop leads to a tracheo- esophageal fistula (abnormal opening), leaving a communication between the esophagus and the trachea. This abnormality occurs about once in every 2500 births. Approximately 90% of the cases of esophageal atresia (blind pouch) are of the type seen in Fig. 21.1, A. Parts B through D show variations of tracheoesophageal fistulas.
As the laryngotracheal tube continues to elongate, the lung bud divides into two bronchial buds, which become the bronchi and the right and left lungs. The right bronchus becomes larger than the left. The right mainstem bronchus is normally more vertical than the left because it is the main continuation of the laryngotracheal tube and branches off the trachea at a 20-degree angle. The left bronchus branches off the trachea at an angle of 40 to 60 degrees. This normal anatomic development increases the chances that an inhaled foreign body will lodge in the right mainstem bronchus rather than the left.
Fetal lung development can be divided into the following four periods: 1. During the pseudoglandular period (5 to 17 weeks) the bronchial
divisions are differentiated, and the major elements of lung tissue are present except for those involved in gas exchange: the respiratory bronchioles and alveoli.
2. During the canalicular period (16 to 25 weeks) the bronchi and bronchioles enlarge and vascularization of lung tissue takes place. At the end of this period, respiration is possible because of the development of respiratory bronchioles and primitive alveoli. Alveoli are grapelike sacs in which gas exchange occurs. Type II pneumocytes (epithelial cells that are on the internal surface of alveoli) begin to secrete surfactant at the end of this period. Surfactant is a phos- pholipid essential for maintaining alveolar patency.
3. During the terminal sac period (24 weeks to birth), terminal air sacs become thinner, preparing the lung tissue for gas exchange. Proliferation of pulmonary capillaries is also prominent during this period. Infants born prematurely in the early weeks of this period (25 to 28 weeks) are susceptible to the development of respiratory distress syndrome because of the immaturity of the pulmonary structures.
Pulmonary Venous Thromboembolism, 473
Etiology, 473 Pathogenesis, 474 Clinical Manifestations, 474 Diagnosis, 474 Treatment, 475
Pulmonary Malignancies, 475 Etiology, 475
Pathogenesis, 475
Clinical Manifestations, 476
Diagnosis, 476
Treatment, 476
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 453
To prevent secretions or food from entering the middle ear during swallowing, the pharyngeal muscles close the eustachian tube briefly. The nasal end of the eustachian tube is surrounded by flexible cartilage arranged in a spiral configuration. The muscles surrounding the eustachian cartilage close the opening by pulling the cartilage tighter. Because the tube is shorter in children, the potential for otitis media (infection of the middle ear) is increased.
Lower Airway Structures After air passes through the nasal cavity or oral cavity into the pharynx, it moves into the larynx and finally into the tracheobronchial tree. The acinus (Fig. 21.5) is located at the end of the tracheobronchial tree and is composed of bronchioles, alveolar ducts, and alveoli.
The larynx is the transition area between the upper and lower airways. Anatomically it is considered part of the lower airway, but functionally it is similar to the upper airway. The larynx contains the epiglottis, vocal cords, and cartilages. The anatomic arrangement of the larynx functions to prevent aspiration during swallowing and to assist in phonation and coughing. Each vocal cord is attached anteriorly to the thyroid cartilage and posteriorly to the arytenoid cartilage. Vibration of the cords leads to phonation. Food is prevented from entering the trachea during swallowing by closure of the epiglottis. If food or fluid should bypass the epiglottis and enter the tracheobronchial tree, the cough reflex is initiated. The majority of cough receptors lie at the carina. A cough reflex is produced when the epiglottis and vocal cords close tightly against air entrapped in the lungs. Occasionally, individuals cough hard enough to break a rib. When the expiratory muscles contract forcefully against the closed epiglottis and vocal cords, a pressure of approximately 100 mm Hg is created. When the cords and epiglottis suddenly open, the high-pressure buildup is allowed to escape. This reflex rapidly removes foreign matter from the tracheobronchial tree.
The major cartilages of the larynx are the thyroid, cricoid, and arytenoid. The thyroid cartilage is a large, shield-shaped cartilage often referred to as the Adam’s apple. Immediately below the thyroid cartilage is the site for emergency opening (cricothyroidotomy) of the tracheal
area for heat and water vapor exchange. The sinuses are swept clean by mucociliary action when the communicating passages that connect them with the nasal passages remain open.
The eustachian tube between the middle ear and the posterior nasopharynx maintains the air in the middle ear at atmospheric pressure.
Esophageal atresia
A
C
B
D
Trachea
Trachea
Fistula
Fistula
Esophagus
Esophagus
FIG 21.1 Four primary types of tracheoesophageal fistulas. A, The most common type, with complete atresia (blind pouch) of the esophagus. B, A common opening between the trachea and esophagus. C, An opening from an esophageal pouch into the trachea. D, A double opening from two unconnected ends of the esophagus. Arrows indicate flow of fluid from the esophagus to the trachea.
Nasopharynx
Bronchi
Bronchioles
Alveoli
Oropharynx
Laryngopharynx
Esophagus
Nasal cavity
Tongue
Thyroid cartilage
Trachea
Cricoid cartilage
FIG 21.2 Sagittal view diagram of the nasopharyngeal cavity (nasal cavity, nasopharynx, oropharynx, and laryngopharynx) and the respiratory passages beginning at the trachea and ending at the alveoli.
454 UNIT VI Respiratory Function
bronchioles (conducting airways), which branch into respiratory bronchioles, where gas exchange begins.
Terminal bronchioles, which include the conducting airways, further subdivide into two or more respiratory bronchioles in which gas exchange begins. The respiratory bronchioles divide into two or more alveolar ducts, which in turn supply several alveoli.
Nervous system control of the bronchi and bronchioles is mediated by the autonomic nervous system. Stimulation of the parasympathetic nervous system via the vagus nerve leads to constriction (by means of acetylcholine receptors) of bronchial smooth muscle. Stimulation of the sympathetic nervous system leads to relaxation of bronchial smooth muscle. Sympathetic stimulation is mediated by β2-adrenergic receptors, which are under the control of circulating catecholamines. (See the discussion in the “Neurologic Control of Ventilation” section later in this chapter for additional information.)
The lung is fully developed by the eighth year of life. The large alveolar surface area in conjunction with pulmonary surfactant, a phospholipid produced by type II alveolar cells, lowers surface tension and facilitates gas exchange. Two other types of cells are found: type I alveolar cells (type I pneumocytes), which are the epithelial structural cells of the alveoli, and alveolar macrophages, which act as a defense mechanism by phagocytizing particles in the alveoli. Alveolar macro- phages can be damaged by cigarette smoking and by inhalation of silica (SiO2).
Adult lungs contain approximately 300 million alveoli, and the newborn lung contains one eighth to one sixth the adult number. An elderly person may also have a reduction in the number of alveoli as part of the normal aging process, but many elderly people retain the same number of alveoli they had as a younger adult.
Gas exchange occurs in the alveolar units (see Fig. 21.5) where oxygen and carbon dioxide transfer across the alveolar-capillary membrane.
passageway. The cricoid cartilage lies below the thyroid cartilage and is the narrowest point in the airway of a child. It is the only complete tracheal ring, and because of its narrowness in the small child’s airway, an endotracheal tube cuff is not necessary for required intubation of the airway.
The trachea, bronchi, and bronchioles make up the conducting airways that allow passage of gases to and from the gas exchange units (alveoli). These conducting airways comprise a proportionately larger amount of the total airway system in the infant and child than in the adult. The trachea (Fig. 21.6) contains incomplete cartilaginous rings; it is approximately 11 to 13 cm long and lies between the cricoid cartilage and the carina (ridge located at the lower end of the trachea). Individual variations in tracheal shape include U, circular, D, C, triangular, and elliptical (Fig. 21.7). Of 111 adult tracheas studied, the incidence of shapes in order of frequency was 48.6% C, 27% U, 12.6% D, 8.2% elliptical, 1.8% circular, and 1.8% triangular. These tracheal variations may affect ventilation of patients who have endotracheal tubes in their airways and require mechanical ventilation.
The trachea divides into two mainstem (primary) bronchi, which contain cartilage and smooth muscle. Viewing the body anteriorly, the carina is located at the angle of Louis, between the sternum and manubrium at the second intercostal space.
The small size of the conducting airway in the infant and child makes even a small decrease in the size of the lumen from an obstruction critical to airway conduction. Primary bronchi further divide into five (secondary) lobar branches, three to the right lung (upper, middle, and lower lobes) and two to the left lung (upper, which includes the lingual [area around the heart] and lower lobes). Each lobar branch enters a lobe of the lung and further divides into bronchopulmonary segments (10 segments in the right lung, 9 segments in the left lung) (Fig. 21.8). Each bronchopulmonary segment is composed of 50 or more terminal
FIG 21.3 Cells composing the bronchial epithelium are ciliated epithelial cells (CE), goblet cells (G), and basal cells (B). Goblet cells have abundant mucus granules in the cytoplasm, and their apical surface is devoid of cilia. Basal cells, as their name indicates, are located along the abluminal portion of the lining epithelium, adjacent to the basal lamina. The arrows at the apical surface of the airway cells indicate the location of junctional complexes between contiguous epithelial cells. (Human lung surgical specimen, transmission electron microscopy.) (From Murray JF, Nadel JA: Textbook of respiratory medicine, ed 4, Philadelphia, 2005, Elsevier.)
A C
B
FIG 21.4 A, Electron micrograph shows the ultrastructural characteristics of cilia (Ci) on airway epithelial cells (E). Each cilium has a long, slender shaft that ends with a conical tip. The base of the cilium is anchored in the cell’s apical cytoplasm by a curved and tapered basal foot (modified centriole; arrowhead). Also extending from the apical surface of ciliated airway epithelial cells are microvilli (Mv). The two horizontal arrows in panel A represent the cross-sectional planes illustrated in panels B and C. B and C, Airway cilia have the classic microtubular arrangement of motile cilia, namely, nine peripheral doublets and two central singlets. Microvilli are randomly distributed among the cilia. (Human lung surgical specimen, transmission electron microscopy.) (From Murray JF, Nadel JA: Textbook of respiratory medicine, ed 4, Philadelphia, 2005, Elsevier.)
Terminal bronchiole
Blood vessel
Respiratory bronchiole
Alveolar sac
Alveolus
Respiratory bronchioles
Pores of Kohn
Alveolar-capillary membrane (area of gas exchange)
Canals of Lambert
FIG 21.5 A portion of the lower respiratory tract, including a terminal bronchiole, respiratory bronchioles, and alveoli, where interchange of O2 and CO2 occurs between the thin walls of the alveoli and the capillary membrane.
456 UNIT VI Respiratory Function
Cross section through trachea
Thyroid cartilage
Cricothyroid ligament
Cricoid cartilage
Connective tissue sheath (cut away)
Intercartilaginous ligaments
Tracheal cartilages
Mucosa showing longitudinal folds formed by dense collections of elastic fibers
Eparterial bronchus
To upper lobe
To middle lobe
To lower lobe
Intrapulmonary IntrapulmonaryExtrapulmonary
R. main bronchus
L. main bronchus
To upper lobe
To lingula
To lower lobe
Connective tissue sheath
Cartilage
Elastic fibers
Gland
Small artery
Lymph vessels
Nerve
Epithelium
Nerve Tachealis muscle
Esophageal muscle
Epithelium
Lymph vessels
Small arteries
Gland
Elastic fibers
Anterior wall
Posterior wall
FIG 21.6 Anterior diagram of the trachea and major bronchi. L, Left; R, right. (Netter illustration from www. netterimages.com. Copyright © Elsevier, Inc. All rights reserved.)
The partial pressures of gases in the alveoli are termed PAo2 for oxygen and PAco2 for carbon dioxide. The partial pressures of gases in the blood are termed Pao2 for oxygen and Paco2 for carbon dioxide. Collateral alveolar ventilation can also occur through holes in the alveolar walls, called the pores of Kohn or canals of Lambert. A small child has less collateral ventilation because of fewer pores of Kohn. The alveolar
membrane is thicker in the neonate and reaches the adult thinness of 0.5 mm by the age of 8 years. This thinner membrane may allow increased transfer of O2. The healthy older adult has very thin-walled, enlarged air sacs and fewer capillaries than a younger adult. Respiratory system changes associated with normal aging are described in “Geriatric Considerations: Changes in the Respiratory System.”
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 457
Pulmonary Circulation Blood supply to the lungs comes from two sources: the bronchial artery system, which supplies a small amount of oxygenated blood to the pleura and lung tissues, and the pulmonary artery system, which provides a vast capillary network for O2 and CO2 exchange. The capillary networks of the neonate, young child, and elderly person are less than those in the average healthy adult. Oxygen-depleted (unoxygenated) blood leaves the right ventricle by way of the pulmonary artery trunk, which branches into the right and left pulmonary arteries. The pulmonary arteries further divide into smaller arteries and arterioles that feed into the capillary network where gas exchange occurs from the alveolar-capillary membrane. Pulmonary artery blood is unoxygenated, and blood in the pulmonary veins is oxygenated. The opposite is true in the rest of the
body, where the arterial blood is oxygenated and the venous blood is unoxygenated.
The capillary network is a low-pressure system that can expand two to three times the normal size before a significant increase in pulmonary capillary pressures is detectable. The normal pulmonary arterial pressure in a healthy adult is about 22/8 to 25/8 mm Hg. The mean pulmonary arterial pressure is approximately 15 mm Hg. This compares with the high pressure of the systemic circulation, which is normally considered to be 120/80 mm Hg, with a mean arterial pressure of 96 mm Hg.
Under normal resting conditions, some pulmonary capillaries are closed and not perfused (filled with blood), and some pulmonary capillaries are open with no blood perfusing through them. The pul- monary circulation has two mechanisms for lowering pulmonary vascular resistance when vascular pressures are increased because of increased blood flow (Fig. 21.9). The first mechanism is recruitment, which allows opening of previously closed capillary vessels. The second mechanism is distention, which allows for increase in caliber of capillary vessels, allowing more blood to circulate through.
Another factor influencing pulmonary circulation is the fluid balance of the lung tissues. Fluid balance is regulated by the hydrostatic pressure, colloid osmotic pressure, and capillary permeability. When capillary hydrostatic pressure exceeds colloid osmotic pressure, fluid moves from the capillary to the interstitium. If the fluid shift is not controlled, the fluid volume will continue to increase until fluid is moved into the alveoli. Alveolar edema is more serious than interstitial edema (fluid in the interstitial space), because of its negative effects on gas exchange. Pulmonary interstitial and alveolar edema is common in disease processes such as congestive heart failure and infectious diseases of the lung. Other disease processes that also increase capillary permeability are acute respiratory distress syndrome (ARDS) and infant respiratory distress syndrome. (See Chapter 23 for further discussion.)
Age-Related Variations Structural and physiologic variations occur at each end of the age continuum. A summary of anatomic and physiologic respiratory varia- tions by age group is presented in Table 21.1. Pediatric considerations are shown in the following box.
U shape D shape Triangular
Circular C shape Elliptical
FIG 21.7 Examples of variation in tracheal shape.
6
10 10
Right upper lobe
Left upper lobe
Right lower lobe
Left lower lobe
Middle lobe
(right)
1 1
2 2
3 3
4
4
5
5
6
9 9
8
7 and 87
FIG 21.8 Bronchopulmonary segments of the human lung. Right and left upper lobes: 1, apical segment; 2, posterior segment; 3, anterior segment. Left upper lobe: 4, superior segment; 5, inferior segment. Middle lobe (right): 4, lateral segment; 5, medial segment. Right and left lower lobes: 6, superior (apical) segment; 7, medial basal segment; 8, anterior basal segment (on left, 7 and 8 combine to form the antero- medial basal segment); 9, lateral basal segment. (10, posterior basal segment visible in medial view; not shown here.)
Normal
Alveoli Open vessel
Closed vessel
Recruitment Distention
FIG 21.9 Two mechanisms for lowering pulmonary vascular resistance in capillary vessels. Recruitment allows for opening of previously closed capillaries. Distention allows for widening of capillary vessels.
With aging, the result of all pulmonary changes is an increase in the work of breathing. The lungs show a reduction in the amount of elastin and an increase in collagen concentration, leading to decreased elastic recoil and increased compliance (stiff chest wall and early airway closure). These changes lead to increased residual volume and early airway closure. The chest wall becomes stiffer or more rigid as a result of rib and cartilaginous calcification. The strength of the diaphragm, intercostal muscles, and accessory muscles declines. The stiff chest wall and diminished respiratory muscle strength cause other functional changes, including an increase in dead space and decreased expiratory flow rates and vital capacity.
There is a reduction in the number and motility of cilia, resulting in a decrease in respiratory clearance. There is an increase in and hypertrophy of bronchial mucous glands. The decreased respiratory muscle strength, increased mucus production, increased chest wall stiffness, and loss of cilia together reduce cough effectiveness.
GERIATRIC CONSIDERATIONS Changes in the Respiratory System
Within the lungs, there is enlargement of alveoli and respiratory bronchioles with subsequent decreased surface area. The arterial blood flow through the pulmonary vessels decreases proportionally to changes in cardiac output. The loss of elastic recoil causes the enlarged respiratory bronchioles to collapse or close before the alveoli empty. Alveolar enlargement, along with reduced pulmonary artery blood flow and early airway closure, lowers diffusion capacity and the amount of gas exchange. It also increases air trapping and residual volume.
Because of chest wall stiffness and lung rigidity, apical ventilation increases in the elderly, whereas basilar ventilation decreases. Ventilation–perfusion mismatch occurs as a result of increasing apical ventilation with poor apical capillary blood flow. The result of these changes leads to reduced arterial oxygen pressure (PaO2). Because of increased ventilation–perfusion mismatch, the PaO2 may decrease when the elderly individual reclines.
Stiffer chest wall
Early airway closure
Decreased expiratory flow rate
Decreased vital
capacity Decreased PaO2
Increased work of breathing
Increased residual volume
VA/Q mismatch and decreased
diffusion capacity
Increased dead space
Decreased surface
area
Decreased effectiveness
of cough
Decreased lung elastic
recoil
Decreased elastin and increased collagen
Hypertrophy of bronchial
mucous glands
Decreased respiratory
muscle strength
Decreased number
and motility of cilia
Enlargement of
alveoli
KEY POINTS • The respiratory system development begins at about day 26 of gestation.
Abnormal development of the septum during this time can lead to tracheo- esophageal fistula. At 25 weeks’ gestation, the fetal lungs have developed sufficiently to allow respiration, although alveolar development and surfactant production are just beginning.
• The upper airway includes the nasopharynx, oropharynx, and laryngopharynx. The primary functions of the upper airway are to warm, filter, and humidify inspired air.
• The lower airway includes structures below the larynx: the trachea, bronchi, bronchioles, and alveoli. The larynx functions to prevent aspiration during swallowing and is the location of the vocal cords.
• The trachea, bronchi, and bronchioles serve as conducting passageways for air. They do not engage in gas exchange. Sympathetic influence on these airways causes relaxation (by means of β2-adrenergic receptors), and parasympathetic influence causes constriction (by means of acetylcholine receptors).
• Exchange of respiratory gases occurs in the alveoli. The epithelial cells that comprise the alveoli are called type I cells (type I pneumocytes). Type II
pneumocytes produce surfactant in the alveoli. The grapelike structure of the alveoli provides a huge surface area for gas exchange.
• The upper and lower airways are lined with cilia, which move rhythmically to transport mucus and trapped debris out of the respiratory tree. Ciliary function is impaired by a number of factors, including smoking, alcohol consumption, low humidity, and anesthesia.
• The lungs are perfused by two sources: bronchial arteries bring a small amount of oxygenated blood to nourish lung tissues; pulmonary arteries transport the entire cardiac output of the right ventricle to the alveoli for gas exchange.
• The lung has a large reserve capacity for gas exchange. At rest, some of the pulmonary capillaries are not perfused. During periods of high lung blood flow (such as high cardiac output during exercise), previously unperfused capillaries are recruited, and already perfused capillaries become distended.
• Filtration of fluid through pulmonary capillaries is influenced by hydrostatic pressure and colloid osmotic pressure in the same way as other capillaries. Excessive filtration can lead to pulmonary edema, which interferes with normal gas exchange.
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 459
PEDIATRIC CONSIDERATIONS
From MacGregor J: Introduction to the anatomy and physiology of children: a guide for students of nursing, child care and health, ed 2, New York, 2008, Routledge.
Changes in Respiratory System in Children
Smaller diameter of
trachea
Overproduction of mucus in
trachea
Increase risk of airway
obstruction
Narrow diameter of bronchi and
bronchioles
Large volume of dead space in lungs
Immature alveoli and smaller number of alveoli
Glottis higher in throat
High bifurcation of trachea
Larynx higher in neck
High resistance to volume of air on inspiration
Increased respiration rate
Increased chance of aspiration
Infection
Flexible rib cage with less elastic recoil
External muscles
elevate ribs
Ventilation primarily done by diaphragm and
abdomen
Increased work of breathing required
for ventilation
The respiratory system in children is very different from that of the adult, which makes the child susceptible to airway obstruction, aspiration, and infection. The trachea in the infant has more mucus-producing glands, which can create an overproduction of mucus in the infant. The trachea, bronchi, and bronchioles are also smaller, with a narrower diameter. The excess mucus and narrower respiratory structures increase the risk of airway obstruction in the child. The positioning of respiratory structures in the infant increases the chance of aspiration. The glottis is higher in the throat of an infant compared with a 5-year-old child (MacGregor, 2008). The trachea bifurcates at the third thoracic vertebra compared with the sixth in adults (MacGregor, 2008), and the larynx is located higher in the neck of the infant. Aspiration can lead to infection in the child and increase the work of breathing.
The infant has to work harder for ventilation of the lungs because of several factors. The narrower diameter of bronchi and bronchioles creates a higher
resistance to volume of air on inspiration. The large volume of dead space in the lungs requires the infant to breathe faster to meet oxygen demands. Compared with an adult, the alveoli are smaller and immature, which decreases the area for gas exchange to occur in the lungs. The number of alveoli and the size increase as the child ages. The flexible ribcage is unable to support the lungs adequately because it has less elastic recoil. The intercostal muscles of the ribcage also work inefficiently. The external intercostal muscles elevate the ribs for inspiration, whereas the internal intercostal muscles cannot lift the chest wall and do not help with inspiration. The infant depends on the diaphragm and abdomen for ventilation to compensate for the lack of intercostal muscle strength. All of these factors increase the work of breathing required for ventilation, and the infant compensates by increasing his or her respiratory rate. By age 8 the lungs are fully developed, and the child’s respiratory system begins to resemble the adult’s respiratory system (MacGregor, 2008).
TABLE 21.1 Variations in Anatomy and Physiology of the Respiratory System by Age Group
Young Newborns Children Adults Elderly (Over 60 Years Old)
Anatomic dead space Proportional to size Proportional to size ≈150 mL ≈150–200 mL Number of alveoli 12.5%–16.5% of adult number Adult number by 8 years old 300,000/lung ≤300,000/lung Thickness of alveolar membrane Thicker than adult Adult by 8 years old <0.5 µm Thinner than adult Number of capillaries Less than adult Adult by 8 years old Adult Less than adult Vital capacity Proportionately less than adult Proportional to size 4.8 L Less than adult Tidal volume Proportional to size Proportional to size 500 mL Less than adult (30%
less by age 80 years) Compliance More compliant than adult Similar to adult Static compliance
(90–100 mL/cm H2O) Less compliant
Airway resistance Greater than adult Greater than adult 1.0–1.5 cm H2O/L/sec Adult level or less
Data from Fretwell ME: Aging changes in structure and function. In Carnevali DL, Patrick M, editors: Nursing management for the elderly, ed 3, Philadelphia, 1993, Lippincott.
460 UNIT VI Respiratory Function
VENTILATION Lung Volumes and Capacities Ventilation is the process of moving air into the lungs and distributing air within the lungs to gas exchange units (alveoli) for maintenance of oxygenation and removal of carbon dioxide (CO2). Measures of ventila- tion (amount of air moved) include four lung volumes and four lung capacities. Fig. 21.10 schematically presents the various lung volumes and capacities; Table 21.2 defines each term and provides further details.
Lung volumes and capacities vary according to the individual’s body size, age (decreased in the neonate, young child, and the elderly), and body position (supine versus upright). Testing of pulmonary function to measure these volumes and capacities is covered under the “Diagnostic Tests” section later in this chapter. Other measures important to ventila- tion are dead space, minute ventilation, and alveolar ventilation.
Dead Space Dead space includes three dimensions: anatomic dead space, alveolar dead space, and physiologic dead space. Anatomic dead space includes the volume of gas (not used in gas exchange) in the conducting airways from the nose to the respiratory bronchioles. Generally, in adults this area is equal to 1 mL per pound of ideal body weight, or approximately 150 mL. In newborns and young children, the anatomic dead space is proportionately larger for their size. The anatomic dead space of elderly persons may increase slightly over that of healthy young adults because of the loss of alveolar sacs. Alveolar dead space is composed of ventilated, but unperfused, areas of the lung, and is often referred to as wasted ventilation. Physiologic dead space (func- tional dead space) is the sum of the anatomic dead space and alveolar dead space. Approximately one third of each breath occupies dead space.
Minute Ventilation Minute ventilation is the product of tidal volume (milliliters of air inhaled with each breath) times respiratory rate per minute. For example, a person with a tidal volume of 500 mL who is breathing at a rate of 15 breaths/minute has a minute ventilation of 7500 mL (see Table 21.2 for typical volumes).
6000
5000
4000
3000
2000
1000
Time
Expiration
Inspiration
Inspiratory reserve volume
Expiratory reserve volume
Tidal volume
Residual volume
Inspiratory capacity
Vital capacity
Total lung capacity
Functional residual capacity
L u n g v
o lu
m e (
m l)
FIG 21.10 Schematic representation of the various lung volumes and capacities for a healthy adult (see also Table 21.2).
TABLE 21.2 Lung Volumes and Capacities
Term Definition (Typical Volume)
Lung Volumes Tidal volume A normal breath (≈500 mL) or amount of gas
entering or leaving lung during normal breathing
Inspiratory reserve volume
Amount of gas a person is able to inspire above a normal breath (e.g., maximal deep breath, ≈3 L)
Expiratory reserve volume
Amount of gas expired beyond tidal volume (≈1.2 L)
Residual volume Volume of gas left in lungs at end of a maximal expiration (≈1.2 L)
Lung Capacities Vital capacity Total volume of gas that can be exhaled
during maximal expiration (≈4.8 L). Includes inspiratory reserve volume, tidal volume, and expiratory reserve volume
Inspiratory capacity Amount of gas that can be inspired from a resting expiration (≈3.5 L)
Functional residual capacity
Amount of gas left in lungs at end of a normal expiration (≈2.4 L): includes expiratory reserve volume and residual volume
Total lung capacity Amount of gas contained in lungs at maximal inspiration (≈6.0 L)
Forced expiratory flow rate (FEF25, FEF50, FEF75)
Volume of air forcibly exhaled per unit time (liters per second or liters per minute) at 25%, 50%, and 75% of forced vital capacity (FVC)
Peak expiratory flow rate Highest rate of flow sustained for 10 msec or more at which air can be expelled from lungs
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 461
A simple method of calculating expected Pao2 is the “law of 5’s.” By multiplying the Fio2 (%) by 5, the care provider has an estimate of what the oxygen level should be under normal, healthy conditions (e.g., 5 × 21% room air = 105).
Mechanics of Breathing The mechanics of breathing include the concepts of airway resistance, lung compliance, and opposing lung forces (elastic recoil versus chest wall expansion) of the lung. These factors affect the overall performance of gas exchange and the work of breathing.
The lungs have a natural recoil tendency, whereas the chest wall favors the expanded state. During inspiration, the chest wall muscles (external intercostals) contract, elevating the ribs as the diaphragm moves downward. These two actions create a negative intrapleural pressure that causes the lung to expand. During expiration, the lung deflates passively because of the elastic recoil (elastic fibers in the lung tissue) and relaxation of the diaphragm. During heavy breathing, as seen with exercise, the elastic forces are not strong enough to cause the necessary rapid expiration, so abdominal muscles contract, pushing the abdominal contents upward, compressing the lungs. Fig. 21.11 shows the interaction of lung forces during inspiration and expiration. In the normal, healthy resting individual, expiration is accomplished almost entirely by relaxation of the diaphragm. At the end of a normal expiration, the alveoli still contain some air volume, known as the functional residual capacity. If the alveoli were allowed to empty completely, the high surface tension in the alveoli would make it more difficult to reinflate them and add significantly to the work of breathing. In the absence of sur- factant, which reduces alveolar surface tension, the alveoli tend to collapse—a condition called atelectasis. Excessive surface tension can increase the work of breathing so much that mechanical ventilation may be required. This is often the case in ARDS and in infant respiratory distress syndrome (see Chapter 23).
Airway Resistance Airway resistance is determined by the relationship between driving pressure and flow. It is influenced by airway radius and the pattern of gas flow. Resistance increases as the radius of the airway tube decreases. Resistance is calculated by the following formula:
Resistance driving pressure rate of airflow= ÷
The radius of the airway decreases from the trachea to the terminal bronchioles. As mucus builds up in the airway, the passage is narrowed, and resistance to airflow increases. Other factors affecting airway resistance include stress, pulmonary conditioning, and age.
The trachea and bronchi contain cartilage and small amounts of muscle. The cartilage assists in maintaining airway passage stability, thus preventing airway collapse. The bronchioles and terminal bronchioles do not contain cartilage, but have increased amounts of smooth muscle that are innervated by the autonomic nervous system. Stimulation of cholinergic fibers leads to bronchoconstriction. Stimulation of the β2-adrenergic receptors leads to bronchodilation. The bronchial muscles function to maintain an even distribution of ventilation. A circadian rhythm is associated with bronchial tone, with maximal bronchodilation occurring at about 6 pm and maximal bronchoconstriction occurring at 6 am.
Airway resistance is also affected by the pattern of gas flow (Fig. 21.12). Air movement from the nasal cavity through the large bronchi occurs by turbulent flow, which creates friction and increases resistance. Bronchospasm in the smaller airways and high gas flow also create turbulent flow. Laminar flow occurs in the small airways of the lung and creates minimal resistance to airflow. Transitional flow (mixed
Alveolar Ventilation/Oxygenation By comparison, alveolar ventilation (V̇A) equals the difference between tidal volume (Vt) and anatomic dead space volume (Vd) multiplied by the respiratory rate (RR) per minute.
Alveolar ventilation (V ) V V RRA T D� = − ×( )
Because alveolar ventilation is affected by both the anatomic dead space and the respiratory rate, slow deep breathing yields greater alveolar ventilation than does rapid shallow respiration. The patient breathing 25 times/minute at a Vt of 200 mL would have alveolar ventilation as follows:
( [ ])200 150 25 1250 mL mL anatomic dead space
breaths/minute mL −
× =
A patient breathing 10 times/minute at a Vt of 600 mL would have an alveolar ventilation of
( )600 150 10 4500mL mL mL− × =
The partial pressure of oxygen in the alveoli (Pao2) is the driving force to move O2 into the blood and is estimated with the following equation:
P F P PacoAO IO B2 2 47 0 82= − − ÷( ) ( . )
where Fio2 is the fraction of inspired oxygen, Pb is the barometric pressure, 47 is the constant for water vapor pressure (mm Hg), 0.8 is the respiratory quotient, and Paco2 is the laboratory measurement of arterial CO2 pressure (mm Hg).
The value for Pao2 is normally very close to that for Pao2. The difference between alveolar and arterial oxygen tensions is called the Alveolar-arterial Difference in oxygen (A − aDo2). A large A − aDo2 value indicates poor matching of alveolar ventilation with alveolar blood flow (V̇A/Q̇ matching).
For example, the calculation of A − aDo2 for a person at sea level (Pb = 760 mm Hg) breathing room air (Fio2 = 0.21) with Pao2 = 75 mm Hg and Paco2 = 40 mm Hg is
PAO2 0 21 760 47 40 0 8 150 50 100= − − = − =. ( ) ( . )
Therefore using the arterial blood gas value obtained for the Pao2 and the calculated Pao2 of 100, a difference of 25 mm Hg is determined:
A aDo mm Hg− = − =2 100 75 25
This large of a difference indicates a significant problem with gas exchange.
In critical care settings, it is useful to calculate the A − aDo2 value to monitor the efficacy of oxygen exchange across the lung. The normal A − aDo2 gradient in a normal, healthy young adult is less than 10 mm Hg at room air, but it increases with age and increasing Fio2. A rising A − aDo2 value indicates worsening lung function, even though hypoxemia (Pao2 lower than 80 mm Hg at sea level) may not necessarily be present.
Hypoxemia that is primarily caused by hypoventilation suggests that the lung is normal, and treatment that increases ventilation will remedy the problem. This type of hypoxemia is characterized by a normal A − aDo2 value.
462 UNIT VI Respiratory Function
Lung Compliance Lung compliance is another factor that influences the work of breathing. Compliance represents lung expandability and the ease of lung inflation. It is best illustrated by the effort required to blow up a new balloon compared with blowing up a balloon that has been inflated many times before. It is a measure of the relationship between pressure and volume. It is represented by the formula:
Compliance change in volume change in pressure= ÷
Two factors associated with compliance are chest wall expandability and lung expandability. Lung compliance can be measured in the static (motionless) or dynamic state. Effective static compliance is determined by dividing the pressure required to deliver a volume of gas by the tidal volume as delivered by a ventilator. A more accurate measurement of compliance requires the insertion of an esophageal balloon. Normal static compliance in a healthy young adult would be 90 to 100 mL/cm H2O.
Compliance provides an estimate of airway resistance and elasticity. Lung compliance is increased in neonates and children younger than 3.5 years, because of their chest wall flexibility. Lung compliance may decrease in the elderly because of increasing chest wall rigidity from calcification of costal cartilages, reduced mobility of ribs, and partial contraction of inspiratory muscles. Changes in the thoracic vertebrae and intervertebral disks also lead to decreased expansion of the chest wall in the elderly. Disease processes that make the lung stiffer and decrease respiratory function include pneumonia, pulmonary edema, atelectasis, ARDS, and pulmonary fibrosis. Other factors that decrease compliance by decreasing chest wall distensibility are obesity, abdominal distention, pregnancy, kyphoscoliosis, and abdominal surgery (attribut- able to decreased respiratory effort from surgical pain). Lung compliance may be increased by loss of the lung’s elastic fibers that occurs with age and obstructive lung diseases. An abnormally high lung compliance, with loss of elastic recoil, increases the work of breathing by requiring greater effort to expel air from the lungs during exhalation.
Distribution of Ventilation Distribution of ventilation is affected by body position. In the upright individual, the alveoli at the apices (top) of the lung are much larger than those at the base. Fig. 21.13 shows the variation in structural size of alveoli at the apex compared with that at the base. In the healthy upright individual, ventilation is greatest near the bottom of the lung and decreases toward the apices. The regional differences are less in a supine person. The greater lung expansion at the bases results from a greater compliance of the alveoli at the bases and the downward displace- ment of the diaphragm, which expands the lower lobes more than the upper lobes. When an individual is in the supine lateral position, ventila- tion is best in the dependent part of the lung fields, but the difference is not as great as that seen in the upright lung.
Neurologic Control of Ventilation Respiration is influenced by a number of factors. These include neural control centers, chemoreceptors, lung receptors, proprioceptors, and pressure receptors. The factors that regulate respiration are reviewed in this section.
Neural control of the respiratory system is located in the medulla oblongata and the pons, which is commonly referred to as the respiratory center. Efferent nerve impulses travel from the brainstem by way of the phrenic nerve to the diaphragm to stimulate muscular contractions for inspiration.
The medullary respiratory center within the brainstem consists of two groups of widely dispersed neurons that function as a unit to regulate
pattern of flow) occurs in the larger airways, especially at bifurcations. The highest airway resistance is at the nose because of turbulent flow with high velocities of airflow. Airway resistance is even higher in the newborn than in the adult and continues to be greater than that of the adult up to the age of 5 years. Resistance changes very little in the elderly lung.
A
B
Diaphragm moves down
Chest wall moves out
Air
Lungs expand
INSPIRATION
Diaphragm moves up
Chest wall moves in
Air
Lungs recoil
EXPIRATION
FIG 21.11 Lung forces during inspiration and expiration. A, During inspiration, the respiratory muscles contract, the chest wall expands, and air flows into the lungs. B, During expiration, the respiratory muscles relax, the lungs recoil, and air flows passively out of the lungs.
Laminar Turbulent Transitional
FIG 21.12 Patterns of gas flow.
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 463
FIG 21.13 Sections of lung from the apex (upper panel) and 20 cm below the apex (lower panel) obtained from a greyhound dog lung (specimens frozen in a vertical position). The upper panel illustrates alveoli in the apex (zone 1) of the lung in the upright position: the air sacs are large, and blood flow is diminished. The lower panel represents the base of the lung zone with optimal ventilation and perfusion (×188). (From Murray JF: The normal lung, ed 2, Philadelphia, Saunders, p. 110. Courtesy Jon B. Glazier, MD.)
breathing. The dorsal respiratory group of neurons transmits impulses that stimulate inspiratory muscles (in the intercostals and diaphragm). The impulses are generated in increasing fashion, termed a ramp signal. Impulses begin slowly and increase steadily for about 2 seconds. Abrupt cessation of signals for 3 seconds allows for expiration, and then the cycle begins again. This system establishes the basic respiratory rhythm. Fig. 21.14 provides a schematic diagram of these interactive mechanisms on respiratory control.
The pneumotaxic center of the upper pons (see Fig. 21.14) appears to influence the rate of respiration and ends inspiration by inhibition of the inspiratory ramp. In addition, input from the spinal cord, cortex, and midbrain contributes to the normal smooth pattern of respiration.
The apneustic center of the lower pons (demonstrated to exist in dogs) influences the pattern of respiration and may function to provide an extra driving force for the inspiratory neurons, thus prolonging inspiration.
Sensory inputs to the respiratory control center include central chemoreceptors, peripheral chemoreceptors, Hering–Breuer stretch receptors, proprioceptors, baroreceptors, and environmental sensations.
The central chemoreceptors within the medullary center respond to changes in CO2 level and pH. A stimulus to breathe occurs when a small increase in arterial carbon dioxide tension (Paco2) leads to stimulation of chemoreceptors. Alveolar ventilation can increase 10-fold with an acute rise in Paco2.
464 UNIT VI Respiratory Function
Apneustic center
E xcita
tio n
In h ib
itio n
InhibitoryExcitatory
To in
sp ira
to ry in
te rco
sta ls
a n d d
ia p h ra
g m
To e
xp ira
to ry in
te rco
sta ls
Proprioceptors Pulmonary stretch receptors
Carotid and aortic chemoreceptors
Respiratory motoneuron
pool
Baroreceptors Thorax
Medulla
Inspiratory cells
Expiratory cells
Chemosensitive cells
Pneumotaxic center
Cortex
Pons
FIG 21.14 Interactive mechanisms influencing control of respiration.
The peripheral chemoreceptors located in the aortic arch and carotid bodies respond primarily to decreases in arterial O2 concentration. Increases in the hydrogen ion concentration (decreased pH) or the Paco2 also stimulate peripheral chemoreceptors; however, the response of peripheral chemoreceptors to a change in Paco2 is minor compared with central chemoreceptors.
The Hering–Breuer reflex involves stretch receptors located in the alveolar septa, bronchi, and bronchioles. Inflation of the lung initiates the response that sends neuronal impulses up the vagus nerve to the medulla to cause inhibition of inspiration. Therefore the rate and duration of inspiration are affected. This reflex is primarily seen in neonates (less so in adults) and at high tidal volumes (greater than 1500 mL) and prevents overinflation of the lung.
Proprioceptors located in the muscles and tendons of movable joints respond to body movement (exercise). Body movement, such as with exercise, leads to stimulation of respiration (rate and depth) to maintain oxygen levels.
Baroreceptors located in the aortic arch and carotid arteries respond to changes in blood pressure. The aortic arch transmits impulses through the vagus nerve, and the carotid bodies transmit impulses through the glossopharyngeal nerve. An increase in arterial blood pressure leads to inhibition of respiration. A decrease in mean arterial blood pressure below 80 mm Hg leads to stimulation of respiration.
Environmental factors also influence respiration. Individuals demonstrate changes in respiration related to such factors as a cold shower, a pin prick, stress, or airway irritation from air pollution and smoking. Infection and fever also increase the respiratory rate. During normal breathing, energy expenditure is only 3% to 5% of total energy expenditure. During exercise and in patients with high airway resistance energy expenditure can increase to 50%.
KEY POINTS • Approximately one third of each breath occupies areas of the lung that do
not engage in gas exchange. Total (physiologic) dead space includes the anatomic dead space of the bronchial tree and the dead space of unperfused alveoli.
• Alveolar ventilation may be severely compromised in persons with small tidal volumes or increased dead space. When tidal volume is not significantly greater than dead space, increased respiratory rate is not effective in restoring alveolar minute ventilation.
• To move air into the lungs, the respiratory muscles generate a negative intrapleural pressure that causes air inflow owing to the pressure gradient between the atmospheric pressure at the mouth (zero pressure) and the alveolar pressure (negative pressure).
• Airways and tissues of the lung resist inflation. Resistance is provided by the airways, elastic fibers in the lung, and surface tension in the alveoli. The degree of resistance can be estimated by measuring overall lung compliance. A compliant lung requires minimal pressure to accomplish a large increase in volume; a noncompliant (stiff) lung requires the generation of high pressure to inflate the lung.
• Airway resistance is primarily determined by the diameter of the airways. Airway constriction greatly increases airway resistance. Parasympathetic stimulation of the airways results in constriction; sympathetic (β2) stimulation results in dilation.
• Elastic fibers in the lung are stretched during inspiration, then recoil passively to achieve expiration. Destruction of elastic fibers increases lung compliance; excessive fiber production (fibrosis) decreases lung compliance.
• High surface tension in the alveoli causes the surfaces to adhere, making inflation more difficult. Surfactant functions to reduce surface tension. A lack of surfactant makes the lungs more difficult to inflate (decreased compliance).
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 465
Apex
Alveolus
Capillary
Pulmonary artery
(unoxygenated blood)
Base
Pulmonary vein
Pulmonary artery
Zone 1 (minimal
perfusion)
Zone 2 (intermittent perfusion)
Zone 3 (continuous perfusion)
Pulmonary vein
(oxygenated blood)
FIG 21.15 Schematic representation of the three lung zones in which different hemodynamic conditions govern blood flow (see text for discussion).
The effect of gravity on the lung has led to the concept of lung zones. Fig. 21.15 depicts three lung zones. Zone 1 reflects blood flow in the apices of the lung. Blood flow is minimal at the apices because the enlarged alveolar sacs create an alveolar pressure that is higher than capillary pressure, leading to pulmonary capillary collapse.
Zone 2, the middle region of the lung, has a pulmonary arterial pressure greater than the pressure inside the alveoli during ventricular systole, but this may fall below alveolar pressure during diastole. Thus zone 2 is characterized by intermittent perfusion.
Zone 3 is continuously perfused throughout the entire cardiac cycle. Pulmonary arterial pressure is greater than pulmonary venous pressure, which in turn is greater than alveolar pressure. In this zone, capillary vessels are distended and vascular resistance is low.
Normally 2% of the cardiac output bypasses (right-to-left shunt) alveolar ventilation, creating a decrease in arterial oxygen pressure by 3 to 5 mm Hg. In bronchial anastomotic diseases, the amount of shunting may rise to 10% to 20%.
Ventilation–Perfusion Ratios The discussion about distribution of ventilation and perfusion indicates that the best overall ventilation and perfusion occur in the dependent lung fields. A factor important to the concepts of ventilation and perfusion is the matching of an adequate volume of air in the alveoli to adequate pulmonary blood flow. In the ideal state, 4 L/min of alveolar ventilation is matched to 5 L/min of capillary blood flow in the lungs, creating a normal alveolar ventilation-to-perfusion ratio (V̇A/Q̇) of 0.8 (Box 21.1). Two major physiologic factors that affect normal V̇A/Q̇ ratio are right-to-left shunt and regional ventilation/perfusion changes. Other factors influencing the ratio are position changes, exercise, bed rest, and lung disease.
To review, in a normal person in the upright position, ventilation and perfusion are lower in the upper lung (apex) than the lower lung (base). In the apex, alveoli are large and receive limited blood flow, whereas in
• The medulla oblongata and pons contain the neurons that integrate infor- mation regarding the ventilatory status of the body from chemoreceptors, proprioceptors, and stretch receptors. Respiratory neurons in the medulla initiate inspiration and establish the basic inspiratory-expiratory pattern. Pneumotactic center neurons in the pons primarily influence the rate and depth of respiration.
• Central chemoreceptors located within the medulla detect changes in pH and PCO2. Peripheral chemoreceptors are located in the aorta and carotid arteries and detect changes in arterial pH, PCO2, and PO2. An increase in PCO2 or a decrease in pH or PO2 stimulates ventilation.
PULMONARY BLOOD FLOW Pulmonary Vasculature Perfusion (blood flow) is the second process of respiration, the first being alveolar ventilation. The pulmonary circulation is a low-pressure system (25/8 mm Hg). The volume of blood in the lungs is about 450 mL, or 9% of the total amount of blood in the body. This volume can vary from one-half normal to twice normal. Unoxygenated blood from the right ventricle is pumped into the main pulmonary artery and then into its branches, which divide into capillary beds throughout lung tissue. The capillary beds surround the alveoli and allow for diffusion of O2 and CO2.
Distribution of Blood Flow Distribution of blood flow (perfusion) is uneven and is affected by body position and exercise. When a person is upright, blood flow is decreased in the upper regions of the lungs (apices), compared with the lower regions (bases). When a person assumes the supine position, blood flow to the posterior dependent portion of the lung is higher than to the anterior lung, although the redistribution of blood flow is less dramatic than that seen in the upright lung.
466 UNIT VI Respiratory Function
the base, alveoli are smaller and allow for greater expansion of capillaries and thus more blood flow. In the apex, V̇A/Q̇ is as much as 2.5 times the ideal value, causing a moderate degree of physiologic dead space. In the base, V̇A/Q̇ is as low as 0.6 times the ideal value, representing lower volumes of air where the blood flow exceeds ventilation. During exercise, blood flow to the upper lung region increases dramatically, thus decreasing physiologic dead space. With bed rest, the dependent area of the lungs becomes the back region in the supine position so that blood flow is increased to that region and alveoli are smaller.
The three types of ventilation-perfusion imbalances are (1) high V̇A/Q̇, (2) low V̇A/Q̇, and (3) true shunt. High V̇A/Q̇ is conceptually related to physiologic dead space and zone 1, in which the alveolar unit is ventilated but not perfused. High V̇A/Q̇ units have a low Pco2 and normal Pao2 and can be viewed as a respiratory reserve, which can be used if perfusion is restored.
Low V̇A/Q̇ is conceptually related to lower Pao2 (hypoxemia). Low V̇A/Q̇ occurs regionally in areas where the airways are partially obstructed and airflow rates are low. Although an increase in total ventilation results in a decrease in alveolar CO2 concentration, the increment in Pao2 and O2 content in end-capillary blood is minimal. Low V̇A/Q̇ is responsive to treatment with oxygen because the airways are only partially obstructed, so it is possible for oxygen to enter the alveoli by diffusion.
True shunt, which is a right-to-left shunting of unoxygenated blood through the pulmonary circulation, contributes to lowering of Pao2. Normally, in a healthy person, there is a small physiologic shunt of 2% of cardiac output because of bronchial, thebesian and other veins that bypass the alveoli. In patients with acute respiratory failure (ARF), physiologic shunt may rise to more than 50%. Although pulmonary shunt is similar to low V̇A/Q̇ in affecting low arterial oxygen levels, true shunt is not responsive to oxygen therapy because the alveoli are collapsed or consolidated, and oxygen cannot gain entry into them. See the “Acute Respiratory Failure” section for details.
Hypoxic Vasoconstriction Alveolar hypoxia leads to a normal compensatory hypoxic vasoconstric- tion of the pulmonary vessels passing through poorly ventilated portions of the lungs. Blood is diverted from areas of low alveolar oxygen concentration to areas of higher oxygen concentration as a means of compensatory adaptation. By diverting blood flow to areas of higher oxygen concentration, the negative effects on gas exchange are reduced. Low alveolar oxygen concentration leads to contraction of smooth muscle in the walls of the small pulmonary arterioles.
KEY POINTS • Distribution of blood flow is affected by gravity such that perfusion is greatest
in dependent lung fields. • Zones of the lung describe regional differences in perfusion. Zone 1 has no
perfusion and is equivalent to dead space; zone 2 is intermittently perfused; zone 3 is continuously perfused throughout the cardiac cycle.
• Optimal alveolar-capillary gas exchange depends on matching of ventilation and perfusion at the alveolus. Abnormalities in V̇A/Q̇ matching can result in inadequate oxygenation of the blood and insufficient CO2 removal. Three types of regional V̇A/Q̇ imbalance have been described: high V̇A/Q̇ (dead space), low V̇A/Q̇ (poor ventilation), and intrapulmonary true shunt (no ventilation).
• Vessels in lung areas that are poorly ventilated, and therefore hypoxic, will constrict to minimize imbalances by diverting blood to better ventilated areas. This is termed hypoxic vasoconstriction.
Red blood cells
Plasma
Capillary membrane
Alveolar membrane
Surfactant
O2
CO2
Interstitial fluid
FIG 21.16 Schematic representing the six barriers through which O2 and CO2 must diffuse for gas exchange to occur.
Low V̇A/Q̇ (underventilated):
2 5
L/min alveolar ventilation L/min blood flow
Normal V̇A/Q̇:
4 5
L min alveolar ventilation L/min blood flow
High V̇A/Q̇ (underperfused):
4 2
L min alveolar ventilation L/min blood flow
BOX 21.1 Ventilation-Perfusion (V̇A/Q̇)* Equations
*V̇A/Q̇, Where V̇A = alveolar ventilation and Q̇ = blood flow.
DIFFUSION AND TRANSPORT OF RESPIRATORY GASES Barriers to Diffusion
Diffusion is the passive movement of gas from a high-concentration area to a low-concentration area. Diffusion occurs because of the random, kinetic motion of molecules through the respiratory membranes and fluids. The alveolar-capillary membrane, also known as the respiratory membrane, through which O2 and CO2 must diffuse, consists of six barriers (Fig. 21.16). The membrane averages about 0.6 micrometer in thickness. For O2 to reach the hemoglobin molecule, it must pass through surfactant, the alveolar membrane, interstitial fluid, the capillary membrane, plasma, and the red blood cell (RBC) membrane. The rate of diffusion of a gas is proportional to the tissue area and the difference
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 467
O2 to bind to the hemoglobin molecule. Heme is an iron–porphyrin compound that joins with the four polypeptide chains of the protein globin. Oxygen binds to iron in each of the four heme sites to form oxyhemoglobin. At the tissue level where the partial pressure of O2 is low, O2 is released from the hemoglobin molecule. Depending on tissue needs, 25% of the oxygen is normally unloaded at the tissues in a resting individual, which results in venous blood being 75% saturated with oxygen.
When hemoglobin is fully bound to O2 it is nearly 100% saturated and yields a Pao2 of 95 to 100 mm Hg. Increasing alveolar O2 con- centration above this level will have no further effect on increasing the amount of O2 carried on the hemoglobin molecule (Fig. 21.17). Oxygen binds when there is a high affinity of hemoglobin for oxygen (at the lungs) and releases when the affinity is decreased at the tissue level to maintain adequate metabolic processes. When Pao2 is less than 60 mm Hg, saturation of hemoglobin with oxygen (Sao2) falls steeply (see Fig. 21.17). The oxyhemoglobin dissociation curve diagram shows the effects of increases and decreases in O2 affinity at any Pao2 level. Decreased O2 affinity, also termed a shift to the right, aids in the release of O2 from the hemoglobin molecule, thus facilitating movement of O2 from the blood to the tissues. Factors that shift the curve to the right include acidosis, hyperthermia, increased Paco2 value, and increased 2,3-bisphosphoglycerate (2,3-BPG) concentration, which is an end product of RBC metabolism. The availability of O2 is also decreased by reduced cardiac output and anemia.
Increased O2 affinity, termed a shift to the left, represents a tighter binding of O2 to the hemoglobin molecule that helps loading of oxygen in the lungs; however, it may impair delivery to the tissues. Although an increased affinity for O2 reflects a higher percentage of saturated hemoglobin, its ineffective release in the tissues may be profound. Factors that affect hemoglobin affinity and shift the curve to the left (increased affinity) include alkalosis, hypothermia, decreased Paco2 value, and decreased 2,3-BPG concentration.
Cao2 is the sum of dissolved oxygen in the plasma plus the oxygen carried on the hemoglobin (Hb) molecule. (See Chapter 13 for a more detailed discussion of oxygen carriage and transport.) Normal arterial blood oxygen content (Cao2) is 20 mL of O2 per 100 mL of blood (vol%) and can be calculated by the following formula:
CaO vol Hb g/dl ml of O /g of Hb Sao
PaO 2 2 2
2
1 34
0
( %) [ ( ) . ( ) ]
( .
= × × + × 0003)
Carbon Dioxide Transport Carbon dioxide, a by-product of cellular metabolism, is transported in the blood in three ways: dissolved in plasma (5% to 10% of the total CO2 transport), as bicarbonate (60% to 70%), and as carbamino compounds on the hemoglobin molecule (20% to 30%). The greatest
in gas partial pressure between the two sides of alveoli, and inversely proportional to the tissue thickness through which the gas must move. Oxygen diffuses into the blood from the alveoli, and CO2 diffuses out of the blood into the alveoli. Under normal conditions, O2 and CO2 move across the alveolar-capillary membrane in only 0.25 second. The RBC spends about 0.75 second within the pulmonary capillary system surrounding the alveoli, thus allowing an extra 0.50 second of exchange time. Even with mild disease processes, O2 and CO2 have adequate time for transfer. Oxygen concentration in the alveoli, as well as its partial pressure, is controlled by (1) the rate of absorption in the blood and (2) the rate of entry of new oxygen into the lungs by the ventilation process.
Under abnormal conditions, such as thickening of the alveolar- capillary membrane (pneumonia, pulmonary edema, and interstitial lung disease) and decreased available surface area (emphysema), the diffusion capacity of the lung tissue is impaired. Diffusion capacity may be further impaired by increased physical activity, because of the decreased time spent by the RBCs in the pulmonary capillary system. Thickening of the alveolar-capillary membrane also occurs with aging. However, barriers to diffusion are rarely a primary cause of abnormal Pao2 or Paco2; abnormal diffusion of gases is usually secondary to V̇A/Q̇ mismatch.
CO2 is more diffusible than O2 because of its greater solubility. Factors that determine the ability and the speed of a gas to diffuse include the available surface area of alveoli and capillaries, the integrity of the capillary and alveolar membranes, the availability of hemoglobin to transport oxygen, the solubility of the gas, the diffusion coefficient of the gas, and the differences in partial pressure of the gases on each side of the alveolar membrane. For example, because CO2 is 24 times more soluble than O2, it diffuses 20 times more rapidly and requires a lower partial pressure for exchange.
The decreased diffusing capacity seen in the aged person is further compromised by a decrease in the number of pulmonary capillaries and decreased lung volume and capacities. The end result is a decreased Pao2 and increased V̇A/Q̇ mismatch. The Pao2 value drops about 3 to 5 mm Hg for each decade after age 30 years. Therefore an 80-year-old individual could be expected to have a Pao2 of 75 mm Hg. Diffusion is also decreased in the newborn because of the thickness of the alveolar membrane. In a healthy adult, the Pao2 value would be 90 to 100 mm Hg (see Table 21.3 for variations in respiratory anatomy and physiology by age grouping).
Oxygen Transport Oxygen is transported to the tissues by two mechanisms: (1) dis- solved in plasma and (2) bound to the hemoglobin molecule. Only about 0.3 mL of O2 per 100 mL is carried dissolved in the plasma. The remaining O2 is transported on the hemoglobin molecule. A high concentration (partial pressure) of O2 in the pulmonary capillaries causes
TABLE 21.3 Normal Arterial Blood Gas Values
Parameter Adult* Pregnancy Newborn COPD (Late Findings)
Pao2 (mm Hg) 80–100 75–100 60–70 Decreased PaCO2 (mm Hg) 34–45 30–37 35–45 Increased pH 7.35–7.45 7.35–7.45 7.30–7.40 Decreased HCO3
− (mEq/L) 24–30 20–26 20–26 Increased Base excess (mEq/L) ±2 — — — O2 saturation (%) 96–100 95–100 90–100 Decreased
*For elderly patients, Pao2 can be estimated by the following formulas: 104 − (patient’s age × 0.42) for patients lying supine; and 104 − (patient’s age × 0.27) for patients sitting. COPD, Chronic obstructive pulmonary disease.
468 UNIT VI Respiratory Function
to increased alveolar carbon dioxide, which displaces oxygen. Causes may be drugs, such as morphine or barbiturates (which depress the central respiratory drive), or disorders such as obesity (Pickwickian syndrome), myasthenia gravis, obstructive sleep apnea, chest wall damage, or paralysis of respiratory muscles (especially the diaphragm). Pain related to surgery of the thorax or abdomen often results in hypoventila- tion secondary to decreased inspiration.
Hyperventilation is an increase in the amount of air entering the alveoli, leading to hypocapnia (Paco2 <35 mm Hg). A physiologic cause of hyperventilation is hypoxic stimulation of peripheral chemoreceptors. Pain, fever, and anxiety are common causes of hyperventilation. Less common causes include obstructive and restrictive lung diseases, sepsis, and brainstem injury (central neurogenic hyperventilation). Hyperventila- tion is a normal physiologic response to high altitude as a compensatory mechanism to decrease Paco2. Low Paco2 leads to a greater ability to bind oxygen to hemoglobin (shift to the left) despite low oxygen pressure in the inspired air at high altitude.
Ineffective gas exchange from ventilatory failure occurs when an adequate volume of gas is maldistributed, minute ventilation is decreased, and/or alveolar hypoventilation occurs. Maldistribution of gas occurs in patients with emphysema, in which gas exchange occurs only in some alveolar units. In the healthy lung, some maldistribution of gas occurs because of gravitational forces on the lung, as previously discussed. In addition to the gravitational forces, airway resistance affects distribu- tion of gases. In obstructive pulmonary diseases, increased airway resistance develops in localized regions because of (1) obstruction of airways from increased sputum production, (2) mucosal hypertrophy and edema, (3) loss of structural integrity of the airway, and (4) narrowing of the airway from bronchial smooth muscle contraction, when there is hyperactivity of the airways. During expiration, air leaves the areas of least resistance first, thus creating areas of maldistribution of gas.
Hypoxemia and Hypoxia Two terms frequently used in discussing decreased Pao2 are hypoxemia and hypoxia. Hypoxemia refers to deficient levels of blood oxygen as measured by low arterial O2 concentration and low hemoglobin saturation as measured by arterial blood gases or pulse oximetry (O2 saturation). Hypoxia refers to a decrease in tissue oxygenation. Tissue hypoxia is difficult to measure, but may be assumed when either blood flow or Pao2 is abnormally low. A decrease in blood flow leads to a decrease in oxygen delivery.
Resultant types of hypoxia can be classified into four categories: hypoxic hypoxia, anemic hypoxia, circulatory hypoxia, and histotoxic hypoxia. Hypoxic hypoxia occurs when the Pao2 is decreased despite normal O2-carrying capacity. Causes include high altitude, hypoventila- tion, and airway obstruction. Oxygen therapy usually provides adequate treatment.
Anemic hypoxia results from a decrease in O2-carrying capacity. Any disorder resulting in low hemoglobin concentration can cause anemic hypoxia.
Circulatory hypoxia results from a low cardiac output state in which the O2-carrying capacity is normal but blood flow is reduced. Examples of circulatory hypoxia include shock, cardiac arrest, severe blood loss, thyrotoxicosis, and congestive heart failure.
The final classification is histotoxic hypoxia, which occurs when interference of a toxic substance leads to the inability of tissues to utilize available oxygen. Cyanide poisoning is an example of histotoxic hypoxia.
Ineffective gas exchange occurs when ventilation and perfusion are mismatched, when diffusion abnormalities exist, and when a right-to-left shunt exists. During periods of normal perfusion not all capillaries are open; however, the capillary system has the ability to recruit (open up) more capillaries and to distend (expand) capillaries already in use (see
bulk of CO2 transport is in the bicarbonate form. In the presence of the RBC enzyme carbonic anhydrase, CO2 combines with water to form carbonic acid, which in turn almost instantaneously breaks down into bicarbonate ions and hydrogen ions. The released hydrogen ions attach to the hemoglobin molecule, and the bicarbonate ion diffuses into the plasma. Chloride ions in the surrounding plasma shift into the RBC (chloride shift). This chemical process is reversed when the venous blood reaches the lungs so that CO2 can diffuse across the alveolar membrane to be exhaled.
KEY POINTS • Oxygen and CO2 diffuse quickly across alveolar-capillary membranes. Complete
equilibration of gases occurs in the first third of the capillary under normal conditions. Diffusion may be incomplete when the alveolar-capillary membrane is abnormally thickened or capillary blood flow is extremely rapid.
• Carbon dioxide is more soluble and diffuses more quickly than O2. Disorders of diffusion often affect O2 transfer earlier and more significantly than CO2 transfer.
• Oxygen is carried in the blood in two forms: dissolved in solution and bound to hemoglobin. Significantly more O2 is bound than dissolved. Low hemoglobin level and low hemoglobin saturation profoundly affect the O2 content in the blood.
• The oxyhemoglobin saturation curve describes the relationship between Pao2 and hemoglobin saturation. At a Pao2 of 90 to 100 mm Hg, hemoglobin is fully saturated. An increase in Pao2 above this level does not significantly improve O2 content.
• The affinity of hemoglobin for O2 is affected by temperature, acid–base status, 2,3-BPG levels, and CO2 concentration. Affinity decreases at the tissue level because of increased concentrations of H+ ions, 2,3-BPG, and CO2. This “shift to the right” enhances the unloading of O2 at the tissue. A “shift to the left” occurs at the lung, where the blood is more alkalotic and CO2 levels are lower. Increased affinity of hemoglobin in the lung enhances oxygen binding.
• Carbon dioxide is transported in the blood in three major forms: dissolved in plasma, carbaminohemoglobin, and bicarbonate ion. The most important of these is bicarbonate ion, which is formed from the combination of CO2 and H2O, producing carbonic acid (H2CO3). Carbonic acid dissociates into HCO3
− and H+. At the lung, the reaction proceeds in the reverse direction to form CO2, which diffuses into the alveoli.
ALTERATIONS IN PULMONARY FUNCTION
Partial pressures of arterial O2 in the newborn (60 to 70 mm Hg) and elderly (70 to 80 mm Hg) are less than those in the adult. The lower O2 pressure is well tolerated in the newborn because of the presence of fetal hemoglobin, which has decreased binding of 2,3-BPG, thus facilitating oxygen transfer by shifting the oxygen dissociation curve to the left. The newborn also has a higher hemoglobin concentration (20 to 21 g/dL) for the first few weeks after birth. Therefore oxygenation is not normally a problem. The lower Pao2 of the newborn is also associated with an increased PaCO2. Other blood gas values (see Table 21.3) show little difference from those of adults unless an oxygenation problem is present, such as infant respiratory distress syndrome or congenital heart disease.
Hypoventilation and Hyperventilation Hypoventilation occurs when delivery of air to the alveoli is insufficient to meet the need to provide oxygen and remove carbon dioxide. It is influenced by decreased rate and depth of respiration. Hypoventilation results in increased PaCO2 (>45 mm Hg) and resultant hypoxemia due
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 469
from the right side to the left side of the heart without passing through ventilated areas of the lung. Anatomic shunts may occur in patients with ventricular septal defects, atrial septal defects, and patent ductus arteriosus. Localized pneumonia and ARDS result in intrapulmonary shunts because of V̇A/Q̇ mismatch, in which alveoli are perfused but not ventilated.
Acute Respiratory Failure ARF is defined as a state of disturbed gas exchange resulting in abnormal arterial blood gas values: a Pao2 value less than 60 mm Hg (hypoxemia) and a PaCO2 value greater than 50 mm Hg (hypercapnia) with a pH less than 7.30 when the patient is breathing room air. Patients with respiratory failure can be divided into three categories: (1) those with failure of respiration or oxygenation leading to hypoxemia and normal or low carbon dioxide levels; (2) those with failure of ventilation leading to hypercapnia; and (3) those with a combination of respiratory and ventilatory failure.
Etiology The precise pathophysiologic mechanism of ARF depends on the cause or causes of the disease process. A number of conditions may cause respiratory failure (Box 21.2), including disorders of the neuromuscular
Fig. 21.9) to increase alveolar blood flow when it is needed as a compensa- tory mechanism. In addition, 2% of the total blood flow in the lung is not oxygenated because the thebesian, pleural, and bronchial veins drain unoxygenated blood into the left side of the heart and into the pulmonary veins.
Areas of low ventilation-perfusion (see Box 21.1) may have normal perfusion but receive inadequate alveolar ventilation (Fig. 21.18, A). These areas are similar to shunting of unoxygenated pulmonary arterial blood through totally unventilated units, except that they are responsive to oxygen therapy. Areas of high ventilation-perfusion (see Fig. 21.18, B) may have adequate ventilation (high oxygen level in the alveoli) but have areas of decreased perfusion. This effect is similar to having increased dead space, clinically represented by areas of ventilation without blood flow. Although it is difficult clinically to differentiate diffusion defects from shunt effect, abnormalities occur in patients who have thickening of the alveolar-capillary membrane. Examples of diseases that cause thickening of the membranes include systemic lupus erythematosus, sarcoidosis, diffuse interstitial fibrosis, alveolar cell carcinoma, and Goodpasture syndrome, a rare autoimmune disease that affects the lungs and kidneys.
Ineffective gas exchange is also seen in patients with true pulmonary shunt (see Fig. 21.18, C). A shunt effect results from blood flowing
100
10
20
30
40
50
60
70
80
90
10 20 30 40 50 60 70
Right
Factors shifting curve to the right 1. ↑[H�], ↓pH 2. ↑PCO2 3. ↑Temperature 4. ↑2, 3-BPG
a. Hyperthyroidism b. Anemia c. Chronic hypoxemia
(1) High altitude (2) Congenital heart disease
5. Some congenital hemoglobinopathies
Factors shifting curve to the left 1. ↓[H�], ↑pH 2. ↓PCO2 3. ↓Temperature 4. ↓2, 3-BPG
a. Hypothyroidism b. Bank blood
5. Some congenital hemoglobinopathies 6. Carboxyhemoglobin
Left
A B
C
80 90 100 PaO2, mm Hg
P50
O xy
g e n s
a tu
ra tio
n , p e rc
e n t
FIG 21.17 Oxyhemoglobin dissociation curve showing factors affecting hemoglobin’s affinity for oxygen. Curve B is the standard curve under normal conditions. Curve A shows a shift to the left, which represents an increased affinity of hemoglobin for oxygen. Curve C demonstrates a shift to the right, which represents a decreased affinity. (From Gottlieb JE: Breathing and gas exchange. In Kinney MR, Packa DR, Dunbar SB, editors: AACN’s clinical reference for critical care nursing, ed 4, New York, 1998, McGraw-Hill, p 672.)
470 UNIT VI Respiratory Function
sternal and intercostal retractions. The increased work of breathing may lead to cool, clammy skin; dysrhythmias; and decreased capillary refill time.
Diagnosis Diagnostic tests include measurement of arterial blood gases and chest radiography. A Pao2 of less than 60 mm Hg and a PaCO2 of greater than 50 mm Hg on room air are common findings. Chest radiographic findings depend on the disease process. Other supporting tests include an electrolyte panel with evidence of electrolyte imbalance such as low potassium and low sodium concentrations, and a complete blood cell count with evidence of increased numbers of white blood cells associated with infection or decreased levels of red blood cells and hemoglobin attributable to anemia.
Treatment Maintaining ventilatory support by maintaining airway patency and ensuring adequate alveolar ventilation is the primary goal of therapy. Mechanical ventilation may be the initial treatment, followed by manage- ment of the underlying cause. If a neuromuscular problem or skeletal weakness is present, assisted ventilation with a positive-pressure volume ventilator is indicated to maintain airway patency and ensure adequate alveolar ventilation.
The primary goal of therapy is to provide adequate oxygenation at the cellular level by maintaining a Pao2 greater than 60 mm Hg (oxygen saturation, 90%). Specific interventions depend on the cause. If acute respiratory failure is caused by chronic obstructive pulmonary disease (COPD), then vigorous management of bronchospasm and possible infection is required using a combination of methylxanthines, β2 agonists, corticosteroids (controversial), and antibiotics. Heart failure or hypoten- sion may require drug therapy. Diuretics may be given for volume reduction depending on the fluid volume status of the patient. Hypoten- sion should be managed promptly with volume replacement and/or vasopressors. The use of corticosteroids in high doses for the first 24 to 48 hours of the disease process is controversial because no conclusive evidence of efficacy is available.
General supportive care consists of providing adequate nutrition to maintain fluid and electrolyte balance, offering pain management and emotional support, and preventing complications of gastrointestinal stress and bed rest. Developing a method of communication with ventilated patients is also very important. High-calorie, high-protein, low-carbohydrate nutritional support is recommended. A diet high in carbohydrates should be avoided because of its tendency to increase carbon dioxide production. (See Chapter 23 for specific treatments for ARDS and infant respiratory distress syndrome.)
chest apparatus (poliomyelitis, Guillain–Barré syndrome, quadriplegia, hemiplegia), disorders affecting the chest skeletal system (kyphoscoliosis), and chest trauma (rib and sternal fractures). Shock (e.g., septic, hypovolemic), pulmonary emboli (PE), and pulmonary edema may also lead to respiratory failure. Extreme obesity may lead to alveolar hypoventilation, resulting in respiratory failure. The most common lung diseases causing ARF are advanced emphysema, pneumonia, asthma, pulmonary edema, and ARDS.
In general, the development of hypoxemia is related to poorly matched ventilation and perfusion. The development of hypercapnia is related to inadequate alveolar ventilation in relation to production of carbon dioxide.
Pathogenesis. Respiratory failure can develop from any abnormality in the airways, alveoli, central nervous system, peripheral nervous system respiratory muscles, hypoperfusion, chest wall, diaphragm, and pleural space. Ventilatory demand exceeds ventilatory capacity due to one of the problems listed earlier.
Clinical Manifestations Clinical features of ARF vary with the cause. General features of hypoxia and hypercapnia include headache, dyspnea, confusion, decreased level of consciousness, restlessness, agitation, dizziness, tremors, and initial hypertension, followed by hypotension and tachycardia. Early signs include rapid, shallow breathing with increased inspiratory muscle movement. Late findings include cyanosis, nasal flaring, and
Airway
Hypoxemia
Pulmonary artery
Pulmonary vein
A B
C
Low VA/Q
Pulmonary artery
Pulmonary vein
High VA/Q
Pulmonary artery
Unventilated alveolus
Pulmonary vein
Shunt
Poorly ventilated
Poorly perfused
FIG 21.18 Ventilation-perfusion abnormalities. A, Low V̇A/Q̇ areas that are well perfused but underventilated. B, High V̇A/Q̇ areas that are well ventilated but underperfused. C, Shunt areas that have no ventilation but are perfused (blood flow passes unventilated alveoli).
KEY POINTS • Ventilatory failure occurs when alveolar ventilation is insufficient to accomplish
adequate gas exchange. Ventilatory failure may result from decreased respiratory rate, decreased tidal volume, or increased dead space. Arterial blood gas analyses demonstrate hypercarbia and hypoxemia.
• A general deficiency of O2 in the blood (hypoxemia) results from poor diffusion at the alveoli (hypoxic hypoxia) or anemia (anemic hypoxia). Tissue hypoxia may be due to general hypoxemia or poor perfusion (circulatory hypoxia) or result from poor uptake of O2 by the tissue (histotoxic hypoxia).
• Oxygenation failure occurs when diffusion of gases across the alveolar- capillary interface is impaired. Oxygenation failure may be due to mismatching, right-to-left shunt, or excessive barriers to diffusion. Arterial blood gas values demonstrate hypoxemia but not necessarily hypercarbia.
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 471
index of obstructive airway disease. This value is the forced expiratory volume in 1 second (FEV1). Fig. 21.19 presents spirogram examples of normal, restrictive, and obstructive graphs for FEV1 and FVC. For all spirometric studies, normal values are based on large population studies of healthy volunteers and are adjusted for height, weight, age, and gender. Results are compared with predicted values and reported as percent of predicted.
A simple formula has been developed to define and quantify airflow obstruction. If the FEV1/FVC ratio is 75% or greater, no significant obstruction of airflow is present. If the value obtained is between 60% and 70%, then mild obstruction of airflow is present. Moderate obstruc- tion is defined as a value of 50% to 60%, and severe obstruction is present when the FEV1/FVC ratio is less than 50%. Therefore using a spirometer and measuring both volume and time, the diagnosis of COPD can be made and the severity quantified.
From the spirometric ventilatory measurements (see Table 21.2), other determinations of airflow can be made from the middle to later parts of an FVC maneuver. These measures are helpful in determining the presence of small airway disease. Some investigators believe that small airway disease may be a precursor to the development of chronic bronchitis and emphysema.
Frequently, an inhaled bronchodilator, such as albuterol or meta- proterenol, may be given, with testing repeated in 15 to 20 minutes. If the FEV1 improves by 15% or more, the patient is considered to have a positive bronchodilator response, indicative of partially reversible bronchospasm of the smooth muscles of the airways. This is most often the case with asthma or asthmatic bronchitis.
A second pulmonary function test known as the diffusion capacity measures the ability of the alveolar gases to diffuse into the capillary
Central Nervous System Drug overdose (sedative, hypnotic, opioid, anesthetic) Cerebral vascular accident (stroke) Hypothyroidism Central nervous system infections Brain trauma Brain tumor
Neuromuscular Diseases and Related Disorders Guillain–Barré syndrome Myasthenia gravis Multiple sclerosis Muscular dystrophy Myxedema Poliomyelitis Polymyositis Drug or toxin induced • Botulism • Aminoglycosides • Organophosphates • Neuromuscular blocking agents Tetanus Amyotrophic lateral sclerosis Quadriplegia Hemiplegia
Chest Wall and Diaphragm Trauma (thoracic/abdominal) Kyphoscoliosis
BOX 21.2 Causes of Acute Respiratory Failure Upper abdominal or thoracic surgery Pleural effusion Hemothorax/pneumothorax/chylothorax Massive ascites
Airways Laryngospasm Foreign body aspiration Asthma Acute exacerbation of chronic bronchitis or emphysema
Pulmonary Parenchymal Diseases Lung contusion Aspiration Pneumonia Interstitial lung diseases Emphysema Pulmonary fibrosis Acute respiratory distress syndrome Infant respiratory distress syndrome Pulmonary emboli (blood, fat, air, amniotic fluid) Cardiac and noncardiac pulmonary edema Shock Increased CO2 production • Fever • Infection • Hyperthyroidism • Drugs
• Acute respiratory failure (ARF) is generally diagnosed from arterial blood gas disturbances. The usual defining values are a PaO2 less than 60 mm Hg and a PaCO2 greater than 50 mm Hg when the subject is breathing room air.
• Conditions that predispose an individual to hypoventilation, ventilation–perfu- sion mismatch, or right-to-left shunt may lead to respiratory failure (e.g., drugs, neuromuscular weakness, chest wall deformities or trauma, and parenchymal lung diseases).
• Manifestations of respiratory failure are due to tissue hypoxia and compensa- tory responses and include confusion, tremors, hypotension, depressed consciousness, tachypnea, and tachycardia.
• The goal of therapy is to reduce tissue hypoxia by maintaining PaO2 above 60 mm Hg. Depending on the underlying disease process, this may require mechanical ventilation, supplemental oxygen administration, nutritional supplementation, and utilization of bronchodilators and antibiotics.
DIAGNOSTIC TESTS Pulmonary Function Testing The primary criterion in diagnosing obstructive disease is the demonstra- tion of obstruction to airflow in the lungs. Table 21.2 lists common ventilatory parameters referred to in spirometry.
Spirometry is performed by asking the patient to inhale deeply and then to exhale as quickly as possible until maximal air is exhaled. The total volume of air exhaled is known as the forced vital capacity (FVC). To determine flow, the time required for exhaling the air is also measured. The volume exhaled in the first second is a reliable and reproducible
472 UNIT VI Respiratory Function
ALTERATIONS IN PULMONARY VASCULATURE Pulmonary Hypertension Etiology Normally the pulmonary circulation is a high-flow, low-pressure system. Pulmonary hypertension is defined as a sustained increase in pulmonary artery pressure above 25 mm Hg systolic resting and above 30 mm Hg systolic with exercise. In some cases of pulmonary hypertension, systolic pressures may be as high as 60 to 110 mm Hg. Two broad types of pulmonary hypertension exist: primary (idiopathic) and secondary. Primary pulmonary hypertension (PPH) is relatively rare (1300 per 1 million people), rapidly progressive, and more common in women than in men (1.7 : 1 ratio). PPH usually presents in the third to fourth decade of life. The cause is unknown, but can be associated with portal hyperten- sion of cirrhosis, use of appetite-suppressant drugs, and human immunodeficiency virus infection. Most cases are sporadic and may be familial (6% to 12% of cases); however, mutations in the genes that code for members of the tumor growth factor-β family of receptors on chromosome 2q33 have been found in some cases. The long-term prognosis is poor, and medical management is usually ineffective.
Secondary pulmonary hypertension results from a known disease process or pathophysiologic condition. Increased pulmonary blood flow, increased resistance to blood flow, and increased left atrial pressure are the three major mechanisms resulting in pulmonary hypertension. Of these, increased resistance to blood flow is the most common cause and is attributable to hypoxic vasoconstriction, as seen in chronic bronchitis and advanced emphysema. Box 21.3 lists the major causes of secondary pulmonary hypertension.
Pathogenesis Chronic exposure to the mechanisms listed in Box 21.3 (except PPH) results in morphologic changes within the arterial lumen. Initially, the walls of the small pulmonary vessels thicken because of an increase in the muscle. This initial response is thought to occur as a result of local tissue hypoxia, acidosis, or both.
As the underlying pathologic process intensifies, the internal layer of the pulmonary artery wall becomes fibrotic, with further muscle thickening. In addition, muscle development occurs in vessels that are normally nonmuscular. Pulmonary atherosclerosis is present in major pulmonary vessels as well.
Sustained pulmonary hypertension (mean pulmonary arterial pressure of 27 to 60 mm Hg) results in the formation of plexiform (network of blood vessels) lesions. These nodular lesions are composed of irregular, interconnecting blood channels that further impede an already com- promised pulmonary vasculature. Tissue necrosis and hemorrhage often result.
Clinical Manifestations The clinical manifestations of pulmonary hypertension vary according to the severity and duration of the underlying pathologic process. Because of the normal distensibility of pulmonary capillaries and the ability of
blood. The technical details of this test are beyond the scope of this book, but it is a valuable test for determining either thickening (fibrosis) of the alveolocapillary membrane or destruction (emphysema) of the membrane.
By breathing mixtures of an inert gas, such as helium, the total lung capacity (TLC) can be determined. This volume is composed of the FVC and the RV. The RV is the volume of air that remains in the lung after a person has forcefully exhaled all of the air from the lungs (see Fig. 21.10). RV/TLC is normally 30% to 35%. In some patients with airflow obstruction, air tends to get trapped in the lungs, thereby increasing the RV and resulting in overinflation of lung tissue.
Arterial blood gases are also useful as a pulmonary function measure- ment. Using these values, a careful assessment of both the oxygenation and the acid–base status can be determined. The normal pH is 7.40, the normal Paco2 is 40 mm Hg, and the normal Pao2 at sea level is 80 to 100 mm Hg. In COPD, especially in the severe stage, Pao2 falls and Paco2 rises. Table 21.3 lists normal arterial blood gas values for various groups. A thorough discussion of arterial blood gas analysis can be found in Chapter 25.
Bronchial Provocation Tests The controlled induction of bronchospasm by inhalation of various agents is occasionally used to identify patients with hyperreactive airways and to prove whether certain inhaled substances can produce bron- chospasm. Usually a series of inhalations is administered, followed by a series of ventilation measurements. Generally the test is stopped when the FEV1 falls at least 20% more than the control measurement. This should only be done where emergency support services are available. Bronchoprovocation is contraindicated if the patient is already exhibiting symptoms or requires continual asthma medication. Allergens can be administered as solutions, dusts, or fumes. The amount administered should be no more than the patient would normally encounter in the environment. If symptoms occur, they can be readily reversed by two to four inhalations of albuterol or metaproterenol.
General hyperreactivity of the bronchi can be detected by having the patient inhale histamine phosphate solutions or methacholine (related to acetylcholine) or nebulized distilled water. A decline of more than 20% in the FEV1 is indicative of hyperreactivity.
1
1
2
3
4
5
6
COMPARISON OF SPIROGRAMS
Normal (NL)
FEV1 = 3.0 L FVC = 4.0 L FEV1/FVC = 75%
Obstructive (O)
FEV1 = 1.0 L FVC = 4.0 L FEV1/FVC = 25%
Restrictive (R)
FEV1 = 2.5 L FVC = 3.0 L FEV1/FVC = 83%
2 3 4
Time (sec)
V o lu
m e (
L )
5 6 7
O NL
R
FIG 21.19 Spirometry examples for normal, obstructive, and restrictive patterns.
KEY POINTS Obstructive disorders are associated with characteristic abnormalities on pulmonary function testing. These include the following: • Decreased FEV1 • Low FEV1/FVC ratio (<70%) • Improvement in FEV1 after use of a bronchodilator (asthma) • Increased residual volume • Increased functional residual capacity
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 473
Diagnosis Pulmonary artery catheters are used to obtain accurate pulmonary arterial pressure measurements in patients at rest and during exercise. Unfortunately, even if mild pulmonary hypertension is present, pul- monary arterial pressure values are usually normal at rest. Pulmonary arterial pressures measured in the exercising subject would be the optimal diagnostic tool. However, the feasibility of exercising a patient with invasive central line monitoring is problematic. The pulmonary artery catheter could become wedged and necrosis could occur, or the catheter could slip back into the ventricle and irritate the myocardium, causing ventricular dysrhythmias. Stress testing without exercise may be done in the cardiac catheterization laboratory by using medications to increase cardiac output.
A chest radiograph, although usually normal in cases of mild pul- monary hypertension, is one of the earliest diagnostic tools to suggest the presence of moderate-to-severe hypertension. Enlargement of the pulmonary arteries and right ventricle, as well as abnormal vessel contours, is indicative of hypertensive disease. The 12-lead electrocar- diogram (ECG) shows evidence of right ventricular hypertrophy. The two-dimensional echocardiogram (a noninvasive technique) can also provide evidence of pulmonary hypertension. Echocardiography may reveal mitral stenosis, left atrial myxoma, and right heart enlargement. Further diagnostic tests should be done to exclude causes of secondary pulmonary hypertension.
Treatment The major treatment for pulmonary hypertension is early identification and control of the underlying disease process. In the case of left-to-right shunts, surgical closure of an atrial septal defect or patent ductus arteriosus may be indicated. Because the most common cause of pulmonary hypertension is related to increased pulmonary vascular resistance, treatment is often directed at reversing vasoconstriction by administering supplemental oxygen and avoiding vigorous exercise and pregnancy. Depending on the stage of hypertension, vasodilators and diuretics are commonly used in an attempt to control the symptoms. These medical regimens have produced inconsistent results.
Advanced stages of PPH are irreversible. The only feasible intervention is lung or heart–lung transplantation. Continuous long-term infusion of prostacyclin (epoprostenol, treprostinil) is being used for its potent vasodilatory effect on the pulmonary vessels. It improves exercise capacity, quality of life, and long-term survival.
Pulmonary Venous Thromboembolism Etiology A PE is undissolved detached material that occludes blood vessels of the pulmonary vasculature. As a result, circulation distal to the obstructed area is impaired. Approximately 650,000 patients are affected annually, with an estimated mortality of 50,000 annually. Of those who experience fatal PE, 8% to 10% die within 1 hour of the onset of initial symptoms.
More than 90% of pulmonary thromboemboli originate in the deep veins of the lower extremities. Other sources of PE include fat, air, and amniotic fluid. The types of emboli and their causes are summarized in Table 21.4.
Virchow, a pathologist of the 1800s, discovered three physiologic factors that predispose patients to thrombus formation, increasing the risk of PE. The three factors, commonly referred to as Virchow’s triad, are venous stasis (sluggish blood flow), hypercoagulability, and damage to the venous wall (intimal injury). Several predisposing factors enhance the probability of thrombus development and the subsequent risk for PE. Using Virchow’s triad, predisposing factors have been categorized under each of the three components (Box 21.4). The most common
the lung to recruit additional reserve capillary beds with increased pressure or flow, the condition often remains asymptomatic until significant damage to pulmonary vasculature has occurred. Exercise intolerance (because of progressive loss of pulmonary capillary distention and recruitment capabilities) is often one of the earliest clinical symptoms. Patients may also experience syncope, increasing dyspnea, chest pain on exertion, fatigue, hemoptysis, and pulmonary edema. Eventually, cor pulmonale (right-sided heart enlargement secondary to primary lung disease) and right ventricular failure will develop if persistent, severe pulmonary hypertension continues, because of persistent backpres- sure to the right-sided heart chambers. (See the discussion of cor pulmonale and heart failure in Chapter 19.) Common signs and symptoms of pulmonary hypertension are dyspnea (60% of cases), syncope, chest pain, jugular venous distention, a systolic ejection click, narrowing or a splitting of S2 and S4, and accentuation of the pulmonary component of the second heart sound (P2). In advanced cases, tricuspid and pulmonary valve insufficiency are present. Development of a hoarse voice attributable to compression of the recurrent laryngeal nerve by an engorged pulmonary artery (Ortner syndrome) may occur.
Increased Pulmonary Vascular Resistance Vasoconstrictive • Alveolar hypoxia attributable to bronchitis or emphysema • Acidosis • High altitude • Thromboembolic causes from obstruction or release of histamine, serotonin,
or catecholamines • Hypoxia attributable to neuromuscular disease, obesity, obstructive sleep
apnea, or kyphoscoliosis Obstructive • Embolism (blood clots, fat emboli, amniotic emboli, tumor cells, or foreign
body) Obliterative (loss of capillary bed) • Emphysema • Lung resection • Pulmonary fibrosis • Collagen vascular disease • Vasculitis
Increased Left Atrial Pressure Mitral stenosis, mitral regurgitation Left ventricular failure Constrictive pericarditis
Increased Pulmonary Blood Flow/Viscosity Atrial septal defects Ventricular septal defects Polycythemia Sickle cell disease Patent ductus arteriosus Congenital heart disease
Other Portal hypertension/liver cirrhosis Appetite-suppressant drugs HIV Schistosomiasis Sarcoidosis
BOX 21.3 Mechanisms of Secondary Pulmonary Hypertension
474 UNIT VI Respiratory Function
in blood flow. Regardless of whether the emboli are blood clots or an alternative type of material (see Table 21.4), once they are released into the venous system, the undissolved material travels to the pulmonary vasculature. The lower lobes are frequently involved because of high blood flow. The impact of pulmonary emboli on the cardiopulmonary circulation depends on the size and cross-sectional area of circulatory impairment. If the embolus occludes less than 25% of the pulmonary vessels in a healthy individual, no physiologic changes may be seen. When the occlusive area approaches 25% to 30%, pulmonary arterial pressures may begin to rise, with potential right-sided heart failure. In the patient without any underlying pulmonary pathology, 50% of the cross-sectional pulmonary circulation must be impaired before danger- ously high pulmonary arterial pressures are generated. Because of the large pulmonary capillary reserve, significant damage is necessary before pulmonary decompensation occurs.
Pulmonary arterial pressures increase because of vasoconstriction from actual mechanical obstruction of blood vessels and the release of serotonin and neural sympathetic stimulation in a combined neuro- hormonal response. Right-sided heart failure occurs because of the high resistance generated by the pulmonary vasculature. Eventually, hypotension occurs as a result of diminished cardiac output.
Actual pulmonary infarction (death of lung parenchyma) occurs only in about 10% to 15% of cases of PE. Pulmonary necrosis is rare because three sources are available for oxygen supply: the pulmonary arterial circulation, the bronchial arterial circulation, and the airways. Significant underlying pulmonary or cardiac impairment (COPD, mitral stenosis) increases the risk for occurrence of pulmonary infarctions.
Clinical Manifestations Presenting symptoms depend on the size of the embolus, as well as on any underlying cardiopulmonary pathologic conditions. Initial symptoms may include restlessness, apprehension, and anxiety. The most common symptom is dyspnea (75% to 85% of patients). In addition, tachycardia (23%) and tachypnea (30%) are often present. Sudden dyspnea and severe chest pain are usually associated with medium-sized to massive pulmonary emboli. Chest pain may be nonpleuritic or pleuritic (infarc- tion). Pain on inspiration is seen in 65% to 75% of patients. Hemoptysis may or may not occur. As the clinical picture worsens, patients experience heart failure, shock, and respiratory arrest.
Diagnosis Because PE is often misdiagnosed, the clinician should have a high index of suspicion when clinical manifestations, combined with factors predisposing to PE (see Box 21.4), are noted. Although no simple noninvasive test has both high specificity and high sensitivity, the V̇A/Q̇ lung scan is one of the tests performed to determine the presence of a PE. The scan determines whether a mismatch exists between ventila- tion and perfusion. Adequate ventilation with impaired perfusion (blood flow) to the pulmonary vasculature (mismatch) is indicative of PE if the scan is performed within 8 hours of symptom onset. Helical angiography is replacing lung scans as the initial diagnostic test for pulmonary thromboembolism. This noninvasive test requires administra- tion of radiocontrast dye.
Other screening tools, such as arterial blood gas analyses, ECGs, chest radiographs, and cardiac enzyme determinations, are valuable for ruling out related pathologic processes. Arterial blood gases generally reveal decreased Pao2 and Paco2 and increased pH. A chest radiograph may be normal or show an elevated diaphragm, pleural effusion, infiltrates, or atelectasis. An ECG is abnormal in 70% to 85% of cases with acute PE. Common electrocardiographic findings are sinus tachycardia, nonspecific T-wave and ST-segment changes, and T-wave
risk factors for venous thromboembolus formation are immobility, trauma, pregnancy, cancer, heart failure, and estrogen use.
Pathogenesis Thrombi are dislodged from their point of origin by multiple mecha- nisms, including direct trauma, exercise and muscle action, and changes
TABLE 21.4 Embolism Types and Causes
Embolism Type Cause
Thrombotic Blood clots develop in venous system, predominantly in thighs and legs
Fat Globules of fat secondary to fractures of pelvis or long bones
Amniotic fluid Collections of fluid, hair, or other debris related to complicated labor, especially in older, multiparous women
Air Venous access through IV catheters Tumor Fragments from malignant tissue Foreign material Foreign bodies (bullets, sutures, catheter tips,
orally prepared medications injected IV) Septic Infected tissue or related substances (fungal/
bacterial) Parasitic Parasites present in lung vasculature
Venous Stasis Extended bed rest (delayed venous removal of activated clotting factors) Postoperative state Immobility (activated clotting factors) Vascular disorders (thrombophlebitis of lower extremities and pelvic area) Congestive heart failure (venous backflow/stasis) Cardiac dysrhythmias (atrial fibrillation) Dehydration Prolonged air travel Obesity
Hypercoagulability Oral contraceptives (estrogen therapy), hormone replacement therapy Pregnancy, early puerperium Polycythemia (chronic high altitude; chronic pulmonary disease with decreased
PaO2 and increased PaCO2) Malignant pathologic processes, visceral cancer Cigarette smoking Inherited resistance to activated protein C Deficiency of protein S Deficiency of antithrombin III Prothrombin gene mutation Presence of antiphospholipid antibodies (lupus), anticoagulant and anticardiolipin
antibodies
Damage to Vessel Wall (Intimal Injury) Blunt trauma Penetrating wounds Bone fractures with soft tissue injury Surgical procedures (hip, pelvic, abdominal, cardiovascular) Obstetric manipulations during labor and delivery Burns Central venous catheter
BOX 21.4 Factors Predisposing to Pulmonary Embolism of Virchow’s Triad
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 475
inversion. The probability of a PE can be estimated by the use of Wells rules (Box 21.5).
The conclusive diagnostic test for PE is pulmonary arteriography, but is rarely done. This invasive procedure involves the injection of radiopaque material into the pulmonary artery. If an intraluminal filling deficit can be identified, the test is considered diagnostic for PE. A duplex ultrasonography of the lower extremities to determine the site of deep vein thrombosis should also be performed.
Treatment The primary intervention for PE is prevention. Patients who are at risk for developing one of the factors of Virchow’s triad must be treated prophylactically. In the case of prolonged bed rest, active range-of-motion exercises as well as prophylactic low-dose subcutaneous sodium heparin or low-molecular-weight heparins may be used. Intraoperative and postoperative graded compression stockings and intermittent pneumatic leg compression are beneficial in reducing the risk of PE.
Patients with suspected or confirmed PE are given supplemental oxygen or ventilator support with immediate activity limitations to decrease oxygen demand. A continuous heparin IV drip is used as a mainstay of therapy. Although heparin does not dissolve the clot, forma- tion of new clots is prevented. Heparin may also stimulate the intrinsic fibrinolytic system, enhancing the degradation of the PE. Thrombolytic therapy may be used to dissolve the emboli. However, thrombolytics create an increased risk of bleeding, and unless the patient has a massive embolism and is hemodynamically unstable, they are not used.
If patients are thought to be releasing multiple emboli despite adequate heparin therapy, an umbrella filter (Mobin-Uddin) or a “bird’s nest” filter may be placed in the inferior vena cava to trap emboli as they migrate toward the pulmonary vasculature. Inferior vena cava filters reliably prevent recurrent PE with a recurrence rate of about 1% at 12 days. An embolectomy may be performed on an emergency basis if the hemodynamic consequences of the emboli are life threatening and the patient has refractory hypotension.
1. Clinical signs/symptoms of deep vein thrombosis (DVT) (score = 3.0) 2. No alternative diagnoses likely or more likely than pulmonary embolism
(PE) (score = 3.0) 3. Heart rate >100 beats/min (score = 1.5) 4. Immobilization or surgery in last 4 weeks (score = 1.5) 5. Previous history of DVT or PE (score = 1.5) 6. Hemoptysis (score = 1) 7. Cancer actively treated within last 6 months (score = 1.0) 8. The probability of a PE is high if total score is >6, moderate if 2 to 6, and
lower if <2.
BOX 21.5 Wells Rules
KEY POINTS • Pulmonary hypertension usually results from conditions that increase the
resistance of the pulmonary vasculature. Disorders that reduce the total cross-sectional area of the lung increase resistance and promote pulmonary hypertension. Destruction of capillaries (emphysema), blockage of vessels (emboli), and vasoconstriction (hypoxemia) are common examples.
• Pulmonary hypertension may occur when left atrial pressure is elevated. Pulmonary arterial pressure must increase to maintain the driving pressure necessary to propel blood through the pulmonary circulation. The excessive pulmonary blood flow that accompanies left-to-right shunting of blood through heart defects may also lead to pulmonary hypertension.
• Cor pulmonale (right ventricular hypertrophy) and right-sided heart failure may develop with sustained high pulmonary vascular resistance. Few symptoms of pulmonary hypertension are manifested until the right side of the heart is affected.
• Treatment centers on efforts to ameliorate the underlying cause if possible (e.g., closure of heart defects, administration of oxygen to reduce hypoxic vasoconstriction). Vasodilators and diuretics may be used to reduce pulmonary arterial pressure and decrease strain on the right side of the heart.
• Pulmonary emboli result in obstruction of blood flow through part of the pulmonary system. When emboli are large or multiple, a significant increase in pulmonary pressure may result, causing right ventricular failure.
• Emboli may be composed of fat, air, amniotic fluid, or thrombi (blood clots). Thrombi are the most common cause. Thrombi generally form in the leg under conditions of venous stasis, enhanced coagulation, or vascular trauma (Virchow’s triad).
• Pulmonary embolism (PE) is suspected with sudden dyspnea and chest pain. Symptoms of right-sided heart failure may be present when emboli are large. A ventilation–perfusion scan or other imaging may be done to confirm the diagnosis.
• Prophylactic anticoagulation in persons at risk for thrombus formation is important to prevent PE. Postoperative pneumatic leg compression also reduces the risk of thrombus formation. Bed rest, oxygen administration, and thrombolytic and anticoagulation therapy are the mainstays of therapy for acute PE. Ventilator support and measures to improve the functioning of the right side of the heart may be necessary in severe cases.
PULMONARY MALIGNANCIES Etiology The incidence of lung cancer in the United States has been increasing in recent years, with more than 220,000 new cases per year. The four major types of lung cancer are large cell carcinoma, small cell carcinoma, squamous cell carcinoma, and adenocarcinoma. Another type of lung cancer is bronchoalveolar, which comprises 5% of lung cancers. Lung cancer is responsible for more than 32% of cancer deaths in men and more than 25% of cancer deaths in women. Among women there has been a 600% increase in the incidence of lung cancer over the last 80 years. Tobacco smoking is the major cause (85%) of lung cancer, with approximately 155,000 deaths reported per year. About 3800 deaths per year are reported in nonsmokers who receive secondary smoke from the environment. The remaining percentage of lung cancer is not attributable to smoking. Individuals at highest risk for developing lung cancer are those who started smoking before the age of 25 years or longer, have smoked one or more packs of cigarettes a day for 20 years, work under conditions of asbestos exposure, and are older than 50 years. (See Chapter 7 for further discussion of cancer biology.)
Pathogenesis Squamous cell epidermoid carcinoma (20% to 30% of cases) usually originates (in two thirds of cases) in the central bronchi near the hilus as an intraluminal growth. Cytologic examination of sputum reveals the squamous cell carcinoma, leading to earlier detection of this cancer than with other lung neoplasms. The tumor normally doubles its volume in 100 days and, as it advances, metastasizes to regional lymph nodes in the area.
Adenocarcinomas (35% to 40% of cases) usually appear in the periphery of the lung and are not as amenable to early detection as squamous cell carcinoma. Adenocarcinomas are characterized by acinar bronchoalveolar and papillary tumors. Doubling time is about 180 days, with metastasis occurring to distant organs, which may be due to aerosol transmission in the case of bronchoalveolar (2% of cases) carcinoma.
476 UNIT VI Respiratory Function
Pleural fluid samples show positive findings in 50% to 65% of patients with malignant pleural effusion. Histologic examination of tissue after biopsy of the pleura, lung tissue, or mediastinal lymph nodes may also be helpful in diagnosing lung cancer.
Chest radiographs show abnormal findings in nearly all patients with lung cancer. Common findings are hilar (squamous cell) and/or peripheral (adenocarcinoma) masses, atelectasis, mediastinal widening, infiltrates, pleural effusions, and cavitation (squamous cell epidermoid carcinoma). Chest studies are helpful in evaluating tumor size and nodal involvement. Computed tomography (CT) scans of the chest are used for staging and for follow-up study after treatment. Positron emission tomography scanning with F-labeled fluorodeoxyglucose, a metabolic marker of malignant tissue, is superior to a CT scan in detecting mediastinal and distant metastases in non–small cell lung cancer.
Treatment Primary treatment options for pulmonary neoplasms are surgery, chemotherapy, radiation therapy, laser therapy, and tissue-specific therapies for airway lesions. Patients are also strongly encouraged to stop smoking.
The treatment of choice for non–small cell carcinoma is surgery. For nonoperable neoplasms, radiation therapy is the secondary choice. Radiotherapy improves survival in patients with nonresectable non–small cell carcinoma. Combination chemotherapy is the therapy of choice in patients with extensive small cell carcinoma. Combined chemotherapy and chest radiation therapy has proved effective as a cure for patients in whom disease was detected early. Radiation therapy is also used for palliation of symptoms as with other cancers, immunotherapies may be effective adjuncts. (See Chapter 7.)
Large cell carcinomas (10% to 15% of cases) develop in the lung periphery and are similar to adenocarcinoma. The tumor cells are large and are arranged in nests or clusters. The tumor doubles in size about every 100 days and metastasizes to distant organs.
Small cell (oat cell) carcinoma (15% to 20% of cases) tends to originate extrinsically in the central bronchus region, thus compressing and narrowing the bronchi. The narrowing may lead to signs and symptoms of obstruction of a central airway, leading to wheezing. This type of tumor is associated with a lesion on chromosome 3 and grows rapidly, doubling in about 33 days. Widespread metastasis is common with small cell carcinomas and they are the most resistant to therapy.
Bronchoalveolar (5%) carcinoma tends to originate in the periphery and metastasize through the lymphatics. There is no correlation with cigarette smoking.
Clinical Manifestations Clinical features vary according to the type and the location of the tumor and whether it has metastasized. Approximately 10% to 25% of cases are asymptomatic. Signs and symptoms can be classified as intrathoracic or extrathoracic.
Extrathoracic manifestations are weight loss, fatigue, anorexia, anemia, and clubbing. Facial and upper extremity edema is noted in cases of tumor compression of the superior vena cava. Superior vena cava syndrome is most commonly caused by bronchogenic carcinoma.
Intrathoracic manifestations include dyspnea, cough, chest pain, hemoptysis, and increased sputum production (with bronchoalveolar carcinoma). Hoarseness may be evident and is caused by pressure of the tumor on the recurrent laryngeal nerve. Phrenic nerve involvement (1% of lung cancer patients) leads to paralysis of the hemidiaphragm on the affected side and the potential for development of atelectasis and pneumonia. Clinical findings of endobronchial obstruction include atelectasis, postobstructive pneumonia, pleural effusion (12% to 33%), and Horner syndrome (miosis, ipsilateral ptosis, and dyshidrosis). Abdominal breathing measures are taught to the patient who does not recover diaphragmatic function from damage to the phrenic nerve. Extension of the cancer cells to the pleural cavity may cause pleural effusion.
Diagnosis Pulmonary function tests may show increased volumes in moderately advanced cases of bronchial carcinoma. Because the tumor blocks the airway, an obstructive pattern of pulmonary disease may lead to increased or decreased functional residual capacity attributable to the effect of the mass lesion.
The definitive diagnosis of cancer requires positive cytologic or histologic findings. Bronchoscopy washings are a common method of diagnosing lung cancer in patients whose lesions are centrally located.
KEY POINTS • Cigarette smoking is the major cause of lung cancer. Lung cancer is usually
disseminated at the time of diagnosis and is associated with a high mortality.
• Lung cancers can develop in the bronchial tree (small cell, squamous cell) or in the parenchyma (large cell, adenocarcinoma).
• Lung cancer may be advanced before symptoms become troublesome. Manifestations include cough, hemoptysis, hoarseness, chest pain, and pleural effusion. The diagnosis is based on examination of cells from bronchial secretions or tissue biopsy. Pulmonary masses may be detected by plain radiography or computed tomography (CT) of the chest.
• As with other cancers, treatment may include surgical removal of resectable tumors followed by radiation therapy, chemotherapy, and immunotherapy.
The primary function of the respiratory system is oxygenation of the tissues. This function is accomplished by the movement of O2 from the atmosphere through the airways to alveolar sacs. The inhaled air is warmed, humidified, and filtered in the upper airway on its way to the alveoli. Once in the alveoli, diffusion of O2 and CO2, a gaseous waste product, occurs and O2 is transported by means of hemoglobin molecules to the tissues. The respiratory system has numerous control mechanisms that influence its function. For example, the respiratory control centers may be inhibited when a person has a brain injury, thus producing inadequate respiration. Failure of oxygenation is seen in acute respiratory failure. Acute respiratory failure, defined as a Pao2 less than 60 mm Hg
and a PaCO2 greater than 50 mm Hg at room air, occurs in individuals who have developed ventilation–perfusion mismatching, right-to-left shunt, or hypoventilation. Diseases affecting the pulmonary vasculature include pulmonary hypertension and PE. Pulmonary hypertension is associated with disease processes (e.g., emphysema, PE, hypoxemia) that increase pulmonary vascular resistance. PEs result in obstruction to blood flow in the pulmonary vasculature. The health or disease of a patient’s cardiovascular, renal, and hematologic systems also affects the functioning of the respiratory system. Health care professionals have a key role in the prevention and management of respiratory disease and in patient and family education.
S U M M A R Y
CHAPTER 21 Respiratory Function and Alterations in Gas Exchange 477
Fine B: Pulmonary embolism. In Ferri FF, editor: Ferri’s clinical advisor: 5 books in 1, Philadelphia, 2016, Elsevier, pp 1049–1052.
Goroll AJ, Mulley AG: Management of chronic obstructive pulmonary disease. In Goroll AH, Mulley AG, editors: Primary care medicine: office evaluation and management of the adult patient, ed 7, Philadelphia, 2014, Lippincott Williams & Wilkins, pp 382–398.
Lapner ST, Kearon C: Venous thromboembolism. In Bope ET, Kellerman RD, editors: Conn’s current therapy 2016, Philadelphia, 2016, Elsevier, pp 423–431.
Murphy DP, Boller WA: Chest pain (non-cardiac). In Buttaro TM, Trybulski J, Polgar-Bailey P, et al, editors: Primary care: a collaborative practice, ed 4, Philadelphia, 2012, Elsevier, pp 433–439.
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Pulmonary Malignancies Diatrick KB, Long J, Chang AC: Thoracic wall, pleura, mediastinum, and
diaphragm. In Doherty GM, editor: Current surgical diagnosis and treatment, ed 14, New York, 2015, Lange/McGraw-Hill, pp 331–389.
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Kratzke RA, Patel MR: Primary lung cancer. In Bope ET, Kellerman RD, editors: Conn’s current therapy 2016, Philadelphia, 2016, Saunders, pp 409–414.
Winland-Brown JE, Porter BO, Thomas DJ: Respiratory problems. In Dunphy LM, Winland-Brown JE, Porter BO, et al, editors: Primary care: the art and science of advanced practice nursing, ed 4, Philadelphia, 2015, FA Davis.
RESOURCES Pulmonary System Development and Physiology Allen SC: The respiratory system. In Fillit HM, Rockwood K, Woodhouse K,
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Barrett KE, Barman SM, Boltan SS, et al: Ganong’s review of medical physiology, ed 25, New York, 2015, McGraw Hill.
Clouter MM, Throll RS: The respiratory system. In Koeppen BM, Stanton BA, editors: Berne & Levy physiology, ed 6, updated edition. Philadelphia, 2010, Mosby-Elsevier.
Gadara H, Hirbe A, Nassif M, et al: The Washington manual of medical therapeutics, ed 34, Philadelphia, 2013, Lippincott Williams & Wilkins.
Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2015, Elsevier.
Kliegman RM, Stanton BF, St Geme JW: Nelson textbook of pediatrics, ed 20, Philadelphia, 2015, Elsevier.
Kumar V, Abbas AK, Aster J: Robbins & Cotran pathologic basis of disease, ed 9, Philadelphia, 2015, Elsevier.
Mackenzie CF: Compromises in the choice of orotracheal or nasotracheal intubation and tracheostomy. Heart Lung 12:485–492, 1983.
Moore KL, Persaud TVN, Torchia M: The developing human: clinically oriented embryology, ed 10, Philadelphia, 2015, Elsevier.
Rossi A, et al: Aging and the respiratory system. Aging 8(3):143–161, 1996. West JB: Respiratory physiology: the essentials, ed 9, Philadelphia, 2012,
Lippincott Williams & Wilkins.
Pulmonary Disorders Arshad R: Pulmonary arterial hypertension. In Ferri FF, editor: Ferri’s clinical
advisor:5 books in 1, Philadelphia, 2016, Elsevier, pp 1044–1046. Chestnutt MS, Prendergast TJ: Pulmonary disorders. In McPhee SJ, Papadakis
MA, Rabow MW, editors: Current medical diagnosis and treatment, ed 55, New York, 2016, Lange/McGraw-Hill, pp 242–321.
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Obstructive Pulmonary Disorders Benjamin J. Miller and Lorna L. Schumann
K E Y Q U E S T I O N S • What are the clinical manifestations and common causes of acute
airway obstruction? • What are the pathogenesis and clinical manifestations for
conditions that cause obstruction of the airway lumen? • What is the role of inflammation in the development of asthma? • How does the underlying genetic defect in cystic fibrosis lead to
pulmonary and exocrine gland dysfunction?
• How does smoking cause both the alveolar destruction of emphysema and the bronchial damage of chronic bronchitis?
• What is the rationale for using drugs such as β2 agonists, acetylcholine antagonists, leukotriene inhibitors, corticosteroids, and mast cell stabilizers to manage obstructive pulmonary disorders?
C H A P T E R O U T L I N E Obstruction From Conditions in the Wall of the
Lumen, 479 Asthma, 479
Etiology, 479 Pathogenesis, 480 Clinical Manifestations, 481 Diagnosis, 481 Treatment, 481
Acute Bronchitis, 483
Etiology, 483 Pathogenesis, 485 Clinical Manifestations, 485 Diagnosis, 485 Treatment, 485
Chronic Bronchitis, 485
Etiology, 485 Pathogenesis, 486 Clinical Manifestations, 486 Diagnosis, 487 Treatment, 487
Obstruction Related to Loss of Lung Parenchyma, 488 Emphysema, 488
Etiology, 488 Pathogenesis, 489 Clinical Manifestations, 490 Diagnosis, 490 Treatment, 491
Obstruction of the Airway Lumen, 491 Bronchiectasis, 491
Etiology, 491 Pathogenesis, 491 Clinical Manifestations, 492
Diagnosis, 492 Treatment, 492
Bronchiolitis, 493
Etiology, 493 Pathogenesis, 493 Clinical Manifestations, 493 Diagnosis, 493 Treatment, 493
Cystic Fibrosis, 494
Etiology, 494 Pathogenesis, 494 Clinical Manifestations, 495 Diagnosis, 495 Treatment, 495
Acute Tracheobronchial Obstruction, 495
Etiology, 495 Pathogenesis, 495 Clinical Manifestations, 495 Diagnosis, 495 Treatment, 495
Epiglottitis, 496
Etiology, 496 Pathogenesis, 496 Clinical Manifestations, 496 Diagnosis, 496 Treatment, 496
Croup Syndrome, 496
Etiology, 496 Pathogenesis, 496 Clinical Manifestations, 496 Diagnosis, 496 Treatment, 496
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 22 Obstructive Pulmonary Disorders 479
environmental control measures are not usually helpful. Airways are hyperreactive, and patients may present with extreme dyspnea, orthopnea, and agitation.
Exercise-induced asthma is common, especially in children and adolescents. Bronchospasm often occurs within 3 minutes after the end of exercise and usually resolves in 60 minutes. Heat loss, water loss, and increased osmolarity of the lower respiratory mucosa are believed to stimulate mediator release from basophils and tissue mast cells. This mediator release produces airway smooth muscle contraction. Running, jogging, and playing tennis are the most common instigators of exercise- induced asthma. Bicycling and swimming are much less likely to induce symptoms.
Occupational asthma may be accompanied by positive skin test reactions to protein allergens in the work environment. Occupational exposures to allergens, such as fumes from plastic, formaldehyde, isocyanates, some metals, textiles, engine exhaust, sulfur dioxide, fluoride, and western red cedar dust, do not provoke skin reactions. To prove hypersensitivity, it may be necessary to conduct challenge tests in the patient by inhalation of the suspected dust or fumes in a controlled environment. The individual affected by occupational asthma tends to have progressively more severe attacks with subsequent exposures. Symptoms may clear over a weekend or vacation and recur when the individual returns to the work environment. This repeated history often is sufficient to establish the diagnosis. Hyposensitization in most cases of occupational asthma is ineffective because of lack of an IgE antibody reaction and because the chemicals that cause symptoms usually are toxic when injected.
Drug-induced asthma can produce symptoms ranging from mild rhinorrhea to respiratory arrest requiring mechanical ventilation. In
Obstructive lung diseases are manifested by increased resistance to airflow. Obstructive diseases of the lung can be classified into those involving (1) obstruction from conditions in the wall of the lumen (e.g., asthma, bronchitis), (2) obstruction resulting from increasing pressure around the outside of the airway lumen (e.g., emphysema secondary to loss of lung tissue and elasticity, enlarged lymph node, or tumor), and (3) obstruction of the airway lumen (e.g., presence of a foreign body, excessive secretions, aspiration of fluids).
These classifications are mainly terms of convenience because many respiratory disease processes involve several areas of the pulmonary system. Involvement of the airways produces narrowing of the passages so that airflow obstruction occurs. The major obstructive airway diseases are asthma, bronchitis, and emphysema.
OBSTRUCTION FROM CONDITIONS IN THE WALL OF THE LUMEN Asthma Etiology Asthma is a lung disease characterized by (a) airway obstruction that is reversible (but not completely in some patients), (b) airway inflammation, and (c) increased airway reactivity to a variety of stimuli. In terms of symptoms, asthma is defined by paroxysms of diffuse wheezing, dyspnea, and cough resulting from spasmodic contractions of the bronchi. Airway inflammation leads to epithelial denudation, collagen deposition beneath the basement membrane, mast cell activation, mucosal edema, increased viscid secretions, and smooth muscle contraction. With proper treatment, most patients with asthma can control the disease and prevent development of emphysema or bronchitis. Asthma occurs in about 7% to 14% of the U.S. population and is common among children and adults, with an annual mortality rate of 10.7 per 1 million people, or approximately 3400 people. The annual direct and indirect cost of asthma is estimated at more than $56 billion. Asthma is the most common chronic disease of childhood with a disproportionally high prevalence rate in African Americans, inner-city dwellers, and premature or low-birth-weight children. The pathophysiology of both intrinsic (nonallergic, sometimes referred to as adult onset) and extrinsic (allergic, sometimes referred to as pediatric onset) asthma is thought to involve inflammation of the airways. Most cases of asthma can be triggered both by allergens and by stimuli, such as exercise and exposure to cold air. The terms intrinsic and extrinsic are still used, but many prefer the terms nonallergic and allergic. The clinical features of all forms are similar.
Asthma is associated with the release of inflammatory chemicals from mast cells in the airways. The mechanisms stimulating mast cell release are immunoglobulin E (IgE)–mediated triggers for extrinsic/allergic asthma (Fig. 22.1). Intrinsic/nonallergic asthma occurs in patients who have no history of allergy. Allergic asthma (extrinsic) comprises approximately one third to one half of all cases. Asthma is often associated with a history of hay fever or eczema (atopy), a positive family history of the disease, and positive skin test reactions to allergens (dust mites, cat/dog dander, industrial chemicals). Pharmacologic therapy, allergen-specific immunotherapy, and environmental control are usually beneficial. Refer to Chapter 10 for details about IgE-mediated mechanisms and hyposensitization methods.
Intrinsic/nonallergic asthma frequently develops in middle age and has a less favorable prognosis. Respiratory tract infections or psychological factors appear to be contributory, whereas antigen–antibody reactions appear to have less of a role in the disease process, although IgE levels may be elevated. Attacks are often severe, and patients have a variable response to medical therapy. Allergen-specific immunotherapy and
FIG 22.1 Allergic asthma is triggered when an allergen cross-links IgE receptors on mast cells, which are then activated to release histamine and other inflammatory mediators (early-phase response). A late-phase response may occur due to further inflammation. (From Lewis SL et al: Medical-surgical nursing: assessment and management of clinical problems, ed 9, St Louis, 2014, Elsevier.)
480 UNIT VI Respiratory Function
neutrophils, eosinophils, and lymphocytes. Inflammation of the airway contributes to acute bronchospasm (bronchoconstriction), mucosal edema, mucous plug formation, and airway wall remodeling (Fig. 22.2). Genetic predisposition (chromosomes 5, 11, 14) for atopy and structural predisposition (smaller airways) are the strongest predisposing factors for developing asthma. There is a strong association of the ADAM33 gene with asthmatic bronchial hyperresponsiveness.
With allergic asthma, an IgE-mediated response is common and is manifested by elevated IgE levels, allergic rhinitis; eczema; a positive family history of allergy; and attacks associated with seasonal, environ- mental, or occupational exposure. The mechanism of action is initiated by exposure to a specific antigen that has previously sensitized mast cells in airway mucosa. When the antigen reacts with the antibody on the surface of the mast cell, packets of chemical mediator substances stored in the cell are released. The chemical mediators that are released include histamine, slow-reacting substances of anaphylaxis (leukotrienes), prostaglandins, bradykinins, eosinophilic chemotactic factor, serotonin, and others. Fig. 22.1 depicts common chemicals that are released by the mast cell and the physiologic effect of these chemicals. Cytokines are probably the most important inflammatory mediators, particularly those associated with TH2 helper T-cell activation (granulocyte- macrophage colony–stimulating factor and interleukins 3, 4, 5, and 13). These cytokines may be responsible for modulating inflammatory and immune cell function. Other inflammatory mediators are arachidonic acid metabolites such as leukotrienes and prostaglandins, platelet- activating factor, neuropeptides, reactive oxygen species, histamine, and adenosine. With the release of chemical mediators, the normal respiratory epithelium is denuded and replaced by goblet cells, resulting in mucosal edema, production of inflammatory exudates, and hyperresponsiveness of the airway (bronchoconstriction and leakage). Alterations in epithelial integrity lead to increased microvascular permeability. A secondary mediator response occurs 6 to 12 hours after the primary asthma attack and is more refractory to treatment. Neutrophil chemotactic factor may be the cause of this secondary response.
Histologic changes in the epithelial basement membrane occur over time. The basement membrane is a complex structure that separates endothelial cells from underlying stroma. The membrane provides tensile strength and physical support to surrounding structures. It also functions as a filter and as a site for cell attachment. In a classic study by Hogg in 1982, the width of the basement membrane was shown to thicken in
patients with nasal polyps, sinusitis, and asthma, ingestion of aspirin may induce severe or occasionally fatal asthmatic attacks. Sometimes anaphylactoid reactions cause a decrease in blood pressure, itching (pruritus), rhinorrhea, or a rash after aspirin ingestion. Aspirin intoler- ance with asthma usually occurs in adults. Attacks may occur within minutes of ingestion or may be delayed up to 12 hours. Nonsteroidal antiinflammatory drugs such as indomethacin (Indocin), ibuprofen (Motrin, Advil), and related drugs may also induce asthma in the aspirin-intolerant patient. Aspirin reactions are not immunologically mediated. Therefore skin testing is not useful for diagnosing aspirin intolerance. Because aspirin and nonsteroidal antiinflammatory drugs inhibit the conversion of arachidonic acid to prostaglandins, it is possible that aspirin shunts arachidonic acid breakdown products to the leukotriene system. Leukotrienes, released from mast cells, are slow- reacting substances of anaphylaxis with powerful bronchoconstriction activity (see Fig. 22.1). Avoidance is the most practical approach to this problem because testing can be dangerous.
Asthma can occur from ingestion of food additives. Tartrazine (yellow dye no. 5), which is used to color pharmaceuticals, hair products, and food products, may also produce severe asthma in susceptible persons. A complete list of drugs containing tartrazine can be obtained from the Food and Drug Administration.
Monosodium glutamate, used as a flavor enhancer in foods, can produce faintness, nausea, sweating, a fall in blood pressure, and, occasionally, asthma. Sodium or potassium metabisulfite, used to preserve fruits, vegetables, and meats, can cause anaphylactoid reactions. A challenge with the chemical may be necessary to establish a diagnosis, as metabisulfites are widespread in our society.
Hops in beer have also been implicated in causing severe broncho- spasm. Skin reactivity does not occur, and the mechanism of the problem is not IgE mediated. The diagnosis involves a history of exposure followed by symptoms.
Gastroesophageal reflux disease can trigger an asthma attack. It is assumed that the gastric acid reflux in the esophagus is aspirated into the lungs, resulting in bronchoconstriction.
Pathogenesis The immunohistopathologic features of asthma include denudation of airway epithelium, collagen deposition beneath the basement membrane, edema, mast cell activation, and inflammatory cell infiltration by
Mucous glands Narrowed
lumen
Smooth muscle
Cartilage
Cartilage
Hypertrophied muscle
Increased mucous glands
Mucosal edema
Thick mucus in airway
NORMAL ASTHMA
FIG 22.2 Common bronchial wall remodeling changes in asthma are hypertrophied smooth muscle, edema, mucous gland hyperplasia, and mucus in the lumen.
CHAPTER 22 Obstructive Pulmonary Disorders 481
measurement of forced expiratory volume over 1 second (FEV1), FVC, and the FEV1/FVC ratio before and after administration of a short-acting bronchodilator. Airflow obstruction is indicated by an FEV1/FVC ratio of less than 75%. Classification of asthma severity and control (Figs. 22.3 and 22.4) is based on presenting symptoms, frequency of nighttime symptoms, and lung function. Fig. 22.5 shows stepped therapy for asthma based on classification.
Arterial blood gas values may be normal during a mild attack, but as the bronchospasm increases in intensity, respiratory alkalosis and hypoxemia become prominent findings. Elevation of arterial partial pressure of carbon dioxide (Paco2) is a poor prognostic sign, indicating that the patient’s ability to continue breathing at a rapid rate has diminished and that exhaustion is imminent.
Respiratory failure may be manifested by severe respiratory distress in a patient who shows no radiographic evidence of pneumothorax. As the patient improves, the wheezing becomes louder. When wheezing is no longer heard after an asthma attack, pulmonary function tests may continue to show obstructive changes for several weeks. Some patients have a slight monophonic wheeze continuously between asthma bouts and still are comfortable and functional.
Determination of allergens is done by skin testing or inhalation of suspected allergens. Skin testing is usually more helpful in young patients who have extrinsic asthma. Bronchial provocation testing with histamine or methacholine may be useful in confirming the diagnosis of asthma in certain cases (see the Diagnostic Tests section in Chapter 21).
A complete blood cell count can show an elevated number of white blood cells (WBCs) with an increased number of eosinophils. Eosinophils are prominent in the cellular infiltrate of the bronchioles, the sputum, and the peripheral blood. A decline in the total eosinophil count is a valuable measure of effectiveness of corticosteroid treatment. With effective treatment, the total eosinophil count is depressed below 10/µL.
Treatment Patients should be advised to avoid the objects in the environment that trigger asthma attacks. Environmental control includes control of dust; removal of allergens such as feathers, molds, and animal dander; and, in some cases, removal of rugs and carpets. Other environmental control factors that help some patients include the use of air purifiers and air conditioners. The patient should also be taught preventive therapy in regard to smoking cessation and avoidance of passive smoke, aerosols, and odors. Patients should seek early treatment for respiratory tract infections.
Pharmacologic therapy for all three major obstructive disorders is similar and focuses on decreasing inflammation and bronchoconstriction, including β2 agonists, corticosteroids, leukotriene modifiers, and mast cell inhibitors (Fig. 22.6). Other therapies used in patients with more severe asthma include home oxygen therapy and home administration of small-volume nebulizer treatments via intermittent positive-pressure ventilation. At home, peak flow monitoring is helpful to parents or patients in determining a treatment plan and when to seek medical assistance. Peak flow meters are also helpful in monitoring progress of the patient with around-the-clock therapy.
Allergen-specific immunotherapy (hyposensitization) may be used as an adjunct to other therapies. The allergen is first identified by testing with purified allergens using the scratch, prick, or intradermal method. Desensitization therapy has been shown in controlled studies to reduce the frequency and severity of asthmatic episodes when a single offending allergen can be identified.
Status asthmaticus (severe attack unresponsive to routine therapy) requires more rapid and intense therapy, which may include epinephrine, subcutaneous terbutaline, and/or aminophylline. Once airflow has improved, aerosol bronchodilating inhalers may be used. Intravenous
asthmatic patients over time. The width seen in asthmatic patients is 17.5 µm, whereas that seen in healthy subjects is 7 µm. Airway remodeling has been detected pathologically. Declines in pulmonary function over time can progress to chronic obstructive pulmonary disease (COPD). Fig. 22.1 depicts the pathogenesis of asthma in relation to mast cell release and parasympathetic stimulation by way of the vagus nerve. Vagal stimulation leads to edema, mucus hypersecretion, and bronchoconstriction. The nerve endings of asthmatic patients have been found to be devoid of the bronchodilator neuropeptide vasoactive intestinal peptide.
Clinical Manifestations Common symptoms are wheezing, feelings of tightness of the chest, dyspnea, cough, and increased sputum production. Some patients have only a chronic dry cough, and others have a productive cough. Especially in children, cough is often the earliest sign of exacerbation of asthma. Wheezing is caused by vibration in narrowed airways, which act like the vibrating reed of a wind instrument, yielding a musical sound. Because airways naturally widen with inspiration, inspiratory wheezes reflect increased constriction. Sputum is often thick, tenacious, scant, and viscid (sticky). Physical findings vary with the severity of the attack. A mild attack may be associated with a random monophonic expiratory wheezing associated with airway narrowing, tachycardia, and tachypnea. Random monophonic wheezes are located throughout the chest and are intermittent on examination. The area in which the wheezes are heard best is indicative of the area of obstruction (e.g., if they are heard best at the mouth, this is indicative of large airway obstruction). Tachycardia is an early sign of hypoxemia. A more severe attack requiring medical assistance may be accompanied by the use of accessory muscles of respiration, intercostal retractions, distant breath sounds with inspira- tory wheezing, orthopnea, agitation, tachypnea, and tachycardia. In the severe state, the patient may appear cyanotic, agitated, restless, and confused. The intensity of wheezing is not a reliable indicator of blockage of airflow. The measurement of peak expiratory flow rate (PEFR) is the best indicator of reduction in airflow (see discussion under “Diag- nosis”). PEFRs are affected by weight, height, age, gender, ethnicity, posture, effort, smoking, and circadian rhythm. A PEFR of less than 80 L/min indicates severe obstruction. When obstruction is the tightest, the patient cannot move enough air with enough velocity to make wheezing sounds. Isolated inspiratory wheezing may be an indicator of large airway obstruction caused by mucus or laryngeal obstruction. A patient with severe respiratory distress, prolonged expiration (indicating that the person is having difficulty moving air out of the lungs), neck and intercostal retractions, and minimal air sounds is critically ill and requires emergency intervention.
Status asthmaticus is a severe form of asthma that fails to respond to the typical use of inhaled bronchodilators. This is often life threatening and requires immediate medical attention.
Diagnosis The diagnosis of asthma is based on history, physical findings, sputum examination, pulmonary function tests, blood gas analysis, and chest radiography. Radiographic findings may be normal or may show evidence of hyperinflation with flattening of the diaphragm in progressive disease. Abnormal physical findings include cough, wheezing, a hyperinflated chest, and decreased breath sounds. Asthmatic sputum samples may reveal Charcot–Leyden crystals (formed from crystallized enzymes from eosinophilic membranes), eosinophils, and Curschmann spirals (mucous casts of bronchioles).
Forced expiratory volumes decrease during asthma attacks. PEFR is measured to determine the index of airway function. The PEFR is the maximal flow of expired air attained during a forced vital capacity (FVC) procedure. The evaluation of asthma should include the
482 UNIT VI Respiratory Function
corticosteroids are the mainstay of abortive therapy. Oxygen therapy, with or without mechanical ventilation, may be necessary in severe cases.
The more patients understand about their asthma, the better they are at self-managing their symptoms. Educational materials are available from the American Lung Association, the Asthma and Allergy Foundation of America, and the National Institute of Allergy and Infectious Diseases.
Components of Severity
Intermittent
Symptoms �2 days/week
�2x/month
�2 days/week
�2/year (see note)
�2 days/week but not daily
�2 days/week but not daily, and not
more than 1x on any day
�1x/week but not nightly
3–4x/month
Daily
Daily
Throughout the day
Several times per day
Often 7x/weekNighttime awakenings
Interference with normal activity
• Normal FEV1 between exacerbations • FEV1 �80% predicted • FEV1/FVC normal
• FEV1 �80% predicted • FEV1/FVC normal
• FEV1 �60% but �80% predicted • FEV1/FVC reduced 5%
• FEV1 �60% predicted • FEV1/FVC reduced �5%
Minor limitationNone Some limitation
and consider short course of oral systemic corticosteroids
In 2–6 weeks, evaluate level of asthma control that is achieved and adjust therapy accordingly.
Extremely limited
Lung function
Exacerbations requiring oral
systemic corticosteroids
0–1 year (see note)
Consider severity and interval since last exacerbation. Frequency and severity may fluctuate over time for patients in any severity category.
Relative annual risk of exacerbations may be related to FEV1.
Short-acting beta2-agonist use
for symptoms control (not prevention of EIB)
Impairment
Recommended Step for Initiating Treatment
Risk
Normal FEV1/FVC:
Mild Moderate Severe
Persistent
Classification of Asthma Severity �12 years of age
8–19 yr 20–39 yr 40–59 yr 60–80 yr
(See Figure 22-5 for treatment steps.)
Step 1 Step 2 Step 3 Step 4 or 5
85% 80% 75% 70%
Key: FEV1, forced expiratory volume in 1 second; FVC, forced vital capacity; ICU, intensive care unit
Notes: � The stepwise approach is meant to assist, not replace, the clinical decision making required to meet individual patient needs. � Level of severity is determined by assessment of both impairment and risk. Assess impairment domain by patient’s/caregiver’s recall of previous 2-4 weeks and spirometry. Assign severity to the most severe category in which any feature occurs. � At present, there are inadequate data to correspond frequencies of exacerbations with different levels of asthma severity. In general, more frequent and intense exacerbations (e.g., requiring urgent, unscheduled care, hospitalization, or ICU admission) indicate greater underlying disease severity. For treatment purposes, patients who had ≥2 exacerbations requiring oral systematic corticosteroids in the past year may be considered the same as patients who have persistent asthma.
FIG 22.3 Classifying asthma severity and initiating treatment in youths ≥12 years of age and adults who are not currently taking long-term control medicines. (From National Institute of Health’s National Heart, Lung, and Blood Institute: 2007 National Asthma Education and Prevention Program: Expert Panel Report 3: guidelines for the diagnosis and management of asthma, p 344, Fig. 4.6.)
KEY POINTS • An asthma episode may range in severity from mild to life threatening,
depending on the degree of airway obstruction. With intense narrowing of the bronchi, severe hypoxemia may result.
• Several types of asthma have been identified. Nonallergic (intrinsic) asthma is precipitated by exercise, stress, and exposure to pulmonary irritants, but no specific allergen can be identified. Drugs such as aspirin and exposure to occupational allergens have also been identified as etiologic agents.
• Allergic (extrinsic) asthma is mediated by IgE, which is produced in response to specific antigens. The IgE binds to mast cells and causes them to release inflammatory chemicals in response to antigen. Skin testing may be helpful in identifying suspected allergens.
• Prevention of asthma attacks is an important part of therapy. Avoidance of precipitating factors and use of prophylactic drug therapy are recommended. Bronchodilators, corticosteroids, and oxygen therapy are mainstays of treatment for an acute attack.
CHAPTER 22 Obstructive Pulmonary Disorders 483
Haemophilus influenzae, mycoplasma, moraxella, and Chlamydia pneumoniae. Numerous other pathogens as well as heat, smoke inhalation, inhalation of irritant chemicals (e.g., sulfur dioxide or chlorine, bromine, or fluorine gases), and allergic reactions have also been identified. Highest incidences are noted in smokers, young children, and the elderly, with a prevalence in the winter months. The swelling of bronchial mucosa in children associated with obstruction, respiratory distress, and wheezing
Acute Bronchitis Etiology Acute inflammation of the trachea and bronchi is produced most commonly (80% of the 12 million cases per year in the United States) by a variety of viruses such as influenza virus A or B, parainfluenza virus, respiratory syncytial virus, coronavirus, rhinovirus, Coxsackie virus, and adenovirus. Nonviral causes include Streptococcus pneumoniae,
Components of Control
Symptoms
�2/year (see note)
Consider severity and interval since last exacerbation
�2 days/week
�2 days/week
�2x/month �4x/week
�2 days/week
�2 days/week
�80% predicted/ personal best
�60% predicted/ personal best
60–80% predicted/ personal best
None Some limitation
1–3x/week
Throughout the day
Several times per day
Nighttime awakenings
Interference with normal activity Extremely limited
Validated questionnaires
Progressive loss of lung function Evaluation requires long-term follow-up care
Treatment-related adverse effects Medication side effects can vary in intensity from none to very troublesome and worrisome. The level of intensity does not correlate to specific levels of control but should be considered in the overall assessment of risk.
• Maintain current step. • Regular follow-ups every 1–6 months to maintain control. • Consider step down if well controlled for at least 3 months
• Step up 1 step and reevaluate in 2–6 weeks. • For side effects, consider alternative treatment options.
• Consider short course of oral systemic corticosteroids, • Step up 1–2 steps, and reevaluate in 2 weeks. • For side effects, consider alternative treatment options.
ATAQ ACQ ACT
0 �0.75* �20
1–2 �1.5 16–19
3–4 N/A �15
Exacerbations requiring oral systemic corticosteroids
0–1 year
Short-acting beta2-agonist use for symptom control (not prevention of EIB)
FEV1 or peak flow Impairment
Recommended Action for Treatment
Risk
Well Controlled Not
Well Controlled Very Poorly Controlled
Classification of Asthma Control (�12 years of age)
(See Figure 22-5 for treatment steps.)
*ACQ values of 0.76 – 1.4 are indeterminate regarding well-controlled asthma. Key: EIB, exercise-induced bronchospasm; ICU, intensive care unit
Notes: � The stepwise approach is meant to assist, not replace, the clinical decision making required to meet individual patient needs. � The level of control is based on the most severe impairment or risk category. Assess impairment domain by patient’s recall of previous 2−4 weeks and by spirometry/peak flow measures. Symptom assessment for longer periods should reflect a global assessment, such as inquiring whether the patient’s asthma is better or worse since the last visit. � At present, there are inadequate data to correspond frequencies of exacerbations with different levels of asthma control. In general, more frequent and intense exacerbations (e.g., requiring urgent, unscheduled care, hospitalization, or ICU admission) indicate poorer disease control. For treatment purposes, patients who had ≥2 exacerbations requiring oral systemic corticosteroids in the past year may be considered the same as patients who have not-well-controlled asthma, even in the absence of impairment levels consistent with not-well-controlled asthma. � Check NIH website for information on ATAQ, ACQ, and ACT questionnaires. � Before step up in therapy: — Review adherence to medication, inhaler technique, environmental control, and comorbid conditions. — If an alternative treatment option was used in a step, discontinue and use the preferred treatment for that step.
FIG 22.4 Assessing asthma control and adjusting therapy in youths ≥12 years of age and adults. (From National Institute of Health’s National Heart, Lung, and Blood Institute: 2007 National Asthma Education and Prevention Program: Expert Panel Report 3: guidelines for the diagnosis and management of asthma, p 345, Fig. 4.7.)
484 UNIT VI Respiratory Function
Key: Alphabetical order is used when more than one treatment option is listed within either preferred or alternative therapy. EIB, exercise-induced bronchospasm; ICS, inhaled corticosteroid; LABA, long-acting inhaled beta2-agonist, LTRA, leukotriene receptor antagonist; PNR, as needed; SABA, inhaled short-acting beta2-agonist.
Each step: Patient education, environmental control, and management of comorbidities.
Steps 2–4: Consider subcutaneous allergen immunotherapy for patients who have allergic asthma (see notes).
Quick-Relief Medication for All Patients
• SABA as needed for symptoms. Intensity of treatment depends on severity of symptoms: up to 3 treatments at 20-minute intervals as needed. Short course of oral systemic corticosteroids may be needed. • Use of SABA �2 days a week for symptom relief (not prevention of EIB) generally indicates inadequate control and the need to step up treatment.
Step up if needed
(first, check adherence,
environmental control, and comorbid
conditions)
Step down if possible
(and asthma is well controlled
at least 3 months)
Assess control
Persistent Asthma: Daily Medication Consult with asthma specialist if step 4 care or higher is required.
Consider consultation at step 3.
Intermittent Asthma
Step 6
Preferred:
High-dose ICS � LABA � oral corticosteroid
AND
Consider Omalizumab for patients who have allergies
Step 5
Preferred:
High-dose ICS � LABA
AND
Consider Omalizumab for patients who have allergies
Step 4
Preferred:
Medium-dose ICS � LABA
Alternative:
Medium-dose ICS � either LTRA, Theophyl- line, or Zileuton
Step 3
Preferred:
Low-dose ICS � LABA OR Medium-dose ICS
Alternative:
Low-dose ICS � either LTRA, Theophylline, or Zileuton
Step 2
Preferred:
Low-dose ICS
Alternative:
Cromolyn, LTRA, Nedocromil, or Theophylline
Step 1
Preferred:
SABA PRN
Notes: � The stepwise approach is meant to assist, not replace, the clinical decision making required to meet individual patient needs. � If alternative treatment is used and response is inadequate, discontinue it and use the preferred treatment before stepping up. � Zileuton is a less desirable alternative due to limited studies as adjunctive therapy and the need to monitor liver function. Theophylline requires monitoring of serum concentration levels. � In step 6, before oral systemic corticosteroids are introduced, a trial of high-dose ICS + LABA + either LTRA, theophylline, or zileuton may be considered, although this approach has not been studied in clinical trials. � Steps 1, 2, and 3 preferred therapies are based on Evidence A; step 3 alternative therapy is based on Evidence A for LTRA, Evidence B for theophylline, and Evidence D for zileuton. Step 4 preferred therapy is based on Evidence B, and alternative therapy is based on Evidence B for LTRA and theophylline and Evidence D for zileuton. Step 5 preferred therapy is based on Evidence B. Step 6 preferred therapy is based on (EPR—2 1997) and Evidence B for omalizumab. � Immunotherapy for steps 2−4 is based on Evidence B for house-dust mites, animal danders, and pollens; evidence is weak or lacking for molds and cockroaches. Evidence is strongest for immunotherapy with single allergens. The role of allergy in asthma is greater in children than in adults. � Clinicians who administer immunotherapy or omalizumab should be prepared and equipped to identify and treat anaphylaxis that may occur.
FIG 22.5 Stepwise approach for managing asthma in youths ≥12 years of age and adults. (From National Institute of Health’s National Heart, Lung, and Blood Institute: 2007 National Asthma Education and Prevention Program: Expert Panel Report 3: guidelines for the diagnosis and management of asthma, p 343, Fig. 4.5.)
CHAPTER 22 Obstructive Pulmonary Disorders 485
appearance of purulent sputum nor the determination of an increased WBC count is a reliable diagnostic indicator. A chest radiograph may be helpful to distinguish acute bronchitis (normal radiograph) from pneumonia (pulmonary infiltrates on radiograph).
Treatment Acute bronchitis is predominantly caused by viruses (rhinovirus, coronavirus, adenovirus, influenza virus). Viral infections do not respond to antimicrobial therapy, and symptoms resolve spontaneously in most normal, otherwise healthy individuals. Acute bronchitis caused by bacterial organisms responds well to antibiotic therapy. The primary goal in management is symptom management with antitussive agents, beta-2 agonists, and other classes of bronchodilators in selective patients. Codeine-containing medications are helpful in relieving the cough associated with bronchitis that interferes with sleep. Nonpharmacologic recommendations are to increase fluid intake, avoid smoke, and use a vaporizer in the bedroom.
The dangers of acute bronchitis include the potential for bacterial invasion, which can worsen symptoms in patients with COPD and precipitate serious infections in elderly patients or those with debilitating disease.
Chronic Bronchitis Etiology The next two sections of this chapter present chronic bronchitis and emphysema. Characteristic pathologic and clinical findings are described for each of these classifications. Clinically, pure forms of emphysema and chronic bronchitis are rare, and most patients present with a combination of both of these obstructive processes. Patients with emphysema and chronic bronchitis constitute most cases of COPD.
is known as asthmatic bronchitis. Acute bronchitis in children seldom occurs as a primary bacterial infection, but is usually secondary to a cold or another communicable disease. Acute bronchitis differs from bronchiolitis in the size of the airways affected (i.e., trachea and bronchi as opposed to the small bronchioli).
Pathogenesis The airways become inflamed and narrowed from capillary dilation, swelling from exudation of fluid, infiltration with inflammatory cells, increased mucus production, loss of ciliary function, and loss of portions of the ciliated epithelium. Many viruses and mycoplasmal bacteria inhibit macrophages and lymphocytes, temporarily promoting secondary bacterial invasion. Microorganisms may also induce long- lasting hyperirritability of the respiratory tract with associated episodes of bronchospasm.
Clinical Manifestations The presentation of acute bronchitis is usually mild and self-limited, requiring only supportive treatment. Cough may be productive or nonproductive. Associated symptoms include low-grade fever, substernal chest discomfort, sore throat, postnasal drip, and fatigue. In children, the smaller airways are easily obstructed by inflammation so that severe obstruction may occur. The smallness of airways in proportion to body size is due to a smaller lumen in relation to the vessel wall. Associated inflammation of the larynx and trachea produces croup (see the “Croup Syndrome” section in this chapter for further details).
Diagnosis Diagnosis of acute bronchitis is usually based on the clinical presentation, with recent onset of cough being the distinctive hallmark. Neither the
Parasympathetic nervous system stimulation via acetylcholine
Chemotaxis of neutrophils and eosinophils
Antigenic and nonantigenic stimuli to cause mast cell
degranulation
Blocked by mast cell stabilizers (e.g., corticosteroids, cromolyn,
nedocromil)
Blocked by receptor antagonist (e.g., zafirlukast)
Mast cell migration inhibited by corticosteroids
Blocked by ipratropium
Blocked by corticosteroids
Blocked by leukotriene inhibitors
Blocked by histamine receptor blockers (e.g.,
diphenhydramine)
Inhibited by �2 agonists, theophylline, muscarinic
antagonists
Inhibited by corticosteroids
Bronchial smooth muscle cell contraction
Mucus secretion
Mucosal edema
Histamine Leukotrienes Prostaglandins
Mast cell
Leukotrienes Target tissue
Histamine Target tissue
FIG 22.6 Pathophysiologic basis of asthma and site of action of drugs used in management.
486 UNIT VI Respiratory Function
The major causes of chronic bronchitis are cigarette smoking (90% of cases), repeated airway infections, genetic predisposition, and inhala- tion of physical or chemical irritants.
Chronic bronchitis (also referred to as type B COPD) is diagnosed symptomatically by hypersecretion of bronchial mucus and a chronic or recurrent productive cough of more than 3 months’ duration and occurring each year for 2 or more successive years in patients in whom other causes have been excluded. For patients with chronic bronchitis and emphysema, airway obstruction is persistent and irreversible. The National Center for Health Statistics reports a 3 : 1 ratio of annual cases of chronic bronchitis to emphysema.
Pathogenesis Pathologic changes in the airway include chronic inflammation and swelling of the bronchial mucosa resulting in scarring, increased fibrosis of the mucous membrane, hyperplasia of bronchial mucous glands and goblet cells, hypertrophy of bronchial glands and goblet cells, and increased bronchial wall thickness, which potentiates obstruction to airflow. Inflammation appears to predominantly be the result of neutrophil activity. Interleukin-8 levels are elevated, indicating sustained attraction of neutrophils to the site of inflammation. CD8 T-lymphocyte levels are also elevated. During acute exacerbations, bronchial biopsy specimens have a 30-fold increase in the number of eosinophils. Figs. 22.7 and 22.8 show the histologic changes seen in chronic bronchitis.
FIG 22.7 Chronic bronchitis. Low-power view shows bronchus with goblet cell and mucous gland hyperplasia. Note that some of the mucous glands are small due to adjacent fibrosis. (From Husain A: Thoracic pathology, St Louis, 2012, Saunders.)
Cartilage
Perichondrium
Mucous gland
a
b
c
d
Basement membrane
Epithelium
FIG 22.8 Structure of a normal bronchial wall. In chronic bronchitis, the thickness of the mucous glands increases and can be expressed as the Reid index, given by the following formula: (b − c)/(a − d). The ratio is normally less than 0.4. A ratio of 0.7 indicates severe bronchitis.
Hypertrophy of mucosal glands and goblet cells leads to increased mucus production; the mucus then combines with purulent exudate to form bronchial plugs. Chronic bronchitis patients often display bacterial colonization with H. influenzae and S. pneumoniae. The mucociliary clearance action is impaired or lost, and some areas of ciliated colum- nar epithelium are replaced by squamous cells. Ciliary dysfunction occurs because of a decreased number of cilia and decreased action of available cilia.
Often the inflammatory and fibrotic changes extend into the sur- rounding alveoli. The narrowed airways and the mucous plugs prevent proper oxygenation and potentiate airway obstruction. High airflow resistance increases the work of breathing, leading to increased oxygen demands. In areas of greater obstruction to airflow, alveoli empty and fill more slowly, leading to ventilation–perfusion (V̇A/Q
. ) mismatch,
thus lowering arterial oxygenation. The chronic bronchitis patient may appear as the “blue bloater” (Fig. 22.9), characterizing the pathophysi- ologic process of oxygen desaturation (cyanosis) and edema associated with right-sided heart failure in advanced disease or exacerbations.
The involvement of small pulmonary arteries related to inflamma- tion in the bronchial walls and the compensatory vasoconstriction of pulmonary blood vessels from hypoxia produce pulmonary hypertension. In addition, widespread bronchial narrowing and mucous plugging produce ventilation–perfusion mismatch with hypoxemia and hypercarbia from impeded ventilation. The combination of hypoxia and hypercarbia increases pulmonary artery resistance and pulmonary hypertension. While the process of pulmonary hypertension continues, right ventricular end-diastolic pressures increase, leading to right ventricular dilation (cor pulmonale) and right-sided heart failure. An enlarged right heart results in increased venous pressure, liver engorgement, and dependent edema. Manifestations of heart failure may occur during exacerbations of bronchitis and subside with appropriate treatment.
Destruction of bronchial walls results in dilation of airway sacs. This is termed bronchiectasis. Causes of bronchial wall destruction include infection from severe streptococcal or staphylococcal pneumonia, repeated bouts of acute bronchitis, infection with the mold Aspergillus fumigatus, presence of mucous plugs or foreign bodies, or deficiencies in immunologic response. (Refer to the “Bronchiectasis” section later in this chapter for a more detailed description of this disease process.) The dilated sacs contain pools of infected secretion that do not clear themselves and serve as sources of further infection that can spread to adjacent lung fields by the lymphatics or venous drainage to other areas of the body, commonly the brain. If bronchiectatic lesions are localized, surgical resection of the affected portions of lung may be helpful.
Clinical Manifestations The typical patient is an overweight man or woman (1 : 2 male-to-female ratio) in his or her 30 s or 40 s (or older) who presents with shortness of breath on exertion, excessive amounts of sputum, chronic cough, evidence of excess body fluids (edema, hypervolemia), and a history of smoking. In addition, the patient often complains of chills, malaise, muscle aches, fatigue, loss of libido, and insomnia.
Sputum production may be variable and worsens with respiratory tract infection. Cough and sputum production are most severe in the mornings. Gradually, patients develop progressive shortness of breath on exertion. Most patients do not seek help until dyspnea becomes troublesome. By the time dyspnea on exertion is present, the disease is well advanced.
In the end-stage disease process, the patient presents with signs of right-sided heart failure (distended neck veins, right ventricular heave, right ventricular gallop, and peripheral edema). Hypoxia leads to pulmonary hypertension. Cyanosis is a late sign.
CHAPTER 22 Obstructive Pulmonary Disorders 487
CLINICAL MANIFESTATIONS
Excess body fluids (edemal plethora)
Chronic cough
Shortness of breath on exertion
Increased sputum
Cyanosis (late sign)
A B
FIG 22.9 A, A hypoxemic patient with edema from right-sided heart failure. B, A patient with chronic obstructive bronchitis. Note the stocky build and the presence of pursed-lip breathing. The slight gynecomastia is a side effect of corticosteroid therapy. The patient’s shoulders are raised because of shortness of breath and increased work of breathing. (B, From Black JM, Hawks SJ: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2008, Saunders, p 1581.)
Diagnosis Measures used to confirm the diagnosis include chest radiography, which may show increased bronchial vascular markings, congested lung fields, an enlarged horizontal cardiac silhouette, and evidence of previous pulmonary infection. Pulmonary function tests show normal total lung capacity (TLC), increased residual volume (RV), and decreased FEV1. Early pulmonary function testing before the onset of symptoms shows increased closing volume and a decrease in the maximal midexpiratory flow rate. Arterial blood gas (ABG) evaluation may show elevated PaCO2 and decreased Pao2 (often below 65 mm Hg); abnormal ABGs develop early in the disease process. The electrocardiogram may reveal atrial dysrhythmias and evidence of right ventricular hypertrophy. Secondary polycythemia (increased numbers of red blood cells) related to continuous or nocturnal hypoxemia is common. Hypoxemia leads to a compensatory production of red blood cells in an attempt to carry more oxygen to the body tissues.
Depending on the severity of the disease, the physical examination may reveal scattered crackles, rhonchi, and wheezes; use of accessory muscles to breathe; jugular vein distention; clubbing; and pedal and ankle edema. Table 22.1 lists the distinguishing features of both emphy- sema and chronic bronchitis.
Treatment Because bronchitis and emphysema are most frequently seen in combination, the therapies are similar. The overall goals are to (1) block the progression of the disease, (2) return the patient to optimal respiratory function, and (3) return the patient to usual activities of daily living.
Pharmacologic treatment involves the use of inhaled short-acting β2 agonists and inhaled anticholinergic bronchodilators, cough sup- pressants, and antimicrobial agents for infections. Inhaled or oral corticosteroids may also be used in the treatment of some patients for acute exacerbations. Theophylline products are used less frequently because of their narrow therapeutic range and toxicity. However, many patients derive significant benefits from theophylline.
Low-dose oxygen therapy is recommended for patients with Pao2 levels less than 55 mm Hg. Mechanical ventilation may become necessary to get the patient over a crisis period of acute exacerbation. Although traditionally the mechanism of carbon dioxide retention with oxygen therapy was thought to be related to a diminished ventilatory drive, current research suggests that oxygen therapy may instead cause increased V̇A/Q
. imbalance, precipitating a rise in carbon dioxide concentration.
It is important to remember that not all patients with a history of COPD are carbon dioxide retainers and most can use oxygen safely. Home oxygen therapy has been demonstrated to retard the development of pulmonary hypertension and cor pulmonale in chronic bronchitis. Portable oxygen saturation monitors for evaluating the effectiveness of oxygen administration at home may also be used.
Smoking cessation is essential to decreasing the progression of the disease. A reduction in exposure to inhaled pulmonary irritants is also advised. Supportive therapies include adequate rest, proper hydration (8 to 12 glasses of water per day unless the patient has congestive heart failure), and physical reconditioning programs using a treadmill or stationary bicycle. Alternating rest and exercise improves results on pulmonary function tests. Walking has proved to be the best form of exercise for increasing duration and intensity of activity. All COPD patients also benefit from yearly influenza vaccines and pneumococcal vaccine.
KEY POINTS • Acute bronchitis results from temporary inflammation of the tracheobronchial
tree. Inflammation may be due to viral, bacterial, fungal, or chemical causes. Symptoms are caused by narrowing of inflamed airways and increased mucus production. Dyspnea on exertion and cough are common.
• Chronic bronchitis is an inflammatory disorder of the airways that most commonly results from long-term cigarette smoking. It is defined as a produc- tive cough lasting more than 3 months per year for 2 or more consecutive years. Resultant airway damage is not reversible.
488 UNIT VI Respiratory Function
OBSTRUCTION RELATED TO LOSS OF LUNG PARENCHYMA Emphysema Etiology Emphysema (also referred to as type A COPD) is defined pathologically by destructive changes of the alveolar walls and abnormal enlargement of the distal air sacs. Emphysema is frequently associated with chronic bronchitis. According to the National Center for Health Statistics, 15 million Americans have COPD, with an associated mortality of more than 120,000 deaths each year. Within the two distinct subgroups of COPD, the majority (approximately 10 million) have chronic bronchitis and the remainder have emphysema. The etiologies of emphysema include smoking, air pollution, certain occupations (e.g., welding, mining, and working with or near asbestos), and α1-antitrypsin deficiency (1%). Emphysema tends to develop over a long period and thus is seen more
• Chronic bronchitis is associated with persistent narrowing of the airways attributable to chronic inflammation, scarring, and excessive mucus produc- tion. Airway obstruction leads to poor ventilation of alveoli and impaired exchange of oxygen and carbon dioxide. Blood gases are characterized by low Pao2 and high PaCO2 values. Persistent hypoxemia causes a compensa- tory increase in red blood cell production (polycythemia). Cyanosis may be evident.
• Alveolar hypoxia leads to generalized pulmonary vasoconstriction, pulmonary hypertension, and right ventricular hypertrophy (cor pulmonale) in the person with chronic bronchitis. Right-sided heart failure may occur because of the high pulmonary resistance.
• The management of chronic bronchitis centers on removing the etiologic factors (e.g., cigarette smoke), providing bronchodilator therapy, removing secretions, preventing respiratory muscle fatigue, and providing low-dose supplemental oxygen. High-dose oxygen must be used cautiously because it may increase V̇A/Q̇ imbalance and PaCO2 levels in some patients.
TABLE 22.1 Common Distinguishing Features of Emphysema and Chronic Bronchitis*
Patient Data Emphysema (COPD Type A) Bronchitis (COPD Type B)
History Lifestyle Smoker Smoker Weight Weight loss Overweight Onset of symptoms Usually after age 50 years Usually after age 40 years Sputum Mild, mucoid Excessive, purulent Cough Minimal or absent Chronic; more severe in mornings Dyspnea Progressive exertional dyspnea Mild to moderate, but may gradually progress to severe
exertional dyspnea Patient complaints Dyspnea on exertion, fatigue, insomnia Chronic cough with mucopurulent sputum, chills, malaise,
muscle aches, fatigue, insomnia, loss of libido Physical Signs Edema Absent Present Central cyanosis Absent Present in advanced disease Use of accessory muscles to breathe Present Absent until end stage Body build Thin, wasted Stocky, overweight Anteroposterior chest diameter “Barrel chest,” 1 : 1 ratio anteroposterior chest diameter Normal Auscultation of chest Decreased breath sounds, decreased heart sounds,
prolonged expiration Wheezes, crackles, rhonchi, depending on severity of
disease Percussion Hyperresonance Normal Jugular vein distention Absent Present Other Pursed-lip breathing Evidence of right-sided heart failure (cor pulmonale) General Diagnostic Tests Chest radiography Narrowed mediastinum; normal or small vertical heart;
hyperinflation; low, flat diaphragm; presence of blebs or bullae
Congested lung fields, increased bronchial vascular markings, enlarged horizontal heart
Arterial blood gas analysis Decreased Pao2 (60–80 mm Hg); increased PaCO2 with advancing disease
Decreased Pao2 (<65 mm Hg); increased PaCO2
Electrocardiography Normal or tall symmetric P waves; tachycardia, if hypoxic
Right axis deviation, right ventricular hypertrophy, atrial dysrhythmias
Hematocrit Normal Polycythemia Pulmonary Function Tests Functional residual capacity Increased Normal or slight increase Residual volume Increased Increased Total lung capacity Increased Normal Forced expiratory volume Decreased Decreased Vital capacity Decreased Normal or slight decrease Static lung compliance Increased Normal
COPD, Chronic obstructive pulmonary disease. *Clinically features of bronchitis and emphysema are not clear-cut because most patients with COPD have a combined disease process.
CHAPTER 22 Obstructive Pulmonary Disorders 489
Emphysema may follow bacterial lung infections that involve secretion of proteases that destroy the elastin proteins responsible for the normal elasticity of the lung tissue. Bacterial infections block mechanisms that normally inhibit the release of proteolytic enzymes from degenerating neutrophilic granulocytes.
Pathogenesis The pathologic changes leading to alveolar destruction are associated with the release of proteolytic enzymes from inflammatory cells such as neutrophils and macrophages. Smoking is commonly associated with emphysema. Smoking causes alveolar damage in two ways: (1) it leads to inflammation in the lung tissue (parenchyma), thus initiating a chain of events leading to the release of proteolytic enzymes that directly damage alveolar tissue; and (2) it inactivates α1-antitrypsin, which normally acts to protect the lung parenchyma. Fig. 22.10 illustrates the pathogenesis of emphysema.
frequently in persons older than 50. Cigarette smoking in excess of 70 pack-years is highly predictive of COPD. The normal aging process, start- ing at about age 30, reflects changes similar to those seen in emphysema, including a loss of alveoli, an increase in the size of alveolar ducts, a loss of gas-exchanging surface area (4% per decade), and a decrease in bronchiolar musculature.
When emphysema occurs in young to middle-aged adults or before the age of 50 in a smoker, it may be associated with a deficiency of α1-antitrypsin activity in the lung. α1-Antitrypsin deficiency is a hereditary disorder characterized by low serum levels (25 to 50 mg/dL) of α1-antitrypsin. α1-Antitrypsin is a protective enzyme that inhibits proteolytic breakdown of alveolar tissue. The protease enzymes (neutrophil-derived elastase) that break down lung protein are released from neutrophils that migrate to the lung during inflammation, causing alveolar wall destruction.
Tobacco smoke Air pollution
Inhaled oxidants
Activation of inflammatory process
Increased number of neutrophils and macrophages
Increased release of elastase and protease
Destruction of alveolar tissue and septa Increased mucus secretion Inflammation in the bronchioles Impaired airway clearance Loss of radial traction with collapse of bronchioles leading to air trapping
Phagocytosis of inhaled particles by
alveolar macrophages and neutrophils
Damage to alveolar walls with breakdown of elastic tissue and collagen
Genetic predisposition (�1-antitrypsin deficiency)
Decreased antielastase
FIG 22.10 Pathogenesis of smoke-induced emphysema.
490 UNIT VI Respiratory Function
A NORMAL B EMPHYSEMA
Alveoli
Mucus
Bronchiole lumen
FIG 22.11 Loss of radial traction in emphysema leads to airway collapse. A, Terminal bronchiole in cross-section. B, Terminal bronchiole with narrowed lumen resulting from loss of surrounding alveoli, leading to decreased radial traction and airway collapse.
FIG 22.12 Gross appearance of emphysematous lung. Left, Normal lung tissue from a nonsmoker. Right, Lung tissue from a smoker who has developed emphysema.
With the loss of alveolar walls, there is also a marked reduction in the pulmonary capillary bed, which is essential for exchange of oxygen and carbon dioxide between the alveolar air and capillary blood. There is also a loss of elastic tissue in the lung, which leads to a decrease in the size of the smaller bronchioles. The loss of lung tissue leads to a loss of radial traction, which normally holds the airway open, and to increasing pressure around the outside of the airway lumen, which in turn increases airway resistance and decreases airflow. Fig. 22.11 shows the effect of decreased radial traction on the size of small bronchioles. Air then becomes trapped in distal alveoli, leading to distended air sacs, which adds to the collapsing pressure on more proximal bronchi and increases airway obstruction. Loss of alveolar walls and air trapping leads to the formation of bullae (large, thin-walled cysts in the lung) that further rob the lung of its gas transport function. The histologic appearance of the lung and lung tissue from typical emphysematous patients is shown in Figs. 22.12 and 22.13.
Three major classifications of emphysema exist: (1) centriacinar (also called centrilobular), which is associated with both smoking and chronic bronchitis and destroys the respiratory bronchioles; (2) panacinar (also called panlobular), which destroys the alveoli; and (3) paraseptal, which affects the peripheral lobules. Some of the classifications of emphysema and the topographic distribution of emphysema in lung tissue are shown in Fig. 22.14.
Clinical Manifestations Patients with emphysema commonly seek help because of progressive exertional dyspnea. The typical patient with advanced disease is a thin
FIG 22.13 Pulmonary emphysema. There is a marked enlargement of air spaces with thinning and destruction of alveolar septa. (From Young B, Stewart W, O’Dowd G: Wheater’s basic pathology: a text, atlas, and review of histopathology, ed 5, 2011, Churchill Livingstone.)
man or woman around 55 years of age who has complained of increasing shortness of breath for the past 3 to 4 years. As with chronic bronchitis, the incidence of emphysema is increasing in women who smoke. Patients become thin due to increased respiratory effort and resulting caloric expenditure with decreased ability to consume adequate calories. The difficulty in breathing is evidenced by the use of accessory muscles to breathe, progressive dyspnea, and the use of pursed-lip breathing in an effort to exhale more air over a longer period before the small airways collapse. Cough may be minimal or absent. Digital clubbing is common. The appearance of overinflation (barrel chest) is from an increase in lung volume, which can be confirmed by pulmonary function testing. With the loss of alveolar walls and the formation of bullae, the patient is at risk for developing a pneumothorax and may present with chest pain on the affected side and dyspnea. Decreased arterial oxygen satura- tion remains minor until late in the course of the disease. Late in the disease process, the major symptom is dyspnea on exertion. These patients may be referred to as “pink puffers” (Fig. 22.15), a term related to the physiologic matching of ventilation and perfusion that allows near-normal gas exchange. Ventilation–perfusion matching and a sustained high respiratory effort produce a relatively normal arterial oxygen level until late stages of the disease.
Diagnosis The diagnosis of emphysema is based on the patient’s history and physical findings, pulmonary function tests, chest radiographs, ABGs, and electrocardiogram. Changes seen on pulmonary function tests include an increased functional residual capacity, increased RV, increased TLC, decreased FEV1, and decreased FVC. Chest radiographs show hyperinfla- tion; a low, flat diaphragm; the presence of blebs or bullae; a narrow mediastinum; and a normal or small “vertical” heart (see Table 22.1). Electrocardiographic findings may be normal or show tall P waves. Sinus tachycardia may be the first sign of decreased oxygenation. Supraventricular dysrhythmias (atrial tachycardia, atrial flutter, and atrial fibrillation) and ventricular irregularities may also occur. ABG values typically reveal a mild decrease in Pao2 (60 to 80 mm Hg) and a low or normal PaCO2 until late stages.
Physical examination shows a thin, wasted individual who is using accessory muscles to breathe and sits slightly hunched forward in an effort to breathe better. Auscultation and percussion of the lung fields reveal decreased breath sounds and lack of crackles and rhonchi,
CHAPTER 22 Obstructive Pulmonary Disorders 491
Treatment Refer to the “Treatment” section under “Chronic Bronchitis” earlier in this chapter for detailed treatment modalities common to both chronic obstructive lung diseases. Poor prognosis is associated with weight loss, so treatment is focused on maintaining proper nutrition.
Terminal bronchiole
Terminal bronchioleRespiratory
bronchiole
Respiratory bronchiole
Distended respiratory bronchiole
Alveoli
Alveoli
Alveoli
NORMAL LUNGS
PANACINAR EMPHYSEMA
Terminal bronchiole
CENTRIACINAR EMPHYSEMA
FIG 22.14 Types of emphysema. (From Black JM, Hawks SJ: Medical- surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2008, Saunders, p 1580.)
decreased heart sounds, prolonged expiration, decreased diaphragmatic excursion, and hyperresonance of the chest. Pursed-lip breathing, chronic morning cough because of mucus buildup at night, and an increased anteroposterior chest diameter (barrel chest) are also common findings. Weight loss occurs because of anorexia and lack of energy to eat. Bronchoconstriction leads to wheezing.
KEY POINTS • Emphysema is a form of COPD that results from destruction of alveoli and
small airways. Emphysema occurs primarily in cigarette smokers and is often seen in association with chronic bronchitis.
• Alveolar destruction is due to release of inflammatory proteolytic enzymes that degrade lung proteins. Smoking also inhibits a protective enzyme, α1-antitrypsin, that normally inhibits the proteolytic enzymes. Genetic deficiency of α1-antitrypsin is an uncommon possible cause of emphysema.
• Emphysema causes two major problems with respiration: (1) a decrease in surface area for gas exchange and (2) airway collapse attributable to loss of radial traction. Airway collapse is greater on expiration, resulting in air trapping and hyperinflation.
• Emphysema is characterized by dyspnea; weight loss; use of accessory muscles to breathe; a low, flat diaphragm; and a barrel chest. Cyanosis is not present until late stages of the disease. By sustaining high ventilatory effort, a patient can have blood oxygen levels that are generally maintained at near normal. Carbon dioxide levels may be normal or low as a result of hyperventilation until late in the disease.
• Therapy for emphysema is similar to that for chronic bronchitis. Cessation of smoking is necessary to prevent progression of the disease. Present damage is irreversible. Oxygen therapy improves activity tolerance and quality of life.
OBSTRUCTION OF THE AIRWAY LUMEN Bronchiectasis Etiology Bronchiectasis means dilation of bronchi. It is either acquired or congenital and is classified as both an obstructive and a suppurative (pus-forming) disorder. Acquired bronchiectasis is now rare in the United States because of rapid diagnosis and management of bronchopulmonary infections. Fifty percent of the cases of bronchiectasis are associated with cystic fibrosis. Children are at higher risk for develop- ment of bronchiectasis because of anatomic factors such as small, soft, elastic bronchi. Bronchi in children are easily damaged by overinflation and distention from inflammation and infection.
Bronchiectasis can be classified according to bronchial shape: saccular (with cavity-like dilatations) or cylindrical and with widening of the bronchial walls. A fusiform shape is a combination of saccular and cylindrical changes. These anatomic changes are shown in Fig. 22.16. Little clinical or pathophysiologic difference in the three types has been demonstrated.
Pathogenesis Bronchiectasis is characterized by recurrent infection and inflammation of bronchial walls, which leads to persistent dilatation of the medium- sized bronchi and bronchioles. Inflammation results in destruction of the walls of central bronchi and obliteration of peripheral bronchi and bronchioles. H. influenzae is the most common cause of bacterial infections. The destructive process leads to loss of ciliated columnar epithelium, with transformation to a squamous cell and pus formation, which in turn leads to obstruction of airflow. Lung tissue of a patient
492 UNIT VI Respiratory Function
CLINICAL MANIFESTATIONS
Use of accessory muscles to breathe Pursed-lip breathing
Minimal or absent cough
Leaning forward to breathe
Barrel chest
Digital clubbing
Dyspnea on exertion (late sign)A
B
FIG 22.15 A, A patient with near-normal PaO2. Note the use of accessory muscles and pursed-lip breathing in an effort to get more air out of the lungs. B, A patient with emphysema. Note the thin appearance and the presence of continuous oxygen therapy. The use of accessory muscles of respiration (neck and shoulder muscles) reflects the patient’s shortness of breath and increased work of breathing necessary to increase minute ventilation and to maintain adequate arterial blood gas values. (B, From Black JM, Hawks SJ: Medical- surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2008, Saunders, p 1581.)
with cystic fibrosis complicated by varicose bronchiectasis is shown in Fig. 22.17.
Clinical Manifestations The child usually presents with a chronic productive cough with copious amounts of purulent, foul-smelling, green or yellow sputum. The sputum has the characteristic of separating into three distinct layers in a sputum cup. Other clinical features are hemoptysis; fever; night sweats; moist crackles, rhonchi; halitosis (bad breath); skin pallor; and, infrequently, digital clubbing. Clubbing is caused by prolonged decreased oxygenation, which leads to fibrous tissue hyperplasia in the area between the nail and distal portion of each digit. Clubbing is associated with lymphocytic extravasation, increased vascularity, and edema. The severity of clubbing parallels the severity of pulmonary disease. Digital clubbing can be identified by two methods, as seen in Fig. 22.18. Hypoxemia is seen in severe cases. Complications of bronchiectasis are malnutrition, recurrent pneumonia, right ventricular failure, and secondary visceral abscesses.
Diagnosis Generally, the diagnosis of bronchiectasis is based on a history of chronic productive cough. The patient complains about producing copious amounts of foul-smelling, purulent sputum. Radiographic abnormalities may reveal small cysts, thickening of bronchial walls, and increased bronchial markings (areas of intensity showing bronchi, which are usually not distinct). Pulmonary function tests show decreased airflow and vital capacity in advanced cases. ABG analyses reveal decreased Pao2 and increased PaCO2 values from obstruction to airflow. High-resolution computed tomography is the test of choice for diagnosing bronchiectasis.
Treatment Antibiotic therapy accompanied by inhalation of bronchodilators followed by vigorous chest percussion and postural drainage is the mainstay of treatment. Proper hydration and nutrition are important in promoting
Cylindrical
Fusiform (varicose)
Mucus
Saccular
FIG 22.16 Bronchial dilatations attributable to bronchiectasis. The saccular form occurs in the segmental bronchi, which are severely dilated and end blindly. The varicose form resembles varicose veins with irregular dilatations and constriction. The cylindrical form shows uniform slight dilatation.
CHAPTER 22 Obstructive Pulmonary Disorders 493
production. Production of thick, tenacious mucus leads to airway obstruction, atelectasis, and hyperinflation. Three possible mechanisms of airway obstruction may follow the inflammatory process. They include (1) development of inflammatory exudate, which may displace surfactant, leading to airway obstruction; (2) release of chemical mediators, which may produce bronchiolar constriction; and (3) development of inflam- mation, which may induce fibrosis and narrowing of the airway. Goblet cell metaplasia and increased bronchial muscle mass may also occur, resulting in further airway narrowing.
Clinical Manifestations The severity and course of the disease are variable, ranging from mild to fatal. Common clinical features include wheezing attributable to bronchospasm, crackles, decreased breath sounds, retractions, increased sputum, dyspnea, tachypnea (rapid, shallow respirations), and low-grade fever. Otitis media is a common complication often associated with S. pneumoniae.
Diagnosis Patients commonly have an elevated WBC count. The chest radiograph may show enlarged air sacs, interstitial infiltrates, atelectasis, or severe hyperinflation. Pulmonary function tests reveal severe obstruction to airflow. Rapid diagnosis of RSV may be made by identifying the viral antigen from nasal washings or nasal swab culture of secretions, using an enzyme-linked immunosorbent assay or immunofluorescent assay.
Treatment Adequate oxygenation is maintained by providing humidified oxygen; monitoring blood gases or oxygen saturation; and administering oral,
A B
FIG 22.17 Bronchographic features of varicose and cystic bronchiectasis. A, A left tracheobronchogram in a shallow posterior oblique projection reveals mild dilatation and slightly irregular bronchi that terminate after four to six generations of branchings from the trachea in a squared or bulbous appearance (arrowheads). The findings are those of varicose bronchiectasis. B, A bilateral tracheobronchogram in the anteroposterior projection demonstrates a multitude of contrast material–filled cystic spaces resembling a cluster of grapes (arrowheads), a characteristic feature of cystic bronchiectasis. Note that the cystic spaces appear after only two to three bronchial generations. Less severe bronchiectasis of the varicose type is present in the right lower lobe (open arrows). (From Fraser RG et al: Diagnosis of diseases of the chest, ed 3, vol 3, Philadelphia, 1990, Saunders, p 2199.)
liquefaction of secretions and preventing increased susceptibility to infection resulting from malnutrition. Maintaining adequate nutrition is problematic because of fatigue and the energy required for eating. (Refer to the “Cystic Fibrosis” section later in the chapter for further discussion on treatment.) In severe cases, when other measures fail, bronchoscopy with bronchial lavage may be necessary to remove thick, purulent secretions. In the child with severe saccular bronchiectasis, removal of the affected area of the lung may be necessary. Patient education materials can be obtained from the Cystic Fibrosis Foundation. Childhood immunizations have led to a decreased incidence of bron- chiectasis attributable to pertussis.
Bronchiolitis Etiology Bronchiolitis is characterized by widespread inflammation of bronchioles attributable to infectious agents such as respiratory syncytial virus (RSV) (50% of cases), influenza virus (type A, B, or C), or bacteria (H. influenzae, pneumococci, or hemolytic streptococci) and occasionally is produced by allergic reactions. RSV infection is a common cause of hospitalization in infants. Other organisms that may cause bronchiolitis include mycoplasma, chlamydia, ureaplasma, and Pneumocystis (carinii) jiroveci. RSV occurs in yearly epidemics in winter to spring, usually in children younger than 2 years. The average incubation period is 5 days, with inoculation occurring through the nose and eyes. In adults, bronchiolitis is commonly associated with smoking, toxic fumes, and immunosuppression.
Pathogenesis Once initiated by the causal agent, proliferation and necrosis of bron- chiolar epithelium occur, producing obstruction and increased mucus
494 UNIT VI Respiratory Function
longer into adulthood. The median survival age is now 31 years. Some patients are now having families.
Pathogenesis Cystic fibrosis is classified as an autosomal-recessive disorder. More than 800 mutations in the gene that encodes for the cystic fibrosis transmembrane conductance regulator (CFTR) have been described. One genetic defect associated with cystic fibrosis involves deletion of three base pairs in codon 508 (AF508) that code for phenylalanine on chromosome 7 (band q31). With the loss of these three base pairs, the CFTR gene is dysfunctional. This is the most common genetic mutation causing cystic fibrosis and occurs in 60% to 75% of cystic fibrosis patients tested. CFTR encodes a membrane chloride channel and is expressed in the sweat glands, the lungs, and the pancreas. Mutations in the CFTR gene result in alteration in chloride and water transport across the apical surface of epithelial cells. Cystic fibrosis primarily affects the pancreas, intestinal tract, sweat glands, and lungs, and in males causes infertility. The mucus-producing glands in the gastrointestinal tract enlarge, generating excessive secretions. The thick eosinophilic mucous secretions plug the glands and ducts of the pancreatic acini, intestinal glands, intrahepatic bile ducts, and the gallbladder, causing dilation and fibrosis. These changes result in decreased production of pancreatic enzymes necessary for digestion of fats, carbohydrates, and proteins, thus leading to increased fat and protein in the stool.
The bronchopulmonary system is also affected by the thick, tenacious mucus that results from failure of chloride channels to function in the apical membranes of mucosal cells. Decreased flow of ions and water results in viscid mucus. High concentrations of DNA in airway secretions (attributable to inflammation and lysis of neutrophils)
inhaled, or intravenous bronchodilator agents and, in selected cases, corticosteroids. General information about pharmacologic agents commonly used in the management of various respiratory disorders is listed in other texts. Use of these agents depends on the severity of the diagnosis and prescriber preference.
Other therapies include sedation for anxiety, hydration, and the administration of appropriate antivirals and antibiotics. Patients are encouraged to stop smoking and to avoid passive smoke exposure. The use of eye–nose goggles by health care workers is recommended to control the spread of RSV. The virus is spread through the air or by contact with secretions from the eye, nose, or mouth, and transmission may not be prevented by the use of masks and gowns.
Cystic Fibrosis Etiology Cystic fibrosis (mucoviscidosis) is an autosomal-recessive disorder of the exocrine glands. It is the most common genetic lung disease in the United States, with an incidence of 1 in 2000 to 3000 Caucasian births. One in 26 Caucasians is a heterozygous carrier of the cystic fibrosis gene. The incidence in African Americans is rare (1 in 10,000 live births), and in Native Americans the incidence is 1 in 80,000 births. It is almost never seen in the Asian population. About 35% of the 30,000 cases of cystic fibrosis in the United States involve individuals older than 18 years. Cystic fibrosis can be classified either as an airflow obstructive disorder or as a suppurative (pus-forming) disorder. Hypersecretion of abnormal, thick mucus that obstructs exocrine glands and ducts is a characteristic finding in the disease.
With advances in antibiotic therapy and early recognition and management of complications, patients with cystic fibrosis are living
160°
Normal nail angle
Mild clubbing
Advanced clubbing
180°
>180°
Clubbing
Normal
A
D
E
B
C FIG 22.18 Clubbing. A, Normal fingernail angle is 160 degrees. B, Early mild clubbing appears as a flattened angle between nail and skin (180 degrees). C, Advanced clubbing shows a rounded (clubbed) fingertip and nail. To assess clubbing by Schamroth’s diagnostic method (D and E), place the nails of the second digits together. Obliteration of the normal diamond-shaped space between the nails is an abnormal finding, signifying clubbing.
CHAPTER 22 Obstructive Pulmonary Disorders 495
decrease the viscoelasticity of sputum, thus improving pulmonary function and decreasing the risk of infection.
High-dose antibiotic therapy is used for acute exacerbations of respiratory tract infections to decrease bacterial growth in the lungs. An annual influenza vaccine is recommended because of the increased risk of complications associated with infection.
Nutritional therapy includes unrestricted fat consumption (approxi- mately 30% of caloric intake), ingestion of a high-protein diet, and use of vitamin supplements (especially the fat-soluble vitamins A, D, E, and K). Other pharmacologic therapy related to nutrition is aimed at replacement of pancreatic enzymes (pancreatin or pancrelipase). Maintenance of weight in children with cystic fibrosis often requires an intake of 150% of the normal calories recommended for healthy children. In some cases, enteral feedings or intravenous nutrition may be necessary on a short-term basis. Salt supplementation may be necessary in hot weather.
Heart–lung or lung transplantation is currently the only defini- tive treatment. More than 200 cystic fibrosis patients worldwide have undergone transplantation, with a 3-year survival of 55%. Patients receiving transplants showed marked improvement in mobility, energy, and quality of life.
Identification of the disease-related gene, CFTR, has advanced prospects for corrective gene therapy. One limiting factor is that the therapeutic gene has a short-term expression.
Acute Tracheobronchial Obstruction Etiology Acute tracheobronchial obstruction requires immediate treatment. Causes frequently include aspiration of a foreign body (e.g., a piece of meat, peanut, coin), malpositioned endotracheal tube, laryngospasm, epiglottitis, trauma, swelling from smoke inhalation, postsurgical blood clot, and compression of the bronchus or trachea by tumors or enlarged lymph nodes. With inhaled foreign bodies, the right side of the lung is affected more often than the left because of the angle of the anatomic extension of the right main bronchus from the trachea.
Pathogenesis Obstruction by one of the etiologic agents listed earlier can be partial or complete. The health care worker must be prepared to assess the situation rapidly and act immediately to clear the airway.
Clinical Manifestations With complete obstruction, no air movement will be heard on ausculta- tion, but the patient may still be making inspiratory chest movements. Other clinical features of complete obstruction include inability to talk, tachycardia, cyanosis, and rapid progression to unconsciousness unless the problem is quickly reversed.
With partial obstruction of the airway, the patient usually presents with stridor, sternal and intercostal retractions, wheezing, nasal flaring, tachypnea, dyspnea, tachycardia, and use of accessory muscles to breathe. Cyanosis is a late sign that usually indicates exhaustion or complete obstruction.
Diagnosis The diagnosis of airway obstruction is based on clinical features and ABG analyses. ABG values frequently show hypoxemia and hypercarbia. Chest radiographs may reveal the location of the obstruction.
Treatment Treatment involves opening the obstructed airway as quickly as possible. Blows to the patient’s back or use of abdominal thrusts (previously called the Heimlich maneuver) may be necessary for the foreign body
increase sputum viscosity. The thick mucus causes airway obstruction, atelectasis, and hyperinflation and also decreases ciliary action, thus contributing to mucus stasis, which provides a medium for pulmonary infection. Sweat glands, salivary glands, and lacrimal glands are also affected, leading to high concentrations of sodium and chloride in these secretions.
Clinical Manifestations Typical findings include a history of cough in a young adult or child; thick, tenacious sputum; recurrent pulmonary infections (commonly Pseudomonas aeruginosa); and recurrent episodes of bronchitis. These processes ultimately progress to pneumonia and bronchiectasis, right- sided heart failure (cor pulmonale), and exercise intolerance.
Physical examination may reveal digital clubbing (late sign), dyspnea, tachypnea, sternal retractions, unequal breath sounds, moist basilar crack- les and rhonchi, and a barrel chest that is hyperresonant to percussion. Other findings that may be present are pancreatic insufficiency (85% to 90%), cirrhosis of the liver (15% to 20%), diabetes mellitus (8% to 15%), gallstones (30% to 35%), nasal polyps (15%), and failure of development of the vas deferens in males. Infants frequently present with a history of multiple respiratory tract infections, meconium ileus (stool retained in intestine), failure to thrive, jaundice, salt depletion, and edema.
Nutritional assessment reveals depleted fat stores, steatorrhea (fatty stools), anorexia, decreased growth rate in children (weight, height, head circumference), and decreased midarm indices.
Diagnosis The diagnosis of cystic fibrosis is based on clinical and laboratory findings. Diagnostic studies that are routinely performed include ABG measure- ments, pulmonary function tests, sputum culture and sensitivity with Gram stain, and chest radiography. Specific diagnostic tests for cystic fibrosis include stool examination for fat, pilocarpine iontophoresis (sweat test), and genetic testing. A 72-hour stool collection combined with the dietary history during that time is used to determine fat absorption and fecal fat excretion. A coefficient of fat absorption of less than 95% (85% in infants) can be used to define steatorrhea (fatty stools). ABG analyses commonly show hypoxemia and hypercapnia because of airway obstruction. Pulmonary function tests reveal decreased vital capacity, decreased airflow rates, increased airway resistance, increased functional residual capacity, and decreased tidal volume. Chest radiographs show evidence of patchy atelectasis, bronchiectasis, obstructive emphysema, cystic lung fields, and peribronchial thickening.
The quantitative pilocarpine iontophoresis sweat test reveals elevated sodium and chloride levels, with more than 98% of patients having levels greater than 60 mEq/L in children and greater than 80 mEq/L in adults. A diagnostic blood test for the genetic marker AF508 may be useful for confirming the diagnosis and providing genetic information to the family.
Treatment Management of cystic fibrosis involves an interdisciplinary approach. A comprehensive program that focuses on multiorgan derangements is recommended. Because pulmonary disease accounts for the majority of morbidity and mortality associated with cystic fibrosis, treatment is aimed at aggressive pharmacologic management of pulmonary infection. Treatment includes the use of bronchodilators, and mobilization of the thick mucus by postural drainage and chest physiotherapy (percussion and vibration) is a priority. Alternative methods for mucus removal include the forced expiratory technique, which involves coughing (huffing) with an open glottis. Recombinant human deoxyribonuclease I (dornase alfa) acts by digesting extracellular DNA (released from lysed neutrophils) present in the viscid sputum of cystic fibrosis patients to
496 UNIT VI Respiratory Function
to be expelled. Aspirated contents occluding the airway are suctioned to relieve obstruction. If these methods are unsuccessful, an emergency tracheostomy should be performed in the case of a suspected upper airway obstruction in the subglottic region or above.
Epiglottitis Etiology Epiglottitis is a rapidly progressive cellulitis of the epiglottis and adjacent soft tissues. Acute epiglottitis is suspected when odynophagia (pain with swallowing) seems out of proportion to pharyngeal findings. Inability to swallow saliva with evidence of drooling is common. Epiglot- titis is classified as a subtype of croup. The causative organism is primarily H. influenzae type B (Hib). It is most often seen in children 2 to 4 years old. Pneumococci, streptococci, and staphylococci are also causal agents. The role of viruses in epiglottitis is unclear.
Pathogenesis The infecting agent localizes in the supraglottic area in the epiglottis and pharyngeal structures, causing rapid and potentially fatal inflam- mation with swelling and airway obstruction.
Clinical Manifestations The patient frequently presents with acute respiratory difficulty that has progressed rapidly over several hours. Common signs and symptoms include drooling, dysphagia, rapid onset of fever, dysphonia, inspiratory stridor, and inspiratory retractions. The child often sits in a “sniffing dog” position, which provides the best airway patency. The oropharynx is edematous and cherry red.
Diagnosis Definitive diagnosis is obtained by direct or fiberoptic visualization of the epiglottis. Lateral neck radiographs assist in making a definitive diagnosis and reveal a classic “thumbprint sign” (swollen epiglottis that looks like a thumbprint). A complete blood count may reveal leukocytosis with a shift to the left.
Treatment This condition is a true medical emergency and may necessitate intuba- tion. Antibiotic therapy should be started immediately. Preventive treatment with the Hib vaccine has been the key to decreasing the incidence of this disease.
Croup Syndrome Etiology Croup syndrome describes a number of acute viral and inflammatory diseases of the larynx. Croup diseases include laryngotracheobronchitis (viral croup) and bacterial tracheitis. Viral croup affects the larynx, trachea, and bronchi. It is often caused by parainfluenza virus type 1. Other potential infecting organisms include parainfluenza types 2 and 3, RSV, influenza virus, adenovirus, and Mycoplasma pneumoniae. Croup usually occurs in the fall and early winter, affecting children ages 6 months to 3 years.
Pathogenesis The infectious agent causes inflammation along the entire airway, leading to edema formation in the subglottic area.
Clinical Manifestations The child presents with a history of upper respiratory tract infection or cold that has developed into a barking cough with stridor. Fever is low grade or absent. In severe cases the child may present with stridor at rest, retractions, and cyanosis.
KEY POINTS • Obstructive disorders are associated with increased resistance to airflow,
particularly during exhalation. • Bronchiectasis is associated with recurrent inflammation of the bronchial
walls, chronic cough, and aneurysm-like dilatations of the bronchioles. These bronchiolar dilatations serve as pockets of infection, producing purulent, foul-smelling sputum. Treatment centers on use of antibiotic therapy and removal of secretions.
• Bronchiolitis refers to widespread bronchiolar inflammation, often associated with smoking and a number of infectious agents. Inflammation results in mucosal swelling, excessive mucus production, and bronchial muscle constric- tion—all of which narrow the airway lumen and may lead to wheezing and dyspnea. Treatment centers on administration of bronchodilating agents and management of the underlying cause.
• Cystic fibrosis is an autosomal-recessive disorder of exocrine glands and mucus cells. Secretions are excessively thick because of insufficient chloride and water transport. Thick secretions cause airway obstruction, atelectasis, and air trapping. Associated symptoms resulting from dysfunction of the exocrine pancreas are apparent. Treatment centers on removal of secretions and provision of antibiotic therapy for complicating respiratory tract infections.
• Obstruction of the trachea or large bronchi may occur acutely, requiring immediate treatment. Usual causes include foreign body aspiration, trauma, and inflammation. With complete obstruction, no movement of air occurs, even though inspiratory efforts may be observed. Partial airway obstruction is associated with wheezing, retractions, and stridor. Treatment centers on removing the obstruction, if possible, or creating a patent airway by a tracheostomy.
• Epiglottitis is a medical emergency. H. influenzae type B, the primary organism associated with epiglottitis, invades the supraglottic structures (epiglottis and arytenoids), causing inflammation and edema, leading to obstruction. Key points in the clinical diagnosis are rapid onset of fever, pain and difficulty swallowing, and drooling. Lateral neck x-ray films reveal a classic thumbprint sign, which is indicative of epiglottal swelling. Airway maintenance via endotracheal intubation or tracheostomy and antibiotic therapy are the primary treatments. The Hib vaccine has greatly decreased the number of cases seen in the pediatric population.
• Croup is usually from a viral infection of the subglottic area. Children ages 6 months to 3 years present with cough and stridor after an upper respiratory tract infection. Humidification, oxygenation, and inhaled epinephrine are the primary treatment modalities.
Diagnosis Diagnosis is based on clinical manifestations and lateral neck films to rule out epiglottitis. Direct laryngoscopy is also used to confirm the presence of epiglottitis because the clinical presentation is similar to that of croup. Lateral neck radiographs show subglottic narrowing and a normal epiglottis. The classic steeple sign associated with viral croup shows narrowing below the vocal cords.
Treatment Supportive treatment is used for viral croup. Mist therapy, oral hydration, and avoidance of stimulation are used in outpatient therapy. Hospitalized children are managed with oxygen therapy and pulse oximetry. Nebulized epinephrine is effective in relieving airway obstruction. Endotracheal intubation may be required for children with respiratory failure.
CHAPTER 22 Obstructive Pulmonary Disorders 497
Health care professionals have a key role in the management of respiratory disorders in the hospital and in the community. Obstructive pulmonary diseases presented in this chapter include airway obstruction, obstruction from conditions affecting the tracheobronchial walls, and loss of lung parenchyma (emphysema). Obstructive pulmonary disorders are characterized by increased resistance to airflow. With bronchiectasis, obstruction is due to inflammation, infection, and dilatation of the bronchioles. Similarly, bronchiolitis is associated with inflammation; however, in this situation, inflammation leads to mucosal edema and excessive mucus production. Airway obstruction from cystic fibrosis is related to production of excessive, thick secretions. Obstruction of the airway in croup is the result of edema and increased secretions caused
by viral infection. Similarly, epiglottitis is an infectious process requiring emergency treatment. The primary organism causing epiglottitis is H. influenzae. The incidence of epiglottitis has been greatly reduced with the advent of the Hib vaccine.
An inflammatory process is also seen in asthma and bronchitis. The inflammation is associated with increased mucus production and edema of the tracheal bronchial mucosa in asthma and bronchitis. Bronchospasm of the tracheobronchial tree attributable to exposure to allergens, pulmonary irritants, stress, and exercise may result in hypoxemia. Obstruction to airflow in emphysema is due to loss of alveoli and small airways. The most common cause is cigarette smoking.
S U M M A R Y
RESOURCES Asthma and Acute Obstruction Akinbami LJ, Moorman JE, Bailey C, et al: Trends in asthma prevalence,
healthcare use, and mortality in the United States 2001–2010. National Center for Health Statistics; Centers for Disease Control. (94) 2012.
Barrett KE, Baman SM, Boitano S, Brooks HL: Ganong’s review of medical physiology, ed 25, New York, 2015, McGraw-Hill.
Binstadt BA, Schneider L: Allergic disorders and immunodeficiency. In Graef JW, editor: Manual of pediatric therapeutics, ed 7, Philadelphia, 2007, Lippincott-Raven, pp 500–516.
Bonini M, Usmani OS: The role of the small airways on the pathophysiology of asthma and chronic obstructive pulmonary disease. Ther Adv Respir Dis 9(6):281–293, 2015. doi:10.1177/1753465815588064.
Brooks AM: Asthma. In Garfunkel LC, Kaczorowski J, Christy C, editors: Mosby’s pediatric clinical advisor: instant diagnosis and treatment, St Louis, 2002, Mosby, pp 171–173.
CDC; Summary Health Statistics for US Adults: National Health Interview Survey, 2012. Series 10 (260) 2014.
Chesnutt MS, Prendergast TJ: Pulmonary Disorders. In Papadakis MA, McPhee SJ, Rabow MW, editors: Current medical diagnosis & treatment 2016, New York, NY, 2016, McGraw-Hill.
Covar RA, Fleisher DM, Cho C, Boguniewicz M: Allergic disorders. In Hay WW, et al, editors: Current diagnosis and treatment: pediatrics, ed 23, New York, 2016, Lange/McGraw-Hill, pp 1114–1150.
Ferri FF: Asthma. In Ferri FF, editor: Ferri’s clinical advisor: instant diagnosis and treatment, St Louis, 2016, Mosby, pp 152–161.
Gelb AF, Nadel JA: Understanding the pathophysiology of the asthma-chronic obstructive pulmonary disease overlap syndrome. J Allergy Clin Immunol 136(3):553–555, 2015.
Global Initiative for Asthma: Global Strategy for Asthma Management and Prevention, 2017. Available from www.ginasthma.org.
Goroll AH, Mulley AG: Management of asthma. In Goroll AH, Mulley AG, editors: Primary care medicine: office evaluation and management of the adult patient, ed 7, Philadelphia, 2014, Lippincott Williams & Wilkins, pp 399–415.
Hogg JC: The pathophysiology of asthma. Chest 82:s8–s11, 1982. Kormis WA: Approach to the patient with acute bronchitis or pneumonia in
the ambulatory setting. In Goroll AH, Mulley AG, editors: Primary care medicine: office evaluation and management of the adult patient, ed 7, Philadelphia, 2014, Lippincott Williams & Wilkins.
Mainous AG, Hueston WJ: Acute respiratory infections. In Sloane PD, et al, editors: Essentials of family medicine, ed 5, Philadelphia, 2011, Lippincott Williams & Wilkins, pp 769–785.
Pollat SM, Kolb A: Asthma in children. In Bope ET, Kellerman RD, editors: Conn’s current therapy, 2016, ed 1e, Philadelphia, 2016, Saunders, pp 1096–1103.
Schatz M: Asthma in Adolesents and Adults. In Bope ET, Kellerman RD, editors: Conn’s current therapy, 2016, ed 1e, Philadelphia, 2016, Saunders, pp 369–377.
Vura-Weis DE: Allergies and asthma. In Sloane PD, Slatt LM, et al, editors: Essentials of family medicine, ed 5, Philadelphia, 2011, Lippincott Williams & Wilkins, pp 745–768.
West JB: Pulmonary physiology and pathophysiology: an integrated case-based approach, ed 2, Philadelphia, 2007, Lippincott Williams & Wilkins.
West JB: Pulmonary pathophysiology: the essentials, ed 8, Philadelphia, 2013, Lippincott Williams & Wilkins.
Chronic Obstructive Pulmonary Disease Federico MJ, Baker CD, Deboer EM, et al: Respiratory tract and mediastinum.
In Hay WW, et al, editors: Current diagnosis and treatment: pediatrics,, ed 23, New York, 2016, Lange/McGraw-Hill, pp 500–550.
Goroll AH, Mulley AG: Management of chronic obstructive pulmonary disease. In Goroll AH, Mulley AG, editors: Primary care medicine: office evaluation and management of the adult patient, ed 7, Philadelphia, 2014, Lippincott Williams & Wilkins, pp 383–398.
Hanania N, Sharafkhaneh A: Chronic obstructive pulmonary disease. In Bope ET, Kellerman RD, editors: Conn’s current therapy, Philadelphia, 2016, Saunders, pp 385–390.
Harper GM, Johnston CB, Landefeld CS: Geriatric medicine. In Papadakis MA, McPhee SJ, Rabow MW, editors: Current medical diagnosis & treatment 2016, New York, NY, 2016, McGraw-Hill.
National Center for Health Statistics: Chronic obstructive pulmonary disease (COPD). Available at: www.cdc.gov/nchs/fastats/copd.htm. (Accessed October 2015).
Weiss EF: Clubbing. In Greene HL, et al, editors: Clinical medicine, ed 2, St Louis, 1996, Mosby, pp 563–566.
Cystic Fibrosis and Pulmonary Infections Behrman RE, Kliegman RM, Jenson HB: Pocket companion to accompany
Nelson textbook of pediatrics, ed 16, Philadelphia, 2001, Saunders, pp 505–506.
Chen S: Respiratory syncytial virus/bronchiolitis. In Garfunkel LC, Kaczorowski J, Christy C, editors: Mosby’s pediatric clinical advisor: instant diagnosis and treatment, St Louis, 2007, Mosby.
Cystic Fibrosis Foundation: 6931 Arlington Rd, Suite 2000, Bethesda, MD 20814; 800-344-4823. Available at: www.cff.org.
Ferri FF: Bronchiectasis. In Ferri FF, editor: Ferri’s clinical advisor: instant diagnosis and treatment, St Louis, 2016, Mosby, pp 253–254.
Fishman DS, Bousuares A: Management of nutritional gastrointestinal and hepatic disorders. In Graef JW, editor: Manual of pediatric therapeutics, ed 7, Philadelphia, 2007, Lippincott-Raven, p 359.
Fort GG: Epiglottitis. In Ferri FF, editor: Ferri’s clinical advisor: instant diagnosis and treatment, St Louis, 2016, Mosby, p 477.
Giosti R: Cystic fibrosis. In Bope ET, Kellerman RD, editors: Conn’s current therapy, Philadelphia, 2016, pp 392–395.
Jackson MA, Vahle H: Croup. In Garfunkel LC, Kaczorowski J, Christy C, editors: Mosby’s pediatric clinical advisor: instant diagnosis and treatment, St Louis, 2007, Mosby.
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Jaskiewicz J: Cystic fibrosis. In Garfunkel LC, Kaczorowski J, Christy C, editors: Mosby’s pediatric clinical advisor: instant diagnosis and treatment, St Louis, 2007, Mosby.
Roig IL, Shandera WX: Infectious diseases: viral and rickettsial. In Papadakis MA, McPhee SJ, Rabow MW, editors: Current medical diagnosis & treatment 2016, New York, NY, 2016, McGraw-Hill.
Salwen MJ, Siddiqi HA, Gress FG, Bowne WB: Laboratory diagnosis of gastrointestinal and pancreatic disorders. In McPherson RA, editor: Henry’s clinical diagnosis and management by laboratory methods, ed 22, Philadelphia, 2011, Saunders, pp 312–328.
Voynow JA, Mascarenhas M, Kelly A, Scanlin TF: Cystic fibrosis. In Grippi MA, Elias JA, Fishman JA, et al, editors: Fishman’s pulmonary diseases and disorders, ed 5, New York, NY, 2015, McGraw-Hill.
Yusen RD, et al: Pulmonary diseases. In Godara H, et al, editors: The Washington manual of medical therapeutics, ed 34, Philadelphia, 2013, Lippincott Williams & Wilkins.
Yusen RD, Lefrak SS: Pulmonary II: diseases. In Godara H, et al, editors: The Washington manual of medical therapeutics, ed 34, Philadelphia, 2013, Lippincott Williams & Wilkins.
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23
Restrictive Pulmonary Disorders Lorna L. Schumann and Benjamin J. Miller
K E Y Q U E S T I O N S • How do fibrotic lung disorders develop? • How is the pathogenesis of acute (adult) respiratory distress
syndrome similar to that of infant respiratory distress syndrome?
• How do abnormal accumulations in the pleural space affect lung function?
• What neuromuscular disorders are associated with reduced lung compliance?
• What chest wall deformities are associated with reduced lung compliance?
• What is the pathogenesis of pneumonia? • What is the pathogenesis of severe acute respiratory syndrome
(SARS)? • What is the pathogenesis of Middle East respiratory syndrome
(MERS)? • What is the pathogenesis of tuberculosis?
C H A P T E R O U T L I N E Lung Parenchyma Disorders, 500
Fibrotic Interstitial Lung Diseases, 500
Diffuse Interstitial Lung Disease, 500 Sarcoidosis, 501 Hypersensitivity Pneumonitis, 502 Occupational Lung Diseases, 503
Atelectatic Disorders, 504 Acute (Adult) Respiratory Distress Syndrome, 504 Infant Respiratory Distress Syndrome, 507
Pleural Space Disorders, 508 Pneumothorax, 508 Pleural Effusion, 510
Neuromuscular, Chest Wall, and Obesity Disorders, 511 Neuromuscular Disorders, 511
Poliomyelitis, 511 Amyotrophic Lateral Sclerosis, 511
Muscular Dystrophies, 511 Guillain–Barré Syndrome, 511 Myasthenia Gravis, 511
Chest Wall Deformities, 511
Kyphoscoliosis, 511 Ankylosing Spondylitis, 512 Flail Chest, 513
Disorders of Obesity, 513
Infection or Inflammation of the Lung, 514 Pneumonia, 514
Severe Acute Respiratory Syndrome 516 Middle East Respiratory Syndrome 516 Pulmonary Tuberculosis, 516
http://evolve.elsevier.com/Banasik/pathophysiology//
Restrictive pulmonary diseases result from decreased expansion of the lungs attributable to alterations in the lung parenchyma, pleura, chest wall, or neuromuscular function. These disorders may be classified as pulmonary or extrapulmonary and represent acute or chronic patterns of lung dysfunction, rather than a single clinical disease. Table 23.1 lists the various disease processes that can be classified as restrictive. These diseases are characterized by a decrease in total lung capacity (TLC), vital capacity (VC), functional residual capacity (FRC), and residual volume (RV). The greater the decrease in lung volume, the greater the severity of the disease. Blood gas analysis often shows decreased arterial partial pressure of oxygen (PaO2) and normal or decreased arterial
partial pressure of carbon dioxide (PaCO2), resulting in increased pH (respiratory alkalosis).
This chapter presents information related to restrictive pulmonary diseases, including lung parenchyma disorders, pleural space disorders, neuromuscular and chest wall disorders, pneumonia, and tuberculosis (TB). Specific lung parenchyma disorders, including interstitial fibrosis, sarcoidosis, hypersensitivity pneumonitis, and pneumoconiosis, as well as atelectatic disorders, including acute (adult) respiratory distress syndrome (ARDS) and infant respiratory distress syndrome (IRDS), are presented. Pleural space disorders, divided into pneumothorax and pleural effusions, are discussed. The section on neuromuscular and
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
500 UNIT VI Respiratory Function
LUNG PARENCHYMA DISORDERS Fibrotic Interstitial Lung Diseases The term interstitial lung disease describes a group of more than 180 disorders characterized by acute, subacute, or chronic infiltration of alveolar walls by cells, fluid, and connective tissue. If left untreated, the inflammatory process may progress to irreversible fibrosis. The incidence of interstitial lung disease is 20 cases per 100,000 persons in the general population and 175 per 100,000 in people more than 75 years of age.
Diffuse Interstitial Lung Disease Etiology. Diffuse interstitial lung disease (diffuse interstitial pulmonary
fibrosis) is the name typically used for restrictive diseases characterized by thickening of the alveolar interstitium. Synonyms frequently presented in the literature include interstitial pneumonia, diffuse parenchymal lung disease, Hamman–Rich syndrome, intrinsic fibrosing alveolitis, cryptogenic fibrosing alveolitis, and idiopathic pulmonary fibrosis.
Pathogenesis. Pathogenesis of the disease is not well understood, but is possibly related to an immune reaction that usually begins with injury to the alveolar epithelial or capillary endothelial cells. Pathophysiologic changes may include interstitial and alveolar wall thickening and increased collagen bundles in the interstitium (Fig. 23.1). Lung tissue becomes infiltrated by lymphocytes, macrophages, and plasma cells. Persistent alveolitis may lead to obliteration of alveolar capillaries, reorganization of the lung parenchyma, and irreversible fibrosis. These changes in turn lead to the formation of large air-filled sacs (cysts) accompanied by dilated terminal and respiratory bronchioles. The immune response noted in interstitial lung disease is characterized by three pathologic patterns in the alveoli: inflammation, fibrosis, and destruction.
The inflammatory pattern occurs early and is potentially reversible. The triggering event (occupational exposure, tobacco abuse, drug ingestion, connective tissue disease) causes an inflammatory response leading to increased numbers of inflammatory cells (neutrophils, lymphocytes, macrophages). An associated injury to the alveolar capillary basement membrane from the triggering event leads to increased membrane permeability and movement of fluid and debris into the alveoli. The initial injury, in association with the inflammatory pattern, leads to fibroblastic proliferation and deposition of large amounts of
chest wall disorders is divided into neuromuscular weakness, chest wall deformities, and obesity. The final section presents etiologic factors, pathogenesis, clinical manifestations, diagnosis, and management of pneumonia, TB, and severe acute respiratory syndrome (SARS). Table 23.2 describes variations in respiratory parameters that affect restrictive lung disease in infant and elderly populations.
TABLE 23.1 Restrictive Pulmonary Disorders
Disorder Type Representative Examples
Diseases of the Lung Parenchyma Neoplastic disease — Pneumonia Pneumonia (viral, bacterial, fungal),
hypersensitivity pneumonitis Granulomatous disease Sarcoidosis, tuberculosis,
coccidioidomycosis, blastomycosis Pneumoconioses Occupational lung disease Acute interstitial pneumonitis — Collagen disease Rheumatoid arthritis, scleroderma,
systemic lupus erythematosus Atelectasis — Pulmonary resection — Vascular Diseases Pulmonary edema, pulmonary embolism Acute respiratory distress
syndrome —
Diseases of Extrapulmonary Restriction Chest wall disease Kyphoscoliosis, ankylosing spondylitis,
obesity Neuromuscular disease Quadriplegia, hemiplegia, Guillain–Barré
syndrome, myasthenia gravis, amyotrophic lateral sclerosis, muscular dystrophy
Pleural diseases Pleural effusion, hemothorax, pneumothorax, chylothorax
Other Abdominal distention, surgery, pregnancy
FIG 23.1 Schematic diagram of concepts in the pathogenesis of idiopathic pulmonary fibrosis (IPF) and potential targets to modulate fibroblast proliferation and extracellular matrix deposition in the alveolar wall. BM, Basement membrane. (From O’Riordan TG et al: Development of novel agents for idiopathic pulmonary fibrosis. Chest 2015;148(4):1083-1092, The American College of Chest Physicians.)
CHAPTER 23 Restrictive Pulmonary Disorders 501
consistent with restrictive lung disease (decreased VC, reduced TLC, and decreased diffusing capacity).
Treatment. The patient should be encouraged to avoid tobacco use and environmental exposure to offending agents. Primary therapy consists of administration of antiinflammatory and immunosuppressive agents. Immunosuppressive agents have been useful in reducing the dosage of corticosteroids required. Oxygen therapy is needed in patients with hypoxemia. Lung transplantation has been successful in selected patients.
Sarcoidosis Etiology. Sarcoidosis is categorized as an acute or chronic systemic
disease of unknown cause, although an immunologic basis appears likely. A common feature of sarcoidosis is the presence of CD4+ T cells. Activation of the alveolar macrophage from an unknown antigen trigger is a possible cause. The acute process occurs more commonly in women in the second or third decades of life. The chronic form is seen more commonly in the second to fourth decades of life, with the highest incidence seen in North American blacks (35.5/100,000) and Northern European whites (11.9/100,000). Having a first-degree relative with sarcoidosis increases the risk for disease fivefold.
Pathogenesis. The disease is characterized by the development of multiple uniform, noncaseating epithelioid granulomas that affect multiple organ systems, most commonly lymph nodes and lung tissue (90% of cases). Noncaseating granulomas are fibrotic and surrounded by large histiocytes. Sarcoid granulomas may also develop in the bronchial
collagen. The fibrotic pattern is manifested by increases in the number of mesenchymal cells and fibroblasts in the interstitium, and alveolar walls become thickened with increased amounts of fibrous tissue. Physiologic restriction leads to reduced compliance and increased elastic recoil. The lung destruction pattern is manifested by loss of alveolar walls. Radiographically, this appears as a “honeycomb lung” and indicates end-stage disease. Ground-glass appearance on chest radiograph is often an early finding. The fibrotic and honeycomb patterns respond poorly to treatment.
Clinical manifestations. The most common patient complaint is progressive dyspnea with nonproductive cough. Clinical features also include rapid, shallow breathing; dyspnea; clubbing of the nail beds (40% to 80% cases); bibasilar end-expiratory crackles (Velcro rales); and marked dyspnea with exercise. Cyanosis is a late finding. Anorexia and weight loss are noted on physical examination. While the disease progresses, patients exhibit an inability to increase cardiac output with exercise, as evidenced by low maximal heart rate and high peripheral vascular resistance. Arterial oxygen desaturation occurs with exercise.
Diagnosis. Chest radiographs show a honeycomb appearance and a coarse reticular pattern indicating late stage of disease. Ground-glass haziness is indicative of the presence of infiltrates. High-resolution computed tomography and bronchoalveolar lavage are the primary diagnostic tests used to evaluate interstitial lung disease. Open lung biopsy or transbronchial biopsy and gallium-67 scanning may be used for diagnostic evaluation. Results of pulmonary function tests are usually
TABLE 23.2 Age-Related Features Contributing to Restrictive Lung Disease
Anatomic Site Impact on Restrictive Disease
Infant Sternum and ribs are cartilaginous with soft chest wall Diminishes effect of restrictive disease in infants Ribs are horizontally oriented so that ribs move in and out easily Diminishes effect of restrictive disease in infants Accessory muscles of respiration are poorly developed Majority of respiratory movement relies on diaphragm; restrictive diseases that
compromise diaphragmatic excursion affect respiratory status; e.g., thoracic or abdominal surgery, paralysis, and abdominal masses affect diaphragmatic excursion
Diaphragm rests horizontally and draws lower ribs inward in supine position so that diaphragmatic excursion is decreased
Leads to compromised effort of breathing
Cartilage of infant larynx is soft, so airway is compressed when neck is flexed or hyperextended
Increases airway resistance
During first month of life, neonate is obligate nose breather Nasal obstruction may lead to respiratory distress from decreased airflow Small diameter of airway leads to increased resistance to airflow Mucus or edema in the airway may lead to significant increase in resistance and
decrease in airway diameter Fewer alveoli than in adults, leading to decreased radial traction applied to
airways Increased tendency of airways to collapse
Pores of Kohn and channels of Lambert are underdeveloped, leading to fewer collateral ventilation pathways
May lead to respiratory compromise, reducing ventilatory support with restrictive diseases
Elderly Decreased ciliary activity Increased incidence of infection; decreased mucus clearance in all types of
respiratory disorders Decreased chest wall compliance and decreased lung elasticity in some
areas of lung Leads to a reduction in lung volume; leads to decreased expansion of lungs and
to decreased matching of ventilation and perfusion Decreased stress tolerance Increased incidence of disease and trauma with age Decreased muscle tone Decreased physical conditioning Impaired immunity as evidenced by decreased T-cell function; increased
autoantibodies Decreased resistance to infection
Decreased oxygen uptake Decreased oxygen level in blood Decreased vital capacity Decreased alveolar expansion Decreased cough reflex Impaired ability to clear secretions and inhaled particulate matter
502 UNIT VI Respiratory Function
changes occur in advanced cases. Many individuals develop precipitating antibodies (precipitin) from organic dust exposure, but only a few develop pneumonitis. Genetic predisposition may be involved in an exaggerated response to the offending agent. Experiments in animals show that a delayed hypersensitivity (type IV) reaction to the antigen is also required before pneumonitis can occur.
Clinical manifestations. In the acute stage of the disease, symptoms start 4 to 6 hours after exposure and resolve in 18 to 24 hours. General symptoms may include chills, sweating, shivering, myalgias, nausea, lethargy, headache, and malaise. The patient may have a fever. Respiratory symptoms may include dyspnea at rest, dry cough, tachypnea, and chest discomfort. Physical findings may include cyanosis (a late sign) and crackles (rales) in the lung bases.
In the chronic form, progressive diffuse pulmonary fibrosis develops in the upper lobes—the hallmark of the disease. In the intermediate form, the disease may manifest with acute febrile episodes and progressive pulmonary fibrosis with cough, dyspnea, fatigue, and, eventually, cor pulmonale (right-sided heart enlargement attributable to lung disorders).
Diagnosis. During the acute/subacute phase, transient bilateral pulmonary infiltrates or increased bronchial markings with alveolar nodular infiltrates may be found on chest radiographs. In the chronic phase, diffuse reticulonodular infiltrates and fibrosis are present. Skin testing with the causative antigen may produce a red, indurated, hemor- rhagic reaction 4 to 12 hours after injection that lasts several days. This reaction suggests precipitin-mediated sensitivity. Skin testing for most precipitating antigens is impractical because most produce irritating reactions before the precipitin reaction occurs, and many individuals without the disease have precipitating antibodies. Common laboratory findings include an increased white blood cell count and a decreased PaO2. Elevations in erythrocyte sedimentation rate and the level of C-reactive protein are often present. Hypoxemia worsens with exercise. Pulmonary function tests show decreased lung volumes, diffusing capacity, and static compliance.
Treatment. The goal of therapy is to identify the offending agent and prevent further exposure. This may require a change in environment or occupation. Oral corticosteroids may be used to decrease the inflam- matory process.
TABLE 23.3 Causes of Hypersensitivity Pneumonitis
Disease Antigen Allergen Source
Farmer’s lung Thermophila, Actinomyces
Moldy hay, silage
Bird fancier’s lung Parakeet, pigeon, chicken
Bird excreta, feathers, and animal protein
Bagassosis Thermophilic bacteria Moldy sugarcane pulp Mushroom, cork, maple
bark, or malt hypersensitivity; cheese maker’s lung, redwood lung
Various fungi Handling moldy products
Grain handler’s lung Wheat weevil Insect-infected grain Pituitary extract
hypersensitivity Heterologous
pituitary and serum proteins
—
Fish-meat worker’s lung Protein, fungi Animal food Humidifier lung (fever) Thermophilic
bacteria, amoebae, and fungi
Humidifiers and evaporative air coolers
airways. Abnormal T-cell function is noted with this disease. Other systems/organs frequently involved are the skin, eyes, spleen, liver, kidney, and bone marrow.
Clinical manifestations. Sarcoidosis is characterized by malaise, fatigue, weight loss, fever, chest discomfort, dyspnea of insidious onset, and a dry, nonproductive cough. Other features include erythema nodosum (lesions marked by the formation of painful nodes on the lower extremities); macules, papules, hyperpigmentation, and subcutane- ous nodules; hepatosplenomegaly; and lymphadenopathy. Patients with acute disease usually present with enlarged lymph nodes and arthritis, although some patients experience no symptoms. Skin lesions and lacrimal and parotid gland involvement are also noted in the acute process. Iritis, uveitis (65% of patients), blurred vision, conjunctivitis, and ocular discomfort may develop.
Diagnosis. Common laboratory findings in patients with sarcoidosis include leukopenia, anemia, increased eosinophil count, elevated sedi- mentation rate, and increased calcium levels (seen in 11% of patients). Serum levels of liver enzymes may also be elevated. Approximately 70% of patients exhibit anergy (decreased sensitivity to specific antigens such as Trichophyton, Candida, mumps virus, and tuberculin). Patients with active disease also demonstrate elevated levels of angiotensin- converting enzyme (40% to 80% of cases). Chest radiographs can be used to differentiate stages of the disease process: stage 0, normal; stage I, hilar adenopathy alone; stage II, hilar adenopathy and bilateral pulmonary infiltrates; and stage III, pulmonary infiltrates without adenopathy. Stage IV is characterized by advanced fibrosis with evidence of honeycombing, hilar retraction, bullae, cysts, and emphysema. Gallium-67 scans will localize areas of granulomatous infiltrates. Pleural effusion is noted in 10% of cases of sarcoidosis. Pulmonary function test results may be normal or show evidence of restrictive disease and/ or obstructive disease. Transbronchial lung biopsy demonstrates noncaseating granulomas, thus providing a definitive diagnosis (75% to 90% cases). Bronchoalveolar lavage may be used to monitor cell content in patients with sarcoidosis. The lavage fluid is characterized by increased lymphocytes and a high CD4/CD8 cell ratio.
Treatment. Administration of corticosteroids and management of symptoms are the mainstays of treatment for patients whose disease process does not resolve spontaneously and in whom progressive lung disease or evidence of extrapulmonary sarcoidosis develops. For patients with progressive disease that does not respond to corticosteroids, immunosuppressive agents may be used. Hydroxychloroquine is effective for treatment of disfiguring skin lesions, hypercalcemia, and neurologic involvement. The prognosis is best for stage I disease. Death attributable to pulmonary insufficiency occurs in about 5% to 7% of patients.
Hypersensitivity Pneumonitis Etiology. Hypersensitivity pneumonitis, also called extrinsic allergic
alveolitis, is classified as a restrictive and occupational disease. Numerous (more than 300) inhaled organic agents are responsible for the inflam- matory process. Table 23.3 lists various allergens related to the disease. Unlike other pulmonary diseases, hypersensitivity pneumonitis has a predominance in nonsmokers (80% to 95% of cases).
Pathogenesis. The causative agent is suggested by the patient’s history and confirmed by demonstration of precipitating antibodies in the serum directed to the causative antigen. The causative antigen combines with the serum antibody in the alveolar walls, leading to a type III hypersensitivity reaction. Type III hypersensitivity diseases are caused by the formation of antigen–antibody complexes (see Chapter 10). These antigen–antibody complexes then elicit granulomatous inflammation that leads to lung tissue injury, as evidenced by thickening of alveolar walls; formation of exudate in the bronchiolar lumen; and infiltration by lymphocytes, plasma cells, and eosinophils. Fibrotic lung
CHAPTER 23 Restrictive Pulmonary Disorders 503
environmental areas (home, work, and leisure) further compounds the complexity of defining occupational respiratory diseases. Although atmospheric pollutants (toxic gases) are not discussed in detail here, their impact on occupational respiratory diseases must not be minimized. The sources, potential clinical manifestations, and potential pathologic processes associated with common atmospheric pollutants are presented in Table 23.4.
Pneumoconiosis is defined as parenchymal lung disease caused by the inhalation of inorganic dust particles. The greater the exposure to the dust, the worse the pathologic consequences. Anthracosis (coal miner’s lung or black lung), silicosis (silica inhalation), asbestosis (asbestos inhalation), and acute beryllium disease are common examples of occupational lung diseases. However, exposure to several other dusts may also impair respiratory function. Included in this list are antimony ore, barium, iron, tin, fuller’s earth (clay), kaolin (china clay), and talc. Hairdressers exposed to bleach and hair spray are at risk for developing obstructive lung disease. Asthma caused by occupational exposures is seen in 16.3% of all adult-onset asthma. Many workers are exposed to “pathogenic dust” through the processing, packaging, or manufacturing of a specific product. Predisposing factors such as history of preexisting lung disease, exposure to atmospheric pollutants, duration of dust exposure, amount of dust concentration, and size of dust particles affect the onset and severity of the respiratory impairment.
Pathogenesis. The respiratory tract is protected by two interrelated systems: the mucociliary system and alveolar macrophages. The inhalation of inorganic particles has little effect on the mucociliary system. However, atmospheric pollutants (sulfur oxides, nitrogen oxides, and tobacco smoke) interfere with and can paralyze ciliary action. As a result, the clearance effect is impaired, and inorganic particles cannot be removed. Alveolar macrophages attempt to engulf and remove inorganic dust by one of the following methods: (1) migrating to small airways to use the mucociliary escalator; (2) engulfing dust and exiting through the lymph and/or blood system; (3) passing through bronchial walls, depositing dust particles in extraalveolar tissue; or (4) destroying the particle (silica).
Macrophage impairment is the primary mechanism through which inorganic particles initiate lung diseases. In an attempt to maintain a sterile alveolar environment, macrophages secrete lysozymes to control foreign particle activity. These enzymes, released in response to the particulate stimuli, eventually damage the alveolar walls, which may cause deposition of fibrous materials. Although the type of inorganic
Occupational Lung Diseases Etiology. Occupational lung diseases result from the inhalation of
toxic gases or foreign particles. Traditionally, occupational lung diseases included pathologic conditions that were associated with the effects of exposure to inhaled dusts. However, a holistic approach to these diseases requires consideration of atmospheric pollutants, as well as natural genetic resistance and compliance with health maintenance behaviors. The distinction between occupational and environmental respiratory diseases is becoming increasingly difficult. The integration of multiple
KEY POINTS • Diffuse interstitial pulmonary fibrosis is a restrictive disorder characterized
by thickening of the alveolar interstitium. The disorder is an immune-mediated disorder that follows an initial lung injury.
• Lung tissues are characteristically infiltrated by immune cells (macrophages and lymphocytes). Excess fibrin deposition results in stiff, noncompliant lungs. VC, tidal volume, functional residual capacity (FRC), and diffusion capacity are generally reduced. Respiratory rate increases to compensate for small tidal volumes.
• Treatment centers on administration of drugs to depress immune system activity, such as corticosteroids.
• Sarcoidosis is a restrictive disorder associated with abnormal protein deposits (granulomas) in the lung. Granulomas are fibrotic and are associated with immune cells (histiocytes). The cause is unknown.
• Symptoms include progressive dyspnea, fever, enlarged lymph nodes, and generalized symptoms of inflammation. Pulmonary lymph nodes may be primarily affected, with progression to parenchymal involvement. Pulmonary function test results are consistent with a restrictive disorder, demonstrating reduced lung volumes and increased respiratory rate.
• Treatment centers on alleviation of the symptoms. Corticosteroids may be used to reduce inflammation.
• Hypersensitivity pneumonitis includes a group of inflammatory lung disorders associated with inhalation of organic particles. Antibodies are produced in response to the inhaled particles; then antigen–antibody complexes deposit in the lung, initiating inflammation and granuloma production.
• Hypersensitivity pneumonitis is characterized by general symptoms of inflammation (e.g., fever, chills, malaise), dyspnea, dry cough, and tachypnea. Chronic exposure leads to progressive fibrosis and pulmonary dysfunction characteristic of restrictive parenchymal disease.
TABLE 23.4 Common Atmospheric Pollutants Contributing to Lung Disease
Pollutant Source Clinical Manifestations Potential Disease Processes
Carbon monoxide Automobile exhaust (incomplete fossil fuel combustion)
Lethargy, impairs mental skills, cherry-red mucous membranes, headache
Hypoxemia, respiratory failure
Sulfur oxides Factories (corrosive, poisonous byproducts of combustion of sulfur-containing fuels)
Inflamed mucous membranes, eyes, upper respiratory tract, bronchial mucosa; cough
Pulmonary edema, bronchitis
Photochemical oxidants (ozone, hydrocarbons, or nitrogen oxides)
Byproduct of exposure of hydrocarbons and/or nitrogen oxides (from fossil fuel combustion with high temperatures) to sunlight
Inflammation of eyes, upper respiratory tract; cough
Tracheitis, bronchitis, pulmonary edema
Cigarette smoke Cigarettes (carbon monoxide, nicotine, “tars”) Impaired exercise tolerance, decreased mental activity, tachycardia, hypertension, sweating
Bronchial carcinoma, chronic bronchitis, emphysema, coronary heart disease
Particulate matter Factories/power stations; small particles, visible smoke and soot
Cough; dyspnea; itchy, watery eyes; irritated mucous membranes
Bronchitis, tracheitis, asthma
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respiratory diseases. The use of respirators and water sprays for miners to decrease airborne particles in mines are two prevention techniques. Early evaluation of a work environment predisposed to occupational lung diseases is where “treatment” must begin. Two primary goals in the management of active occupational lung diseases are to prevent further parenchymal damage and to relieve signs and symptoms, when possible. Ideally, if the problematic dust can be identified, the individual should be removed from the environment. However, if a job change is unrealistic, every possible measure must be implemented to prevent further inhalation of dust particles. Included in this treatment is the evaluation of current health maintenance behaviors. Treatment consists of corticosteroids, inhaled bronchodilators, oxygen therapy, and respiratory treatments (intermittent positive-pressure ventilation, postural drain- age, and deep breathing exercises). The effectiveness and utilization of these therapies depend on the patient’s condition and the stage of disease. Rarely are those pathologic conditions reversed with medical treatment.
particle inhaled individualizes the pathophysiologic response, the general response is similar in the context of occupational lung diseases. Silica is one of the most toxic particles to alveolar macrophages. Dense deposits of collagen material are formed around the silica particles, resulting in marked fibrotic tissue deposition and restrictive lung disease. Coal dust and asbestos initiate a similar, although less severe, response. The immune system, via T-cell and IgE mediation, leads to the development of sensitization and inflammation. This damage may lead to occupational asthma. The pathologic processes and clinical features for each of the major occupational lung diseases are summarized in Table 23.5.
Clinical manifestations. Pneumoconioses (anthracosis, asbestosis, silicosis) generally produce no symptoms in the early stages. Physical evidence of the disease occurs when the pulmonary circulation is impaired because of increased pulmonary vascular resistance or development of a pulmonary infection. Workers may remain symptom free for up to 10 to 20 years with chronic exposure. Once again, symptom manifestation is dependent on the predisposing factors. As pneumoconioses progress, patients present with a progressive, productive cough and dyspnea, especially with exercise. In addition, patients may complain of progressive weakness and fatigue. Clubbing of fingers may also be present. Late clinical features include chronic hypoxemia, cor pulmonale, and respira- tory failure.
Diagnosis. The reliability of pulmonary changes noted on chest radiographs varies with the severity of the disease. When the patient is symptom free, no changes may be noted. However, as the pneumo- conioses progress, micronodular mottling and haziness become apparent. In addition, nodules, fibroses, and calcifications resulting from dust particle deposition are noted. Pneumoconioses usually produce one of three radiographic findings: nodular, reticular, or linear. However, because of the insidious progression of occupational lung diseases, radiographs negative for lung disease do not exclude the presence of the disease process. Changes in pulmonary function tests demonstrate predominantly restrictive impairment (see Fig. 22.19) with a component of obstructive functional impairment, depending on the severity and type of dust inhalation.
Finally, hypoxemia is evident from arterial blood gas measurements in the late disease stages. Falling PaO2 levels are accompanied by decreased PaCO2 levels as the body initially compensates for the hypoxemia with an increased respiratory drive. However, as the disease progresses, both hypoxemia and hypercapnia are evident.
Treatment. The primary goal of therapy is to halt symptom pro- gression. Preventive measures are the key to limiting the onset and severity of occupational lung diseases. Adherence to federal standards for exposure to dust and particulate matter, as well as continuing education of workers and employers, could dramatically affect the incidence of
TABLE 23.5 Major Occupational Lung Pneumoconioses
Pneumoconioses Pathologic Findings Clinical Features
Anthracosis (coal miner’s lung) Early: Collection of coal particles with small amount of dilation of airway
Early: Minimal to no symptoms; may be seen with dyspnea with cough but often due to unrelated bronchitis or emphysema
Late: Progressive, massive fibrosis with condensed areas of black, fibrous tissue
Late: Worsening dyspnea on exertion, productive cough, respiratory failure
Silicosis Dense collagen deposits in respiratory bronchioles and alveoli and along lymphatics
Early: No symptoms noted Late: Productive cough, dyspnea, especially with exercise; increased risk
for tuberculosis Asbestosis Fibrous deposits secondary to long, thin fibers,
allowing deep lung penetration Progressive dyspnea on exertion, weakness, clubbing of fingers; pleural
thickening with plaque development
KEY POINTS • Occupational lung diseases result from chronic inhalation of gases and
inert particles. Commonly identified particles include coal, silica, and asbestos. Smoking and environmental pollutants may be contributing factors because they depress the ciliary function necessary to remove inhaled particles.
• The presence of inert particles in the alveoli initiates macrophage activity and inflammation. Inert particles cannot be digested by phagocytes, so they are walled off by deposition of fibrous proteins.
• Manifestations of pneumoconioses are related to the restrictive nature of pulmonary dysfunction. Progressive dyspnea, decreased vital capacity (VC) and functional residual capacity (FRC), and increased respiratory rate are common. Blood gas analyses show progressive hypoxemia; carbon dioxide levels may remain normal or low until late in the disease.
• Treatment includes prevention of further exposure and administration of corticosteroids, bronchodilators, and oxygen therapy.
ATELECTATIC DISORDERS
Acute (Adult) Respiratory Distress Syndrome Etiology. ARDS is characterized by damage to the alveolar–capillary
membrane. In the United States there are more than 150,000 cases per year. Mortality statistics range from 30% to 50%. Clinically, ARDS is
CHAPTER 23 Restrictive Pulmonary Disorders 505
(Box 23.1). The precise mechanism of lung injury is not known, but the common denominator appears to be increased permeability of the pulmonary vasculature and flooding of the alveoli with proteinaceous fluid, leading to the development of protein-rich pulmonary edema (noncardiogenic pulmonary edema). The acute lung injury triggers the immune system to activate the complement system and to initiate neutrophil sequestration in the lung (Fig. 23.2).
Pathogenesis. The pathogenic sequence of events in ARDS is shown in Fig. 23.2. The initial injury to the alveolar–capillary membrane may be caused by direct damage, as seen in aspiration of acidic gastric contents, or by indirect damage, as occurs in shock from any cause. Therapeutic interventions (high oxygen and overhydration) may act to compound the effects of the initial lung injury. The resulting injury leads to an increase in alveolar–capillary permeability, which results in interstitial and alveolar edema. The four characteristic pathophysiologic abnormali- ties of ARDS involve (1) injury to the alveoli from a wide variety of disorders (Box 23.1), (2) changes in alveolar diameter, (3) injury to the pulmonary circulation, and (4) disruptions in oxygen transport and utilization. Common findings in this type of injury include (1) severe hypoxemia caused by intrapulmonary shunting of blood; (2) a decrease in lung compliance; (3) a decrease in FRC; (4) diffuse, fluffy alveolar infiltrates on the chest radiograph; and (5) noncardiogenic pulmonary edema.
The mechanism by which the FRC is decreased appears to be the result of stiff, noncompliant lungs associated with the presence of alveolar edema and exudate that exaggerate surface tension forces. Early alveolar closure and continued closure lead to atelectasis and loss of lung volume. The decrease in lung compliance, often severe in ARDS, is reflected in the high ventilatory pressures required to deliver an adequate volume of air. It is thought that this decrease in lung compliance is due to loss or inactivation of surfactant, with subsequent increased recoil pressure of the lungs. In addition, proteinaceous fluid fills the alveoli and impairs ventilation. Fig. 23.3 shows alveolar damage attributable to dense proteinaceous debris, desquamated cells, and hyaline membranes. The decrease in PaO2 is a result of perfusion of large numbers of alveoli that are poorly ventilated (areas of low ventilation–perfusion ratio) or not ventilated (areas of shunt).
Clinical manifestations. The clinical features of ARDS usually include a history of a precipitating event that has led to a low blood volume state (“shock” state) 1 or 2 days before the onset of respiratory failure. The patient may complain of sudden marked respiratory distress. Early signs and symptoms include a slight increase in pulse rate, dyspnea, and a low PaO2. The initial presenting sign may be shallow, rapid breathing. With progression of the disease, the patient demonstrates tachycardia, tachypnea, hypotension, marked restlessness, decreased mental status, and production of frothy secretions. On auscultation of lung fields, crackles and rhonchi are heard. The patient may be using accessory muscles to breathe and demonstrating intercostal and sternal retractions. A late sign is cyanosis.
Diagnosis. The hallmark of ARDS is hypoxemia that is refractory to increasing levels of supplemental oxygen. Uncorrected hypoxemia is associated with hypotension, decreased urine output, respiratory and metabolic acidosis, and eventual cardiopulmonary arrest. Arterial blood gas determinations reveal hypoxia, acidosis, and hypercapnia. The chest radiograph may initially be normal, but progresses to a bilateral diffuse “whiteout” (Fig. 23.4) indicative of diffuse alveolar infiltrates. The infiltrates characteristically spare the costophrenic angles. Blood and urine cultures will help determine whether infection is the etiology. Pulmonary function tests show a marked decreased in FRC, decreased lung volumes, decreased lung compliance, and a ventilation–perfusion (V̇a/Q̇) mismatch with a large right-to-left shunt. Histologic changes
associated with a decline in the PaO2 that is refractory (does not respond) to supplemental oxygen therapy. Damage to the alveolar–capillary membrane causes widespread protein-rich alveolar infiltrates (visible on chest radiographs) and severe dyspnea. Patients who recover from the acute injury can expect to return to relatively normal lung function. Follow-up studies (9 months to 4 years) in ARDS survivors show a mild restrictive pulmonary function accompanied by cough, dyspnea, and excess sputum production. Some individuals continue to have abnormalities in diffusing capacity, oxygenation, and lung mechanics. ARDS is associated with severe trauma (20% cases), sepsis (more than 40% of cases with 90% mortality), aspiration of gastric acid (more than 30% of cases), fat emboli syndrome, and shock from any cause
Shock (any process leading to a low blood flow state) • Infectious causes • Sepsis syndrome (primarily from gram-negative bacteria) with or without
sustained hypotension (>40% cases) • Pneumonia (viral, bacterial, fungal, mycobacterial) • Miliary tuberculosis • Bronchiolitis obliterans—organizing pneumonia Trauma: pulmonary contusion Embolism • Fat emboli • Air emboli • Thrombus formation • Amniotic fluid embolism Head injury (increased intracranial pressure) Aspiration (>30% of cases) • Gastric contents • Drowning (fresh/salt water) Drug overdose • Heroin • Methadone • Propoxyphene • Barbiturates, salicylates, thiazides, colchicine Inhaled toxins • Smoke inhalation • High concentrations of oxygen (iatrogenic) • Corrosive chemicals (ammonia, sulfur dioxide, chlorine, nitrogen dioxide) • Free-base cocaine smoking Hematologic disorders • Disseminated intravascular coagulation • Massive blood transfusion • Postcardiopulmonary bypass • Thrombotic thrombocytopenic purpura Metabolic disorders • Pancreatitis • Uremia • Paraquat (toxic weed killer) ingestion Burns Cancer Anaphylaxis Eclampsia Radiation pneumonitis High-altitude exposure
BOX 23.1 Major Disorders Associated With ARDS
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levels of 1.0 (100%). The goal is to keep the PaO2 value above 60 mm Hg. Because of increased permeability of the alveolar–capillary membrane, excessive fluid administration can produce or intensify pulmonary edema. High-frequency jet ventilation, inverse ratio ventilation, and inhaled nitric oxide administration have also been used to treat ARDS. ARDS can be prevented experimentally by blocking systemic inflammatory cells. Numerous agents have been investigated but mortality remains high.
found on open lung biopsy reveal atelectasis, hyaline membranes, cellular debris, and interstitial and alveolar edema (see Fig. 23.3).
Treatment. The management of ARDS entails identifying the under- lying cause, addressing the cause (e.g., sepsis), maintaining fluid and electrolyte balance, and providing adequate oxygenation with the use of a volume ventilator utilizing pressure support and positive end-expiratory pressure (PEEP). Patients may require fraction of inspired oxygen (FIO2)
Alveolar-Capillary Membrane Injury (Hallmark of Syndrome)
Tissue trauma
↑ Platelet aggregability and sequestration of platelets in the lung, release of platelet-derived growth factor and platelet-activating factor, which cause platelets to release proteases and kallikrein
Microemboli in the pulmonary vessels
Activated neutrophils release serotonin, bradykinin histamine, and thromboxane A2 and lead to generation of free oxygen radicals, prostaglandins, thromboxane, and leukotrienes
Pulmonary platelet trapping and coagulation activation
↓ Alveolar and/or airway filling
Consequences:
↓ Capillary pressure with occlusion of vessel
Type I alveolar epithelial defects:
Swollen capillary endothelium of cells
Widened interendothelial junctions (leaky capillaries)
Disrupted basement membrane
Disorganized collagen in the interstitium
Paralysis of ciliary action
↓ FRC ↑ Intrapulmonary shunting ↓ Lung compliance ↑ Alveolar dead space Loss of hypoxic vasoconstriction
Hyaline membrane formation
Atelectasis
Pulmonary edema
Alveolar cell hypertrophy
Damage to mitochondria of type II cells
↑ Permeability of endothelium and epithelium
Damage to type II pneumocytes and type I alveolar cells
↑ Interstitial and alveolar edema Decreased surfactant
High FIO2
Overhydration
FIG 23.2 Pathogenesis of acute respiratory distress syndrome. FRC, Functional residual capacity.
CHAPTER 23 Restrictive Pulmonary Disorders 507
FIG 23.3 Diffuse alveolar damage (acute respiratory distress syndrome) shown in photomicrograph. Some of the alveoli are collapsed; others are distended. Many contain dense proteinaceous debris, desquamated cells, and hyaline membranes (arrow). (From Ichikado K: High-resolution computed tomography findings of acute respiratory distress syndrome, acute interstitial pneumonia, and acute exacerbation of idiopathic pul- monary fibrosis. Semin Ultrasound CT MR 2014;35(1):39–46.)
KEY POINTS • Acute respiratory distress syndrome (ARDS) causes profound hypoxemia
and a greatly increased work of breathing, often requiring mechanical ventilation and high-level oxygen therapy to maintain the PaO2 value greater than 60 mm Hg.
• ARDS occurs in association with other pathophysiologic processes, such as trauma, sepsis, or shock. These disorders increase the risk of development of disseminated pulmonary inflammation leading to ARDS. ARDS is associated with a death rate that ranges from 30% to 50%.
• ARDS is a consequence of widespread pulmonary inflammation leading to three major pathophysiologic processes: 1. Noncardiogenic pulmonary edema associated with “leaky” pulmonary
capillaries 2. Atelectasis associated with lack of surfactant (surfactant normally decreases
surface tension in small alveoli and prevents them from collapsing) 3. Fibrosis (hyaline membranes) associated with inflammatory deposition
of proteins • ARDS is associated with profound alterations in pulmonary function, including
decreased VC, decreased FRC, decreased compliance, and decreased tidal volume. Respiratory rate is increased, and symptoms of tissue hypoxia may be apparent.
• Noncardiogenic pulmonary edema is evident as “whiteout” on chest radiograph. Crackles and wheezing may be heard throughout the chest. Profound dyspnea and the use of accessory muscles for breathing are common. Atelectasis and pulmonary edema result in right-to-left pulmonary shunting. Blood gas determinations show hypercarbia and hypoxemia, which do not improve significantly with oxygen therapy.
• Therapy is mostly supportive—to enhance tissue oxygenation until the inflammatory process resolves. Mechanical ventilation with positive end- expiratory pressure (PEEP) and supplemental oxygen is the mainstay of therapy. PEEP is used to increase FRC and prevent alveolar collapse at end expiration. PEEP may also force edema fluid out of the alveoli. High levels of oxygen (>60%) may contribute to ARDS because of absorption atelectasis. The FIO2 value should be reduced as soon as possible.
FIG 23.4 Chest radiograph of a 28-year-old man who was involved in an automobile accident. The patient presented with multiple bilateral rib fractures and bilateral pneumothorax. Within 24 hours, severe acute respiratory distress syndrome developed (note diffuse “whiteout”).
Infant Respiratory Distress Syndrome Etiology. IRDS, also known as hyaline membrane disease, has features
similar to those of ARDS. It is a syndrome of premature neonates, characterized by hemorrhagic pulmonary edema, patchy atelectasis, and hyaline (glassy) membranes. Hypoxemia that is refractory to increasing levels of oxygen supplementation is the hallmark of the syndrome. The incidence is 60% in infants less than 30 weeks’ gestation without antenatal steroids and 35% in those receiving antenatal steroids. The incidence in
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the lungs is also seen on chest x-ray. Measurement of the lecithin/ sphingomyelin (L/S) ratio and the desaturated phosphatidylcholine concentration in amniotic fluid may be done to determine the ability of the fetus to secrete surfactant. An L/S ratio of ≥2 : 1 (3 : 1 in mothers with diabetes) is a reliable indicator of mature lungs. The presence of phosphatidylglycerol in the amniotic fluid is indicative of pulmonary maturity. Administration of glucocorticoids before delivery may stimulate lung maturation and improve the L/S ratio.
Treatment. Prevention of IRDS is aimed at the use of antenatal steroids that significantly increase respiratory compliance (about 23%) and decrease the risk of development of IRDS. The mainstay of therapy is mechanical ventilation with PEEP or continuous positive-airway pressure. Prevention is a primary goal. The therapeutic goal is to maintain adequate oxygen levels between 50 and 70 mm Hg. The lowest FIO2 settings should be used to maintain adequate arterial oxygen levels. High FIO2 (100%) delivered for extended periods may result in further alveolar damage, primary persistent pulmonary hypertension, and retrolental fibroplasia (failure of the peripheral retina to vascularize, leading to blindness). Exogenous surfactant (bovine, porcine, or synthetic) administration to premature infants has decreased the death rate in IRDS by 50%. Surfactant decreases surface tension, thereby reducing the amount of pressure required to open the alveoli. High-frequency ventilation has proved to be effective in infants with severe IRDS by providing more uniform lung inflation, improving lung mechanics, and enhancing gas exchange. Infants receiving high-frequency ventilation require lower mean airway pressures and have better gas exchange than those ventilated conventionally. General supportive therapy of adequate intravenous nutrition, fluid and electrolyte balance, minimal handling, and a neutral thermal environment should be maintained. Broad- spectrum antibiotics are prescribed for infections after cultures have been done or prophylactically until blood cultures prove negative.
infants older than 34 weeks is 5%. High-risk factors include birth earlier than 25 weeks’ gestation; birth at advanced gestational age; poorly controlled diabetes in the mother; deliveries after antepartum hemor- rhage; cesarean section without antecedent labor; or the presence of perinatal asphyxia, multiple births, previous infant with respiratory distress syndrome, and Rh factor incompatibility. The increased risk of respiratory morbidity may be due to lack of hormones associated with labor. During normal labor there is a decrease in secretion of fetal lung liquid and an increase in absorption of lung liquid. Labor also stimulates the release of surfactant. During normal labor there is an increase in catecholamine release. Loss of labor-induced catecholamine release may put the neonate at increased risk of respiratory morbidity.
Pathogenesis. The primary cause of IRDS is a lack of pulmonary surfactant, leading to increased alveolar surface tension and decreased lung compliance. Surfactant, a phospholipid, is produced by type II alveolar cells in increasing quantities after 32 weeks’ gestation. With IRDS, lung compliance is decreased to one-fifth to one-tenth of normal. The neonate with IRDS must generate high intrathoracic pressures (25 to 30 mm Hg) to maintain patent alveoli. The premature neonate has a soft, compliant chest that is drawn inward with each inspiratory contraction of the diaphragm, making it difficult to maintain the high pressures needed to ensure adequate oxygenation. The end result from increased work of breathing and decreased ventilation is progressive atelectasis, increased pulmonary vascular resistance, profound hypoxemia, and acidosis. Surfactant also functions to maintain pulmonary fluid balance. Alteration of surface tension forces, normally maintained by surfactant, causes further leakage of proteinaceous fluid into the alveoli. This fluid contains fibrin and cellular debris, which causes hyaline membrane formation. Surfactant normally decreases surface tension in the alveolus during expiration, allowing the alveolus to remain partially open, thus maintaining FRC. A secondary cause of IRDS is immaturity of the capillary blood supply, which leads to V̇a/Q̇ mismatch, thus adding to the problems of hypoxemia and metabolic acidosis. In addition, a right-to-left shunt from an open foramen ovale or patent ductus arteriosus may increase the hypoxemia. Histologically, there is progressive damage to the basement membrane and respiratory epithelial cells. With increasing edema and loss of epithelial cells, patchy areas of atelectasis develop. Cellular damage from the disease process, excess fluid administration, and high values of FIO2 lead to increased capillary permeability and leakage of high-protein fluid into the alveoli.
Clinical manifestations. The typical neonate presents with shallow respirations; intercostal, subcostal, or sternal retractions; diminished breath sounds; flaring of nares; hypotension; peripheral edema; low body temperature; oliguria; tachypnea (60 to 120 breaths/min); and bradycardia. Late findings include frothy sputum, central cyanosis, and an expiratory grunting sound. Nasal flaring is a physiologic response mechanism used to increase airway diameter in an attempt to overcome airway resistance. An expiratory grunt is a physiologic response mecha- nism reflecting an attempt to create a physiologic PEEP by exhaling against a partially closed glottis. Paradoxical respirations (“see-saw” movement of the chest wall) may also be noted, indicating increased work of breathing. During the first 48 to 72 hours of life, neonates with IRDS need progressively higher levels of FIO2 to maintain adequate (50 to 70 mm Hg) oxygen levels. Inspired oxygen should be adjusted to maintain a saturation of 85% to 94%. As work of breathing increases and oxygen levels decrease, metabolic acidosis may occur.
Diagnosis. Initial arterial blood gas determinations reveal hypoxemia and metabolic acidosis attributable to lactic acid formation by hypoxic tissues. As the disease progresses, hypercapnia and respiratory acidosis develop. Chest radiographs progress from normal, shortly after birth, to a diffuse whiteout or ground-glass appearance indicative of diffuse bilateral atelectasis and alveolar edema. Generalized hypoinflation of
KEY POINTS • The symptoms of infant respiratory distress syndrome (IRDS) are similar to
those of acute (adult) respiratory distress syndrome (ARDS). IRDS occurs most commonly in premature infants born before adequate development of their surfactant-producing pneumocytes (25 weeks’ gestation). The maturity of surfactant-producing cells can be estimated from the L/S ratio in amniotic fluid. An L/S ratio of less than 2 : 1 is associated with a higher risk of IRDS.
• Lack of surfactant causes atelectasis and increased work of breathing as a result of high alveolar surface tension. Leakage of inflammatory exudate into the alveoli results in formation of hyaline membranes.
• Symptoms of IRDS include nasal flaring, expiratory grunt, thoracic retractions, and rapid, shallow respirations. Chest radiographs demonstrate a “whiteout.” As in ARDS, blood gas values are poor, indicating severe hypoxemia and acidosis.
• Therapy for IRDS includes supportive measures, such as mechanical ventilation with PEEP or continuous positive-airway pressure, and use of supplemental oxygen, as well as specific measures to increase alveolar surfactant levels.
PLEURAL SPACE DISORDERS
Pneumothorax Etiology. Spontaneous pneumothorax (SP) is characterized by the
accumulation of air in the pleural space. A primary pneumothorax is classified as spontaneous, occurring mainly in tall, thin men between ages 20 and 40 years without underlying disease factors. Cigarette smoking increases the risk of SP. A secondary pneumothorax occurs as a result of complications from preexisting pulmonary disease (such as asthma, emphysema, cystic fibrosis, infectious disease [pneumonia or TB], or interstitial lung disease). In the United States there are approximately
CHAPTER 23 Restrictive Pulmonary Disorders 509
cannot escape during expiration, leading to a shift of the mediastinum (contents of the septum between the two lungs) and the trachea.
Clinical manifestations. The clinical features of pneumothorax include tachycardia, decreased or absent breath sounds on the affected side, hyperresonance, sudden chest pain on the affected side (90%), and dyspnea (80%), Small pneumothoraces (less than 20%) are usually not detectable on physical examination. Tension pneumothorax and a large SP are emergency situations, with patients presenting with severe tachycardia, hypotension, a tracheal shift to the contralateral side, neck vein distention, hyperresonance, and subcutaneous emphysema. Fig. 23.6 shows severe subcutaneous emphysema (air in the tissues attributable to tracheobronchial rupture).
Diagnosis. The typical chest radiograph shows depression of the hemidiaphragm on the side of the pneumothorax and a pleural line with absence of vessel markings peripheral to this line. Chest radiography should be done with the patient standing. Expiratory films show a better demarcation of the pleural line than inspiratory films. Diagnosis may be based on clinical features without radiographic confirmation. However, a chest radiograph is usually obtained. A chest radiograph in tension pneumothorax shows a mediastinal shift (Fig. 23.7). The electrocardiogram may show axis deviations, nonspecific ST-segment changes, and T wave inversion. Arterial blood gas analysis shows a decreased PaO2 and acute respiratory alkalosis.
20,000 new cases annually. SP is six times more common in men than in women. A specific category of secondary pneumothorax associated with menstruation is called catamenial pneumothorax (pathogenesis unknown). A catamenial pneumothorax occurs primarily in the right hemothorax and is associated with endometriosis. A third classification (tension pneumothorax) is traumatic in origin, resulting from penetrating or nonpenetrating injury. A tension pneumothorax is a medical emer- gency. Other examples of traumatic pneumothorax have iatrogenic causes, such as placement of central lines, thoracentesis (6%), percutane- ous lung biopsy, and mechanical ventilation.
Pathogenesis. Primary SP (Fig. 23.5) results from rupture of small subpleural blebs in the apices. When air enters the pleural space, the lung collapses and the ribcage springs out. The subpleural blebs are believed to occur in the apices as a result of negative mechanical pressures in the upper third of the upright lung field. Secondary pneumothorax occurs as a result of complications from an underlying lung problem and may be due to rupture of a cyst or bleb. Tension pneumothorax (see Fig. 23.5) results from the buildup of air under pressure in the pleural space. Air enters the pleural space during inspiration but cannot escape during expiration. The lung on the ipsilateral (same) side collapses and forces the mediastinum toward the contralateral (opposite) side, thus decreasing venous return and cardiac output (see Fig. 23.5). With an open, “sucking” chest wall wound, air enters during inspiration, but
Inspiration
TENSION PNEUMOTHORAX
SPONTANEOUS PNEUMOTHORAX
Expiration
Pressure
Air
Air
Air
FIG 23.5 Top, Spontaneous pneumothorax. Bottom, Tension pneumothorax: air builds up under pressure, leading to collapse of the ipsilateral lung and shift of the mediastinum to the contralateral side.
510 UNIT VI Respiratory Function
Treatment. The management of pneumothorax depends on the severity of the problem and the cause of the air leak. If the lung collapse is less than 15% to 25%, the patient may or may not be hospitalized. Typically, the patient is treated symptomatically. A nonhospitalized patient should be monitored closely. The expectation is for complete resolution within several weeks. If the collapse is greater than 15% to 25%, chest tube placement with water seal and suction is recommended. Also, 100% oxygen should be administered to reduce the partial pressure of nitrogen in pleural capillaries, thus quadrupling the rate of pneu- mothorax absorption. Chemical pleurodesis may be indicated for patients with recurrent SP to promote adhesion of the visceral pleura to the parietal pleura to prevent further ruptures. Patients with a previous pneumothorax should be warned about a possible recurrence at high altitudes, from scuba diving, and from smoking. A thoracotomy may be performed on patients in whom further SP and blebs develop. Surgery permits stapling or laser pleurodesis of ruptured blebs. Smoking cessation should be advised. Approximately 25% to 50% of patients with primary pneumothorax will have a recurrence within 1 year.
Pleural Effusion Etiology. Pleural effusion is not a disease, but a pathologic collection
of fluid or pus in the pleural cavity as a result of another disease process. Normally, about 17 mL of serous fluid is contained in the pleural space. There is a constant movement of pleural fluid from parietal pleural capillaries to the pleural space, which is then reabsorbed into the parietal pleural lymphatics. The pleural membrane is a porous, mesenchymal, serous membrane that allows for movement of interstitial fluid. The fluid has a mucoid characteristic allowing for easy movement of the lungs. The five major types of pleural effusion are: (1) transudates, (2) exudates, (3) empyema attributable to infection in the pleural space, (4) hemothorax or hemorrhagic pleural effusions, and (5) chylothorax or lymphatic pleural effusions.
Transudates have low concentrations of both protein (ratio of pleural fluid protein to serum protein is less than 0.5) and lactate dehydrogenase (LDH; pleural fluid LDH/serum LDH ratio less than 0.6) and have a specific gravity below 1.016. Transudates are frequently associated with severe heart failure or other edematous states, such as cirrhosis with ascites, nephrotic syndrome, and myxedema.
Exudates have high concentrations of both protein (>0.5 mg/dL) and LDH (pleural fluid LDH/serum LDH ratio >0.6). Common causes of exudates are malignancies, infections (especially pneumonia), pul- monary embolism, sarcoidosis, post–myocardial infarction syndrome, and pancreatic disease. Empyema is a high-protein exudative effusion resulting from infection in the pleural space. Hemothorax (the presence of blood in the pleural space) is often the result of chest trauma. Hemorrhagic pleural effusion contains a mixture of blood and pleural fluid. If the hematocrit of the fluid is greater than 50% of the hematocrit of peripheral blood, the fluid collection is called a hemothorax. Chylo- thorax or chylous pleural effusion is an exudative process that develops from trauma as a result of leakage of chyle (lymph fluid) from the thoracic duct or from rheumatoid pleural effusion or tuberculous pleuritis.
Pathogenesis. Pathophysiologic changes associated with the various types of effusions relate to changes in pleural capillary hydrostatic pressure, colloid oncotic pressure, or intrapleural pressure. Transudates can be caused by increased hydrostatic or decreased oncotic pressure. Exudates are associated with increased production of fluid as a result of increased permeability of the pleural membrane (inflammation) or impaired lymphatic drainage. The imbalance in these pressures is associated with fluid formation exceeding fluid removal.
Clinical manifestations. Clinical features vary depending on the cause and size of the effusion. Small effusions may be asymptomatic
FIG 23.6 Subcutaneous emphysema (air in the tissues) from tracheo- bronchial disruption and injuries of the esophagus. (From Kirsh MM, Sloan H: Blunt chest trauma: general principles and management, Boston, 1977, Little, Brown, p 109.)
FIG 23.7 Upright posteroanterior chest radiograph showing a right-sided tension pneumothorax. Note marked deviation of trachea and cardiac silhouette into the left side of the chest. There is also depression of the right hemidiaphragm. (From Kirsh MM, Sloan H: Blunt chest trauma: general principles and management, Boston, 1977, Little, Brown, p 62.)
CHAPTER 23 Restrictive Pulmonary Disorders 511
Patients with minor symptoms present with fever, headache, vomiting, diarrhea, constipation, and sore throat. Respiratory muscle function generally recovers, although occasionally patients have chronic respiratory insufficiency from previous disease. As the result of mass vaccination of populations, new cases are quite rare and usually occur in unvaccinated immigrants. Currently, only Pakistan and Afghanistan have new cases of polio.
Amyotrophic Lateral Sclerosis Amyotrophic lateral sclerosis (ALS) is a degenerative disease of the nervous system that involves both upper and lower motor neurons. ALS occurs in males more than in females (2 : 1) and has a prevalence of 0.5 to 2 cases in 100,000 persons. Onset is often between the ages of 50 and 70 years. Only 5% of ALS cases are familial. Commonly, muscles innervated by both spinal nerves and cranial nerves are affected. Clinically, progressive muscle weakness and wasting develop, eventually leading to profound weakness of respiratory muscles and death. Although the course of the disease is variable from patient to patient, the natural history is one of irreversibility and progressive deterioration (see Chapter 45).
Muscular Dystrophies Duchenne muscular dystrophy is a hereditary disease, passed from mothers to sons (X-linked recessive) and occurs in 1 per 3500 male births. The disease is characterized by progressive muscular weakness, initially in the lower extremities, and wasting. In later years (twenties to thirties), respiratory muscles become involved, leading to hypoxia, hypercapnia, and frequent respiratory tract infections (see Chapter 51).
Guillain–Barré Syndrome Guillain–Barré syndrome, also called acute polyneuritis, is a disorder that is presumed to have an immunologic basis and occurs in 0.6 to 1.9 cases per 100,000 persons. Infection involving Campylobacter jejuni often precedes the diagnosis. Guillain–Barré syndrome is characterized by demyelination of peripheral nerves. Frequently, patients have a history of recent viral or bacterial illness followed by development of ascending paralysis. Clinically, weakness and paralysis begin symmetrically in the lower extremities and progress or ascend proximally to the upper extremities and trunk. In severe cases, respiratory muscle weakness accompanies limb and trunk symptoms. Generally, the natural history of the disease leads to full recovery in 62% of patients. Mortality is about 5% to 10% worldwide (see Chapter 45).
Myasthenia Gravis Patients with myasthenia gravis experience weakness and fatigue of voluntary muscles, most frequently those innervated by cranial nerves, but peripheral and respiratory muscles can also be affected. The hallmark of the disorder is weakness made worse by exercise and improved by rest. The incidence in the United States is 10 to 20 cases per year per 1 million persons. Females are more affected than males (3 : 2). The primary abnormality is found at the neuromuscular junction, where transmission of impulses from nerve to muscle is impaired by a decreased number of receptors on the muscle. Although myasthenia gravis is a chronic illness, the manifestations can often be managed by appropriate therapy, and individual episodes of respiratory failure are potentially reversible. Respiratory failure in this disorder can be due to increasing severity of illness or overmedication (see Chapter 51).
Chest Wall Deformities Kyphoscoliosis
Etiology. Kyphoscoliosis may develop from an unknown cause (80% to 90% cases) (idiopathic) or may be related to congenital (Pott disease) or neuromuscular disease (muscular dystrophy, Marfan syndrome,
(which is common) in patients with less than 290 mL of fluid in the pleural cavity. General features include dyspnea, pleuritic pain that is sharp and worsens with inspiration, dry cough, decreased chest wall movement, absence of breath sounds, dullness to percussion, and decreased tactile fremitus over the affected area. The most useful physical findings are dullness to percussion and tactile fremitus. A massive pleural effusion may lead to a contralateral tracheal shift.
Diagnosis. Thoracentesis should be done to analyze the fluid and to reduce the amount in the pleural cavity. Evaluation of the pleural fluid is done to determine its characteristics, which acts as an additional indicator of its origin. Pleural fluid should be analyzed for chemistry (pH, LDH, and glucose) and presence of pathogenic bacteria. Chest radiography should be done to detect pleural-based densities, infiltrates, signs of congestive heart failure, hilar adenopathy, and loculation of fluid. Once 200 mL of fluid forms, the effusion is visible radiographically. Computed tomography and ultrasonographic tests assist in the diagnosis of complicated effusions and distinguish a mass from a large effusion. Ultrasonography is also useful for thoracentesis guidance.
Treatment. Treatment is directed at the underlying cause of the effusion and relief of symptoms. Closed chest tube drainage in adults or thoracentesis is indicated if the effusion is large. Closed chest drainage in pediatric cases is controversial. A thoracotomy to control bleeding may be required in patients with excessive bleeding (more than 200 mL/hr).
KEY POINTS • The pleural space is usually a potential space, containing only a small
amount of fluid for lubrication. Accumulations of air (pneumothorax), pus (empyema), blood (hemothorax), lymph (chylothorax), or transudate in the pleural space can restrict lung expansion.
• Tension pneumothorax occurs when pleural air progressively accumulates and develops a positive pressure in the pleura. The ipsilateral (same side) lung collapses, and mediastinal structures (trachea, heart) are shifted to the opposite side. Breath sounds are diminished or absent on the affected side.
• Tension pneumothorax and a large, simple (spontaneous) pneumothorax are medical emergencies requiring treatment to remove pleural air and reexpand the lung. This usually requires insertion of a chest tube. Chemical pleurodesis may be done in persons prone to spontaneous pneumothorax (SP).
• A number of disease processes may result in accumulation of fluid in the pleural space. Analysis of the type of fluid (e.g., transudates, exudates, blood, pus) indicates the underlying disease process. General manifestations include dyspnea, cough, pleuritic pain, and diminished breath sounds and dullness to percussion over the effusion.
NEUROMUSCULAR, CHEST WALL, AND OBESITY DISORDERS Neuromuscular Disorders Diseases affecting the muscles of respiration or their nerve supply can lead to dyspnea and respiratory failure. Table 23.6 summarizes the features of these disorders.
Poliomyelitis Poliomyelitis is a viral disease in which the poliovirus attacks motor nerve cells of the spinal cord and brainstem. The incidence of polio- myelitis in the United States is approximately eight cases per year. All of these cases have been related to the oral polio vaccine. The diaphragm and intercostal muscles can be affected, resulting in weakness or paralysis and respiratory failure. At least 95% of infections are asymptomatic.
512 UNIT VI Respiratory Function
is commonly because of osteoporosis. Curvatures of less than 20 degrees should be monitored on a regular basis. A postural exercise program for mild scoliosis and external braces for moderate scoliosis are recom- mended. For more advanced cases with curvatures greater than 40 degrees, electrical stimulation of the paraspinal muscles, spinal fusion, and spinal instrumentation (Harrington rod) placement for surgical stabilization are recommended treatments. Curvatures of greater than 60 degrees correlate with poor pulmonary function in later life.
Ankylosing Spondylitis Etiology. Ankylosing spondylitis occurs in both genders (male/female
ratio of 3 : 1) and is commonly seen in the age range of 15 to 35 years of life. It is characterized by chronic inflammation at the site of liga- mentous insertion into the spine or sacroiliac joints. The precise cause is unknown; however, infectious sources are seen in some cases. Ninety percent of patients with the disease have a positive HLA-B27 antigen (Chapter 10). The respiratory system is affected by limited chest expansion and by the formation of pulmonary fibrosis in the upper lobes, which later develops into bronchiectasis and cavitation. Transient acute arthritis of the peripheral joints occurs in about 50% of cases.
Pathogenesis. Ankylosing spondylitis is a progressive inflammatory disease leading to immobility of the vertebral joints and fixation of the ribs. The inflammatory process, with tumor necrosis factor playing a crucial role, affects the articular processes, costovertebral joints, and
neurofibromatosis, Friedreich ataxia, or poliomyelitis). Most idiopathic cases of scoliosis are found in adolescents (11 years or older). The female-to-male ratio is 4 to 5 : 1.
Pathogenesis. Commonly, a bony deformity of the chest wall occurs as a result of kyphosis (hunchback appearance; posterior curvature deformity) and scoliosis (lateral curvature deformity) (Fig. 23.8). The higher the deformity in the vertebral column, the greater the compromise of respiratory function. Lung volumes are compressed, leading to atelectasis, V̇a/Q̇ mismatch, and hypoxemia.
Clinical manifestations. Common clinical features include dyspnea on exertion; rapid, shallow breathing; and chest wall deformity as evidenced by ribs protruding backward, flaring on the convex side, and being crowded on the concave side. Hypoxemia develops later, and eventually carbon dioxide retention occurs.
Diagnosis. Diagnostic findings include hypercapnia, hypoxemia (due to V̇a/Q̇ mismatch), and decreased lung volumes and lung capacities as evidenced by decreased values on pulmonary function tests. Also noted are increased pulmonary arterial pressures because of the associated pulmonary hypoxemia. Radiographs show accentuated bony curves. Screening for scoliosis and kyphoscoliosis in school-aged children has proved to be an excellent method of early diagnosis of these conditions.
Treatment. Treatment depends on the severity of the deformity and the age of the patient. Kyphosis in elderly persons, especially women,
TABLE 23.6 Neuromuscular Disorders Affecting the Respiratory System
Disease Etiology Pathophysiology Clinical Features
Poliomyelitis (myelitis is inflammation of spinal cord)
Develops from an enteral virus acquired by ingestion or respiratory droplet
After a 1- to 3-week period, virus invades intestinal blood supply; once in circulation, virus invades all areas of body; invasion of central nervous system leads to neural damage and initiation of an inflammatory reaction
General symptoms are tremors, muscle weakness; bulbar poliomyelitis affects respiratory muscle nerves, leading to respiratory paralysis; patients usually exhibit shoulder girdle paralysis first, followed by intercostal and diaphragm muscle paralysis; paralysis may be rapid or slowly progressive; also seen are diplopia, facial weakness, dysphagia, difficulty chewing, nasal voice, and loss of gag reflex
Amyotrophic lateral sclerosis
Cause unknown; current theories include autoimmune disease and a slow virus
Affects anterior horn cells of both upper and lower motor neurons
Progressive weakness affecting distal more than proximal muscles; atrophy, fasciculations, and spasticity are noted; involvement of respiratory muscles leads to respiratory dysfunction requiring mechanical ventilation
Muscular dystrophies (most common is Duchenne type)
Hereditary disease (X-linked recessive) passed from mothers to sons
Progressive muscular weakness noted initially in lower extremity muscles; in later years (twenties and thirties) respiratory muscles become involved; patients are at risk for respiratory tract infections
Progressive muscular weakness and wasting; skeletal deformities are also common; involvement of respiratory muscles (diaphragm, intercostals, and accessory muscles) leads to hypoxia and hypercapnia
Guillain–Barré syndrome (acute idiopathic polyneuropathy)
Exact cause unknown, but thought to be an autoimmune disease triggered by a viral infection
Disease usually follows an infection or vaccination; peripheral nerves are affected, leading to neural inflammation, demyelination, and axon destruction
Progressive weakness and loss of motor function beginning in feet and legs and ascending upward; sensory loss may also be noted but is not as dramatic as motor loss; loss of respiratory muscle control leads to respiratory failure, which frequently requires mechanical ventilation; autonomic nervous system symptoms may also be noted (tachycardia, dysrhythmias, hypotension or hypertension, loss of ability to sweat)
Myasthenia gravis Considered an autoimmune disease with both humoral (B cell) and cell-mediated (T cell) components
Autoantibodies and T cells bind to and damage acetylcholine receptors, leading to decreased functioning of receptors
Common symptoms are diplopia, ptosis, difficulty swallowing, increased weakness with activity, nasal voice, slurred speech, and weakness of proximal extremities; as disease progresses, respiratory muscles become involved, leading to respiratory failure; pneumonia may result from respiratory failure and immobility
CHAPTER 23 Restrictive Pulmonary Disorders 513
Clinical manifestations. Patients present after a trauma with para- doxical motion of the chest wall, either unilateral or bilateral. The injury to the chest wall is identified by careful inspection and palpation. Common features are marked shortness of breath, pain on inspiration, hypotension, cyanosis, and hypoxemia. The arterial PO2 value is often low before clinical symptoms appear. Pneumothorax, hemothorax, and subcutaneous emphysema are common (see Fig. 23.5).
Diagnosis and treatment. Serial blood gas results help determine the treatment regimen. Flail chest with large segments resulting in acute respiratory failure is managed with mechanical ventilation. Mechanical ventilation is achieved by positive pressure, which causes the entire chest, including the flail section, to move as a unit rather than paradoxi- cally. Pain management may be accomplished by continuous epidural anesthesia.
Disorders of Obesity Etiology. Obesity is defined as excessive body fat, with a body mass
index (BMI) greater than 30 kg/m2 based on body weight and height. Overweight is defined as a BMI of 25 to 29.9 kg/m2. Obesity results from excessive caloric intake and/or reduced caloric expenditure. The National Health and Nutrition Examination Survey (NHANES) reported that 60% of men and 50% of women are overweight. The findings for obesity were 20% of men and 25% of women. A higher prevalence of obesity was found in blacks than in whites and in persons with lower incomes than in those with higher incomes. Obese patients are at risk for a variety of disorders, the most common of which are diabetes mellitus, coronary artery disease, degenerative joint disease, gallstones, certain cancers (colon, rectum, and prostate in men; uterus, biliary tract, breast, and ovary in women), and pulmonary impairment. Approximately 60% of persons with obesity have metabolic syndrome. Persons with a BMI of ≥30 kg/m2 have an all-cause increase in mortality of 50% to 100% compared with persons with a BMI between 20 and 25 kg/m2.
Pathogenesis. Endocrine causes of obesity are rare. Only 4% to 6% of human obesity is thought to be due to single gene mutations. Hypothyroidism, the use of corticosteroids, and hypothalamic lesions all can lead to weight gain; however, the major cause of obesity is excess caloric intake in relation to caloric expenditure. Several hormones act on brain receptors to regulate appetite and metabolism. Leptin binds to brain receptors, causing the release of neuropeptides that promote satiety and increase metabolic rate. Ghrelin (a hunger hormone) stimulates appetite. Genetic diseases such as familial partial lipodystrophy, Prader–Willi syndrome, Laurence–Moon syndrome, Bardet–Biedl syndrome, and
sacroiliac joints by inducing a fibrotic response leading to joint calcifica- tion, ligament ossification, and skeletal immobility.
Clinical manifestations. Initial symptoms include low to middle back pain and stiffness that is more severe after prolonged rest. With exercise, the pain and stiffness decrease. As the disease process advances, ribcage movement is greatly reduced, leading to restrictive lung dysfunction.
Chest wall muscular atrophy is common and leads to further restric- tion of ribcage expansion. Breathing is largely accomplished by excursion of the diaphragm as the ribcage becomes immobilized. Associated problems seen with the disease include arthritis, uveitis, spondylitic heart disease, pulmonary fibrosis, and polyarteritis.
Diagnosis. Pulmonary function tests show decreased VC, decreased TLC, and decreased compliance of the respiratory system, mainly the chest wall. Radiographs show destruction of cartilage, erosion of bone, calcification, and bony bridging of joint margins. The earliest radiologic changes are usually seen in the sacroiliac joints. Laboratory findings, although not diagnostic of the disease, include an elevated sedimentation rate in 85% of cases, as well as a decreased red blood cell count and an increased white blood cell count. HLA-B27 antigen is seen in 90% of white patients and 50% of black patients. However, 8% to 10% of the normal population have a positive HLA-B27.
Treatment. General therapy includes development of an exercise program that comprises breathing exercises and mobility exercises with spinal extension training. Pharmacologic management with nonsteroidal antiinflammatory agents (full dose, continuous therapy) provides symptomatic relief of pain and stiffness and promotes function.
Flail Chest Etiology. Flail chest results from multiple rib fractures as a result
of trauma to the chest wall. The ribs are fractured at two distant sites, resulting in an unstable, free-floating chest wall segment that moves paradoxically inward on inspiration and outward on expiration. Bilateral costochondral separation and sternal fractures can also cause a flail segment. Flail chest frequently occurs from the impact of the driver’s chest with the steering wheel during an automobile accident.
Pathogenesis. Chest wall instability attributable to fracture at two distant sites on the same rib leads to an impairment of negative intra- pleural pressure generation, causing decreased lung expansion on inspiration. The trauma commonly results in lung parenchymal injury, which may lead to pulmonary contusion, decreased lung compliance, and respiratory failure. Interstitial and alveolar hemorrhage leads to further abnormalities.
A B C
FIG 23.8 Kyphosis (A) and scoliosis (B and C) are structural deformities that can interfere with ventilation. (From Delp MH, Manning RT, editors: Major’s physical diagnosis, ed 9, Philadelphia, 1981, Saunders.)
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INFECTION OR INFLAMMATION OF THE LUNG
Pneumonia Etiology. The term pneumonia (from the Greek pneuma, which
means “breath”) refers to an inflammatory reaction in the alveoli and interstitium of the lung, usually caused by an infectious agent. Pneumonia can result from three different sources: (1) aspiration of oropharyngeal secretions composed of normal bacterial flora and/or gastric contents (20% to 35% of all pneumonias); (2) inhalation of con- taminants (virus, Mycoplasma); or (3) contamination from the systemic circulation.
There are several ways to classify pneumonia. Pneumonias are typically classified as community acquired or hospital acquired. Approximately 15% to 20% of persons presenting with pneumonia require hospitaliza- tion. Pneumonia is further classified as bacterial, atypical, and viral. The bacterial pneumonias may be grouped as either gram positive or gram negative, based on the staining characteristics of the organism. Staphylococcus and Streptococcus (including pneumococci) are the predominant gram-positive organisms. Gram-negative bacteria that may cause pneumonia include Haemophilus influenzae, Klebsiella species, Pseudomonas aeruginosa, Serratia marcescens, Escherichia coli, and Proteus species.
Patients at risk of pneumonia include the elderly; those with a diminished gag reflex; seriously ill, hospitalized patients; hypoxic patients; and immunocompromised patients. Anaerobic bacteria may present clinically as a lung abscess, necrotizing pneumonia, or empyema. These diseases are usually caused by aspiration of normal oral bacteria (such as Bacteroides and Fusobacterium) into the lung. Mycoplasmal pneumonia is more commonly seen in the summer and fall in young adults. About half of the cases of pneumonia in persons between 5 and 20 years of age can be classified as mycoplasmal pneumonia. Other causes of pneumonia occur less frequently in the general population. Legionnaires’ disease, for example, is a severe systemic illness character- ized by fever, diarrhea, abdominal pain, liver and kidney failure, and pulmonary infiltrates. The causative organism for legionnaires’ disease lives in water and is transmitted by means of potable water, condensers, and cooling towers. The current treatment of choice is administration of a macrolide antibiotic. Patients whose immune systems have been compromised by disease or by drug therapy may be susceptible to the development of opportunistic pneumonia. For example, Pneumocystis (carinii) jiroveci pneumonia, an opportunistic fungal infection, is commonly found in patients with cancer or HIV. (See Chapter 12 for further discussion of AIDS.)
Aspergillus, an opportunistic fungus that is widespread in nature, may cause progressive pneumonia. Aspergillus is released from the walls of old buildings under reconstruction. Attention should be given when old hospitals are renovated and when susceptible patients are located in a reconstruction area. To assist the reader in differentiating among the various types of pneumonia, Table 23.7 presents the etiologic factors, common clinical features with age-related characteristics, radiologic findings, and antibiotic therapies for 11 forms of the disease. There are many other types of pneumonia that are not listed.
Pathogenesis. Normally, pulmonary defense mechanisms (immune responses, cough reflex, sneezing, mucociliary clearance) protect individu- als from pneumonia. Community-acquired pneumonia occurs when defense mechanisms are compromised. A highly virulent organism may also overwhelm a person’s defense mechanisms. Community-acquired pneumonias are commonly bacterial in origin. After microbial agents enter the lung, they multiply and trigger pulmonary inflammation. Alveolar air spaces fill with an exudative fluid, and inflammatory cells invade the alveolar septa. Acute bacterial pneumonia may be associated with significant V̇a/Q̇ mismatching and hypoxemia, because inflammatory
Cohen syndrome are associated with obesity. Obesity may be associated with hypoventilation.
The mechanisms of obesity hypoventilation are reduced ventilatory drive and increased work of breathing. Some patients are thought to have an abnormality in the central nervous system. In addition, the increased abdominal size can force the abdominal contents upward into the chest cavity, thus decreasing lung expansion and diaphragmatic shortening. Obesity hypoventilation is also called pickwickian syndrome, named after the obese boy in Pickwick Papers written by Charles Dickens. Pickwickian syndrome is associated with hypoventilation and airway obstruction. An additional factor that contributes to the overall clinical picture in many obese patients is upper airway obstruction during sleep, the obstructive form of sleep apnea syndrome. Soft tissue deposits in the neck and tissues surrounding the upper airway predispose the person to episodes of complete upper airway obstruction during sleep. In a large percentage of cases, the daytime somnolence that occurs in patients who have obesity hypoventilation syndrome is related to obstructive sleep apnea.
Clinical manifestations. Obesity hypoventilation is characterized by decreased alveolar ventilation, somnolence, severe hypoxemia, polycy- themia, and cor pulmonale. Patients complain of daytime somnolence, erectile dysfunction, shortness of breath, headache, and enuresis.
Diagnosis. The diagnosis of obesity is self-evident on examination. Tests for hypothyroidism, Cushing syndrome, insulinoma, diabetes, and hyperlipidemia may be done to identify comorbid factors. For persons with hypoventilation, arterial blood gas analyses may reveal hypoxemia and hypercapnia. Chest wall compliance, VC, TLC, and expiratory reserve volume are all decreased. Patients may also have an increased red blood cell count and show signs and symptoms of cor pulmonale and pul- monary hypertension.
Treatment. Primary treatment for obesity consists of a weight loss program that includes the family members. Caloric intake that promotes an energy deficit of 800 to 1000 kcal/day is recommended. Aerobic exercise preserves lean body mass and increases energy expenditure. Oxygen delivery through a nasal cannula or mechanical ventilation may be necessary for patients with morbid obesity. Surgical intervention with gastric stapling or gastric bypass to decrease the gastric volume and size has proved successful in some patients. These operations are intended to permanently curtail food intake.
KEY POINTS • Neuromuscular diseases affect the muscles of respiration, leading to muscular
weakness, increased risk of pulmonary infections, and respiratory failure. • Kyphoscoliosis is a deformity of the bony structure of the chest wall character-
ized by hunchback and lateral curvature of the spine. The abnormal shape of the chest interferes with the normal mechanics of breathing, resulting in small lung volumes, compression atelectasis, and hypoxemia. Compensatory tachypnea is usually present.
• Ankylosing spondylitis is a progressive inflammatory disease affecting vertebrae and ribs. Chronic inflammation leads to chest wall fibrosis and immobility. Chest wall muscle atrophy and ribcage stiffening result in pulmonary dysfunction characteristic of restrictive disorders.
• Flail chest occurs as a result of blunt trauma to the chest that causes a segment of the ribcage to detach. Flail chest is a life-threatening injury.
• Obesity may interfere with the normal mechanics of breathing because of excessive chest weight and abdominal impingement on the chest cavity. Pickwickian syndrome is a disorder of obesity associated with hypoventilation and upper airway obstruction during sleep.
CHAPTER 23 Restrictive Pulmonary Disorders 515
pneumonia may present with an upper respiratory prodrome (fever, coryza [inflammation of the mucous membranes in the nose], cough, hoarseness) accompanied by wheezing and/or rales. Typical features of Chlamydia pneumonia are cough, tachypnea, rales, wheezes, and absence of fever. Mycoplasma pneumonia is a common cause of pneumonia in older children and adults. Signs and symptoms include fever, cough, headache, and malaise.
Diagnosis. The chest radiograph demonstrates parenchymal infiltrates (white shadows) in the involved area, indicative of inflammatory alveolar processes. In a patient with symptoms and clinical findings of pneumonia, a Gram stain of expectorated sputum from deep in the lungs may be obtained to distinguish bacterial from viral pneumonia and gram-negative from gram-positive organisms. If the patient had been previously healthy, the cause of the majority of these infections would be viral, mycoplasmal, or the gram-positive pneumococcal bacterium. However, if the patient
exudate collects in the alveolar spaces. Alveolar exudate tends to con- solidate and becomes difficult to expectorate. Viral pneumonia does not produce exudative fluids. Fig. 23.9 shows the histologic progression of acute bacterial pneumonia. Patients with chronic illnesses and those who are immobile or immunosuppressed or have a decreased level of consciousness are at highest risk for developing pneumonia. Disruption of the body’s normal defense mechanisms leads to increased risk. Other patients at risk are those who have undergone thoracic or abdominal surgery or have received a general anesthetic.
Clinical manifestations. Clinically, the pathogenic cause, severity of the disease, and age of the patient may cause variations in the presentation of pneumonia. Some patients present with fever only. Crackles (rales) and bronchial breath sounds may be heard over the affected lung tissue. Patients may present with chills, cough, purulent sputum, and an abnormal chest radiograph. Patients with viral
TABLE 23.7 Differentiating Features of Types of Pneumonia
Etiologic Organism Common Clinical Features Chest Radiograph Antibiotic Treatment
Staphylococcus aureus; gram-positive cocci in clumps
Follows upper respiratory tract infection; fever, chills, pleuritic chest pain, cough, yellow purulent sputum; seen in patients in chronic care facilities
Consolidation, may have cavitation
Methicillin-susceptible strains: nafcillin or oxacillin with or without rifampin; methicillin- resistant strains: vancomycin with or without rifampin; alternative choice: cephalosporins, clindamycin, vancomycin
Streptococcus pneumoniae (pneumococcus); gram-positive diplococci
More common in alcoholics; also seen with chronic cardiopulmonary disease; fever, chills, pleuritic chest pain, cough, rust-colored sputum
Patchy infiltrates Procaine penicillin G or aqueous penicillin G, amoxicillin; alternative choice: macrolides, cephalosporins, doxycycline, quinolones; prophylactic vaccine available
Haemophilus influenzae; pleomorphic gram-negative coccobacilli
Upper respiratory tract symptoms, fever, vomiting, irritability, cough, purulent sputum, dyspnea; affects children and older adults; affects people with chronic cardiorespiratory problems
Consolidation Cefotaxime, ceftriaxone, doxycycline, azithromycin, TMP-SMX; alternative choice: quinolones or clarithromycin
Klebsiella pneumoniae; gram-negative encapsulated rods
Seen frequently in middle-aged men and associated with alcoholism and diabetes mellitus; rust-colored sputum
Consolidation Aminoglycoside plus third-generation cephalosporin; alternative: aztreonam, imipenem, quinolone
Pseudomonas aeruginosa; gram-negative rods
Chronic obstructive pulmonary disease, cystic fibrosis, and mechanical ventilation; fever, chills, and copious greenish, foul-smelling sputum
Infiltrates, small pleural effusion
Aminoglycoside plus ticarcillin/clavulanate or piperacillin/tazobactam or aztreonam or imipenem
Escherichia coli; gram-negative rods
Complication of gastrointestinal surgery Infiltrates, may have pleural effusion
Aminoglycoside plus third-generation cephalosporin; alternative: aztreonam, imipenem, quinolone
Virus Fever, malaise, headache, nonproductive cough Patchy infiltrates Amantadine, rimantadine Legionella species; no bacteria Acute onset with fever, diarrhea, myalgia, and
abdominal pain Consolidation Macrolides with or without rifampin;
alternative: TMP-SMX, quinolone Mycoplasma pneumoniae
(atypical pneumonia); monocytes and neutrophils; no bacteria
Ages 5–25 years; most common in young adults; associated with otitis media and myringitis; sore throat, headache, myalgia, dry cough, fatigue, low-grade fever
Infiltrates Erythromycin, doxycycline; alternative: quinolone or other macrolide
Pneumocystis (carinii) jiroveci (fungus)
Immunosuppressed patients (infants, children, and adults); 60% of patients have AIDS
Diffuse infiltrates, or chest x-ray may appear normal
TMP-SMX or pentamidine; isethionate plus prednisone; alternative: dapsone plus TMP-SMX, clindamycin plus primaquine
Anaerobic pneumonia (aspiration pneumonia); mixed flora
Predisposition to aspiration, fever, weight loss, malaise; risk increases with decreased level of consciousness, artificial airway, and sedation; seen in individuals with poor dental hygiene
Infiltrates in dependent lung fields
Penicillin G; alternative choices: clindamycin, metronidazole, cefoxitin
AIDS, Acquired immunodeficiency syndrome; TMP-SMX, trimethoprim-sulfamethoxazole.
516 UNIT VI Respiratory Function
Pulmonary Tuberculosis Etiology. One-third of the world’s population has tuberculosis
infection and nearly 2 million people die of TB each year. In the United States there are 3 cases per 100,000 persons. More than 90% of cases involve reactivation of prior infection; the remainder are new infections. The majority of new cases occur in malnourished individu- als, those living in overcrowded conditions, immunosuppressed individuals, incarcerated persons, immigrants (36% of new cases in the United States), and elderly persons. Two-thirds of all new cases are found in racial and ethnic minorities. New cases of TB from racial and ethnic minorities are 80%. During the past 45 years, there has been a shift in the care of patients from specialized TB hospitals to outpatient therapy. Hospitalization of patients may be necessary with implementation of isolation precautions for a period of 2 to 4 weeks (longer for multidrug-resistant tuberculosis [MDR-TB]). In some countries, specialized TB hospitals have reopened due to increasing resistance of the organism to treatment and an increasing number of cases. India and China account for the highest number of MDR-TB cases worldwide. Tuberculosis cases should be reported to local and state health departments.
TB is caused by the bacterium Mycobacterium tuberculosis, an acid- fast aerobic bacillus. Any organ system can be affected by the disease, but the most common sites are the lungs and the lymph nodes. TB is subdivided into two major classifications: primary (usually clinically and radiographically silent) and reactivating. Primary disease (initial infection) may lie dormant for many years or decades. When the person’s immune system becomes impaired, reactivation may occur. HIV, corticosteroid use, silicosis, and diabetes mellitus have been found to be associated with reactivation. Reactivation may occur many years after the primary infection. Distant organ systems may be involved as a result of hematogenous spread during the primary or reactivation phase of infection. In addition, there may be disseminated disease, known as miliary tuberculosis, again resulting from hematogenous dissemination of the organisms. Strains of M. tuberculosis are becoming resistant to one or more first-line antituberculosis drugs. Entry into the body is by inhalation of small (2 to 10 µm) droplets containing the bacteria.
had been hospitalized or has other illnesses such as emphysema, diabetes, or alcoholism, then gram-negative organisms should be suspected. “CURB-65” may be used to determine whether the patient should be hospitalized. “CURB-65” includes (1) confusion, (2) BUN >19.6 mg/ dL, (3) respiratory rate >30 breaths/min, (4) systolic blood pressure (BP) <90 mm Hg and diastolic BP ≤60 mm Hg, and (5) age ≥65 years. Blood cultures are positive in approximately 20% of hospitalized patients. Because 48 to 72 hours may be required for culture of the etiologic agent, antibiotic therapy should be started empirically. Once culture and sensitivity results are obtained, antibiotic therapy may be changed. Diagnosis is based on the chest radiograph, white blood cell count (more than 15,000/µL for acute bacterial pneumonia), and sputum culture, coupled with clinical features of fever with recurrent chills, cough, dyspnea, and rales.
Treatment. Once the organism has been cultured, specific antibiotic selection is based on sensitivity of the organism to different antibiotics. Empirical treatment before culture results for community-acquired pneumonia consists of levofloxacin or a macrolide antibiotic. Table 23.7 presents treatment options. The chest x-ray should be repeated 6 to 8 weeks after the infection has been treated.
Severe Acute Respiratory Syndrome SARS was first reported in February 2003 as a severe form of pneumonia occurring in Asia. There were only eight confirmed cases in the United States during the epidemic. Active global surveillance for SARS in human beings had detected no further confirmed person-to-person transmission of the disease between July 2003 and August 2004. However, two cases of SARS occurred in persons working in laboratories in southern China. At the time of this writing, there are no reported cases. See Table 23.8 for information on SARS.
Middle East Respiratory Syndrome Middle East respiratory syndrome (MERS) is caused by a coronavirus similar to the one that causes SARS. Early cases were identified in 2012 in Saudi Arabia. It is spread by respiratory droplets. The original source of the virus is camels and camel’s milk. See Table 23.8 for further information.
FIG 23.9 Acute pneumococcal pneumonia (microscopic): Distended capillaries and congestion with prominent neutrophilic infiltrate and erythrocytes. (From Procop GW, Pritt BS: Pathology of infectious diseases, Philadelphia, 2015, Saunders.)
KEY POINTS • Pneumonia is an inflammation of the lung that is usually associated with
an infectious agent. The most common types of pneumonia are bacterial, mycoplasmal, and viral. A productive cough is the primary differentiating feature between bacterial pneumonia and viral pneumonia, in which coughing is nonproductive.
• Acute bacterial pneumonia may be associated with significant V̇A/Q̇ mismatch- ing and poor blood gas values because inflammatory exudate collects in the alveolar spaces. Alveolar exudate tends to consolidate and becomes difficult to expectorate. Viral pneumonia does not produce exudative fluids.
• Manifestations of bacterial pneumonia may include fever, chills, cough with purulent sputum, crackles, and areas of consolidation on chest radiograph. Dyspnea may be significant.
• The treatment of bacterial pneumonia centers on antibiotic therapy to eliminate the organism and supportive therapy to enhance ventilation and oxygenation. Most cases of viral pneumonia (influenza) are managed symptomatically because no effective antibiotic therapy is available.
• Fungal and protozoal pneumonias are uncommon and tend to occur in immunocompromised individuals.
• SARS and MERS are acute respiratory tract infection caused by a coronavirus. The pneumonia is severe and has a mortality of 10% for SARS and 40% for MERS.
CHAPTER 23 Restrictive Pulmonary Disorders 517
Infected droplets are expelled when an infected person coughs, sneezes, or talks.
Pathogenesis. After infected droplets of Mycobacterium are inhaled into the alveoli of the susceptible person, alveolar macrophages ingest and process the microorganisms. Mycobacterium are then transported to lymph nodes where spread of the disease is contained. Primary TB (asymptomatic) is an infection that continues for 2 to 12 weeks until T cells contain the infection. T-cell–mediated hypersensitivity is evidenced by a positive skin test reaction to tuberculin purified protein derivative (PPD).
If Mycobacterium reach the bloodstream, they disseminate rapidly. Once the infection becomes established, lymphatic and hematogenous dissemination occurs. T cells and macrophages surround the organisms in granulomas that limit multiplication and spread. Dormant organisms (latent TB) persist for years. Reactivation may occur if the patient’s immune system becomes impaired. M. tuberculosis is a slow-growing aerobic, non–spore-forming, nonmobile bacillus. The pathologic manifestation of pulmonary TB is the Ghon tubercle or complex, which has parenchymal and lymph components. The parenchymal component is composed of a well-circumscribed, necrotic nodule that later becomes fibrotic and calcified. The lymph component is found in the lymph nodes. Primary pulmonary TB is shown in Fig. 23.10. In summary, the organisms either are destroyed or persist and multiply, causing active disease. Reactivation pulmonary TB occurs months to years after the primary TB and involves apical posterior segments of the upper lobes and superior segments of the lower lobes. Mycobacterium prefer areas of high concentration of oxygen.
Clinical manifestations. Clinical features of reactivated disease include a history of contact with an infected person, low-grade
TABLE 23.8 Differentiating Severe Acute Respiratory Syndrome (SARS) and Middle East Respiratory Syndrome (MERS)
SARS MERS Etiology SARS is spread by person-to-person contact via inhaled
particles. The virus is spread by person-to-person contact via inhaled particles.
Original source of MERS is camels and camel’s milk. Pathogenesis The coronavirus targets epithelial cells in the respiratory
tract. The damage leads to extensive hyaline membrane formation, alveolar collapse, desquamation of alveolar cells, and development of fibrous tissue. Vascular injury occurs at the same time.
Other organs damaged are the brain, spleen, and kidneys.
The coronavirus targets the dipeptidyl peptidase 4 (DDP4) receptors. The MERS virus establishes an infection in monocytes and macrophages. The release of cytokines from the infected cells leads to severe inflammation and tissue damage. Vascular endothelial cells in the pulmonary interstitium may also be infected, leading to dissemination of the infection.
Clinical manifestations Fever >100.4°F, chills, headache, muscle aches, nonproductive cough, dyspnea
Fever, productive cough, dyspnea, chills, rigors and diarrhea, muscle aches.
The disease progresses to ARDS. Diagnostics History of travel to regions identified by WHO as areas
with recent local transmission or sexual/casual contact with someone diagnosed with SARS.
Positive ELISA, immunofluorescence, or PCR test for SARS. Chest x-ray shows increased opacity bilaterally.
History of contact with an individual with the disease. Positive PCR on two samples from the lower respiratory tract. Chest x-ray shows bilateral patchy infiltrates with more involvement in
the lower lobes.
Treatment Supportive treatment with antipyretics, oxygen, and mechanical ventilation if needed. Requires negative- pressure isolation room.
No specific antiviral treatment is recommended. Treatment with interferon-12b and ribavirin has been tried, but the patients did not survive.
Supportive treatment with antipyretics, oxygen, and mechanical ventilation if needed.
Outcomes No vaccine available. The overall fatality rate is 9.6% from the last epidemic. Some patients have severe long-term sequelae.
No vaccine available. Overall fatality rate is approximately 40%.
ELISA, Enzyme-linked immunosorbent assay; PCR, polymerase chain reaction; WHO, World Health Organization.
FIG 23.10 Micrograph of tissue specimen from patient with tuberculosis. Low-power micrograph (×100) of a haematoxylin and eosin stained tissue section from an immunocompetent patient with tuberculosis that shows a well-formed tuberculous granuloma with a central area of caseous necrosis surrounded by epithelioid macrophages, giant cells, and T lymphocytes, and surrounding outer fibrosis. (From Lawn SD, Zumla AL: Tuberculosis. Lancet 2011;378(9785):57–72.)
fever, cough, hemoptysis, night sweats, fatigue, weight loss, malaise, and anorexia. Chronic cough is the most common symptom. As the disease progresses, the patient develops a productive cough with purulent sputum. Physical examination of the lung fields reveals apical crackles (rales) (M. tuberculosis organisms prefer lung apices because of the higher concentration of oxygen in this area) or bronchial breath
518 UNIT VI Respiratory Function
FIG 23.11 Cavitary pulmonary tuberculosis in a 23-year-old man. (From Kersten LD: Comprehensive respiratory nursing, Philadelphia, 1989, Saunders, p 146.)
KEY POINTS • Tuberculosis is caused by inhalation or ingestion of the bacterium M.
tuberculosis. The organism spreads through the lymph and blood. Bacteria are ingested by macrophages and walled off by inflammatory proteins (granulomas). The organisms may not be killed and can persist in a dormant state for years. These walled-off areas of inflammatory cells and bacteria become fibrotic and calcified, forming Ghon tubercles—the hallmark of TB.
• Symptoms are somewhat nonspecific: low-grade fever, cough, night sweats, fatigue, and weight loss. With progression of the disease, the cough is productive of purulent sputum.
• The diagnosis is based on a positive PPD skin test for TB, positive Quantiferon test, positive sputum cultures, and characteristic nodules on chest radiographs.
• Multiple antimicrobial agents are used for managing TB. Drug therapy continues for 6 to 9 months, depending on HIV status for active disease, and may be used for shorter periods in persons exposed to TB but with no active disease. Referral to a specialist is recommended.
Restrictive pulmonary disorders are those in which lung expansion is restricted. Restrictions are commonly caused by diseases that affect the lung parenchyma (e.g., diffuse interstitial pulmonary fibrosis), chest wall disorders, neuromuscular disorders, pleural space disorders,
pneumonia, and TB. These diseases are characterized by a reduced VC and a small residual lung volume. They differ from obstructive diseases, covered in Chapter 22, in that airway resistance is not increased.
S U M M A R Y
sounds over the region of lung consolidation. The patient appears malnourished and chronically ill. Common sites of extrapulmonary TB are the peritoneum, gastrointestinal tract, liver, spleen, bone, joints, lymph nodes, central nervous system, and genitourinary system. (Refer to Chapter 12 for a discussion of TB in HIV-infected patients.) Results of pulmonary function tests are characteristic of restrictive diseases, with decreased lung volumes and decreased compliance.
Diagnosis. Definitive diagnosis is made by results of sputum culture for acid-fast bacilli or by identification of the organism by DNA or RNA amplification techniques. Three consecutive morning sputum specimens are obtained to identify the slow-growing acid-fast bacillus. Expectoration of sputum in the early morning is ideal because the sputum is more concentrated and more plentiful. Cultures require 1 to 3 weeks for determination. Gastric washings or bronchial washings may also be used for diagnostic culturing.
Chest radiographs usually show nodules with infiltrates in the lung apex and posterior segments of the upper lobes. Primary infection shows calcified peripheral lung nodules with calcified hilar nodes in the region of the nodules. Elderly patients may present with lower lobe infiltrates with or without pleural effusion. Fig. 23.11 shows the radiographic appearance of cavitary TB in a 23-year-old man. A miliary pattern (diffuse, small, nodular densities) is seen with dis- semination of the organism in miliary TB. Another diagnostic test is the tuberculin (Mantoux test) skin test (5 tuberculin units/0.1 mL of PPD injected intradermally). A second dose is administered a week later. This test does not distinguish between current disease and past infection. A negative result never rules out acute TB. If the induration in a person with HIV infection is 5 mm or greater, if the patient has close contact with individuals with TB, and if the patient has a chest radiograph consistent with TB, the likelihood of active disease is high. An induration of 10 mm or greater is the reaction size for other high-risk individuals, such as intravenous drug abusers, individuals who are debilitated, children younger than 4 years or with immunosuppression, and individuals living in areas with a high incidence of the disease (Asia, Africa, Latin America). An induration of 15 mm or greater is considered positive for TB in all other persons. An interferon gamma release assay (Quantiferon test) may be preferred to detect M. tuberculosis in latent TB infections. False-positive PPD results may occur in persons with other mycobacterial infections or if they have received bacille Calmette-Guérin (BCG), a live attenuated strain of Mycobacterium bovis that provides active immunity against TB. False-negative results may also occur in patients who are mal- nourished, elderly, or immunocompromised. Immunocompromised patients may not be able to mount a response (wheal) to injection of the organism.
Treatment. Primary therapy for active TB consists of (1) administer- ing multiple drugs to which the organism is susceptible; (2) adding at least two new agents to the drug regimen when treatment failure is suspected; (3) providing the safest, most effective therapy for the shortest period; and (4) ensuring adherence to therapy by utilizing directly
observed therapy. Nonadherence to therapy because of adverse drug reactions is a major cause of treatment failure. HIV-negative individuals with active M. tuberculosis and without MDR-TB are typically treated for 6 months, and HIV-positive individuals are treated for 9 months total therapy.
CHAPTER 23 Restrictive Pulmonary Disorders 519
Disorders of Chest Wall and Pleura Baron RB: Nutrition. In Papadakis MA, editor: Current medical diagnosis and
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521
UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
Fluid and Electrolyte Homeostasis and Imbalances Linda Felver
K E Y Q U E S T I O N S • What physiologic and pathophysiologic conditions predispose an
individual to disturbances in fluid intake? • How do the compositions of plasma and interstitial fluids differ?
How are they similar? • What regulates water and electrolyte movement between plasma
and interstitial fluids? Across cell membranes? • What are the usual and pathologic routes of fluid exit from the
body? • Under what conditions are extracellular volume deficit and excess
likely to occur, and what are the characteristic clinical findings?
• Under what conditions are hyponatremia (water excess) and hypernatremia (water deficit) likely to occur, and what are the characteristic clinical findings?
• What capillary-level mechanisms cause edema? • What physiologic and pathophysiologic conditions can lead to
alterations in electrolyte intake, absorption, distribution, or excretion? How do these differ between specific electrolytes?
• What are the characteristic clinical findings of plasma excesses and deficits of potassium, calcium, magnesium, and phosphate ions?
C H A P T E R O U T L I N E Body Fluid Homeostasis, 522
Fluid Intake and Absorption, 522
Fluid Distribution, 523
Fluid Excretion, 524
Fluid Loss Through Abnormal Routes, 524
Fluid Imbalances, 525 Extracellular Fluid Volume, 525
Volume Deficit, 525 Volume Excess, 526
Body Fluid Concentration, 526
Hyponatremia, 526 Hypernatremia, 527
Both Volume and Concentration, 528
Clinical Dehydration, 528
Interstitial Fluid Volume, 528
Edema, 528
Principles of Electrolyte Homeostasis, 529 Electrolyte Intake and Absorption, 529
Electrolyte Distribution, 531
Electrolyte Excretion, 531
Electrolyte Loss Through Abnormal Routes, 531
Electrolyte Imbalances, 531 Plasma Potassium, 531
Hypokalemia, 532 Hyperkalemia, 532
Plasma Calcium, 533
Hypocalcemia, 533 Hypercalcemia, 533
Plasma Magnesium, 534
Hypomagnesemia, 534 Hypermagnesemia, 534
Plasma Phosphate, 535
Hypophosphatemia, 535 Hyperphosphatemia, 536
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
24
522 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
chloride ions. In contrast, the extracellular fluid in the vascular and interstitial compartments is relatively rich in sodium, chloride, and bicarbonate ions and relatively low in potassium, magnesium, and phosphate ions. The vascular portion of the extracellular fluid contains many proteins, whereas the interstitial and transcellular portions of the extracellular fluid contain very few proteins. Most transcellular fluids are secreted by epithelial cells; their composition varies according to their function.
Total body water is the total amount of water in all fluid compart- ments. The percentage of body weight that is water varies according to a person’s age and proportion of body fat (Fig. 24.2). A full-term newborn infant is about 75% water by weight. (Preterm infants have an even higher percentage of water.) This percentage decreases with age. In a standard adult man, body water is about 60% of body weight. The percentage is less (about 50%) in women because they have a greater proportion of body fat than men of the same weight. In obese adults, with a much larger proportion of body fat, less of the body weight is water. With normal aging there is a relative increase in body fat so that in older men, 50% of the body weight is typically composed of water; in older women, it is even less.
One liter of water weighs 1 kg (2.2 lb). Thus a lean, middle-aged, healthy adult man who weighs 70 kg (154 lb) has approximately 42 L of body water. Of this amount, approximately 25 L is intracellular water. The approximately 17 L of extracellular water is distributed as 3 L of plasma water, 8 L of interstitial and lymph water, 5 L of water trapped in dense connective tissue and bone, and 1 L of transcellular water.
Fluid homeostasis is a dynamic process. This process may be viewed as the net result of four subprocesses: fluid intake, fluid absorption, fluid distribution, and fluid excretion. In some individuals who have pathophysi- ologic conditions, loss of fluid through abnormal routes also occurs. The interplay of these subprocesses is fluid homeostasis (Fig. 24.3).
Fluid Intake and Absorption Fluid intake is entry of fluid into the body by any route. People normally ingest fluids orally, both by drinking and by eating (water contained in food). They also synthesize a small amount of water through cel- lular metabolism of the foods they eat. Fluid intake by drinking is influenced by habit, social factors, and thirst. Physiologic triggers of thirst include increased osmolality (concentratedness) of extracellular
The fluid in the body flows in arteries, veins, and lymph vessels; it is secreted into specialized compartments as diverse as joints, cerebral ventricles, and the intestinal lumen; it both surrounds and permeates the cells. Body fluid serves as a lubricant and as a solvent for the chemical reactions that we call metabolism; it transports oxygen, nutrients, chemical messengers, and waste products to their destinations; it plays an important role in the regulation of body temperature. Because the fluid within the body is so widespread and serves so many functions, it is not surpris- ing that abnormalities in the volume, concentration, or electrolyte composition of body fluid can cause clinical problems.
Disorders of fluid or electrolyte homeostasis arise from many different pathophysiologic conditions. In severe cases, these disorders cause death. Although these disorders develop from many specific causes in different patient populations, these specific causes fall into general categories that arise from the principles of normal fluid and electrolyte homeostasis. This chapter first presents the principles of normal fluid homeostasis and then, building on that foundation, continues with a discussion of fluid imbalances. Similarly, it explains the principles of electrolyte homeostasis before presenting plasma electrolyte imbalances.
BODY FLUID HOMEOSTASIS The term body fluid, as used in this chapter, pertains to water within the body and the particles dissolved in it. Body fluid is contained in two major compartments: extracellular (outside the cells) and intracellular (inside the cells). In all age groups except infants, approximately two thirds of body fluid is intracellular. The other one third of body fluid is extracellular. Infants have more extracellular fluid than intracellular fluid; this proportion reverses within a few months as the infant grows. The extracellular fluid lies between the cells (interstitial compartment), in the blood vessels (vascular compartment), in dense connective tissue and bone, and in several minor compartments that are collectively termed the transcellular fluids (e.g., synovial, cerebrospinal, and gastrointestinal fluids). The major body fluid compartments are depicted in Fig. 24.1.
The fluids in the various body compartments have different composi- tions, although their total particle concentration is equal. The intracellular fluid is relatively rich in potassium and magnesium ions, inorganic and organic phosphates, and proteins. It is relatively low in sodium and
INTRACELLULAR COMPARTMENT
INTERSTITIAL COMPARTMENT
VASCULAR COMPARTMENT
Interstitial fluid
hydrostatic pressure
Capillary
hydrostatic pressure
Capillary
colloid osmotic pressure
Interstitial fluid
colloid osmotic pressure
Interstitial fluid
osmotic pressure
Intracellular fluid
osmotic pressure
EXTRACELLULAR COMPARTMENT
FLUID DISTRIBUTION BY FILTRATION
FLUID DISTRIBUTION BY OSMOSIS
FIG 24.1 Factors that influence body fluid distribution. Fluid distribution between the vascular and interstitial compartments is the net result of filtration across permeable capillaries. The distribution of fluid between the interstitial and intracellular compartments occurs by osmosis rather than by filtration.
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 523
Additional routes of fluid intake that may occur in patients who have various pathophysiologic conditions include intravenous intake; intake tubes into the gastrointestinal tract, other body cavities, subcutaneous tissue, or bone marrow; rectal intake (such as tap water enema); and, occasionally, intake through the lungs (such as near-drowning). Health care professionals often control fluid intake by many of these routes.
Unless fluid intake occurs intravenously, the fluid must be absorbed before it reaches the vascular compartment. Fluid absorption from the gastrointestinal tract partially depends on osmotic forces generated by absorption of electrolytes and other particles.
Fluid Distribution Much of the fluid that reaches the vascular compartment then distributes into other fluid compartments. Fluid distribution between the vascular and interstitial compartments is the net result of filtration across permeable capillaries. At the capillary level, two forces tend to move fluid from the capillaries into the interstitial compartment: capillary hydrostatic pressure (the outward push of vascular fluid against the capillary walls) and interstitial fluid colloid osmotic pressure (the inward-pulling force of particles in the interstitial fluid). Concurrently, two forces tend to move fluid from the interstitial compartment into the capillaries: capillary colloid osmotic pressure (the inward-pulling force of particles in vascular fluid) and interstitial fluid hydrostatic pressure (the outward push of interstitial fluid against the outside of the capillary walls).
The distribution of fluid between the vascular and interstitial compartments is analogous to two groups of people pushing on opposite sides of a swinging door—the strongest “push” will determine in which direction the door will swing. Thus at any one point along a capillary, the direction and amount of fluid flow between the vascular and interstitial compartments are determined by the net result of opposing forces. These forces are illustrated in Fig. 24.1.
In contrast, the distribution of fluid between the interstitial and intracellular compartments occurs by osmosis, rather than by filtration. Cell membranes contain aquaporins that allow water to pass through.
fluid (osmoreceptor-mediated thirst), decreased circulating blood volume (baroreceptor-mediated and angiotensin II–mediated thirst), and dryness of the mucous membranes of the mouth and possibly other visceral signals. In older adults, cerebral osmoreceptor-mediated thirst diminishes; thus older adults who do not have a habit of drinking fluids throughout the day may not have sufficient fluid intake to meet their needs.
100
90
80
70
60
50
40
30
20
10
0 Preterm Neonate Child Adult Older adult
P e rc
e n t o f b o d y
w e ig
h t th
a t is
w a te
r
FIG 24.2 Percentage of total body water by age. The percentage of body weight that is water is high in infancy and decreases with increasing age.
FLUID INTAKE
FLUID INTAKE
Bowel
Kidney
Lungs
Skin
Drainage
FLUID EXCRETION
FLUID EXCRETION
FLUID ABSORPTION
FLUID DISTRIBUTION
FLUID LOSS THROUGH
ABNORMAL ROUTES
FIG 24.3 Fluid homeostasis. Fluid homeostasis is the interplay of fluid intake and absorption, fluid distribution, fluid excretion, and fluid loss through abnormal routes.
524 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
A comparison of ADH and aldosterone is useful to remember their actions. ADH is the “tap water” hormone. It causes the kidneys to reabsorb plain water. Renal reabsorption of water caused by ADH makes a smaller volume of more concentrated urine and dilutes body fluids. Aldosterone is the salt water hormone. It causes the kidneys to reabsorb sodium and water. Renal reabsorption of sodium and water caused by aldosterone makes a smaller volume of urine and expands extracellular fluid volume.
ANP normally is stored in granules in the cardiac atrial cells and released when the atria are stretched. B-type natriuretic peptide (BNP) is synthesized and released from ventricular cells when ventricular diastolic pressure increases abnormally, as in heart failure. ANP and BNP cause natriuresis (sodium excretion in the urine), which is accompanied by water excretion. Thus these NPs promote fluid excretion in the urine. When the vascular volume increases, the heart is stretched and more NPs are released to cause renal excretion of the excess fluid. When the vascular volume is decreased, the heart is less stretched; therefore fewer NPs are released and the kidneys excrete less fluid. NPs oppose the action of aldosterone, but they are not as strong as aldosterone.
The urine volume that an individual produces also is highly dependent on having adequate blood pressure to perfuse the kidneys and on the glomerular filtration rate. Thus renal excretion of fluid is the end result of several factors, including hormones that respond to different stimuli and have different actions on the renal tubules.
Fluid Loss Through Abnormal Routes People who have pathophysiologic conditions often experience loss of fluid through abnormal routes. Examples of these routes are emesis; tubes in the gastrointestinal tract or other body cavities; hemorrhage; drainage from fistulas, wounds, or open areas of skin; and paracentesis. Fluid lost through abnormal routes may be a significant factor in disturb- ing fluid homeostasis.
If the body’s physiologic mechanisms are functioning well, the processes of fluid homeostasis maintain normal body fluid status. If fluid intake is large, fluid excretion increases by the mechanisms described previously that increase urine volume (large volume of dilute urine). If fluid intake is diminished or if fluid is lost through abnormal routes, fluid excretion decreases (small volume of concentrated urine), and thirst may cause an increase in fluid intake.
If pathophysiologic processes interfere with normal fluid homeostasis or if the normal processes become overwhelmed, then fluid imbalances result. For example, a person who has a pathophysiologic process that prevents the kidneys from excreting much fluid may accumulate too much fluid unless the fluid intake is reduced. The opposite problem will occur in a person whose fluid intake is too small to replace a large amount of fluid excreted or lost through abnormal routes.
Cell membranes are permeable to water but not to electrolytes, many of which require specialized transport mechanisms to cross a cell membrane. Thus water can move freely through a cell membrane, but electrolytes and other particles cannot. When there is a difference in particle concentration (osmolality) inside and outside cells because the particles cannot move freely, the water crosses the membrane rapidly to equalize the osmolality. Osmosis occurs until the intracellular osmotic pressure and the interstitial fluid osmotic pressure become equal, as in Fig. 24.1.
The direction of movement of water by osmosis is determined by the particle concentrations on the two sides of the semipermeable cell membrane. If, on the one hand, the particle concentration (osmolality) of the interstitial fluid becomes higher than the particle concentration inside cells, water will move by osmosis from the cells to the interstitial fluid to equalize the osmolality in the two compartments. If, on the other hand, the osmolality of the interstitial fluid becomes lower than the osmolality of the intracellular fluid, then water will move from the interstitial compartment to the intracellular compartment to equalize the osmolality. In this way, changes in the osmolality of the interstitial and intracellular compartments control the distribution of water between them.
Distribution of fluid between the intracellular and transcellular compartments is controlled by processes within the epithelial cells that secrete these fluids.
Fluid Excretion The fourth component of fluid homeostasis is fluid excretion. Fluid excretion normally occurs through the urinary tract, bowels, lungs, and skin. Fluid is excreted through the skin as visible sweat (which may or may not occur) and as insensible perspiration (which always occurs). Another obligatory route of excretion of water is through the lungs as a person exhales. Fecal excretion of fluid occurs with normal bowel function and increases dramatically in a person who has diarrhea. In most circumstances, the largest volume of fluid is excreted in the urine.
The amount of fluid excreted in the urine is controlled primarily by the hormones antidiuretic hormone (ADH), aldosterone, and natriuretic peptides (NPs; e.g., A-type natriuretic peptide [ANP]), and to a lesser degree by minor hormones such as renal prostaglandins and by the renal sympathetic nerves. ADH is synthesized by cells in the supraoptic and paraventricular nuclei of the hypothalamus. The axons of these cells extend down the median eminence of the pituitary stalk. The release of ADH thus occurs from the posterior pituitary gland. Factors that increase release of ADH into the blood include increased osmolality (concentratedness) of the extracellular fluid, decreased circulating fluid volume, pain, nausea, and physiologic and psychological stressors. The hormone circulates to the distal tubules and collecting ducts in the kidneys where, consistent with its name, ADH causes reabsorption of water that dilutes the blood and other body fluids. Reabsorption of water decreases the urine volume and makes the urine concentrated, thus decreasing fluid excretion. Factors that decrease ADH release (such as decreased osmolality of the extracellular fluid and ethanol intake) allow a large, dilute urine volume.
Aldosterone is another hormone that influences urine volume. Aldosterone is synthesized and secreted by cells in the adrenal cortex. The major stimuli for its release are angiotensin II (from the renin– angiotensin system, which is activated by decreased circulating blood volume) and an increased concentration of potassium ions in the plasma. Aldosterone causes the renal tubules to reabsorb sodium and water (saline), which expands the extracellular fluid volume. This renal action decreases fluid excretion, although by a different mechanism than ADH. When more aldosterone is secreted, the urine volume is smaller; decreased secretion of aldosterone causes a larger urine volume.
KEY POINTS • Fluid homeostasis is a dynamic process that includes fluid intake and
absorption, fluid distribution across body fluid compartments, fluid excretion, and, in some individuals, fluid loss through abnormal routes.
• Habit and thirst are important regulators of fluid intake. Individuals who are unable to control their own fluid intake (such as those receiving fluids intravenously and immobile or unconscious patients) are at high risk for fluid imbalance.
• Fluid (water and small particles) moves back and forth between the vascular and interstitial areas by filtration at the capillaries. Capillary hydrostatic pressure is the primary force promoting fluid movement from the capillaries to the interstitial fluid. Plasma colloid osmotic pressure is the primary force that causes interstitial fluid to move back into the capillaries.
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 525
prolonged small-vein filling time, prolonged capillary refill time, lightheadedness, dizziness, syncope, and oliguria. If the kidneys are responding normally, the small volume of urine will be concentrated (and thus quite yellow). An ECV deficit that develops slowly also may be manifested by decreased skin turgor (skin tenting when it is pinched up over the sternum), dryness of oral mucous membranes between cheek and gum, hard stools, soft sunken eyeballs, longitudinal furrows in the tongue, and absence of tears and sweat. An infant who develops ECV deficit has a sunken fontanel; neck veins are not reliably assessed in infants.
Sudden weight loss is a sensitive measure of ECV deficit. One liter of saline weighs 1 kg; therefore a person who loses 1 kg in 24 hours has excreted 1 L of fluid or lost it through an abnormal route. It is not possible to lose a kilogram of fat overnight; a sudden weight loss of this magnitude results only from fluid loss, if the body weight is measured
FLUID IMBALANCES If fluid homeostasis is disturbed by pathophysiologic processes or other factors (such as medications), fluid imbalances may occur. Fluid imbal- ances fall into two major categories: imbalances of extracellular fluid volume (saline imbalances) and imbalances of body fluid concentration (water imbalances).
Extracellular Fluid Volume In some circumstances, individuals have too much or too little extracel- lular fluid. These disorders are called extracellular fluid volume (ECV) imbalances because they involve a change in the amount (volume) of the extracellular fluid. These disorders also are termed saline imbalances because they are disorders of isotonic salt water. (Isotonic saline is salt water in the same concentration as the normal plasma concentration.) In an ECV imbalance, the concentration of the extracellular fluid is normal; there is simply too much or too little of it. Some individuals have an ECV imbalance and an imbalance of body fluid concentration at the same time. In this case both the volume and serum sodium concentration of the extracellular fluid are abnormal. This section discusses only the isotonic volume imbalances; the concentration imbalances are discussed separately because they may occur separately.
Volume Deficit ECV deficit is caused by removal of a sodium-containing fluid from the body. It is a decrease in saline (isotonic salt water) in the same concentration as the normal extracellular fluid, which is why the condition sometimes is termed saline deficit. In an uncomplicated ECV deficit, the serum sodium concentration is normal. The concentration of the extracellular fluid is normal; the amount of the extracellular fluid is abnormally decreased (Fig. 24.4).
Etiology. Specific causes of ECV deficit are listed in Box 24.1. All causes involve removal of a sodium-containing fluid from the extracellular compartment. The sodium-containing fluid usually is removed from the body; however, it may be sequestered in a “third space” in the body that is outside the extracellular compartment. For example, ascites (fluid in the peritoneal cavity) that develops rapidly may deplete the ECV. Another example is fluid that accumulates rapidly in the bowel during an acute intestinal obstruction. Although the fluid in these examples remains in the body, it no longer is part of the extracellular fluid, and signs and symptoms of ECV deficit occur.
Clinical manifestations. Signs and symptoms of ECV deficit are the result of decreased fluid volume in the vascular and interstitial areas. These clinical manifestations include sudden weight loss, postural blood pressure decrease with concurrent increased heart rate, flat neck veins (or veins collapsing with inspiration) when a patient is supine,
Decreased vascular volume
Normal osmolality
Decreased interstitial
volume
FIG 24.4 Extracellular fluid volume deficit. Decreased volume of extracel- lular fluid in vascular and interstitial compartments is characteristic of extracellular fluid volume deficit. Intracellular volume is unchanged.
Gastrointestinal Excretion or Loss of Sodium-Containing Fluid Emesis Diarrhea (includes laxative overuse or abuse) Gastric suction or intestinal decompression Fistula drainage
Renal Excretion of Sodium-Containing Fluid Adrenal insufficiency Salt-wasting renal disorders Extensive diuretic use Bed rest
Other Loss of a Sodium-Containing Fluid Hemorrhage Massive diaphoresis Third-space fluid accumulation Paracentesis and similar procedures Burns
BOX 24.1 Causes of Extracellular Fluid Volume Deficit
• Water moves in and out of cells by osmosis. Electrolytes do not move freely across cell membranes but are transported by membrane channels and carriers.
• Fluid excretion may be visible (urine, feces, sweat) or invisible (respiration and insensible perspiration). Fluid loss may occur through abnormal routes such as emesis and wound drainage. To maintain fluid balance, fluid intake must counterbalance fluid excretion and loss through abnormal routes.
• Healthy kidneys adjust fluid excretion in response to blood pressure and several hormones. Aldosterone induces the kidneys to conserve saline (salt and water), which expands the extracellular fluid volume; NPs (ANP and BNP) promote saline excretion. Antidiuretic hormone (ADH) causes the kidneys to retain water, thus concentrating the urine and diluting the body fluids. Urine volume and concentration are important indicators of body fluid balance.
526 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
for people who have pathophysiologic processes that cause saline excess (e.g., compensated heart failure).
Body Fluid Concentration In contrast to the ECV disorders just discussed, imbalances of body fluid concentration are disorders of the concentration rather than of the amount of extracellular fluid. Body fluid concentration disorders also are called water imbalances. The serum sodium concentration reflects the osmolality (concentratedness) of the blood. Imbalances of body fluid concentration are recognized by abnormal serum sodium concentration. The normal serum sodium concentration is 135 to 145 mEq/L (may vary slightly with different laboratories). Many individuals develop imbalances of both ECV and serum sodium con- centration at the same time. Isolated imbalances of serum sodium concentration may also occur. This section discusses the concentration imbalances separately.
Hyponatremia Natrium is the Latin word for sodium. A serum sodium concentration below the lower limit of normal indicates hyponatremia. When
accurately. An ECV deficit may occur without a weight loss if fluid is sequestered in a third space somewhere in the body, as with ascites or intestinal obstruction.
A postural blood pressure decrease with concurrent increased heart rate that is measured when a previously supine person stands or sits with legs dependent is a good indicator of fluid volume depletion in the vascular compartment. Severe ECV deficit may lead to hypovolemic shock, which can be fatal if not treated effectively with fluid replacement.
Volume Excess ECV excess is essentially the opposite of an ECV deficit. It is the condition in which the amount of extracellular fluid is abnormally increased. Both the vascular and the interstitial areas have too much isotonic fluid (Fig. 24.5). In an uncomplicated ECV excess, the concentration of the extracellular fluid is normal, but an excessive amount of that fluid is present.
Etiology. ECV excess is caused by addition or retention of saline (salt water in the same concentration as normal plasma). For this reason, it sometimes is termed saline excess. As mentioned previously, the hormone aldosterone causes the kidneys to retain saline. ECV excess therefore may be caused by conditions that involve excessive aldosterone secretion. For example, increased aldosterone secretion is a compensatory mechanism that commonly accompanies chronic heart failure and eventually leads to ECV excess. Additional causes of ECV excess are presented in Box 24.2.
Clinical manifestations. Signs and symptoms of ECV excess are sudden weight gain, edema, and manifestations of circulatory overload: bounding pulse, neck vein distention in a person in the upright position, crackles in the dependent portions of the lungs, dyspnea, orthopnea, and even the frothy sputum of pulmonary edema. An infant who develops ECV excess has a bulging fontanel; assessment of neck veins is not effective in infants.
Sudden weight gain is a sensitive measure of ECV excess. It is impos- sible to gain a kilogram of fat overnight; such a sudden weight gain is an accumulation of saline. People who eat salty food in a restaurant weigh more the next day because the water they drank combined with the salt in the food to make isotonic saline. The isotonic saline expands the extracellular fluid, causing a mild saline excess until it is excreted by the kidneys. This is the reason that low-sodium diets are prescribed
Increased vascular volume
Normal osmolality
Increased interstitial volume
FIG 24.5 Extracellular fluid volume excess. Increased volume of extracellular fluid in vascular and interstitial compartments is characteristic of extracellular fluid volume excess. Intracellular volume is unchanged.
Excessive Intravenous Infusion of Sodium-Containing Isotonic Solutions Normal saline (0.9% sodium chloride) Ringer infusion Lactated Ringer infusion
Renal Retention of Sodium and Water Hyperaldosteronism Chronic heart failure Cirrhosis Acute glomerulonephritis Chronic end-stage renal disease Cushing disease Corticosteroid therapy
BOX 24.2 Causes of Extracellular Fluid Volume Excess
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 527
action of thiazide diuretics can cause this to occur, especially in older women. Factors that cause hyponatremia by loss of salt relative to water also are presented in Box 24.3. Although Box 24.3 separates causes of hyponatremia into two categories, some types are due to simultaneous gain of water and loss of salt. For example, hyponatremia in marathon runners and triathletes occurs from loss of salt through heavy sweating and gain of water from excessive water intake plus inappropriate renal water reabsorption caused by increased ADH secretion.
Clinical manifestations. Clinical manifestations of hyponatremia are nonspecific manifestations of central nervous system dysfunction. They vary from malaise, anorexia, nausea, vomiting, and headache to confusion, lethargy, seizures, and coma. Profound hyponatremia causes fatal cerebral herniation. The signs and symptoms are caused by swelling of neurons and glial cells as a result of the decreased osmolality of extracellular fluid. When the extracellular fluid becomes too dilute, the intracellular fluid initially is more concentrated. Therefore water moves into cells by osmosis (Fig. 24.6). The severity of the signs and symptoms depends on how rapidly hyponatremia develops as well as on the absolute value of the serum sodium concentration. A rapid decrease in osmolality produces more severe manifestations than a slow decline, other factors being equal.
Hypernatremia Hypernatremia is a serum sodium concentration above the upper limit of normal (145 mEq/L). When hypernatremia is present, the extracellular fluid contains relatively too little water for the amount of sodium ions present; it is too concentrated. Hypernatremia also is called water deficit, hypertonic syndrome, and hyperosmolality. These terms all reflect the relative deficit of water to salt in the extracellular fluid that occurs in hypernatremia.
Etiology. Hypernatremia is caused by a gain of relatively more salt than water or by a loss of relatively more water than salt. Both of these processes cause the body fluids to become too concentrated. Patients who receive concentrated tube feedings without enough water, especially older adults, are at high risk for hypernatremia because they gain relatively more solute than water, which causes an obligatory loss of relatively more water than salt in the urine. Hypernatremia can be prevented in these individuals by administering water between feedings. Other specific
hyponatremia is present, the extracellular fluid contains relatively too much water for the amount of sodium ions present; it is more dilute than normal.
Etiology. Hyponatremia is caused by factors that produce a relative excess of water in proportion to salt in the extracellular fluid. Because the serum sodium concentration reflects the osmolality of the blood, the reduced serum sodium concentration of hyponatremia indicates that the extracellular fluid has a reduced osmolality; it is too dilute. Hyponatremia also is called hypotonic syndrome, hypoosmolality, and water intoxication. All of these terms reflect the abnormally dilute concentration of the extracellular fluid that results when the normal proportion of salt to water in the extracellular fluid is disrupted by gaining more water than salt or losing relatively more salt than water.
A gain of relatively more water than salt will cause hyponatremia that is known as dilutional hyponatremia. As mentioned previously, the hormone ADH causes the kidneys to retain water (not sodium and water) in the body. This hormone is part of the system that normally regulates the osmolality of extracellular fluid. However, circumstances that cause prolonged or excessive release of ADH cause the kidneys to retain too much water, which effectively dilutes the blood; hyponatremia is the result. ADH secretion is excessive in the syndrome of inappropriate secretion of ADH. ADH also may be produced ectopically. For example, small cell (oat cell) carcinoma is a type of lung tumor that frequently synthesizes and releases ADH. This ectopic production of ADH from a tumor is not subject to the feedback inhibition of normal ADH release, so inappropriate amounts are released. With continually high levels of ADH being produced by the tumor, the kidneys retain excessive amounts of water—a gain of water relative to salt. Pain, nausea, and other physical and psychological stressors also increase ADH release, which can be significant in hospitalized patients, especially in the postoperative period. Although it is difficult to drink enough water to cause hyponatremia, water intake that exceeds renal excretory capacity is seen in some situ- ations. For example, the hyponatremia of beer potomania arises when people habitually drink large amounts of beer daily with very little food intake. Factors that cause hyponatremia by gain of water relative to salt are presented in Box 24.3.
Hyponatremia also may be caused by a loss of relatively more salt than water, in which case it is known as depletional hyponatremia. If salt is removed from the body while water remains, then the extracellular fluid once again will become too dilute; hyponatremia results. The
Gain of Relatively More Water Than Salt (Dilutional Hyponatremia) Excessive antidiuretic hormone Excessive intravenous infusion of 5% dextrose in water (D5W) Hypotonic irrigating solutions Tap water enemas Psychogenic polydipsia (compulsive water drinking) Forced excessive water ingestion (child abuse or club initiation) Excessive beer ingestion (beer potomania) Near-drowning in fresh water Selective serotonin reuptake inhibitors (SSRIs)
Loss of Relatively More Salt Than Water (Depletional Hyponatremia) Diuretics, especially thiazides Salt-wasting renal disease Replacement of water, but not salt, lost through emesis, diarrhea, gastric
suction, diaphoresis, or burns
BOX 24.3 Causes of Hyponatremia Vascular
fluid
Interstitial fluid Decreased
osmolality
Cell before hyponatremia
Swollen cell in hyponatremia
H2O
H2O
H2O
H2O H2O
H2O
H2O
H2O
H2O
FIG 24.6 Cell swelling in hyponatremia. Decreased osmolality (concentra- tion) of extracellular fluid in hyponatremia causes water to move into cells by osmosis.
528 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
replace the salt and the water that is exiting the body. Fluid excreted in diarrhea and lost by vomiting, plus the normal daily respiratory, skin, and urine excretion, is the equivalent of hypotonic sodium– containing fluid (isotonic saline with extra water added). Removal of the saline portion of this fluid from the body causes ECV deficit, and removal of the extra water from the body causes hypernatremia. The combination of these two imbalances is clinical dehydration.
Clinical manifestations. Signs and symptoms of clinical dehydration are the combination of the signs and symptoms of the two separate disorders. Therefore a person who is clinically dehydrated will have clinical manifestations as listed in Box 24.5. Infants and older adults are at highest risk for clinical dehydration, although it can occur at any age.
Interstitial Fluid Volume Edema Edema is an excess of fluid in the interstitial compartment. It may be a manifestation of ECV excess, or it may arise from other mechanisms. Forces that determine the distribution of fluid between the vascular and interstitial compartments are described previously in this chapter (see the “Fluid Distribution” section). An increase in the forces that tend to move fluid from the capillaries into the interstitial compartment or a decrease in forces that tend to move fluid from the interstitial compartment into the capillaries will cause edema by altering normal fluid distribution between the vascular and interstitial compartments. Thus edema may arise from increased capillary hydrostatic pressure, increased interstitial fluid colloid osmotic pressure, blockage of lymphatic drainage, or decreased capillary colloid osmotic pressure (Fig. 24.9). Edema may be localized or generalized (existing in many areas of the body simultaneously).
Increased capillary hydrostatic pressure is caused by increased ECV, by the increased local capillary flow that accompanies inflammation, and by venous congestion. Increased interstitial fluid colloid osmotic pressure occurs when inflammation increases vascular permeability and proteins leak into the interstitial fluid. Lymphatic drainage normally removes minute amounts of protein that enter the interstitial fluid. Blockage of lymphatic drainage (e.g., by a tumor, parasites, fibrosis from radiation therapy, or surgical removal of lymph nodes) also causes edema when the interstitial accumulation of protein increases interstitial fluid colloid osmotic pressure. This type of edema is called lymphedema
factors that cause hypernatremia are presented in Box 24.4 under the two major categories.
Clinical manifestations. Signs and symptoms of hypernatremia are similar to those of hyponatremia in that they are nonspecific manifesta- tions of central nervous system dysfunction. In hypernatremia, the increased osmolality of the extracellular fluid causes neurons and glial cells to shrivel because water moves from the cells to the interstitial fluid by osmosis (Fig. 24.7). The dysfunction ranges from confusion and lethargy to seizures and coma. Thirst and oliguria (except for hypernatremia of renal origin) are common. Severe hypernatremia may cause death.
Both Volume and Concentration Clinical Dehydration Clinical dehydration is a combination of two fluid disorders: ECV deficit and hypernatremia. A person who has clinical dehydration has too small a volume of fluid in the extracellular compartment (vascular and interstitial) and the body fluids are too concentrated (Fig. 24.8).
Etiology. Clinical dehydration occurs commonly in individuals who have vomiting and diarrhea and do not know how (or are unable) to
Gain of Relatively More Salt Than Water Tube feeding Intravenous infusion of hypertonic saline Near-drowning in salt water Overuse of salt tablets Food intake with reduced fluid intake Difficulty swallowing fluids No access to water Inability to respond to thirst
Loss of Relatively More Water Than Salt Diabetes insipidus (deficient antidiuretic hormone) Tube feeding (causes obligate water loss in urine) Osmotic diuresis Prolonged emesis, diarrhea, or diaphoresis without water replacement
BOX 24.4 Causes of Hypernatremia
Increased osmolality
Cell before hypernatremia
Shriveled cell in hypernatremia
H2O
H2O
H2OH2O
H2O
H2O
H2O
H2O H2O
Interstitial fluid
Vascular fluid
FIG 24.7 Cell shriveling in hypernatremia. Increased osmolality (concentra- tion) of extracellular fluid in hypernatremia causes water to move from cells by osmosis.
Decreased vascular volume
Increased osmolality
Decreased intracellular volume
Decreased interstitial volume
FIG 24.8 Clinical dehydration. Decreased volume of extracellular fluid in vascular and interstitial compartments plus cell shriveling from increased osmolality of extracellular fluid are combined in clinical dehydration.
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 529
magnesium, chloride, bicarbonate, and phosphate. Although sodium ions are electrolytes, serum sodium imbalances are osmolality (concentra- tion) imbalances, as explained previously in this chapter. This section discusses homeostasis and imbalances of potassium, calcium, magnesium, and phosphate ions. Bicarbonate is discussed in Chapter 25 because it is important in acid–base balance and imbalances.
The concentration of an electrolyte in the plasma is different from its concentration inside cells. For normal body function, the electrolyte concentration must be normal in both areas. In clinical situations, the plasma (or serum) concentration of an electrolyte is measured. Normal serum electrolyte concentrations are listed in Table 24.1. The concentration of an electrolyte in the plasma is the net result of four processes: electrolyte intake, electrolyte absorption, electrolyte distribution, and electrolyte excretion. These processes work together in a dynamic fashion to maintain electrolyte concentrations within their normal limits (Fig. 24.10). Thus if intake of a specific electrolyte increases, excretion of that electrolyte also may increase and normalize the plasma levels. Similarly, if electrolyte intake decreases dramatically, electrolytes may be redistributed into the plasma to maintain the normal plasma concentration.
Electrolyte Intake and Absorption Electrolyte intake normally occurs orally through food and drink. It is important to remember that oral medications (e.g., magnesium antacids) also may be an important source of electrolyte intake. Intravenous fluids and nutritional solutions are common sources of parenteral intake of electrolytes. Blood transfusions may provide significant amounts of electrolytes. Less common, but important if it occurs, is intramuscular injection of the electrolyte magnesium.
Some patients have electrolyte intake through tubes into body cavities. The most obvious examples are nasogastric and gastrointestinal feeding tubes, but more unusual situations may cause significant electrolyte intake in specific individuals (e.g., irrigation of the renal pelvis with magnesium-rich solutions). Rarely, electrolyte intake may occur through such unusual routes as the lungs (e.g., near-drowning in salt water,
and may be persistent. Edema caused by increased interstitial fluid colloid osmotic pressure or blockage of lymphatic drainage frequently is localized. Decreased capillary colloid osmotic pressure occurs when the concentration of plasma proteins is decreased, as in malnutrition or liver disease (decreased protein synthesis). Edema from this cause usually is generalized.
In summary, edema represents increased interstitial fluid volume, a condition that may be local or generalized. Edema may be a sign of ECV excess (which causes increased capillary hydrostatic pressure), or it may be caused by other factors that alter the distribution of fluid between the vascular and interstitial compartments.
Sudden weight loss Postural blood pressure decrease with concurrent increased heart rate Lightheadedness, dizziness, or syncope upon standing Flat neck veins when supine or neck veins that collapse during inspiration
(older children and adults) Sunken fontanel (infants) Rapid, thready pulse Prolonged small-vein filling time Prolonged capillary refill time Oliguria Decreased skin turgor Dryness of oral mucous membranes Absence of sweat and tears Hard stools Soft, sunken eyeballs Longitudinal furrows in the tongue Thirst Increased serum sodium concentration Confusion, lethargy Coma Hypovolemic shock
BOX 24.5 Signs and Symptoms of Clinical Dehydration
TABLE 24.1 Normal Serum Electrolyte Concentrations
Electrolyte Normal Concentration Range
Calcium (total) 9–11 mg/dL (4.5–5.5 mEq/L) Magnesium 1.5–2.5 mEq/L Phosphate 2.5–4.5 mg/dL (adults and older children)
4.5–6.5 mg/dL (children) 4.3–9.3 mg/dL (neonates)
Potassium 3.5–5.0 mEq/L 3.9–5.9 mEq/L (neonates)
Sodium 135–145 mEq/L 135–162 mEq/L (neonates)
KEY POINTS • Extracellular fluid volume (ECV) deficit (saline deficit) occurs when sodium-
containing fluids are lost from the body (e.g., emesis). It is an abnormally reduced volume of the vascular and interstitial fluids. ECV deficit is character- ized by normal serum sodium concentration and manifestations of volume deficit (weight loss, poor skin turgor, postural hypotension, oliguria).
• ECV excess (saline excess) commonly is due to processes that cause the kidneys to retain sodium and water. It is an abnormally increased volume of the vascular and interstitial fluids. ECV excess is characterized by a normal serum sodium concentration and manifestations of volume excess (weight gain, peripheral edema, distended neck veins, dyspnea).
• Hyponatremia is associated with excessive antidiuretic hormone (ADH) secretion or hypotonic fluid intake. It is characterized by a low serum sodium concentration, which indicates that body fluids are abnormally dilute. Clinical manifestations (confusion, lethargy, seizure, coma) occur because of brain cell swelling.
• Hypernatremia is associated with inadequate water intake or excessive water excretion or loss. It is characterized by a high serum sodium level, which indicates that body fluids are too concentrated. Clinical manifestations (confusion, lethargy, seizure, coma) occur because of brain cell shriveling.
• Clinical dehydration occurs commonly in individuals who have gastroenteritis or other conditions that remove hypotonic sodium–containing fluids from the body. It is the combination of ECV deficit and hypernatremia. The clinical manifestations are those of both fluid disorders.
• Edema occurs when there is too much fluid in the interstitial compartment. It may be localized or generalized. The causes of edema at the capillary level are increased capillary hydrostatic pressure, increased interstitial fluid colloid osmotic pressure, blockage of lymphatic drainage, and decreased capillary colloid osmotic pressure.
PRINCIPLES OF ELECTROLYTE HOMEOSTASIS Electrolytes are ionized salts dissolved in water. The most clinically important electrolytes are the ions sodium, potassium, calcium,
530 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
Capillary hydrostatic pressure
Capillary colloid osmotic pressure
Arterial end of capillary
Venous end of capillary
Interstitial fluid hydrostatic pressure
Interstitial fluid colloid osmotic pressure
Interstitial fluid
Interstitial fluid
Normal Capillary Filtration
A
B C
Albumin
Albumin
Lymphatic vessel
Increased capillary hydrostatic pressure
Edema
Edema
Increased interstitial fluid colloid osmotic pressure
Edema
Edema
Tumor blocking lymphatic drainage
Edema
Edema
Edema
Edema
Low blood albumin Decreased capillary colloid osmotic pressure
D E
FIG 24.9 Causes of edema. A, Normal capillary filtration without edema. B, Edema caused by increased capillary hydrostatic pressure. C, Edema caused by increased interstitial fluid colloid osmotic pressure from increased capillary permeability. D, Edema caused by blocked lymphatic drainage. E, Edema caused by decreased capillary colloid osmotic pressure from hypoalbuminemia.
which is rich in magnesium) or the skin (e.g., through application of ointments to large areas of broken or burned skin). Electrolyte intake is controlled by the individual and by health care providers.
If electrolyte intake occurs orally, the electrolyte must be absorbed before it is physiologically useful. Absorption of some electrolytes, such as potassium ions, depends on concentration gradients. Absorption of other electrolytes, such as calcium, depends on the availability of binding proteins, which is influenced by the activity of vitamin D. The contents
of the gastrointestinal tract may influence electrolyte absorption. Many agents bind electrolytes and prevent them from being absorbed. For example, undigested fat in the intestines binds calcium and magnesium ions contained in food and prevents them from being absorbed. The pH of intestinal contents also influences the absorption of certain electrolytes, especially calcium ions. Medications often alter electrolyte absorption. Surgical removal of portions of the gastrointestinal tract can decrease electrolyte absorption.
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 531
corticosteroids, such as prednisone, and potassium-wasting diuretics, such as furosemide and hydrochlorothiazide. Drugs that increase urinary magnesium excretion include diuretics and aminoglycoside antibiotics, such as gentamicin. Conversely, thiazide diuretics, such as hydrochlo- rothiazide, decrease urinary excretion of calcium.
Fecal excretion of electrolytes is influenced by the type of feces produced. Diarrhea increases the excretion of potassium and magnesium ions in particular. The composition of the feces also influences the amount of electrolyte excretion. Undigested fat in the intestines binds calcium and magnesium ions that are secreted into the gastrointestinal tract and prevents them from being reabsorbed. Thus these electrolytes are excreted in the feces.
Electrolyte Loss Through Abnormal Routes When electrolytes exit the body through routes other than the normal urine, feces, and sweat, this may be termed electrolyte loss through abnormal routes. This factor alters electrolyte homeostasis in patients who have diverse pathophysiologic conditions. Examples of electrolyte loss through abnormal routes are emesis, nasogastric suction, paracentesis, hemodialysis, wound drainage, and fistula drainage. Loss of electrolytes through abnormal routes may be uncontrollable or may result from therapeutic procedures.
Electrolyte homeostasis is a dynamic interplay between the processes of electrolyte intake, electrolyte absorption, electrolyte distribution, and electrolyte excretion. In some people, electrolyte loss through abnormal routes becomes an important factor that requires adjustment of electrolyte intake and/or electrolyte excretion to prevent development of electrolyte imbalances. Individuals who have acute or chronic illnesses have many factors that tend to cause electrolyte imbalances by disrupting or interfer- ing with electrolyte intake, absorption, distribution, or excretion. As a result, they may develop single or multiple electrolyte imbalances.
Electrolyte Distribution Every fluid compartment contains electrolytes. However, the electrolyte composition differs in these various compartments. The concentrations of potassium, magnesium, and phosphate ions are higher inside cells than in the fluid outside the cells. Although total calcium ion content concentration is higher inside cells, much of the intracellular calcium is bound to other molecules; the concentration of physiologically active ionized calcium ions is higher in the extracellular fluid. The bones serve as an important reservoir of calcium, magnesium, and phosphate ions. The cells and the bones are often called the electrolyte pools.
Distribution of electrolytes between the extracellular fluid and the electrolyte pools is influenced primarily by hormones such as epinephrine (potassium ions), insulin (potassium and phosphate ions), and para- thyroid hormone (PTH) (calcium ions). Certain medications also influence electrolyte distribution. Significant movement of electrolytes between the cells and the extracellular fluid may occur within minutes. In the absence of changes in electrolyte intake and excretion, a shift of electrolytes from the extracellular fluid into the electrolyte pools will decrease the plasma electrolyte concentration. Conversely, a shift of electrolyte from an electrolyte pool into the extracellular fluid will increase the plasma electrolyte concentration.
Electrolyte Excretion Electrolyte excretion occurs through urine, feces, and sweat. Urinary excretion of some electrolytes is influenced by hormones (e.g., aldosterone increases potassium ion excretion), although factors such as the flow rate of renal tubular fluid are also influential. Many different medications alter the rate of urinary excretion of electrolytes. For example, commonly used drugs that increase urinary excretion of potassium include
NEED TO INCREASE
ELECTROLYTE INTAKE
INCREASED ELECTROLYTE
EXCRETION
ELECTROLYTE INTAKE
Diarrhea
Polyuria
Sweat
Drainage
ELECTROLYTE EXCRETION
ELECTROLYTE ABSORPTION
ELECTROLYTE DISTRIBUTION
ELECTROLYTE LOSS
THROUGH ABNORMAL
ROUTES
FIG 24.10 Electrolyte homeostasis. Electrolyte homeostasis is the interplay of electrolyte intake and absorption, electrolyte distribution, electrolyte excretion, and electrolyte loss through abnormal routes. If electrolyte excretion or loss through abnormal routes increases, electrolyte intake also must increase to prevent electrolyte imbalance.
KEY POINTS • The electrolyte composition of the body is maintained by a careful balance
of electrolyte intake, absorption, distribution, and excretion. Electrolyte imbalances result from disruption of one or more of these processes or from electrolyte loss through abnormal routes.
• The plasma concentration of an electrolyte may not reflect the intracellular concentration. Cells contain higher concentrations of potassium, magnesium, and phosphate ions, whereas the extracellular fluid contains higher concentra- tions of sodium, chloride, calcium, and bicarbonate ions.
ELECTROLYTE IMBALANCES Electrolyte imbalances are widespread in many pathophysiologic condi- tions. An electrolyte imbalance may be a total body imbalance, or it may be an imbalance in the distribution of electrolytes within compartments, with the total body amount remaining normal. Based on the principles of electrolyte homeostasis explained in the previous section of this chapter, an excess of electrolytes in the extracellular fluid may be caused by increased electrolyte intake or absorption, shift of electrolytes from an electrolyte pool into the extracellular fluid, and decreased electrolyte excretion, either singly or in combination. Conversely, a deficit of elec- trolytes in the extracellular fluid may be caused by decreased electrolyte intake or absorption, shift of electrolytes from the extracellular fluid to an electrolyte pool, increased electrolyte excretion, loss of electrolytes through abnormal routes, or some combination of these factors.
Plasma Potassium The normal concentration of potassium ions in plasma, is 3.5 to 5.0 mEq/L (may vary slightly with different laboratories), except in
532 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
Hyperkalemia If the serum potassium concentration rises above 5.0 mEq/L (the upper limit of normal), hyperkalemia is present. Hyperkalemia denotes an elevation of potassium ion concentration in the extracellular fluid. As mentioned previously, most of the potassium ions in the body are inside cells, and many factors cause potassium ions to move into or out of the cells. Thus total body potassium content may be increased, normal, or decreased in hyperkalemia, depending on its cause.
Etiology. Hyperkalemia is caused by factors that increase potassium intake, shift potassium from the cells into the extracellular fluid, and decrease potassium excretion. For example, massive blood transfusion can cause hyperkalemia by increased potassium intake because the transfused fluid surrounding the red blood cells (RBCs) is high in potassium that was released from the RBCs during storage. Large numbers of potassium ions shifting from cells into the extracellular fluid after a crushing injury or massive cell death from cytotoxic chemotherapy will cause hyperkalemia. People who take two or more drugs that can increase plasma potassium concentration need monitoring for hyperkalemia. Several factors together can cause hyperkalemia, such as when an individual who develops decreased potassium excretion because of oliguric chronic kidney disease continues to have a normal dietary potassium intake. Specific causes of hyperkalemia are summarized by category in Box 24.7.
Clinical manifestations. As might be expected from the role of potassium ions in establishment of the resting membrane potential of muscle cells, hyperkalemia causes muscle dysfunction. As hyperkalemia
neonates, in whom it may be higher. Most of the potassium ions in the body are inside cells; the standard serum potassium measurement gives only the concentration of the small portion of potassium ions in the extracellular fluid. Because a number of factors cause potassium ions to move into or out of body cells, concentration of potassium in the plasma and total body potassium content are not necessarily correlated. Whether or not they are accompanied by total body potassium imbalances, plasma potassium imbalances may cause clinically significant signs and symptoms.
Hypokalemia Hypokalemia denotes a decreased potassium ion concentration in the extracellular fluid. A decrease in the plasma potassium concentration does not necessarily denote a decrease in total body potassium. Thus hypokalemia may coexist with a total body potassium deficit, a total body potassium excess, or a normal total body potassium ion concentration.
Etiology. Hypokalemia is caused by factors that decrease potassium intake, shift potassium from the extracellular fluid into the cells, increase potassium excretion through the normal routes, and cause potassium loss from the body by some abnormal route. Potassium-wasting diuretics and corticosteroids such as prednisone are well-known causes of hypokalemia from increased renal potassium excretion. The hormone aldosterone increases potassium excretion in urine; hypokalemia is associated with pathophysiologic conditions such as compensated heart failure and cirrhosis that are accompanied by increased aldosterone levels. Black licorice contains a substance that increases renal potassium excretion. Many traditional Chinese medicines and other herbal prepara- tions contain black licorice, and excessive ingestion of these agents or black licorice candy leads to hypokalemia. In many cases, several factors lead to hypokalemia. For example, people who have eating disorders may eat very little (decreased potassium intake) and abuse diuretics and/or laxatives (increased potassium excretion). Specific causes of hypokalemia are listed in Box 24.6.
Clinical manifestations. The resting membrane potential of muscle cells is determined by the ratio of intracellular to extracellular potassium ion concentration. For this reason, potassium imbalances cause altered function of muscles (skeletal, smooth, and cardiac). In hypokalemia, both smooth and skeletal muscle cells are hyperpolarized (more electrical charge than usual across the cell membrane). Therefore these muscles are less reactive to stimuli. The resulting clinical manifestations include abdominal distention, diminished bowel sounds, paralytic ileus, postural hypotension, skeletal muscle weakness, and flaccid paralysis. The skeletal muscle weakness of hypokalemia is bilateral weakness that typically begins in the lower extremities and ascends. It may involve the respiratory muscles, causing respiratory paralysis more commonly than does hyperkalemia.
Many types of cardiac dysrhythmias arise from hypokalemia. Cardiac muscle cells usually become hyperpolarized with hypokalemia. However, with very low plasma potassium concentrations, hypopolarization of cardiac muscle occurs, most likely because of decreased potassium conductance. Hypokalemia also increases the rate of diastolic depolariza- tion, which may give rise to ectopic beats, decreases conduction velocity in the atrioventricular node, prolongs cardiac action potentials by decreasing the rate of repolarization, shortens the absolute refractory period, and prolongs the relative refractory period.
Hypokalemia also may cause polyuria by interfering with the action of ADH at the renal tubules. The plasma potassium concentration at which the various clinical manifestations of hypokalemia appear depends on individual responsiveness and the presence of other concurrent electrolyte and acid–base disorders. Chronic hypokalemia can cause rhabdomyolysis (skeletal muscle breakdown), selective myocardial cell necrosis, and nephropathy.
Decreased Potassium Intake Anorexia NPO (nothing by mouth) orders and intravenous solutions without potassium Fasting Unbalanced diet
Shift of Potassium From Extracellular Fluid to Cells Alkalosis Excess insulin (e.g., during total parenteral nutrition) Excess β-adrenergic stimulation Hypokalemic familial periodic paralysis
Increased Potassium Excretion Through Normal Routes Renal Route Potassium-wasting diuretics Corticosteroid therapy Cushing disease Hyperaldosteronism Excessive ingestion of black licorice (glycyrrhizin) Hypomagnesemia Parenteral piperacillin or similar agents Amphotericin B, cisplatin, cyclosporine, and many other drugs
Fecal Route Diarrhea (includes laxative overuse or abuse)
Skin Route Excessive diaphoresis
Loss of Potassium Through Abnormal Routes Emesis Gastric suction Fistula drainage
BOX 24.6 Causes of Hypokalemia
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 533
The total serum calcium measurement includes all of the calcium (bound plus unbound). The normal range of total serum calcium concentration in adults is 9 to 11 mg/dL or 4.5 to 5.5 mEq/L (may vary slightly with different laboratories). Unless a calcium value specifies ionized calcium, it is total calcium. The ionized calcium measurement includes only the unbound ionized form. The normal range of ionized calcium in adults is 4.0 to 5.0 mg/dL, about half of the total calcium (varies with different laboratories). Clinically significant calcium imbalances are caused by alterations in the plasma concentration of unbound ionized calcium.
Hypocalcemia Hypocalcemia occurs if the serum calcium concentration drops below the lower limit of normal. If the fraction of unbound ionized calcium in the blood is decreased by more calcium binding to plasma proteins or other organic ions such as citrate, the total serum calcium concentra- tion (the usual laboratory measurement) may be normal, but ionized hypocalcemia is present and may cause signs and symptoms. Ionized hypocalcemia is common with massive transfusion of blood or fresh frozen plasma because citrate is part of the anticoagulant used to preserve both of these solutions.
Etiology. Hypocalcemia is caused by factors that decrease calcium intake or absorption, decrease the physiologic availability of calcium, and increase calcium excretion. For example, hypocalcemia in pancreatitis arises from impaired fat digestion caused by lack of pancreatic lipase in the intestines. Both dietary calcium and calcium ions secreted into the intestine from the extracellular fluid bind to undigested fat in the intestine and are excreted in the feces. Thus both decreased calcium absorption and increased calcium excretion play a part in hypocalcemia associated with pancreatitis. In addition, calcium ions can bind to necrotic tissue in the pancreas, decreasing their physiologic availability. Ionized hypocalcemia is common in intensive care unit patients, again due to multiple factors. PTH increases plasma calcium concentration; thus hypocalcemia occurs in people who have hypoparathyroidism from parathyroid injury during thyroid surgery or other causes. Box 24.8 lists specific causes of hypocalcemia organized according to the general etiologic factors.
Clinical manifestations. Calcium ions play an important role in determining the speed of ion fluxes through nerve and muscle cell membranes. Thus calcium imbalances alter normal neuromuscular excitability. Clinical manifestations of hypocalcemia are those of increased neuromuscular excitability: positive Trousseau sign, positive Chvostek sign, paresthesias, muscle twitching and cramping, hyperactive reflexes, carpal spasm, pedal spasm, tetany, laryngospasm, seizures, and cardiac dysrhythmias. The increased neuromuscular excitability of hypocalcemia is caused by a decrease in the threshold potential of excitable cells so that action potentials are generated more easily. Cardiac effects of hypocalcemia arise from the prolonged plateau phase of the cardiac action potential, impaired atrioventricular and intraventricular conduc- tion, and impaired myocardial contractility, which can cause heart failure.
Positive Trousseau sign is occurrence of a carpal spasm after occlu- sion of arterial blood flow to the hand for approximately 3 minutes. Positive Chvostek sign is spasm of muscles in the cheek and corner of the mouth produced by tapping the facial nerve in front of the ear. Positive Trousseau and Chvostek signs are general indicators of increased neuromuscular excitability from any cause, so they must be interpreted in the context of other clinical manifestations and specific risk factors for hypocalcemia. Chvostek sign may be positive in neonates without electrolyte imbalances.
Hypercalcemia Hypercalcemia occurs when the serum calcium concentration rises above the upper limit of normal (11 mg/dL or 5.5 mEq/L). It
develops, smooth muscle and skeletal muscle cells become hypopolarized. The main clinical manifestation at this stage is mild intestinal cramping and diarrhea, which occurs only in some individuals. As hyperkalemia worsens, skeletal muscle cells become hypopolarized to the extent that their resting membrane potentials lie above their threshold potential; once they have discharged, they are unable to contract again. This situation causes the typical skeletal muscle weakness and flaccid paralysis of hyperkalemia. The skeletal muscle weakness is an ascending weakness that appears first in the lower extremities. Both hypokalemia and hyperkalemia cause skeletal muscle weakness and/or paralysis, but the underlying alterations in the resting membrane potentials are different.
Cardiac muscle undergoes the same changes in resting membrane potential as skeletal muscle in hyperkalemia. In addition, hyperkalemia decreases the duration and rate of rise of cardiac action potentials and decreases conduction velocity in the heart. These pathophysiologic mechanisms underlie the cardiac dysrhythmias of hyperkalemia. Severe hyperkalemia causes cardiac arrest.
The plasma potassium concentration at which each of these clinical manifestations occurs varies, depending on the rapidity of rise of the potassium concentration, the causes of the hyperkalemia, and other concurrent electrolyte or acid–base imbalances. Patients who have chronic end-stage renal disease often undergo potassium adaptation and have relatively mild symptoms at high plasma potassium concentrations that would be disabling in other persons. The mechanisms of potassium adaptation include increased aldosterone levels that increase potassium excretion by the colon and shift potassium ions from extracellular fluid into cells, helping normalize resting membrane potentials.
Plasma Calcium Calcium in the plasma is present in three forms: some calcium ions are bound to plasma proteins (such as albumin), some are bound to small organic ions (such as citrate), and the rest are unbound. Only the free ionized calcium is physiologically active. Two laboratory measure- ments are available for calcium: total serum calcium and ionized calcium.
Increased Potassium Intake Excessive or too-rapid intravenous potassium infusion Insufficiently mixed intravenous potassium infusion Large transfusion of stored blood Massive doses of potassium penicillin G
Shift of Potassium From Cells to Extracellular Fluid Acidosis caused by nonorganic acids Insufficient insulin Crushing injury Cytotoxic drugs (tumor lysis syndrome) Hyperkalemic periodic paralysis β-Adrenergic blockade with prolonged strenuous exercise
Decreased Potassium Excretion Oliguria (such as in hypovolemia, acute kidney injury, or chronic end-stage
renal disease) Potassium-sparing diuretics Adrenal insufficiency Renin-deficient states Drugs that reduce aldosterone effects (direct renin inhibitors, angiotensin-
converting enzyme [ACE] inhibitors, angiotensin II receptor antagonists, and selective aldosterone blockers)
Nephrotoxic drugs
BOX 24.7 Causes of Hyperkalemia
534 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
diminished reflexes, headache, confusion, lethargy, personality change, and cardiac dysrhythmias. The decreased neuromuscular excitability is caused by elevation of the threshold potential of excitable cells. Cardiac effects of hypercalcemia include shortened plateau phase of the action potential, increased rate of diastolic depolarization of sinus node cells, and delayed atrioventricular conduction. Renal calculi may occur as a result of the high calcium concentration of the urine. Hypercalcemia caused by bone resorption may lead to pathologic fractures.
Plasma Magnesium The normal serum magnesium concentration is 1.5 to 2.5 mEq/L (may vary slightly with different laboratories). Similar to calcium, magnesium ions also are present in the blood as bound (physiologically inactive) and unbound ionized (physiologically active) forms. Measurement of ionized magnesium levels is available in some research settings. Plasma magnesium concentration imbalances may occur concurrent with or in the absence of total body magnesium content imbalances.
Hypomagnesemia If the serum magnesium concentration decreases below the lower limit of normal (1.5 mEq/L), hypomagnesemia is present. Hypomagnesemia indicates a decreased magnesium concentration of the extracellular fluid and does not necessarily indicate a total body magnesium deficit (although the two may occur concurrently).
Etiology. Causes of hypomagnesemia are decreased magnesium intake or absorption, decreased physiologic availability of magnesium, increased magnesium excretion, and loss of magnesium by an abnormal route. Chronic alcoholism is a major risk factor for hypomagnesemia because it is associated with decreased magnesium intake, decreased physiologic availability of magnesium, increased urinary and fecal magnesium excretion, and magnesium loss through emesis. Hypomag- nesemia often causes hypokalemia by increasing urinary excretion of potassium. Hypomagnesemia also may cause hypocalcemia by inhibiting secretion of PTH. In both cases, correction of hypomagnesemia is necessary before the other electrolyte imbalance can be corrected. Specific causes of hypomagnesemia are listed in Box 24.10.
Clinical manifestations. Magnesium ions in the extracellular fluid normally depress the release of acetylcholine at neuromuscular junctions. If too few magnesium ions are present, excessive amounts of acetylcholine are released (Fig. 24.11). Therefore the clinical manifestations of hypomagnesemia are those of increased neuromuscular excitability. Such manifestations may include insomnia, hyperactive reflexes, muscle cramps, muscle twitching, grimacing, positive Chvostek sign, positive Trousseau sign, nystagmus, dysphagia, ataxia, tetany, and seizures. Cardiac dysrhythmias also occur.
Hypomagnesemia causes decreased activity of the enzyme that drives the Na+–K+ pump in cell membranes so that intracellular potassium concentration decreases in the myocardium. Increased spontaneous firing in the sinus node, shortening of the absolute refractory period, and lengthening of the relative refractory period contribute to cardiac dysrhythmias in hypomagnesemia.
Hypermagnesemia If the serum magnesium concentration rises above the upper limit of normal (2.5 mEq/L), hypermagnesemia is present. Hypermagnesemia indicates an excess of magnesium in the extracellular fluid.
Etiology. The major causes of hypermagnesemia are increased magnesium intake and decreased magnesium excretion. Shift of magnesium from bones to extracellular fluid is seen transiently in some stages of hyperparathyroidism. Hypermagnesemia from excessive intake of magnesium in laxatives and antacids occurs in people of any age who have unrecognized renal impairment or receive high doses. Older
indicates an elevation of the calcium concentration of the extracellular fluid.
Etiology. Hypercalcemia is caused by factors that increase calcium intake or absorption, cause a shift of calcium from bone to extracellular fluid, and decrease calcium excretion. Because PTH shifts calcium out of bone, hyperparathyroidism causes hypercalcemia. Many malignant tumors produce chemicals that circulate in the blood and shift calcium from bones into extracellular fluid. These bone-resorbing factors include PTH-related peptide and prostaglandins. In addition, circulating factors in malignancy may decrease renal excretion of calcium ions, which also contributes to hypercalcemia. Specific causes of hypercalcemia are listed by category in Box 24.9.
Clinical manifestations. Hypercalcemia causes decreased neuro- muscular excitability. Clinical manifestations of hypercalcemia include anorexia, nausea, emesis, constipation, fatigue, polyuria, muscle weakness,
Decreased Calcium Intake or Absorption Diet with insufficient calcium and vitamin D Chronic kidney disease (deficient activated vitamin D) Excessive dietary phytates or oxalates Steatorrhea Pancreatitis Chronic diarrhea (includes laxative overuse or abuse) Malabsorption syndromes
Decreased Physiologic Availability of Calcium Hypoparathyroidism Excessive phosphate intake Tumor lysis syndrome (high phosphate) Hypomagnesemia Alkalosis Large transfusion of citrated blood or fresh frozen plasma Rapid infusion of plasma expanders that bind calcium Elevated plasma free fatty acids Chronic kidney disease
Increased Calcium Excretion Through Normal Routes Steatorrhea Pancreatitis
BOX 24.8 Causes of Hypocalcemia
Increased Calcium Intake or Absorption Milk-alkali syndrome Vitamin D overdose (includes shark cartilage supplements)
Shift of Calcium From Bone to Extracellular Fluid Hyperparathyroidism Immobilization Paget disease Bone tumors Multiple myeloma Leukemia Nonosseous malignancies that produce bone-resorbing factors
Decreased Calcium Excretion Thiazide diuretics Familial hypocalciuric hypercalcemia
BOX 24.9 Causes of Hypercalcemia
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 535
Decreased Magnesium Intake or Absorption Chronic alcoholism Malnutrition Prolonged intravenous therapy without magnesium supplementation Ileal resection Chronic diarrhea (includes laxative overuse or abuse) Malabsorption syndromes Steatorrhea Pancreatitis
Decreased Physiologic Availability of Magnesium Elevated plasma free fatty acids
Increased Magnesium Excretion Through Normal Routes Renal Route Diabetic ketoacidosis Chronic alcoholism Hyperaldosteronism Diuretic therapy Aminoglycoside (e.g., gentamicin) toxicity Amphotericin B, cisplatin, and many other drugs
Fecal Route Steatorrhea Pancreatitis
Magnesium Loss Through Abnormal Routes Emesis Gastric suction Fistula drainage
BOX 24.10 Causes of Hypomagnesemia
Increased Magnesium Intake or Absorption Ingestion or aspiration of seawater Excessive ingestion of magnesium-containing medications (e.g., laxatives,
antacids) Excessive intravenous infusion of magnesium
Decreased Magnesium Excretion Oliguric renal disease Adrenal insufficiency
BOX 24.11 Causes of Hypermagnesemia
Mg2+ Mg2+ Mg2+
Mg2+
Mg2+
Mg2+
Mg2+
Mg2+
ACh
ACh
ACh ACh
ACh ACh
ACh Synaptic
cleft
Motor nerve axon
A B C
ACh ACh
Skeletal muscle
FIG 24.11 Acetylcholine (ACh) release at neuromuscular junctions is altered in magnesium imbalances. A, Normal magnesium concentration suppresses the release of ACh at neuromuscular junctions to normal levels. B, In hypomagnesemia, more ACh is released at neuromuscular junctions, causing increased neuro- muscular excitability. C, In hypermagnesemia, less ACh is released at neuromuscular junctions, causing decreased neuromuscular excitability.
adults are at high risk from these magnesium-containing medications. Individuals who have oliguria, as in chronic end-stage renal disease, are another high-risk group for development of hypermagnesemia. Specific causes of hypermagnesemia are summarized in Box 24.11.
Clinical manifestations. Too many magnesium ions in the extracel- lular fluid depress neuromuscular function by decreasing the release
of acetylcholine at neuromuscular junctions (see Fig. 24.11). Thus manifestations of hypermagnesemia include decreased deep tendon reflexes, lethargy, hypotension, flushing, diaphoresis, drowsiness, flaccid paralysis, respiratory depression, bradycardia, cardiac dysrhythmias, and even cardiac arrest. Mechanisms that cause the cardiac effects of hypermagnesemia include decreased cardiac conduction and depression of membrane excitability.
Plasma Phosphate The normal range of phosphate concentration in adult plasma is 2.5 to 4.5 mg/dL (may vary slightly with different laboratories). Symptomatic phosphate imbalances are less common than other electrolyte imbalances, but, like other electrolyte imbalances, they may be fatal if untreated.
Hypophosphatemia Hypophosphatemia is present when the phosphate concentration in the plasma decreases below the lower limit of normal (2.5 mg/dL). People who have moderate hypophosphatemia may or may not have symptoms, but people with severe hypophosphatemia (plasma phosphate concentration less than 1.5 mg/dL) have severe clinical manifestations that are fatal unless treated successfully.
Etiology. Hypophosphatemia is caused by factors that decrease phosphate intake, shift phosphate from extracellular fluid to cells, increase phosphate excretion, and cause loss of phosphate through abnormal routes. Frequently, many factors combine to produce severe symptomatic hypophosphatemia. Any factor that causes a rapid increase in cellular
536 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
metabolism will cause phosphate to shift from extracellular fluid into cells. Patients who are severely malnourished (such as cancer patients with advanced disease or people who have severe anorexia nervosa) are at high risk for severe symptomatic hypophosphatemia after nutritional replacement is started because of their increased cellular metabolism and previously depleted phosphate stores. Specific factors that cause hypophosphatemia are summarized in Box 24.12.
Clinical manifestations. Phosphate is an important component of adenosine triphosphate (ATP), the major source of energy for many cellular processes. Signs and symptoms of symptomatic hypophospha- temia are due, in part, to decreased amounts of ATP within the cells. Another contributing mechanism is tissue hypoxia caused by decreased amounts of 2,3-bisphosphoglycerate (2,3-BPG) in the RBCs. Signs and symptoms include anorexia, malaise, paresthesias, hemolysis, diminished reflexes, muscle aches, muscle weakness, respiratory failure caused by weak diaphragm muscles, confusion, stupor, seizures, coma, cardiac dysrhythmias, and impaired cardiac function. The impaired cardiac function of severe hypophosphatemia arises from decreased cardiac contractility concurrent with increased left ventricular end-diastolic pressure and may cause heart failure.
Hyperphosphatemia Hyperphosphatemia is an increase of the serum phosphate concentration above the upper limit of normal (4.5 mg/dL).
Etiology. Hyperphosphatemia may be caused by increased phosphate intake, shift of phosphate from cells or bones to extracellular fluid, and decreased phosphate excretion. Examples of specific causes in these categories are listed in Box 24.13. Hyperphosphatemia is common in people who have oliguric renal disease, either acute or chronic. In chronic kidney disease, renal phosphate excretion is severely decreased by substantial nephron loss and elevated fibroblast growth factor 23 (FGF-23), which inhibits phosphate excretion. In addition, intestinal absorption of dietary phosphate continues and elevated parathyroid
Increased Phosphate Intake or Absorption Overzealous phosphate therapy Excessive use of phosphate-containing enemas or laxatives
Shift of Phosphate From Cells to Extracellular Fluid Tumor lysis syndrome Crushing injury Rhabdomyolysis
Decreased Phosphate Excretion End-stage renal disease Oliguric acute kidney injury Adrenal insufficiency
BOX 24.13 Causes of Hyperphosphatemia
KEY POINTS • Plasma electrolyte deficits are caused by factors that decrease electrolyte
intake or absorption, shift electrolytes from the extracellular fluid to an electrolyte pool, increase electrolyte excretion, and cause loss of electrolytes through abnormal routes.
• Plasma electrolyte excesses are caused by factors that increase electrolyte intake or absorption, shift electrolytes from an electrolyte pool to the extracellular fluid, and decrease electrolyte excretion.
• Abnormalities in plasma electrolyte concentrations may profoundly affect cellular function. Excitable cells, such as nerve and muscle, are particularly sensitive to electrolyte imbalances.
• Manifestations of potassium imbalances are due to changes in resting membrane potentials. Hypokalemia causes hyperpolarization; hyperkalemia causes hypopolarization. Both hyperkalemia and hypokalemia cause skeletal muscle weakness, flaccid paralysis, and cardiac dysrhythmias.
• Manifestations of calcium imbalances are caused by changes in the threshold potential of nerve and muscle cells. Hypocalcemia decreases the threshold potential, causing hyperexcitability (twitching, tetany); hypercalcemia increases the threshold potential, causing neuromuscular depression (hyporeflexia).
• Manifestations of magnesium imbalances are similar to those of calcium imbalances. Magnesium ions normally inhibit release of acetylcholine at neuromuscular junctions. Hypomagnesemia increases neuromuscular excitability (hyperreflexia and twitching), and hypermagnesemia depresses neuromuscular excitability (hyporeflexia and flaccid paralysis).
• Symptomatic hypophosphatemia is characterized by manifestations of generalized cellular adenosine triphosphate (ATP) deficiency. Hyperphos- phatemia may cause hypocalcemia, with resulting increased neuromuscular excitability, or it may be associated with precipitation of calcium phosphate into soft tissues of the body.
Decreased Phosphate Intake or Absorption Chronic alcoholism Chronic diarrhea Malabsorption syndromes Excessive or long-term use of antacids that bind phosphate
Shift of Phosphate From Extracellular Fluid to Cells Refeeding after starvation (includes anorexia nervosa) Total parenteral nutrition Hyperventilation (respiratory alkalosis) Insulin Epinephrine Intravenous glucose, fructose, bicarbonate, or lactate
Increased Phosphate Excretion Through the Normal Renal Route Alcohol withdrawal Diuretic phase after extensive burns Diabetic ketoacidosis Diuretic therapy
Phosphate Loss Through Abnormal Routes Emesis Hemodialysis
BOX 24.12 Causes of Hypophosphatemia
hormone in chronic kidney disease shifts phosphate from bones into extracellular fluid.
Clinical manifestations. Clinical manifestations of hyperphospha- temia depend on the effect of the elevated phosphate ion concentration on calcium ions. Typically, hyperphosphatemia causes hypocalcemia. The signs and symptoms are thus the manifestations of increased neuromus- cular excitability that were presented in the discussion of hypocalcemia. However, in some patients, especially those who have chronic kidney disease, hyperphosphatemia causes deposition of calcium phosphate salts in the soft tissues of the body. These patients develop signs and symptoms such as aching and stiffness of joints, itching (pruritus), and conjunctivitis, depending on the areas in which these salts precipitate.
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 537
This chapter presents the principles of fluid and electrolyte homeostasis and imbalances. The following boxes summarize pediatric and geriatric considerations, respectively. Fluid and electrolyte homeostasis involves the continuous interplay of intake, absorption, distribution, and excre- tion of fluid and electrolytes. Loss of fluid and electrolytes through abnormal routes may also occur. When the normal mechanisms are impaired or overwhelmed, fluid and electrolyte imbalances occur. Fluid
imbalances may involve the volume or the concentration of body fluid. Plasma electrolyte imbalances may be deficits or excesses and may not reflect total body electrolyte deficits or excesses. Signs and symptoms of fluid and electrolyte imbalances are summarized in Table 24.2. The pathophysiology of specific fluid and electrolyte imbalances can be derived from a working knowledge of normal fluid and electrolyte homeostasis.
S U M M A R Y
• Infants have more extracellular fluid than intracellular fluid; this proportion reverses by a few months of age.
• About 75% of the body weight of a term infant is water; this percentage is even higher in preterm infants. The percentage of body weight that is water decreases as the child ages.
• In the first few days after birth, an infant loses fluid equal to 5% to 10% of its body weight; this is a normal process during adjustment to extrauterine life.
• Neonates have a high metabolic rate and thus a high turnover rate of water. • Infants have increased insensible water excretion caused by proportionately
large body surface area, proportionately large respiratory mucosa surface area, vasomotor immaturity, and increased skin permeability. Preterm infants have even greater insensible water excretion through the skin because of flaccid extended posture (and thus greater exposed body surface area) and greater vasomotor immaturity.
• Use of phototherapy and radiant heat warmers increases insensible water excretion.
• Glomerular filtration rate is lower in infants than in adults. • The kidneys of infants have limited ability to concentrate urine or to dilute it;
thus infants are unable to excrete a large load of water effectively or to conserve fluid when needed.
• Infants communicate thirst by crying, which may not be understood by their caregivers.
• Assessment of extracellular volume imbalances in infants should focus on the tension of the fontanel rather than the degree of filling of neck veins.
• Infants whose caregivers use powdered formula are at high risk for hyperna- tremia if the formula is reconstituted with extra powder to “strengthen” the baby.
• Laboratory normal ranges of electrolytes generally are wider for infants than for older children and adults.
• Neonatal hypocalcemia may occur in infants who needed resuscitation at birth or have high-risk conditions.
• Preterm infants may have reduced body calcium stores because fetal calcium stores are built during the last trimester of pregnancy; these infants have increased incidence of neonatal hypocalcemia.
• Assessment of increased neuromuscular excitability (hypocalcemia and hypomagnesemia) in infants should not include Chvostek sign; this sign is often positive in normal neonates. Increased neuromuscular excitability in infants includes jitteriness, hyperactive reflexes, and a high-pitched cry.
• Neonates whose mothers were given magnesium sulfate for eclampsia in the 24 hours before birth may be born with hypermagnesemia. Hypermagnesemic infants lie in a flaccid, extended posture.
PEDIATRIC CONSIDERATIONS Fluid and Electrolyte Homeostasis and Imbalances
• Older adults have less body water than do middle-aged adults because body composition changes with increasing age (decreased muscle mass, increased fat in internal organs). About 50% of the body weight of a lean older man is water, and about 45% of the body weight of a lean older woman is water; the percentage is lower in obese older adults.
• Glomerular filtration rate is lower in older adults than in middle-aged adults. • The kidneys of older adults are less able to concentrate urine and thus less
able to conserve fluid when needed. This decreased ability to concentrate urine also is responsible for nocturia, because a larger-than-normal volume of urine is produced at night.
• Older adults have a reduced thirst response when the osmolality of body fluids increases; thus they may not be aware that they are becoming dehydrated.
• Older adults are a high-risk group for clinical dehydration. • Decreased skin turgor is not reliable as a sign of extracellular fluid volume
depletion in older adults because of age-related changes in collagen and elastin. Decreased skin turgor (skin tenting when pinched) may occur in older adults who have normal fluid volume.
• Older adults who receive tube feedings are at higher risk for hypernatremia than are middle-aged adults.
• Older adults probably absorb more magnesium from antacids and cathartics than do middle-aged adults. With age-related changes in renal excretion, older adults who use oral magnesium laxatives or antacids regularly are at high risk for hypermagnesemia.
GERIATRIC CONSIDERATIONS Fluid and Electrolyte Homeostasis and Imbalances
538 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
TABLE 24.2 Summary of Signs and Symptoms of Fluid and Electrolyte Imbalances
Imbalance Heart Blood Vessels Interstitial Area CNS Lungs Skeletal Muscle Neuromuscular Excitability Gastrointestinal Tract Kidneys Other
↓ Extracellular volume
Tachycardia Postural blood pressure decrease with concurrent heart rate increase, flat neck veins, ↑ small-vein filling time, thready pulse
↓ Skin turgor; soft, sunken eyeballs; longitudinal furrows in tongue
Lightheadedness, syncope
Dry oral mucous membranes, hard stools
Oliguria Sudden weight loss, sunken fontanel (infants), no tears or sweat, thirst with severe ↓ ECV
↑ Extracellular volume
Distended neck veins, bounding pulse
Edema Crackles, dyspnea, orthopnea, frothy sputum
Hepatomegaly Sudden weight gain, bulging fontanel (infants)
↓ Na+ Confusion, lethargy, coma, seizures
Anorexia, nausea, emesis Malaise, headache
↑ Na+ Confusion, lethargy, coma, seizures
Oliguria Thirst
↓ K+ Dysrhythmias Postural hypotension Ascending weakness, flaccid paralysis
Abdominal distention, bloating, ↓ bowel sounds, constipation, paralytic ileus
Polyuria
↑ K+ Dysrhythmias, cardiac arrest
Ascending weakness, flaccid paralysis
Transient mild cramping, diarrhea
↓ Ca++ Dysrhythmias, impaired myocardial contractility
Seizures Twitching, cramping, carpal spasm, pedal spasm
Increased excitability, Trousseau sign, Chvostek sign, paresthesias, hyperactive reflexes, tetany
Laryngospasm
↑ Ca++ Dysrhythmias Confusion, lethargy, personality change
Weakness Decreased excitability, depressed reflexes
Anorexia, nausea, emesis, constipation
Polyuria Fatigue, headache
↓ Mg++ Dysrhythmias Insomnia, seizures Twitching, cramping, grimacing, tremors
Increased excitability, Trousseau sign, Chvostek sign, hyperactive reflexes, tetany
Dysphagia Nystagmus, ataxia
↑ Mg++ Bradycardia, dysrhythmias, cardiac arrest
Hypotension, flushing Drowsiness, lethargy Respiratory depression Flaccid paralysis Depressed reflexes Diaphoresis
↓ Pi Impaired cardiac function, decreased cardiac output
Confusion, stupor, coma, seizures
Respiratory failure Aching, weakness Paresthesias, depressed reflexes Anorexia Malaise, hemolysis
↑ Pi (may cause ↓ Ca++)
If Ca++ remains high, damage from deposition of crystals
If Ca++ remains high, pruritus, conjunctivitis, arthritis
CNS, Central nervous system; ECV, extracellular fluid volume; Pi, inorganic phosphate.
CHAPTER 24 Fluid and Electrolyte Homeostasis and Imbalances 539
TABLE 24.2 Summary of Signs and Symptoms of Fluid and Electrolyte Imbalances
Imbalance Heart Blood Vessels Interstitial Area CNS Lungs Skeletal Muscle Neuromuscular Excitability Gastrointestinal Tract Kidneys Other
↓ Extracellular volume
Tachycardia Postural blood pressure decrease with concurrent heart rate increase, flat neck veins, ↑ small-vein filling time, thready pulse
↓ Skin turgor; soft, sunken eyeballs; longitudinal furrows in tongue
Lightheadedness, syncope
Dry oral mucous membranes, hard stools
Oliguria Sudden weight loss, sunken fontanel (infants), no tears or sweat, thirst with severe ↓ ECV
↑ Extracellular volume
Distended neck veins, bounding pulse
Edema Crackles, dyspnea, orthopnea, frothy sputum
Hepatomegaly Sudden weight gain, bulging fontanel (infants)
↓ Na+ Confusion, lethargy, coma, seizures
Anorexia, nausea, emesis Malaise, headache
↑ Na+ Confusion, lethargy, coma, seizures
Oliguria Thirst
↓ K+ Dysrhythmias Postural hypotension Ascending weakness, flaccid paralysis
Abdominal distention, bloating, ↓ bowel sounds, constipation, paralytic ileus
Polyuria
↑ K+ Dysrhythmias, cardiac arrest
Ascending weakness, flaccid paralysis
Transient mild cramping, diarrhea
↓ Ca++ Dysrhythmias, impaired myocardial contractility
Seizures Twitching, cramping, carpal spasm, pedal spasm
Increased excitability, Trousseau sign, Chvostek sign, paresthesias, hyperactive reflexes, tetany
Laryngospasm
↑ Ca++ Dysrhythmias Confusion, lethargy, personality change
Weakness Decreased excitability, depressed reflexes
Anorexia, nausea, emesis, constipation
Polyuria Fatigue, headache
↓ Mg++ Dysrhythmias Insomnia, seizures Twitching, cramping, grimacing, tremors
Increased excitability, Trousseau sign, Chvostek sign, hyperactive reflexes, tetany
Dysphagia Nystagmus, ataxia
↑ Mg++ Bradycardia, dysrhythmias, cardiac arrest
Hypotension, flushing Drowsiness, lethargy Respiratory depression Flaccid paralysis Depressed reflexes Diaphoresis
↓ Pi Impaired cardiac function, decreased cardiac output
Confusion, stupor, coma, seizures
Respiratory failure Aching, weakness Paresthesias, depressed reflexes Anorexia Malaise, hemolysis
↑ Pi (may cause ↓ Ca++)
If Ca++ remains high, damage from deposition of crystals
If Ca++ remains high, pruritus, conjunctivitis, arthritis
540 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
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541
25
Acid–Base Homeostasis and Imbalances Linda Felver
K E Y Q U E S T I O N S • What is the role of the bicarbonate buffer system in regulating
pH of the blood? • What is the role of the respiratory system in regulating carbonic
acid (carbon dioxide)? • What is the role of the kidneys in regulating bicarbonate ion and
acids other than carbonic acid? • How do the lungs compensate for acid–base imbalances caused
by altered levels of metabolic acids?
• How do the kidneys compensate for acid–base imbalances caused by altered levels of carbonic acid?
• How are arterial blood gas values used to categorize an acid–base disorder as acidosis or alkalosis, respiratory or metabolic, compensated or uncompensated?
• What pathophysiologic conditions predispose an individual to each of the four primary acid–base imbalances?
C H A P T E R O U T L I N E Acid–Base Homeostasis, 541
Buffers, 542
Respiratory Contribution, 542
Renal Contribution, 543
Acid–Base Imbalances, 545 Metabolic Acidosis, 545 Respiratory Acidosis, 546 Metabolic Alkalosis, 547 Respiratory Alkalosis, 548
Mixed Acid–Base Imbalances, 549
http://evolve.elsevier.com/Banasik/pathophysiology/
When the pH of body fluids becomes abnormal, cellular function is impaired. The pH of a fluid reflects its degree of acidity or alkalinity. Technically, pH is the negative logarithm of the hydrogen ion (H+) concentration. The normal hydrogen ion concentration of the blood is about 40 nmol/L (40 × 10−9 mol/L)—a very small number. The pH (negative logarithm) of this number is 7.40, which is easier to use in clinical settings. An alteration in pH is a change in the hydrogen ion concentration. A high pH indicates few hydrogen ions, meaning that the solution is alkaline (basic). A low pH indicates a lot of hydrogen ions, meaning that the solution is acidic.
An acid releases hydrogen ions. The more hydrogen ions are present, the more acidic the solution. The normal pH of adult blood ranges from 7.35 to 7.45 (may vary slightly with different laboratories). The range is somewhat wider in infants and children. Table 25.1 lists normal laboratory values for pH and other acid–base parameters. If the blood and other body fluids become too acidic (reflected by pH decreased below the lower limit of the normal range), dysfunction occurs; if the pH of the blood falls below 6.9, death is likely to occur. Similarly, if the body fluids become too alkaline, as reflected by pH increased above the upper limit of the normal range, dysfunction also occurs. If the pH of the blood rises above 7.8, death is likely.
Normal cellular metabolism continually releases acids (carbonic and metabolic) that must be excreted from the body to prevent body fluids from becoming too acidic. This chapter discusses the normal mechanisms of acid–base homeostasis and the acid–base imbalances that arise when these homeostatic mechanisms become dysfunctional or overwhelmed.
ACID–BASE HOMEOSTASIS Three major mechanisms regulate the acid–base status of the body: buffers, the respiratory system, and the renal system. Laboratory measure- ments such as arterial blood gas values are useful indicators of the acid–base status of extracellular fluids. The partial pressure of carbon dioxide in arterial blood (PaCO2) is an indicator of the respiratory component of acid–base balance. The plasma bicarbonate ion (HCO3
−) concentration is an indicator of the renal (metabolic) component of acid–base balance. The pH of the blood indicates the net effect of normal acid–base regulation, any acid–base imbalance, and the body’s compensatory responses. It is important to remember that the pH measured clinically is that of the blood and may not reflect the pH inside cells or in cerebrospinal fluid.
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
542 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
pH = +6 1 20. log
pH = +6 1 1 3. .
pH = 7 4.
The 20 : 1 ratio of bicarbonate ions to carbonic acid necessary for a normal pH is an important concept in understanding the compensatory mechanisms for acid–base imbalances that are discussed later in this chapter.
Respiratory Contribution The respiratory system is the second defense against acid–base disorders. The cells continuously produce carbon dioxide (CO2). Together, CO2 and water (H2O) make carbonic acid (H2CO3). The lungs excrete carbon dioxide and water from the body. Therefore during the process of exhalation the lungs effectively excrete carbonic acid. The respiratory system adjusts the amount of carbonic acid that remains in the body by altering rate and depth of respiration.
Rate and depth of respiration are influenced strongly by chemorecep- tors that sense the PaCO2, PaO2, and pH of the blood. If too much carbonic acid begins to accumulate in the blood of a healthy person, the rate and depth of respiration increase and excess carbonic acid is removed. This response corrects the imbalance and restores blood chemistry to normal. If, on the other hand, too little carbonic acid is present in the blood, the rate and depth of respiration decrease to retain carbonic acid until it once more is present in normal amounts. Again, the imbalance is corrected and the blood chemistry returns to normal. Thus the body’s correction of a carbonic acid excess or deficit requires normal function of all components of the respiratory system, including the chemoreceptors, respiratory neurons in the brainstem, motor nerves to respiratory muscles, diaphragm and other respiratory muscles, chest wall, and, of course, the airways, lungs, and pulmonary circulation.
The PaCO2 indicates how effectively the respiratory system is excreting the carbonic acid that the cells are producing. If the PaCO2 is elevated above the upper limit of the normal range, carbonic acid has accumulated in the blood. In other words, the respiratory rate and depth have been insufficient or lung disease has prevented sufficient carbonic acid (carbon dioxide and water) excretion. Similarly, if the PaCO2 is decreased below the lower limit of the normal range, the lungs have excreted more carbonic acid than usual. In other words, the respiratory rate and depth have been excessive.
Carbonic acid is known as a volatile acid because it can be excreted as gases (CO2 and H2O). It is the only volatile acid in the body. Other acids that accumulate in the body, such as lactic acid and acetoacetic acid, are nonvolatile. They are organic acids that have no gaseous form. The lungs can excrete only carbonic acid; they cannot excrete nonvolatile acids that may accumulate in the body. If a nonvolatile acid (such as lactic acid) accumulates in the blood, the rate and depth of respiration will increase because the excess hydrogen ions stimulate the chemorecep- tors. This hyperventilation does not excrete lactic acid (which would correct the problem), but it does remove carbonic acid from the blood. Removing carbonic acid from the blood when another acid is present in excess helps keep the pH from dropping too low. However, this response makes other values abnormal. The respiratory response to an imbalance of any acid except carbonic acid is called compensation. A compensatory response does not correct a pH disorder, but it does compensate for it by adjusting the pH back toward normal, even though other blood chemistry values are made abnormal in the process.
The compensatory response to a deficit of any acid except carbonic acid is hypoventilation. By decreasing rate and depth of respiration, the body retains carbonic acid. This carbonic acid accumulation helps
Buffers Buffers are chemicals that help control the pH of body fluids. Each buffer system consists of a weak acid, which releases hydrogen ions when the fluid is too alkaline, and a base, which takes up hydrogen ions when the fluid is too acidic. In this way, potential changes in pH are adjusted immediately by the action of buffers. All body fluids contain buffers. Chief among them are bicarbonate buffers (in the extracellular fluid), phosphate buffers (in intracellular fluid and renal tubular fluid that becomes the urine), hemoglobin buffers (inside erythrocytes), and protein buffers (in intracellular fluid and the blood). These buffers are the first line of defense against pH imbalances.
The bicarbonate buffer system is the most important buffer in the extracellular fluid. Bicarbonate ion (HCO3
−) is the base portion, and carbonic acid (H2CO3) is the weak acid portion. These two components of the bicarbonate buffer system are in chemical equilibrium in the extracellular fluid. If too much metabolic acid (e.g., lactic acid) is present, the bicarbonate ions take up hydrogen ions (H+) released by the metabolic acid and become carbonic acid. Through the action of the enzyme carbonic anhydrase, the carbonic acid then is excreted through the respiratory system in the form of carbon dioxide and water. Thus the excess acid is neutralized when bicarbonate ions are used in the buffering process.
HCO H H CO CO H O carbonic anhydrase3 2 3 2 2
− ++ → +�
Conversely, if too little metabolic acid is present in the extracellular fluid, the carbonic acid portion of the bicarbonate buffer system releases hydrogen ions. This action helps keep the pH from becoming too high or at least minimizes the increase.
H CO HCO H2 3 3� − ++
The pH of any fluid is determined by the relative amounts of acids and bases contained in it. For the pH of the blood to be within the normal range, the ratio of bicarbonate ions to carbonic acid must be 20 : 1, which means that 20 bicarbonate ions must be present for every carbonic acid molecule. This relationship is explained formally by the Henderson–Hasselbalch equation, which is a mathematical description of the pH of a buffered solution, here written specifically for the bicarbonate buffer system:
pH HCO H CO
pKa= + −
log [ ] [ ]
3
2 3
Square brackets, used throughout this chapter, are a standard notation for concentration. pKa is the dissociation constant for any particular acid; it equals 6.1 for carbonic acid. If the normal 20 : 1 ratio of bicarbon- ate ions to carbonic acid is present, the pH will be 7.4.
TABLE 25.1 Normal Laboratory Values for Acid–Base Parameters
Characteristic Normal Range
PaCO2 (arterial blood) 36–44 mm Hg (adults) 30–34 mm Hg (infants)
HCO3 − (serum) 22–26 mEq/L (adults)
19–23 mEq/L (infants) pH (arterial blood) 7.35–7.45 (adults)
7.11–7.36 (neonates) 7.36–7.41 (infants)
CHAPTER 25 Acid–Base Homeostasis and Imbalances 543
which were filtered at the glomerulus. Some H+ are secreted with ammonia (NH3), most of which is produced by renal tubular cells in the distal nephron. Net H+ excretion occurs after HCO3
− has been reabsorbed in the amount that was filtered at the glomerulus. Thus net H+ excretion is accomplished in the form of buffered H+ (called titratable acidity) and H+ attached to ammonia (ammonium ions, NH4
+). Fig. 25.1 illustrates the major processes in the proximal tubule. Some of these processes operate also in the thick ascending limb of the loop of Henle and the distal nephron, where the intracellular chemistry differs slightly but the overall processes are the same. In addition, the distal nephron is the major site of the ammonia mechanism.
When the kidneys need to excrete more hydrogen ions, renal tubular cells increase their production of ammonia (NH3), primarily in the distal tubules and collecting ducts. Ammonia and H+ are transported into the renal tubular fluid where they become ammonium ions (NH4
+). Ammonium ions do not cross easily from the renal tubular fluid back to the blood. Only free hydrogen ions contribute to the acidity of the urine, not those that are part of ammonium ions. Consequently, increased production of ammonia is an effective way of excreting more hydrogen ions in the renal tubular fluid without making the urine too acidic.
The concentration of HCO3 − in plasma reflects the effectiveness of
renal regulation of metabolic acids. If metabolic acids are accumulating in the blood, they will be buffered by HCO3
− and the HCO3 − concentra-
tion will drop below normal. Thus a decreased concentration of HCO3 − in
plasma indicates a relative excess of metabolic acids. An increased HCO3
− concentration in the plasma indicates a relative deficit of meta- bolic acids (in other words, a relative excess of base).
Although the kidneys are unable to excrete carbonic acid, they can compensate for carbonic acid imbalances by adjusting the excretion of metabolic acids. For example, if carbonic acid accumulates in the blood, the kidneys can increase the excretion of metabolic acids, reabsorbing more HCO3
− in the process. This compensatory action helps keep the pH of the blood from becoming too abnormal. Similarly, if a deficit of carbonic acid in the blood is prolonged, the kidneys will decrease the excretion of metabolic acids, reabsorbing less HCO3
− in the process. As these metabolic acids accumulate in the blood, they will compensate for the lack of carbonic acid and return the pH of the blood toward normal. The body’s compensatory response to an imbalance of one kind of acid thus returns the pH of the blood toward normal by creating an imbalance of another kind of acid. The renal compensatory response to an imbalance of carbonic acid requires several days to be fully operative. Renal responses to changes in metabolic and carbonic acids are sum- marized in Table 25.3.
keep blood pH from rising to a fatal level when another acid is deficient in the body. Respiratory compensation for an imbalance of metabolic acid begins in minutes but may require several hours for full effectiveness. Respiratory responses to changes in carbonic and metabolic acids are summarized in Table 25.2.
Renal Contribution The third defense against acid–base disorders is the kidneys. The kidneys can excrete any acid from the body except carbonic acid (which is excreted by the lungs). These acids that are not carbonic acid are called metabolic acids because cells continuously produce them during normal metabolism. The kidneys normally excrete metabolic acids. If a metabolic acid begins to accumulate in the blood, the kidneys increase their acid excretion mechanisms to correct the problem. If a metabolic acid is deficient in the blood, the kidneys slow their acid excretion mechanisms to allow acid to accumulate to normal levels. The body’s ability to correct an excess or deficit of a metabolic acid depends on normal function of the renal system. Infants excrete more bicarbonate in their urine than do older children or adults; their kidneys are less effective in excreting acid. The renal response to a large acid load also is less efficient in older adults.
The kidneys have several mechanisms that accomplish acid excretion. Understanding these mechanisms requires a knowledge of basic renal physiology. Briefly, at the glomerulus, fluid filtered from the blood enters the glomerular (Bowman) capsule, which is the beginning of the nephron. The cells that line the lumen of the renal tubule modify the fluid inside the nephron (renal tubular fluid). Renal tubular fluid that passes through the entire nephron becomes the urine. Renal tubular epithelial cells have different membrane structures on opposite sides of the cells. The luminal membrane (next to the renal tubular fluid) contains different transporter proteins than the basolateral membrane (next to the interstitial fluid). This structure allows these cells to secrete certain substances into the renal tubular fluid and move other substances into the interstitial fluid.
In the proximal tubules, renal tubular epithelial cells excrete metabolic acid by secreting both the anion portion of the metabolic acid (e.g., lactate) and the hydrogen ions into the tubule lumen. For every hydrogen ion (H+) that is secreted into the renal tubular fluid, one bicarbonate ion (HCO3
−) is moved into the interstitial fluid. The fluid filtered from the blood at the glomerulus contains many bicarbonate ions, and most or all of that bicarbonate is reabsorbed (returned to the blood) during secretion of hydrogen ions. Renal tubular cells are able to secrete additional hydrogen ions into the tubular fluid to excrete large amounts of hydrogen ions from metabolic acid.
Once the H+ are in the renal tubular fluid, most of them combine with other chemicals: bicarbonate ions, which were filtered at the glomerulus, as described previously, or urine buffers, such as phosphate,
TABLE 25.2 Respiratory Responses to Changes in Carbonic and Metabolic Acids
Stimulus Respiratory Response Result
Increased PaCO2, decreased pH
Hyperventilation Correction of imbalance
Decreased PaCO2, increased pH
Hypoventilation Correction of imbalance
Decreased pH from excess of metabolic acids
Hyperventilation Compensation for imbalance
Increased pH from deficit of metabolic acids
Hypoventilation Compensation for imbalance
TABLE 25.3 Renal Responses to Changes in Metabolic and Carbonic Acids
Stimulus Renal Response Result
Decreased pH from excess of metabolic acids
Secrete more H+ into renal tubules
Make more ammonia
Correction of imbalance
Increased pH from deficit of metabolic acids
Secrete fewer H+ into renal tubules
Excrete HCO3 −
Make less ammonia
Correction of imbalance
Decreased pH from excess of carbonic acid
Secrete more H+ into renal tubules
Make more ammonia
Compensation for imbalance
Increased pH from deficit of carbonic acid
Secrete fewer H+ into renal tubules
Excrete HCO3 −
Make less ammonia
Compensation for imbalance
544 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
A
B
Proximal tubule
Loop of
Henle
Glomerulus
Bowman capsule
To bladder
Interstitial fluid
Renal tubular
epithelium
Interstitial fluid
Renal tubular
epithelium
Proximal tubular lumen
HPO4 =
H2PO4 – H2O H2OH2O CO2 CO2CO2
CA CA
H+
H+H+
NH3 NH3
NH4 +
H2CO3 H2CO3H2CO3
Gln
HCO3 –
H2OCO2
CA
H2CO3
HCO3 –
HCO3 –
HCO3 –
Gln
Peritubular capillaries
Afferent arteriole
Efferent arteriole
Glomerulus Bowman capsule
Distal convoluted tubule
Loop of Henle Collecting duct
To renal pelvis
From renal artery To renal vein
Proximal convoluted tubule
FIG 25.1 A, Diagram of a nephron. B, Renal proximal tubule mechanisms for excretion of metabolic acid. Hydrogen ions secreted into the renal tubular lumen combine with filtered bicarbonate (which then is converted to CO2 and reabsorbed) or buffers (phosphate buffer illustrated here) that remain in the tubular fluid. CA, Carbonic anhydrase, an enzyme. (A, From Solomon EP: Introduction to human anatomy and physiology, ed 3, St Louis, MO, 2009, Mosby, p 266.)
CHAPTER 25 Acid–Base Homeostasis and Imbalances 545
Bicarbonate ions are a type of base. Any condition that causes excessive removal of bicarbonate ions from the body may cause metabolic acidosis. For example, the intestinal fluid is rich in bicarbonate ions, which originate from pancreatic secretions. Diarrhea causes removal of this base from the body and thus contributes to the development of metabolic acidosis.
Other causes of metabolic acidosis are listed in Box 25.1 under the two general mechanisms discussed: increase in metabolic acid (any acid except carbonic acid) and decrease in base (bicarbonate). Either mechanism tends to make the blood overly acidic. The pathophysiology of diarrhea and other disorders that may cause metabolic acidosis is discussed in other chapters of this text.
Clinical manifestations. Signs and symptoms of metabolic acidosis include headache, abdominal pain, and central nervous system depression (confusion, lethargy, stupor, coma).
Central nervous system depression that occurs in patients with metabolic acidosis is due primarily to the decreased pH of the cere- brospinal and interstitial fluid in the brain. When the pH of the interstitial fluid falls, intracellular pH decreases, the protein structure and enzyme activity in cells are altered, and cellular dysfunction results. Other factors specific to the cause of the acidosis also may induce central nervous system depression, such as hyperosmolality with diabetic ketoacidosis. Severe metabolic acidosis predisposes to tachycardia, ventricular dys- rhythmias (from myocardial intracellular acidity), and decreased cardiac contractility, which may be fatal. Death from brainstem dysfunction usually occurs when the pH falls below 6.9.
Arterial blood gases in metabolic acidosis show a bicarbonate concentration below normal. If metabolic acidosis is uncompensated, the pH also is below normal because the usual 20 : 1 ratio is decreased.
Uncompensated metabolic acidosis:
Decreased HCO Unchanged H CO
pH low [ ] [ ]
3
2 3
−
=
Compensatory response. The respiratory compensation for metabolic acidosis is hyperventilation. The low blood pH stimulates the peripheral chemoreceptors, which then stimulate ventilatory neurons in the brainstem. The end result is increased rate and depth of respiration. As the rate and depth of respiration increase, more carbonic acid (carbon dioxide and water) is excreted. Although hyperventilation does not
ACID–BASE IMBALANCES The four primary acid–base disorders are metabolic acidosis, respiratory acidosis, metabolic alkalosis, and respiratory alkalosis. Acidosis is the presence of a condition that tends to decrease the pH of the blood below normal (make the blood relatively more acidic). If blood pH actually is decreased, acidemia also is present. Alkalosis is the presence of any factor that tends to increase the pH of the blood above normal (make the blood relatively more alkaline). The term alkalemia denotes an increased blood pH. The pathophysiology of the four primary acid–base disorders can be reasoned logically from the principles of acid–base homeostasis.
Metabolic Acidosis Etiology. Metabolic acidosis is a condition that tends to cause a
relative excess of any acid except carbonic acid. Metabolic acidosis may be caused by an increase in acid (not carbonic), by a decrease in base, or by a combination of the two. These mechanisms decrease the normal 20 : 1 ratio of HCO3
− to H2CO3. An increase of any acid except carbonic acid will decrease the normal
ratio of bicarbonate to carbonic acid because the bicarbonate ions are used up in buffering the excess acid. For example, when caloric intake is insufficient, as with prolonged fasting, the body begins to use its fat stores for energy. If too little glucose is ingested, the fat is metabolized incompletely and ketoacids accumulate in the blood. This condition is termed starvation ketoacidosis. A similar condition, diabetic ketoacidosis, occurs in diabetes when insufficient insulin is available to move glucose into cells. Again, fat is metabolized incompletely, producing more ketoacids than the kidneys can excrete.
Increase in Metabolic Acid Ketoacidosis (diabetes mellitus, starvation, alcoholism) Severe hyperthyroidism Burns Circulatory shock Tissue anoxia (lactic acidosis) Oliguric acute kidney injury or end-stage chronic kidney disease Excessive intake of acids or acid precursors (e.g., salicylates, methanol, ethylene
glycol)
Decrease in Base (Bicarbonate) Severe or prolonged diarrhea Gastrointestinal fistula that drains intestinal or pancreatic secretions Intestinal decompression Renal tubular acidosis
BOX 25.1 Common Causes of Metabolic Acidosis
KEY POINTS • Normal cellular metabolism produces both carbon dioxide and metabolic
acids. Carbon dioxide (CO2) combines with water (H2O) to form carbonic acid (H2CO3). Both carbonic and metabolic acids must be excreted to maintain acid–base homeostasis.
• Buffers are chemicals (a weak acid plus its base) that prevent large changes in pH by releasing or taking up hydrogen ions (H+). The bicarbonate buffer system is the most important buffer in the extracellular fluid. The normal ratio of bicarbonate to carbonic acid is 20 : 1. Any deviation from this ratio alters the pH of the blood.
• The lungs excrete carbon dioxide and water (carbonic acid). Rate and depth of respiration normally are adjusted by chemoreceptors in response to acid–base and oxygen status. Increased ventilation (hyperventilation) decreases the amount of carbon dioxide in blood and thus reduces the amount of carbonic acid. Decreased ventilation (hypoventilation) allows carbon dioxide to accumulate and thus increases the amount of carbonic acid in the blood.
• The kidneys excrete metabolic acids. They can secrete H+ into the renal tubular fluid and retain HCO3
− in the body or may allow some HCO3 − to be
excreted, depending on homeostatic demands. Most H+ in the urine is buffered (titratable acidity) or in the form of ammonium ions. The concentration of HCO3
− in plasma reflects the relative amount of metabolic acid in the blood.
• The lungs compensate for acid–base imbalances resulting from altered levels of metabolic acids; the kidneys compensate for acid–base imbalances resulting from altered levels of carbonic acid. With compensation, the pH returns toward normal but PaCO2 and HCO3
− levels are abnormal.
546 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
Respiratory Acidosis Etiology. Respiratory acidosis is a condition that tends to cause an
excess of carbonic acid. This condition is aptly named because carbonic acid is excreted by the lungs in the form of carbon dioxide and water during exhalation.
Respiratory acidosis is caused by factors that impair the respiratory excretion of carbonic acid. Such factors include impaired gas exchange, inadequate neuromuscular function, and impairment of respiratory control in the brainstem. Box 25.2 provides examples of factors that may cause respiratory acidosis. These factors all decrease the normal 20 : 1 ratio of bicarbonate ion to carbonic acid (and thus decrease the pH of the blood) by increasing the carbonic acid portion of the ratio. Chronic respiratory acidosis often develops in people who have type B chronic obstructive pulmonary disease (COPD). If an acute respiratory infection also develops, the acidosis may worsen. Such a condition is termed acute-on-chronic respiratory acidosis. The pathophysiology of COPD and other disorders that may cause respiratory acidosis is discussed in other chapters of this text.
remove metabolic acid from the body, it does change the ratio of bicarbonate ions to carbonic acid in a favorable direction. Because the bicarbonate ion concentration already is decreased by the metabolic acidosis, the compensatory decrease in carbonic acid brings the ratio (and thus the pH) back toward normal.
The arterial blood gases of a person who has compensated metabolic acidosis show decreased bicarbonate concentration (the primary imbal- ance), decreased PaCO2 (compensation), and decreased or even normal pH, depending on the degree of compensation. A flowchart for interpret- ing laboratory measures specific to acid–base imbalances is presented in Fig. 25.2. Sample laboratory values for people with metabolic acidosis are presented in Table 25.4.
Compensated metabolic acidosis:
Decreased HCO primary
Decreased H CO compensatory
pH [ ]
( ) [ ]
( )
3
2 3
−
= somewhat low partially
compensated pH in the normal rang
( ) or
ee fully compensated( )
Partially compensated metabolic alkalosis Fully compensated respiratory acidosis or Fully compensated metabolic alkalosis*
Partially compensated respiratory acidosis
Partially compensated respiratory alkalosis
Fully compensated respiratory alkalosis or Fully compensated metabolic acidosis*
Partially compensated metabolic acidosis
Uncompensated respiratory acidosis
Uncompensated metabolic alkalosis
Uncompensated respiratory alkalosis
Uncompensated metabolic acidosis
Normal acid-base status
Normal
Normal
Normal
Normal
Decreased
Decreased
Decreased
Decreased
Decreased
Incr eas
ed
Incre ased
Inc rea
se d
In cr
ea se
d
Inc rea
se d
Incre ased
Incr eas
ed
Decreased
Normal
Normal
Normal
pH
pH
pH
pH
pH
pH
HCO3
PaCO2
pH
HCO3
HCO3
Decreased
*To differentiate between possible fully compensated imbalances with the pH in the normal range, look at the previous laboratory values for the patient. If no previous values are available, choose the acidosis if the pH is below 7.40 and the alkalosis if the pH is above 7.40.
—
—
—
FIG 25.2 Flowchart for interpretation of laboratory measurements specific for acid–base imbalances. Use this flowchart to determine the primary acid–base imbalance from a set of laboratory values. Begin on the left with PaCO2 and follow the arrows. This flowchart does not include mixed acid–base imbalances.
CHAPTER 25 Acid–Base Homeostasis and Imbalances 547
Arterial blood gases in patients with respiratory acidosis show PaCO2 above normal. If respiratory acidosis is uncompensated, the pH is below normal because the usual 20 : 1 ratio is decreased.
Uncompensated respiratory acidosis:
Unchanged HCO Increased H CO
pH low [ ]
[ ] 3
2 3
−
=
Compensatory response. The compensatory response to respiratory acidosis is increased renal excretion of metabolic acid. This mechanism requires several days to be effective. Although the kidneys cannot excrete carbonic acid, their ability to excrete more metabolic acid changes the ratio of bicarbonate ions to carbonic acid in a favorable direction so that the pH moves toward normal. As the kidneys excrete more metabolic acid, the bicarbonate concentration increases because fewer bicarbonate ions are used for buffering. Because carbonic acid concentration already is increased, the compensatory increase in bicarbonate concentration tends to normalize the ratio of HCO3
− to H2CO3. The arterial blood gases of a person who has compensated respiratory acidosis show increased PaCO2 (the primary imbalance), increased bicarbonate concentration (compensation), and decreased or even normal pH, depending on the degree of compensation. Table 25.4 presents sample laboratory values for people with respiratory acidosis.
Compensated respiratory acidosis:
Increased HCO compensatory
Increased H CO primary
pH [ ]
( ) [ ]
( )
3
2 3
−
= somewhat low partially
compensated pH in the normal rang
( ) or
ee fully compensated( )
Metabolic Alkalosis Etiology. Metabolic alkalosis is a condition that tends to cause a
relative deficit of any acid except carbonic acid. Metabolic alkalosis may be caused by an increase in base (bicarbonate), by a decrease in acid, or by a combination of the two. Bicarbonate may be ingested in antacids such as baking soda and over-the-counter bicarbonate products (e.g., effervescent antacids). With overuse of these agents, enough bicarbonate is absorbed from the gastrointestinal tract to increase the blood bicarbon- ate concentration, thus increasing the pH.
Clinical manifestations. Signs and symptoms of respiratory acidosis are headache, tachycardia, cardiac dysrhythmias, and neurologic abnormalities such as blurred vision, tremors, vertigo, disorientation, lethargy, or somnolence.
Headache occurs because of dilation of blood vessels in the brain. This cerebral vasodilation increases cerebrospinal fluid pressure; pap- illedema may result. Neurologic manifestations usually are more prominent in patients with respiratory acidosis than in those with metabolic acidosis because carbonic acid (in the form of carbon dioxide and water) crosses the blood–brain barrier relatively easily. The neurologic manifestations are due to the decreased pH of the cerebrospinal fluid and interstitial fluid in the brain. This decreased interstitial fluid pH causes decreased intracellular pH, with resulting cellular dysfunction. Cardiac dysrhythmias in patients with respiratory acidosis occur because of decreased pH inside myocardial cells. Severe respiratory acidosis causes peripheral vasodilation, and hypotension may result, especially if cardiac dysrhythmias also are present.
TABLE 25.4 Sample Laboratory Values for People With Acid–Base Imbalances
Laboratory Value for Imbalance Explanation
Partially Compensated Metabolic Acidosis (Diabetic Ketoacidosis) PaCO2 30 mm Hg Decreased because of compensatory hyperventilation HCO3
− 12 mEq/L Decreased because of buffering of ketoacids pH 7.22 Decreased because of excess metabolic acids; would
be even lower without respiratory compensation
Uncompensated Respiratory Acidosis (Acute Asthma Episode) PaCO2 55 mm Hg Increased because of impaired gas exchange HCO3
− 24 mEq/L Normal; renal compensation has not yet occurred in this acute condition
pH 7.26 Decreased because of excess carbonic acid
Fully Compensated Respiratory Acidosis (Type B COPD) PaCO2 60 mm Hg Increased because of impaired gas exchange HCO3
− 36 mEq/L Increased because of renal compensation in this chronic condition
pH 7.35 Normal because of renal compensation, but below 7.4
Uncompensated Metabolic Alkalosis (Repeated Emesis and ECV Depletion) PaCO2 42 mm Hg Normal, but increasing because of compensatory
hypoventilation HCO3
− 36 mEq/L Increased because of loss of H+ from emesis and renal retention of HCO3
− from ECV depletion pH 7.52 Increased because of metabolic acid deficit
Uncompensated Respiratory Alkalosis (Hypoxemia From Pulmonary Embolism) PaCO2 28 mm Hg Decreased because of hyperventilation caused by
chemoreceptor response to decreased PaO2 HCO3
− 24 mEq/L Normal; renal compensation has not yet occurred in this acute condition
pH 7.52 Increased because of carbonic acid deficit
ECV, Extracellular fluid volume.
Impaired Gas Exchange Type B chronic obstructive pulmonary disease (COPD) End-stage type A COPD Bacterial pneumonia Severe asthma episode Pulmonary edema Acute (adult) respiratory distress syndrome
Impaired Neuromuscular Function Guillain–Barré syndrome Chest injury or surgery (pain limits ventilation) Hypokalemic respiratory muscle weakness Severe kyphoscoliosis Respiratory muscle fatigue
Impaired Respiratory Control (Brainstem) Respiratory depressant drugs (opioids, barbiturates)
BOX 25.2 Common Causes of Respiratory Acidosis (Hypoventilation)
548 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
ion to carbonic acid ratio. Because the upper portion of the ratio has been increased by the elevated bicarbonate concentration of metabolic alkalosis, the respiratory compensation tends to move the pH toward normal. However, respiratory compensation for metabolic alkalosis usually is incomplete. The need for oxygen drives ventilation, even though the increased pH tends to depress it. Thus the arterial blood gases of a person who has compensated metabolic alkalosis usually show increased bicarbonate concentration (the primary imbalance), increased PaCO2 (compensation), and increased pH. Table 25.4 presents sample laboratory values for people with metabolic alkalosis.
Compensated metabolic alkalosis:
Increased HCO primary
Increased H CO compensatory
pH
[ ] ( )
[ ] ( )
3
2 3
−
= somewhat high partially compensated( )
Respiratory Alkalosis Etiology. Respiratory alkalosis is a condition that tends to cause a
carbonic acid deficit. With a deficit of carbonic acid, the blood is relatively too alkaline.
Respiratory alkalosis is caused by hyperventilation. Carbonic acid is excreted during exhalation; when respirations are excessively rapid and deep (hyperventilation), too much carbonic acid is excreted. The resulting deficit of carbonic acid is respiratory alkalosis. For example, in gram-negative sepsis, respiratory neurons in the brainstem often are stimulated abnormally, causing hyperventilation. Hypoxemia, acute pain, and psychological distress are important clinical causes of hyper- ventilation that leads to respiratory alkalosis. Other causes of hyper- ventilation (and thus of respiratory alkalosis) are listed in Box 25.4.
Clinical manifestations. Clinical manifestations of respiratory alkalosis arise from increased neuromuscular excitability. Paresthesias (numbness and tingling) often occur in the fingers and around the mouth; carpal and pedal spasms may occur. Increased extracellular pH has a direct effect of increasing membrane excitability in both central and peripheral neurons. In addition, increased pH of the cerebrospinal fluid and cerebral interstitial fluid alters brain cell function, causing excitation and/or confusion in some people. Respiratory alkalosis causes cerebral vasoconstriction, which reduces blood flow in the brain. The alkalosis also decreases the availability of ionized calcium, which contributes to increased neuromuscular excitability.
The increased excretion of carbonic acid in people with respiratory alkalosis causes the PaCO2 to be abnormally low. If the imbalance is uncompensated, the pH is abnormally high.
Uncompensated respiratory alkalosis:
Unchanged HCO Decreased H CO
pH high [ ] [ ]
3
2 3
−
=
In addition to a gain in bicarbonate, metabolic alkalosis may be caused by a decrease in acid. The stomach is a major reservoir of acid. Emesis and gastric suction remove acid from the body and create a relative excess of base; this situation is, by definition, metabolic alkalosis. Increased renal excretion of acid with retention of bicarbonate occurs in extracellular fluid volume deficit. Metabolic alkalosis caused by mild or moderate extracellular fluid volume deficit often is called contraction alkalosis and is common during diuretic therapy. (Severe extracellular fluid volume deficit is associated with tissue anoxia, circulatory shock, and metabolic acidosis.) Hypokalemia causes metabolic alkalosis by shifting hydrogen ions into cells and increasing renal excretion of acid.
Causes of metabolic alkalosis are summarized in Box 25.3. The pathophysiology of the disorders that may cause metabolic alkalosis is discussed in other chapters of this text.
Clinical manifestations. Signs and symptoms in patients who have metabolic alkalosis may arise from the extracellular fluid volume depletion that caused the alkalosis. Thus postural hypotension may be present. Hypokalemia frequently coexists with metabolic alkalosis. As described previously, hypokalemia may cause metabolic alkalosis. In addition, metabolic alkalosis that arises from another cause frequently induces hypokalemia by shifting potassium ions into cells. Regardless of whether the hypokalemia preceded or followed the metabolic alkalosis, the bilateral muscle weakness of hypokalemia frequently is evident in individuals who have metabolic alkalosis.
In people who experience signs and symptoms from the metabolic alkalosis itself, the initial manifestations are those of increased neuro- muscular excitability. Fingers and toes may tingle; signs of tetany may progress to seizures. Increased interstitial pH causes increased excitability of nerve cell membranes. In addition, alkalosis causes more ionized calcium to bind to albumin, thus causing an ionized hypocalcemia that contributes to increased neuromuscular excitability. People who develop metabolic alkalosis may become quite belligerent. With severe metabolic alkalosis, initial excitation may change to central nervous system depres- sion. Confusion, lethargy, and coma may ensue from dysfunction of brain cells. Death usually occurs when the pH is around 7.8. The plasma bicarbonate concentration is elevated in people who have metabolic alkalosis.
Uncompensated metabolic alkalosis:
Increased HCO Unchanged H CO
pH high [ ] [ ]
3
2 3
−
=
Compensatory response. The compensatory response to metabolic alkalosis is hypoventilation. This shallow breathing retains carbonic acid within the body, thus increasing the lower portion of the bicarbonate
Increase in Base (Bicarbonate) Excessive intake of bicarbonate or bicarbonate precursors (acetate, citrate,
lactate) Massive transfusion with citrated blood Mild or moderate extracellular fluid volume deficit
Decrease in Metabolic Acid Emesis Gastric suction Mild or moderate extracellular fluid volume deficit Hyperaldosteronism Hypokalemia
BOX 25.3 Common Causes of Metabolic Alkalosis
Hypoxemia Acute pain Anxiety, psychological distress Prolonged sobbing Initial portion of acute asthma episode Alcohol withdrawal Stimulation of the brainstem (salicylate overdose, meningitis, head injury,
gram-negative sepsis)
BOX 25.4 Common Causes of Respiratory Alkalosis (Hyperventilation)
CHAPTER 25 Acid–Base Homeostasis and Imbalances 549
have a very high pH because their usual compensatory mechanisms are impeded by the concurrent acid–base disorders.
Mixed acid–base disorders may also occur with a nearly normal pH if a primary acidosis and a primary alkalosis are involved. An example of this type of mixed disorder is a head-injured patient whose treatment includes hyperventilation by mechanical ventilation to reduce intracranial pressure (respiratory alkalosis) but who at the same time has a metabolic acidosis from oliguric acute kidney injury. In this situation, the PaCO2 is decreased (respiratory alkalosis), the plasma bicarbonate concentration is decreased (metabolic acidosis), and the pH depends on the relative severity of the two imbalances.
Compensatory response. The compensatory response to respiratory alkalosis is decreased renal excretion of metabolic acid. As metabolic acids accumulate in the blood, the bicarbonate ion concentration decreases because bicarbonate ions are used for buffering. Because the carbonic acid concentration already is decreased, renal compensation for respiratory alkalosis tends to return the ratio of bicarbonate ions to carbonic acid, and thus the pH, toward normal. Renal compensatory mechanisms take several days to be fully effective. Many of the causes of respiratory alkalosis, such as acute hypoxemia, pain, and psychological distress, are short lived; for that reason, they may not be compensated renally. Arterial blood gases of a person who has compensated respiratory alkalosis show decreased PaCO2 (the primary imbalance), decreased bicarbonate concentration (compensation), and increased or (rarely) normal pH, depending on the degree of compensation. Table 25.4 presents sample laboratory values for people with respiratory alkalosis.
Compensated respiratory alkalosis:
Decreased HCO compensatory
Decreased H CO primary
pH [ ]
( ) [ ]
( )
3
2 3
−
= somewhat high partially
compensated pH in the normal ran
( ) or
gge fully compensated( )
Mixed Acid–Base Imbalances In most people, only one of the four primary imbalances discussed in this chapter arises at a time. If the imbalance persists, a compensatory imbalance arises as well. This situation was discussed previously in this chapter. Occasionally, however, two primary imbalances arise in the same person. This latter situation is termed a mixed acid–base imbalance. For example, a patient who has bacterial pneumonia may develop respiratory acidosis. If severe Clostridium difficile–associated diarrhea develops during antibiotic therapy for the pneumonia, a concurrent metabolic acidosis may arise. In this mixed imbalance, the pH is likely to be very low because the two types of primary acidosis impair the effectiveness of the usual compensatory mechanisms. Specifically, the usual compensatory mechanism for metabolic acidosis is hyperventilation, which causes increased excretion of carbonic acid from the body. With bacterial pneumonia, however, the effectiveness of alveolar ventilation already is impaired and carbonic acid is being retained in the blood. Analogously, patients who have both types of primary alkalosis often
KEY POINTS • Acidosis is a condition that tends to cause a relative excess of acid. Alkalosis
is a condition that tends to cause a relative excess of base (bicarbonate). • Metabolic acidosis is characterized by pH below 7.40 and abnormally low
HCO3 − concentration. It arises from processes that lead to metabolic acid
accumulation (e.g., lactic acidosis) or loss of HCO3 − (e.g., diarrhea). Compensa-
tory hyperventilation decreases the PaCO2. • Metabolic alkalosis is characterized by pH above 7.40 and abnormally high
HCO3 − concentration. It arises from processes that lead to metabolic acid
loss (e.g., vomiting) or gain of HCO3 − (e.g., bicarbonate antacids). Compensa-
tory hypoventilation increases the PaCO2. • Respiratory acidosis is characterized by pH below 7.40 and abnormally high
PaCO2. It arises from processes that lead to hypoventilation by impairing gas exchange (e.g., lung diseases), neuromuscular function of the chest (e.g., hypokalemic muscle paralysis), or respiratory control mechanisms in the brainstem (e.g., opioid overdose). Compensatory excretion of H+ and retention of HCO3
− by the kidneys increase the HCO3 − concentration.
• Respiratory alkalosis is characterized by pH above 7.40 and abnormally low PaCO2. It arises from processes that lead to hyperventilation (e.g., hypoxemia, pain, anxiety). Compensatory retention of H+ and excretion of HCO3
− by the kidneys decrease the HCO3
− concentration. • Mixed acid–base disorders occur when two primary acid–base disorders
are present independently. They may arise from simultaneous dysfunction of the respiratory system and kidneys. Depending on the combination of disorders, the pH may be nearly normal or grossly abnormal.
Acid–base homeostasis involves the interplay of buffers, the respiratory system, and renal mechanisms. Metabolic acids are produced continually by cellular metabolism. These metabolic acids enter the blood, where they are buffered, and eventually are excreted by the kidneys. In healthy people, the kidneys adjust the rate of excretion of metabolic acids to meet the demands of the acid load being produced. The concentration of bicarbonate ions in the blood indicates the effectiveness of renal excretion of metabolic acids. Cellular metabolism also constantly produces carbonic acid (carbon dioxide and water) that is excreted by the lungs. In healthy people, changes in the respiratory rate and depth adjust the rate of excretion of carbonic acid appropriately. The PaCO2 indicates the effectiveness of respiratory excretion of carbonic acid.
If one of the two acid excretion mechanisms becomes dysfunctional or overwhelmed, the other mechanism can produce a compensatory response that will help normalize the pH of the extracellular fluid, even though it will not correct the acid–base imbalance. Thus the kidneys
adjust their excretion of metabolic acids when respiratory excretion of carbonic acid is altered abnormally. Similarly, the respiratory system adjusts the rate of excretion of carbonic acid if renal excretion of metabolic acids is impaired or overwhelmed. The pH of the blood at any time is the net result of the operation of these regulatory and compensatory mechanisms.
Primary acid–base imbalances arise when the normal regulatory mechanisms for acid–base homeostasis become impaired or are over- whelmed by a large acid or alkaline load. Pediatric and geriatric con- siderations are summarized in the following boxes. Primary metabolic acidosis arises when the kidneys are unable to excrete enough metabolic acid or bicarbonate is lost from the body. The compensatory response to metabolic acidosis is hyperventilation. Primary respiratory acidosis arises when the lungs are unable to excrete enough carbonic acid. The compensatory response to respiratory acidosis is increased renal excretion of metabolic acid.
S U M M A R Y
550 UNIT VII Fluid, Electrolyte, and Acid-Base Homeostasis
concentration reflects the metabolic (renal) component of an acid–base imbalance.
A mixed acid–base imbalance occurs when two primary imbalances exist at the same time. The two primary imbalances may drive the pH to an extremely abnormal value or may nearly cancel each other’s effect on the pH, although the PaCO2 and plasma bicarbonate concentration may still be very abnormal.
Primary metabolic alkalosis arises when the kidneys excrete too much metabolic acid or there is a gain of bicarbonate. The compensatory response to metabolic alkalosis is hypoventilation. Primary respiratory alkalosis arises when the lungs excrete too much carbonic acid. The compensatory response to sustained respiratory alkalosis is decreased renal excretion of metabolic acid. The PaCO2 reflects the respira- tory component of an acid–base imbalance; the plasma bicarbonate
• Neonates often have mild metabolic acidosis. Infants younger than 1 month have a reduced ability to excrete a large acid load; their kidneys are less able to reabsorb bicarbonate, they produce less ammonia, and urinary buffers are limited in quantity. These factors increase the risk of metabolic acidosis from acid accumulation.
• Adolescents with eating disorders may develop metabolic alkalosis from repeated emesis and hypokalemia or metabolic acidosis from starvation and laxative-induced chronic diarrhea.
PEDIATRIC CONSIDERATIONS Acid–Base Imbalance
• Older adults are at increased risk of respiratory depression (and thus respiratory acidosis) from some opioids, due to decreased renal excretion of active metabolites.
• Older adults’ kidneys are less able to excrete a large acid load, which increases the risk for metabolic acidosis from acid accumulation.
• Diarrhea from chronic laxative overuse may contribute to metabolic acidosis.
GERIATRIC CONSIDERATIONS Acid–Base Imbalance
RESOURCES Berend K, et al: Physiological approach to assessment of acid-base
disturbances. New Engl J Med 371(15):1434–1445, 2014. Carrera E, Kim DJ, Castellani G, et al: Effect of hyper- and hypocapnia on
cerebral arterial compliance in normal subjects. J Neuroimaging 21:121–125, 2011.
Espay AJ: Neurologic complications of electrolyte disturbances and acid-base balance. Handb Clin Neurol 119:365–382, 2014.
Felver L: Acid-base balance. In Giddens J, editor: Concepts for nursing practice, ed 2, Philadelphia, 2017, Elsevier, pp 75–84.
Hale A, Hovey MJ: Fluid, electrolyte, and acid-base imbalances, Philadelphia, 2014, F.A. Davis.
Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2016, Elsevier.
Ho CH, Lewis KE, Johnson JL, et al: A 20-year-old woman with fatigue and palpitations. Cleveland Clin J Med 81:283–288, 2014.
Kamel KS, Halperin MJ: Acid-base problems in diabetic ketoacidosis. New Engl J Med 372:546–554, 2015.
Kamel KS, Halperin ML: Fluid, electrolyte and acid-base physiology: a problem-based approach, ed 5, St Louis, MO, 2016, Elsevier.
Karpate SJ, Morsi H, Shehmar M, et al: Euglycemic ketoacidosis in pregnancy and its management: case report and review of literature. Eur J Obstet Gynecol Reprod Biol 171:386–387, 2013.
Kraut JA, Madias NE: Lactic acidosis. New Engl J Med 371:2309–2319, 2014.
Marston N, Devin Kehl D, Copp J, et al: Alkalotics anonymous: severe metabolic alkalosis. Am J Med 127(1):25–27, 2014.
Namakura M, Shirai A, Yamakazi O, et al: Role of renal proximal tubule transport in acid/base and blood pressure regulation. BioMed Res International 2014:article ID 504808, 2014.
Rice M, Ismail B, Tyson Pillow M: Approach to metabolic acidosis in the emergency department. Emerg Med Clin N Am 32:403–420, 2014.
Rogers KMA, McCutcheon K: Four steps to interpreting arterial blood gases. J Perioperative Practice 25(3):46–52, 2015.
Rose BD, Post T, Stokes J: Clinical physiology of acid-base and electrolyte disorders, ed 6, New York, 2017, McGraw-Hill.
Soifer JT, Kim HT: Approach to metabolic alkalosis. Emerg Med Clin N Am 32:453–463, 2014.
Weiner D, Verlander JW: Ammonia transport in the kidney by Rhesus glycoproteins. Am J Physiol Renal Physiol 306:F1107–F1120, 2014.
551
UNIT VIII Renal and Bladder Function
Renal Function Jacquelyn L. Banasik
26
K E Y Q U E S T I O N S • How does the structure of the glomerulus determine the
composition of the tubular filtrate? • What factors determine glomerular filtration rate? • How do individual nephrons regulate their glomerular filtration
rates? • How are solutes and water transported across the renal tubular
epithelium?
• What is the role of the kidney in fluid, electrolyte, and acid–base balance?
• How does renal function change across the life span? • How are laboratory and diagnostic tests used to evaluate renal
function and disease?
C H A P T E R O U T L I N E Renal Anatomy, 552
Renal Parenchyma, 552
Renal Lymphatics and Innervation, 552
Renal Blood Supply, 553
Overview of Nephron Structure and Function, 554 Glomerulus, 555
Proximal Convoluted Tubule, 557
Loop of Henle, 558
Distal Convoluted Tubule, 559
Collecting Duct, 559
Regulation of Glomerular Filtration, 560 Physics of Filtration, 560
Factors Affecting Filtration Pressure, 562
Tubuloglomerular Feedback, 563
Effects of Glucose and Amino Acids, 563
Role of Mesangial Cells, 564
Transport Across Renal Tubules, 565 Reabsorption of Glucose, 565
Regulation of Acid–Base Balance, 565
Renal Compensation Process, 566
Secretion of Potassium, 566
Regulation of Blood Volume and Osmolality, 567 Antidiuretic Hormone, 567
Aldosterone, Angiotensin II, Natriuretic Peptides, Urodilatin, Uroguanylin, and Guanylin, 568
Diuretic Agents, 569
Endocrine Functions, 570 Erythropoietin, 570
Vitamin D, 570
Age-Related Changes in Renal Function, 570 Infant, 570
Adult and Elderly, 570
Tests of Renal Structure and Function, 570 Urine and Blood Studies, 570
Urinalysis, 571 Serum Creatinine and Blood Urea Nitrogen, 572 Measures of Glomerular Filtration Rate, 572
Diagnostic Tests, 572
Kidney, Ureter, and Bladder Roentgenography, 572 Intravenous Urography/Pyelography, 572 Radionuclide Studies, 573 Ultrasonography, 573 Computed Tomography, 573 Magnetic Resonance Imaging, 573 Renal Biopsy, 573
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
552 UNIT VIII Renal and Bladder Function
vessels, blood vessels, and nerves enter and exit the kidney through the hilum.
Renal Parenchyma On cross-section, the kidney is seen to contain three principal areas: the pelvis, the medulla, and the cortex (Fig. 26.2). The renal pelvis is a large collecting area for the urine that drains from the many collecting ducts of the nephrons. The minor (smaller) calices collect urine as it drains from the papilla of the renal pyramids. The normal kidney has 8 to 18 minor calices and 2 to 3 major calices. The major calices are large collecting spaces located between the minor calices and the upper part of the ureter.
The medulla contains 8 to 18 renal pyramids, the bases of which are adjacent to the outer cortex, whereas the apices open into the minor calices. The pyramids consist of collecting tubules, collecting ducts, long loops of Henle, and vasa recta. The papillae are the openings at the tips of the renal pyramids through which urine exits the collecting ducts.
The renal cortex, which is the outer rim of the kidney, is about 1 cm thick. The cortex contains all of the glomeruli as well as 85% of the nephron tubules. Fifteen percent of nephrons send their loops of Henle deep into the medulla and are called juxtamedullary nephrons. Columns of cortical tissue are found between the medullary pyramids and provide the passageway for the interlobar arteries.
Renal Lymphatics and Innervation There are two lymphatic systems in the kidney. One system is composed of vessels that are located both in the renal capsule and immediately under the capsule in the outer cortex. The other lymphatic system is composed of vessels that accompany and wrap around the arterial blood
The kidneys are responsible for maintaining fluid and electrolyte homeostasis and ridding the body of water-soluble wastes. To accomplish these functions, the kidneys filter more than 7 L of fluid per hour, then reabsorb about 99%, producing a small amount of urine containing a high concentration of wastes. The kidneys can alter the amount and composition of urine to keep blood volume and electrolyte composition within normal limits. In addition, the kidneys perform two important endocrine functions: production of erythropoietin, which is a regulator of red blood cell (RBC) quantity, and activation of vitamin D, which is a cofactor for intestinal calcium absorption.
Most individuals have two kidneys, each containing approximately 1 million nephrons, which provide a large renal reserve. The nephron is the functional unit of the kidney, performing all filtration, reabsorp- tion, and secretory functions. Removal of 50% of a person’s nephrons, as occurs with kidney donation, results in no immediate significant impairment of renal function, although renal reserve is reduced and long-term risk for kidney impairment may be increased. Serious renal impairment generally does not occur until between 75% and 90% of the total nephrons have been damaged. Thus clinical findings may not be evident until late in the course of chronic kidney disease. A number of laboratory and diagnostic tests are used to assess renal structure and function and to identify disease processes. These are briefly described at the end of this chapter. Kidney diseases, renal failure, and abnormalities of the bladder are discussed in Chapters 27, 28, and 29, respectively. A discussion of fluid and electrolyte imbalances and acid–base disturbances can be found in Chapters 24 and 25, respectively. The essentials of kidney structure and nephron function are presented in this chapter.
RENAL ANATOMY The urinary system consists of the kidneys, ureters, urinary bladder, and urethra (Fig. 26.1). The kidneys are located in the retroperitoneal space in the posterior abdomen. One kidney is on each side of the vertebral column between the level of the twelfth thoracic and third lumbar vertebrae. The costovertebral angle (CVA), the point at which the bottom of the ribcage meets the spine, is commonly used as an external landmark for finding kidney position during physical examina- tion. The right kidney is located beneath the liver and is placed slightly lower than the left kidney.
The kidneys are protected and surrounded by strong back and flank muscles, fascia, and fat. The kidneys are somewhat mobile and can be injured by high-impact activities, such as bouncing along on horseback or on a mountain bike, or by direct trauma, as might occur from falls or blunt trauma. Kidney hemorrhage results in bleeding into the ret- roperitoneal space, but not into the peritoneal cavity.
The kidneys drain urine into the ureters by gravity flow, and the ureters provide peristaltic action to move urine along to the bladder where it is stored. The two principal parts of the bladder are the body and the neck. The body stores urine and is made up of smooth muscle known as detrusor muscle. Detrusor muscle extends in all directions throughout the bladder and contracts as a unit in response to initiation of action potentials. The urinary bladder collects 300 to 500 mL before stretch receptors signal a need for bladder emptying. Urine is drained from the bladder by the urethra when the internal and external sphincters are relaxed. Innervation and control of bladder function are discussed in detail in Chapter 29.
An adult kidney weighs approximately 115 to 170 g; is 11 cm long, 6 cm wide, and 3 cm thick; and is shaped like a red kidney bean, with the concave portion, termed the hilum, facing the vertebral column. A thin, fibrous capsule covers each kidney and encloses blood vessels, lymphatic vessels, and nerve fibers, including pain receptors. Lymphatic
Renal vein
Renal artery
Left kidney
Right kidney
Ureter
Inferior vena cava
Prostate gland (male)
Urethra
Urinary bladder
10th rib
11th rib 12th rib
Diaphragm
Liver
Abdominal aorta
Adrenal gland
FIG 26.1 Structure of the urinary tract. The kidneys are located in the retroperitoneal space in the posterior abdominal cavity, in contact with the diaphragm and covered on the upper portions by ribs.
CHAPTER 26 Renal Function 553
the loops of Henle and collecting ducts. The vasa recta have a specialized loop structure that enables them to pick up interstitial fluid without excessive removal of interstitial solutes. Solutes and water move into and out of the vasa recta passively such that the descending limb gains solute as it dips into the highly concentrated medulla, but then most of the solute is lost as the ascending loop makes its way back up to the cortex.
vessels. All the lymphatic vessels, as well as blood vessels and nerves, exit the kidney through the hilum, and lymph drains into the paraaortic lymph nodes.
The kidneys are innervated by the sympathetic division of the autonomic nervous system. The lesser splanchnic nerves come from the renal plexuses, which are located next to the renal arteries. These nerve fibers travel with the renal arterial blood vessels and terminate in smooth muscle of the afferent and efferent arterioles, proximal and distal tubules, and the renin-secreting juxtaglomerular cells. Stimulation of the sympathetic nervous system results in renal vasoconstriction and renin release. The renal capsule and all structures between the renal pelvis and urinary meatus are innervated with pain receptors (see Chapter 27).
Renal Blood Supply Approximately 25% of the cardiac output is delivered to the kidneys, the majority of which circulates through the cortex, whereas only 1% to 2% perfuses the medulla. Total renal blood flow in both kidneys is approximately 1250 mL/min. Blood flows to the kidneys from the abdominal aorta through the renal arteries, which then divide into several interlobar arteries. The interlobar arteries travel in the renal columns adjacent to the pyramids (see Fig. 26.2). When the interlobar arteries reach the border of the medulla and the cortex, they branch into the arcuate arteries. The arcuate arteries then travel along the cortical medullary border parallel to the renal capsule. The arcuate arteries branch further to form small interlobular arteries, which penetrate the cortex and branch extensively to form the afferent arterioles. The afferent arterioles divide to form glomerular capillaries, which coalesce to form the efferent arterioles (Fig. 26.3). The efferent arterioles branch again to form a second capillary bed. The peritubular capillaries wrap around the proximal and distal convoluted tubules (Fig. 26.4). Some capillaries, called vasa recta, dip down into the medulla to surround
Interlobular arteries
Interlobar artery
Arcuate artery
Ureter
A B
Hilum
Minor calix
Cortex
Major calix
Medulla
Renal vein
Renal artery
Pyramids
Ureter
Pelvis
Renal vein
Renal artery
FIG 26.2 A, Cross-section of the kidney showing the renal pelvis, medullary pyramids, and cortex. Normal kidneys have 8 to 18 renal pyramids and a corresponding number of minor calices. The major calices drain urine into the ureter. Blood vessels, lymphatic vessels, and nerves enter and exit through the hilum. B, The arterial blood supply to the kidney is derived from the renal arteries, which branch from the abdominal aorta and enter the kidney through the hilus. The renal artery branches to form several interlobar arteries, which travel toward the cortex in the renal columns. The interlobar arteries branch to form the arcuate arteries, which divide further to form the interlobular arteries. Interlobular arteries branch multiple times to provide the afferent arterioles for each of the kidney’s million nephrons.
ef
ef
af
50�m
af
FIG 26.3 Scanning electron micrograph showing branching of an inter- lobular artery into two afferent arterioles (af), with associated glomerular tufts and efferent arterioles (ef). (From Kimura K et al: Effects of atrial natriuretic peptide on renal arterioles: morphometric analysis using microvascular casts, Am J Physiol 1990;259:F936. Used with permission.)
554 UNIT VIII Renal and Bladder Function
Loop of Henle
Peritubular capillaries
Collecting tubule Glomerulus
Afferent arteriole
Vasa recta
Bowman capsule
Distal convoluted tubule
Proximal convoluted tubule
Efferent arteriole
FIG 26.4 The nephron tubule is covered by peritubular capillaries and vasa recta, which pick up the fluid and solutes that have been reabsorbed by the tubular epithelium and return them to the general circulation.
KEY POINTS • The kidneys are located in the retroperitoneal space, just under the diaphragm.
The right kidney is slightly lower than the left. The costovertebral angle (CVA) is an external landmark useful for locating the kidneys.
• The kidney can be divided into three principal anatomic sections: the pelvis, the medulla, and the cortex. The pelvis is composed of urinary collecting structures, called calices. The medulla is the middle portion and contains the renal pyramids. The cortex is the outer portion and contains glomeruli and nephron tubules.
• The kidneys are supplied with lymphatics to drain excess interstitial fluid and proteins and with sympathetic neurons to regulate blood supply and renin release.
• Blood is supplied to the kidneys by the renal artery, which divides several times to form the interlobar, arcuate, and interlobular arteries. The interlobular arteries branch multiple times to form afferent arterioles for each of the millions of kidney glomeruli.
• Each nephron has its own afferent arteriole, capillary network or tuft, and efferent arteriole. Efferent arterioles continue on to form peritubular capil- laries, or vasa recta, which wrap around nephron structures and eventually drain into the renal veins. The loop structure of the vasa recta enables them to pick up interstitial fluid without removing excessive solute.
The capillaries of the peritubular system and the vasa recta join together and drain into interlobular venules. The veins that drain blood from the kidney run parallel to the arteries and are similarly named (Fig. 26.5).
OVERVIEW OF NEPHRON STRUCTURE AND FUNCTION Most of the physiologic functioning of the kidney can be understood by examining the function of an individual nephron. Thus the nephron is said to be the functional unit of the kidney. Nephrons are organized in parallel such that each must accomplish all the necessary processing before releasing urine into the collecting ducts. Complex autoregulatory mechanisms ensure that the workload is evenly distributed among the kidneys’ many nephrons.
As the unit of kidney function, a nephron must accomplish three major functions: (1) filtration of water-soluble substances from the blood; (2) reabsorption of filtered nutrients, water, and electrolytes; and (3) secretion of wastes or excess substances into the filtrate. Different segments of the nephron are specialized to accomplish each of these processes. Each nephron is composed of a glomerulus, which includes the capillary tuft and Bowman capsule, and a tubule, which includes the proximal convoluted tubule, loop of Henle, distal convoluted tubule, and collecting tubule (Fig. 26.6). The nephron tubule is composed of a single layer of epithelial cells with an apical side facing the lumen and a basolateral side facing the interstitial space and capillaries (Fig. 26.7). The epithelial cells in each segment of the tubule are specialized for certain functions (Table 26.1). Nearly all cells in the nephron have a single cilium that protrudes from the apical surface into the lumen of the tubule. These cilia are mechanoreceptors and chemoreceptors that sense flow rate and composition of the tubular filtrate. Stimulation of the cilium triggers signaling cascades within the tubule cells that regulate cell proliferation, differentiation, and apoptosis. Abnormalities
CHAPTER 26 Renal Function 555
Peritubular capillary
Afferent arteriole
Efferent arteriole
Aorta
Vena cava
Renal artery
Interlobar artery
Arcuate artery
Arcuate vein
Interlobular artery
Interlobular vein
Interlobar vein
Renal vein
Glomerular capillary
FIG 26.5 The venous vessels of the kidney parallel the arterial vessels and are similarly named.
Collecting tubule
Loop of Henle
Glomerulus
Distal convoluted tubule
Proximal convoluted
tubule
Bowman capsule
FIG 26.6 The nephron is composed of a glomerulus, proximal convoluted tubule, loop of Henle, distal convoluted tubule, and collecting tubule. Filtration occurs at the glomerulus, and the remaining tubule segments perform reabsorption and secretion functions.
in cilia signaling function have been found in patients with polycystic kidney disease, associated with mutations in genes (polycystin, PKD1, PKD2) that code for cilia membrane proteins (see Chapter 27).
Glomerulus The glomerulus is the site of fluid filtration from the blood to the nephron tubule. It is formed by a capillary tuft, which lies between the
afferent and efferent arterioles, and by the surrounding epithelial cells of Bowman capsule. The outer layer of the glomerular capsule is called the parietal layer and consists of a single thickness of epithelial cells resting on a layer of basement membrane (Fig. 26.8). The inner (visceral) layer of the capsule is composed of specialized epithelial cells called podocytes. Podocytes have foot processes (pedicels) that surround the glomerular capillary walls (Fig. 26.9). Between the podocyte and the
556 UNIT VIII Renal and Bladder Function
Distal convoluted tubule
Thick ascending limb of loop of Henle
Proximal convoluted tubule
Mitochondria
Thin descending limb of loop of Henle
Proximal straight tubule
Thin ascending limb loop of Henle
Collecting duct
FIG 26.7 Each segment of the nephron is specialized for certain functions, which is reflected in the type of epithelial cells that compose the tubules.
TABLE 26.1 Functions of the Nephron Segments
Nephron Segment Functions
Glomerulus Filters fluid from blood into Bowman capsule; prevents passage of blood cells and proteins Proximal convoluted tubule Transports two-thirds of filtered water and electrolytes and all of the filtered bicarbonate, glucose, amino acids, and vitamins
from filtrate to interstitium Descending loop of Henle Transports water; delivers a concentrated filtrate to ascending loop of Henle Ascending loop of Henle Actively transports Na+, K+, Cl− to produce a hypoosmotic filtrate and a high interstitial osmolality Distal convoluted tubule Transports Na+, Cl−, water, and urea; responsive to aldosterone; site of macula densa regulation of GFR; secretes H+ and K+
Collecting tubule Passively transports water under influence of ADH; secretes H+ and K+
ADH, Antidiuretic hormone; GFR, glomerular filtration rate.
CHAPTER 26 Renal Function 557
Glomerulus
Glomerular capsule (parietal layer)
Podocyte (visceral layer)
Podocyte
Fenestrations
Pedicels
Capillary endothelial
cells
Capsular space
Basement membrane
Proximal convoluted
tubule
Afferent arteriole
Efferent arteriole
Glomerular capillaries
FIG 26.8 Structure of the glomerulus, including the afferent and efferent arterioles, capillary tuft, and sur- rounding epithelial membrane of Bowman capsule. The enlargement shows the glomerular membrane to be composed of the endothelial cells of the capillary, the podocytes of Bowman capsule, and the basement membrane between them.
capillary endothelium is a layer of extracellular matrix called the basement membrane (see Fig. 26.8).
Spaces between the endothelial cells are called fenestra, and spaces between the podocyte foot processes are called slit pores. These intercel- lular spaces provide the surface area for glomerular filtration and make the glomeruli considerably more permeable than other capillaries in the body (Fig. 26.10). The basement membrane is an important selectivity barrier of the glomerulus, preventing plasma proteins, erythrocytes, leukocytes, and platelets from passing through. Cells are too large to pass through pores, and plasma proteins are negatively charged and repelled to some extent by the basement membrane. Slit pores have a thin diaphragm of extracellular proteins that restricts the filtration of plasma proteins that make it through the basement membrane. Nephrin, podocin, NEPH1, CD2AP, and others are important proteins in the slit pores, as demonstrated by the proteinuria (protein in urine) that occurs when they are genetically mutated (Fig. 26.11). Proteins and blood cells are not usually present in the urine. If the glomerulus is injured, blood
cells and proteins may filter through and be found in urine. Proteinuria is an important sign of basement membrane dysfunction. Except for the lack of proteins and cells, the glomerular filtrate is similar in composi- tion to plasma.
Another important component of the glomerulus is the mesan- gium, which includes mesangial cells and mesangial matrix. Mesangial cells have a number of functions, including provision of structural support for glomerular capillaries, secretion of matrix proteins, phagocytosis, and regulation of the glomerular filtration rate (GFR). By contracting and relaxing, mesangial cells can alter the available surface area for filtration and affect GFR. The GFR averages about 125 mL/min.
Proximal Convoluted Tubule The Bowman capsule drains the glomerular filtrate directly into the proximal tubule segment, where two-thirds of the water and electrolytes are rapidly transported from the filtrate to the interstitium for
558 UNIT VIII Renal and Bladder Function
FIG 26.9 Electron micrograph showing a close-up view of podocyte foot processes of the glomerular capillary. Note the spaces between the podocyte foot processes that contribute to a highly permeable glomerular membrane. CB, Podocyte cell body; FS, filtration slits (slit pores); PB, primary branch; Pe, pedicle; SB, secondary branch; TB, tertiary branch. (From Kessel RG, Kardon RH: Tissues and organs: a text-atlas of scanning electron microscopy, San Francisco, 1979, WH Freeman.)
Podocyte foot processes
Fenestra Capillary lumen
Basement membrane
Mesangial cells
Slit pores
Endothelium
Parietal epithelium of Bowman capsule
FIG 26.10 Section of the glomerular membrane showing the large spaces between the endothelial cells and podocyte foot processes. Filtration occurs through the fenestra and slit pores. The basement membrane provides the principal selectivity barrier of the glomerulus.
reabsorption by peritubular capillaries (Fig. 26.12). Nutrients, vitamins, and small proteins normally are reabsorbed completely in the early proximal tubule. The early proximal tubule is the site of most bicarbonate ion reabsorption, whereas chloride ion is reabsorbed in the late proximal tubule. The proximal tubule consists of cuboidal epithelium that is convoluted to provide a greater surface area for reabsorption. The epithelial cells in this segment have microvilli that form a brush border next to the filtrate and substantially increase the apical surface area. Proximal tubule cells have high adenosine triphosphate (ATP) require- ments because most reabsorption utilizes active transport mechanisms that are dependent on Na+–K+ ion pumps in the basolateral membrane. Details of some of these transport mechanisms are discussed in sub- sequent sections. Water is reabsorbed passively through paracellular
transport between the tubular cells and through water channels in the tubule cell membranes made of proteins called aquaporin 1. Reabsorption of solutes creates the osmotic force for passive water reabsorption.
Loop of Henle The loop of Henle is divided into the descending and ascending limbs, which differ significantly in structure and function. The descending limb receives filtrate from the proximal convoluted tubule and delivers it to the ascending limb. The thin descending limb is permeable to water, but the thin and thick ascending part of the loop is not. The thick ascending segment contains powerful membrane pumps that cotransport ions (Na+, K+, 2Cl−) from the filtrate and deposit them in the interstitial fluid surrounding the loops of Henle and collecting ducts
CHAPTER 26 Renal Function 559
Basement membrane
FAT1 and FAT2
Foot processes
Fenestrated endothelial cell
�-Actinin 4
Actin
P-cadherin
Nephrin
NEPH1 and NEPH2
FIG 26.11 Diagram of the major proteins that constitute the matrix in the slit pore between renal podocyte foot processes. The proteins contribute to the ability of the matrix to selectively prevent serum proteins from filtering through the glomerulus.
(Fig. 26.13). About 15% of nephrons have extra-long loops of Henle that dip down into the medulla (juxtamedullary nephrons). These nephrons are vital for creating concentrated urine.
The loop formation of the loop of Henle creates a countercurrent mechanism, which allows the ascending loop of Henle to create a high interstitial gradient in the medulla of the kidney (Fig. 26.14). Because the ascending loop is impermeable to water, water cannot follow the Na+, K+, and Cl− ions that are pumped into the interstitium. The descending loop is permeable to water, and water will be drawn out by the extra ions that were pumped into the interstitium by the ascending limb. Thus the filtrate that reaches the ascending limb will be more concentrated than the original filtrate. Delivery of a more concentrated filtrate to the ascending limb allows the Na+–K+–2Cl− cotransporter to pump out a greater number of ions and reach an even higher interstitial gradient (Fig. 26.15). This countercurrent mechanism creates a maximal osmolarity of about 600 mOsm/L at the tip of the loop of Henle compared with the usual extracellular osmolarity of 280 to 300 mOsm/L at the cortex. Another 600 mOsm/L is contributed by the accumulation of urea particles in the interstitium. Urea moves passively from the filtrate into the interstitium down its concentration gradient. It becomes concentrated in the tubule filtrate when electrolytes and water are removed in the proximal tubule and loop of Henle. An overall interstitial osmolarity is generated that begins in the cortex at about 300 mOsm/L and increases progressively to about 1200 mOsm/L at a point deep in the medulla. This high interstitial osmolarity provides a gradient for water reabsorption from the collecting ducts as they pass through the medulla on their way to the renal pelvis. The maximal interstitial gradient attained is dependent on the length of the loops of Henle. In some animals that survive in dry climates, such as the desert mouse, very long loops of Henle create a much higher interstitial osmolarity, which allows formation of extremely concentrated urine. Fluid that is reabsorbed from collecting tubules into the medullary interstitium is picked up by
the specialized capillary network called the vasa recta and returned to the venous circulation. Like other capillaries, the vasa recta passively exchange ions according to concentration gradients and passively reabsorb fluid by filtration forces. The loop structure of the vasa recta allows the capillary to passively leak accumulated solute back into the interstitium as the capillary makes its way back to the cortex from the medulla. This process minimizes the washout of the interstitial osmolality and has been called the countercurrent exchange mechanism.
Distal Convoluted Tubule The filtrate that reaches the distal tubule is normally hypoosmotic (100 mOsm/L) in comparison with plasma (280 mOsm/L) because electrolytes have been removed by the pumps in the ascending loop of Henle. At this point in the nephron, only 10% of the original glomerular filtrate volume remains, and further reabsorption in the distal tubule is largely under hormonal control. Aldosterone and angiotensin II (AII) stimulate the tubule cells to reabsorb sodium and water, whereas atrial natriuretic peptide (ANP) and urodilatin inhibit reabsorption.
Collecting Duct The distal tubules of several nephrons empty into a single collecting tubule, which then merges into progressively larger and fewer collecting ducts that run parallel to the loops of Henle. Eventually the col- lecting ducts form the medullary pyramids, which empty into the minor calices through the papilla. The collecting ducts travel through the high interstitial gradient of the medulla on their way to the renal pelvis. The collecting ducts have two cell types called principal cells (P cells) and intercalated cells (I cells). The majority of cells are the P type that responds to antidiuretic hormone (ADH). In the presence of ADH, more than 99% of the original filtrate is reabsorbed by the time it reaches the renal pelvis, creating 30 to 60 mL of concentrated urine per hour. The I cells participate in acid–base balance by regulating the secretion of acid.
560 UNIT VIII Renal and Bladder Function
Interstitium
Mitochondria
Tubular filtrate
Na+
Na+
K+
2 Cl–
K+
Cl–
H2O
ATP K+
FIG 26.13 The epithelial cells of the thick ascending loop of Henle possess powerful ion pumps that cotransport Na+, K+, and 2Cl− ions from the filtrate into the cell. The Na+ is then pumped out of the basolateral membrane and into the interstitium. The loop of Henle ion cotransporter is responsible for creating a highly concentrated medullary interstitium.
Na+ Amino acids
Na+ Glucose
Na+ H+
Water
Amino acids
Glucose
Water
HCO3 –
Na+
ATP K+
Cl–
Water Water
Cl–
Na+ H+
Na+
Na+Cl–Na+Cl–
ATP K+
Early proximal tubule
Renal epithelial cells
Filtrate
Interstitial space
Aquaporin
Capillary
Late proximal tubule
FIG 26.12 The proximal convoluted tubule has numerous membrane transporters that function to reabsorb filtered glucose, amino acids, water, and electrolytes. The early proximal tubule reabsorbs nearly all of the filtered bicarbonate ions (see Fig. 26.21), whereas the late proximal tubule reabsorbs chloride ions.
REGULATION OF GLOMERULAR FILTRATION
The GFR is determined by the filtration pressure in the glomeruli and by the permeable surface area of the glomerular membrane (Kf). Filtration pressure varies considerably from the afferent end of the glomerulus to the efferent end and is difficult to measure directly. The average net filtration pressure for the capillary as a whole is about 10 mm Hg, and the permeability constant Kf is about 12.5 mL/min per mm Hg. GFR is the product of filtration pressure and Kf (10 mm Hg × 12.5 mL/min per mm Hg = 125 mL/min). It is determined by the physical principles of filtration across a capillary membrane (Fig. 26.16). These values are not easily measured in patients, so a global assessment of GFR is used clinically to assess renal function (see Tests of Renal Structure and Function); however, understanding the principles that underlie the global clinical measurement is essential to anticipate and prevent impaired GFR.
Physics of Filtration Filtration rate is affected by factors that alter hydrostatic and oncotic pressure on either side of the glomerular membrane, as shown by the following filtration equation:
CHAPTER 26 Renal Function 561
pushed against the capillary wall, the glomerular capillary colloidal osmotic pressure opposes filtration by holding water and ions in the capillaries. The glomerular oncotic pressure is lower at the afferent end and becomes progressively higher along the length of the capillary (see Fig. 26.16).
The hydrostatic pressure in Bowman capsule is determined by the volume of filtrate present in the capsule. This pressure exerts a force against the walls of Bowman capsule and the glomerular capillaries and opposes filtration. The normal Bowman capsule hydrostatic pressure is about 18 mm Hg. Normally plasma proteins do not filter into Bowman capsule. If they did filter, then they would create Bowman capsule oncotic pressure. This pressure would enhance glomerular filtration because proteins attract cations and water. In a healthy kidney, this pressure is negligible.
In summary, the net filtration pressure across the glomerular membrane is approximately 10 mm Hg. The filtration pressure is higher at the afferent arteriole side of the capillary and diminishes as the blood reaches the efferent end. This occurs because the capillary oncotic pressure is lower at the afferent end. As blood passes through the capil- laries, continued filtration leaves a greater concentration of proteins in the capillaries, which raises the oncotic pressure. As blood reaches the efferent arterioles, filtration may cease.
GFR f GC BC BC GC= + − +K P P[( ) ( )]π π
where PGC is glomerular capillary hydrostatic pressure (mm Hg); πBC is oncotic pressure in the Bowman capsule (mm Hg); PBC is Bowman capsule hydrostatic pressure (mm Hg); and πGC is oncotic pressure in the glomerular capillary (mm Hg). The following is an illustrative example resulting in a normal GFR of 125 mL/min:
GFR = + +−12 5 60 0 18 32. [ ]( ) ( )
GFR mL= 125 min
The main driving force for filtration is hydrostatic pressure in the glomerular capillaries. The glomerular capillary hydrostatic pressure exerts a force against the glomerular capillary walls. As blood circulates through the capillaries, the hydrostatic pressure pushes blood against the walls, and fluid is filtered out. The hydrostatic pressure remains fairly constant along the length of the capillary and exerts an average force of approximately 60 mm Hg.
The glomerular capillary oncotic (colloid osmotic) pressure exists because proteins are present in the blood. Plasma proteins are negatively charged and attract positive ions, which subsequently attract water. Because ions and water are attracted to the proteins and are not
Vasa recta
Cortex
Medulla
NaCl
Afferent
NaCl
NaCl
NaCl
1200 1200
300 325
Water
NaCl
NaCl
NaCl
NaCl
NaCl
NaCl
400 200
400600
800 600
8001000
1200 1200
280
400
600
800
1000
280150
100
Water
Water Urea
Urea
Urea
Urea
FIG 26.14 Mechanism of countercurrent multiplication. Ion pumps in the ascending loop of Henle create an interstitial gradient in the medulla of the kidney. The separation of solute from water in the ascending loop of Henle also produces a dilute tubular fluid, allowing the excretion of excess water by making a dilute urine in the absence of antidiuretic hormone (ADH). NaCl accumulation in the interstitium contributes about half of the total osmolality. Urea particles in the interstitium contribute the other half of the particles that produce the normal interstitial gradient in the medulla. As water is removed from the collecting duct (in the presence of ADH), urea becomes more concentrated and moves passively down its gradient into the interstitium. The specialized loop structure of the vasa recta allows it to pick up interstitial water from the medulla without significant solute removal. Although solutes are acquired in the descending segment of the vasa recta, they passively diffuse back out as the ascending segment reaches the cortex. This process is called countercurrent exchange.
562 UNIT VIII Renal and Bladder Function
Factors Affecting Filtration Pressure One of the most important physiologic regulators of GFR is blood volume. When blood volume increases because of fluid intake, the blood pressure rises slightly and causes glomerular hydrostatic pressure to increase. GFR increases, and the extra fluid is pushed into the filtrate to be excreted from the body. The opposite also occurs: when blood volume is decreased, capillary hydrostatic pressure falls, resulting in a lower GFR, and fluid is conserved. The glomerular capillary is protected from large swings in blood pressure by autoregulation. Autoregulation adjusts the arteriolar resistance to maintain a relatively steady rate of blood flow despite changes in perfusion pressure. Autoregulation is effective when arterial blood pressure varies between 75 and 160 mm Hg. Autoregulation of renal blood flow is achieved in part by a stretch response in the vascular smooth muscle of the afferent arterioles. When blood pressure increases, the vascular smooth muscle cells reflexively constrict to keep blood flow at about the same rate. This mechanism is called myogenic autoregulation.
Other factors can affect GFR by altering the pressure within Bowman capsule or affecting plasma oncotic pressure. Obstruction in the tubules or collecting ducts can significantly elevate the pressure in Bowman capsule. According to the filtration equation, GFR would fall because filtration pressure would be reduced. Because plasma oncotic pressure is determined primarily by the concentration of plasma proteins, a low serum albumin concentration would increase GFR.
Although Kf is called a constant, it is subject to change for physiologic and pathologic reasons. Specialized mesangial cells located in the glomerulus are thought to be important regulators of Kf. These cells
Repeat steps 4-6
Descending limb
Ascending limb
Interstitium
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300
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300
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2 300
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4 300
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150
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7 300
700
1000
1200
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1200
100
500
800
1000
FIG 26.15 Sequence of events in development of the interstitial gradient by countercurrent multiplication. The Na+–K+–2Cl− cotransporters in the thick ascending loop of Henle can produce a gradient across the tubule wall of about 200 mOsm/L. The overall interstitial solute gradient is higher than these pumps could accomplish without the loop structure of the tubule. Countercurrent multiplication occurs because the descending loop is permeable to water and equilibrates with the rising interstitial solute concentration. Thus the filtrate reaching the ascending loop is increasingly concentrated with each step (1–7), allowing the ascending loop to further increase the osmolality of the interstitial fluid.
Afferent arteriole
Glomerular capillary (GC)
Efferent arteriole
Bowman capsule (BC)
Proximal tubule
NET FP � 17 NET FP � 0
PBC PBCPGC PGC
�GC �GC
FIG 26.16 Net filtration is higher at the afferent end of the glomerular capillary because the hydrostatic blood pressure in the capillary exceeds the pressure in Bowman capsule and the oncotic pressure in the capillary. Toward the efferent end of the capillary, the filtration pressure is low because the oncotic pressure of the blood is high and offsets the hydrostatic blood pressure. Capillary oncotic pressure gets progressively higher along the capillary because fluid is filtering out of the blood into Bowman capsule and leaving the proteins behind so they become more concentrated and exert a greater oncotic pressure. FP, Filtration pressure; π, oncotic pressure; P, hydrostatic pressure.
CHAPTER 26 Renal Function 563
feedback helps distribute GFR evenly among the kidneys’ 2 million nephrons.
The juxtaglomerular cells that surround the afferent arteriole are also thought to be mediators of tubuloglomerular feedback. The juxtaglomerular cells produce and release renin, an enzyme that converts angiotensinogen to angiotensin I (AI). Angiotensin I is then converted to AII by endothelial cells in the glomerular capillary, which possesses angiotensin-converting enzyme (ACE) activity. AII is a potent vasoconstrictor that constricts both afferent and efferent arterioles. The signals that pass from the macula densa to the glomerulus to regulate tubuloglomerular feedback are not completely known; however, roles for a number of vasoactive factors, including adenosine and ATP, pros- taglandins, and nitric oxide have been demonstrated. Some vasoactive factors have vasodilating effects, whereas others are vasoconstrictors, the relative balance of which determines the degree of arteriolar constriction.
The importance of prostaglandins and AII in regulating GFR is supported by the observation that drugs that inhibit their activity interfere with tubuloglomerular feedback in some persons. For example, ACE inhibitors block AII production and may interfere with constriction of the efferent arteriole. This can be particularly detrimental to renal function in patients who require high filtration pressures, such as those with polycystic kidney disease or collecting system obstructions. Drugs that inhibit cyclooxygenase, such as aspirin and nonsteroidal antiinflam- matory drugs, interfere with prostaglandin production and may pre- cipitate excessive renovascular constriction in some patients.
Effects of Glucose and Amino Acids The amount of glucose and amino acids filtered into the tubular fluid may alter GFR through the tubuloglomerular feedback mechanism.
contract and relax in response to various stimuli and alter the surface area for filtration. Contraction squeezes the capillary cells together and reduces GFR, whereas relaxation allows the permeable surface area to expand. Disease processes that damage the glomerular membrane also can affect permeability. Sclerotic processes reduce Kf, whereas some inflammatory injuries may increase it.
Tubuloglomerular Feedback Each nephron is able to regulate its own individual GFR through a process termed tubuloglomerular feedback. A specialized group of cells forms the regulatory structure, called the juxtaglomerular apparatus. The juxtaglomerular apparatus is composed of the glomerulus, the macula densa, and specialized juxtaglomerular cells, which are located around the glomerular arterioles (Fig. 26.17). The macula densa cells are located near the end of the thick ascending loop of Henle, which loops up to come in contact with the glomerulus and juxtaglomerular cells.
Macula densa cells sense changes in the amount of NaCl delivered to the tubule. When glomerular filtration is increased, a higher load of NaCl is delivered to the distal tubule. The mechanism whereby macula densa cells sense GFR is not completely understood, but NaCl delivery to the macula densa cells is a critical part of the process. Macula densa cells possess the same Na–Cl–K transporters as other cells in the thick ascending limb, and when NaCl delivery is high, more is transported into the cells through this transporter (Fig. 26.18). The macula densa cells increase the activity of the Na–K pump in the basal membrane, which stimulates production of adenosine and ATP. Adenosine stimulates contraction of afferent arterioles and relaxation of efferent arterioles, thus decreasing filtration at the glomerulus. Tubuloglomerular
Glomerulus
Bowman capsule
Capsular space
Juxtaglomerular cells
Macula densa cells
Distal tubule
Afferent arteriole
Efferent arteriole
Glomerular capillaries
FIG 26.17 The juxtaglomerular apparatus is composed of the macula densa cells of the distal tubule, the afferent and efferent arterioles, and the renin-secreting juxtaglomerular cells. Macula densa cells sample the distal filtrate for NaCl content and send signals to the glomerulus to adjust the glomerular filtration rate.
564 UNIT VIII Renal and Bladder Function
Both glucose and amino acids are filtered freely through the glomerular membrane and then are reabsorbed by active transport processes in the proximal tubule. Reabsorption occurs through transporters that use sodium ion entry into the cell to actively cotransport glucose and amino acids. The greater the load of tubular glucose and amino acids, the greater the amount of sodium reabsorbed by the proximal tubule. Fewer sodium ions are transported to the macula densa cells in the distal tubule, and the macula densa perceives this as a need to increase GFR. In addition, chronically high serum glucose concentrations, as occurs in poorly controlled diabetes mellitus, may induce excessive nitric oxide production, producing hyperfiltration, excessive GFR, and damage to the glomerulus.
Role of Mesangial Cells Mesangial cells are located around the glomerular capillaries and are thought to regulate the surface area available for glomerular filtration. Contraction of the mesangial cells reduces surface area, and relaxation increases it. Mesangial cells are responsive to glomerular stretch and are stimulated to contract when more blood enters the glomerulus. This response provides a negative feedback that decreases surface area when filtration pressure is increased. In addition, mesangial cells respond to a number of chemical mediators, including AII and endothelin (peptides that favor mesangial contraction) and ANP and nitric oxide (substances that favor relaxation). Mesangial cells thus may regulate GFR by altering the filtration constant Kf.
Na+
2Cl–
K+
Macula densa
Tubular fluid
Extraglomerular mesangial cell
Granular and VSM cells
Afferent arteriole
Renin release
Vasoconstriction A1
P2X
ATP
ATP
ADO
Ca++
Ca++
Na+
ATP
ADP
K+
FIG 26.18 Mechanism of NaCl sensing by macula densa cells in tubuloglomerular feedback. Entry of ions through the apical Na–K–Cl transporter stimulates activity of the Na–K–ATPase pump on the basal side and stimulates production of ATP and adenosine. Receptors on vascular smooth muscle cells (VSM) of the afferent arterioles bind to ATP and adenosine and cause vasoconstriction. Renin release from the juxtaglomerular cells is also inhibited, thus reducing the amount of angiotensin II that reaches the efferent arteriole. The efferent arteriole becomes less constricted. Afferent constriction and efferent dilation reduce the filtration pressure in the glomerulus, reduce filtration, and reduce the delivery of NaCl to the macula densa. ADO, Adenosine; A1, adenosine-1 receptor; P2X, purineoreceptor (ATP receptor).
KEY POINTS • Glomerular filtration rate (GFR) is determined by the permeable surface area
(Kf) and by capillary hydrostatic pressure and Bowman capsule oncotic pressure, which favor filtration, and by plasma oncotic pressure and Bowman capsule hydrostatic pressure, which oppose filtration. Normal GFR is about 125 mL/min.
• The filtration rate in an individual nephron is regulated by tubuloglomerular feedback in which macula densa cells sample the NaCl content (or other constituents) in the distal tubule and signal the juxtaglomerular apparatus to make appropriate adjustments in GFR.
• Afferent constriction and efferent dilation decrease GFR, whereas afferent dilation and efferent constriction increase GFR. Adenosine, AII, nitric oxide, and prostaglandins are important chemical mediators of arteriolar resistance.
• Excessive filtration of glucose and amino acids can result in increased GFR because their reabsorption in the proximal tubule requires cotransport of sodium ions. Fewer sodium ions are delivered to the macula densa, and GFR is increased.
• Mesangial cells respond to glomerular capillary stretch by contracting to reduce the surface area for filtration. Mesangial cells also respond to chemical signals that induce them to contract and relax, which alters GFR accordingly.
CHAPTER 26 Renal Function 565
excess of acid, which is excreted by the lungs in the form of CO2 and by the kidneys in the form of H+. In addition, HCO3
− is filtered freely through the glomerulus and must be efficiently reabsorbed to maintain acid–base balance. Most HCO3
− is reabsorbed in the proximal tubule; however, the distal segment also participates in regulating HCO3
− and H+ transport.
Reabsorption of HCO3 − is complex because it is not directly trans-
ported across the apical membrane; rather, it is combined with H+ in the tubule to form H2CO3, which dissociates into CO2 and water (Fig. 26.21). The H+ for this reaction is secreted into the filtrate in exchange for Na+. Carbonic anhydrase present in the brush border of the proximal tubule cell catalyzes the reaction. Carbon dioxide is lipid soluble and diffuses passively into the tubular cell. Once inside, intracellular carbonic anhydrase catalyzes the reverse reaction to once again form HCO3
− and H+. The HCO3
− is transported out through the basolateral membrane, whereas the H+ is recycled to the tubular fluid to bind with another HCO3
−. The energy to power this reabsorptive process is provided by the Na+–K+ pump, which keeps intracellular Na+ concentration low so that the sodium gradient can continue to move H+ into the tubule lumen through the Na+–H+ exchanger.
Normally, all of the filtered HCO3 − is reabsorbed by this mechanism
to help maintain acid–base balance. Excess H+ ions that find no HCO3 − in
the filtrate with which to bind are excreted in the urine, and urine is normally acidic. The number of H+ ions that can be excreted in urine is limited to a pH of about 4.0. However, urine buffers, including HPO4
2− and NH3, are secreted into the filtrate and bind with excess H +,
greatly increasing the ability of the kidney to excrete an acid load (see Fig. 26.21). Ammonia (NH3) is produced by the renal epithelium via metabolism of amino acids. Ammonia binds to H+ to form ammonium
TRANSPORT ACROSS RENAL TUBULES Reabsorption and secretion of substances across the nephron tubule are accomplished by two routes: the transcellular and the paracellular routes. Transcellular transport uses specific transporter proteins in the membranes of the tubular epithelial cells to move substances between the tubular filtrate and the interstitial fluid. Most of these transport processes are dependent on Na+ reabsorption and are made possible by the Na+–K+ pump in the basolateral membrane. Paracellular transport refers to movement of substances through the tight junctions that hold the tubular epithelial cells together. Substances using the paracellular route therefore do not traverse the cell membrane and instead move passively through the spaces between cells. Reabsorption is the process of transporting a substance from the filtrate into the renal capillaries and requires several transport steps. First, the substance is moved from the filtrate into the tubular cell through transporters on the apical surface of the cell; then it passes through another transporter on the basolateral side of the tubular cell and into the interstitium. From the interstitium, it moves passively by diffusion or filtration into the capillary. In general, the reabsorption of cations, especially sodium, provides an electrical gradient to pull anions across the tubule and into the interstitium. Reabsorption of ions and solutes creates an osmotic force to pull water passively across the renal epithelium. A summary of transport in the various tubule segments is shown in Fig. 26.19. The details of glucose, bicarbonate, H+, and K+ transport are described next as important representative examples.
Reabsorption of Glucose Glucose is filtered freely across the glomerular membrane such that the tubular load (in milligrams per minute) is determined by the product of serum glucose concentration (in milligrams per milliliter) and GFR (in milliliters per minute). Normally, all of the filtered glucose is reabsorbed in the proximal tubule by sodium-dependent cotransporters (e.g., SGLT 2) (Fig. 26.20). The transport proteins have a maximal rate of transport that can be exceeded if the tubular load of glucose is too great. The transport maximum for normal kidneys is about 375 mg/min. A tubular load of glucose in excess of this amount results in glycosuria. In fact, some spillage of glucose begins at a much lower tubular load because of the uneven distribution of GFR to individual nephrons or differences in the number of transporters in different nephrons. Some nephrons with higher GFR or fewer transporters may exceed their transport maxima, whereas other nephrons are working below capacity. The point at which glucose begins to spill into the urine is called the renal threshold. In normal kidneys with a GFR of 125 mL/min, the renal threshold will be reached when serum glucose concentration approaches 180 mg/dL, but significant glycosuria will not occur until the transport maximum is reached at a serum glucose level of about 300 mg/dL. Persons with low GFR associated with renal disease may not experience spillage of glucose until the serum glucose level is much higher, and glycosuria is not a reliable indicator of serum glucose level in these individuals. For example, a patient with a GFR of 50 mL/min and a serum glucose concentration of 300 mg/dL will have a tubular glucose load of only 150 mg/min, which is well below the normal renal threshold. No glycosuria would occur despite the high serum glucose level.
Regulation of Acid–Base Balance The kidney tubules have an important role in maintaining the pH of the blood. In addition to excreting excess H+, the kidneys regulate the concentration of bicarbonate (HCO3
−) in the blood. The pH of the blood normally ranges between 7.35 and 7.45 and is determined by the ratio of acid (H2CO3) to base (HCO3
−). The lungs and kidneys work together to maintain this balance. Metabolic processes create an
C o n ce
n tr
a tio
n (
tim e s
th a t o f fil
tr a te
)
Cr ea
tin ine
G lu
co se
A m
in o a
cid s
Ure a
1.0
Cl–
Cl–K +
and Na+
K+
Na+
Protein HCO3
–
100.0
50.0
20.0
10.0
5.0
2.0
0.50
0.20
0.10
0.05
0.02
Proximal tubule
Loop of Henle
Distal tubule
Collecting tubule
FIG 26.19 Summary of nutrient and electrolyte composition of the filtrate in each segment of the nephron. Two-thirds of the filtrate is reabsorbed in the proximal tubule. (Adapted from Hall JE, editor: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2015, Saunders, p 359.)
566 UNIT VIII Renal and Bladder Function
for this process is the Na+–K+ pump in the basolateral cell membrane. The Na+–K+ pump moves K+ into the tubular cell and increases the gradient for diffusion of K+ through the apical membrane and into the filtrate (Fig. 26.22). Principal cells in the distal tubule and collect- ing duct are the site of potassium excretion. The activity of Na+–K+ pumps in these segments is sensitive to aldosterone, a steroid hormone secreted by the adrenal cortex. Aldosterone increases reabsorption of Na+ and water and excretion of K+. Potassium excretion also is affected by the activity of the K+–H+ exchanger and by the plasma K+ concentration.
ion (NH4 +), whereas HPO4
2− binds to H+ to form H2PO4 −. The amino
acid glutamine can also be metabolized to generate new HCO3 − with
the concurrent production of NH4 + that must be excreted in the urine.
Renal Compensation Process In some cases, the kidneys are called on to compensate for an abnormality in lung function. The lungs normally regulate the amount of carbon dioxide in the blood (PaCO2). When PaCO2 is high, more carbonic acid is formed, and the blood pH becomes acidic. The kidneys compensate by excreting more H+ and by creating new HCO3
− to enhance the buffering capacity of the blood. These HCO3
− ions are additional to those already being reabsorbed from the filtrate and are thus new. First, excess circulating CO2 from respiratory acidosis diffuses into the renal cell and is converted to HCO3
− and H+ by the enzyme carbonic anhydrase. The new HCO3
− is sent back to the bloodstream, and the new H+ is secreted into the urine filtrate, where it binds with a renal buffer and is excreted. As mentioned previously, new HCO3
− also can be formed by the metabolism of glutamine, and the new HCO3
− is sent back to the bloodstream (see Fig. 26.21). Gradually, the creation of new HCO3
− in this way increases the serum HCO3
− concentration and restores the pH toward normal. This process may take hours to days.
The kidneys are also able to compensate for respiratory alkalosis by excreting some of the filtered HCO3
−. Alkalosis reduces the number of H+ ions available for transport into the filtrate. Some of the filtered HCO3
− escapes the proximal tubule without being converted to CO2 and is excreted in the urine.
Secretion of Potassium There is normally a net excess of potassium from dietary sources that must be excreted by the kidneys. The primary transporter responsible
Capillary
Interstitium
Proximal tubule
Filtered glucose
Na+
Glucose Glucose
Na+
ATP
SGLT 2 GLUT 2
K+
FIG 26.20 The glucose transporter in the proximal tubule (SGLT 2) is dependent on sodium reabsorption from the filtrate. The Na+–K+ pump in the basolateral membrane keeps the intracellular sodium level low and maintains a gradient for sodium and glucose reabsorption. Glucose diffuses out of the tubule cell and back into the interstitial fluid through passive carrier proteins (GLUT 2). ATP, Adenosine triphosphate.
KEY POINTS • Reabsorption across the tubular epithelium occurs by transcellular and
paracellular routes. The transcellular route utilizes transporters in the apical and basolateral membranes of tubular cells to move substances from the filtrate, through the cell, to the interstitium. The paracellular route allows passive transport of substances between the tubular cells. Renal capillaries passing through the interstitium passively take up substances through filtration and diffusion and return them to the venous circulation.
• Reabsorption of glucose is accomplished by proximal tubule cell sodium- dependent transporters. These transporters have transport maxima that can be overwhelmed by excessive tubular loads of glucose, in which case glycosuria results.
• The kidneys participate in acid–base regulation through secretion of excess H+ and reabsorption and creation of HCO3
−. Urine buffers HPO4 2− and NH3
bind excess H+ and increase the ability of the kidney to excrete an acid load.
CHAPTER 26 Renal Function 567
Interstitium
Filtrate
Na+
NH3
ATP K+
Na+
Na+
ATP K+
Na+
CA
Na+
Na+
HCO3 –
H+
H+
NH4 +
NH4 +
H+ H+
HCO3 – + H
+
H2O + CO2
H2O + CO2
CO2 + H2O
H2PO4 –
HPO4 ––
PaCO2
H2CO3
HCO3 –
HCO3 –
New HCO3 –
New HCO3 –
HCO3 –
H2CO3
H2CO3
Glutamine
++
Capillary
FIG 26.21 Bicarbonate ion reabsorption across the renal tubule. Filtered HCO3− is combined with secreted H+ to form carbonic acid, which dissociates into water and carbon dioxide. Carbon dioxide is lipid soluble and diffuses into the cells, where the reverse reaction converts it back to HCO3
− and H+. The bicarbonate ion moves out of the basolateral membrane and returns to the bloodstream, whereas the H+ is returned to the lumen to bind with another HCO3
− ion. Excess H+ ions are excreted in the urine in combination with phosphate and ammonia buffers. The kidney is able to create new bicarbonate as needed to maintain pH balance. ATP, Adenosine triphosphate; CA, carbonic anhydrase.
• HCO3 − is not directly reabsorbed across the renal epithelium; it is first
converted to CO2 by the enzyme carbonic anhydrase. The H + ions needed for
this reaction are provided by Na+–H+ pumps on the apical cell membrane. • Secretion of potassium ions is promoted by activity of the Na+–K+ pump
on the basolateral cell membrane. In the distal tubule, these pumps are regulated by aldosterone, which increases potassium excretion.
REGULATION OF BLOOD VOLUME AND OSMOLALITY The kidneys play a vital role in maintaining normal blood volume and osmolality. As previously discussed, changes in blood volume alter the pressure in the glomerulus and affect GFR. An increase in blood volume results in a pressure diuresis, whereas a fall in blood volume reduces urine output. The kidney tubules are responsive to a number of hormonal signals that fine-tune tubular reabsorption (Table 26.2). These hormones include ADH, aldosterone, AII, ANP, urodilatin, uroguanylin, and guanylin. ADH is the principal regulator of osmolality, and the others regulate extracellular volume by increasing or decreasing NaCl and water reabsorption.
Antidiuretic Hormone ADH (also called vasopressin) is secreted from the posterior pituitary when osmoreceptors located in the hypothalamus detect a high osmolality of the extracellular fluid. Principal cells in the collecting tubules respond to ADH by translocating water pores called aquaporin 2 to the apical membrane (Fig. 26.23). These pores make the tubule permeable to water and allow water to be reabsorbed from the urinary filtrate. The high interstitial gradient of the medulla provides the osmotic force for water reabsorption. Recall that this gradient was formed by the action of powerful ion pumps in the thick ascending limb of the loop of Henle.
As water is reabsorbed into the medullary interstitium, it creates a high tissue pressure that pushes fluid into the vasa recta. The vasa recta return the reabsorbed water to the general circulation. The reabsorbed water dilutes the blood and reduces osmolality. Osmoreceptors in the brain detect the reduced osmolality and inhibit further production of ADH. When blood osmolality is too low, ADH secretion is completely inhibited, and the collecting tubules become impermeable to water. Water is not reabsorbed from the filtrate, and a large quantity of dilute urine is produced. Loss of water in excess of solute returns the blood osmolality toward normal.
568 UNIT VIII Renal and Bladder Function
Interstitium
Distal tubule lumen
Na+
ATP K+
H+
K+
K+
Aldosterone
+
Capillary
FIG 26.22 Tubular secretion of potassium ion. Increased serum potassium concentration and aldosterone increase the activity of the Na+–K+ pump and enhance K+ secretion into the filtrate. The H+–K+ exchanger also regulates the secretion of K+ ions. ATP, Adenosine triphosphate.
TABLE 26.2 Hormones that Regulate NACL and Water Reabsorption
Hormone Major Stimulus Nephron Site of Action Effects on Transport
Angiotensin II ↑Renin, ↓BP PT, TAL, DT/CD ↑NaCl and H2O reabsorption Aldosterone ↑Angiotensin II, ↑ [K+]p TAL, DT/CD ↑NaCl and H2O reabsorption* ANP, BNP, urodilatin ↑ECFV CD ↓H2O and NaCl reabsorption Uroguanylin, guanylin Oral ingestion of NaCl PT, CD ↓H2O and NaCl reabsorption Sympathetic nerves ↓ECFV, ↓BP PT, TAL, DT/CD ↑NaCl and H2O reabsorption* Dopamine ↑ECFV PT ↓H2O and NaCl reabsorption ADH ↑Posm, ↓ECFV DT/CD ↑H2O reabsorption*
Data from Koeppen B, Stanton B: Berne & Levy physiology, ed 6, Philadelphia, 2010, Mosby, p 610. ADH, Antidiuretic hormone; ANP, atrial natriuretic peptide; BNP, B-type natriuretic peptide; BP, blood pressure; CD, collecting duct; DT, distal tubule; ECFV, extracellular fluid volume; [K+]p, plasma K+ concentration; Posm, plasma osmolality; PT, proximal tubule; TAL, thick ascending limb. *The effect on H2O reabsorption does not include the thick ascending limb or the early portion of the distal tube.
An insufficiency of ADH secondary to pituitary damage results in the condition of diabetes insipidus in which large volumes of dilute urine are excreted, leading to severe fluid imbalances. A similar problem occurs when the collecting tubules are unresponsive to ADH. This condition is called nephrogenic diabetes insipidus and usually results from genetic defects in either the ADH receptor (V2) or the aquaporin 2 genes.
Aldosterone, Angiotensin II, Natriuretic Peptides, Urodilatin, Uroguanylin, and Guanylin Aldosterone, AII, ANP, urodilatin, uroguanylin, and guanylin alter blood volume without affecting its concentration. Aldosterone and AII increase reabsorption of Na+, which provides a gradient for water reabsorption. Because salt and water are reabsorbed together, the osmolality of the reabsorbed fluid is isosmotic with plasma.
AII and aldosterone are produced when the juxtaglomerular cells in the kidney are stimulated to release renin. Renin is released in response
to (1) decreased blood flow to the kidney, (2) reduced serum sodium levels, and (3) activation of sympathetic nerves to the juxtaglomerular cells. Renin begins a cascade of reactions that result in the production of AII and aldosterone. When AII and aldosterone restore blood volume and blood pressure to normal, the stimuli for renin release are removed and the concentrations of AII and aldosterone fall.
ANP is released from atrial cells in the heart when the chamber is overstretched by excessive blood volume. ANP inhibits all of the actions of AII and results in loss of sodium and water in the urine. Thus ANP reduces extracellular volume, but the fluid losses are isosmotic with plasma, and blood osmolality remains unchanged. Urodilatin is a peptide that is secreted by distal and collecting tubule cells in response to increased circulating volume. It is similar in structure and function to ANP and inhibits Na+ and water reabsorption by the collecting duct.
Uroguanylin and guanylin are peptide hormones produced by neuroendocrine cells in the intestine in response to NaCl ingestion. The targets for these hormones are guanylyl cyclase receptors located
CHAPTER 26 Renal Function 569
passively according to an osmotic gradient. When the solute content of the filtrate is elevated, reabsorption of water is inhibited, resulting in a larger output of urine.
Osmotic diuretics (e.g., mannitol) are filtered through the glomerulus and are not reabsorbed by the tubules. The osmolality of the filtrate is increased by the presence of the solute, and more water remains in the tubule and is excreted in the urine. ACE inhibitors (e.g., captopril) inhibit the formation of AII and aldosterone, which normally stimulate the kidney tubules to reabsorb Na+. In the absence of these hormones, more Na+ stays in the urinary filtrate, resulting in less reabsorption of water.
Loop diuretics (e.g., furosemide) block the Na+–K+–2Cl− pumps in the ascending loop of Henle. The ions that would normally have been pumped into the interstitium stay in the filtrate and hold water with them. In addition, the maintenance of the high interstitial gradient in the medulla may be impaired. Washout of the gradient reduces the force for water reabsorption from the collecting ducts.
Thiazide-like diuretics (e.g., hydrochlorothiazide) block Na+ reabsorp- tion in the distal tubule. Sodium ions remain in the filtrate and oppose the action of the interstitial osmotic gradient.
All of these agents also increase the excretion of K+ and are called potassium-wasting diuretics. Patients receiving chronic diuretic therapy with these agents usually require potassium replacement therapy.
In contrast, the aldosterone-blocking agents (e.g., spironolactone) are potassium sparing. Recall that aldosterone increases activity of the Na+–K+ pumps on the basolateral membrane of the distal tubule cells.
on cells in the proximal tubule and collecting duct. Binding to these receptors generates cGMP, which inhibits Na+, Cl−, and water reabsorption and produces an effect similar to that of natriuretic peptides and urodilatin.
Diuretic Agents The ability of the kidneys to reabsorb fluid can be inhibited by drugs that block sodium and water reabsorption. These agents are called diuretics and include osmotic diuretics, ACE inhibitors, loop diuretics, thiazide-like diuretics, and inhibitors of aldosterone activity (Table 26.3). Diuretics work by altering osmotic gradients in the kidney tubules so that reabsorption of water is inhibited. Recall that water always moves
Interstitium
Aquaporin 2
cAMP Collecting
tubule lumen
Water
Capillary
Water
ADH
V2
FIG 26.23 Antidiuretic hormone (ADH) action on the collecting tubule epithelium. ADH binds to receptors on the basolateral cell membrane, resulting in translocation of water pores (aquaporin 2) to the apical surface. Increased water permeability results in reabsorption of water from the filtrate and into the interstitium. cAMP, Cyclic adenosine monophosphate; V2, vasopressin-2 receptor.
TABLE 26.3 Commonly Used Diuretics
Diuretic Action
Osmotic diuretics Increase solute load in tubule ACE inhibitors Block production of AII and aldosterone Loop diuretics Block Na+–K+–2Cl− transporter in
ascending loop of Henle Thiazide-like diuretics Block Na+ reabsorption in distal tubule Aldosterone inhibitors Block action of aldosterone on distal tubule
Na+–K+ transporters
ACE, Angiotensin-converting enzyme.
570 UNIT VIII Renal and Bladder Function
AGE-RELATED CHANGES IN RENAL FUNCTION Infant In the early postnatal period, the GFR is less than half the adult rate. Due to an immature ability of the infant kidneys to regulate urine osmolality, infants are predisposed to volume depletion during fluid losses, such as those that occur with diarrhea, fever, fluid restrictions, or decreased intake. Volume regulation improves as the kidney matures. In addition, the glomerular and tubular basement membranes thicken, the glomeruli become increasingly permeable, and the loops of Henle lengthen. Systemic changes, such as increased cardiac output and increased levels of plasma proteins, also influence the improvement in renal function. Between the first and second years of life, renal function essentially reaches maturity. Thereafter the kidney grows in proportion to overall body growth, reaching maximal size between 35 and 40 years of age. Renal function in infants is described in the Pediatrics Considerations box.
Adult and Elderly As part of the normal aging process, the kidney begins to diminish in size and function after the fourth decade and more significantly by the middle of the sixth decade. The effects of aging on renal function are described in Geriatric Considerations: Changes in the Renal System. After age 40 years, the number of glomeruli begins to decrease, and by age 70 years it is estimated that as many as 30% to 50% of the glomeruli have been lost. Renal blood flow decreases after the fourth decade at an approximate rate of 10% per decade because of vascular changes, especially in the cortical blood vessels.
As the number of functional nephrons decreases with aging, there is less renal reserve. Under normal conditions, the kidney functions adequately; however, elderly people are much more susceptible to fluid and electrolyte imbalances and renal damage. The elderly are also very susceptible to kidney damage from drugs and medications, including contrast media. Consequently, it is essential that renal function be evaluated before, during, and after they receive these agents or substances.
These pumps promote Na+ and water reabsorption and potassium secretion. Blockage of aldosterone reduces the activity of these pumps and results in less sodium and water reabsorption as well as less potassium excretion. Significant elevations in serum K+ concentration can occur with these agents.
Diuretics are used primarily in the management of high blood pressure (see Chapter 16) and congestive heart failure (see Chapter 19), but they also may be used in the diagnostic phase of acute renal failure or to manage potassium overload.
KEY POINTS • The kidneys regulate blood volume and osmolality by altering GFR and
reabsorption from the urinary filtrate. • Changes in blood volume alter the filtration pressure in the glomerulus,
resulting in a pressure diuresis when blood volume is high and in reduced filtration and fluid conservation when blood volume is low.
• The kidney tubules are responsive to hormones that alter their reabsorptive properties. Antidiuretic hormone (ADH) increases the permeability of the collecting tubule to water, resulting in increased reabsorption and reduced blood osmolality.
• Aldosterone, AII, ANP, and urodilatin alter blood volume without affecting blood osmolality. Aldosterone and AII increase sodium and water reabsorption, whereas ANP and urodilatin inhibit their reabsorption.
• Diuretics alter the osmolality of the urinary filtrate and oppose the reabsorption of water, resulting in an increase in urine volume.
KEY POINTS • The kidney secretes two important endocrine hormones: erythropoietin, a
growth factor for red blood cells (RBCs), and active vitamin D, a necessary cofactor for calcium absorption from the intestine.
• In chronic kidney disease, impaired production of these hormones results in anemia and osteodystrophy.
KEY POINTS • Renal function is impaired at both ends of the life span. Infants have reduced
ability to make concentrated urine because of kidney immaturity. Aged individuals have reduced numbers of functioning nephrons, reduced renal blood flow and glomerular filtration rate (GFR), and decreased ability to conserve salt and water.
• The very young and very old are at increased risk for fluid and electrolyte imbalances and drug toxicity.
ENDOCRINE FUNCTIONS The kidney is the source of two important endocrine hormones: erythropoietin and active vitamin D. Secretion of these hormones is impaired in chronic kidney disease and contributes to the anemia and osteodystrophy found in this disorder (see Chapter 28).
Erythropoietin Erythropoietin is a peptide growth factor that stimulates erythrocyte development in the bone marrow. The regulation of erythropoietin secretion is not completely understood; however, hypoxemia and decreased circulating red cell mass are known to increase its release (see Chapter 13). Erythropoietin is commercially available in a recom- binant form that can be given parenterally. The anemia of chronic kidney disease usually responds well to erythropoietin replacement therapy.
Vitamin D Synthesis of active vitamin D is an interdependent function of the skin, liver, and kidney. The precursors to active vitamin D can be formed in the skin in response to the ultraviolet rays in sunlight, or they can be ingested in fortified food products. These precursors (cholecalciferol) then must undergo a series of two hydroxylations to become active. The first occurs in the liver, resulting in the formation of 25-hydroxycholecalciferol. The kidney performs the second hydroxylation to form 1,25-dihydroxycholecalciferol, which is the active form of vitamin D. Vitamin D is a necessary cofactor for calcium absorption from the intestine. It may also facilitate calcium reabsorption in the kidney tubules.
In chronic kidney disease, the production of active vitamin D is impaired, resulting in poor calcium absorption from the intestine and low serum calcium levels. A low serum calcium level is the stimulus for parathyroid hormone release, resulting in removal of calcium and phosphate from the bones. Eventually excessive parathyroid hormone activity leads to the condition of osteodystrophy and predisposes to skeletal fractures (see Chapter 28).
TESTS OF RENAL STRUCTURE AND FUNCTION Urinalysis, serum creatinine level, blood urea nitrogen (BUN) levels, and tests of GFR are most helpful in evaluating kidney function, whereas other diagnostic tests are best for evaluating kidney structure.
Urine and Blood Studies Routine assessment of urine is commonly performed to screen for a variety of kidney and metabolic disorders. Serum creatinine and BUN
CHAPTER 26 Renal Function 571
TABLE 26.4 Normal Composition of Urine
Characteristics Normal Value
Color Light yellow to amber pH 4.5–8.0 Specific gravity 1.003–1.030 Red blood cells <5/HPF White blood cells <5/HPF Protein Negative Glucose Negative Ketones Negative Nitrites Negative Casts None Crystals None
HPF, High-powered field.
levels are used to monitor the progression of renal disease or to screen for occult renal insufficiency.
Urinalysis Most often urinalysis is done on a single voided sample; however, longer collections may be done for quantitative analysis. Urinalysis assesses urine color; clarity; odor; specific gravity; pH; and concentrations of glucose, ketones, protein, and sediment (including cells, crystals, casts, and bacteria or other organisms). The first urine voided in the morning is the most concentrated, due to overnight fasting, and therefore is the best specimen to use for a routine or baseline urinalysis, especially to assess pH, osmolality, and sediment (Table 26.4).
A 24-hour urine collection measures the total quantity of a substance or substances excreted in a day. This is helpful for evaluating substances that are excreted in varying concentrations throughout the day, such as hormones, creatinine, protein, urea, and glucose.
Urine microscopy and culture and sensitivity tests assess the urine for the presence of microorganisms and accompanying cells and to determine the medications or drugs to which the organisms are most sensitive. For these tests, a few milliliters of urine is collected by the clean-catch method and placed into a sterile container.
Urine is approximately 95% water and contains varying amounts of water-soluble waste products. Freshly voided urine has a slight odor attributable to the breakdown of urea to ammonia. If urine stands for a period of time or has a large bacteria population, it will have a strong ammonia smell. The ingestion and excretion of certain foods, such as asparagus, or of certain medications, such as vitamins, may cause urine to have a different odor.
The pale yellow to amber color of urine is due to the presence of urochrome pigments. Urine color can change because of the presence of cells or because of an increased urine concentration. The presence of RBCs, or hematuria, can cause urine color to range from brown to bright red. White blood cells (WBCs) can make urine look cloudy. Concentrated urine is usually dark yellow to orange. Certain foods and drugs can change urine color. For instance, if beets have been eaten, the urine may be burgundy, and if the individual has taken phenazopyri- dine (Pyridium), the urine may be orange.
Normally, urine is clear and slightly acidic, although the pH range is 4.5 to 8.0. Urine allowed to stand undisturbed will become cloudy and alkaline because of the breakdown of urea to ammonia, which increases the pH. Cloudiness can result from the presence of cells, bacteria, crystals, casts, or fat substances.
Urine specific gravity and urine osmolality are measures of the concentration of solute in the urine. Urine specific gravity varies with the amount of solids in the urine, such as cells, casts, and microorganisms,
At birth, the loss of placental blood flow and the rapid increase in renal blood flow lead to high vascular resistance in the kidneys. The immature kidneys respond by temporarily reducing renal blood flow and filtration to compensate. The filtration capacity of the glomeruli is reduced. The kidneys cannot adequately concentrate urine to conserve body water. This makes the child susceptible to water loss. In the first 24 hours of life, the newborn will have decreased urine output. Ninety-five percent of infants will pass urine in the first 24 hours of life, although the amount is small (about 20 mL) (Hockenberry & Wilson, 2011). As the infant increases the number and volume of feedings in the first few weeks of life, the capillary resistance is reduced and filtration is increased by the glomeruli.
The kidneys have small immature nephrons. The nephrons are lined with cuboid epithelium, which limits the function of the nephrons. The cuboid epithelium is not replaced by pavement epithelium and fully functioning until after the first year of life (MacGregor, 2008). The immaturity of the nephrons also makes the distal convoluted tubules resistant to aldosterone. The immature nephrons also have short loops of Henle, where water and sodium levels are normally adjusted. The short loops of Henle and the resistance to aldosterone make it difficult for an infant to excrete excess sodium. The presence of excess sodium increases the interstitial osmolality, which will decrease the glomerular filtration rate in the infant. The decreased glomerular filtration rate contributes to the reduced production of urine that is seen with the infant. As the child grows and the kidney matures, the glomerular filtration rate will increase. The glomerular filtration rate triples by 9 months of age and reaches 30% of adult values by 2 years of age (MacGregor, 2008).
PEDIATRIC CONSIDERATIONS
Hockenberry MJ, Wilson D: Wong’s nursing care of infants and children, ed 9, St Louis, MO, 2011, Mosby. MacGregor J: Introduction to the anatomy and physiology of children: a guide for students of nursing, child care and health, ed 2, New York, 2008, Routledge.
Changes in the Kidneys in Infants
In the aging individual, there is a 30% to 50% decrease in the number, size, weight, and function of the nephrons, with an accompanying reduction in the size and weight of the kidney. There is increasing interstitial fibrosis of the renal afferent arterioles. Loss of nephrons and diminished renal blood flow contribute to a decrease in the GFR.
There is also a decrease in the length and the excretory and reabsorptive capabilities of the tubules. The tubule changes affect the countercurrent mechanism, leading to significant changes in urine concentration, excretion, and absorption. Specifically, the changes include reduced urine concentration, decreased sodium retention, diminished drug and metabolite excretion, decreased hydrogen ion (H+) secretion, and increased renal threshold for glucose. With aging, the kidney does not respond quickly to correct pH or sodium imbalances.
With aging, urinary muscles weaken, and sphincter tone and bladder capacity decrease. This increased muscular weakness can lead to a rise in the residual volume in the bladder and difficulty in starting the urinary stream. The length of the urethra decreases. There is also less bladder innervation and a reduced sensation of filling. A loss of the diurnal excretory pattern induces nocturia.
GERIATRIC CONSIDERATIONS Changes in the Renal System
572 UNIT VIII Renal and Bladder Function
changes in GFR are reflected in a higher BUN-to-creatinine ratio, usually greater than 20 : 1.
Measures of Glomerular Filtration Rate GFR is an important parameter in the assessment of renal function. It is commonly measured by evaluating the clearance of a filterable substance from the plasma. Creatinine clearance is frequently used to assess GFR, but it is not completely accurate because some secretion and reabsorption occur in the nephron tubules. At low GFR, creatinine clearance is quite unreliable.
A more accurate measurement of GFR is obtained by using inulin, an inert substance that is filtered freely at the glomerulus and is com- pletely unaffected by tubular secretion and reabsorption. The use of inulin is more expensive and cumbersome than creatinine clearance because it must be injected. The formula for measuring clearance is the same regardless of the marker substance used. Creatinine clearance is used in the following example, but the corresponding values for inulin can be substituted in the equation.
Creatinine clearance estimates the GFR by measuring the amount of blood that is cleared of creatinine each minute. Usually a 24-hour urine specimen and a blood specimen at the midpoint of the urine collection are used to determine creatinine clearance; however, shorter intervals can be used. The measured values are calculated in the following formula:
Clearance Urine volume ml urinary creatinine mg dL
Plas =
×( min) ( ) mma creatinine mg dL( )
An estimate of GFR called the Modification of Diet in Renal Disease study equation (MDRD) can be made using only patient demographics and serum creatinine value (Scr). This estimate is based on an average body surface area for an adult of 1.73 m2. It does not require urine collection, making it simple compared with other measures of clearance:
GFR mL m S Age if fema
cr( min . ) ( ) ( ) ( .
. .1 73 186 0 742
2 1 154 0 203= × × ×
− −
lle if African American
) ( . )× 1 210
Diagnostic Tests Although studies of urine and blood are good indicators of renal function, they often are not adequate to determine the underlying pathologic process. Diagnostic tests are helpful in assessing structural abnormalities, such as tumors or obstructions, congenital anomalies, perfusion defects, and histologic abnormalities. Sometimes a combination of diagnostic tests is necessary.
Kidney, Ureter, and Bladder Roentgenography A kidney, ureter, and bladder (KUB) roentgenography is a plain radiograph (x-ray) taken of the abdomen to visualize the kidneys, ureters, and bladder. A KUB study shows the position, shape, size, and number of macroscopic or gross renal, ureteral, and bladder structures and surrounding bones. In addition, foreign bodies, radiopaque objects, stones, and neoplasms can be seen on KUB. The KUB may serve as a screening examination to inform further diagnostic testing.
Intravenous Urography/Pyelography During intravenous urography, also called intravenous pyelography (IVP), an iodine-containing radiopaque dye is injected into a vein; it circulates through the kidney and is excreted in the urine. A rapid series of radiographs is made as the dye is being excreted. This test shows the size, shape, and location of urinary tract structures and can be used to
but urine osmolality is not affected by these substances. Thus urine osmolality is a more accurate measure of the kidneys’ ability to con- centrate and dilute the urine. The range for specific gravity is 1.003 to 1.030, with the higher number indicating a more concentrated urine. Usually urine osmolality and specific gravity vary throughout the day and from day to day. Results that remain fixed over consecutive voidings and days could be an indicator of renal disease.
Normal urine contains little or no protein. A small amount of protein in the urine is insignificant, but excretion of more than 150 mg per 24 hours should be investigated because it could indicate glomerular capillary disease. Proteinuria can cause urine to be foamy.
Glycosuria, or glucose in the urine, is abnormal and usually indicates hyperglycemia (elevated blood glucose level), which can occur with diabetes mellitus or after an excessive ingestion of sugar. Rarely does glycosuria indicate renal disease.
A few epithelial cells, erythrocytes, leukocytes, and bacteria are normally found in urine. Fewer than five RBCs or WBCs per high- powered field is considered to be within normal limits. An excess of any of these cells may indicate a pathologic process; however, collection technique and presence of menstrual blood may be confounding factors.
Crystals and stones are not usually found in the urine. Either can originate anywhere along the urinary tract. If found in the urine, their composition should be identified and the urinary tract assessed for more crystals and stones (see Chapter 27).
When urinary casts are present, they provide important clues for differentiating renal diseases. Casts are formed in the nephron tubule and are composed of a protein meshwork with entrapped cells or cell fragments. Cells in the thick ascending loop of Henle produce and secrete small amounts of a glycoprotein called Tamm-Horsfall protein (also called uromodulin), into the tubular lumen. This protein forms the meshwork that entraps cells in the tubule to form casts and is found in normal urine. Normal protein casts that do not have cells in them are called agranular casts. There are many types of abnormal casts, each associated with certain renal pathologic conditions. For example, WBC casts are associated with renal infections (pyelonephritis), RBC casts indicate inflammation of the glomerulus (glomerulonephritis), and epithelial cell casts indicate sloughing of tubular cells (acute tubular necrosis).
Serum Creatinine and Blood Urea Nitrogen Creatinine is an end product of muscle metabolism that is excreted exclusively by the kidney. The serum creatinine level averages approxi- mately 0.7 to 1.5 mg/dL and is relatively constant throughout the day and from day to day. Creatinine levels are slightly higher in men than in women because of men’s larger muscle mass.
Serum creatinine level is a fairly reliable indicator of renal function because it is affected by only two factors: (1) the rate of creatinine produced from muscle, which is relatively constant in the absence of muscle breakdown; and (2) the rate of creatinine excreted by the kidney, which is determined primarily by the GFR. Therefore the GFR is reflected in the serum creatinine level. For instance, when the GFR decreases by half, the concentration of creatinine in the serum doubles. A rise in serum creatinine level indicates a decrease in renal function.
Urea is an end product of protein metabolism. It is excreted primarily by the kidney and measured in the blood as blood urea nitrogen (BUN). The BUN averages approximately 10 to 20 mg/dL and rises with a decrease in renal function, a decrease in fluid volume, and an increase in catabolism and dietary protein intake. When a change in renal function occurs, the BUN measurement tends to change more rapidly than the creatinine level; however, the BUN value is less specific. Often BUN and creatinine are measured together, and the ratio is determined. Acute
CHAPTER 26 Renal Function 573
KEY POINTS • Urinalysis provides important information about kidney function. Normal urine
is clear, pale yellow to amber, and slightly acidic, and it may contain a few cells. Urine osmolality and specific gravity normally vary over the course of the day, depending on fluid intake. Urine is abnormal if it is cloudy or malodorous or contains protein, red blood cells (RBCs), crystals, stones, or casts. A fixed osmolality or specific gravity may indicate renal impairment.
• Serum creatinine and blood urea nitrogen (BUN) measurements are useful indicators of renal function. Serum creatinine level is a more reliable indicator of renal function than BUN measurement. In conditions of reduced glomerular filtration rate (GFR), serum creatinine and BUN levels increase.
• GFR can be estimated by measuring the clearance of a filterable substance from the urine. Creatinine clearance is frequently used for this purpose, but it is not completely accurate because of some tubular processing. Inulin clearance provides a more accurate measurement of GFR. The MDRD is a simple calculated method of estimating GFR using serum creatinine values.
• Diagnostic studies used to evaluate kidney structure and function include plain radiography, pyelography, radionuclide studies, ultrasound, CT, and MRI. Renal biopsy may be performed to obtain tissue for histologic examination.
detail than ultrasonography. CT can demonstrate perirenal and renal masses, renal vascular disorders, and filling defects of the collecting system.
Magnetic Resonance Imaging Magnetic resonance imaging (MRI) is a painless, noninvasive procedure that does not use x-rays or radioactive markers. The imager applies a strong magnetic field that causes protons to align themselves with the magnetic field. Pulses of radio waves are emitted that cause the magnetic fields to rotate or resonate. The rotating fields induce electrical signals that the computer analyzes and uses to create images or pictures on a screen. The renal images are available in all planes and show more detail than the images achievable with CT. Newer methods of MRI have been developed to obtain dynamic images using the movement of contrast dye through the kidney. Sequential fast-pulse imaging (functional MRI) allows assessment of obstructions, vascular disorders, and renal insufficiency.
Renal Biopsy The purpose of a kidney biopsy is to obtain renal tissue that may be studied to determine the nature and extent of renal disease for diagnosis, management, and prognosis. The renal tissue is studied histologically by light and electron microscopy and immunofluorescence. Some indications for a kidney biopsy are persistent proteinuria, hematuria originating from the kidney, unexplained acute renal failure, glomerular disease, renal mass, rejection of a transplanted kidney, and renal involve- ment in systemic disease.
evaluate renal excretory function. The dye is nephrotoxic, meaning poisonous to the kidney, and allergenic to some people. A state of hydration helps the dye pass through the kidney and prevents renal damage. Because fecal matter and gas in the intestinal tract will interfere with visualization of the kidneys and ureters on the radiographs, a laxative or enema may be indicated before IVP.
Radionuclide Studies Renograms and renal scans are diagnostic studies that use radioactive isotopes to assess kidney structure and function. In general, the renogram is more useful for assessing function, whereas the renal scan is better at detecting structural anomalies. During a renogram procedure, a small amount of filterable radioactive material is administered intravenously. It circulates through the kidney and is excreted in the urine. While the radionuclide circulates through the renal vessels and nephrons, a radiation detection probe counts the activity of the radioactive substance and simultaneously creates a graphic record of the activity. This test assesses renal function by measuring renal blood flow, glomerular filtration, and tubular secretion.
The renal scan uses a radionuclide that tends to accumulate in areas that are well perfused by blood. The renal scan images depict the concentration of the radionuclide in the kidney and provide anatomic and some physiologic information. In the presence of tumors or nonfunctioning areas, the radioactive material will not be detected by the scan.
A more dynamic assessment of renal physiology can be obtained using positron emission tomography (PET) or single-photon emission computed tomography. These modalities use scintigraphic imaging to view the kidney and can pick up subtle, dynamic changes. Regional differences in GFR, for example, can be detected by PET scan.
Ultrasonography Ultrasonography is a noninvasive, painless procedure that uses high- frequency sound waves to image renal structures. The sound waves are at a frequency above the limit of human hearing. Ultrasound is used because its short wavelength produces a more detailed picture or image than other types of sound waves. A probe with a transducer inside is held against the back and emits ultrasound waves that travel through tissue to the kidney and reflect off the kidney, back to the probe. Ultrasonography demonstrates gross renal anatomy, true kidney depth, structural abnormalities, and perirenal masses, and it can be used to distinguish between a fluid-filled cyst and a solid tumor.
Computed Tomography Computed tomography (CT) combines roentgenography with computer technology and is a noninvasive, painless procedure. Instead of using broad x-ray beams, CT uses thin x-ray beams, each about 10 degrees apart. The information obtained during scanning is transmitted to a computer, which constructs a tomograph and calculates its density. Because the kidneys are located deep within the abdominal cavity, they opacify better after an IV injection of a contrast agent. CT shows more
The kidneys have a vital role in excreting water-soluble waste products and maintaining fluid, electrolyte, and acid–base homeostasis. To perform these functions, the kidneys must have a sufficient GFR. Most waste products are removed by filtration rather than by secretion; thus a reduced GFR results in accumulation of wastes in the blood. The kidney has a large renal reserve and accomplishes its functions well until more than 75% of the nephron mass is dysfunctional.
The nephron is the structural and functional unit of the kidney. It performs three essential functions: filtration, secretion, and reabsorption. Filtration occurs at the glomerulus at a rate of about 125 mL/min. The composition of filtrate is similar to that of blood except that proteins and blood cells are absent. Normally 99% of the filtrate is reabsorbed along the nephron tubules, resulting in the elimination of 30 to 60 mL/ hr of concentrated urine. Each nephron regulates its own GFR through
S U M M A R Y
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tubuloglomerular feedback to prevent overloading its reabsorptive capacities.
The kidneys are responsive to a number of endocrine hormones that regulate blood osmolality and volume, including ADH, aldosterone, AII, ANP, urodilatin, uroguanylin, and guanylin. In addition, the kidneys
produce two important endocrine hormones: erythropoietin and vitamin D. Urinalysis, serum creatinine and BUN levels, and tests of GFR are important indicators of renal function. Structural abnormalities can be assessed by a variety of imaging techniques.
RESOURCES Fehrman-Ekholm I, Kvarnström N, Söfteland JM, et al: Post-nephrectomy
development of renal function in living kidney donors: a cross-sectional retrospective study. Nephrol Dial Transplant 26(7):2377–2381, 2011.
Hall JE, editor: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2015, Saunders.
Harris RC: COX-2 and the kidney. J Cardiovasc Pharmacol 47(Suppl 1):S37–S42, 2006.
Jarvis C: Physical examination and health assessment, ed 7, Philadelphia, 2015, Saunders.
Levey AS, Bosch JP, Lewis JB, et al: A more accurate method to estimate glomerular filtration rate from serum creatinine: a new prediction equation. Modification of Diet in Renal Disease Study Group. Ann Intern Med 130(6):461–470, 1999.
Mjøen G, et al: Long-term risks for kidney donors. Kidney Int 86:162–167, 2014.
Ramcharan T, Matas AJ: Long-term (20-37 years) follow-up of living kidney donors. Am J Transplant 2(10):959–964, 2002.
Schnermann J: Concurrent activation of multiple vasoactive signaling pathways in vasoconstriction caused by tubuloglomerular feedback: a quantitative assessment. Annu Rev Physiol 77:301–322, 2015.
Stanton BA, Koeppen BM: Elements of renal function. In Koeppen BM, Stanton BA, editors: Berne & Levy physiology, ed 6, Philadelphia, 2010, Mosby, pp 557–577.
Stockand JD, Sansom SC: Glomerular mesangial cells: electrophysiology and regulation of contraction. Physiol Rev 78:723–744, 1998.
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27
Intrarenal Disorders Jacquelyn L. Banasik and Roberta J. Emerson
K E Y Q U E S T I O N S • How are the locations of renal pain, findings on urinalysis, and
results of other diagnostic tests used to differentiate the causes of kidney disease?
• How are renal tumors differentiated, detected, and managed? • How do autosomal-dominant and autosomal-recessive forms of
polycystic kidney disease differ? • What risk factors and clinical findings are associated with
pyelonephritis?
• What physiologic and pathophysiologic disorders predispose to the formation of renal calculi of differing compositions?
• How are the various forms of glomerulonephritis differentiated? • What laboratory and clinical findings suggest a diagnosis of
nephrotic syndrome?
C H A P T E R O U T L I N E Common Manifestations of Kidney Disease, 575
Pain, 575
Abnormal Urinalysis Findings, 576
Other Diagnostic Tests, 576
Congenital Abnormalities, 577 Renal Agenesis and Hypoplasia, 577
Cystic Kidney Diseases, 578
Autosomal-Recessive Polycystic Kidney Disease, 578 Autosomal-Dominant Polycystic Kidney Disease, 578
Neoplasms, 579 Benign Renal Neoplasms, 579 Renal Cell Carcinoma, 579 Nephroblastoma (Wilms Tumor), 580
Infection, 581 Acute Pyelonephritis, 582 Chronic Pyelonephritis, 582
Obstruction, 583 Renal Calculi (Nephrolithiasis), 584
Glomerular Disorders (Glomerulopathies), 586 Glomerulonephritis, 587
Acute Glomerulonephritis, 588 Crescentic Glomerulonephritis/Rapidly Progressive
Glomerulonephritis (RPGN), 589 Chronic Glomerulonephritis, 589
Nephrotic Syndrome, 589
Membranous Nephropathy (MN), 590 Focal Segmental Glomerulosclerosis (FSGS), 590 Minimal Change Disease (MCD), 591
http://evolve.elsevier.com/Banasik/pathophysiology/
Functional kidneys are necessary for the removal of waste products from the blood and the maintenance of fluid, electrolyte, and acid–base balance despite wide variations in intake and losses. Systemic disorders that alter the delivery of blood flow to the kidney may adversely affect the kidney’s ability to perform its filtering and homeostatic functions. In addition, many disorders occur primarily within the kidney and have the potential to result in chronic kidney disease or end-stage renal disease (ESRD). In general, these disorders can be categorized as (1) congenital, (2) neoplastic, (3) infectious, (4) obstructive, and (5) glomerular.
COMMON MANIFESTATIONS OF KIDNEY DISEASE Pain Thorough pain assessment is an essential component of the history and physical examination of any patient. The results can be useful in localizing the etiology of the pain, but assessment is also challenging because pain perceived as coming from the abdomen can originate from many varied organs and tissues within the abdomen or extraab- dominally (see Chapter 47). Pain associated with the urinary tract may originate from the lower urinary tract (ureters, bladder, or urethra) or
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
576 UNIT VIII Renal and Bladder Function
plexus, and because of this association, scrotal pain in males and labial pain in females may accompany renal pain.
Abnormal Urinalysis Findings Urinalysis is an essential laboratory test for all suspected problems of the genitourinary system. After history taking and a physical examination, urinalysis generally serves as a starting point for the differential diagnosis. First, urine is examined grossly, encompassing both the solvent and the solutes. The color, odor, and turbidity of the urine offer the first clues. Dark, strong-smelling urine may be an indicator of decreased renal function. Cloudy, pungent urine generally indicates an infectious process, with the turbidity being a result of leukocytes in the urine. Dipstick tests and microscopic analysis provide a great deal of additional informa- tion. Microscopic examination entails the assessment of the urine sediment, the portion that remains after the urine specimen is centrifuged. Kidney disorders and the associated abnormalities identified by urine dipstick testing are shown in Table 27.1. Abnormal microscopic urinalysis results indicative of kidney disorders are shown in Table 27.2.
Other Diagnostic Tests Many of the diagnostic tests presented in Chapter 26 are applicable to intrarenal disorders. The simple kidney, ureter, and bladder radiograph identifies gross abnormalities of the kidney related to position, size, and shape, as well as renal calculi that are radiopaque. Renal vasculature can be examined by renogram or renal scan; renal scans will also identify neoplasms in the kidney. Ultrasonography differentiates the solid mass of a neoplasm from fluid-filled cysts. Computerized tomography (CT) and magnetic resonance imaging (MRI) provide detailed information regarding multiple pathologies, including thrombi or other vascular occlusions, masses, and obstructions involving the kidney. In situations
the kidney itself. Renal or kidney pain is also referred to as nephralgia (-algia is from the Greek algos, meaning pain). Extensive damage to a kidney can occur without nephralgia because most of the kidney lacks pain receptors. However, the renal capsule is innervated by nociceptors, and when a disease process causes it to be distended, inflamed, or punctured, a dull to sharp pain is felt. Pain may be caused by intrarenal fluid accumulation, infected or bleeding cysts, hemorrhage from blunt trauma, or neoplastic expansion. In addition, whenever the renal capsule is penetrated (e.g., during biopsy or trauma), a dull pain or intense pressure may be felt. The renal pelvis and the rest of the urinary tract are innervated by many pain receptors. Obstruction of the intrarenal collecting system causes pain if the obstruction leads to distention of the renal pelvis or capsule. Large calculi, however, can develop insidiously in the renal pelvis or calices and may be painless until they start to move into the ureteral junction. Ischemia caused by the occlusion of renal blood vessels (e.g., from an embolus, atherosclerotic disease, or neoplasm) results in a constant dull or sharp pain.
Pain associated with intrarenal disorders affecting the capsule is classically assessed by palpation or light percussion over the costovertebral angle (CVA) posteriorly and is recorded as CVA tenderness. Sympathetic nerves transmit signals from renal and ureteral nociceptors to the spinal cord between the T10 and L1 levels, and the pain may be felt throughout the corresponding dermatomes. A dermatome is an area of skin innervated by a specific spinal cord segment (Fig. 27.1). Visceral and cutaneous afferent fibers enter the spinal cord in close proximity and converge on some of the same neurons at the spinal, thalamic, and cortical levels of the central nervous system. When visceral pain fibers are stimulated, concurrent stimulation of cutaneous fibers occurs and the visceral pain is perceived as though it had originated in the skin. Nerve fibers from the renal plexus communicate with the spermatic
T10 T11 T12
L1
T10 T11 T12 L1
FIG 27.1 Dermatomes T10 (thoracic) to L1 (lumbar) correspond to areas that innervate the renal structures.
CHAPTER 27 Intrarenal Disorders 577
in others the renal abnormalities are isolated. About 10% of live births have a significant urinary system malformation. Abnormalities may be identified prenatally during ultrasound assessment of the developing fetus, noted at birth, or manifest only in later life. Common congenital anomalies of the kidney include renal agenesis and cystic disease. Congenital disorders of the urinary collecting system are discussed in Chapter 29.
Renal Agenesis and Hypoplasia Renal agenesis means a failure of one or both kidneys to embryonically develop. On the other hand, renal hypoplasia describes a condition in which some fetal development of the kidneys has occurred but they are smaller than normal.
in which these diagnostic tests are insufficient and actual tissue examina- tion is necessary (e.g., neoplasm assessment), a renal biopsy may be required.
TABLE 27.1 Urine Dipstick Findings Associated With Kidney Disorders
Urine Dipstick Finding Associated Kidney Disorders
Specific Gravity Decreased Chronic kidney disease (decreased
concentrating ability) Diabetes insipidus
Increased Diabetes mellitus Syndrome of inappropriate secretion
of antidiuretic hormone
pH Increased (6.5–8.0) >7.5 Urinary tract infection with
urea-splitting bacteria (e.g., Proteus) Renal tubular acidosis Calcium or struvite calculi
Decreased (4.5–5.5) Uric acid or cystine calculi Hematuria Renal cell carcinoma
Tubulointerstitial renal disease Urinary tract infection Trauma Glomerulonephritis Obstructive processes (e.g., calculi,
neoplasms) Proteinuria Diabetic nephropathy
Renal hypertension Glomerulopathies Nephrotic syndrome Renal arterial or venous obstruction
Glycosuria and Ketones Diabetes mellitus Protein-energy malnutrition
White Blood Cells/Leukocyte Esterase
Urinary tract infection
Nitrites Urinary tract infection (especially with gram-negative bacteria)
TABLE 27.2 Microscopic Urinalysis Findings and Associated Kidney Disorders
Microscopic Urinalysis Finding Associated Kidney Disorders
Cells RBCs (circular shaped) Urinary tract infection
Trauma Obstructive disorders (e.g., calculi,
neoplasm) RBCs (irregularly shaped) Glomerulopathies WBCs (>1–2/HPF) Infection or inflammation (e.g., urinary
tract infection, neoplasm, calculi) Irregular transitional epithelial
cells Malignancy
Casts Hyaline Usually no pathologic significance
Chronic kidney disease Pyelonephritis
Fatty Nephrotic syndrome Nephrosis
RBC Glomerulonephritis WBC Acute glomerulonephritis
Acute pyelonephritis (sometimes) Acute tubulointerstitial nephritis
Waxy Chronic kidney disease Diabetic nephropathy Glomerulonephritis
Crystals Cystine Cystinuria
Acidic urine Uric acid Uric acid calculi
Acidic urine Calcium oxalate Calcium calculi
Acidic urine Calcium phosphate Calcium calculi
Alkaline urine Triple phosphate/struvite Struvite calculi
Alkaline urine Bacteria ≥5/HPF Bacterial urinary tract infection Yeast Yeast urinary tract infection Parasites (e.g., Trichomonas
vaginalis) Vaginitis in women Urethritis in men
HPF, High-power field; RBC, red blood cell; WBC, white blood cell.
KEY POINTS • Renal pain is generally perceived at the costovertebral angle (CVA). Pain
is transmitted to the spinal cord between T10 and L1 by sympathetic afferent neurons. Pain may be felt throughout the dermatomes corresponding to T10-L1. Renal pain is usually due to distention and inflammation of the renal capsule and has a dull, constant character.
• Urinalysis provides a foundation for the differential diagnosis of renal dysfunc- tion. Dipstick and microscopic urinalysis results provide clues to intrarenal pathologies.
• Other diagnostic tests provide information related to abnormal kidney anatomy and function.
CONGENITAL ABNORMALITIES A wide variety of anomalies in the development of the kidneys have been documented in the literature. One or both kidneys may be involved. In some cases, findings are associated with other abnormalities, whereas
578 UNIT VIII Renal and Bladder Function
Autosomal-Dominant Polycystic Kidney Disease ADPKD is the most common of all the hereditary cystic kidney diseases. Typically, both kidneys are involved, but they may not progress at the same rate. ADPKD progresses at a variable rate and eventually results in end-stage kidney disease. The disease process appears to advance more rapidly in men than in women. Although prenatal and neonatal cases have been reported and ADPKD can present at any age, it usually manifests in patients who are 40 to 59 years old.
There are two genetically distinct but phenotypically similar forms of ADPKD: PKD1 and PKD2. Distribution of these genotypes is such that 85% of the cases are associated with PDK1 and just less than 15% with PDK2. Approximately 10% of the cases of ADPKD are not familial in origin and appear sporadically. Because of significant variability in clinical presentation within families, environmental modifying factors have been suggested.
While the cysts multiply and expand, the overall size of the kidneys increases and there is a progressive decline in glomerular filtration rate (GFR). A comparison of normal and polycystic kidneys is shown in Fig. 27.2. Expansion of the cysts compacts and distorts the vascular system, and the resulting local ischemia activates the intrarenal renin– angiotensin system. The progressive reduction in renal function is associated with an increase in the size of the kidney and the overall volume of the cysts.
Other tissues are affected in ADPKD, with the liver being the most common. Additional extrarenal sites include the spleen, pancreas, lung, seminal vesicles, circle of Willis, skin, and heart.
Involvement of these other organs and tissues results in additional clinical manifestations. In the early phases of the disease, the ability to concentrate urine is decreased. Hypertension is often diagnosed late in the disease process and increases the likelihood of escalated loss of renal function, proteinuria, and hematuria. In many adult patients with ADPKD, pain is a frequent complaint. Pain may be due to bleeding within the kidney, movement of kidney stones, or the development of urinary tract infections. Stasis of urine because of cysts predisposes to the development of kidney stones and infections.
Bilateral renal agenesis results from failure of the metanephros (renal buds) to develop in the fetus. It is incompatible with extrauterine life and results in stillbirth or death shortly thereafter. Unilateral renal agenesis (URA) is a rare disorder that is compatible with live birth. URA is often associated with concurrent urologic or other congenital anomalies. Nonurologic anomalies are usually cardiac or gastrointestinal in nature. Sometimes renal agenesis has been found to be familial and inherited as a dominant trait; screening by ultrasound of parents and siblings has been recommended when infants with agenesis or dysgenesis are diagnosed. Poorly controlled diabetes and exposure to certain drugs (e.g., those affecting angiotensin II) and chemicals have been implicated as teratogens. In URA, the remaining kidney usually enlarges as a compensatory mechanism. Lifelong monitoring of renal function is recommended.
Congenital renal hypoplasia increases the risk of developing chronic kidney disease. Gene mutation is likely responsible for the incomplete development of the kidney. Hypoplasia may be insufficient for extra- uterine life if both kidneys are involved or may not affect renal function- ing until later in life. When renal hypoplasia has been identified, regular monitoring of kidney function is recommended.
Cystic Kidney Diseases Cystic disease of the kidneys incorporates a wide range of hereditary, developmental, and acquired conditions. Depending on the classification, these fluid-filled dilations may be present at birth or only visible later in life. They may involve one or both kidneys and be accompanied by other anomalies, or they may be the only pathology present. More commonly found in men, and increasing in prevalence with aging, renal cysts have been reportedly identified in more than half of patients over the age of 50. Cysts may be found in other organs or limited to the kidneys, depending on the disorder. Within the kidney, cysts may be diffuse or confined to one anatomic area. Renal cysts of significant size may produce flank pain and hemorrhage.
The two most common forms of cystic kidney disease are the autosomal-recessive and autosomal-dominant polycystic diseases. Autosomal-recessive polycystic kidney disease (ARPKD) is usually diagnosed in infants and young children, whereas autosomal-dominant polycystic kidney disease (ADPKD) may not be apparent until adulthood. Different genes are involved in ARPKD and ADPKD; however, both types of genes code for proteins associated with the primary cilium on the surface of tubule cells. The primary cilium is a mechanoreceptor that senses urine flow and is linked to regulatory responses, including a Ca2+ channel. The exact mechanisms are not known, but mutations of these proteins appear to cause growth dysregulation and abnormal remodeling of the tissue. Although the ARPKD and ADPKD forms of the disease are genetically different, their pathophysiology is similar. The onset and clinical courses are distinct (Table 27.3).
Autosomal-Recessive Polycystic Kidney Disease ARPKD is often identified in the neonatal period, and when accompanied by pulmonary hypoplasia, it may result in death. In ARPKD, the kidneys retain their shape but are uniformly enlarged, and collecting ducts are dilated from the medulla to the cortex. The liver is commonly cystic as well as the kidneys. The most common clinical signs in the neonatal period are respiratory distress or palpable kidneys on physical examina- tion. Systemic hypertension is frequently severe. Those who live to reach adulthood typically retain some renal function but experience a progres- sive decline in liver function. A recessive pattern of inheritance within the family and pathology on liver biopsy are important diagnostic data because both the clinical presentation and the results of ultrasounds, CT, or MRI can be similar to those of the autosomal-dominant form of polycystic kidney disease.
TABLE 27.3 Comparison of Autosomal- Recessive and Autosomal-Dominant Polycystic Kidney Disease
Feature Autosomal Recessive
Autosomal Dominant
Gene defect Chromosome 6p Gene PKD1 on chromosome 16, or gene PKD2 on chromosome 4
Incidence 1 : 20,000 1–2 : 1000 Age at diagnosis Usually neonate to
childhood Usually fourth to fifth decade
Imaging findings Symmetrically enlarged kidneys
Enlarged kidneys, often asymmetric
Histologic findings
Cysts derived from epithelial cells of collecting ducts
Entire nephron involved
Liver involvement
Abnormal portal ducts progressing to fibrosis
Multiple cysts
Other systemic findings
Usually none Cysts in other abdominal organs, aneurysms, abnormal cardiac valves, hernias, and diverticuli
CHAPTER 27 Intrarenal Disorders 579
palpation, produce flank pain, and cause hematuria. Generally, benign renal neoplasms are treated by removal of some or all of the kidney (nephrectomy) because they are space-occupying lesions and because of their propensity to undergo malignant changes.
Renal Cell Carcinoma The great majority of kidney cancers are renal cell carcinomas (RCC). The remaining 10% to 15% of cases are primarily urothelial cell cancers of the pelvis. A cross-sectional view of RCC is shown in Fig. 27.3. Approximately 65,000 cases of renal cell and renal pelvis cancers are diagnosed annually in the United States, representing 3% of all cancers. Rates are higher in men, African Americans, and older adults.
Etiology and pathogenesis. Although only a small portion of the cases of RCC are attributed to known genetic factors, the risk of its development is higher when there is a first-degree relative with the disease. Several specific genes have been identified in familial cases and are associated with specific subtypes, including clear cell carcinoma (VHL gene) and papillary carcinoma (MET gene).
Several risk factors for RCC have been identified, and these are listed in Box 27.1. Obesity, cigarette smoking, and hypertension are important modifiable risk factors. Estrogen therapy and exposure to asbestos or heavy metals also increases risk.
Clear cell carcinomas originate in the renal cortex from cells of the proximal tubule and are usually unilateral and random in occurrence, with some cases of familial patterns of inheritance. Clear cell RCC frequently is associated with metastatic disease. Activity of the tumor suppressor gene protein VHL is lost, allowing excessive growth stimula- tion. Papillary RCC, representing 10% to 15% of RCC diagnoses, has been associated with excessive activity of the proto-oncogene MET that
Diagnosis is based on family history, genetic testing and imaging techniques. When there is no family history of ADPKD, a presumption of the disease is made if imaging either identifies cysts and bilaterally enlarged kidneys or shows cysts in the liver and both kidneys. Genetic testing is then performed to substantiate the diagnosis. Treatment of ADPKD is primarily supportive, emphasizing the control of blood pressure and the management of any associated pathologic conditions. Once ESRD is reached, dialysis or kidney transplantation is required.
FIG 27.2 Comparison of normal and polycystic kidneys. (From Brundage DJ: Renal disorders, St Louis, MO, 1992, Mosby.)
KEY POINTS • Renal agenesis is relatively rare, and its presence is often associated with
other congenital malformations. Bilateral renal agenesis is not compatible with life. Unilateral renal agenesis results in compensatory hypertrophy of the functional kidney. A single normal kidney is sufficient to maintain relatively normal renal function.
• Polycystic kidney diseases are genetically transmitted kidney disorders. Autosomal-recessive forms are evident at birth. In the autosomal-dominant type, symptoms generally occur later in life. Expanding cysts disrupt urine formation and flow. The inevitability of renal failure necessitates dialysis or transplantation.
NEOPLASMS Neoplasms found in the kidney may be benign or malignant primary tumors, or they may result from metastases from extrarenal sites. Because the kidney is encased in a tough, fibrous capsule, growing renal neoplasms will distort the architecture of the kidney and ultimately hinder kidney function. Malignant renal neoplasms also carry the threat of metastasis to distant sites.
Benign Renal Neoplasms Several benign neoplasms may be found in the kidney, developing from the renal cortex, medulla, or capsule. The etiology and pathogenesis of some of these benign neoplasms are summarized in Table 27.4.
Diagnosis and treatment. Benign renal neoplasms are typically detected incidentally during abdominal imaging for other reasons. The neoplasm may attain sufficient size to be detected with abdominal
TABLE 27.4 Summary of Benign Renal Neoplasms
Benign Neoplasm Etiology and Pathogenesis
Renal cortical adenomas Small, solid growths that develop from cortical tissue; incidences of less than 1% up to 23%; typically <1 cm; patient is asymptomatic
Metanephric adenoma Histologically related to Wilms tumor Oncocytoma Most difficult to differentiate from renal
cell carcinoma; light brown to tan in color with well-defined borders
Angiomyolipoma Composed of adipose, smooth muscle tissue, and blood vessels; believed to be hormone dependent because it is primarily found in postpubescent women
Nephroma Cystic neoplasm not reliably differentiated from renal cell carcinoma in adults or nephroblastoma in children
Mixed epithelial stromal neoplasm
Most often found in perimenopausal women, most of whom are taking estrogen replacement therapy
Leiomyomas Evolve from renal capsule, pelvis, or renal vein
Hemangiomas, fibromas, lipomas, lymphangiomas, and reninomas
Rare benign neoplasms
From Campbell SC, Novick AC, Bukowski RM: Neoplasms of the upper urinary tract. In Wein JA et al, editors: Campbell-Walsh urology, ed 11, Philadelphia, 2016, Saunders, pp 1575–1582.
580 UNIT VIII Renal and Bladder Function
A B
FIG 27.3 Clear cell renal cell carcinoma (CCRCC). The gross appearance of a CCRCC is characteristically golden yellow, and it may be associated with variable amounts of hemorrhage and necrosis. Tumors arise from cortical tubules and can be (A) confined to the renal parenchyma or (B) extend beyond the capsule into perinephric soft tissue (From Hirsch MS, Signoretti S, Dal Cin P: Adult renal carcinoma. Surg Pathol Clin 2015;8(4):587–621.)
• Cigarette smoking • Obesity • Hypertension • Diabetes mellitus • Asbestos exposure • Multiparous women • Long-term renal dialysis • Kidney transplantation
BOX 27.1 Risk Factors for Renal Cell Carcinoma
codes for a growth factor receptor. (See Chapter 7 for a discussion of protooncogenes and tumor suppressor genes.)
Clinical manifestations. RCC is commonly asymptomatic until it is quite advanced. When it does present with signs and symptoms, the most common are CVA tenderness, hematuria, and a palpable abdominal mass. Dyspnea, cough, and bone pain develop secondary to metastasis.
Diagnosis and treatment. In many cases RCC has metastasized at the time of initial diagnosis. The staging system used with RCC is shown in Fig. 27.4. Radical nephrectomy is indicated for advanced-stage cancer; early-stage cancer may be managed with partial nephrectomy More targeted therapies, specifically angiogenic inhibitors and tyrosine kinase inhibitors, may be used in selected patient situations. The overall 5-year survival for RCC is approximately 70%.
Nephroblastoma (Wilms Tumor) Nephroblastoma is the fifth most frequently occurring pediatric malignancy and the most common childhood kidney cancer. Seventy-five percent of the cases occur in children less than 5 years old. Incidence is equally distributed between genders, and it is usually unilateral and sporadic; only 1% to 2% of patients diagnosed with Wilms tumor have a relative who has been diagnosed with the disease.
Etiology and pathogenesis. Nephroblastomas develop from embry- onic pluripotent kidney precursor cells called nephrogenic rests. The
first gene found to be associated with Wilms tumor was WT1, located on the short arm of chromosome 11. A second gene called WT2 has also been implicated.
Nephroblastomas are typically large, well-encapsulated tumors that grow rapidly. They undergo hemorrhage and cystic changes; necrosis that occurs because of hemorrhaging is responsible for the development of cysts. As the malignant cells proliferate, the normal architecture of the kidney is altered. The renal pelvis becomes compressed, and locally the tumor infiltrates into the renal veins and hilar nodes. Metastasis is typically via the bloodstream to the brain, liver, adrenal glands, and bone.
Clinical manifestations. A palpable abdominal mass is evident in about 80% of cases. Abdominal pain, hypertension, and hematuria are also common local manifestations. Nephroblastoma may produce a tumor thrombus in the inferior vena cava, which can lead to decreased venous return and lower extremity edema. Additional signs or symptoms may be noted reflective of the sites of metastasis.
Diagnosis and treatment. Most often the tumor is identified by the parents or during a routine physical examination. Renal ultrasound and/or CT scan will usually identify anatomic abnormalities associated with the tumor. Treatment protocols have improved to the point that this previously lethal disease now has a cure rate of more than 90%. Key to treatment is removal of the involved kidney (nephrectomy). Radiation and chemotherapy are routine after surgery. Radiation therapy may also be administered preoperatively to shrink tumors and reduce their vascularity.
KEY POINTS • A number of benign and malignant primary neoplasms may develop in the
kidney. Symptoms depend on the size of the neoplasm and the presence of metastasis. Neoplasms may be asymptomatic until quite large. At that time, a palpable abdominal mass, hematuria, and flank pain may be noted.
• Neoplasms are usually detected with renal ultrasound and/or CT scan. Nephrectomy remains the initial treatment of choice for both benign and
CHAPTER 27 Intrarenal Disorders 581
Infection of the kidney is known as pyelonephritis, or upper urinary tract infection, and affects the renal tubules, pelvis, and calices. Although infectious organisms responsible for upper urinary tract infections may be delivered to the kidney via the bloodstream or lymphatic system, they most commonly reach the kidneys as an ascending infection from the lower urinary tract (urethra, bladder, and ureters) (Fig. 27.5). Infection of the lower urinary tract is discussed in Chapter 29.
The most common causative agents of renal system infection are serogroups of Escherichia coli, whereas Enterobacter, Enterococcus, Proteus mirabilis, and strains of Klebsiella are responsible for most of the other infections. Most often, infections with these other organisms are linked to calculi or to anatomic abnormalities of the urinary tract. In certain populations, Staphylococcus saprophyticus and group B Streptococcus have been identified. Fungal infections, mycoplasmas, and other anaerobic bacteria are occasionally responsible. Infections attributable to Neisseria gonorrheae or Chlamydia trachomatis are associated with sexually transmitted diseases and are typically limited to the urethra. Uropatho- genic bacteria possess adhesins that allow the bacteria to bind to epithelial cells of the urinary tract.
Risk factors for urinary tract infections are listed in Box 27.2. One of the most significant preventive interventions is the early removal of urinary catheters. Anatomically, women are at increased risk because of their shortened urethras, but the resulting infections are most often confined to the lower urinary tract. Urinary tract infections are common in women and elderly men. Children with congenital anomalies that allow reflux are also at high risk. Male children who are uncircumcised experience urinary tract infections more frequently than those who are circumcised.
INFECTION Normally, a number of host defense mechanisms serve to protect the renal system from infection. Chemically, the acidic pH and the presence of urea in the urine produce a relatively hostile environment for bacterial growth. Bacteriostatic prostatic secretions in men also act as a protective mechanism against bacterial invasion. In women, glands in the distal urethra secrete mucus that captures bacteria, preventing progression to the bladder. Small numbers of bacteria that may enter the system are washed out by micturition. Normal unidirectional flow prevents reflux of urine from the bladder to the kidney via the ureter by contrac- tion of the vesicoureteral junction that occurs with bladder filling. In children, urinary tract infections may be associated with vesicoureteral reflux or other anatomic malformations of the urinary tract (see discus- sion of vesicoureteral reflux in Chapter 29). Epithelial cells of the urinary tract provide a physical barrier to infectious organisms, and indigenous proteins trap bacteria or block their adhesion to epithelial cells.
Tumor within capsule
Tumor invades perirenal fat
Tumor extends into renal vein or regional lymphatics
Stage I Stage II
Stage III
Stage IV
Lungs
Common areas of metastases
Heart
Liver
Other kidneyPrimary tumor
Bone
FIG 27.4 Staging system for renal cell carcinoma. (From Black JM, Matassarin-Jacobs E: Medical-surgical nursing: clinical management for continuity of care, ed 8, Philadelphia, 2009, Saunders, p 923.)
malignant renal neoplasms. Nephron-sparing partial nephrectomy is utilized when appropriate.
• Renal cell carcinomas (RCC) is often metastasized at the time of diagnosis because it remains asymptomatic. Two gene defects have been associated with the development of RCC (VHL, MET). The overall survival rate of RCC is approximately 70%, higher at early stages and lower at late stages.
• Nephroblastoma, or Wilms tumor, is the most common kidney cancer in children. Nephrectomy, radiation therapy, and chemotherapy are used in the management of nephroblastomas. Cure rates are high.
582 UNIT VIII Renal and Bladder Function
and obstructive causes. Populations with the highest incidence are young women, infants, and the elderly. E. coli is the causative organism in the large majority of acute pyelonephritis cases. Pyelonephritis may be unilateral or bilateral. Acute infection of the kidney usually originates as an ascending infection, but may arrive at the kidney via the blood- stream. Once in the kidney, bacteria bind to tubule epithelial cells, initiating an inflammatory response. Inflammatory mediators and bacterial toxins are responsible for the damage to the kidney tubules.
Clinical manifestations. The onset of acute pyelonephritis is sudden; patients are usually acutely ill and present with fever, chills, and CVA tenderness, as well as symptoms of lower urinary tract infection (dysuria, urgency, and frequency). Nausea, vomiting, and anorexia are frequent accompaniments, increasing the fever-induced dehydration.
Complications of acute pyelonephritis include abscesses, sepsis, acute respiratory distress syndrome, recurrent/chronic pyelonephritis, and chronic kidney disease attributable to scarring produced by recurrent infections. Renal scarring and the subsequent development of chronic kidney disease are more likely when there are preexisting anatomic or functional urinary tract abnormalities. Chronic kidney disease has been found to progress more rapidly after acute pyelonephritis. Preexisting chronic kidney disease can also increase the severity of an infection. Overall, however, the risk of decreased renal function subsequent to acute pyelonephritis is low, occurring in only 3% to 4% of cases. The term urosepsis describes organisms in the bloodstream originating from a urinary tract infection. Urinary tract infections are the cause of 20% to 30% of all sepsis cases. Fig. 27.6 illustrates acute pyelonephritis complicated by abscess formation.
Diagnosis and treatment. In addition to the clinical manifestations, diagnosis of acute pyelonephritis is suggested by urinalysis results illustrating the presence of significant amounts of bacteria and white blood cell (WBC) casts. WBC casts differentiate pyelonephritis from bladder infections because they are formed in the kidney tubules and not in the lower urinary tract. Infections commonly are treated with antimicrobial therapy on an outpatient basis for 7 to 10 days. Further assessment for urinary obstruction or an extraurinary focus of infection may be appropriate in some situations. In cases of complicated acute pyelonephritis, such as septicemia, patients are hospitalized and treated with intravenous antimicrobials and fluids.
Chronic Pyelonephritis Chronic pyelonephritis is characterized by small atrophied kidneys with diffuse scarring and blunting of the calices secondary to persistent or recurrent infection of the kidney.
Etiology and pathogenesis. Chronic reflux of infected urine into the renal pelvis is the typical cause of chronic pyelonephritis. The kidneys are usually smaller than normal with caliceal deformity, chronic inflam- mation, and parenchymal scarring. Chronic pyelonephritis causes about 2% to 3% of the cases of ESRD. Individuals at risk for developing chronic pyelonephritis have bacteriuria associated with obstructive disorders such as renal calculi, neurogenic bladder, vesicoureteral reflux, or underlying intrarenal disease. Chronic or recurrent pyelonephritis is one potential cause of chronic kidney disease (see Chapter 28).
Clinical manifestations. The symptoms of chronic pyelonephritis may be vague, inconsistent, or similar to those of acute pyelonephritis. Patients may have flank or abdominal pain, fever, malaise or anorexia.
Diagnosis and treatment. Urinalysis results typically parallel the findings of acute pyelonephritis, but may not be as profound. Diagnostic testing includes renal ultrasound and other imaging tests that show one or both kidneys to be smaller than normal with distorted architecture and significant scarring. Renal tubules may be dilated or atrophied. Other diagnostic tests may be performed to determine underlying pathologies such as vesicoureteral reflux or obstruction caused by renal
Acute Pyelonephritis Etiology and pathogenesis. Although bladder infections are quite
common, especially in women, pyelonephritis is unlikely to occur unless there is obstruction or ureteral reflux that allows contaminated urine to enter the kidney. Infection of the kidney from the bloodstream is rare in comparison to infections that ascend from the lower urinary tract. Pregnancy is a risk factor for acute pyelonephritis in women because of the physiologic alterations that occur in the urinary tract. In nonpregnant women, men, and children, the most common risk factors for acute pyelonephritis are diabetes mellitus, anatomic abnormali- ties of the urinary tract (especially vesicoureteral reflux in children),
Bacterial factors Host factors
Capsular antigens resist phagocytosis
Hemolysin damages epithelium
Urease positive bacteria promote infection i.e. Proteus and Kebsiella
Adhesins: E. coli type I and P fimbria bind to uroepithelium
E. coli contamination from colon
Kidney stones
Diabetes mellitus
Immunosuppression
Ureteral reflux
Pregnancy Neurogenic bladder
P blood group antigens
Prostatic hypertrophy
Short urethra in women Indwelling catheters
FIG 27.5 Mechanisms of urinary tract infection. (From Huether S, McCance K: Understanding pathophysiology, ed 6, St Louis, MO, 2016, Mosby.)
• Increasing age • Vesicoureteral reflux • Congenital anatomic anomalies of the urinary tract • Female gender • Pregnancy • Diaphragms with spermicidal agents for contraception • Neurogenic bladder • Instrumentation of the urinary tract (catheterization, cystoscopy) • Urinary obstruction (calculi, benign prostatic hyperplasia) • Glucocorticoids, radiation, or cytotoxic chemotherapy • Immunodeficiency conditions such as AIDS • Diabetes mellitus • Obesity • Sickle cell trait
BOX 27.2 Risk Factors for Urinary Tract Infections
CHAPTER 27 Intrarenal Disorders 583
27.5). Complications of urinary obstruction include infection, sepsis, acute kidney injury, and, potentially, chronic kidney disease.
Changes that occur within the urinary tract as a result of obstruction are dependent on (1) location and degree of obstruction (i.e., partial or complete, unilateral or bilateral) and (2) the duration and timing (acute onset or chronic) of the obstruction. Initially, in complete or significant partial obstruction, hydrostatic pressure increases proximal to the obstruction as a consequence of continued glomerular filtration
OBSTRUCTION Obstructive disorders of the urinary tract interfere with the flow of urine. Obstruction can occur at any point in the system from the renal pelvis to the urethral meatus (Fig. 27.7). In general, it causes dilation of the tract proximal to the obstruction. Stasis of urine occurs and predisposes to urinary tract infection and structural damage. Prolonged obstruction results in postrenal acute kidney injury and can ultimately lead to acute tubular necrosis (intrarenal acute kidney injury) (Chapter 28).
Disorders resulting in urinary tract obstruction may be congenital or acquired. In children, urinary tract obstruction is usually due to anatomic abnormalities such as with ureteral valves, strictures of the urethral meatus, and stenosis at the ureterovesical or ureteropelvic junction. Obstruction in adults predominantly occurs as a result of acquired disorders and may be either intraluminal (e.g., renal calculi) or secondary to extrinsic compression (e.g., tumors, prostatic hyperplasia). Acquired obstructions are due to anatomic anomalies of the urinary tract (Table
FIG 27.6 Acute pyelonephritis with abscess formation. (From Klatt E: Robbins and Cotran atlas of pathology, ed 3, Philadelphia, 2015, Elsevier, Saunders.)
KEY POINTS • Pyelonephritis is an infection of the renal pelvis and kidney tubules that is
usually due to an ascending urinary tract infection. Costovertebral angle (CVA) tenderness is the classic symptom. It is frequently accompanied by fever, chills, nausea, vomiting, and anorexia. Urinalysis generally shows evidence of an infective process. The presence of WBC casts is specifically indicative of an upper urinary tract infection as opposed to a lower urinary tract infection. When managed promptly and effectively, acute pyelonephritis does not generally result in decreased renal function.
• Chronic pyelonephritis can potentially result in chronic kidney disease. It is usually associated with vesicoureteral reflux or obstructive processes leading to persistent urine stasis. Ongoing inflammation causes fibrosis and scarring and loss of functional nephrons. The diagnosis is confirmed by renal imaging. Urinalysis results mirror those of acute pyelonephritis, but may not be as significant. Treatment includes correction of the underlying processes and often extended antimicrobial therapy.
calculi. Treatment is based on the correction of these underlying causes, administration of antimicrobial therapy that may continue for several months, and support of compromised renal function, if it exists. Polycystic
kidney
Hydronephrosis
Dysplasia-agenesis of ureter
Posterior vesicoureteral valve (reflux)
Posterior vesicourethral valve
Urethral stenosis
Prostate hypertrophy
Ureteropelvic valve
Ureteropelvic stricture
Fibrous band
Stenosis
Ureteral orifice
Urethral sphincter muscle in
urogenital diaphragm
FIG 27.7 Major sites of urinary tract obstruction. (From Huether S, McCance K: Understanding pathophysiology, ed 6, St Louis, MO, 2016, Mosby.)
584 UNIT VIII Renal and Bladder Function
Etiology and pathogenesis. Crystallization and stone formation occur with several solutes found in urine and may be promoted or inhibited by a number of factors. Some of these factors are inherent to the urinary tract and the characteristics of urine, whereas others are unique to the individual and the type of renal calculi formed. Box 27.3 identifies general factors that contribute to the formation of renal calculi.
The pathogenesis of nephrolithiasis begins with urine becoming supersaturated with the specific solute. Urine is a solution of solvent (water) and solutes (particles). Certain of these solutes have a tendency to form crystals if their concentration within the urine becomes great enough; this is the meaning of supersaturation. These crystals usually begin their development in the concentrating areas of the nephron and kidney pelvis. Crystallization is enhanced when a person is dehydrated (decreased solvent) or has higher-than-normal levels of solute in the urine from excessive excretion (calcium, uric acid). Crystals are unable to aggregate into a calculus of sufficient size to obstruct the urinary tract if urine is moving freely through the system. Adequate fluid intake is therefore an inhibitor to stone formation. Stasis of urine flow because of obstruction, immobility, and a sedentary lifestyle facilitates calculus formation.
In addition to a crystalline component, nephrolithiasis consists of a noncrystalline, organic component termed the calculus matrix. The matrix itself consists of protein, sugar, glucosamine, bound water, and organic ash. It represents a small percentage of the overall weight of the calculus, but it is present in all types of stones.
The types of renal calculi are shown in Table 27.6, along with their relative incidence in adults and primary risk factors. Calcium oxalate– based stones are by far the most common in both children and adults. Calcium-based nephrolithiasis is primarily idiopathic in etiology (unknown cause), but a family history is common. Primary risk factors for calcium-based calculi are hypercalciuria and/or hypercalcemia, hyperoxaluria, and hyperuricosuria. Hypercalciuria and/or hypercalcemia is commonly due to increased gastrointestinal absorption, impaired renal tubular reabsorption, and primary hyperparathyroidism and less often to prolonged immobility, metastatic bone cancer, multiple myeloma, prolonged metabolic acidosis, hypocitraturia, and excessive amounts of vitamin D. Hyperoxaluria can increase the urinary saturation of calcium oxalate. It may be due to a genetic defect that increases urinary oxalate excretion, a defect in liver metabolism, or increased gastrointestinal absorption of an oxalate-rich diet (rhubarb, spinach, chocolate, nuts,
and simultaneous obstruction to the flow of urine. Other structures proximal to the obstruction then begin to dilate. The more distal to the kidney the obstruction is located, the less dilation is seen because the pressure is distributed over a greater surface area. Complete obstruc- tion of a ureter results in its dilation (hydroureter). The renal pelvis and tubules enlarge with the increased pressure, and the renal papillae flatten. The enlarged kidney is called hydronephrosis. GFR and renal perfusion decline, and eventually portions of the kidney become ischemic. Over the course of several weeks, if the obstruction is not corrected, tubular atrophy and destruction of the medulla result in scar tissue and nonfunctioning or poorly functioning glomeruli. Postrenal acute kidney injury is discussed in detail in Chapter 28.
Partial obstruction is much more common. In this situation, the renal pelvis may become very dilated but the structural or functional disruption of the kidney may be minimal. If the obstruction is bilateral, however, clinical manifestations of fluid retention will be present. Patients often complain of symptoms such as weight gain, nausea, anorexia, malaise, headaches, increased abdominal girth, and ankle edema. Functionally, partial obstruction can produce a slight to moderate decrease in blood flow and GFR and an inability to concentrate urine or secrete potassium and hydrogen ions. Compensatory hypertrophy occurs in the unaffected kidney. Renal calculi and benign prostatic hyperplasia (BPH) in men are common causes of urinary tract obstruc- tion. BPH is discussed in Chapter 29.
Renal Calculi (Nephrolithiasis) Renal calculi, or lithiasis, are crystal aggregates composed of organic and inorganic materials located within the urinary tract. These calculi can form within the kidney, in the tubules, or in the collecting system and may then migrate to more distal structures. Occasionally, terminology is used to identify where these calculi are found (e.g., ureterolithiasis, located in the ureters), but more commonly, the terms renal calculi and nephrolithiasis are used to describe the formation and passage of calculi anywhere within the urinary tract. The Greek term lithiasis means stone, so renal calculi are also referred to as kidney stones.
Nephrolithiasis affects individuals throughout the world and has been traced back as far as Egyptian mummies. It is estimated that 10% to 15% of Americans will experience a kidney stone during their lifetimes. The risk of nephrolithiasis is significantly lower among African Americans and Mexican Americans than among Caucasians. A family history of kidney stones increases the risk of developing some types of nephro- lithiasis. Reduced fluid intake, dehydration, increased urine concentration, and decreased urine volume increase the risk for stone formation. Occupations where there is increased exposure to high temperatures or sedentary levels of activity are also associated with an increased incidence of stone formation. Nephrolithiasis is uncommon before age 20, with a peak onset between 20 and 30 years.
TABLE 27.5 Causes of Renal System Obstruction
Type of Obstruction Cause
Intraluminal Calculi, clot Tumor: bladder, urethra, kidney Papillary necrosis
Extrinsic Prostatic hypertrophy Retroperitoneal fibrosis Tumor: pelvic, retroperitoneal
Acquired Neurogenic bladder Ureteral stricture Urethral stricture
• Hyperparathyroidism • Gout • Certain medications • Hypertension • Urinary tract infections • Chronic inflammatory bowel disease; irritable bowel disease; chronic
diarrhea • Excess dietary meat • Excess dietary sodium • Excess dietary oxalate • Past medical history or family history of nephrolithiasis • Obesity • Insulin resistance/type 2 diabetes mellitus • Dehydration • Prolonged immobility • Congenital kidney defects/anatomic alterations (e.g., abnormal kidney shape) • Vesicoureteral reflux
BOX 27.3 General Contributing Factors to Nephrolithiasis
CHAPTER 27 Intrarenal Disorders 585
ureteropelvic junction and down into the ureter, spasmodic, intermittent sharp pain known as renal colic develops. The pain may radiate into the ipsilateral groin area, testicle, or labia. The pain induced by nephrolithiasis makes the patient acutely uncomfortable and is often accompanied by nausea and vomiting, diaphoresis, tachycardia, and tachypnea. When the stone reaches the bladder, there is often a noticeable reduction in the pain. If the stone results in a partial obstruction at the urethra, dysuria, urgency, and frequency are common findings. If stones injure the linings of the ureters or urethra as they pass, microscopic or macroscopic hematuria occurs. Prolonged or repeated nephrolithiasis may result in scarring of the kidney and, if bilateral, chronic kidney disease.
Diagnosis and treatment. In addition to the clinical manifestations, a thorough family history should be obtained, risk factors for nephro- lithiasis should be assessed, and any anatomic or functional urinary tract anomalies should be identified. Urinalysis permits the identification of a concomitant infection, levels of specific stone-forming constituents (e.g., hypercalciuria), and urinary pH, which affects crystallization. Hematuria (gross or microscopic) may be present persistently or intermittently. If a stone has been passed and is available, it can be sent for analysis of its composition. Determination of a complete blood count; measurement of levels of serum electrolytes, serum creatinine, and blood urea nitrogen (BUN); and assessment of parathyroid hormone level provide information related to risk factors and renal function.
The traditional gold standard for the assessment of renal calculi has been intravenous pyelogram, but it has been effectively replaced by CT scans. Basic abdominal x-rays identify only those stones that are radiopaque. CT scanning can identify renal calculi, other potential sources of flank pain, and anatomic anomalies.
Treatment of nephrolithiasis may be medical or surgical and is determined by the size, position, and composition of the calculus; the presence or absence of urinary tract infection; and the involvement of one or both kidneys. Interventions are summarized in Box 27.4, and dietary changes are listed in Box 27.5. The goal is not only treatment of existing stones, but also prevention of their recurrence. Acute pain
beer, coffee, tea, cocoa, or excessive vitamin C). Hyperuricosuria facilitates precipitation of calcium oxalate stones or may produce uric acid stones. There is a genetic predisposition for hyperuricosuria, which may be found in association with gouty arthritis or secondary purine excess attributable to overproduction in myeloproliferative disorders, excess ingestion of purine-rich foods, or errors of purine metabolism. Foods high in purine include organ meats such as liver and kidney, sardines, anchovies, salmon, and foods high in yeast such as beer and bread.
Uric acid and struvite calculi are the second most frequently occurring stones after calcium oxalate stones. In addition to the risk factors previ- ously identified for hyperuricosuria, an increased body mass index and glucose intolerance or type 2 diabetes is frequently associated with uric acid stones. The basis of struvite stones is not metabolic, but rather the changes that occur within the urinary tract with some infectious processes, and is often assisted by some underlying anatomic or functional abnormalities that facilitate urinary stasis. Struvite stones are composed of magnesium, ammonium, and phosphate. Urinary tract infections with certain bacterial species capable of splitting urea into two ammo- nium ions and one bicarbonate ion neutralize the urine and support bacterial proliferation as well as stone formation. Struvite stones form around a bacterial nucleus, producing an antimicrobial barrier. They may grow rapidly and assume a jagged formation known as staghorn. Other types of nephrolithiasis are less common and are associated with familial defects in renal transport or are produced as adverse effects of certain drugs (e.g., indinavir, triamterene, and xanthine).
Clinical manifestations. Signs and symptoms of renal calculi differ with their size and location and may mimic any number of other causes of abdominal pain. Pain may be vague or, more commonly, acute renal colic or flank pain. Stones within the kidney are responsible for flank pain that may be dull and localized. While the stone moves to the
TABLE 27.6 Types of Nephrolithiasis, Relative Incidence, and Specific Risk Factors
Constituent of Stone Incidence Specific Risks
Calcium oxalate (primarily)
75% Genetic predisposition; idiopathic; hypercalcemia and/or hypercalciuria (hyperparathyroidism, prolonged immobility, increased gastrointestinal absorption, impaired renal reabsorption); hyperuricosuria (see risks later); hyperoxaluria
Struvite 7%–10% Urinary tract infection with urea-splitting bacteria (e.g., Proteus, Klebsiella, Pseudomonas)
Uric acid 7%–10% Genetic predisposition; hyperuricosuria associated with gout, acute leukemia, glycogen storage disease, malignancy; excessive intake of meat, fish, poultry; obesity; type 2 diabetes; urine pH <5.5
Cystine 1%–3% Genetic defect in renal cystine reabsorption
Triamterene, guaifenesin, indinavir, xanthine
All <1% Secondary to specific medications
• Narcotic analgesics if needed for pain management • Increased fluid intake (>2 L/day; oral and/or IV) • Antimicrobials if needed for urinary tract infection • Shockwave lithotripsy, ureteral stenting, ureteroscopy for removal of large
stones unable to pass spontaneously • Dietary modifications unique to stone composition • Medications unique to stone composition (e.g., allopurinol for uric acid
stones)
BOX 27.4 General Interventions for Nephrolithiasis
• Increase water intake (minimum of 2 L/day). • Ensure adequate dietary calcium intake. • Avoid calcium supplementation. • Avoid foods with additional vitamin D (and vitamin C, if recommended). • Avoid calcium-based antacids. • Limit intake of coffee, tea, or colas to ≤2 per day. • Reduce protein intake from meat, fish, and poultry. • Limit dietary sodium and oxalate intake. • Avoid high-purine foods for uric acid stones (and, if recommended, for
calcium).
BOX 27.5 Dietary Modifications for Nephrolithiasis
586 UNIT VIII Renal and Bladder Function
unknown. Hereditary and environmental factors are implicated; meta- bolic, infectious, hemodynamic, toxic, immune, genetic, and other mechanisms of injury are involved. Deposition of antibodies into the glomeruli, where they attach to local antigens, is the usual inciting event, followed by inflammation and immune injury. Deposition of immune complexes (antigen–antibody complexes) that are already formed in the bloodstream also occurs in cases of systemic immune disorders (Box 27.6).
The challenge in any discussion of glomerulopathies lies in the often-confusing range of clinical and pathologic approaches to their classification. One approach is to classify glomerular disorders according to primary and secondary etiologies. Primary glomerulopathies are disease states in which the kidney is the only or the predominant organ involved, and secondary glomerulopathies result from a variety of systemic disorders. Autoimmune and immune-complex diseases such as Goodpasture syndrome and systemic lupus erythematosus are examples of secondary glomerulopathies. Diabetic nephropathy and renal damage attributable to undiagnosed or inadequately managed hypertension are common factors in secondary glomerulopathies.
The specific location and features of glomerular injury can also be used to classify the disease. Glomerular involvement may be characterized as diffuse (all glomeruli) or focal (some but not all glomeruli). Within the affected glomeruli, lesions may be global, affecting all parts of the glomerulus, or present as patches (segmental) when only specific parts of the glomerulus are involved. If thickening of glomerular capillary walls is present, the glomerulopathy is membranous. Membranous changes involve the basement membrane and are usually due to accumulated deposition of immunoglobulins (IgG) and complement components
management may be necessary. Opiates are commonly used because they reduce both renal colic and pain perception. With increased fluid intake, most smaller stones pass out of the urinary tract spontaneously. Stones less than 5 mm in diameter have a high chance of being passed, whereas those that are 5 to 7 mm in diameter have a 50% chance, and those >7 mm almost always require urologic intervention. Other interventions that may be required include extracorporeal shockwave lithotripsy, where the stone is broken into smaller pieces for passage, or percutaneous approaches to stone removal by endoscopy with basket retrieval or ultrasonic or laser lithotripsy. Open surgical approaches are used when no other intervention is successful, but are usually avoidable and therefore uncommon. Unfortunately, depending on the type of renal calculus, 30% to 50% of adults can expect a recurrence within 5 to 10 years. Dietary modifications can decrease this risk in some cases. Recommendations are designed for each individual patient, based upon the type of stone and specific risk factors.
KEY POINTS • Obstructive processes result in urine stasis, which predisposes to infection
and structural damage. Common causes of obstruction include stones, tumors, prostatic hyperplasia, and strictures of the ureters or urethra.
• Complete obstruction results in hydronephrosis, decreased glomerular filtration rate (GFR), and ischemic kidney damage because of increased intraluminal pressure. Prolonged postrenal acute kidney injury resulting from the obstruc- tion may result in acute tubular necrosis (intrarenal acute kidney injury) and chronic kidney disease.
• Stones tend to form in the urinary tract under conditions of solute supersatura- tion, low urine volume, and abnormal urine pH. Certain factors increase the risk of stone formation, whereas others act as inhibitors.
• Most stones are composed of calcium crystals. Other forms include uric acid, struvite, cystine, and stones that form in association with certain medications.
• Stationary stones in the renal pelvis are generally asymptomatic. When the stone migrates to the junction with the ureters and beyond, intense renal colic pain ensues. Pain is usually abrupt in onset and may radiate. Additional signs and symptoms include nausea, vomiting, and diaphoresis.
• Most stones pass spontaneously, but other interventions may be necessary, including lithotripsy or endoscopic approaches. Stones tend to recur, and prevention is enhanced by a high fluid intake to dilute the urine and dietary changes based upon the type of stone.
GLOMERULAR DISORDERS (GLOMERULOPATHIES) Glomerular disorders result from alterations in the structure and function of the glomerular capillary circulation and are broadly delineated as glomerulopathies. The membranes of glomerular capillaries have three layers: endothelium, basement membrane, and a layer of specialized epithelial cells with footlike projections (podocytes) that encircle the basement membrane (Fig. 27.8). Together, this triple layer comprises the filtration barrier of the glomerulus. The glomerular filtrate passes through gaps (slit pores) between these podocytes, enters the space in Bowman capsule, and progresses into the proximal tubule (see Chapter 26). Glomerulopathies are responsible for a great majority of cases of ESRD.
Pathologic changes to glomeruli may occur insidiously, altering function over the course of months or years, or they may have an acute onset, with rapidly developing impairment. In some cases, there are no apparent signs or symptoms, and glomerular dysfunction is identified serendipitously during routine urine examination or evaluation of some other health concern. The specific causes of glomerulopathies are often
Modified from Kumar V, et al, editors: Pathologic basis of disease, ed 9, Philadelphia, 2015, Saunders.
Primary Glomerulopathies Acute proliferative glomerulonephritis Postinfectious Other Rapidly progressive (crescentic) glomerulonephritis Membranous nephropathy Minimal-change disease Focal segmental glomerulosclerosis Membranoproliferative glomerulonephritis Dense deposit disease IgA nephropathy Chronic glomerulonephritis
Systemic Diseases With Glomerular Involvement Systemic lupus erythematosus Diabetes mellitus Amyloidosis Goodpasture syndrome Microscopic polyarteritis/polyangiitis Wegener granulomatosis Henoch–Schönlein purpura Bacterial endocarditis
Hereditary Disorders Alport syndrome Thin basement membrane disease Fabry disease
BOX 27.6 Glomerular Diseases
CHAPTER 27 Intrarenal Disorders 587
and slit pore proteins that normally block protein filtration. Nephrotic syndrome is a condition that can develop when there is excessive protein loss over time, characterized by protein loss ≥3 to 3.5 g in 24 hours. It is most commonly associated with minimal change disease (MCD)/ lipoid nephrosis, focal segmental glomerulosclerosis, and membranous nephropathy, but can occur with any glomerulopathy if the injury is sufficient to allow significant protein loss. Nephritic syndrome is also a reflection of glomerular inflammation and leakiness, resulting in gross hematuria and RBC casts in the urine sediment.
The most common types of glomerular disease are acute postinfec- tious glomerulonephritis, IgA nephropathy, rapidly progressive/crescentic glomerulonephritis, nephrotic syndrome (includes membranous glo- merulonephritis, focal segmental glomerulosclerosis, MCD/lipoid nephrosis), and chronic glomerulonephritis. The most common second- ary glomerulopathy is diabetic nephropathy (see Chapter 41).
Glomerulonephritis Glomerulonephritis includes an assortment of immune-mediated conditions that produce inflammation of the glomeruli. It may have a primary etiology, which is commonly believed to be autoimmune, or a secondary one, in which it is associated with a number of autoimmune, metabolic, malignant, or infectious systemic disorders.
(C5). Sclerotic changes refer to scarring attributable to persistent or recurrent injury and may occur within the capillaries, in the capillary space, or at the point of initiation of the proximal tubule. The site of deposition of noncellular materials as part of the glomerulopathic process may be described specifically as mesangial, subendothelial, or subepithelial. Renal biopsy and histologic examination often are required to determine a specific type of glomerular pathology.
Glomerulopathies commonly result in proteinuria, hematuria, red blood cell (RBC) urinary casts, decreased GFR, and hypertension; however, these manifestations may not all be present in a single pathology, and/or they may present along a continuum of degree. Proteinuria is a classic clinical manifestation associated with glomerulopathy. Glo- merulonephritis (inflammatory) presents with hematuria, RBC casts, reduced GFR, generalized edema, or hypertension. Under normal circumstances, RBCs, albumin, and other large protein molecules are too large to pass through the membranes of the glomerulus, so they are retained in the bloodstream. Small proteins, including amino acids, are filtered through but actively reabsorbed along the nephron tubule. Transient proteinuria may be seen with diets high in protein or as a result of excessive exercise or emotional stress. Normally, protein lost in the urine amounts to less than 100 mg in 24 hours. Excessive protein in the urine occurs with damage to the glomerular basement membrane
Distal convoluted tubule
Podocyte (cell body)
Pedicle (cell process)
Capillary endothelium
Capsular slits (filtration)
Basement membrane
Pseudofenestrations with central knobs
Mesangial cell
Mesangial matrix
Visceral epithelium (podocytes)
Pores in endothelium
Capillary lumen
Afferent arteriole
Macula densa
Juxtaglomerular cells
Efferent arteriole
Bowman capsule
Glomerulus
Parietal epithelial cells
Parietal epithelial cells
Proximal convoluted tubule
Podocytes (visceral cells)
A
B
C FIG 27.8 Anatomy of the glomerulus and juxtaglomerular apparatus. A, Longitudinal cross-section of glomerulus and juxtaglomerular apparatus. B, Horizontal cross-section of glomerulus. C, Enlargement of glomerular capillary filtration membrane. (From Huether S, McCance K: Understanding pathophysiology, ed 6, St Louis, MO, 2016, Mosby.)
588 UNIT VIII Renal and Bladder Function
reduce perfusion to glomerular capillaries, decreasing the GFR. In severe cases, the coagulation cascade is activated and fibrin is deposited within capillaries, further impairing perfusion and filtration.
Clinical manifestations of postinfectious acute glomerulonephritis vary in severity. Smoky or coffee-colored urine attributable to hematuria and RBC casts (nephritic syndrome) are the most common findings. The degree of proteinuria is variable and may reach nephrotic syndrome level. Reduced GFR presents as increased circulating volume, producing edema, hypertension, and oliguria with increasing serum levels of creatinine and nitrogenous wastes (BUN).
Diagnosis is based on the patient’s history, clinical manifestations, and urinalysis results. Renal function is evaluated by BUN and creatinine levels. A renal biopsy may be indicated to identify a cause. Care is supportive and symptomatic. In severe cases dialysis may be needed to support renal function. Especially in children, resolution of the inflam- matory process may occur within about 2 weeks (poststreptococcal) with no sequelae or complications. In some cases deterioration of renal function may continue, resulting in chronic glomerulonephritis, nephrotic syndrome (glomerulosclerosis), and chronic kidney disease.
IgA nephropathy (Berger disease) is the most commonly diagnosed type of primary glomerulonephritis worldwide. Upper respiratory tract or gastrointestinal viral infections appear to be the triggers, initiating the deposition of IgA in the glomerular mesangium. Increased abnormal IgA production and formation of IgA immune complexes cause mesangial injury. Hematuria is usually apparent within 1 to 2 days, but the pro- teinuria, edema, and hypertension common with other glomerulopathies are generally not evident. Prognosis is variable; as many as half the patients develop glomerulosclerosis and ESRD.
Initiating Trigger
Immune complex deposition Local vasoactive chemicals released
Complement activation and deposition
Coagulation cascade activated; fibrin deposited
↑ Membrane permeability
↓ Capillary perfusion
Macrophages and neutrophils attracted
↓ GFR
Lysosomal enzymes attack glomerulus
Serum creatinine Azotemia Oliguria Edema
Proteinuria Hematuria
↓
FIG 27.9 Summary of the pathophysiologic process of acute glomerulonephritis and associated clinical manifestations.
Acute Glomerulonephritis The term acute glomerulonephritis encompasses a constellation of inflammatory glomerulopathies that are characterized by the abrupt onset of varying degrees of hematuria, proteinuria, oliguria, azotemia, edema, and hypertension. A wide variety of triggers may initiate the inflammatory process (Fig. 27.9).
Postinfectious acute glomerulonephritis is historically most well known to follow skin (impetigo) and throat infections with specific strains of group A β-hemolytic streptococci. This etiology is less common today because of early diagnosis and treatment of streptococcal infections. Viruses are also commonly associated with postinfectious glomerulone- phritis. The infectious organism stimulates the production of antibodies that bind to microbial antigens, initiating formation of antibody–antigen complexes. The onset of glomerular inflammation varies; in the case of a streptococcal etiology, damage to the glomerulus is initiated 1 to 3 weeks after the initial infection.
As with most other forms of glomerulonephritis, antibody deposition leading to inflammation is the key pathologic event. Proliferation of mesangial cells is initiated after immune complex deposition, resulting in characteristic proliferative lesions. Complement is activated within the glomerulus, resulting in release of chemotaxic factors and attracting macrophages, neutrophils, and T-helper cells. Lysosomal enzymes are released and attack glomerular walls. The changes in the structure of the glomerular membranes result in a decrease in the surface area available for filtration and allow substances that were previously restricted to enter the glomerular space. Locally acting vasoactive compounds such as angiotensin II and leukotrienes contract mesangial cells and
CHAPTER 27 Intrarenal Disorders 589
Chronic Glomerulonephritis Glomerular diseases that assume a progressive course ultimately develop into chronic kidney disease. These patients present with persistent proteinuria, with or without hematuria, and slowly declining renal function. In many cases, patients appear to have recovered from the initial insult. Proteinuria and hypertension are both capable of advancing renal damage. The pathophysiology is an extension of that seen in acute glomerulonephritis. Proliferative and membranous lesions are present, but sclerotic injury dominates, resulting in ongoing fibrotic changes. Tubulointerstitial damage contributes to the reduction in renal function. Nephrons atrophy, and ultimately the kidneys become small, scarred, and nonfunctional. The chronic kidney disease progresses to ESRD, at which time dialysis or transplantation is required (Chapter 28).
Nephrotic Syndrome Nephrotic syndrome is a glomerulopathy in which there is a urinary elimination of >3 to 3.5 grams of protein per day due to glomerular leakiness. Ultimately, most patients will develop the full constellation of nephrotic syndrome manifestations: hypoalbuminemia, hyperlipid- emia, generalized edema, and a propensity for thrombus formation. The most common primary causes are MCD (lipoid nephrosis), idiopathic focal segmental glomerulosclerosis, and membranous nephropathy. Several systemic diseases, such as systemic lupus erythe- matosus and Henoch–Schönlein purpura, as well as infections, malignan- cies, and vasculitis, have been found to be associated with nephrotic syndrome, but the most common cause in adults is diabetes mellitus.
The pathophysiology of nephrotic syndrome is shown in Fig. 27.10. The increased permeability of the glomerular membrane allows large
Crescentic Glomerulonephritis/Rapidly Progressive Glomerulonephritis (RPGN) The condition previously known as rapidly progressive glomerulonephritis is now more often called crescentic glomerulonephritis because of its characteristic lesions. The lesions are proliferative in nature and composed of crescent-shaped depositions of accumulated epithelial cells, fibrin, and macrophages that are found in Bowman space. Podocytes that are progressively losing their markers of differentiation are also found. This form of glomerulonephritis may have an acute onset, with hematuria, proteinuria, and red cell casts, followed by a swift decline in renal function within a few months. It occurs predominantly in patients 20 to 50 years old. When not idiopathic, causes of crescentic glomerulonephritis fall into four general categories: (1) complication of an acute or subacute infection; (2) complication of a multisystem disease; (3) drug exposure; and (4) a primary disorder in the absence of other systemic disease. The most common infections associated with this disorder are post- streptococcal glomerulonephritis and infective endocarditis. Multisystem diseases associated with it are systemic lupus erythematosus, Henoch– Schönlein purpura, systemic necrotizing vasculitis, and Goodpasture syndrome. Examples of drugs identified as causative are penicillamine, hydralazine, allopurinol in the presence of vasculitis, and rifampin.
Goodpasture syndrome is an autoimmune disorder that results from the combination of glomerulonephritis with pulmonary alveolar hemor- rhage and the presence of anti–glomerular basement membrane antibod- ies. Patients suffer with the clinical manifestations of glomerulonephritis and also shortness of breath and hemoptysis because of pulmonary involvement. Manifestations of pulmonary involvement may appear before those associated with glomerulonephritis.
Increased Glomerular Permeability
Proteinuria
HypoalbuminemiaStimulation of hepatic synthesis
Hyperlipidemia Clotting factor production
Decreased plasma oncotic pressure
Decreased circulating
volume
Stimulation of renin-
angiotensin- aldosterone
Sodium and water retention
Generalized edema
FIG 27.10 Pathophysiologic process of nephrotic syndrome.
590 UNIT VIII Renal and Bladder Function
Membranous Nephropathy (MN) MN accounts for about one-third of the cases of adult-onset nephrotic syndrome. Twenty percent of these cases have secondary causes such as infections, autoimmune diseases, and malignancies. For lack of any concrete evidence, the remaining 80% are said to be idiopathic. Fig. 27.11 illustrates the histologic findings with MN and the pathologic changes in the glomerulus. Immune deposits and as-yet-unidentified antigens collect in the subepithelium of the distal portion of the base- ment membrane and produce a membranous thickening. Spontane- ous remission occurs in approximately 25% of cases, 25% develop persistent nonnephrotic-range proteinuria, 25% develop persistent nephrotic syndrome, and 25% of the individuals with MN progress to ESRD.
Focal Segmental Glomerulosclerosis (FSGS) FSGS is now the most common cause of idiopathic (or primary) nephrotic syndrome among adults in the United States. It may develop secondarily to a number of immunologic, metabolic, interstitial, hemodynamic, or other conditions. Only a portion of the glomeruli are affected (segmental), and glomeruli within the kidney are not uniformly affected (focal). This is a disease of glomeruli podocytes that over time progresses to scarred lesions. Epithelial injury and endothelial
quantities of protein to leave the bloodstream and exit the body in the urine. This produces hypoalbuminemia and proteinuria. The low serum albumin concentration serves to stimulate the liver to increase production of various substances, including lipoproteins, producing hyperlipidemia. Levels of total cholesterol and low-density lipoproteins are elevated. Lipid casts or fat droplets may appear in the urine. Oval fat bodies, epithelial cells from the tubules, may also be sloughed. There is an increased risk of thrombotic events in nephrotic syndrome related to stimulation of hepatic synthesis of clotting factors. Edema is a common clinical manifestation of nephrotic syndrome. Two related processes contribute to edema formation. As the serum albumin is lost, the oncotic pressure within the blood vessels declines, allowing excessive fluid to filter into the interstitial spaces and causing a generalized edema. Reduction in circulating volume results in the activation of the renin– angiotensin–aldosterone system, causing sodium and then water retention and more edema.
Nephrotic syndrome is generally treated with drugs to reduce immune injury and inflammation such as corticosteroids. Elevated lipid levels are routinely treated with lipid-lowering therapy if rapid recovery from nephrotic syndrome is not anticipated. Angiotensin II receptor blockers and/or angiotensin-converting enzyme inhibitors may reduce intraglo- merular pressure and reduce protein loss, as well as treat systemic hypertension.
CC
B A
FIG 27.11 Light microscopy in membranous nephropathy (MN). A, Early MN. Glomerulus from a patient with severe nephrotic syndrome exhibiting normal architecture and peripheral capillary basement membranes of normal thickness. B, Morphologically advanced MN. Uniform increase in thick- ness of glomerular capillary walls throughout the glomerulus with no increase in glomerular cellularity. C, More morphologi- cally advanced MN, same patient as in B. Discrete spikes of matrix emanating from outer surface of the basement membrane (arrow), indicative of advanced MN. (From Salant DJ, Cattran DC: Comprehensive clinical nephrology, 5e, Philadelphia, 2015, Saunders.)
CHAPTER 27 Intrarenal Disorders 591
cellular injury initiate the protein loss across the glomerular membrane. In addition to proteinuria, patients can develop mild hematuria, hypertension, and azotemia. Few patients will experience complete remission. Once proteinuria reaches nephrotic syndrome levels, half of those with FSGS will reach ESRD within a few years.
Minimal Change Disease (MCD) Previously called lipoid nephrosis, MCD is the primary cause of idiopathic nephrotic syndrome in children. It is usually initiated by an allergic or immune disorder, including lymphomas. The result of the minimally altered structure of the podocytes is a less effective glomerular filtration barrier and the loss of large amounts of albumin in the urine. Onset of edema, heavy proteinuria, and hypoalbuminemia is sudden. Although a longer course is usually needed in children, MCD responds well to treatment with corticosteroids. Fewer patients progress to ESRD with MCD than the other common forms of nephrotic syndrome.
KEY POINTS • Glomerulopathies alter glomerular capillary and podocyte structure and
function. Damage usually is mediated by immune processes. The glomerular damage may result in some combination of hematuria, proteinuria, red blood cell (RBC), casts, decreased glomerular filtration rate (GFR), edema, and hypertension.
• Glomerulonephritis is due to an immune response to a variety of potential triggers and may have a primary or secondary etiology. Attraction of immune cells to the area of inflammation results in lysosomal degradation of the basement membrane. The GFR may fall, in part because of contraction of mesangial cells, resulting in decreased surface area for filtration.
• Glomerulonephritis may be classified as acute, crescentic, or chronic. Acute forms are usually triggered by infection. The cause of the crescentic form is often unknown, but it may be secondary to autoimmune processes such as Goodpasture syndrome. Chronic forms are those that progress to chronic kidney disease.
• Treatment of glomerulonephritis may include corticosteroids, immune suppressants, and supportive measures such as dietary and fluid management and management of systemic and renal hypertension. End-stage renal disease (ESRD) is a common outcome of chronic glomerulonephritis, necessitating dialysis or kidney transplantation.
• Nephrotic syndrome occurs because of increased glomerular permeability to proteins, which results in a urinary loss of 3 to 3.5 g of protein or more per day. Proteinuria leads to hypoalbuminemia and generalized edema as a result of decreased blood colloid osmotic pressure. Hyperlipidemia and hypercoagulability are thought to occur because of a generalized increase in liver activity stimulated by hypoalbuminemia.
• Treatment of nephrotic syndrome is conservative, consisting of management of symptoms and the underlying process that initiated the syndrome, when possible. Although many cases resolve spontaneously, others progress to ESRD.
Many diseases can cause damage to the kidney. Any process that disrupts the normal architecture of the kidney will cause altered function, whether in the glomeruli, the vascular tree, or the collecting/draining system. Despite the kidney’s resiliency and capacity to respond to treatment,
severe acute or chronic damage may progress to chronic kidney disease. The stages of acute renal failure and chronic kidney disease and their management are discussed in Chapter 28.
S U M M A R Y
RESOURCES Congenital and Polycystic Kidney Disease Balcells T, Ars Criach A: Molecular diagnosis of autosomal dominant
polycystic kidney disease. Nefrologia 31:35–43, 2011. Dillman JR, et al: Hereditary renal cystic disorders: imaging of the kidneys
and beyond. Radiographics 37(3):924–946, 2017. Halvorson CR, Bremmer MS, Jacobs SC: Polycystic kidney disease:
inheritance, pathophysiology, prognosis, and treatment. Int J Nephrol Renovasc Dis 3:69–83, 2010.
Peinter L, Borner C: Role of apoptosis in the development of autosomal dominant polycystic kidney disease (ADPKD). Cell Tissue Res 2017 May 30. doi:10.1007/s00441-017-2628-2636.
Sweeney WE, Jr, Avner ED: Emerging therapies for childhood polycystic kidney disease. Front Pediatr 5:77, 2017. doi:10.3389/fped.2017.00077.
Renal Cancer Arai E, Kanai Y: Genetic and epigenetic alterations during renal
carcinogenesis. Int J Clin Exp Pathol 4:58–73, 2011. Bahrami A, et al: The genetic factors contributing to the development of
Wilm’s tumor and their clinical utility in its diagnosis and prognosis. J Cell Physiol 2017 May 20. doi:10.1002/jcp.26021.
Brok J, et al: Biology and treatment of renal tumours in childhood. Eur J Cancer 68:179–195, 2016.
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Tazi EM, et al: Advanced treatments in non-clear renal cell carcinoma. Urol J 8:1–11, 2011.
Wein A, et al: Campbell-Walsh urology, ed 11, Philadelphia, 2016, Elsevier Saunders.
Pyelonephritis and Urinary Tract Infection Alevizopoulos A, et al: UROLITHIASIS managing small ureteral stones: a
retrospective study on follow-up, clinical outcomes and cost-effectiveness of conservative management vs. early surgery. Curr Urol. 9(1):36–43, 2016.
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Dawson-Hahn EE, et al: Short-course versus long-course oral antibiotic treatment for infections treated in outpatient settings: a review of systematic reviews. Fam Pract 2017 May 9. doi:10.1093/fampra/ cmx037.
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Lane MC, Mobley HLT: Role of p-fimbrial-mediated adherence in pyelonephritis and persistence of uropathogenic Escherichia coli (UPEC) in the mammalian kidney. Kidney Int 72:19–25, 2007.
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Tolkoff-Rubin NE, Cotran RS, et al: Urinary tract infection, pyelonephritis, and reflex nephropathy. In Taal M, editor: Bremmer and Rector’s the kidney, ed 9, Philadelphia, 2012, Saunders.
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Glomerulopathy Cattran DC, Brenchley PE: Membranous nephropathy: integrating basic
science into improved clinical management. Kidney Int 91(3):566–574, 2017.
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28 Acute Kidney Injury and Chronic
Kidney Disease Cheryl Rockwell and Robin Y. Beeman
K E Y Q U E S T I O N S • How do the prerenal, intrinsic, and postrenal types of acute
kidney injury differ in etiology, prognosis, clinical manifestations, and management?
• What are the characteristic clinical and laboratory findings in each of the three stages of acute tubular necrosis (acute intrarenal renal failure)?
• What is the relationship between the degree of nephron loss, reductions in glomerular filtration rate, and the stages of chronic kidney disease?
• What are the similarities and differences between acute kidney injury and end-stage chronic kidney disease?
• What are the characteristic findings of uremic syndrome? • How can acute kidney injury be prevented, and how is it treated? • How is the progression of chronic kidney disease slowed? • How is end-stage renal disease treated?
C H A P T E R O U T L I N E Acute Kidney Injury, 593
Etiology and Pathophysiology, 594
Prerenal Kidney Injury, 594 Postrenal Kidney Injury, 595 Intrinsic/Intrarenal Kidney Injury, 595
Clinical Presentation of Acute Kidney Injury, 596
Prodromal Phase, 599 Oliguric Phase, 599 Postoliguric Phase, 600
Chronic Kidney Disease, 601 Risk Factors, 601
Pathophysiology of Progression of Chronic Kidney Disease, 602
Stages of Chronic Kidney Disease, 602
Complications of Chronic Kidney Disease, 602
Hypertension and Cardiovascular Disease, 603 Uremic Syndrome, 603 Metabolic Acidosis, 603 Electrolyte Imbalances, 603 Mineral and Bone Disorders, 603
Malnutrition, 603 Anemia, 603 Pain, 603 Depression, 604
Clinical Management, 604 Acute Kidney Injury, 604 Chronic Kidney Disease, 604 Hypertension and Cardiovascular Disease, 605 Metabolic Acidosis, 605 Fluid and Electrolyte Imbalances, 605 Bone and Mineral Disorders, 605 Malnutrition, 605 Anemia, 605 Pain, 605 Depression, 606 Acute-on-Chronic Kidney Disease, 606 Dialysis, 606 Kidney Transplant, 606 Chronic Kidney Disease in Older Adults, 607
http://evolve.elsevier.com/Banasik/pathophysiology/
ACUTE KIDNEY INJURY Acute kidney injury (AKI), also known as acute renal failure, represents a broad spectrum of kidney diseases ranging from minor changes in renal function to complete renal failure requiring renal replacement therapy. AKI is the sudden reduction of kidney function causing disrup- tions in fluid, electrolyte, and acid–base balances; retention of nitrogenous
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
The kidneys have a number of regulatory roles within the body. These key functions include the regulation of body fluid volume and osmolality, electrolyte balance, and acid–base balance. Additionally, the kidneys produce and secrete hormones and excrete metabolic waste products and foreign materials. When the kidneys are unable to carry out these functions on a temporary or permanent basis, the ramifications are significant to each body system.
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Prerenal Kidney Injury When AKI develops because of diminished perfusion of the kidney, it is termed prerenal kidney injury because the etiology occurs before the kidney itself. As seen in Box 28.1, this can be due to an absolute or relative decrease in circulating volume or abnormalities of renal hemodynamics. Actual and relative depletion of volume are the most common etiologies. Fever, vomiting, diarrhea, burns, hemorrhage, and overuse of diuretic therapy produce fluid volume deficits that can lead to prerenal kidney injury. Decreased renal perfusion also results if large volumes of fluid collect in extravascular spaces as in edema (interstitial space) or ascites (peritoneal space). Any number of conditions reduces the ability of the heart to generate a cardiac output sufficient to meet the needs of body organ systems. Even though the kidney receives 20% to 25% of the cardiac output, that volume may be inadequate when the cardiac output is markedly decreased by cardiogenic shock, heart failure, or lethal ventricular dysrhythmias.
Although most patients who develop prerenal kidney injury have an episode of decreased blood pressure (BP) that results in decreased perfusion to the kidney, in some cases perfusion drops without the BP falling below normal. These “normotensive” cases of prerenal kidney injury arise in susceptible individuals with very modest reductions in BP who have preexisting impairments in renal autoregulation. Use of nonsteroidal antiinflammatory drugs (NSAIDs), angiotensin-converting enzyme inhibitors (ACEIs), and angiotensin II (AII) receptor blockers is known to interfere with renal vascular autoregulation and can pre- cipitate prerenal kidney injury in certain populations of patients. This includes those who are older than 60 years of age with atherosclerotic cardiovascular disease or who have preexisting renal insufficiency (elevated serum creatinine level), heart failure, advanced liver disease, or nephrotic syndrome. These drugs cause either vasoconstriction of afferent arterioles (NSAIDs) or vasodilation of efferent arterioles (ACE inhibitors and AII blockers); either of these actions results in a decrease in glomerular perfusion pressure. Thrombus, embolus, dissection, or stenosis of the renal arteries will also result in prerenal kidney injury, and the risk increases significantly if ACE inhibitors or AII blockers are being used.
Prerenal oliguria is the kidney’s normal physiologic response to a decrease in perfusion, and at least for a time the renal tissue is unharmed. Neurohumoral mechanisms of local autoregulation are activated as the kidneys attempt to autoregulate perfusion and maintain GFR, and systemic mechanisms such as the renin–angiotensin–aldosterone system (RAAS) act to increase the total circulating volume. The sensed decrease in renal blood flow results in a decrease in GFR and urine output. Because of the kidney’s ability to tolerate significant reduction in perfu- sion (as long as it is not greater than 20% to 25% of normal), and as
waste products; increased serum creatinine level; and decreased glo- merular filtration rate (GFR). The Kidney Disease Improving Global Outcomes (KDIGO) 2012 guidelines define AKI as any of the following: • Increase in Serum creatine by ≥0.3 mg/dL (≥26.5 µmol/l) within
48 hours; or • Increase in Serum creatine to ≥1.5 times baseline, which is known
or presumed to have occurred within the prior 7 days; or • Urine volume <0.5 mL/kg/h for 6 hours.
Classification criteria for AKI have been developed to identify kidney injury and improve patient outcomes. The 5-point system is known as the RIFLE classification system (R = Risk of injury, I = Injury, F = Failure, L = Loss of function, and E = End-stage kidney disease) (Table 28.1). The first three stages indicate severity of kidney injury, and the last two stages represent patient outcomes.
The incidence of AKI in hospitalized patients ranges from 15.5% to 22.7%, with higher rates in elderly patients. Mortality is fourfold higher among patients with AKI compared with those without AKI. Additionally, length of hospital stay is twice as long for patients with AKI compared with those without, and mortality is higher in patients with more severe AKI.
Etiology and Pathophysiology The risk of developing AKI is increased by certain preexisting conditions. These comorbidities include preexisting kidney impairment, cardio- vascular and peripheral vascular disease, hypertension, diabetes mellitus, heart failure, malignancies, benign prostatic hypertrophy, and exposure to potentially nephrotoxic drugs. Not only are the elderly more likely to have one or more of these conditions, but also aging itself results in changes within the kidney that make it more susceptible to damage. The average decrease in renal blood flow is approximately 10% per decade starting at age 40 years, with an average decrease in the GFR by about 0.8 to 1.0 mL/min/1.73 m2 per year. These alterations in function increase the risk of AKI and can negatively affect overall prognosis. The aging kidney is less capable of concentrating and diluting urine, conserv- ing sodium, producing prostaglandin, and maintaining renin and aldosterone levels. See Chapter 26 for a discussion of the effects of aging on renal function.
Acute loss of renal function is attributed to conditions that affect renal perfusion (prerenal); factors that obstruct urine flow distal to the kidney (postrenal); or circumstances within the kidney blood vessels, tubules, glomeruli, or interstitium (intrinsic). These anatomic delineations are broadly seen as the types or causes of AKI, but the specific etiology must also be identified. Determining the specific etiology, as well as the type of AKI, is essential for effective management. Box 28.1 shows the types of AKI and some of their etiologies.
TABLE 28.1 RIFLE Classification for Staging Acute Kidney Injury
Stage GFR Criteria Urine Output Criteria
Risk Increased SCr to >1.5 × baseline Urine output <0.5 mg/kg/h for >6 h Injury Increased SCr to >2 × baseline Urine output <0.5 mg/kg/h for >12h Failure Increased SCr to >3 × baseline; or an increase of ≥0.5 mg/
dL to a value of ≥4 mg/dL Urine output <0.3 mg/kg/h for >12h or anuria for >12h
Loss Need for RRT for >4 wk End-stage kidney disease Need for RRT for >3 mo
From Palevsky et al: KDOQI US commentary on the 2012 KDIGO clinical practice guideline for acute kidney injury, Am J Kidney Dis 61(5):649– 672, 2013. RRT, Renal replacement therapy; SCr, serum creatinine.
CHAPTER 28 Acute Kidney Injury and Chronic Kidney Disease 595
injury cases, interventions must be targeted to the specific etiology. Regardless of the etiology, persistent prerenal kidney injury will result in hypoxic renal cells. If hypoxia continues and ischemia lasts more than a few hours, prerenal kidney injury will progress to intrinsic kidney injury.
Postrenal Kidney Injury Obstruction of the normal outflow of urine from the kidneys can result in postrenal kidney injury. Box 28.1 lists the most common etiologies of this type of AKI. If only one kidney is affected, the activity of the remaining kidney will increase to maintain fluid and electrolyte balance. Obstruction of the renal pelvis or ureters of both kidneys, of the bladder outlet, or of the urethra will result in discernible postrenal kidney disease. This type of AKI is more common in the elderly and the most amenable to intervention. Normalization of renal function depends on the length of time the obstruction persists. Should obstruction persist, the increasing retrograde pressure of urine will result in acute tubular necrosis (intrinsic AKI), and if the obstruction continues over several days or weeks, irreversible damage to the kidney may result.
Intrinsic/Intrarenal Kidney Injury AKI intrinsic to the kidney itself is further classified by the specific anatomic area involved: vascular, interstitial, glomerular, or tubular (see Box 28.1). Some references incorporate the vascular and tubular clas- sifications together because damage to one ultimately leads to damage to the other. All of these etiologies are capable of producing the potentially reversible rapid decline in renal function that is AKI. When the small vessels within the kidney are inflamed, obstructed, or damaged by an acute hypertensive episode, the injury may be sufficient to impair nephron functioning. Acute glomerulonephritis is due to an abnormal immune reaction, whereby immune complexes are deposited in the basement membrane of the glomerulus, thereby damaging the glomeruli. Normal renal function is disrupted to some degree during this acute inflammatory process, usually lasting about 2 weeks. Acute glomerulonephritis is discussed in detail in Chapter 27. Inflammation of interstitial tissues may be sufficient to result in intrinsic kidney injury. This is usually due to an infection of the kidney (pyelonephritis), an allergic reaction to medications, or an autoimmune disease. Long-standing pyelonephritis causes damage to the renal medulla and progressive loss of functional renal tissue.
Intrinsic kidney injury is commonly associated with acute tubular necrosis (ATN), which itself has many potential etiologies. ATN is the result of tubular cell injury, primarily attributable to ischemia or exposure to nephrotoxic substances. It accounts for nearly half of all cases of AKI in hospitalized patients and is the most prevalent form of intrinsic AKI in the elderly. Sepsis is the most common cause of ischemic ATN and may develop in about 50% of critically ill patients. It causes vasodilation leading to hypoperfusion within the kidney. Ischemic ATN is often identified in the elderly surgical patient, and septic ATN is the cause for about 33% of cases in the elderly.
Nephrotoxins are another leading cause of ATN. The list of medica- tions and chemicals toxic to the kidney is expansive, each one inducing a specific toxic reaction in the tubular cells and causing the death of many of them. Examples of commonly used nephrotoxic medications include aminoglycosides, NSAIDs, amphotericin B, cisplatin, and tetracycline.
Of all of these nephrotoxins, contrast medium is often the most common offending agent. Contrast-induced AKI (CI-AKI) (also known as contrast-induced nephropathy) is a major cause of AKI in hospitalized elderly patients and can develop within 12 to 24 hours of contrast administration. By definition, CI-AKI is defined as a rise in serum creatinine of ≥0.5 mg/dL (≥44 mmol/l) or a 25% increase from baseline
Prerenal • Absolute decrease in circulating volume
• Hemorrhage • Dehydration • Burns
• Relative decrease in circulating volume • Distributive shock (neurogenic, anaphylactic, septic) • Third-spacing and edema • Decreased cardiac output
• Cardiogenic shock • Dysrhythmias • Cardiac tamponade • Heart failure • Myocardial infarction
• Primary renal hemodynamic abnormalities • Occlusion or stenosis of renal artery* • Drug-induced impairment of renal autoregulation in susceptible persons†
Postrenal • Benign prostatic hyperplasia • Kinked or obstructed catheters • Intraabdominal tumors • Strictures • Calculi
Intrarenal/Intrinsic • Tubular (acute tubular necrosis)
• Ischemic • Prolonged prerenal failure • Transfusion reactions • Rhabdomyolysis
• Nephrotoxic • Prolonged postrenal failure • Certain antimicrobials (antibiotics; antifungal and antiviral drugs) • Radiographic contrast media • Certain cytotoxic chemotherapy agents • Recreational drugs (amphetamines, heroin) • Environmental agents (heavy metals, carbon tetrachloride, insecticides) • Snake and insect venom
• Glomerular • Acute glomerulonephritis
• Interstitial • Acute allergic interstitial nephritis • Acute pyelonephritis
• Vascular • Vasculitis • Emboli • Nephrosclerosis (due to primary hypertension, hypertensive emergencies,
and urgency)
BOX 28.1 Types of Acute Kidney Injury
*Use of ACE inhibitors or AII receptor blockers increases the risk. †Preexisting chronic renal insufficiency, cirrhosis, heart failure, or elderly persons (>60 years) with atherosclerotic cardiovascular disease, hypotension, diuretic use, or nephritic syndrome.
long as the hypoperfusion etiology is identified and corrected, prerenal oliguria will not affect the parenchyma of the kidney. Efforts to restore adequate perfusion should be fully effective in restoring normal renal function within 1 to 2 days. In the case of normotensive patients who have impaired perfusion, by far the smallest subset of prerenal kidney
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that contribute further to the urinary obstruction. Obstructed urinary flow produces an increased pressure within the nephron that is com- municated backward to the glomerulus, further reducing the GFR. The increasing pressure generated by the tubular obstruction forces filtrate through the partially denuded tubular basement membrane into the interstitial space and even into the bloodstream, a process known as tubular backleak. Half of the already limited quantity of glomerular filtrate may be lost to the interstitium by this process.
Recovery after ATN is highly dependent on the extent of injury and slower than in the other two types of AKI. If sufficient destruction of the basement membrane occurs, there may be no recovery and the patient develops end-stage renal disease (ESRD), the final stage of chronic kidney disease (CKD). But the tubules can repair themselves within 10 to 20 days when the basement membrane is intact and new epithelial cells are produced on that surface. As with the other types of renal failure, the clinical presentation of ATN is primarily a reflection of the loss of the normal functions performed by the kidney.
Clinical Presentation of Acute Kidney Injury Prerenal kidney injury can be reversed if treated before perfusion drops to below 20% of normal and ischemia occurs. It is at this point that ATN develops. Prerenal or postrenal kidney injury will ultimately progress to intrinsic kidney injury if not corrected within a few hours. The course of AKI is roughly divided into three phases, and the clinical presentation varies with the phase (Fig. 28.2). The laboratory findings that differentiate prerenal oliguria from intrinsic kidney injury are shown in Table 28.2. Table 28.3 provides the laboratory profile associated with renal failure; some of these findings are more likely to be noted in ESRD than in AKI. Though serum creatinine levels begin to increase within 12 hours to 2 days after injury, new biomarkers are being investigated to detect AKI earlier than the rise in serum creatinine level, with the promise of leading to earlier detection and treatment. Examples of
value, assessed at 48 hours after a radiologic procedure. Risk factors for developing CI-AKI are underlying kidney insufficiency, age greater than 70, volume depletion, repeated exposures to contrast media in a short time, and coexisting heart failure or diabetes mellitus. Prevention is aimed at avoiding unnecessary contrast administration to high-risk patients, avoiding multiple procedures over a 24- to 48-hour period, minimizing contrast-media volume, using low-osmolar and isoosmolar contrast media, and receiving adequate administration of hypotonic and isotonic intravenous (IV) fluids before and after contrast administra- tion. ATN caused by contrast media results in prolonged hospitalization, increased health care costs, and an increased risk of death. Prolonged prerenal kidney injury, perioperative and postoperative hypotension, hemorrhage, gastrointestinal drainage, and preoperative cardiac complica- tions also contribute to many cases of ATN.
In ATN, two pathophysiologic processes result in the rapid decrease in GFR: a vascular process and a tubular process. The two processes are interrelated, and the severity of one contributes to the severity of the other. Renal blood flow is decreased by 30% to 50% in ATN, and blood is shunted from the medulla to the cortex, further compromising the medullary cells. Local vasoconstrictors such as prostaglandins and leukotrienes are released, and the effects of sympathetic nervous system (SNS) stimulation contribute further to the vasoconstriction. Hypoxia or direct tubular damage, attributable to toxins, initiates an inflammatory response, activating the cascade of inflammatory mediators. When perfusion is restored, more inflammatory cells are enlisted and reperfusion injury perpetuates damage in some areas. Cells in part of the proximal tubule and outer cortex begin the repair process when perfusion is returned, but endothelial cells and those in the ascending limb continue to be injured, become necrotic, and commit apoptosis, resulting in a further decline in GFR.
The pathogenesis of the tubular process is a reflection of the ischemia and the inflammatory process (Fig. 28.1). Damaged tubular epithelial cells, both viable and nonviable, are shed from the basement membrane and accumulate in the tubular filtrate, where they obstruct filtrate flow. These cells combine with inflammatory cells and debris to form casts
Ischemia or Nephrotoxin
Decreased GFR
Oliguria
Inflammation Tubular injury
Inflammatory cells
Cast formation
Tubular obstruction
Increased tubular intraluminal pressure
Tubular backleak
FIG 28.1 Pathogenesis of acute tubular necrosis.
Phases of Acute Tubular Necrosis
Prodromal Phase
• Injury has occurred • Normal or ↓ UO • ↑ BUN and Cr
Oliguric Phase
• Oliguria/anuria • Volume overload • Hyperkalemia • Azotemia/uremia • Metabolic acidosis
Postoliguric Phase
• Fluid volume deficit • Labs begin to normalize
FIG 28.2 Phases of acute tubular necrosis and primary clinical issues. BUN, Blood urea nitrogen; Cr, creatinine; UO, urine output.
CHAPTER 28 Acute Kidney Injury and Chronic Kidney Disease 597
TABLE 28.2 Laboratory Value Differences in Prerenal Oliguria and Intrinsic AKI
Laboratory Test Prerenal Findings Intrarenal Findings
FENa % <1 >2 Proteinuria Absent Possible Urine specific gravity >1.020 1.010–1.020 Urine osmolality (mOsm/kg) >500 300–500 BUN/creatinine ratio >20 : 1 10–20 : 1 Urine sodium concentration (mmol/L) <10 >20 Urinary sediment Few hyaline casts Tubular, RBC, and WBC casts
Derived from Gammill HS, Jeyabalan A: Acute renal failure in pregnancy, Crit Care Med 33(10):S372–S384, 2005; Needham E: Management of acute renal failure, Am Fam Physician 72(9):1739–1746, 2005; Lameire N, Van Biesen W, Vanholder R: Acute renal failure, Lancet 365:417–430, 2005. AKI Acute kidney injury; FENa %, fraction of excreted sodium, percent.
TABLE 28.3 Laboratory Profile for Renal Disease
Test Normal Range for Adults Values in Renal Disease Comments
Test to Evaluate Removal of Nitrogenous Wastes Serum creatinine Male: 0.6–1.2 mg/dL
Female: 0.5–1.1 mg/dl Older adults: Decreased
In Chronic Kidney Disease May increase by 0.5–1.0 mg/dL
every 1–2 yr May be as high as 15–30 mg/
dL before symptoms of CKD are present
In Acute Kidney Injury Gradual increase of 1–2 mg/dL
every 24–48 hr May increase 1–6 mg/dl in
1 wk or less
Consistently elevated levels indicate decreased renal function.
Serum creatinine levels are used to evaluate effectiveness of dialysis treatments.
Blood urea nitrogen 10–20 mg/dL Older adults: May be slightly increased
In Chronic Kidney Disease May reach 180–200 mg/dL
before symptoms develop In Acute Kidney Injury Often increases by 1–20 mg/dL
at same pace as serum creatinine level
May reach 80–100 mg/dL within 1 wk
Increases depend on protein intake and other factors. Rate of increase is controlled by limiting protein intake.
This intervention is believed to decrease the rate of onset of systemic symptoms, such as anorexia, nausea, and vomiting.
Elevations have multiple causes, including diminished renal function, excessive protein intake, sepsis, GI bleeding, dehydration, and tissue catabolism.
Electrolyte Studies Serum sodium 136–145 mEq/L; 136–145 mmol/L (SI
units) Normal or decreased Clients with renal disease retain sodium.
With associated water retention, serum sodium levels remain normal.
With excessive water retention, serum sodium levels are decreased due to hemodilution.
Assess client for evidence of fluid volume excess: edema, weight increase, or elevation of diastolic blood pressure.
Limit fluid intake as directed. Avoid excessive sodium intake. Monitor for signs of hypernatremia: dry skin, excessive
thirst, dry mucous membranes, elevated body temperature, and flushed skin.
Client may need diuretics or dialysis.
Continued
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TABLE 28.3 Laboratory Profile for Renal Disease—cont’d
Test Normal Range for Adults Values in Renal Disease Comments
Serum potassium 3.5–5.0 mmol/L (SI units) Increased Advise client to avoid salt substitutes and to limit potassium-containing foods.
Monitor for rapidly increasing serum potassium levels in AKI.
ECG changes occur with serum potassium levels ≥6.5. Monitor for signs of hyperkalemia: dizziness, weakness,
cardiac irregularities, muscle cramps, diarrhea, and nausea.
May require administration of sodium polystyrene sulfonate (Kayexalate) or other treatment.
Serum phosphorus (phosphate)
3.0–4.5 mg/dL, 0.97–1.45 mmol/L (SI units)
Older adults: May be slightly decreased
Increased Short-term increases have potential to cause rapid decrease in serum calcium level and cardiac rhythm disturbances.
Long-term increases demineralize bones of calcium and enhance fracture potential.
Phosphate-binding medications help control hyperphosphatemia and prevent calcium depletion from bones.
Serum calcium Total calcium: 9.0–10.5 mg/dL; 2.25–2.75 mmol/L (SI units)
Ionized calcium: 4.5–5.6 mg/dL; 1.05–1.3 mmol/L (SI units)
Older adults: Slightly decreased
Decreased Decreases in AKI may necessitate replacement. Decreases in CRF may only be slight and may or may
not necessitate replacement. As serum phosphate level increases, serum calcium level decreases.
Chronic calcium deficiency leads to renal osteodystrophy.
Control of phosphate excess is usually essential before calcium replacement is initiated.
Monitor for manifestations of hypocalcemia: abdominal cramps, hyperactive reflexes, tingling fingertips, and spasms in feet and wrists.
Serum magnesium 1.3–2.1 mEq/L; 0.65–1.05 mmol/L (SI units)
Increased Advise patient to avoid compounds containing magnesium (e.g., laxatives).
Serum bicarbonate 23–30 mEq/L (venous); 23–30 mmol/L (SI units)
Decreased Replace bicarbonate. Monitor respiratory rate and depth. Monitor for decreased orientation.
Arterial blood pH 7.35–7.45 Decreased (in metabolic acidosis) or normal
Respiratory system attempts to compensate by hyperventilation (increased rate and depth of respiration).
Values are within normal range if blood buffers and lungs can compensate.
Monitor breathing rate and depth. Monitor level of consciousness.
Arterial blood bicarbonate (HCO3
−) 21–38 mEq/L Decreased Provide replacement oral, IV, or by hemodialysis or
peritoneal dialysis. Arterial blood PaCO2 35–45 mm Hg Decreased Monitor for respiratory fatigue (client breathes more
rapidly and deeply to “blow off” carbon dioxide).
Other Blood Studies Hemoglobin Female: 12–16 g/dL, 7.4–9.9 mmol/L (SI
units) Male: 14–18 g/dL, 8.7–11.2 mmol/L (SI
units) Older adults: Slightly decreased
Decreased Decreased levels indicate anemia. Monitor for pallor, weakness, lethargy, dizziness,
possible shortness of breath, and activity intolerance.
Hematocrit Female: 37%–47% Male: 42%–52% Older adults: May be slightly decreased
Decreased to 20% Same as for hemoglobin. With erythropoietin therapy, anemia improves.
CHAPTER 28 Acute Kidney Injury and Chronic Kidney Disease 599
Adapted from Ignatavicius DD, Workman ML: Medical-surgical nursing: critical thinking for collaborative care, ed 5, Philadelphia, 2006, Saunders, pp 1733–1735. AKI, Acute kidney injury; CKD, chronic kidney disease; CRF, chronic renal failure; ECG, electrocardiogram; GFR, glomerular filtration rate; GI, gastrointestinal; HPF, high-power field; IV, intravenous; RBCs, red blood cells; SI, Système International d’Unités; WBCs, white blood cells. *Urine may become cloudy with heavy sediment. Urine output and appearance vary, depending on remaining renal function.
TABLE 28.3 Laboratory Profile for Renal Disease—cont’d
Test Normal Range for Adults Values in Renal Disease Comments
Urinalysis* Specific gravity Usually 1.010–1.025
Possible range: 1.005–1.030 Usually decreased and fixed Reflects inability of tubules to produce concentrated or
diluted urine in response to changes in plasma osmolarity.
Monitor for fluid volume deficit or excess. pH Average: 5.5–6
Possible range: 4.6–8 May be fixed; pH does not
change with dietary changes Collect a freshly voided specimen for testing.
Glucose None or <15 mg/dL Usually detectable in urine of
nondiabetic clients when blood level is 160–180 mg/dL
Increased Renal threshold is often increased; therefore blood glucose level may be >160–180 mg/dL before glucose is detectable in urine.
Monitor blood glucose levels. Protein 0–8 mg/dL Increased when there is
glomerular damage or disease
Increases may be an incidental and benign finding. Transient increases occur with extreme exercise, fever, stress, or infection.
Persistent proteinuria requires 24-hr collection for determination of total quantity excreted.
Persistent proteinuria may indicate a serious renal problem.
Instruct client about need for follow-up. Instruct client in correct procedure for collection of
24-hr specimen. Occult blood No RBCs or occasionally 2 or 3 RBCs
per HPF No hemoglobin
More than 2 or 3 RBCs per HPF Detectable hemoglobin
Hemoglobin is detectable when hemolysis of RBCs has occurred.
Intact RBCs are detectable only with microscopic examination.
Collect a freshly voided specimen for testing. WBCs 0–5 per HPF Increased in urinary tract
infection Often indicates need for urine culture.
Bacteria Fewer than 1000 colonies/ml Increased in presence of infection, with or without an increase in WBCs
Obtain urine culture.
Casts None or a few; composed of RBCs, WBCs, protein, or tubular cell casts such as hyaline
Casts present Casts may be a benign occurrence or may signify that some renal injury or disease is present.
Collect a freshly voided specimen for direct microscopic examination.
Creatinine clearance Male: 107–109 ml/min Female: 87–107 ml/min Older adults: Progressively decreased
with advancing age
Decreased Change reflects decreases in GFR. Creatinine clearance is determined from a 24-hr urine
collection and a serum creatinine value.
these new biomarkers currently being tested are neutrophil gelatinase– associated lipocalin, cystatin C, and tissue inhibitor metalloproteinase-2. As with other aspects of the clinical presentation, laboratory findings are affected by the phase of AKI. Although the naming of the phases of AKI varies among resources, the clinical progression is consistent.
Prodromal Phase Patients during this phase will typically have a normal or declining urine output. Serum blood urea nitrogen (BUN) and creatinine levels begin to rise. The insult to the kidney has occurred, and the duration of this phase will vary depending on the cause of the injury, the amount of the toxin ingested, or the duration and severity of the hypotension.
Oliguric Phase Most patients with AKI develop oliguria, though some will remain nonoliguric. Those with severe injury often become anuric. Renal function is monitored according to fluctuations in the serum creatinine level and the calculated GFR that is derived from it. As urine output drops, metabolic waste products are retained and fluid and electrolyte balance is disrupted. These alterations are reflected in the physical assessment and laboratory data. Because it cannot be excreted, body water is retained. This hypervolemia results in the development of edema and hypertension. Other signs and symptoms of fluid volume overload include distended neck veins (jugular venous distention), weight gain, crackles, and possibly
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Tubular dysfunction may continue and is manifested by polyuria and sodium wasting, as well as depletion of electrolytes (especially potassium) previously retained. Typically, urine output is more than 1 L per day, and may be as much as 4 to 5 L, causing a fluid volume deficit if fluids are not rapidly replaced. The elevated BUN level contributes to an osmotic diuresis, as the large molecules are filtered and draw more water into the tubules. Renal perfusion begins to increase, slowly advancing filtration ability and tubular function.
If full recovery of renal function does occur, it may take only 1 week, but more often requires as much as 1 year. Full recovery is indicated when the serum creatinine level returns to within the normal range. This variation in recovery time is due to the diversity of AKI causes and degree of damage, as well as the quality of interventions provided and patients’ concomitant conditions. Even after recovery, progressive loss of renal function after AKI is a frequent finding, especially in pediatric cases. The loss of renal function after AKI in childhood has been found to result in progressive deterioration by adolescence or early adulthood.
additional manifestations of heart failure. Normally, as renal perfusion is reduced, the kidney responds by increasing the reabsorption of sodium and reducing its elimination. In AKI, this mechanism is impaired and sodium is lost in the reduced volume of urine that is produced. Tubular casts are present in the urine, and white blood cells, red blood cells (RBCs), and protein are also likely to appear. Other electrolytes are typically retained in the blood (potassium, magnesium, and phosphorus) and their levels in the urine are decreased (see Table 28.3). Of all the potential electrolyte problems, hyperkalemia is of greatest concern because the normal range is narrow (3.5 to 5 mEq/L) and levels of less than double the normal values can be fatal. Metabolic acidosis develops as a result of the kidney’s decreased ability to excrete hydrogen ions (acid load). The hydrogen ions shift into the cells in exchange for intracellular potassium. Thus hyperkalemia and metabolic acidosis often occur together. Changes in the levels of other electrolytes may not be seen unless the oliguric phase is prolonged. Anorexia, nausea, vomiting, weakness, seizures, acidosis, confusion, and coma are also possible. Although these manifestations are classically much more severe in ESRD, there is no identifiable point at which uremia presents, so some symptoms may be present in AKI. A GFR that is only slightly less than 50% of the normal for age may produce mild manifestations.
As the GFR drops, organic metabolic waste products are retained. Urea represents the largest amount of these wastes. Other uremic solutes involved have been found to be responsible for many of the signs and symptoms that collectively are called uremic syndrome (Table 28.4). This phase typically lasts 10 to 14 days, but can range from 1 day to 8 weeks. Development of uremia in AKI necessitates temporarily replacing renal function with dialysis. Nonoliguric patients have lower mortality and morbidity and less need for dialysis.
Postoliguric Phase Termination of the oliguric phase is marked by the beginning of renal recovery. The urine output gradually returns to normal. Unfortunately, not all patients recover. In about 5% of cases, AKI is not reversible.
TABLE 28.4 Pathophysiology of Manifestations of Uremic Syndrome
System Manifestation Pathophysiologic Basis
Central nervous system Uremic encephalopathy • Disorientation • Lethargy • Coma
Brain cells shrink because of osmotic gradient
Peripheral nervous system Motor neuropathies • Weakness Sensory neuropathies • Numbness • Tingling
Toxin interference with nerve transmission
Cardiovascular system Bleeding Decreased platelet function and coagulation factor production Anemia Decreased RBC life span; blood loss Decreased cardiac output Negative inotropic effect Ischemic syndromes Escalated coronary heart disease Pericarditis* Uremic crystals deposited in pericardium
Immune system Infections Decreased immune cell production and immune response Gastrointestinal system Anorexia Direct effect of toxins
Nausea and vomiting Integumentary system Impaired healing*
Pruritus; dermatitis* Uremic frost*
Decreased collagen production Deposition of uremic crystals on skin
Acid-base balance Metabolic acidosis Accumulation of acidic metabolic wastes
*More likely to occur with chronic kidney injury. RBC, Red blood cell.
KEY POINTS • Acute kidney injury (AKI) is an abrupt reduction in renal function producing
an accumulation of waste materials in the blood. Oliguria is usually present. AKI is classified into three types according to the site of disruption: prerenal, postrenal, and intrinsic. Distinction between the types of AKI is necessary to determine appropriate therapy.
• Prerenal kidney injury is due to conditions that impair renal blood flow, such as hypovolemia, hypotension, cardiac failure, and renal artery obstruction. It is characterized by clinical manifestations of a low glomerular filtration rate (GFR), usually including oliguria, high urine specific gravity and osmolality, and low urinary sodium concentration. Signs and symptoms of fluid volume overload are present. Prolonged prerenal kidney injury results in intrinsic kidney injury.
CHAPTER 28 Acute Kidney Injury and Chronic Kidney Disease 601
in incidence worldwide within the next 25 years. Diabetic nephropathy is a major complication of that disease. Of those who develop diabetic nephropathy, about 30% ultimately progress to ESRD, whereas the remainder most often die of cardiovascular disease before reaching that point.
Hypertension is another major risk factor for CKD, and it also develops as a complication of it. The majority of patients (70% to 80%) with CKD have hypertension, climbing to 90% in those treated with dialysis. The aging of the population in the United States is predicted to escalate the incidence of systolic hypertension and resulting renal disease. Some of the risk factors for CKD are not amenable to modifica- tion. These include a family history of CKD, a history of exposure to toxins (heavy metals, tobacco smoke, radiopaque dyes), age greater than 65 years, and ethnicity (non-Hispanic black, non-Hispanic white, and Mexican American). It has been recommended that high-risk groups be screened for CKD (those with family histories, diabetes mellitus, hypertension, recurrent urinary tract infections, urinary obstructions, or other systemic conditions affecting the kidney) and that screening be extended to those without any other identified risks other than being older than age 65. Research is under way to identify genes associated
CHRONIC KIDNEY DISEASE Chronic renal failure is the outcome of the progressive and irrevocable loss of nephrons. The normal resiliency of the kidney means that more than 75% of the total number of nephrons must be lost before clinical manifestations appear. What is termed chronic renal failure is the final outcome of CKD. More commonly, this point is called end-stage renal disease (ESRD) in acknowledgment of the progressive process of deterioration of renal function. At some point in the CKD process, renal disease will proceed to ESRD progressively, irreversibly, and to the point where renal dialysis or transplantation is required for survival.
CKD is a health crisis worldwide. Ten percent of the population worldwide is affected by CKD. Over 2 million people worldwide currently receive treatment with dialysis or a kidney transplant to stay alive, and of those 2 million, the majority are treated in the United States, Japan, Germany, Brazil, and Italy. Because of the rapidly escalating incidence of the two primary risk factors, diabetes and hypertension, the number of people afflicted with CKD is likely to increase in the years to come.
Risk Factors CKD is defined as either decreased kidney function or kidney damage of 3 months’ or more duration based on blood tests, urinalysis, and imaging studies. Alternatively, it may be defined as a GFR <60 mL/ min/1.73 m2 for 3 months, with or without indication of damage to the kidney. CKD is a syndrome in that it can occur as a complication of many other conditions, such as diabetes and hypertension. This means that the etiologies and/or risk factors of these conditions are also risk factors for the development of CKD. Although some of the conditions and risk factors have been identified for many years, new research findings have added to the list and altered perceptions of their relative importance (Box 28.2).
Diabetes and hypertension account for more than 50% of the individuals in the United States with ESRD, followed by glomerulone- phritis and cystic kidney disease. Type 2 diabetes is projected to double
• Acute tubular necrosis (not progressing beyond the oliguric stage) • Developmental/congenital conditions
• Renal agenesis • Aplastic kidneys • Renal hypoplasia • Ectopic/displaced kidneys • Fused kidneys
• Cystic disorders • Polycystic kidney disease • Medullary cystic disease
• Neoplasms • Benign tumors of the kidney • Malignant tumors of the kidney (including Wilms tumor)
• Infections • Recurrent pyelonephritis • Renal tuberculosis
• Glomerulonephritis • Systemic conditions
• Diabetes mellitus* • Diabetes insipidus • Hypertension* • Hyperparathyroidism • Liver failure/cirrhosis • Gout • Amyloidosis • Scleroderma • Goodpasture syndrome • Systemic lupus erythematosus (produces glomerulonephritis)
• Other • Genetics • Increasing age • Race (blacks) • Overweight/obesity • Dyslipidemia • Family history of cardiovascular disease • Smoking
BOX 28.2 Risk Factors for Chronic Kidney Disease
*Most common risk factors.
• Postrenal kidney injury is due to obstruction within the urinary collecting system distal to the kidney. Obstruction results in elevated pressure in Bowman capsule, which impedes glomerular filtration. Clinical findings vary, based on the duration of the obstruction. Prolonged postrenal kidney injury results in intrinsic kidney injury.
• Intrinsic failure is due to a primary dysfunction of the nephrons. Although it may be due to glomerular, vascular, or interstitial etiologies, most often the problem is within the renal tubules, resulting in ATN. ATN may occur with nephrotoxic or ischemic insults. Clinical manifestations depend on the phase of acute tubular necrosis (ATN).
• AKI has three characteristic phases. The first phase, prodromal, is character- ized by normal or declining urine output and varies in duration, depending on the causative factors. The oliguric phase may last up to 8 weeks with a usual urine output of 50 to 400 mL/day. Retention of nitrogenous wastes and certain electrolytes is likely. Fluid volume excess is expected. During the postoliguric phase, diuresis occurs, tubular function remains impaired, and azotemia continues. Fluid volume deficit is characteristic until the kidneys gradually recover. Recovery can last up to 12 months and is characterized by gradual normalization of serum creatinine and blood urea nitrogen (BUN) levels. Often a degree of renal insufficiency persists.
• AKI results in characteristic alterations in laboratory tests of the blood and urine. Renal function is monitored by serum creatinine level and calculated GFR. The retention of metabolic wastes (azotemia/uremia), which is monitored by the BUN level, produces widespread systemic effects (uremic syndrome).
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always noted. At stage 4, diagnosis is made because manifestations are usually very apparent with the significant decline in renal function. Planning for ESRD should occur. By stage 5, manifestations of ESRD are present and renal function is so impaired that dialysis or transplanta- tion is required.
The staging system shown in Table 28.6 is useful because the terms renal insufficiency and decreased renal reserve are commonly used in clinical practice. Decreased renal reserve is not associated with signs or symptoms of renal failure, largely because the remaining nephrons accommodate the additional workload. Electrolyte and fluid levels are maintained within normal limits. Although not abnormally elevated, creatinine levels are usually at the high end of the normal range—a common finding in the elderly population. Interventions for those at risk for CKD (see Box 28.2) should be initiated to help slow disease progression. At this point, kidney function is already impaired and significant deterioration is possible if the kidney is stressed. There may be small amounts of protein in the urine. The stage of renal insufficiency is reached with further nephron damage. Although electrolyte levels remain within normal limits with the GFR decline, the metabolic wastes (creatinine and urea) are retained at levels proportional to nephron loss. Impairment of the kidney’s ability to concentrate the filtrate often results in increased urinary output (polyuria), often leading to nocturia. ESRD develops when more than 90% of the kidneys’ nephrons have been destroyed. At this point, the patient typically demonstrates the sequelae and complications of renal failure, seen as laboratory alterations and signs and symptoms associated with the inability of the kidneys to fulfill their multiple roles within the body. Without interventions, when the remaining nephrons number less than 5% to 10% of normal, death is inevitable.
Complications of Chronic Kidney Disease The consequences of CKD are affected by the intake of food and water and the degree to which renal function is impaired. Some of the complica- tions of CKD begin to appear when the GFR falls below 60 ml/ min/1.73 m2 (stage 3 of the GFR-based classification). Because of the widespread impact of the kidneys on nearly every part of the body, the effects of their failure are seen in every body organ system. Complications
with CKD and diabetic nephropathy, as well as biomarkers to assess for risk and likelihood of a positive response to treatment.
Pathophysiology of Progression of Chronic Kidney Disease Regardless of the origin of CKD, the decline in renal function is progres- sive and irreversible. The damaged nephrons are unable to function properly. The remaining nephrons initially compensate by enlarging and increasing their clearance capacity. Through this process, renal function remains relatively normal until 75% to 80% of the nephrons are damaged and nonfunctional. Over the course of several years, these compensatory changes may cause further injury to the remaining nephrons. Although the cause of this additional injury is unknown, some investigators believe that the increased workload of the remaining glomeruli and small arterioles may cause sclerosis of these vessels, leading to further decline in kidney function and ultimately ESRD. Progression of CKD is monitored by measuring changes in GFR, determining the presence and degree of proteinuria, examining urinary sediment for white or RBCs, measuring serum creatinine levels, and performing imaging studies with renal ultrasonography to document kidney size.
Stages of Chronic Kidney Disease The progression of CKD is determined by monitoring GFRs. A five-stage system depicts severity of disease, with decreasing GFRs reflecting a higher stage of progression. The recommendation is that diagnosis of CKD not be based on a specific pathology (e.g., diabetes mellitus), but rather on the presence of damage to the kidney and the level of function according to the GFR measurement as shown in Table 28.5. Screening for the complications of CKD is recommended to begin in stage 3.
In stage 1 of the GFR staging system shown in Table 28.5, patients’ BPs and laboratory values are usually normal and they are asymptomatic, though they have some form of kidney disease. An initial reduction in GFR, with or without documented kidney damage, depicts stage 2. This would include, for example, a diabetic patient with proteinuria or an older person with the predictable age-related diminishment of renal function. Again, patients may be asymptomatic without laboratory value changes. The aims in stages 1 and 2 are to identify individuals at risk for progressive renal disease and reduce those associated risks.
Beginning with stage 3, patients are classified as having CKD, accord- ing to GFR, regardless of the existence of kidney damage. Although they may be otherwise asymptomatic in stage 3, hypertension is nearly
TABLE 28.5 Stages of Chronic Kidney Disease According to Glomerular Filtration Rate*
Stage Description
Stage 1 Kidney damage with normal or increased GFR GFR >90 mL/min/1.73 m2
Stage 2 Mildly decreased GFR GFR 60–89 mL/min/1.73 m2
Stage 3 Moderately decreased GFR GFR 30–59 mL/min/1.73 m2
Stage 4 Severely decreased GFR GFR 15–29 mL/min/1.73 m2
Stage 5 End-stage kidney disease GFR <15 mL/min/1.73 m2 (or dialysis)
*From National Kidney Foundation: Kidney disease outcomes quality initiative, 2002. GFR, Glomerular filtration rate.
TABLE 28.6 Stages of Chronic Kidney Disease According to Nephron Loss and Clinical Presentation
Stage % Nephron Loss Clinical Presentation
Decreased renal reserve
<75% No signs or symptoms BUN and creatinine normal May not be diagnosed
Renal insufficiency 75–90% Polyuria, nocturia Slight elevation in BUN and
creatinine May be controlled by diet and
medication End-stage renal
disease >90% Azotemia/uremia
Fluid and electrolyte abnormalities
Osteodystrophy Anemia Dialysis or transplantation
essential
BUN, Blood urea nitrogen.
CHAPTER 28 Acute Kidney Injury and Chronic Kidney Disease 603
Mineral and Bone Disorders The inability of the kidney to excrete phosphorus in CKD results in elevated phosphorous levels in the blood. Because phosphorus and calcium maintain a reciprocal relationship in the body, as hyperphos- phatemia develops in CKD, hypocalcemia likewise develops. The body’s system of maintaining calcium balance is sophisticated and involves the activation of parathyroid hormone (PTH) when the calcium level is low. When this occurs because of CKD, the result is secondary hyperparathyroidism. The normal response to PTH release is the increase in serum calcium levels by (1) increasing reabsorption by the kidney; (2) increasing absorption of dietary calcium in the presence of vitamin D, which must be activated by the kidney; and (3) mobilizing calcium release from bone. Vascular and soft tissue calcifications as well as osteoporosis are the end results of the prolonged elevation of PTH level and altered bone and mineral metabolism. The resulting bone pain, deformities, and fractures are significant long-term complications of CKD. Additionally, abnormal PTH, calcium, and phosphorous levels are reported to have been identified as independent risk factors of cardiac-caused mortality during dialysis.
Malnutrition Protein-energy wasting (PEW) is the loss of muscle and visceral protein stores and is a common finding in advanced CKD. Decreased nutrient intake is due to the anorexia of uremic syndrome, changes in taste sensation, and the depression of chronic illness, as well as the dietary limitations imposed by disease. Additionally, a negative-nitrogen balance exists because of escalated protein catabolism and decreased protein synthesis. Medications and concomitant diseases such as diabetes may cause nausea, vomiting, and slowed gastric emptying. The best serum marker of PEW is albumin level. Hypoalbuminemia in dialysis patients has a strong association with increased mortality and morbidity. However, caution must be used in interpreting these levels because the serum level may be affected by the inflammatory response. Malnutrition has a negative impact on CKD prognosis.
Anemia The development of anemia is an anticipated problem as CKD progresses. The production of RBCs by the bone marrow depends on numerous cofactors; perhaps the most significant of these is erythropoietin, which is produced by the kidneys. Erythropoiesis, with all essential ingredients, requires about 5 days. Lacking erythropoietin, fewer RBCs are produced and anemia is a persistent problem. The problem is often further escalated by malnutrition, due to nutritional deficits of iron, folate, and vitamin B12. Chronic inflammation and elevations of PTH level suppress bone marrow. At the same time, the uremia associated with CKD produces a toxic environment for RBCs, reducing their normal life expectancy of 120 days. Blacks appear to have both a greater prevalence of anemia and more severe reductions in RBC counts and hemoglobin concentra- tions. By stage 5 and the initiation of dialysis, approximately 66% of patients have hemoglobin levels <11 g/dL. The cardiovascular compensa- tory efforts for the chronic anemia of CKD can lead to myocardial dilatation, left ventricular hypertrophy, and remodeling. The combination of worsening CKD, anemia, and heart failure is referred to as cardiorenal anemia syndrome and becomes a chain of escalating pathologies.
Pain The causes of pain in kidney disease are multifactorial. Surgery may be needed to create access for dialysis or to biopsy a kidney. Dialysis itself can be a painful experience with frequent needle sticks and accumulation of uremic toxins. The primary cause of kidney disease, such as cystic kidney or diabetes (due to neuropathies or ulcerations), may result in
affect the gastrointestinal, neurologic, musculoskeletal, dermatologic, cardiovascular, and endocrine systems. Immune function, acid–base regulation, and the coagulation cascade are affected as well. In many cases, complications are interrelated, with one contributing to or exacerbating the development of others. Laboratory alterations become significant as CKD progresses; typical values are shown in Table 28.3. Major complications of CKD are discussed in the following sections.
Hypertension and Cardiovascular Disease Cardiovascular disease and CKD have many risk factors in common: increasing age, black race, hypertension, diabetes mellitus, smoking, decreased GFR, proteinuria, obesity, and RAAS overactivity. If hyperten- sion was not a precursor to CKD, it inevitably develops with decreasing renal function, appearing in stage 2 or 3. The excess fluid volume and escalated atherosclerotic process, along with heightened RAAS activity and evidence of increased SNS activity, are all involved in the development of hypertension in CKD. Most people with CKD do not die of kidney failure, but rather from the results of cardiovascular disease, which is both a risk factor for and a complication of CKD. The incidence of cardiovascular morbidity and mortality is markedly increased in CKD. In the elderly, death from cardiovascular disease is more common than progression to renal replacement therapy. Although the risk of cardio- vascular disease is greatest for those with end-stage disease, it has been found to be an issue at all stages of CKD. A clear link exists between deterioration of kidney function and development of cardiovascular disease. Multiple factors have been identified that are conducive to this, including, but not limited to, dyslipidemias, anemia, electrolyte-induced dysrhythmias, hypertension, endothelial dysfunction (including inflam- mation, alterations in nitric oxide activity, oxidative stress), proteinuria, premature atherosclerosis, activity limitations, and volume overload.
Uremic Syndrome As renal function declines, retention of metabolic wastes increases, creating a toxic environment within the body. Uremia produces signs and symptoms in many body systems (see Table 28.4). Compared with the presentation in AKI, uremic syndrome in CKD is far more severe and its effects are more widespread, even though the serum levels often must be much higher for manifestations to be apparent.
Metabolic Acidosis Normally, the human body produces 50 to 80 more millimoles of acids than bases during daily metabolism. Metabolic acidosis occurs with the retention of acidic waste products of metabolism as part of uremia. It is also produced in association with hyperkalemia, when potassium ions in the blood are exchanged for intracellular hydrogen ions, lowering the pH of the blood (see Chapter 25). The kidneys lose their ability to secrete hydrogen ions or to produce bicarbonate, and with the limited capacity of the other buffers, pH can fall precipitously; coma develops and death will occur if the pH drops below 6.8. Metabolic acidosis depresses cardiac as well as central nervous system function. The respiratory system attempts to compensate for metabolic acidosis by increasing the rate and depth of respirations.
Electrolyte Imbalances The loss of renal mechanisms involved in electrolyte balance result in the retention of potassium, phosphorus, and magnesium in the blood. Each of these imbalances is associated with specific manifestations (see Chapter 24). Hyperkalemia is of special concern, as discussed with AKI, because it can be responsible for fatal cardiac dysrhythmias. The inability to eliminate phosphorus and the loss of the renal mechanisms involved in maintaining calcium balance result in mineral and bone disorders, which are discussed next.
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conditions such as glomerulonephritis can prevent progression to intrinsic kidney injury. Prevention of intrinsic kidney injury caused by chemicals begins with an awareness of the most likely harmful agents; these are listed in Box 28.3. Whenever possible their use should be limited, and if these agents must be prescribed, their serum levels may need to be monitored. Single doses of aminoglycosides, rather than multiple doses, and liquid formulations of amphotericin B appear to be less nephrotoxic. Of all the chemicals listed in Box 28.3, the most common culprit is radiocontrast media.
Prevention of contrast-induced AKI is aimed at initiating intravenous volume expansion with saline both before and after the contrast administration, administering the antioxidant N-acetylcysteine (Muco- myst) to patients at risk, measuring the serum creatinine concentration of patients with suspected renal dysfunction, and using either low- osmolar or isoosmolar contrast media for all patients with renal insufficiency. It is important to note that the evidence to support the effectiveness of Mucomyst in preventing CI-AKI has demonstrated mixed results. More research is needed. Postrenal etiologies should be avoided whenever possible, but if they occur they should be rapidly identified and corrected. Postrenal kidney injury is the least common and most readily identifiable; promptly addressing it will prevent the progression to ATN.
Chronic Kidney Disease Clinical management of CKD is complex and requires a multidisciplinary approach. Treatment is directed at slowing the progression to ESRD and managing the complications that are inevitable. This means that patient education regarding the trajectory of the illness, management of modifiable risk factors, and clinical management of the disease are essential. Because death is often due to cardiovascular pathologies, management of these risk factors assumes significant importance. At a community level, screening for hypertension, diabetes, and CKD is essential to stem the tide of these interrelated chronic diseases.
KEY POINTS • Chronic kidney disease (CKD) is characterized by a gradual, irreversible loss
of functional nephrons. The two most common causes are diabetes mellitus and hypertension, followed by recurrent pyelonephritis, glomerulonephritis, and polycystic kidney disease.
• Progression of CKD is monitored by a staging system based on increasing severity of disease. There are five stages of CKD progression, and with each higher stage, the glomerular filtration rate (GFR) and kidney function decline. In stage 1, kidney function may be normal, though some disease exists. The patient is asymptomatic. The focus in stages 1 and 2 is minimizing risk factors. By stage 3 symptoms may be starting to appear and treatment may be needed. In stage 4, planning for dialysis or transplant should begin, and in stage 5 renal replacement therapy is needed or death will ensue. Complications of CKD include hypertension and increased cardiovascular risks, uremic syndrome, metabolic acidosis, electrolyte disturbances, bone and mineral disorders, malnutrition, anemia, pain, and depression.
From McKenry L, Tessier E, Hogan M: Mosby’s pharmacology in nursing, ed 22, St Louis, MO, 2006, Mosby; Needham E: Management of acute renal failure, Am Fam Physician 72(9):1739–1746, 2005.
Acetaminophen Acyclovir (Zovirax) Allopurinol Aminoglycosides Amphotericin B (Fungizone) Angiotensin-converting enzyme inhibitors Certain cytotoxic chemotherapeutic agents Cocaine Cyclosporine (Sandimmune) Foscarnet (Foscavir) Heavy metals Hemoglobin; myoglobin Heroin Lithium Nonsteroidal antiinflammatory drugs Pentamidine (Pentam 300 and others) Radiocontrast media* Uric acid Vasopressors (norepinephrine, high-dose dopamine)
BOX 28.3 Selected Chemicals Toxic to the Kidneys
*Most common.
pain. Finally, comorbidities such as gout, bone disease, and peripheral vascular disease may also contribute to pain in the person with CKD. The challenge lies in finding a balance between pain relief and the right analgesic and dose to avoid toxicity and drug-induced nephropathy.
Depression The prevalence of depression in patients with CKD is reported to be between 20% and 30%. Reasons for depression stem from comorbid conditions, as well as the process of kidney disease itself. Many patients with renal disease experience a high rate of cardiovascular events, which are also associated with higher rates of depression. In addition, the disruption of social interactions and relationships, possibly attributable to dialysis and fatigue, contributes to depressive symptoms. In patients with CKD, as in the general population, depression may lead to a decrease in quality of life, functional impairment, and sexual dysfunction.
CLINICAL MANAGEMENT Clinical management of AKI and CKD requires a multidisciplinary approach. Collaboration among the nurse, physician, clinical pharmacist, and dietitian is essential to attain optimal patient outcomes. Prevention of the development of AKI is the goal. With CKD, prevention of the myriad of causes is certainly desirable; however, prevention also focuses on retarding the inevitable progression of the disease and reducing cardiovascular risk factors.
Acute Kidney Injury AKI is often entirely preventable. Prevention is highly dependent on recognizing patients who are at risk for the development of AKI and establishing prophylactic interventions to decrease this risk.
Etiologies and risk factors for prerenal kidney injury should be identified and, whenever possible, treated swiftly. Early consultation with a nephrologist is recommended. Hypotension attributable to hypovolemia should be addressed; medications that might be contributing (antihypertensives, opioids) should be decreased or discontinued. Nutrition should be supported, and indwelling catheters and other invasive equipment should be removed as soon as possible to decrease the risk of infection. Development of infection should be monitored and treated if it develops. Maintaining adequate circulating volumes and supporting cardiac function, especially in those at risk for prerenal kidney injury, are the primary foci for prevention.
Should prerenal oliguria develop, efforts should be initiated to enhance renal perfusion before ATN can occur. Aggressive management of
CHAPTER 28 Acute Kidney Injury and Chronic Kidney Disease 605
(D5W), and insulin or oral or rectal administration of sodium polystyrene sulfonate.
Bone and Mineral Disorders Hyperphosphatemia is addressed first nutritionally and later through drug management. Serum levels of PTH, calcium, and phosphorus should be monitored in patients with a GFR less than 60 mL/min/1.73 m2. Calcium carbonate and calcium acetate effectively bind phosphorus, correct hypocalcemia, and are inexpensive, though they are associated with hypercalcemia and vascular calcifications. Lanthanum carbonate has potent phosphorous-binding ability and is generally well tolerated. Vitamin D therapies such as calcitriol, paricalcitol, and ergocalciferol are indicated for use in vitamin D deficiencies and to suppress PTH levels. Calcimimetics, such as cinacalcet, have also been shown to decrease secretion of PTH. Target ranges for both calcium and phosphorous levels are shown in Table 28.7.
Malnutrition Nutrition plays a large role in the treatment of CKD. Advanced CKD produces gastrointestinal manifestations, anorexia, nausea, and changes in the sense of taste, which further complicate the necessary modifications in diet. Caloric requirements are increased. Sufficient carbohydrate and fat are needed to meet energy requirements. Aspects of nutritional management of CKD include limiting intake of dietary phosphorus, protein, sodium, potassium, and water, depending on laboratory values and other clinical manifestations. Avoiding malnutrition, preventing anemia, and countering disease- and drug-induced constipation are other aspects of nutritional management. Lists of foods high in sodium, potassium, and protein should be provided; patients can then be encouraged to identify their favorite foods and choose smaller portions or eat them less often. Additionally, diet-related risk factors for cardio- vascular disease must be considered. This can all seem overwhelming to patients, so involvement of a dietitian and thorough education considering concomitant conditions, personal likes and dislikes, eating habits, and financial resources is essential.
Anemia Erythropoiesis-stimulating agents, such as epoetin alfa and darbepoetin alfa, have dramatically improved the quality of life for patients with CKD, but have had little effect in reducing overall cardiovascular mortality or the rate of GFR loss. Target hemoglobin (Hgb) levels have been the subject of much debate. The National Kidney Foundation’s Kidney Disease Outcome Quality Initiative (KDOQI) Guidelines recommend Hgb levels between 11 and 12 g/dL. In addition to pharmacologic interventions, strategies for reducing fatigue, such as balancing rest and activity throughout the day, should be employed.
Pain Pain in patients with CKD may be acute or chronic. Choice of medication and dosage need to consider the patient’s age, comorbidities, and degree
Underdiagnosis and undertreatment mediate the problem, and lack of awareness is the enemy of early diagnosis and treatment.
The speed with which CKD progresses varies significantly among individuals. Complications are typically evident by stage 3 or 4, and attention is directed to therapeutic interventions designed to minimize and treat these complications. Therapeutic and pharmacologic interven- tions are presented within the context of each complication listed in the following paragraphs. An in-depth presentation is beyond the scope of this text; discussion is simply an overview. Goals of therapeutic interventions for CKD are summarized in Box 28.4.
Hypertension and Cardiovascular Disease Evaluation of risk factors for cardiovascular disease is an important part of intervention, because the risk of morbidity and mortality rises with the decline of GFR. Hypertension is associated with a more rapid progression of CKD; therefore control of BP is critical. Lowering BP reduces the risk of proteinuria and prevents the development of car- diovascular and cerebrovascular events. The BP goal for most CKD patients is <140/90 mm Hg. An ACEI or an AII receptor blocker is considered the treatment of choice to delay progression, followed by a thiazide or loop diuretic. ACEIs and AIIs have an additional benefit of reducing proteinuria by 40% to 45%. However, it should be noted that effectively lowering BP does not necessarily improve survival.
The benefits of using statins to treat dyslipidemia in patients with CKD have not been clearly established and remain controversial. Although a reduction in total and low-density lipoprotein cholesterol levels occurs and may be effective in decreasing cardiovascular events, there is no improvement in the GFR or the rate of CKD progression. There is some evidence to indicate that there is a benefit from use of statins in stages 1 to 3, but not once patients start dialysis. This is an area of ongoing research.
Metabolic Acidosis Mild acidosis with a pH of 7.30 to 7.35 requires no therapy. Patients with chronic metabolic acidosis (<7.30) may be prescribed sodium bicarbonate. In a single-center randomized trial, 134 adult patients with stage 4 CKD were treated with bicarbonate supplements. After 2 years of treatment, 6.5% of patients in the sodium bicarbonate group required dialysis compared with 33% in the control group. Replication of this study is needed.
Fluid and Electrolyte Imbalances Fluid restrictions are implemented when the sodium level drops below 135 mmol/L. Patients with edema, heart failure, or hypertension may need a 2 g/day sodium restriction. Mild hyperkalemia (<6 mmol/L) can be treated by reducing potassium intake and correcting metabolic acidosis. Potassium levels >6 mmol/L require more urgent treatment, such as an IV infusion of calcium gluconate, 5% dextrose in water
• Maintain volume status. • Prevent and treat acid–base and electrolyte disturbances. • Prevent and treat uremia. • Support nutritional needs. • Prevent and treat infection. • Prevent and treat anemia. • Improve quality of life. • Lower mortality and morbidity rates. • Control pain.
BOX 28.4 Therapeutic Goals in Chronic Kidney Disease
Data from Legg V: Complications of chronic kidney disease: a close look at renal osteodystrophy, nutritional disturbances, and inflammation, Am J Nurs 105(6):40-49, 2005.
TABLE 28.7 Target Ranges for Calcium and Phosphorus in CKD
Stage Calcium Phosphorus
3 8.4–9.5 mg/dL 2.7–4.6 mg/dL 4 8.4–9.5 mg/dL 2.7–4.6 mg/dL 5 8.4–9.5 mg/dL 3.5–5.5 mg/dL
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program was signed into law, giving all Americans the right to treatment; ESRD is the sole recipient of this status. In hemodialysis, an artificial kidney serves as the dialyzing semipermeable membrane. The patient’s blood passes through a bundle of hollow capillary tubules, and dialyzing fluid bathes these tubules. Solutes that are present in high concentration in the uremic blood (i.e., phosphate, urea, creatinine, potassium) diffuse across the dialyzing tubule membrane into the dialyzing fluid and are discarded. Excess water in the uremic blood is eliminated through osmosis across the membrane. Preferred access for hemodialysis is established by creating an arteriovenous (AV) fistula, most commonly in the arm. AV grafts and specialized central venous catheters are other means of access. Most patients with ESRD go through hemodialysis treatments three times per week, with each treatment lasting about 4 hours. Although a lifesaving intervention, dialysis treatments have complications, some of which are life threatening, and long-term morbidity remains quite high. Despite dialysis, cardiovascular disease remains the most common cause of death in ESRD patients.
In PD, the peritoneum serves as the dialyzing membrane. A dialysis catheter is surgically placed in the abdomen for access. During the treatment, the peritoneal cavity is slowly filled with dialysate through the catheter. Extra fluid and waste products are drawn out of the uremic blood and into the dialysate. There are two major types of PD: continuous ambulatory peritoneal dialysis (CAPD) and continuous cycling peritoneal dialysis (CCPD).
CAPD is carried out in the patient’s home and without the use of machines. The patient instills about 2 quarts of dialysate into the peritoneum through the catheter. The dialysate remains there for 4 to 5 hours or longer before it is drained and discarded. This is called an exchange. While the dialysate resides in the peritoneal cavity, the patient has more freedom to continue his or her usual activities at work, at school, or at home. Peritonitis is a potentially serious complication.
CCPD can also be performed at home, but uses a special machine called a cycler. This is similar to CAPD except that a number of cycles (exchanges) occur. Each cycle usually lasts 112 hours, and exchanges are done throughout the night while the patient sleeps.
CRRT is limited to in-hospital AKI patients. Continuous hemofiltra- tion and hemodialysis procedures filter and dialyze the blood without interruption. CRRT removes fluid and wastes from patients who are not hemodyamically stable enough (e.g., shock, multiple organ system failure) to tolerate the larger quantity of blood removed from the body during typical hemodialysis. This “gentler” continuous removal of wastes and blood helps avoid the hypotensive episodes caused by intermittent hemodialysis and its intermittent removal of large volumes of fluid.
Kidney Transplant Kidney transplantation is an alternative to dialysis for patients with ESRD. As with other conditions in which transplantation is indicated, the primary limiting factor is the availability of organs. Kidneys are obtained from deceased and living donors. For most of those who choose it, transplantation allows for increased independence, return to normal activities of daily living, and resumption of normal renal function. Thousands of patients receive kidney transplants each year in the United States, with a remarkable rise in transplant recipients over the last decades. The 5-year patient survival rate (2003–2008) was estimated to be about 82% for a deceased donor kidney and about 91% for a living donor transplant. Given the number of transplant recipients and the improving patient survival rates, many patients need follow-up health care outside of transplant centers. This means that general health care providers will be caring for transplant recipients and the chronic medical conditions that accompany transplantation surgery. Common medical complications include cardiovascular disease, obesity, hyperten- sion, dyslipidemia, diabetes, cerebrovascular disease, anemia, gout,
of kidney failure; the pathway of elimination of the medication (i.e., through the liver, kidney, or dialysis); and the risk of drug-induced nephropathy. Nonpharmacologic methods of pain relief should also be explored.
Depression Studies have explored the use of pharmacologic and nonpharmacologic approaches to treat depressive symptoms in patients with CKD. The safety of antidepressants in patients with decreased renal function is a significant concern. Psychotherapy, exercise therapy, cognitive behavioral therapy, and music therapy all have demonstrated varying degrees of success.
Acute-on-Chronic Kidney Disease Acute-on-chronic kidney disease describes a scenario in which AKI occurs in someone with preexisting CKD. Incidence varies from 10% to greater than 30%, depending on the study population. Preexisting CKD is a strong risk factor for development of AKI (Table 28.8). The most common causes of AKI in someone with CKD include systemic infections, medications, dehydration, and urinary tract obstruction. Management is directed toward identifying and treating the underlying cause of the acute deterioration in order to prevent a possible irreversible drop in kidney function.
Dialysis The procedures, advantages, disadvantages, and expected outcomes of dialysis should begin to be discussed when the patient is in stage 4 of CKD. When patients with CKD reach stage 5, dialysis is indicated. The primary reason for the initiation of dialysis is the development of uremia. Approximately two-thirds of the total body urea content is removed by each dialysis treatment. Dialysis may also be required if severe hyperkalemia is unresponsive to other interventions or in cases of severe volume overload. If these conditions develop during the oliguric phase of ATN, dialysis may be required temporarily. Dialysis supports all the treatment goals in Box 28.4 and is the only therapeutic option for those with ESRD who are unable to obtain a transplant. Dialysis may be accomplished by hemodialysis, peritoneal dialysis (PD), or continuous renal replacement therapy (CRRT).
Hemodialysis was first carried out on humans in 1924; before that time, patients with ESRD simply died. In 1972 the national ESRD
TABLE 28.8 Staging of AKI
Stage Serum Creatinine Urine Output
1 1.5–1.9 times baseline OR ≥0.3 mg/dL (≥26.5 µmol/l) increase
<0.5 mL/kg/h for 6–12 hours
2 2.0–2.9 times baseline <0.5 mL/kg/h for ≥12 hours
3 3.0 times baseline OR Increase in serum creatinine to ≥4.0 mg/dL (≥353.6 µmol/l) OR
Initiation of renal replacement therapy
OR, In patients <18 years, decrease in
eGFR to <35 mL/min per 1.73 m2
< 0.3 mL/kg/h for ≥24 hours OR
Anuria for ≥12 hours
eGFR, Estimated glomerular filtration rate.
CHAPTER 28 Acute Kidney Injury and Chronic Kidney Disease 607
depression, bone disease, malignancies, and infections. Even with the best possible tissue matching, antirejection drug therapy is required, and the adverse effects of these medications may have a significant impact on health and quality of life. Transplant recipients will be prescribed a combination of immunosuppressants, usually tacrolimus or cyclosporine, mycophenolate, and prednisone.
Chronic Kidney Disease in Older Adults A decline in kidney function as one ages is well understood. What is less clear is whether the CKD that develops in older adults is a manifesta- tion of the aging kidney or the associated cardiovascular disease and life exposure to vascular risk factors such as hypertension, diabetes, and smoking. The majority of patients diagnosed with CKD are older adults, and the rates of treated ESRD among the elderly (>80 years) have risen by more than 50% in the last decade. Although progression of CKD to ESRD is costly and incurs significant health problems, it appears less frequently in older adults compared with cardiovascular mortality. The majority will die as a result of cardiovascular disease.
In the past 5 decades, increased numbers of older patients have initiated dialysis worldwide. Results from some studies indicate that elderly adults choosing PD have higher mortality rates than those receiving hemodialysis. With increased numbers of older adults on dialysis comes not only increased survival, but also increased morbidity. Elderly patients who are on dialysis seem to have a higher burden of age-related problems, such as frailty, falls, and cognitive impairment. There is also emerging evidence that dialysis initiation may be associated with accelerated rates of functional and/or cognitive decline. Primary care providers will be challenged with the complex care required of this population.
KEY POINTS • Prevention of acute kidney injury (AKI) includes early identification of those
at risk, maintenance of fluid volume status and cardiac output, avoidance of exposure to nephrotoxic chemicals as well as subsequent treatment if necessary, and avoidance and aggressive treatment of infections. Prerenal and postrenal kidney injuries are treated by addressing their specific etiologies. Intrinsic kidney injury (ATN) is treated with many of the same interventions used to support renal function in chronic kidney disease (CKD).
• Slowing the progression of CKD is the focus of interventions until stages 4 to 5. Appropriate management of acute tubular necrosis (ATN), blood glucose control in patients with diabetes, use of angiotensin-converting enzyme (ACE) inhibitors or AII blockers to reduce proteinuria, and aggressive management of hypertension are the primary foci. Because cardiovascular disease both is a risk factor for CKD and accelerates progression, interventions are also included to retard it.
• Nutritional needs for patients in renal failure include increased caloric intake as well as calcium and vitamin supplementation. Intake of fluids, phosphorus, potassium, sodium, and protein is usually restricted, depending on the underlying pathologic process and stage of the disease.
• Drug therapy in CKD is used to control hypertension, anemia, and some of the electrolyte and acid–base imbalances.
• Dialysis is used for some patients with ATN and for patients with CKD in stage 5 in order to remove metabolic wastes and correct fluid and electrolyte abnormalities.
• Kidney transplantation is a potential option for patients with ESRD. Kidney transplantation has been associated with a high degree of success.
• CKD is very prevalent in older adults. Although many are initiating dialysis in end-stage renal disease (ESRD), most will die of cardiovascular disease before reaching stage 5. The many comorbid conditions of this population require complex care.
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Brosnahan G, Fraer M: Management of chronic kidney disease: what is the evidence? Southern Med Assoc 103(3):222–230, 2010.
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Dowling TC: Prevalence, etiology, and consequences of anemia and clinical and economic benefits of anemia correction in patients with chronic
S U M M A R Y Renal failure can occur at any age. AKI has multiple causes that can be classified into one of three categories according to the physical location of the problem: prerenal, postrenal, or intrinsic. Each category has unique pathologic features and some variation in laboratory values. Intrinsic failure (ATN) is divided into three phases: prodromal, oliguric, and postoliguric. Interventions differ for each phase.
CKD is a progressive, irreversible process. It is characterized by stages of declining GFR producing increasing impairment in the ability of the kidney to maintain homeostasis. The clinical manifestations of CKD are determined by the degree of impairment of the kidneys’ normal functions.
Key aspects of care include pharmacologic management of fluid overload, electrolyte abnormalities, and metabolic wastes; nutritional management; dialysis; and renal transplantation.
A clear understanding of the pathophysiology related to renal dysfunc- tion is essential for any health care professional caring for patients in renal failure. Older adults with AKI, CKD, and ESRD add another layer of complexity to patient care. The impact that renal failure has on all other body systems presents many challenges.
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Rosner MH: Hemodialysis for the non-nephrologist. South Med J 98(8):785–791, 2005.
Stompór T, Olszewski A, Kierzkowska I: Can we prolong life of patients with advanced chronic kidney disease: what is the clinical evidence? Polish Arch Int Med 121(3):88–92, 2011.
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357:797–805, 2007. Aitken C, Carruthers L, Gall L, et al: Acute kidney injury: outcomes and
quality of care. Q J Med 2013. doi:10.1093/qjmed/hcs237. Basile DP, Anderson MD, Sutton TA: Pathophysiology of acute kidney injury.
Compr Physiol 2(2):1303–1353, 2012. doi:10.1002/cphy.c110041. Bonventre JV, Lang L: Cellular pathophysiology of ischemic acute kidney
injury. J Clin Invest 121(11):4210–4221, 2011. Couser WG, Remuzzi G, Mendis S, Tonelli M: The contribution of CKD to
the global burden of major noncommunicable disease. Kidney Int 80(12):1258-1270, 2011.
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Dirkes SM: Acute kidney injury: causes, phases and early detection. American Nurse Today 10(7):20–25, 2015.
Goldenberg I, Matetzky S: Nephropathy induced by contrast media: pathogenesis, risk factors and preventive strategies. Can Med Assoc J 172(11):1461–1471, 2005.
Kellum J, LeBlanc M, Venkataraman V: Clinical evidence concise: acute renal failure. Am Fam Physician 76(3):2007.
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Lameire N, Van Biesen W, Vanholder R: Acute renal failure. Lancet 365:417–430, 2005.
Madala ND: Acute renal failure in patients with chronic kidney disease. CME 25(8):395–398, 2007. Available at: www.ajol.info/index.php/cme/article/ viewFile/43804/27324. (Accessed 24 March 2012).
Needham E: Management of acute renal failure. Am Fam Physician 72(9):2005, 1739–1746.
Sabbahy ME, Vaidya VS: Ischemic kidney injury and mechanisms of tissue repair. Wiley Interdisc Rev Syst Biol Med 3(5):606–618, 2011.
Wang HE, Muntner P, Chertow GM, Warnock DG: Acute kidney injury and mortality in hospitalized patients. Am J Nephrol 35:349–355, 2012. doi:10.1159/000337487.
Willacy H: Acute on chronic renal failure, Patient.co.uk, 2010. Available at www.patient.co.uk/doctor/Acute-on-Chronic-Renal-Failure.htm. (Accessed 24 March 2012).
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kidney disease: an overview. Am J Health Syst Pharm 64(13 Suppl 8):S3–S7, 2007.
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Hedayati SS, Finkelstein FO: Epidemiology, diagnosis and management of depression in patients with CKD. Am J Kidney Dis 54(94):741–752, 2009.
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Marin E, Sessa WC: Role of endothelial-derived nitric oxide in hypertension and renal disease. Curr Opin Nephrol Hypertens 16:105–110, 2007.
Meyer TW, Hostetter TH: Uremia. New Engl J Med 357:1316–1325, 2007. Nanayakkara1 PWB, Gaillard CAJM: Vascular disease and chronic renal
failure: new insights. Neth J Med 68(1):5–14, 2010. National Institute of Diabetes and Digestive and Kidney Disease (NIDDK),
2013: Kidney failure: choosing a treatment that’s right for you. Available at http://kidney.niddk.nih.gov/KUDiseases/pubs/kustats/index.aspx: (Accessed 15 December 2015).
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29
Disorders of the Lower Urinary Tract Cheryl L. Brandt
K E Y Q U E S T I O N S • How do the pathophysiologic characteristics and management of
stress, urgency, and mixed incontinence differ? • What are the manifestations and management of overactive
bladder syndrome and painful bladder syndrome/interstitial cystitis?
• How are congenital abnormalities of the urinary collecting system detected and treated?
• What are the risk factors and clinical manifestations for bladder cancer?
• How are urethritis and cystitis prevented and managed? • How do stones in the lower urinary tract present clinically?
C H A P T E R O U T L I N E Lower Urinary Tract, 609
Functional Anatomy, 609
Physiology of Micturition, 610
Nervous System Innervation of the Lower Urinary Tract, 610 Mechanism of Micturition, 610
Diagnostic Tests, 611
Lower Urinary Tract Symptoms and Syndromes, 611 Incontinence, 611 Enuresis, 613 Overactive Bladder Syndrome, 613 Bladder Pain Syndrome/Interstitial Cystitis, 613
Neurogenic Bladder, 614 Congenital Disorders, 615
Primary Vesicoureteral Reflux, 615
Obstruction of the Ureteropelvic Junction, 616 Ureteral Ectopy, 616 Ureterocele, 616
Neoplasms, 617 Bladder Cancer, 617
Inflammation and Infection, 619 Urethritis, 619 Cystitis, 619
Obstruction, 622 Lower Urinary Tract Calculi, 622
Ureteral Calculi, 622 Bladder (Vesical) Calculi, 622
http://evolve.elsevier.com/Banasik/pathophysiology/
The lower urinary tract (LUT) encompasses several structures that together are responsible for the transport, storage, and elimination of urine from the body. These structures include the ureters, bladder, urethra, and associated urinary sphincters. The male prostate gland is anatomically located in this area, but is functionally involved in male reproduction; the role and disorders of the prostate gland are presented in Chapters 30 and 31, respectively.
In addition to LUT symptoms and syndromes, disorders of the LUT can generally be classified as congenital, neoplastic, infective, inflam- matory, or obstructive. These disorders are often interrelated. For instance, stasis of urine, which occurs with a variety of disorders, often leads to urinary tract infection (UTI). Pathologies of the LUT can give rise to infection of the kidney, pyelonephritis (see Chapter 27), and acute
postrenal kidney injury (see Chapter 28). LUT disorders can result in significant health problems that have tremendous physical, psychosocial, and economic ramifications for patients and their families.
LOWER URINARY TRACT The role of the LUT is to transport and store urine and facilitate its elimination through micturition.
Functional Anatomy Ureters collect the urine formed in the kidneys from the renal pelvises and transport it to the bladder. Urine movement from the kidneys to the bladder is due to the effect of gravity facilitated by peristaltic
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
610 UNIT VIII Renal and Bladder Function
though sympathetic fibers mainly control blood flow to the bladder and have a role in pain sensation (Fig. 29.1). Parasympathetic innervation of the urinary tract is supplied via the pelvic nerves, which exit the spinal cord at S2-S4; sensory branches detect stretch of the bladder wall, and motor branches stimulate reflex detrusor contraction. In other words, the bladder itself does not respond to voluntary control, but rather to neurologic reflexes designed to initiate bladder emptying. Injury or disease of the spinal cord in this region profoundly affects LUT function. Finally, the somatic nerve fibers of the peripheral nervous system innervate the external bladder sphincter via the pudendal nerve. Motor fibers enable voluntary control of the external bladder sphincter, permitting selective timing of urination.
Mechanism of Micturition The softness, pliability, mucosal secretions, and submucosal cushioning of the urethra help maintain a watertight seal, or “compression,” of the urethra. The internal sphincter is located at the proximal portion of the urethra, where convergence of the detrusor muscle fibers provides pressure to keep it closed. When the internal sphincter has normal tone, the bladder is prevented from emptying until the pressure in the body of the bladder rises above a specific threshold. The external sphincter is located at the distal end of the urethra, surrounded by a ring of skeletal muscle from the pelvic floor. This musculature provides the tension needed to maintain continence at normal resting bladder pressures.
Bladder emptying occurs as a result of both reflex and voluntary activities. Urine filling the bladder raises the internal bladder pressure and triggers stretch receptors (mechanoreceptors) in the bladder wall. Activation of these receptors sends afferent signals to the spinal cord
movement of the ureters. The bladder is a hollow, muscular reservoir for urine that expands to store it and then contracts to expel urine through the urethra. Urine storage depends on intact spinal reflexes. The process of micturition (voiding) involves both reflex and voluntary mechanisms, mediated by the micturition center in the pons. Voiding is a result of coordinated function of bladder mechanoreceptors, neurologic impulse transmission, bladder muscle contraction, and urethral sphincter relaxation. Anatomic integrity of the ureters and bladder, competent urethral sphincters, and an appropriately functioning nervous system are required for the lower urinary system to properly carry out its role.
Physiology of Micturition Micturition is often taken for granted but is actually a complicated process. Understanding the process begins with a review of the significant role the nervous system plays in controlling the functions of the LUT structures.
Nervous System Innervation of the Lower Urinary Tract The central, autonomic, and peripheral nervous systems are all involved in urinary elimination. The pontine micturition center coordinates relaxation of the internal sphincter and contraction of the bladder to enable urination, whereas the cerebral cortex primarily inhibits the process through conscious control of the external sphincter. Any disease process affecting these areas can interfere with urination. This includes such pathologies as Parkinson disease, multiple sclerosis, traumatic brain injury, or stroke.
The smooth muscle of the bladder is innervated by both the sym- pathetic and parasympathetic branches of the autonomic nervous system,
S4
S3
S2
S1
L5
L4
L3
L2
L1 Ureter
External urethral sphincter
External urethral orifice
Body
Urethra
Detrusor muscle
Internal urethral sphincter
Trigone
Ureteral opening
Pudendal
Sympathetics
Parasympathetics
Bladder neck
FIG 29.1 Bladder structure and innervation.
CHAPTER 29 Disorders of the Lower Urinary Tract 611
LOWER URINARY TRACT SYMPTOMS AND SYNDROMES Lower urinary tract symptoms (LUTS) are subjective indicators of a change in condition or disease of the LUT. LUTS, including incontinence and enuresis, may also be associated with pathologies affecting the central, autonomic, and peripheral nervous systems. Genitourinary syndromes marked by LUTS include overactive bladder and painful bladder syndrome.
Incontinence The International Continence Society (ICS) defines the symptom of urinary incontinence (UI) as the report of any involuntary urine loss. UI is prevalent among adults, affecting an estimated 30% of younger adults. The prevalence is higher in U.S. adults over age 65; greater than 50% of a noninstitutionalized sample of women and greater than 25% of a noninstitutionalized sample of men reported urinary leakage. Prevalence of daytime incontinence in children in the United Kingdom has been reported at 15% for 4.5-year-olds and 5% for 9.5-year-olds.
Pathogenesis. Continence requires both physiologic and cognitive capabilities. Physiologic requirements include an appropriately functional nervous system and intact bladder and urethral function. Cognitively, individuals must have the ability to react to bladder urges and be motivated to be continent. Any disruption in these capabilities can result in an inability to attain or maintain continence. UI is not a part of normal aging, but it may be a result of age-related changes in the function or structure of the LUT. Age brings about changes in the bladder, including altered sensitivity of urothelial sensory afferents, increased collagen deposition, enlarged space between myocytes, and changes in gap junctions. Bladder function is also affected; bladder capacity and detrusor contractility decrease and detrusor overactivity and residual urine volumes increase. Finally, decreased estrogen in postmenopausal women has an impact on fibers of the detrusor and urethral muscles.
UI has been classified by the ICS as urge, stress, and mixed incon- tinence. The etiologies and treatments vary, so identification of the type of incontinence is clinically important.
Urgency urinary incontinence (UUI) involves the involuntary leakage of urine along with or immediately after the sudden sensation of a need to urinate (urgency). This condition is most often due to an overactive detrusor muscle that suddenly contracts. Aging is known to increase the frequency of spontaneous involuntary detrusor contractions. Other contributing factors may include bladder infections that irritate the
followed by reflex return signals via parasympathetic motor fibers that stimulate detrusor muscle contraction, called micturition contractions. Usually, enough sphincter pressure to hold the urine in the bladder can be voluntarily generated until about 350 to 400 mL of urine has collected in the bladder. At this point an urgent sensation to void occurs. However, activation of the voiding centers in the pons and cerebral cortex of the central nervous system (CNS) also help inhibit the bladder from empty- ing, primarily by partially inhibiting micturition reflexes and contracting the external sphincter. At the appropriate time, abdominal muscles are voluntarily, contracted which further raises internal bladder pressure and triggers a renewed micturition contraction; simultaneous relaxation of the external sphincter permits voiding. If an individual is able to coordinate urination at a suitable location and desirable time, the individual is said to be continent.
Normal adult bladder capacity is 300 to 500 mL; the urge to void usually develops when 150 to 250 mL are present. With an average fluid intake, this typically results in a voiding pattern of every 4 to 5 hours, with no need to awaken at night in order to void. With aging, bladder capacity declines to 200 to 350 mL; urination becomes more frequent (every 3 to 4 hours), and awakening at night to urinate (nocturia) is common. Under normal circumstances, the adult bladder contains less than 50 to 100 mL after voiding. This volume of postvoiding urine is called residual urine. Certain pathologies are associated with incomplete bladder emptying and increased residual urine volumes.
Diagnostic Tests Several of the procedures presented in Chapter 26 are used to diagnose urologic disorders discussed in this chapter. Other, more specialized, diagnostic tests are often even more appropriate. A urinalysis is the simplest and least costly test that can provide a wealth of information. For the LUT, this test is primarily used in the diagnosis of infection.
Ultrasonography, which is painless, does not involve radiation, and provides excellent visualization of the urinary system, is a common nephrology diagnostic test. Cystography with contrast media instilled into the bladder may be required to yield more specific information about the bladder than can be obtained by ultrasound. Voiding cysto- urethrography (VCUG) involves placing a catheter in the bladder and then filling it with sterile, iodinated, dilute contrast material. The catheter is then removed, and the patient voids. Images of the bladder are taken before voiding to detect ureterocele or tumor, and images taken during voiding can identify reflux or urethral abnormalities. Radionuclide voiding cystography also requires catheterization but involves the use of a small amount of radioactive material. A technetium-99m–labeled radiopharmaceutical is instilled in the bladder through the catheter, followed by sterile normal saline to fill the bladder. Once the catheter is removed, images are taken with the bladder full and during voiding, but this procedure does not allow visualization of the urethra.
The term urodynamic testing is used for procedures associated with diagnosing voiding dysfunction. In urodynamic testing both the filling/ storage and voiding phases of urinary elimination are studied. There are multiple urodynamic tests and procedures, and the choice of tests is based on clinical presentation, typically beginning with the least invasive of the desired tests. The most common tests are uroflowmetry (noninvasive method of measuring characteristics of urine flow during voiding), cystometry (measurement of intrabladder pressure during filling and postvoid residual), urethral pressure profilometry (measure- ment of intraluminal pressure along the length of the urethra), and voiding pressure flow studies (invasive measurement of urine flow during micturition). Pelvic floor electromyelogram may also be done to identify pathologic processes underlying voiding dysfunction.
Diagnostic tests for bladder cancer range from cystoscopy for the detection of bladder tumors to computed tomography (CT) scans or
KEY POINTS • The lower urinary tract (LUT) transports and stores urine from the kidneys
and facilitates its elimination. • Bladder innervation is accomplished via autonomic and somatic nerves.
Stimulation of parasympathetic nerves from S1-S4 results in bladder contrac- tion and relaxation of the internal sphincter. The somatic pudendal nerve innervates the external bladder sphincter.
• Micturition requires central, autonomic, and peripheral nervous system functioning. It is a result of coordinated parasympathetic nervous system and voluntary actions.
• A variety of diagnostic tests are used in the diagnosis of LUT disorders.
magnetic resonance imaging (MRI) to identify muscle-invasive cancer. Urine tests for bladder cancer markers, such as bladder tumor antigen and nuclear matrix protein (NMP22), are used to monitor for tumor recurrence after treatment.
612 UNIT VIII Renal and Bladder Function
performance of exercises to strengthen pelvic muscles or more complex and include techniques with vaginal weights, pelvic floor electrical stimulation, and biofeedback. Bladder training incorporates education, scheduled voiding with systematic delay of voiding to conform with the schedule, and positive reinforcement.
Pharmacologic agents may be used to promote or inhibit physiologic activities associated with micturition, depending on the cause of incontinence. This may include anticholinergic agents (e.g., oxybutynin), vaginal or oral estrogen, and α-adrenergic blockers (e.g., prazosin, tamsulosin) or 5α-reductase inhibitors (e.g., finasteride) for men with bladder outlet obstruction. Mirabegron, a β3-adrenergic agonist, is useful in the management of UUI. The addition of drug therapy often increases the effectiveness of behavioral interventions. Injections with onabotulinumtoxinA are being used for detrusor overactivity; the toxin causes relaxation of the muscle.
Surgical procedures for incontinence, used if nonsurgical interventions are ineffective, vary depending on the underlying anatomic or physiologic problems. Several surgical options are available to treat urge incontinence in women. The anterior colporrhaphy involves the repair of a weakened anterior vaginal wall that has allowed the bladder to prolapse into the vagina. A colposuspension is performed by using sutures to tighten the muscles of the pelvic floor that support the uterus and bladder; the procedure may be performed via laparoscope. Sling procedures involve implanting strips of synthetic or natural material around the bladder neck and urethra to support urethral closure. Surgical options for men may include artificial urinary sphincter implantation for sphincter incompetence and placement of a perineal compression sling for postprostatectomy incontinence.
Incontinence that is not resolved by behavioral, pharmacologic, or surgical treatment may be managed by supportive approaches such as intermittent catheterization, indwelling catheterization, or use of incontinence undergarments. Each of these options creates the potential for further complications. UTIs are more likely with stasis of urine in
bladder lining and bladder outlet obstruction attributable to prostate enlargement. Additionally, urgency incontinence may result from CNS conditions (e.g., stroke, Parkinson disease, multiple sclerosis) in which damage to bladder contraction inhibitory pathways occurs. Finally, drugs that increase urine flow, such as diuretics and alcohol, can aggravate UUI. In cases in which a specific cause is not determined, urgency incontinence is said to be idiopathic.
Stress urinary incontinence (SUI) occurs when urine is involuntarily lost with increases in intraabdominal pressure. It is precipitated by effort or exertion, such as by lifting heavy objects, coughing, sneezing, or bending. Stress incontinence is thought to occur as a result of loss of pelvic muscle and/or fascial support of the bladder and urethra. Without this support, whenever there is an increase in intraabdominal pressure, the normal angle between the bladder and posterior urethra is disrupted, forces that support urethral closure are reduced, and urine is lost. Decreased estrogen availability with menopause also contributes by reducing urethral closing pressure. Age-related loss of pelvic floor muscle fibers decreases muscular support. Additional risk factors for stress incontinence include obesity, childbirth-related trauma, pelvic surgery and radiotherapy, and the presence of conditions such as diabetes or degenerative neurologic diseases that impair nerves innervating the structures involved in micturition.
Mixed urinary incontinence (MUI) is a combination of both stress and urge incontinence. It is common for these two types of incontinence to occur together, especially in older women.
The term overflow incontinence is applied when the bladder becomes so full that it leaks urine, or “overflows.” This phenomenon is more common in men, resulting when an obstructed urethra prevents the bladder from emptying normally, such as with an enlarged prostate gland. Some clinicians describe functional incontinence as incontinence related to physical or environmental limitations resulting in an inability to access a toilet in time. The urinary system may work well, but inac- cessible toilets, mobility disorders, cognitive dysfunction, or mental disabilities prevent normal or timely toilet usage. Finally, transient incontinence has a sudden onset and is due to potentially reversible conditions such as UTIs, constipation, or fecal impactions. Risk factors for UI are summarized in Box 29.1.
Diagnosis. Patients should be assessed for reversible issues affecting the function of the LUT. These include potential drug-induced effects, UTIs or obstructions, fecal impaction, overuse of alcohol or caffeine, and excess intake of fluid. Impaired cognitive function may be due to chronic illness, depression, or delirium. All disorders associated with cognitive or neurologic function (e.g., stroke, Parkinson disease) should be identified. Circumstances or conditions affecting mobility should also be acknowledged.
Patients may be asked to keep a bladder diary, recording the time, frequency, and volume of micturition, as well as incidents of incontinence. In addition to the physical examination, such diagnostic tests as residual urine measurement, filling cystometry studies, and pressure flow studies during voiding may be used to establish the diagnosis of incontinence.
Treatment. Transient incontinence is managed by finding and treating the cause. Health care workers are critical in managing functional incontinence by manipulating the environment to facilitate the patient’s timely access to the toilet to maintain what has been termed dependent continence.
Management of UUI, SUI, and MUI begins by addressing reversible contributing factors. Lifestyle changes such as losing weight, reducing caffeine intake, and avoiding constipation may be useful. Additional treatment may include behavioral, pharmacologic, and surgical interven- tions, depending on the cause of incontinence. Pelvic floor muscle training (PFMT), a behavioral intervention, is recommended for urge incontinence in both men and women. PFMT may be as simple as the
Risk Factors Immobility Impaired cognition Medications (e.g., diuretics) Morbid obesity Smoking Fecal impaction Delirium Environmental barriers to toileting High-impact physical activities Estrogen depletion Low fluid intake Pelvic muscle weakness Childhood nocturnal enuresis Pregnancy, vaginal delivery, or episiotomy
Pathologies Urinary tract infection Diabetes mellitus Diabetes insipidus Stroke Multiple sclerosis Parkinson disease Spinal cord injury Spinal cord defects
BOX 29.1 Risk Factors for Incontinence
CHAPTER 29 Disorders of the Lower Urinary Tract 613
However, its risk of cardiotoxicity, increased suicidality, and overdose mandates careful use in selected children. In children who remain enuretic after many months of standard treatment, additional diagnostic testing is recommended. Efforts to manage enuresis without treating an underly- ing pathology are likely to be unsuccessful.
Overactive Bladder Syndrome Overactive bladder syndrome (OAB) is a symptom syndrome character- ized by urinary urgency, often associated with increased daytime frequency and nocturia, though not necessarily with incontinence. Not all people with OAB experience urgency incontinence, but by definition all people with urgency incontinence have OAB. Among 20,000 U.S. residents who completed an Internet survey about their LUTS, over 35% reported OAB symptoms at least sometimes. Prevalence increased with advancing age and was higher in women compared with men. Another study of OAB prevalence among 10,000 ethnically diverse adults in the United States found an overall prevalence of OAB symptoms at least sometimes of 23.2%, with a higher prevalence in women and in African American men and women compared with Hispanic and white men and women. In children, the incidence of OAB peaks between ages 5 and 7.
Pathogenesis. Multiple factors are associated with OAB. Urgency is thought to be a result of involuntary detrusor muscle contractions, hypersensitivity of afferent nerves due to dysfunction of urothelial or interstitial cells in the mucosal layer of the bladder, or abnormal processing in the CNS of afferent signals from the bladder. The anatomic and physiologic changes of aging, including decreased compliance and capacity of the bladder, lead to increased risk. In addition to increasing age and female gender, diabetes is a risk factor for OAB. Conditions associated with OAB include chronic constipation, fecal incontinence, and poorer sexual health, especially when OAB includes incontinence.
Diagnosis and clinical manifestations. A diagnosis of OAB is established for most people by history, physical examination, and a urinalysis. Clinical manifestations typically include urgency, urinary frequency, urge incontinence, and nocturia. Other conditions that might cause these symptoms, such as obstruction of the bladder outlet or UTI, must be ruled out.
Treatment. First-line treatment for OAB includes behavioral therapies such as adopting a voiding schedule, pelvic floor muscle strengthening, limiting nighttime fluid intake, and reducing caffeine. Second-line pharmacologic treatments include antimuscarinic anticholinergics (e.g., tolterodine, solifenacin) and beta-3 agonists (e.g., mirabegron). Trans- dermal oxybutynin may also be useful. Of note, the cognitive (e.g., delirium) and gastrointestinal (e.g., constipation) side effects of anti- muscarinic agents can be especially troublesome in the older adult population. Third-line therapies, options when first- and second-line treatments have been ineffective, include onabotulinumtoxinA injections into the detrusor muscle and neural stimulation of the detrusor via peripheral nerve pathways using an implanted stimulator.
Bladder Pain Syndrome/Interstitial Cystitis Bladder pain syndrome (BPS), also called painful bladder syndrome, is a genitourinary pain syndrome in which suprapubic pain is experienced with bladder filling, along with other LUTS such as frequency, unac- companied by proven UTI or other painful condition. The syndrome is also called interstitial cystitis (IC). Other definitions of the syndrome specify that the pelvic pain must be of at least 6 months’ duration and be accompanied by at least one other LUTS. Urgency, dysuria, and dyspareunia may accompany the pain, which may worsen with consump- tion of certain foods and drinks such as alcohol- and caffeine-containing beverages, citrus juices and fruits, and hot peppers. Pain is often relieved with voiding. “Classic” IC has been described as a subtype of BPS, characterized by visible inflammatory lesions of the bladder mucosa
the bladder, as well as with continuous or intermittent catheterization of the normally sterile bladder. Catheterization is never an appropriate solution solely for caregiver convenience. Stasis of urine also increases the risk for bladder and renal calculi. Management of incontinence with incontinence undergarments predisposes patients to skin breakdown.
Enuresis Enuresis as defined by the International Children’s Continence Society means intermittent (discrete amounts) incontinence while asleep. Enuresis is a common childhood condition, twice as common in boys as in girls. An estimated 14% of 5-year-olds have enuresis, though the prevalence decreases with advancing age; enuresis typically spontaneously resolves. In monosymptomatic enuresis, the child has nocturnal incontinence but no other LUTS such as urgency, altered voiding frequency, and daytime incontinence. Nonmonosymptomatic nocturnal enuresis is diagnosed when the child has symptoms of urgency, frequency, or daytime incontinence in addition to nighttime enuresis. Primary nocturnal enuresis describes a child who has never achieved consistent nighttime continence, whereas secondary enuresis refers to enuresis that develops after a period of at least 6 months of dryness. Primary enuresis is most common.
Pathogenesis. Several pathophysiologic mechanisms are thought to contribute to enuresis. Some children exhibit nocturnal polyuria, linked in many cases to a decreased response to or deficiency in produc- tion of vasopressin (antidiuretic hormone [ADH]). Other children exhibit nocturnal overactivity of the detrusor muscle, which contributes to incontinence. Reduced nocturnal bladder function has been found to result in decreased nighttime bladder capacity. Finally, immature or abnormal sleep arousal mechanisms, postulated as a dysfunction of the bladder–brain connection arising from the pontine tegmentum (micturi- tion center), may explain why the child does not awaken.
The fact that parents and siblings of children with nocturnal enuresis also report a history of the problem has led to the establishment of a genetic contribution. Enuresis is associated with such conditions as constipation, fecal incontinence, attention-deficit hyperactivity disorder, and sleep disturbances.
Diagnosis. Clinical workup for enuresis includes a thorough history of elimination patterns via a bladder diary and a physical examination to identify gross anatomic abnormalities. Children should also be tested for comorbidities such as diabetes mellitus, constipation, developmental difficulties, and behavioral problems. Additional diagnostic tests, includ- ing urinalysis, flow cystometry, and urinary tract imaging, are warranted for children who present with nonmonosymptomatic nocturnal enuresis. Invasive diagnostic procedures are typically reserved for children sus- pected of having organic or neurologic abnormalities.
Treatment. Treatment for enuresis, not recommended before age 5, begins with education about appropriate daytime and bedtime voiding patterns as well as appropriate fluid intake and toileting patterns. This is sometimes termed urotherapy. If constipation is present, it is managed with fiber intake, physical activity, and stool softeners. Enuresis alarms, designed with a moisture sensor in the bed linen or nightclothes, arouse and/or condition children to contract pelvic muscles; alarm therapy may be appropriate if enuresis is infrequent.
Pharmacotherapy may be added if nonpharmacologic treatments are ineffective. Desmopressin, a vasopressin (ADH) analog, effects a full response in 30% of children and a partial response in 40%. Anti- cholinergics such as oxybutynin and tolterodine are sometimes used, often in combination with desmopressin, for children who have not responded to desmopressin alone. Urinary retention and constipation are side effects of anticholinergics that are worrisome in the setting of enuresis. Imipramine, a tricyclic antidepressant, may be effective in children refractory to urotherapy and other pharmacologic treatments.
614 UNIT VIII Renal and Bladder Function
NEUROGENIC BLADDER Neurogenic bladder is a broad classification of voiding dysfunction in which the specific cause is pathology that disrupts the nervous com- munication governing micturition. Patients with neurogenic bladder include those with CNS disorders (e.g., multiple sclerosis, Parkinson disease, stroke), disorders affecting the autonomic innervation of the bladder (e.g., spinal cord injury), and neuropathy of diabetes mellitus. The pathogenesis of the voiding dysfunction depends on the etiologic condition. Demyelinization of neurons and axonal degradation in multiple sclerosis are thought to affect detrusor function, resulting in detrusor overactivity with storage symptoms (e.g., UUI and frequency) or detrusor areflexia with voiding symptoms (e.g., hesitancy, slow stream, retention). The central neurodegeneration of Parkinson disease results in both storage symptoms and voiding symptoms. A spinal cord injury proximal to the sacral cord may cause detrusor overactivity (spasticity), whereas injury of the sacral cord or cauda equina may cause detrusor arreflexia. Oxidative stress due to hyperglycemia of diabetes mellitus is thought to alter detrusor structure and function, leading to voiding dysfunction.
Along with a history and physical examination, urodynamic tests and measurement of postvoid residual urine volume are useful to diagnose the voiding dysfunction of neurogenic bladder. Management of storage symptoms may include antimuscarinic medications and desmopressin. Injections of the detrusor with onabotulinumtoxinA, as well as sacral neuromodulation (stimulation), and, if more conservative measures fail, surgical procedures such as urinary diversion are also treatment options. If spontaneous voiding cannot be established, clean intermittent catheterization is preferred over the use of indwelling catheters to reduce the risk of UTIs.
and submucosa called Hunner ulcers. However, only an estimated 10% of people with BPS exhibit these ulcers.
BPS/IC is more prevalent in women, with a 5 : 1 ratio of females to males. Estimates of overall prevalence are 500 cases per 100,000 people worldwide. Less is known about the prevalence of BPS/IC in children and adolescents. This condition can have a serious impact on quality of life, interfering with work, daily activities, sleep, family life, and sexual activities.
Pathogenesis. The specific etiology of BPS/IC is unknown, and the pathophysiology is unclear, but a fundamental mechanism appears to be urothelial dysfunction. One theory is that an abnormal bladder glycosaminoglycan layer reduces protective mucous production, leading to increased permeability of the bladder wall and absorption of damaging urine components such as urea and potassium ions. An inflammatory response follows, with mast cell activation and histamine and other neurotransmitter release. Sensory afferents in the bladder are up- regulated, and previously silent C-fibers may become active, causing pain. Research is ongoing into the role of cytokines and chemokines in bladder inflammation, dysfunction, and pain. People with BPS are more likely to be diagnosed with other pain syndromes such as fibro- myalgia and with conditions such as inflammatory bowel disease and rheumatoid arthritis, suggestive of neurogenic and autoimmune mechanisms, respectively.
Diagnosis and clinical manifestations. Diagnosis of BPS/IC is by exclusion and is challenging due to the nonspecific nature of the syndrome and absence of specific diagnostic tests. The workup should include a history, physical examination, bladder diary, pain assessment, urinalysis, and a urine culture and cytology to rule out subclinical infection and bladder cancer. Cystoscopy and urodynamic studies are recommended only in complex cases; BPS/IC is diagnosed as a symptom- based syndrome after eliminating other pathologies.
Treatment. BPS/IC treatment strategy is typically multimodal, with no one therapy proving effective over time for most patients. Pain management is a key component. First-line treatments include patient education about the syndrome and self-management strategies, including adjusting fluid intake to manage the concentration and volume of urine, using local heat or cold application, avoiding foods and fluids that trigger pain, and relaxation of the pelvic muscle floor. Second-line treatments include manual physical therapy and pharmacologic management of pain with options including pentosan polysulfate, amitriptyline, cimetidine, and hydroxyzine. For people for whom first- and second-line therapies are ineffective, subsequent treatments may be selected from cystoscopy with hydrodistention, fulguration of Hunner lesions, intradetrusor injection of onabotulinumtoxinA, implantation of neurostimulation devices (e.g., sacral, pudendal), oral cyclosporine A, and, finally, major surgery such as cystectomy with urinary diversion as a last resort.
KEY POINTS • Neurogenic bladder is a broad classification of voiding dysfunction in which
the specific cause is a pathology that produces a disruption of neurologic communication governing micturition.
• Both storage (e.g., UUI, frequency) and voiding (e.g., hesitancy, slow stream, retention) symptoms may characterize neurogenic bladder.
• Pharmacologic, neuromodulation, and surgical options exist for managing storage symptoms, whereas clean intermittent catheterization is preferred for managing inadequate spontaneous voiding.
KEY POINTS • Lower urinary tract symptoms (LUTS) may be secondary to disorders of the
lower urinary tract (LUT), attributable to pathologies affecting the central, autonomic, and peripheral nervous systems, or associated with a wide variety of factors affecting control of micturition, including medications and access to toileting facilities.
• Urgency incontinence may be attributable to detrusor muscle overactivity, bladder infections that irritate the bladder lining, radiation therapy, tumors or stones in the urinary tract, or central nervous system (CNS) damage to inhibitory pathways (as would occur with stroke, dementia, Parkinson disease, and multiple sclerosis).
• Decreased pelvic muscle support of the bladder and urethra or intrinsic urethral sphincter deficiency results in stress incontinence.
• Mixed incontinence is a combination of both stress and urgency incontinence. • Bladder outlet obstruction may trigger overflow incontinence. • Functional incontinence is related to physical or environmental limitations
in reaching a toilet in time to void. • Treatment options for voiding dysfunction include behavioral, pharmaceutical,
and surgical interventions. • Enuresis is inappropriate wetting of clothing or bedding, with the term usually
reserved for nocturnal incontinence in children. Treatment for enuresis is typically behavioral modification with or without pharmacologic intervention.
• Overactive bladder syndrome (OAB) is characterized by urgency with or without incontinence. Prevalence is higher in women and older adults. The most common treatments are behavioral and pharmaceutical.
• Bladder pain syndrome/interstitial cystitis (BPS/IC) is a chronic condition consisting of bladder pain and often urgency, frequency, and dyspareunia when no other etiology can be identified. It is diagnosed based on this information. Treatment is multimodal and tailored to manage pain and maximize quality of life.
CHAPTER 29 Disorders of the Lower Urinary Tract 615
bladder fills, pressure within it increases against the muscle wall and closes the ureteral passageway. In the case of VUR, there is a shortened ureteral tunnel through the bladder wall, which results in lateral displace- ment of the valvular mechanism, rendering it incompetent. Urine is permitted to flow backward into the ureters, sometimes reaching the kidney. Impaired bladder dynamics may be a contributing factor to VUR; the prevalence reports of bladder dysfunction in children with VUR have ranged from 38% to 75%. Reflux may be bilateral or unilateral; the extent of reflux is graded from I to V (Fig. 29.2). Spontaneous resolu- tion of reflux occurs commonly, though it is more likely to occur with lower grades of reflux.
Reflux of urine may cause increased renal pelvis pressure. Additionally, migration of bacteria from nonsterile urine to the kidneys may result in pyelonephritis or renal scarring that can ultimately cause reflux nephropathy leading to hypertension or renal insufficiency.
Diagnosis and clinical manifestations. VUR may be discovered prenatally, during ultrasonography, when hydronephrosis is identified. It may also be identified during evaluation of infants and children with
CONGENITAL DISORDERS Primary Vesicoureteral Reflux Reflux of urine from the bladder to the ureter and renal pelvis, known as vesicoureteral reflux (VUR), is usually due to incompetence of the valvular mechanism at the ureter–bladder junction. Primary VUR is due to a congenital anatomic anomaly.
The incidence of vesicoureteral reflux in the general population of children is low, estimated at 0.4% to 1.8%. However, the incidence in infants and children with a history of febrile UTIs is much greater, estimated at 30%. More common in females, a genetic component is also present; as many as 34% of people with VUR have siblings with the condition. The specific mode of inheritance has not yet been identi- fied; dominant inheritance with variable penetration is hypothesized.
Pathogenesis. VUR is usually due to incompetence of the valvular mechanism at the ureterovesical junction. Normally, the ureters enter the bladder at an oblique angle and then continue for 1 to 2 cm under the bladder mucosa before exiting inside the bladder cavity. As the
Gross dilation of ureter, pelvis, and calyces
Grade V
Grade llGrade l
Grade lll Grade lV
Moderate dilation of ureter, pelvis, and calyces
Mild dilation of ureter and mild dilation of renal pelvis
Reflux into ureter, pelvis, and calyces with no dilation and normal calyceal fornices
Reflux into ureter only–no dilation
Calyx
Renal pelvis
Ureter
Malfunctioning valve
Functioning ureterovesicular valve
Bladder Urine
FIG 29.2 International classification of vesicoureteral reflux. (From James SR et al: Nursing care of children: principles and practice, ed 4, Philadelphia, 2013, Saunders, p 576.)
616 UNIT VIII Renal and Bladder Function
diagnosed UPJO, observation is considered most appropriate. Expectant management includes serial diagnostic tests to monitor renal function and degree of hydronephrosis. The intent of surgery is to relieve symptoms and/or maintain renal function. The timing of surgical intervention, when found to be necessary to correct UPJO, is controversial. Early surgical repair is usually warranted if function of the affected kidney decreases, in cases of bilateral obstruction, and in cases of congenital single kidney with obstruction. Ultimately, it is a clinical decision based on the degree of obstruction, a careful analysis of kidney function, and the overall health of the infant or child.
Pyeloplasty is the surgical reconstruction of the ureteropelvic junction. It usually involves removal of the stenosed area of the junction and anastomosis of the ureter and renal pelvis. Minimally invasive laparo- scopic techniques, including robotic-assisted approaches, are increasingly used and have yielded similar complication rates and lengths of hospital stay compared with open pyeloplasty.
Ureteral Ectopy An ectopic ureter is a ureter implanted caudal to the normal location of ureteral implantation on the trigone. Alternative or duplicate sites of ureter implantation predispose the patient to UTI and a potential reduction in renal function.
Pathogenesis. Ureters may implant anywhere along the route of migration of the mesonephric duct during fetal development; ectopic implantation results from delayed or failed separation of the ureteral bud from the duct. Ectopic ureters are significantly more common in females than in males. In males, the ectopy is most frequently found implanted in the bladder neck, seminal vesicle, and vas deferens. In females, ectopic ureters may be implanted in the urethra, uterus, vagina, or cervix.
Diagnosis and clinical manifestations. An ectopic ureter is often found in conjunction with other genitourinary pathologies, including duplicate ureters and duplex or nonfunctioning kidney. Ureteral ectopy may be suspected, as with other congenital urologic anomalies, with antenatal detection of hydronephrosis on maternal ultrasonography. Postnatally, the condition may be challenging to diagnose unless the ectopic ureter arises from a functioning kidney or part of a kidney (moiety). Renal ultrasonography, VCUG, and magnetic resonance urography may be useful for diagnosis.
The clinical manifestations of ureteral ectopy vary depending on the site of implantation. Infant females are likely to present with UTI, whereas older girls more commonly exhibit incontinence. Epididymitis, orchitis, or UTI may be the initial problem in males, who are less likely to experience incontinence because the ectopic implantation is typically located above the external sphincter.
Treatment. Accompanying UTIs are treated appropriately. Surgical alternatives vary according to the site of ureteral ectopy, the function of the affected kidney(s), and the presence of any other pathology. In the case of a single ectopic ureter, when the opposing kidney is normal, nephroureterectomy is the recommended course of treatment. If the involved kidney has adequate function, the ureter may be reimplanted in a more physiologically acceptable site. Heminephrectomy and ure- teropyelostomy are not uncommon. Laparoscopic techniques are increasingly used because of the reduced mortality and better visualization of the surgical field with minimally invasive procedures.
Ureterocele A ureterocele is a congenital cystic dilation (outpouching) of the distal end of the ureter. These cystic dilations are called intravesical or orthotopic ureteroceles when they are entirely within the bladder itself and extravesi- cal or ectopic when they extend into the neck of the bladder or the urethra. Ectopic ureteroceles are the more common form in the pediatric
recurrent febrile UTI. Finally, siblings of children with VUR may be screened for the condition. In addition to a history, physical examination, and urinalysis, renal ultrasound to evaluate the upper urinary tract and dimercaptosuccinic acid (technetium-99m-labeled dimercaptosuccinic acid) scan to assess for renal scarring are recommended. A VCUG is recommended for the neonate or infant with significant hydronephrosis on prenatal or early postnatal ultrasound.
Treatment. In nearly 80% of cases, reflux resolves spontaneously as the child grows. The factors predictive of spontaneous resolution are younger age at diagnosis, classification as grade I or II reflux, higher bladder capacity at the onset of reflux manifestations, and a history of prenatal hydronephrosis. This information is helpful in determining when and how to treat patients, given questions about safety and efficacy of continuous antibiotic prophylaxis and surgical interventions.
A conservative approach to VUR may consist of expectant manage- ment with antimicrobial therapy for acute UTIs; this strategy is appropriate for patients with low-grade VUR. Continuous antibiotic prophylaxis is an appropriate option for children with a history of UTI. Children who experience breakthrough UTIs despite continuous antibiotic therapy are candidates for invasive procedures. Endoscopic correction of reflux may be performed with subureteric injection of dextranomer/hyaluronic acid copolymer, a bulking agent that bolsters tissue around the valvular mechanism. Finally, laparoscopic and open surgical ureteral reimplantation procedures typically offer a high rate of reflux resolution.
Obstruction of the Ureteropelvic Junction Ureteropelvic junction obstruction (UPJO) is defined as a blockage (partial or complete) in urinary flow from the renal pelvis at the entry point of one or both ureters. It is diagnosed more often in males and more frequently presents unilaterally at the left ureter. Congenital UPJO is the most common diagnosis associated with antenatal hydronephrosis. The condition has an incidence of 10% to 30% among infants found to have hydronephrosis. An autosomal-dominant model of inheritance has been proposed; research is ongoing to identify the genetic abnormali- ties that give rise to congenital anomalies of the kidney and urinary tract, including UPJO. An increased incidence in premature infants and twins has been noted, as well as an increased incidence of other urologic abnormalities such as horseshoe kidney in conjunction with UPJO. Acquired UPJO may be due to urinary tract stones, postoperative or inflammatory strictures, or neoplasms of the ureters.
Pathogenesis. The exact etiology of UPJO remains unknown, but in the majority of cases, stenosis (narrowing) of the junction by either intrinsic or extrinsic factors is the cause of the obstruction. Excessive collagen in the muscle cells of the junction is a usual intrinsic source of UPJO, whereas compression from renal veins or arteries “crossing vessels” is a possible external cause. The result of intrinsic and extrinsic UPJO is inefficient ureter drainage leading to progressive dilation of the renal pelvis and hydronephrosis with risk of structural damage to the renal parenchyma.
Diagnosis and clinical manifestations. Increasingly, a UPJO diagnosis is made prenatally during maternal ultrasonography. Neonates with hydronephrosis attributable to UPJO frequently have elevated serum creatinine levels and reduced urinary output, but it is not common for renal failure to be present in neonates with either unilateral or bilateral UPJO. Other early signs and symptoms include a palpable flank mass in a newborn infant; abdominal, flank, or back pain; a UTI with fever; or hematuria without significant trauma. UPJO may also be asymptomatic and discovered incidentally on renal ultrasonography. A VCUG may be performed to rule out other conditions such as vesicoureteral reflux.
Treatment. Surgical intervention for UPJO has decreased in recent decades in favor of more conservative approaches. In the case of prenatally
CHAPTER 29 Disorders of the Lower Urinary Tract 617
Bladder Cancer Bladder cancer is the fifth most common cancer diagnosed in the United States (after breast, lung, prostate, and colorectal cancers). It accounts for 4.5% of all new cancer cases, with an estimated 74,000 new cases in 2015. An estimated 430,000 patients worldwide receive the diagnosis every year, with the highest incidence in the Middle East, North Africa, and Europe. Bladder cancer is more prevalent in males, older adults, and whites. The overall median age at diagnosis in the United States is 73 years, with 9 of 10 cases occurring in people older than 55 years of age. The 5-year survival rate for people with bladder cancer is 77.4%; the median age at death is 79 years. However, African Americans have a significantly lower 5-year survival rate. At diagnosis, about half of bladder cancer patients have in situ cancers, and about 35% have localized bladder cancer.
More than 90% of all cases of bladder cancer are urothelial (tran- sitional cell) carcinomas originating in the transitional epithelium, or urothelium. There are two subtypes of urothelial carcinomas; the majority exhibit a papillary appearance (slender projections into the bladder), with the remainder having a flat appearance. Bladder cancer is said to be noninvasive if it remains in the transitional (urothelial) cells; invasive cancer has spread into the lamina propria layer or even deeper into the bladder muscle. The flat subtype of urothelial lesions tends to be more muscle invasive and thus has a poorer prognosis.
Other types of bladder cancer are much less common. Squamous cell carcinoma of the bladder represents only approximately 1% to 2% of the overall cases in the United States. This type of bladder cancer is microscopically similar to skin cancer and is quite invasive. About 1% of bladder cancers are adenocarcinomas. These tumors, arising from glandular tissue, are also invasive in nature. Small cell bladder cancers account for less than 1% of all bladder cancers; these cancers arise from neuroendocrine cells. A very rare cancer called sarcoma originates in the muscle of the bladder.
Risk factors. Bladder cancer risk usually is divided into environmental and inherited classifications. Environmental risk factors for bladder cancer are shown in Box 29.2. Smoking is the greatest risk factor, increasing risk by 3.89 in men and 4.65 in women. Carcinogenic chemicals in cigarette smoke are inhaled, enter the bloodstream, and then are filtered and concentrated in the urinary tract. About half of the bladder tumors in men and women are attributable to smoking. Concurrent occupational exposure to carcinogens and smoking may increase bladder cancer risk synergistically. People with occupational exposure to aniline (an aromatic amine) textile dyes, hair dyes (especially for longer than 10 years), paint and leather, carpet, rubber, and cement are at increased risk for bladder cancer. Exposure to arsenic in water is a significant risk factor in some parts of the world. Chronic inflammation of the bladder by UTIs is associated with an increased risk of bladder cancer, especially
population. A ureterocele with a kidney that has just one ureter is called a single system ureterocele; duplex system ureteroceles are found with a kidney possessing two ureters. Duplex system ureteroceles are more common. Ureteroceles occur more often in females than in males (6 : 1 ratio) and almost exclusively in Caucasians.
Etiology and pathogenesis. It is most likely that the etiology of ureteroceles is complex rather than unified. There are multiple points in embryogenesis when ureteral development could go awry and ureterocele formation occur, often concomitantly with other anomalies of the kidney(s). Ureteroceles may be classified as simple structures when they are not associated with duplicate collecting systems, but the majority present as duplicate systems with ectopic implantation. They are infrequently bilateral. The small orifice of the ureter poses an obstruction in the collecting system and results in ureteral and renal calyx dilatation, facilitating reflux and infection. If the ureterocele is large, obstruction of the bladder outlet may occur.
Diagnosis and clinical manifestations. Ureteroceles are increasingly identified serendipitously during prenatal ultrasonography by the appearance of hydronephrosis and evidence of cystic dilatation. After birth, confirmation with further assessment is necessary. UTIs are the most common manifestation in infants. In addition to UTI, patients with ureteroceles may present with either urinary retention or UI if the bladder outlet is obstructed, ureteral calculus, hematuria, urosepsis, or a general failure to thrive.
Anatomically, ureteroceles present with significant variability, requir- ing a thorough history, physical examination, and diagnostic testing. Ultrasonography is recommended for detection of the ureteral dilatation. The structure and function of the urinary tract, including the presence of associated conditions such as VUR, are also evaluated with intravenous pyelograms, VCUGs, magnetic resonance urograms, and nuclear renal scans. In addition to determining the precise characteristics of the ureterocele, diagnostic test results assist in determining the most appropriate intervention.
Treatment. Treatment goals for ureterocele include controlling infection, preserving urinary tract function, maintaining urinary continence, and removing obstruction. Expectant management may be appropriate in select patients, particularly children without obstruction. Continuous antibiotic prophylaxis may be prescribed. Endoscopic ureterocele decompression by incision or puncture is recommended in the setting of infection or severe obstruction. Surgical procedures may be selected depending on multiple factors, including patient age and clinical condition, kidney function, and presence of obstruction or reflux. Depending on the anomalies found during diagnostic evaluation, the intervention may include uretero-ureterostomy, excision with reimplanta- tion of the ureter, or partial nephrectomy and ureterectomy. In an acutely septic patient, a percutaneous nephrostomy to drain the upper collecting system may be needed.
KEY POINTS • Congenital abnormalities of the bladder include misimplantation of ureters,
strictures, duplicate ureter, and ureterocele. • These disorders cause problems by obstructing normal urine flow and
predisposing to retrograde urine flow, urinary stasis, and secondary infection; treatments range from expectant management to surgical interventions.
Tobacco smoking (aromatic amines) Certain types of dyes, including hair, medical, and industrial dyes (aromatic
amines) Certain chemicals used in rubber tire production Certain pesticides that contain aromatic amines Certain chemotherapeutic agents (e.g., cyclophosphamide) Diesel exhaust (polycyclic aromatic hydrocarbons) Arsenic in drinking water Low fluid intake Pelvic radiation therapy
BOX 29.2 Environmental Risk Factors for Bladder Cancer
NEOPLASMS Primary cancers of the ureters or urethra are rare. Bladder cancer, however, is quite common.
618 UNIT VIII Renal and Bladder Function
bladder cancer. Examination of biopsied tissue, cells obtained during cystoscopy, and cells found in the urine is essential to determining the specific type and grade of the tumor. (See Chapter 7 for a discussion of staging and grading.) All of this information is used to guide the selection of the specific treatment approach (Fig. 29.3).
Treatment. Treatment protocols are based on the tumor’s features: the type of bladder cancer and its grade and stage. More aggressive treatment is needed for muscle-invasive cancers. Non–muscle-invasive tumors have a lower progression rate but tend to recur; they require lifelong surveillance and may require retreatment. The primary options are surgery, radiation therapy, chemotherapy, and immunotherapy. Treatment selection is evidence based, with available information continuously being updated. Surgery as the single treatment, or with other adjuvants, is the intervention for the majority of bladder cancers, especially early stage. The specific approach to surgery varies with the stage of the tumor. For non–muscle-invasive carcinoma, endoscopic TURBT with appropriate cystoscopic and cytologic follow-up is recom- mended. Adjuvant intravesical instillation of mitomycin C has been shown to reduce recurrence. Intravesical immunotherapy with Bacillus Calmette-Guérin (BCG) may be used for high-risk non–muscle-invasive bladder cancer.
If the tumor is at high risk for progression, unresponsive to BCG, or muscle invasive, more extensive surgical procedures are employed. Neoadjuvant chemotherapy may be given preoperatively to reduce tumor size and improve survival. Radical radiotherapy may also be offered. Surgical removal of the bladder (cystectomy), either partial or total, may be performed; a total cystectomy requires urinary diversion to provide for storage and elimination of urine. Urinary diversions typically involve the creation of a reservoir, using a portion of the intestine, into which the ureters are implanted. Urine is drained from the reservoir, often through a stoma created through the abdominal wall. However, substitute bladder reservoir (neobladder) procedures involve connecting the urethra to the reservoir, allowing the patient to void normally. In cases where the tumor is large or there are multiple bladder tumors, a radical cystectomy is performed, in which the bladder and surrounding nodes are removed; in men the prostate gland is also removed, and in women the uterus, ovaries, fallopian tubes, and part of the vagina are also often removed. Systemic chemotherapy may be an option for people with metastatic bladder cancer.
The prognosis for stage 0 (noninvasive papillary carcinoma or carcinoma in situ) is excellent, with a relative 5-year survival rate of 98%. As the tumor invades deeper into the bladder wall or metastasizes beyond the bladder, the survival rate declines. The 5-year relative survival rate for muscle-invasive (stage II) bladder cancer is 63% and drops to 15% for metastatic (stage IV) cancer. Risk of recurrence of bladder cancer is high, even for superficial malignancies; ongoing follow-up with periodic diagnostic tests is necessary.
the invasive squamous cell type. Other causes of inflammation, such as stones, have also been associated with the disease. Certain chemo- therapy agents (e.g., cyclophosphamide, ifosfamide) used in the treatment of other malignancies, as well as radiation therapy to the pelvis, increase the risk of bladder cancer. Low fluid intake is a risk factor for bladder cancer. A family history of bladder cancer increases a person’s risk, likely through inherited gene syndromes and/or shared exposure to environmental carcinogens. One heritable risk factor is a mutation of the retinoblastoma gene responsible for an infantile cancer of the eye that is associated with increased bladder cancer risk.
In children, the congenital anomaly of exstrophy of the bladder (bladder outside the abdominal cavity) may predispose to development of bladder tumors, particularly adenocarcinomas. Parasitic infections from schistosomiasis, prevalent in the Middle East and Africa (especially Egypt), have been associated with squamous cell carcinoma as a result of urine-borne carcinogens formed during the infectious process and irritation by the parasitic ova.
Pathogenesis. The pathways by which urothelial carcinomas develop differ by tumor type. Papillary non–muscle-invasive tumors are associated with activation of the cellular growth pathway involving Ras, a G-protein, and receptor tyrosine kinase. Other mechanisms, including alterations of the pathways involving retinoblastoma 1 (RB1) and tumor suppressor protein p53 (TP53), disrupt normal cell replication and produce muscle- invasive tumors.
Bladder cancer metastasis occurs directly through the bladder wall to adjacent organs (e.g., prostate, bowel, vagina, uterus) or via lymph nodes in the pelvis and abdomen. Once treated, tumors can recur at the original site, or an entirely new tumor may develop at another site. The sites of metastasis most commonly include the lymph nodes, liver, lungs, and bone. Specific details of the pathogenesis of cancer are found in Chapter 7.
Clinical manifestations. Painless hematuria is usually the initial sign of bladder cancer. However, in the early stages, both gross and microscopic hematuria are often intermittent, and hematuria is associated with numerous other urinary tract pathologies. Other manifestations related to bladder cancer include urinary frequency, urgency, and dysuria. But again, all these symptoms are seen with other conditions involving the urinary tract, including UTI. Because the signs and symptoms are so indefinite, early diagnosis of bladder cancer requires a thorough workup by the health care provider, especially in persons more than 40 years of age.
Diagnosis. There is insufficient evidence regarding routine screening for bladder cancer in asymptomatic adults to determine the balance of harm with benefit. In most cases, diagnostic evaluation for bladder cancer is initiated because of the development of one or more of the previously listed clinical manifestations. A thorough history may reveal risk factors for bladder cancer, or physical examination and diagnostic testing may indicate another etiology.
The recommended diagnostic test for suspected bladder cancer is cystoscopy, with biopsy of any questionable tissue and washings of free cells for cytologic examination. White light cystoscopy allows direct visualization of tumors. Transurethral resection of bladder tumors (TURBT) is recommended during cystoscopy to obtain samples of tumor and detrusor muscle as well as to resect visible tumors. Urine specimens may be tested for the presence of tumor markers. However, the sensitivity and specificity of available tumor markers vary widely; at this time, no tumor marker is reliable enough to replace cystoscopy. Additional imaging tests may include CT or MRI scans and fluorodeoxyglucose positron emission tomography CT to assist with staging, especially for muscle- invasive cancer. The stage of the malignancy is an important contributor to treatment decisions and aids in the determination of prognosis. The TNM (tumor, node, metastasis) staging system is commonly used for
KEY POINTS • Bladder cancer is the fifth most common cancer diagnosed in the United
States. • The risk of developing bladder cancer increases with age; smoking and
occupational exposure to carcinogenic chemicals are thought to be the main predisposing factors.
• The types of bladder cancer are differentiated by their tissue of origin and histologic appearance. About 95% of bladder tumors originate from the transitional epithelium (urothelium) lining the urinary tract.
• Bladder cancer is primarily manifested as hematuria. Frequency, urgency, and dysuria may also be present.
CHAPTER 29 Disorders of the Lower Urinary Tract 619
sexually transmitted infection (STI) in men. Other causative organisms of nonchlamydial nongonococcal urethritis include Mycoplasma genitalum and Trichomonas vaginalis. Postmenopausal women are at increased risk for irritation and inflammation of the urethra due to reduced estrogen levels; the urethra is an estrogen-dependent structure.
Inflammation of the urethra may lead to pain, dysuria, urethral discharge, and abscess, and if it is attributable to an infectious organism, it may progress to infective cystitis. Men may also experience epididymitis and prostatitis. Some people are asymptomatic; if the cause is an STI, they may not know they are infected until notified that their partner has an infection. If urethritis is due to infection, targeted pharmacologic therapy is indicated. Application of topical estrogen to the urethral opening helps maintain postmenopausal mucosal health.
Cystitis Cystitis, or inflammation of the bladder lining, may result from bacterial, fungal, or parasitic infections; chemical irritants; foreign bodies (e.g., stones); or trauma. By far the most common cause of cystitis—and the focus of this discussion—is bacterial infection.
UTIs are highly prevalent; they represent the most common bacterial infections seen in outpatient settings, with annual treatment costs at $2 to $3 billion in the United States alone. Only respiratory conditions prompt more pediatric office visits than cystitis. Uncomplicated UTIs are infections not associated with abnormalities in LUT anatomy or function, urinary catheterization, pregnancy, or diseases such as diabetes.
INFLAMMATION AND INFECTION Most inflammations of the LUT are due to infection. The normal defense mechanisms of the urinary tract are presented in detail in Chapter 27 with the discussion of pyelonephritis (infection of the kidney). UTIs are typically ascending in nature; they begin in the LUT and may progress to the kidney (upper urinary tract). By the time infection reaches the kidneys, the bladder and urethra are already infected. Involvement of the ureters does not seem to present with clinical manifestations.
Urethritis Urethritis is an inflammation of the urethra. It can be caused by infection, external irritants, and, in women, insufficient estrogen levels. Infection of the urethra may be due to a wide variety of organisms. The most common sexually transmitted causative organisms are Neisseria gonorrheae and Chlamydia trachomatis. Urethritis is the most commonly occurring
FIG 29.3 TNM staging of bladder tumors. (From Harshman LC et al: Diagnosis of bladder cancer. Surg Pathol Clin 2015;8(4):677-685, Elsevier.)
• The most frequently used invasive test in the diagnosis of bladder cancer is cystoscopy, with biopsy of any questionable tissue and washings of free cells for cytologic examination.
• Treatment protocols are based on the tumor’s features: the type of bladder cancer and its grade and stage. The primary options are chemotherapy, immunotherapy, surgery, and radiation therapy.
620 UNIT VIII Renal and Bladder Function
factors include urinary catheterization and estrogen depletion. Use of spermicidal agents with diaphragms, recent sexual intercourse, and recurrent UTIs also increase risk. UTIs in older adults are associated with increased risk of falls and sepsis. Investigation continues into the association between low-bacterial-count cystitis and detrusor overactivity, as well as between recurrent UTIs and bladder cancer.
Etiology and pathogenesis. Normally, bacteria are cleared from the bladder by the flushing and dilutional effects of voiding. The high urea concentration with the high osmolarity and low pH of urine act as natural barriers to invading pathogens. Additionally, the mucous layer lining the bladder, as well as the ability of urothelial cells to initiate an immune response, serve as host defenses.
Escherichia coli is responsible for 85% of community cases of bacterial cystitis. The microbial characteristics of E. coli promote its adherence to bladder epithelium, colonization, and ability to evade the host’s immune response while invading host cells and replicating within them, creating intracellular bacterial communities that are released during epithelial cell apoptosis and invade more cells.
Clinical manifestations. The majority of patients with cystitis experience an acute onset of frequency, urgency, and dysuria; pain may be present in the suprapubic area. The urine may appear pink because of hematuria or cloudy as a result of the infectious organism. Infants and small children may exhibit fever, irritability, poor feeding, vomiting, diarrhea, and lethargy. Additional signs of UTI in older adults include delirium and new-onset incontinence. Untreated cystitis may lead to renal damage secondary to ascension of the infection to the upper urinary tract. Therefore prompt intervention is essential.
Diagnosis and treatment. Screening for suspected UTI is often performed using a clean-catch urine specimen and a simple nitrite and leukocyte esterase dipstick test. Nitrites are present in UTI because many urinary pathogens produce enzymes that reduce nitrates to nitrites; the presence of leukocyte esterase is indicative of pyuria (white blood cells in the urine). The dipstick test is quite sensitive in detecting UTIs. Febrile infants and small children may need to be catheterized to obtain a reliable urine specimen. A urine culture is not always necessary for the diagnosis of UTI in adults; uncomplicated infections, caused by common organisms, may be diagnosed on the basis of symptoms and a positive dipstick test. Urine culture is recommended in situations in which the patient has manifestations suggesting pyelonephritis, fails to respond to empirical pharmacologic therapy, or presents with atypical symptoms. Unresolved infections are those in which bacteriuria remains after the initial treatment. Under these circumstances, cultures precisely identify organisms and permit targeted pharmacologic therapy.
Men, children, and those women with recurrent infections, unresolved infections, atypical manifestations, or other problems previously described have complicated UTIs and require physical examination and diagnostic testing. Recurrent infections in men should trigger a urologic examination that may include endoscopy and a CT scan.
Treatment algorithms for acute cystitis and recurrent UTIs are shown in Figs. 29.4 and 29.5, respectively. Acute, uncomplicated UTIs in women with no anatomic anomalies of the urinary tract, with no recent history of cystitis, and with no urologic comorbidities may be treated empirically with a 3-day course of trimethoprim-sulfamethoxazole or a 5-day course of nitrofurantoin. Complicated cystitis is managed with a longer course of antibiotics, 7 to 10 days or longer depending on causative organism, comorbidities, and whether it is an unresolved or recurrent infection. Antibiotic therapy in pregnant women must be carefully chosen to avoid fetal harm. Routine follow-up urine culture and sensitivity are not typically necessary for uncomplicated UTI but may be warranted with complicated UTIs to ensure antibiotic effectiveness. Women with recurrent cystitis may be candidates for several months of antibiotic prophylaxis; women with postcoital recurrence may benefit from self- administering a single dose of antibiotic after sexual intercourse.
Complicated UTIs are those in which the host is immunocompromised or has genitourinary abnormalities or that are caused by multidrug- resistant bacteria. Incidence of UTI is much higher in women and girls, with a 4 : 1 ratio of occurrence in girls compared with boys. An estimated 11% of women report having had a UTI each year. A shorter urethra, as well as a colonization route from both the rectum and the vagina to the urethra, is thought to explain the increased rate of infections in women. Prostatic secretions, which are antibacterial, inhibit cystitis in men younger than 50 years. The incidence of complicated UTIs is rela- tively higher in men, however, especially in older adult males. UTIs are common occurrences during pregnancy and have been associated with an increased risk of premature delivery. Recurrent UTIs are repeated infections within a short period after verified resolution of the earlier infection. Approximately one-quarter of young women with a bladder infection experience a recurrent UTI within 6 months of their initial UTI. The shorter the time frame between the initial and recurrent UTI, the greater the likelihood of a same-strain recurrent infection. Rates of bacteriuria significantly increase with age.
Risk factors are listed in detail in Box 29.3. They include factors that reduce the flow of urine such as decreased fluid intake and bladder outlet obstruction or other conditions that impair bladder emptying or cause urinary retention (e.g., neurogenic bladder). Additional risk
From Lewis S et al: Medical-surgical nursing: assessment and management of clinical problems, ed 10, St Louis, MO, 2017, Elsevier.
Factors Increasing Urinary Stasis Intrinsic obstruction (stone, tumor of urinary tract, urethral stricture, BPH) Extrinsic obstruction (tumor, fibrosis compressing urinary tract) Urinary retention (e.g., neurogenic bladder) Renal impairment
Foreign Bodies Urinary tract calculi Catheters (indwelling, external condom catheter, urethral stent, nephrostomy
tube, intermittent catheterization) Urinary tract instrumentation (cystoscopy)
Anatomic Factors Congenital defects leading to obstruction or urinary stasis Fistula (abnormal opening) exposing urinary stream to skin, vagina, or fecal
stream Shorter female urethra and colonization from normal vaginal flora Obesity
Factors Compromising Immune Response Aging Human immunodeficiency virus infection Diabetes mellitus
Functional Disorders Constipation Voiding dysfunction with detrusor sphincter dyssynergia
Other Factors Pregnancy Multiple sex partners (women) Use of spermicidal agents, contraceptive diaphragm (women), bubble baths,
feminine sprays Poor personal hygiene Habitual delay of urination (“nurse’s bladder,” “teacher’s bladder”)
BOX 29.3 Risk Factors for Cystitis
BPH, Benign prostatic hyperplasia.
CHAPTER 29 Disorders of the Lower Urinary Tract 621
In children, administration of antibiotics for 7 to 14 days is the recommended treatment, with the selection of drug made according to sensitivity of the infecting organism. UTIs in children may be indicative of an underlying pathologic process (e.g., VUR, UPJO) and warrant additional urologic evaluation. There is a higher incidence of asymp- tomatic bacteriuria in older adult women. Bacteriuria without clinical signs of infection does not warrant antibiotic treatment. Antibiotic therapy for UTI in older adults must be prescribed with attention to underlying renal function and risk for interaction with other medications being taken. Finally, all patients will benefit from education on UTI prevention, including maintaining an adequate fluid intake.
New antimicrobial therapy
History Urinalysis
No pyuria, bacteriuria History characteristic of urethritis or vaginitis
Appropriate therapy
Symptoms and Signs of Cystitis (No Fever or Flank Pain)
Pyuria, bacteriuria
No Yes
NoYes
NoYesRepeat culture on and off therapy
Recurrent
Urologic evaluation
Infection resolved
Culture
Risk or complicating factors
Antimicrobial therapy
Antimicrobial therapy
Patient symptomatic on therapy
Negative
No further assessment
PositivePositive
Unresolved
Antimicrobial susceptibility testing
Patient compliant
Bacteria resistant Bacteria susceptible
Symptoms and/or urinalysis off therapy
Culture on therapy
Isolated
FIG 29.4 Management of acute cystitis. (From Wein AJ et al, editors: Campbell-Walsh urology, ed 11, St Louis, MO, 2016, Elsevier.)
History Urinalysis
Symptoms of Recurrent Urinary Tract Infection (No Fever or Flank Pain)
Culture
No
Related to coitus
Yes
Risk factors
YesNo
Antimicrobial therapy
Repeated infections: same species at short intervals
Removal of infectious focus
Postcoital prophylaxis
Self-start therapyLow-dose prophylaxis
NoYes
ReinfectionBacterial persistence
Urologic evaluation
Negative (history characteristic of urethritis, vaginitis,
interstitial cystitis, etc.)
Positive
Appropriate therapy
FIG 29.5 Management of recurrent UTI. (From Wein AJ et al, editors: Campbell-Walsh urology, ed 11, St Louis, 2016, Elsevier.)
KEY POINTS • Urethritis is inflammation of the urethra. It is most often due to infection;
common causative organisms are transmitted sexually. Urethritis may also be due to external factors such as frequent catheterizations or poor personal hygiene. Treatment depends on the cause.
• Cystitis is an inflammation of the bladder lining that may be due to infection, chemical irritants, stones, or trauma. Most cases have an infectious etiology.
• Factors predisposing to cystitis include female gender, increased age, catheterization, diabetes mellitus, bladder dysfunction, and any disorder causing urinary stasis. Manifestations include frequency, urgency, dysuria, possible suprapubic pain, and cloudy urine, although the infection may be asymptomatic. Most women with uncomplicated cystitis are treated empiri- cally based on symptoms and positive dipstick test. More complicated situ- ations, as well as cystitis in men and children, may require urine culture and/or further assessment.
• Symptoms of cystitis in older adults may be atypical and include confusion and new-onset incontinence. Antibiotic treatment for symptomatic cystitis in the elderly should be managed with close drug monitoring to avoid toxicity. Asymptomatic bacteriuria in the elderly should not be treated with antibiotics.
622 UNIT VIII Renal and Bladder Function
therapeutic and preventive interventions for urinary tract calculi are presented in Chapter 27.
Bladder (Vesical) Calculi Bladder calculi represent only about 5% of urinary tract stones in Western countries; the incidence has decreased in recent decades. Bladder stones have been classified into three categories. Migrant vesical calculi form in the upper urinary tract and migrate to the bladder. Primary bladder calculus formation occurs in the bladder absent of underlying pathology. More common in children, the etiology appears to be a combination of metabolic (low urinary phosphate, increased calcium oxalate, uric acid, and ammonia excretion) and nutritional (vitamin and mineral deficiencies, protein-poor diet) factors. Primary bladder stones tend to be composed of uric acid or calcium oxalate. Finally, secondary bladder stones arise in association with a range of conditions, including bladder outlet obstruction with urinary stasis (e.g., benign prostatic hyperplasia), neurogenic bladder due to spinal cord injury, chronic bladder infection, and foreign bodies in the bladder. There is evidence that bladder outlet obstruction is a causative factor in the majority of secondary bladder calculi.
Some patients with bladder stones are asymptomatic; those with symptoms may experience dysuria, suprapubic pain, and urinary hesi- tancy. A stone in the bladder may irritate the urothelium and result in hematuria; once the bladder neck or urethral orifice is reached, manifesta- tions of obstruction may appear. Diagnostic tests are similar to those for calculi in other segments of the urinary tract. Treatment includes antimicrobial therapy for infection. Stone expulsion is often spontaneous; stones causing obstruction pose a risk for postrenal acute kidney injury and require prompt intervention. Stone removal procedures include shockwave lithotripsy, transurethral lithotripsy using ultrasonic or laser techniques, percutaneous cystolithotomy, and open cystolithotomy for stones ≥4 cm. The choice of procedure depends on patient and calculus characteristics.
OBSTRUCTION Obstruction of the LUT may develop when a stone obstructs urine transport. Stones in the LUT produce some manifestations that are similar to stones formed and lodged in the kidney.
Lower Urinary Tract Calculi Stones, or calculi, usually form in the kidneys (renal calculi or nephro- lithiasis). Renal calculi are discussed in Chapter 27. The term urolithiasis is used for stones forming anywhere in the urinary tract, primarily in the kidney or ureters, as well as those that form or travel into the ureters, bladder, or urethra. The manifestations of stones in the ureters and bladder vary somewhat from those associated with kidney stones, but the risk factors, stone composition, diagnostic tests, and treatment aspects are essentially the same. Refer to Chapter 27 for a detailed discussion of these topics. If diagnosis and treatment are not completed in a timely manner, the patient is at risk for the development of postrenal acute kidney injury (Chapter 28).
Ureteral Calculi Calculi in the ureters are usually those that were able to pass from the kidney through the ureteropelvic junction, as opposed to having formed in the ureter. In many cases, ureteral stones are small, pass easily through the ureters, and cause no clinical manifestations. Calculi with a diameter of ≤5 mm have an estimated 68% probability of being spontaneously expelled. The ureteropelvic and ureterovesical junctions are locations at which larger calculi may become lodged. When a larger stone becomes wedged in the ureter, manifestations are those characteristic of renal calculi. Ureteral stretching and spasm contribute to pain that is termed ureteral colic, a sharp, spasmodic pain experienced in the flank area, possibly radiating into the umbilical region. When the stone approaches the distal portion of the ureters, the pain may continue to be sharp in quality but intermittent in nature. Alternatively, the pain may increase, with radiation into the groin region, testicles, or labia. Irritation of the ureters may result in hematuria. Manifestations associated with ureteral colic include tachycardia, tachypnea, diaphoresis, nausea, and vomiting.
The recommended initial diagnostic procedure is CT of the abdomen and pelvis without contrast; ultrasound color Doppler may be used for pregnant women. Ureteral stones less than 1 mm in diameter with no evidence of accompanying sepsis warrant observation with pain management while waiting for spontaneous passage. However, failure of the stone to move or unrelenting pain are indications for stone removal. Medical expulsion therapy using α1-adrenergic antagonists such as tamsulosin may facilitate passage of stones. These drugs decrease ureteral muscle tone and decrease the frequency of peristalsis, relaxing the ureteral wall. Larger stones (>10 mm) may require stone removal; shockwave lithotripsy and ureteroscopy are effective treatments for both adults and children. Percutaneous ureteroscopy may be used for larger impacted stones. Either laparoscopic or open surgical removal of stones may be used in cases of first-line treatment failure. Additional
KEY POINTS • Ureteral calculus is most often due to stones traveling from the kidney. • Manifestations of ureteral calculus include colicky pain; associated signs
and symptoms may include hematuria, tachycardia, tachypnea, diaphoresis, nausea, and vomiting.
• Bladder calculi may be migrant or form in the bladder as primary or secondary stones.
• Manifestations of bladder stones are often limited to dysuria and pain; hematuria is possible. Obstructive signs and symptoms will present if stones obstruct the bladder neck or urethral orifice.
• Ureteral and bladder calculi are similar to nephrolithiasis in terms of risk factors and stone characteristics. If infection is present, it is treated with appropriate antimicrobials. Several interventions are available for stones that do not pass spontaneously.
Disorders involving the LUT are quite common. In adults, the most prevalent pathologic conditions are infections, incontinence and overac- tive bladder syndrome, malignancies, and urinary stones. Incontinence as a result of bladder dysfunction affects millions of adults. The prevalence of incontinence increases with age and is more common in women than in men. However, incontinence is not a result of the normal aging process, and patients should be urged to seek evaluation and treatment. Behavioral, pharmacologic, and surgical approaches may be used to
manage voiding dysfunction. IC/PBS is a chronic condition consisting of bladder pain and a variety of other manifestations typically associated with other bladder pathologies but with no other identifiable pathology. Treatment is individualized and multimodal. In the United States bladder cancer is the fifth most common type of cancer in adults. The primary clinical manifestation of bladder cancer is hematuria. Treatment is based on stage, grade, and type of cancer. Interventions include surgery, radiation, and chemotherapy.
S U M M A R Y
CHAPTER 29 Disorders of the Lower Urinary Tract 623
as the child ages. Before resolution, close medical management is neces- sary to prevent upper UTI and kidney damage.
Stones in the LUT usually arrive there after being formed in the kidney. Risk factors and treatment are much the same as those for nephrolithiasis; however, manifestations of calculi in the ureters or bladder differ.
LUT infections are common; they require appropriate treatment to prevent ascending infection and kidney involvement. Both childhood UTIs and hydronephrosis should trigger more detailed urologic evaluation to rule out congenital disorders such as UPJO, ectopic ureters, ureterocele, and VUR. VUR is the most prevalent congenital LUT disorder. It predisposes children to UTIs, which can result in kidney scarring and permanent renal impairment. Most cases of VUR resolve spontaneously
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American Urological Association (AUA). Pediatric urinary tract infections. Available at https://www.auanet.org/education/pediatric-urinary-trac t-infections.cfm. Updated June 2012. Accessed 11 January 2016.
Arlen AM, Cooper CS: Controversies in the management of vesicoureteral reflux, Curr Urol Rep 2014;16:64. doi:10.1007/s11934-015-0538-2.
Chowdhary SK, Kandpal DK, Sibal A, et al: Management of complicated ureteroceles: different modalities of treatment and long-term outcome, J Indian Assoc Pediatr Surg 19(3):156-161, 2014.
Chrysanthopoulou EL, Doumouchtsis SK: Challenges and current evidence on the management of bladder pain syndrome, Neurourol Urodyn 33:1193-1201, 2014.
Dinis S, de Oliveira JT, Pinto R, et al: From bladder to systemic syndrome: concept and treatment evolution of interstitial cystitis, Int J Womens Health 7:735-744, 2015.
DiRenzo D, Ellsworth PI, Caldamone AA, et al: Transurethral puncture for ureterocele – which factors dictate outcomes?, J Urol 184:1620-1624, 2010.
Figuera VH, Chavhan GB, Oudjhane K, et al: Utility of MR urography in children suspected of having ectopic ureter, Pediatr Radiol 44:956-962, 2014.
Ginsberg J: The epidemiology and pathophysiology of neurogenic bladder, Am J Manag Care 19:S191-S196, 2013.
Gonzales EJ, Arms L, Vizzard MA: The role(s) of cytokines/chemokines in urinary bladder inflammation and dysfunction, Biomed Res Int 2014; doi:10.1155/2014/120525.
Heinlen JE, Manatt CS, Bright BC, et al: Operative versus nonoperative management of ureteropelvic junction obstruction in children, Urology 73:521-525, 2009.
Jaiman S, Ulhoj BP: Bilateral intravesical ureterocele associated with unilateral partial duplication of the ureter and other anomalies, APMIS 118:809–814, 2010.
Karnak I, et al: Prenatally detected ureteropelvic junction obstruction: clinical features and associated urologic abnormalities, Pediatr Surg Int 24:395–402, 2008.
Kirschner-Hermanns R, Daneshgari F, Vahabi B, et al: Does diabetes mellitus-induced bladder remodeling affect lower urinary tract function?:ICI-RS 2011, Neurourol Urodyn 31:359-364, 2012.
Knudson MJ, Austin JC, McMillan ZM, et al: Predictive factors of early spontaneous resolution in children with primary vesicoureteral reflux, J Urol 178:1684-1688, 2007.
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Martin E, Sheaves C, Childers K: Underlying mechanisms and optimal treatment for interstitial cystitis: a brief overview, Urol Nurs 35(3):111-116, 2015.
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American Urological Association (AUA) and European Association of Urology (EAU). 2007 guideline for the management of ureteral calculi, 2007. Available at http://www.auanet.org/common/pdf/education/ clinical-guidance/Ureteral-Calculi.pdf. American Urological Association. Accessed 12 January 2016.
Bender LC, Dubinsky TJ: The impacted ureteral stone, Ultrasound Q 28:235-237, 2012.
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Silverman JA, Schreiber HL, Hooton TM, et al: From physiology to pharmacy: developments in the pathogenesis and treatment of recurrent urinary tract infections, Curr Urol Rep 14:448-456, 2013.
Vermeulen SH, Hanum N, Grotenhuis AJ, et al: Recurrent urinary tract infection and risk of bladder cancer in the Nijmegen bladder cancer study, Br J Cancer 112:594-600, 2015.
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626
UNIT IX Genital and Reproductive Function
Male Genital and Reproductive Function Marvin Van Every
K E Y Q U E S T I O N S • What is the role of Sertoli cells in spermatogenesis? • What is the function of Leydig cells? • Which branch of the autonomic nervous system is responsible for
penile erection? Ejaculation? • Which genitourinary structures develop embryologically from the
wolffian ductal system in males?
• How do the hypothalamic-pituitary gonadotropic hormones influence male reproductive function?
• How do the processes of capacitation and acrosome reaction affect the fertilization process?
C H A P T E R O U T L I N E Anatomy, 626
Upper Genitourinary Tract, 626
Lower Genitourinary Tract, 627
Bladder, 627 Urethra, 628
Auxiliary Genital Glands, 628
Prostate, 628 Seminal Vesicles, 629 Bulbourethral Glands, 629
External Genitalia, 629
Scrotum, 629 Testes, 629 Epididymis and Ductus Deferens, 630 Penis, 631
Embryology, 632 Nephric System, 632
Vesicourethral Unit, 633
Gonads, 633
Genital Duct System, 633
External Genitalia, 633
Male Reproductive Physiology, 633 Hypothalamic-Pituitary-Testicular Axis, 633
Spermatogenesis, 637
Anatomy of Spermatozoa, 637
Transport of Spermatozoa, 637
Erection, Emission, and Ejaculation, 639 Capacitation, 639 Acrosome Reaction, 639
This chapter provides a foundation for comprehending male genital and reproductive disorders, which are presented in Chapter 31. The anatomy and embryology of the male genitourinary tract—those organs involved in the processes of sexual reproduction and elimination of nitrogenous wastes—will be presented first. Because these organs are derived from common embryologic structures, the anatomy and embryology of the male genitalia and urinary system will be emphasized, and the differences in embryologic development between males and
females will be considered when pertinent. The remainder of this chapter will deal with the physiologic processes of male reproduction.
ANATOMY Upper Genitourinary Tract The upper genitourinary tract consists of the kidneys and ureters. The kidneys receive their blood from the renal arteries, which arise directly
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
30
http://evolve.elsevier.com/Banasik/pathophysiology/
CHAPTER 30 Male Genital and Reproductive Function 627
Lower Genitourinary Tract Bladder The bladder is a hollow muscular organ that serves as a reservoir for urine. The adult bladder normally has a capacity of 450 to 500 mL. When empty, the bladder lies behind the pubic symphysis and is mainly a pelvic organ. With overdistention or chronic urine retention, the abdomen may bulge, allowing easy palpation of the bladder in the suprapubic region.
The ureters enter the bladder posteroinferiorly. The ureteral orifices are situated on a crescent-shaped ridge and are approximately 2.5 cm apart. The triangular area demarcated by this interureteric ridge and bladder neck is called the trigone (Fig. 30.2). As will be discussed later in the chapter, the trigone has a different embryologic origin from the rest of the bladder body, or fundus. The trigone is composed of meso- derm, and the fundus is composed of endoderm.
In males, the bladder lies anterior to the seminal vesicles, vasa deferentia, ureters, and rectum. The dome and part of the posterior bladder surfaces are covered by peritoneum and are thus in close proximity to the small bowel and the sigmoid colon. The neck of the bladder, which is the most inferior part, leads to the urethra. In males, the prostate lies between the bladder and the muscle layers of the pelvic floor that composes the urogenital diaphragm.
The arterial blood supply of the bladder comes from the superior, middle, and inferior vesical arteries, which originate from the anterior division of the hypogastric artery. Venous drainage occurs by a rich plexus of veins that surround the bladder and ultimately drain into the hypogastric veins.
The bladder and urethra receive their nerve supply from both the sympathetic and the parasympathetic divisions of the autonomic nervous system. The sympathetic fibers, originating mainly from the lower thoracic and upper lumbar segments (T11–T12 and L1–L2), innervate the bladder and urethra as the hypogastric nerves. These sympathetic fibers are distributed more densely in the bladder base and proximal end of the urethra than in the bladder dome. The sympathetic nerves facilitate storage of urine. Studies have revealed differences in the bladder muscle receptors, with cholinergic receptors concentrated in the fundus
from the aorta. They are usually solitary but will at times be duplicated. The ureteral blood supply is derived from multiple sources. The renal pelvis and upper part of the ureter receive blood from branches of the renal artery. The arterial blood supply of the middle ureter segment comes from the internal spermatic artery (gonadal artery), and the lowermost ureter sections receive blood from the branches of the common iliac, internal iliac, and vesical arteries (Fig. 30.1). The veins of the renal pelvis and ureter are usually paired with the arteries.
Renal
Gonadal
Aorta
Common iliac
Internal iliac Superior vesical Uterine
Middle rectal Vaginal Inferior vesical
FIG 30.1 Sources of ureteral blood supply. (From Wein AJ et al, editors: Campbell-Walsh urology, ed 10, Philadelphia, 2012, Saunders.)
Prostate
Membranous urethra Opening of ejaculatory duct
Prostatic utricle
Bladder neck
Orifice of ureter
Interureteric ridge
Anterior wall of bladder
Peritoneum Urachus
Ureter
Trigone
Prostatic urethra
Bulbourethral gland
Bulbus penis
Seminal vesicle
Ductus deferens
Posterior wall of bladder
ANTERIOR POSTERIOR
FIG 30.2 Anterior and posterior views of the prostate gland and related structures. The triangular area demarcated by the interureteric ridge and the bladder neck is the trigone. (From Black JM et al: Medical-surgical nursing: clinical management for positive outcomes, ed 6, Philadelphia, 2001, Saunders, p 940.)
628 UNIT IX Genital and Reproductive Function
Auxiliary Genital Glands The auxiliary genital glands of the male consist of the prostate, the seminal vesicles, and the bulbourethral glands. These glands secrete products that contribute to the seminal fluid.
Prostate The prostate lies below the bladder and has both a muscular and a glandular component. The normal prostate weighs about 20 g and measures about 3.5 cm transversely and about 2.5 cm in its vertical and anteroposterior dimensions. The prostate is conical and is anterior to the rectum. Its base is continuous with the bladder neck, and the inferior aspect of the prostate gland, or apex, lies adjacent to the urogenital diaphragm (Fig. 30.5).
The prostate consists of a thin fibrous capsule with internally circular smooth muscle fibers and collagenous tissue that surround the urethra. Deep in this layer of connective and elastic tissue lies the prostatic stroma, which contains the prostatic epithelial glands. These glands drain into excretory ducts, which open chiefly on the floor of the urethra between the verumontanum and the vesical neck. The prostate is primarily a reproductive organ. In conjunction with the seminal vesicles, the prostate produces the fluid that supports the sperm. In fact, the sperm constitute a small amount of the semen, with the vast majority of the seminal fluid coming from the prostate and seminal vesicles. A further function of the prostate gland is to act as a valve for the bladder.
and adrenergic receptors present in the trigone and proximal end of the urethra (Fig. 30.3).
The parasympathetic nerve supply originates from the sacral segments (S2–S4), which proceed to form a plexus surrounding the bladder. In the male, a separate segment will reach the prostate and form the prostatic plexus. From this plexus, nerves emerge to innervate the erectile tissue of the male penis and the clitoris of the female (see Fig. 30.3).
Branches of the bladder plexus penetrate the muscular coat of the bladder and become distributed throughout the detrusor. Parasympathetic muscle receptors are cholinergic in nature, and parasympathetic stimula- tion induces a detrusor contraction that causes bladder emptying.
Urethra The male urethra, which extends from the bladder to the external opening (urethral meatus) at the tip of the penis, functions as a conduit for both urinary and genital systems. It is commonly divided into three segments: the prostatic, the membranous, and the penile or spongy urethra (Fig. 30.4).
Sympathetic trunk
White rami communicantes
Sphincters
Bladder
Aorta
Involuntary
Pelvic splanchnic nerve
Pudendal nerve
Voluntary
Urethra
Glans
L1
L2
L3
S3 S2
S4
Superior hypogastric
plexus
FIG 30.3 Diagram of nerve supply to bladder and urethra.
Bulbourethral gland
Root
Body
Glans penis
Urinary bladder
Prostate gland Prostatic urethra
Urogenital diaphragm Membranous urethra
Spongy urethra
Spongy urethra
Corpora cavernosa
Corpus spongiosum
Prepuce
External urethral orifice
Corpora cavernosa
Corpus spongiosum
Skin
FIG 30.4 Cross-sectional view of the penis emphasizing the membranous urethra, the urogenital diaphragm, the bulbourethral or Cowper gland, and the orifices of the bulbourethral glands. (From Applegate EJ: The anatomy and physiology learning system: textbook, ed 4, St Louis, MO, 2011, Saunders.)
CHAPTER 30 Male Genital and Reproductive Function 629
The scrotal sac consists of several tissue layers. The scrotal skin overlies the dartos muscle layer, whose smooth muscle fibers are embed- ded in loose connective tissue. The dartos muscle functions to contract the scrotal pouch when cold and expand it when warm. Under the dartos layer are several fascial layers (see Fig. 30.5) that are continuous with the muscular layers of the abdominal wall and also make up the covering of the spermatic cord. The external spermatic fascia is continu- ous with the external oblique aponeurosis of the abdominal wall. A few slips of skeletal muscle derived from the internal oblique muscle layer make up the cremasteric muscle, which adds to the upper part of the cord. The internal spermatic fascia is a continuation of the transverse fascia of the abdominal wall, with the transversus abdominis muscle not contributing to the cord layers. Finally, the peritoneum provides the tunica vaginalis layers, which are actually separated from the abdominal cavity by obliteration of the processus vaginalis.
The scrotum receives its blood supply from the external pudendal artery, a branch of the femoral artery. In addition, the scrotum receives blood from portions of the internal pudendal artery (a branch of the hypogastric artery) and the cremasteric and testicular arteries that transverse the spermatic cord.
Testes The testes are the male reproductive organs responsible for sperm production. They average about 4 to 5 cm in length and 2 to 3 cm in thickness. The testes lie within the scrotum and are suspended by the spermatic cord. The testes are covered by a thick fascial layer called the tunica albuginea. This layer invaginates posteriorly to form the
The main blood supply of the prostate is derived from the inferior vesical artery, a branch of the hypogastric artery. Besides the prostate, this artery also supplies the distal portion of the ureter, the seminal vesicles, and part of the bladder. A complex venous plexus situated between the prostate and overlying tissue freely communicates with the inferior hypogastric veins and provides venous drainage to the prostate.
Seminal Vesicles The seminal vesicles are paired organs that lie next to the prostate under the base of the bladder (see Fig. 30.5). Their coiled pouches secrete a fluid important to the survival of spermatozoa.
Bulbourethral Glands The bulbourethral or Cowper glands are located on each side of the membranous urethra within the urogenital diaphragm. They release a mucoid secretion into the urethra.
External Genitalia Scrotum The scrotum (see Fig. 30.5) is a pouchlike sac that lies below the penis and pubic symphysis. A septum of connective tissue divides the sac into two compartments. Each compartment contains a male gonad, or testis, with its associated epididymis, the lower end of the vas deferens and the lower portion of the spermatic cord. The scrotum not only supports the testes but also, by relaxation and contraction of its muscular layer, helps regulate the temperature of the testes.
Epididymis
Anus
Scrotal skin
Dartos muscle Cremasteric muscle Internal spermatic fascia Tunica vaginalis
Bladder
Penile urethra
Glans penis
Seminal vesicle
Scrotum
Ureter
Symphysis pubis
Prostatic urethra
Corpus spongiosum
Corpus cavernosum
Bulbospongiosus muscle Bulbourethral glands
Urogenital diaphragm
Deep dorsal veins of penis
Common ejaculation duct
Vas deferens
Testicular artery and vein
Prostate gland
Rectum
Prepuce
Testis CROSS SECTION
FIG 30.5 Male genitourinary anatomy, including a cross-section of the scrotum and its layers.
630 UNIT IX Genital and Reproductive Function
a conduit for maturing spermatozoa. In the epididymis, sperm develop the ability to swim.
As the convoluted tube of the tail leaves its testicular attachments, it increases in diameter to become a thick, muscular tube called the ductus deferens, also called the vas deferens. Leaving the spermatic cord, the vas deferens follows an extraperitoneal course and passes caudally and laterally along the pelvic wall. As it passes medial to the
mediastinum testis. This fibrous mediastinum sends fibrous septa into each testis that separate it into many different lobules. Each lobule contains one to four seminiferous tubules that if stretched to full length would measure approximately 60 cm. Spermatozoa production occurs within the epithelial lining of the seminiferous tubules (Fig. 30.6).
The seminiferous tubules have a basement membrane consisting of elastic and connective tissue that supports the seminiferous cells. The seminiferous cells are either Sertoli cells (supporting cells) or spermato- genic cells. Found between the seminiferous tubules and embedded in connective tissue, the interstitial Leydig cells produce and secrete tes- tosterone, a hormone involved in the development of male sexual characteristics (Fig. 30.7). The seminiferous tubules converge on the mediastinum testis. The tubules, which are connected by the straight efferent ducts, drain into the head of the epididymis.
The primary testicular blood supply is derived from the internal spermatic arteries, which arise directly from the aorta below the renal arteries. They course inferiorly through the spermatic cord and anas- tomose with the cremasteric arteries and the arteries of the vas; these vessels also contribute to the blood supply. The blood from the testis returns through a plexus of veins in the spermatic cord (the pampiniform plexus) that forms the spermatic veins. The left internal spermatic vein enters the left renal vein, which subsequently enters the vena cava. The right internal spermatic vein enters the vena cava directly.
Epididymis and Ductus Deferens The epididymis is a tightly coiled tube that lies along the top of and behind each testis. It is divided into the head, situated at the upper pole of the testes; the body, lying posterior to the testes; and the tail, which is attached to the inferior pole of the testes (see Fig. 30.6). The body and the tail of the epididymis form one continuous tube that serves as
Epididymis
Tunica vaginalis
Tunica albuginea
Spermatic cord
Rete testis
Seminiferous tubule
Vas deferens Septum
Efferent tubules
Testicular artery
Testicular veins
FIG 30.6 Anatomy of the testis and epididymis. Note the numerous compartments of the testis that are filled with seminiferous tubules gathering into the rete testis; they join to form a markedly convoluted tubule that becomes the epididymis, which is continuous with the vas deferens. The epididymis attaches to the dorsomedial aspect of the testis, and the vas deferens joins the other structures of the spermatic cord.
Interstitial cells of Leydig
Blood vessel
Fibroblasts
Germinal epithelium
FIG 30.7 The interstitial Leydig cells that secrete testosterone are located in the interstices between the seminiferous tubules. (From Hall JE, editor: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2015, Saunders.)
CHAPTER 30 Male Genital and Reproductive Function 631
the glans of the penis forms the distal segment of the corpus spongiosum (see Fig. 30.4).
The three erectile bodies have the capability to become engorged with blood and enlarge considerably with erection. Microscopically, these bodies have an internal spongelike network that consists of endothelium-lined spaces surrounded by smooth muscle.
Each corpus is enclosed in a fascial sheath, the tunica albuginea, and all are subsequently surrounded by a thick fibrous envelope known as the fascia of Buck. The overlying skin of the penis is remarkable for its thinness and looseness of connection with the fascial sheath of the penis. The skin of the penis is folded upon itself to form the prepuce, or foreskin. It is this penile skin overlying the glans that is removed with circumcision.
The arterial blood supply is primarily derived from the paired internal pudendal arteries, which are branches of the hypogastric arteries. Each internal pudendal artery branches several times in the penis. The deep or cavernous artery supplies the entire corpus cavernosum. The urethral artery supplies the corpus spongiosum, and the bulbar artery supplies the bulb of the corpus spongiosum. The dorsal artery continues along the dorsum of the penis and lies below the fascia of Buck and between two dorsal veins. It provides additional supply to the glans (Fig. 30.9).
Venous drainage of the penis is through several channels. The cavern- ous veins drain the corpora cavernosa, and the circumflex veins join the deep dorsal vein of the penis to also drain the corpora. The superficial dorsal vein drains the glans and part of the distal portion of the corpora. Finally, a bulbar branch drains the bulbous urethra and proximal portion of the corpus spongiosum (see Fig. 30.9). Together these branches coalesce and pass through the urogenital diaphragm into the retropubic venous plexus of Santorini.
The nerve supply of the penis is formed from both parasympathetic and sympathetic components. The parasympathetic fibers arise from S2–S4, and the sympathetic component is derived from the hypogastric plexus. Parasympathetic stimulation from the pudendal nerve results in relaxation of vascular resistance, which increases blood flow to the penis and creates an erection. The pudendal nerve also carries sensory fibers from the penis and enters the sacral spinal cord to contribute to penile erection.
Sympathetic nerve fibers may contribute to erectile capacity, but their role has not been proved conclusively. They do innervate the proximal involuntary sphincter of the bladder neck, where contraction prevents retrograde ejaculation of semen from the prostatic urethra into the bladder. They also innervate the muscles of the seminal vesicles and prostate, which, when stimulated, cause ejaculation of seminal fluid into the urethra.
distal end of the ureter, it bends caudally to reach the midline and lies on the posterior wall of the bladder just medial to the seminal vesicles. It terminates in a dilated ampulla that courses underneath the base of the prostate. At this point the duct of the seminal vesicle joins with the duct of the ampulla, and the ejaculatory duct is formed. The ejaculatory ducts open in the prostatic urethra at the level of the verumontanum.
Penis The penis is the male organ of copulation and urinary excretion. It is composed of three erectile bodies—two paired corpora cavernosa, which lie dorsally, and the corpus spongiosum, which contains the urethra (Fig. 30.8). Grossly, the penis is divided into three segments. The root of the penis consists of the proximal ends of the corpora cavernosa, which attach to the pelvic bones, and the proximal end of the corpus spongiosum, which connects to the undersurface of the urogenital diaphragm. Together these attachments provide fixation and stability to the penis. The shaft or body of the penis consists of all three erectile bodies: the two cavernous bodies lying on the dorsum, and the corpus spongiosum, which occupies a depression on their ventral surface. Finally,
Corpus cavernosa
Corpus spongiosum
Cavernosal artery
Tunica albuginea
Dorsal artery and nerve
Skin
Urethra
Fascia of Buck
Superficial and deep dorsal vein
FIG 30.8 Transverse section through the penis. The paired upper structures are the corpora cavernosa. The single lower body surrounding the urethra is the corpus spongiosum.
Retrocoronal plexus Circumflex v.
Dorsal n. Dorsal a.
Lateral vv.
Circumflex a.
Tunica albuginea
Deep dorsal v.
Penile a.
Cavernous v.
Cavernous a.
Cavernous n.
Bulbourethral a.
Crural v.
Periprostatic plexus
Internal pudendal v.
FIG 30.9 Dorsal penile arteries, veins, and nerves. (From Hinman Jr F: Atlas of urosurgical anatomy, Philadelphia, 1993, Saunders, p 445.)
632 UNIT IX Genital and Reproductive Function
EMBRYOLOGY Developmental processes in the genital and urinary systems are intimately related. To facilitate understanding of this development, the two systems will be discussed in several subdivisions. The urinary system, which is composed of the nephric system and the vesicourethral unit, will be discussed first. The genital system, which is composed of the gonads, the genital ducts, and the external genitalia, will be discussed second.
Nephric System The nephric system develops progressively through three distinct phases: the pronephros, mesonephros, and metanephros. The pronephros is the earliest state in humans but corresponds to the mature structure in primitive vertebrates. The pronephros consists of 6 to 10 pairs of tubules connected by a pronephric duct. It grows caudally to join the cloaca, a blind end of the hindgut. The pronephros is a temporary structure and, except for its duct, disappears by the fourth week of intrauterine life (Fig. 30.10).
The mesonephros corresponds to the mature excretory organ of some amphibians. In humans it begins developing at about the fourth to fifth week of gestation. The tubules of the mesonephros are more numerous and form a cuplike outgrowth into which capillaries push to form a primitive glomerulus. The tubules communicate with the mesonephric duct, which is derived from the preceding pronephric duct. The number of mesonephros tubules reaches a maximum by about 8 weeks’ gestation and then degenerates.
The final stage of development, the metanephros, begins in the fourth week when the ureteral bud grows out of the mesonephric duct. The bud elongates in a dorsocranial direction, where it meets a mass of mesoderm, the nephrogenic blastema, and begins to differentiate into the ureter and renal collecting system. The metanephros is derived from the nephrogenic blastema and eventually differentiates into the mature mammalian kidney.
KEY POINTS • The upper genitourinary tract is composed of the kidneys and ureters. The
lower genitourinary tract includes the bladder and urethra and the accessory male sexual organs.
• Ureters transport urine from the renal pelvis to the bladder. Ureters have several points of narrowing that predispose to obstruction: ureteropelvic junction, pelvic brim, and ureterovesical junction.
• The adult bladder has a normal capacity of 450 to 500 mL. With overdistention, the bladder may be palpable in the suprapubic region. The bladder is a muscular organ composed of several layers of muscle fibers. An important muscular landmark in the bladder is the trigone. Parasympathetic stimulation of the bladder results in bladder muscle contraction.
• The prostate is a key organ in the male genitourinary system with both reproductive and continence functions. It also causes many pathologic conditions as men age, such as prostatitis, benign hyperplasia, and cancer.
• The urethra extends from the bladder to the meatus at the end of the penis. In addition to transporting urine, the urethra has ducts that receive fluid from the prostate, seminal vesicles, and bulbourethral glands.
• The scrotal sac supports the testes and regulates their temperature. Testes contain several cell types important in sperm production and the development of secondary sex characteristics. Spermatogenic cells produce sperm in the testes. Sertoli cells serve to support and nurture spermatogenesis. Leydig cells produce and secrete testosterone.
• Situated next to the testes, the epididymis serves as a collecting conduit for sperm. The epididymis is continuous with the ductus (vas) deferens. The vas travels along the pelvic wall and joins with the seminal vesicle duct at the prostate to form the ejaculatory duct. The ejaculatory ducts open into the urethra.
• Skin overlying the penis is very loose, which facilitates significant enlargement when the penis is engorged with blood during erection. Parasympathetic fibers forming the pudendal nerve are responsible for erection. Ejaculation is a function of the sympathetic nerve fibers.
Pronephros
EARLY FOURTH WEEK
Cloaca
Mesonephric tubules
Undifferentiated mesonephric tissue
Differentiated metanephric tissue
SIXTH WEEK
Ureteral bud
Degenerated pronephros
EIGHTH WEEK
Urogenital sinus Rectum
Degenerating mesonephros
Undifferentiated gonad
FIG 30.10 Schematic representation of the development of the nephric system. Only a few of the tubules of the pronephros are seen early in the fourth week, whereas the mesonephric tissue differentiates into mesonephric tubules that progressively join the mesonephric duct. The first sign of the ureteral bud from the mesonephric duct is shown. At 6 weeks, the pronephros has completely degenerated and the mesonephric tubules start to do so. The ureteral bud grows dorsocranially and has met the metanephrogenic cap. By the eighth week, cranial migration of the differentiating metanephros can be seen. The cranial end of the ureteric bud expands and starts to show multiple successive outgrowths. (From Tanagho EA, McAninch JW, editors: Smith’s general urology, ed 13, East Norwalk, CT, 1992, Appleton & Lange, p 18.)
CHAPTER 30 Male Genital and Reproductive Function 633
If, on the other hand, a gonad develops into an ovary, the müllerian ducts proceed to form the uterus, fallopian tubes, and upper part of the vagina. The mesonephric, or wolffian, ducts fail to develop further and remain rudimentary (see Fig. 30.12).
External Genitalia Development of the external genitalia begins at about 12 intrauterine weeks. Before this point, three small protuberances appear on the external aspect of the cloacal membrane. The genital tubercle is located anteriorly, and the genital swellings are situated on either side of the membrane. In the seventh week, rupture of the urogenital membrane gives the urogenital sinus a separate opening on the undersurface of the genital tubercle.
In males, the genital or labioscrotal swellings migrate and fuse centrally to form the scrotum. The fused genital tubercles elongate. The elongated fused tubercles form a cylindric shape with a ventral groove communicat- ing with the urogenital sinus. This groove subsequently becomes covered by folds of tissue and forms the penile urethra (Fig. 30.13).
The female external genitalia closely resemble those of the male until about the eighth intrauterine week. At this time the genital tubercle lags behind in growth and becomes the clitoris. The urogenital sinus shortens and widens somewhat to form the vaginal vestibule, and the genital swellings form the labia majora. The urethral folds become the labia minora.
Vesicourethral Unit The blind end of the caudal hindgut forms the cloaca, which is separated from the outside by a thin membrane of tissue, the urogenital membrane. At about 4 weeks’ gestation a septum grows downward and separates the cloaca into a posterior compartment, which will become the rectum, and an anterior compartment, which will form the urogenital sinus.
The urogenital sinus receives the mesonephric duct, which is progres- sively absorbed into this structure. The mesonephric duct distal to the ureteral bud is absorbed into the sinus, and its mesenchyme subsequently forms the bladder trigone. The ureter, which is derived from the ureteral bud, and the mesonephric duct, which differentiates into the vas deferens, merge into the sinus as well. In a complex pattern of development, the opening of the ureteral bud, which will eventually become the ureteral orifice, migrates upward and laterally. The opening of the mesonephric duct, which will become the ejaculatory duct, migrates downward and medially (Fig. 30.11).
The urogenital sinus can be divided into two main segments. The ventral and pelvic portion, which receives the ureter, forms the bladder, part of the urethra in males, and the whole urethra in females. A phallic or urethral portion will receive the mesonephric ducts and in males will form a second part of the urethra. In females, this portion receives the müllerian ducts, which fuse distally to form the uterus and upper part of the vagina. The lower portion of the female urogenital sinus forms the lower part of the vagina and vaginal vestibule (Fig. 30.12).
Gonads The undifferentiated and primitive gonads are derived from the urogenital ridge, a dorsal region of thickening from which the primitive kidney also forms. The gonads serve as precursors to the testes in males and the ovaries in females. During the seventh week, an individual gonad begins to assume the characteristics of either a testis or an ovary.
In the presence of testis-determining factor, which is located on the Y chromosome, a gonad develops into a testis. The gland increases in size, and the cells of the epithelium grow centrally into the organ’s mesenchyme. These ingrowths become radially arranged, form cords, and begin to converge on the posterior aspect of the testis. The cords eventually differentiate into the seminiferous tubules, which produce spermatozoa. The testes descend behind the abdominal cavity in the retroperitoneal space and into the scrotum, usually by the eighth month of gestation.
In the absence of testis-determining factor, a gonad differentiates into an ovary, and a cortex forms from the germinal epithelium and ultimately gives rise to ovarian follicles containing ova. It descends only partially through the abdominal cavity and eventually lies adjacent to the fallopian tubes.
Genital Duct System As the embryo develops, two different but related kinds of ducts form beside the undifferentiated gonads. The mesonephric ducts, or wolffian ducts, as previously explained, develop as nephric ducts but will go on to form the male genital ducts. The müllerian ducts develop alongside the mesonephric ducts (paramesonephric) and are genital structures from the start.
Early in development, each of the two müllerian ducts arises laterally to the mesonephric ducts, either directly from the mesonephric ducts themselves or possibly from the adjacent epithelium of the primitive abdominal cavity. Both ducts grow caudally to enter the urogenital sinus.
If a gonad differentiates into a testis, the wolffian ducts subsequently develop into the male duct system consisting of the epididymis, vas deferens, seminal vesicles, and ejaculatory ducts. The müllerian ducts, except for a few rudimentary fragments, rapidly atrophy.
KEY POINTS • The fetal gonads can become either a testis or an ovary. The presence of
the testis-determining factor on the Y chromosome causes the testis to develop in the male fetus, whereas the absence of this factor allows the gonad to become an ovary in the female. Once the gonad has differentiated, it then is responsible for the cascade of events that lead to the formation of the female or male sexual organs and genitalia.
• During early embryonic development, the genital structures of males and females are similar. Two important ductal systems are the mesonephric (wolffian) ducts and the paramesonephric (müllerian) ducts. The mesonephric ducts develop to form the kidneys and the genital duct in males. In the presence of a testis, the wolffian ducts develop into the epididymis, vas deferens, seminal vesicles, and ejaculatory ducts. In the presence of an ovary, the müllerian ducts develop into the uterus, fallopian tubes, and upper part of the vagina, and the wolffian ducts fail to develop.
• Development of the external genitalia begins at about 12 weeks’ gestation. In males the labioscrotal tissue fuses and elongates to form the scrotum and penis. In females, this tissue remains separated and forms the labia minora.
MALE REPRODUCTIVE PHYSIOLOGY Hypothalamic-Pituitary-Testicular Axis To fully understand male reproductive function, one must consider the endocrine function of the hypothalamic-pituitary-testicular axis. The components of this system function to maintain a constant level of the circulating hormones responsible for normal male sexual development and behavior, as well as the maturation of sperm necessary for fertility (Fig. 30.14).
The hypothalamus is the integrating center for this hormonal axis. This organ coordinates neural messages from the central nervous system and humoral (bloodborne) messages from the testis to control the secretion of a small peptide hormone: gonadotropin-releasing hormone (GnRH). The pituitary stalk provides the route for GnRH to travel to
634 UNIT IX Genital and Reproductive Function
Allantois Omphaloenteric duct (vitelline duct)
Midgut
Hindgut
Urorectal septum
Cloaca
A B
B1
D1
DC
E F
F1
Postanal gut Cloacal membrane
Allantois
Urorectal septum
Hindgut
Level of section B1
Mesenchyme
Infolding of cloacal wall
Phallus
Cloacal membrane
Urorectal septum
Urorectal septum
Level of section D1
Level of section F1
Urorectal septum
Urorectal septum
Anal pit
Anal pit
Urogenital sinus
Urogenital sinus
Infolding of lateral wall of cloaca
Rectum
Rectum
Rectum
Anal pit
Anal canal
Developing urinary bladder
Urogenital membrane
Perineum
FIG 30.11 Successive stages in the partitioning of the cloaca into the rectum and urogenital sinus by the urorectal septum. A, C, and E, Views from the left side at 4, 6, and 7 weeks, respectively. B, D, and F, Enlargements of the cloacal region. B1 and D1, Transverse sections of the cloaca at the levels shown in B and D. Note that the postanal portion (shown in B) degenerates and disappears as the rectum forms. (From Moore KL et al, editors: The developing human: clinically oriented embryology, ed 10, Philadelphia, 2016, Saunders.)
CHAPTER 30 Male Genital and Reproductive Function 635
Testis
Paramesonephric (müllerian) duct Medulla
Mesonephric tubule
Mesonephric duct
Cortex
Aorta
Genital ridge
Hindgut
Primitive sex cords
Primordial germ cells Gonads
Mesonephric duct
Mesonephric tubule
Paramesonephric (müllerian) duct
Urogenital sinus
TRANSVERSE SECTION ANTERIOR VIEW
INDIFFERENT GONADS
Efferent ductules
Epididymis Testes
Degenerating paramesonephric duct
Tunica albuginea
Seminal vesicle
Urethra
MALE
DEVELOPING TESTES DEVELOPING OVARIES
FEMALE
Seminal vesicle
Ductus deferens
Prostate gland
Urethra
Epididymis
Fallopian tube
Ovaries
Degenerating mesonephric duct
Uterus
Oogonium
Follicular cell
Remnant of mesonephric duct
Uterus
Fallopian tube
Ovary
Vagina
XY XX
FIG 30.12 Transformation of the undifferentiated genital system into the definitive male and female systems. (From Nichols FH, Zwelling E: Maternal-newborn nursing: theory and practice, Philadelphia, 1997, Saunders, p 174.)
636 UNIT IX Genital and Reproductive Function
Besides testosterone, other steroid hormones are synthesized, among them dihydrotestosterone, 17-hydroxyprogesterone, and estradiol. Dihydrotestosterone functions to differentiate and mature the male external genitalia and prostate. In early puberty the production of androgen begins to increase, with normal adult plasma levels of tes- tosterone and dihydrotestosterone being 300 to 1200 ng/dL and 30 to 60 ng/dL, respectively.
The function of FSH in male reproduction remains somewhat unclear. However, it appears that the production of sperm in the seminiferous tubules (spermatogenesis) requires the presence of high levels of both androgen and FSH.
A feedback inhibition mechanism controls the secretion of both LH and FSH. Production of LH occurs in response to serum levels of testosterone and estradiol. The regulation of FSH is controlled by inhibin and activin, which are produced by the Sertoli cells. In addition to
the pituitary gland, which lies caudal to the hypothalamus. A system of veins, the pituitary portal system, traverses the pituitary stalk and transports GnRH to the anterior portion of the pituitary gland.
In response to the secretion of GnRH, the pituitary synthesizes and releases two hormones: luteinizing hormone (LH) and follicle-stimulating hormone (FSH). Although these hormones carry names related to their function in females, they are produced by both genders through a feedback mechanism with GnRH for reproductive purposes.
By binding to receptors on the surface of the testicular Leydig cells, LH mediates testosterone synthesis. Binding of LH produces an increase in the conversion of adenosine triphosphate to cyclic 3,5-adenosine monophosphate. This activity stimulates the production of other intracellular enzymes with subsequent increased synthesis of testosterone. Testosterone is then released into the bloodstream and adjacent seminifer- ous tubules.
BEFORE SEVEN WEEKS
EIGHT TO TEN WEEKS
AFTER TWELVE WEEKS
MALE FEMALE
Urethral groove
Anal pit
Genital tubercle
Glans area
Urethral fold
Anus
Future prepuce
Urethral groove
Labioscrotal area
Mons pubis
Clitoris
Vaginal orifice
Urethral orifice
Anus
Hymen
Posterior labial commissure
Glans
Future prepuce
Urethral fold
Urethral groove
Labioscrotal area
Anus
Urethral orifice
Glans penis
Body of penis
Penile raphe
Scrotum
Anus
FIG 30.13 Development of the external genitalia from the indifferent stage (before 7 weeks) to fully differenti- ated stages (after 12 weeks of gestation). (From Nichols FH, Zwelling E: Maternal-newborn nursing: theory and practice, Philadelphia, 1997, Saunders, p 175.)
CHAPTER 30 Male Genital and Reproductive Function 637
theoretically maintained in a constant intratubular environment to support the development of maturing sperm cells.
The process of sperm production is called spermatogenesis and involves several phases (Fig. 30.15). The proliferative phase involves division of the young germinal cells near the basement membrane (spermatogonia) either to replace their numbers or to produce daughter cells that will form spermatocytes. Next, a meiotic phase occurs in which spermatocytes undergo a reduction division. This division reduces the number of chromosomes to the monoploid number of 23 from the diploid number of 46. Finally, haploid spermatids undergo change to form mature spermatozoa.
While sperm cells mature and move from the basement membrane to the adluminal compartment, the Sertoli cells have an important nutritional role in the spermatogenic process. As the spermatid matures, it elongates and develops a tail, or flagellum, that attains a form similar to that of the mature spermatozoon. Mature spermatozoa are released into the tubular lumen and rapidly flow out to the rete testis and into the epididymis. Although each spermatogonium, one of the primi- tive male germ cells, requires about 70 days to develop into a mature sperm cell, or spermatozoon, within each tubule are spermatozoa in all stages of development. This characteristic allows new spermatozoa to be continuously produced across the male life span. The effects of aging on the male reproductive system are described in the Geriatric Considerations box.
Anatomy of Spermatozoa The human spermatozoon is approximately 60 µm in length. The oval head contains a nucleus that is highly condensed and stabilized by cross-links between its molecules, which makes it very resistant to physical injury during its passage and storage in the epididymis. An outer membrane, the acrosome, contains the enzymes required for penetration of the female egg before fertilization.
The tail accounts for 90% of the length of the spermatozoon and is divided into a middle piece, principal piece, and end piece. The spermatozoon derives its motile ability from the motor apparatus of the tail, which is called the axoneme. The axoneme, which runs the length of the tail, is composed of a central pair of tubules surrounded by a ring of nine pairs of tubules (the 9 + 2 pattern). This ring of tubules is surrounded by a supporting structure of nine noncontractile dense fibers. Within the middle piece, a circular sheath of mitochondria (Fig. 30.16) surrounds these outer dense fibers.
The mitochondria contain the enzymes required for the production of adenosine triphosphate (ATP), the energy source for the cell. Within the axoneme are enzymes and structural proteins. These enzymes convert chemical energy from ATP to the mechanical energy of sperm cell movement to aid in fertilization of the egg.
Transport of Spermatozoa Once mature spermatozoa are released from the Sertoli cells into the seminiferous tubules, they must pass through approximately 6 m of duct in the male reproductive tract before leaving the urethral meatus and being deposited in the vagina during sexual intercourse. From the seminiferous tubules, the spermatozoa are deposited into the rete testis, a collecting chamber for all the seminiferous tubules. From the rete testis, the sperm travel through the efferent ductules, 12 to 20 channels that pass into a single compact duct, the epididymis. The epididymis is a tightly convoluted duct that is divided into three regions: the caput (globus major), the corpus (body), and the cauda epididymis (tail, or globus minor). Unfolded and stretched, the epididymis would measure 12 to 15 feet.
After leaving the epididymis, the sperm enter the ductus or vas deferens. Embryologically, this duct is derived from the mesonephric
+
+
+
++
–
+ –
–
–
–
?
PITUITARY
TARGET ORGANS
HYPOTHALAMUS
Neurotransmitters
Neuropeptides
TESTIS
Leydig cells
Sertoli cells
Inhibin
Activin
Testosterone Dihydrotestosterone
Estradiol
Germ cells
GnRH
LH FSH
Extrahypothalamic central nervous system Environment
FIG 30.14 Feedback regulation of the hypothalamic-pituitary-testicular axis in males. Stimulatory effects are shown by ⊕ and negative feedback inhibitory effects are shown by ⊝. FSH, Follicle-stimulating hormone; GnRH, gonadotropin-releasing hormone; LH, luteinizing hormone. (From Carroll R, Problem-based physiology, Philadelphia, 2010, Saunders.)
inhibin, sex steroids modulate FSH secretion through feedback inhibition on the pituitary.
Spermatogenesis To understand spermatogenesis, one must briefly consider the histology of the testis and its seminiferous tubules. As previously stated, Leydig cells occur in clusters in the interstitial tissue between the seminiferous tubules. These Leydig cells are responsible for the testicular production of testosterone.
The seminiferous tubules contain both germinal elements and supporting cells, which include the sustaining cells of the basement membrane and the Sertoli cells. The Sertoli cells rest on the basement membrane of the tubule and form a unique impermeable junction with each adjacent Sertoli cell. It is through this junction that the young germinal cells, or primary spermatocytes, migrate and pass from the basal compartment to the basement membrane and then to the central or adluminal compartment of the seminiferous tubule. The junction is also responsible for maintenance of the blood–testes barrier. This barrier ensures that the more mature spermatocytes and spermatids located in the adluminal compartment are behind the barrier and
638 UNIT IX Genital and Reproductive Function
23,X
23,X 23,X
23,X
23,X 23,Y
23,Y23,Y
23,Y
23,Y
Spermatids
Secondary spermatocytes
First meiotic division
Primary spermatocyte 46,XY
Spermatids
Seminiferous tubules
Leydig cells in interstitial tissue
Supporting cell (Sertoli)
Spermatogonium 46,XY
Second meiotic division
Spermatogonium
Spermatozoa
Spermatozoa
Secondary spermatocyte
Primary spermatocyte
FIG 30.15 Process of meiosis in spermatogenesis.
Acrosome
Middle piece of tail
Principal piece of tail
End piece of tail
Head
Neck
Nucleus covered by acrosome
FIG 30.16 Anatomy of a mature sperm cell. (From Moore KL et al, editors: The developing human: clinically oriented embryology, ed 10, Philadelphia, 2016, Saunders.)
A decline in male fertility and reproductive organ function usually occurs with aging. However, the magnitude of functional decline of the male reproductive organs is variable. For example, some elderly men maintain their fertility into their 70s and 80s.
Male reproductive organ variability is due to organ-specific tissue changes. Active male germinal cells continue to produce spermatozoa (spermatogenesis), although the number of sperm produced declines proportionally over time. The testes become smaller as a result of the increased amount of connective tissue, fibrosis of the tubules, and decreased numbers of capillaries. The number of active seminiferous tubules declines with aging. The number of Leydig cells that produce testosterone decreases, leading to a decrease in testosterone level with aging.
The arteries and veins in the penis become increasingly sclerotic. The penis itself becomes smaller, with an increase in fibroelastic tissue. Penile sensation is decreased. Sexually, the aging male has a longer refractory period after orgasm and decreased force of ejaculation.
GERIATRIC CONSIDERATIONS Male Fertility and Reproductive Organ Function
CHAPTER 30 Male Genital and Reproductive Function 639
Ejaculation may be divided into two phases: emission and ejaculation. During emission, secretions from the periurethral glands, seminal vesicles, and prostate are deposited with sperm from the vasa deferentia and the cauda epididymis into the prostatic urethra. Control of emission is mediated primarily through the sympathetic nerves, which stimulate contraction of smooth muscle in these genital structures.
With ejaculation, the bladder neck or internal sphincter closes. This closure is also mediated through the sympathetic nervous system. Next, the external sphincter relaxes and the perineal and bulbourethral muscles surrounding the bulb of the corpus spongiosum contract and expel the ejaculate from the posterior urethra and through the urethral meatus.
The physiologic function of the secretory products of the accessory sex glands is uncertain. These secretions make up most of the seminal plasma, with the sperm and testicular fluid probably composing less than 10% of the final ejaculated semen volume. Although some investiga- tors have demonstrated that sperm removed directly from the epididymis are capable of fertilization, these secretions most likely optimize condi- tions for sperm motility, survival, and transport in both the female and the male reproductive tracts.
Capacitation Capacitation of the spermatozoa refers to the multiple changes that activate the sperm and enhance their ability to participate in the final process of fertilization. Although sperm are anatomically complete and highly motile when ejaculated, the complex process of capacitation is necessary before the sperm are actually capable of fertilizing the egg. The capacitation process occurs over a period of 1 to 10 hours and occurs in sperm only after they have been introduced into the vagina of the female. Once the sperm are inside the female, the uterine and fallopian tube fluids wash away the various inhibitory factors that had suppressed sperm activity in the male genital ducts. During the time that the spermatozoa were in the fluid of the male genital ducts, they were continually exposed to many floating vesicles from the seminiferous tubules containing large amounts of cholesterol. This cholesterol, continually donated to the cellular membrane covering the sperm acrosome, toughens the outside membrane and prevents release of its enzymes. After ejaculation, the sperm that are deposited in the vagina swim away from the cholesterol vesicles upward into the uterine fluid, and they gradually lose much of their excess cholesterol during the next few hours. As the cholesterol is lost, the membrane at the head of the sperm becomes much weaker.
The membrane of the sperm head also becomes much more permeable to calcium ions. Large amounts of calcium enter the sperm to increase the powerful whiplike motion of the flagellum beyond its previously weak, undulating motion. In addition, the calcium ions probably alter the intracellular membrane covering the leading edge of the acrosome, thus making it possible for the acrosome to release its enzymes very rapidly and easily as the sperm penetrates the granulosa cell mass surrounding the ovum. These enzymes are released even more rapidly and easily as the sperm attempts to penetrate the zona pellucida of the ovum itself.
Acrosome Reaction The head of a sperm is essentially a highly compact package of genetic chromatin material covered by a specialized acrosome and acrosomal (head) cap. Stored in the acrosome of the sperm are large quantities of hydrolytic (water-splitting) enzymes that are released during capacita- tion. The specialized acrosomal enzymes first break down cervical mucus to allow sperm to pass into the uterus and uterine tubes. If an ovum is present in the female reproductive tract when semen is introduced, continued release of acrosomal enzymes results in digestion of proteins in the structural elements of the outer covering of the egg. A high sperm
duct. It passes through the scrotum, traverses the inguinal canal into the pelvis, and then passes behind the bladder to enter the prostatic urethra at the ejaculatory ducts of the verumontanum. The terminal portion of the vas deferens is known as the ampulla. It is joined by the ducts of the seminal vesicle before entering the ejaculatory ducts.
As one passes in a proximal-to-distal direction from the efferent ducts to the vas deferens, the thickness of the muscle gradually increases. In the vas deferens, three interconnected smooth muscle layers form a thick muscular wall, with the ratio of wall thickness to lumen being the greatest in any human structure. This thick muscular wall facilitates rapid sperm transport at the time of ejaculation.
Aside from serving as a conduit and storage depot for spermatozoa, the epididymis facilitates the maturational processes. Most studies have demonstrated that sperm taken directly from the testes are incapable of naturally fertilizing eggs. The development of motility and increased fertility are acquired during transit through the epididymis.
Because epididymal sperm are probably immotile, other mechanisms must be involved in their transport. Initially, spermatozoa are carried into the efferent ducts by fluid from the rete testis. Within the efferent ducts, motile cilia within the lumen function to reabsorb testicular fluid and help move spermatozoa into the epididymis. Within the epididymis, the spermatozoa are probably transported by rhythmic contraction of the smooth muscle cells.
Ejaculation accelerates the passage of spermatozoa through the vas deferens and distal end of the epididymis. In young men, approximately 200 million sperm can be found in the reservoir of the epididymis. About 50% are found in the cauda region. With ejaculation, sperm from the distal part of the epididymis and vas deferens are deposited into the prostatic urethra, where they account for less than 10% of the normal ejaculate.
Erection, Emission, and Ejaculation To penetrate the vagina and deposit sperm, the penis must be erect. The physiology of erection is a complicated interaction of vascular, neurologic, and hormonal factors. Although erection has classically been thought of as a parasympathetic function, it is more complex. Erection may be mediated by either local stimulation, which causes a reflexogenic erection through the sacral spinal cord, or psychological stimulation, which causes a psychogenic erection through cerebral centers. The presence of erections in patients with spinal cord injuries attests to the presence of reflex erections. Such patients have an intact sacral spinal cord and its reflex arc of afferent and efferent nerves below the site of spinal cord injury.
The penis receives sensory innervation from the pudendal sensory nerves entering the sacral spinal cord. The pudendal nerve is a mixed nerve that provides motor innervation to the pelvic floor musculature and penile sensory fibers. The efferent nerve to the erectile tissue is provided by sacral parasympathetic fibers. Although erection is possible in patients with spinal cord injuries, in intact men it is a much more controlled process influenced to a great extent by the cerebral cortex. Impulses may traverse the spinal cord from the cerebral cortex in the lateral columns and exit the spinal cord through sacral parasympathetic and possibly the thoracolumbar sympathetic nerves as well.
During erection, the vascular spaces that make up the spongy vacuous tissues of the corpora cavernosa and corpus spongiosum fill with blood. The relaxation of smooth muscle tone in these structures that allows filling and subsequent penile erection is modulated by nitric oxide. Research indicates that erectile function cannot be fully explained by parasympathetic or sympathetic mechanisms; this observation has led to consideration that nonadrenergic and noncholinergic neuromodulators are also involved in such function.
640 UNIT IX Genital and Reproductive Function
count is essential for male fertility because the female ovum, once it is expelled from the ovarian follicle into the abdominal cavity and fallopian tube, contains multiple layers of granulosa cells. Before a sperm can fertilize the ovum, it must first pass through the granulosa cell layer, and then it must penetrate the thick covering of the ovum itself, the zona pellucida. It is believed that the acrosomal enzyme hyaluronidase plays an important role in opening pathways between the granulosa cells so that the sperm can reach the ovum.
On reaching the zona pellucida of the ovum, the anterior membrane of the sperm binds specifically with a receptor protein in the zona
The male genitourinary tract may be divided into upper and lower tracts, with the upper tract composed of the kidneys and ureters and the lower tract composed of the bladder and urethra. Auxiliary genital glands that lie adjacent to or surround the urethra include the prostate, seminal vesicles, and bulbourethral glands. The external genitalia of the male consist of the scrotum, testes, epididymis, and penis.
Embryologic development of the male and female genital and urinary systems is closely related. The nephric system develops progressively through three distinct phases: the pronephros, mesonephros, and meta- nephros. The gonads are derived from the urogenital ridge, from which
the primitive kidney also forms. Finally, the genital duct systems develop from two different but related ducts adjacent to the undifferentiated gonads, the müllerian ducts and the mesonephric, or wolffian, ducts.
Male reproductive function depends on an intact hypothalamic- pituitary-testicular endocrine axis. Spermatogenesis takes place in the seminiferous tubules. Spermatozoa mature in their transit through the male reproductive tract. Through erection, emission, and ejaculation, sperm enter the vagina. Through capacitation and the acrosome reaction, spermatozoa acquire the ability to fertilize ova residing in the female reproductive tract.
S U M M A R Y
RESOURCES Applegate EJ: The anatomy and physiology learning system: textbook, ed 4,
St Louis, MO, 2011, Saunders. Black JM, et al: Medical-surgical nursing: clinical management for positive
outcomes, ed 6, Philadelphia, 2001, Saunders. Carroll R: Problem-based physiology, Philadelphia, 2010, Saunders. Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia,
2016, Saunders. Hinman F, Jr: Atlas of urosurgical anatomy, Philadelphia, 1993, Saunders.
Moore KL, et al, editors: The developing human: clinically oriented embryology, ed 10, Philadelphia, 2016, Saunders.
Nichols FH, Zwelling E: Maternal-newborn nursing: theory and practice, Philadelphia, 1997, Saunders.
Sauerland EK: Grants dissector, ed 10, Baltimore, 1991, Williams & Wilkins. Tanagho EA, McAninch JW, editors: Smith’s general urology, ed 13, East
Norwalk, CT, 1992, Appleton & Lange. Wein AJ, et al, editors: Campbell-Walsh urology, ed 11, Philadelphia, 2016,
Saunders.
KEY POINTS • Normal male sexual development and spermatogenesis depend on the
appropriate secretion of reproductive hormones. GnRH, secreted by the hypothalamus, induces the anterior pituitary gland to secrete LH and FSH. The bloodstream receives these hormones, which then travel to the testes where they bind to testicular cells.
• Leydig cells in the testes possess LH receptors and respond by increasing production of testosterone. Testosterone and related androgens are necessary for maturation of the male external genitalia. The function of FSH is less well understood, but appears to be necessary for spermatogenesis.
• Spermatogenesis occurs when germinal cells within the seminiferous tubules undergo meiosis to form haploid (23 chromosomes) spermatids. Spermatids then develop into mature spermatozoa with the assistance of Sertoli cells. Sperm require 70 days to mature, and they are continuously produced and released into the epididymis.
• Sperm are well formed to perform their function in that they have a highly stabilized nucleus that is resistant to physical trauma, a mobile tail (axoneme) for swimming, and specialized enzymes to enhance penetration of the egg.
• Sperm traveling from their site of origin in the testes must pass through approximately 6 m of tubules before arriving at the penile meatus. This tubular
system includes the seminiferous tubules in the testes, epididymis, vas deferens, and urethra. About 200 million sperm may be stored in the epididymal reservoir. Increased motility and fertility appear to be acquired by sperm as they pass through the epididymis. Sperm account for less than 10% of the ejaculate volume.
• The physiologic process of erection is a complex interplay of vascular, neurologic, and hormonal factors. The sacral parasympathetic nerves provide important innervation to the penis. Acetylcholine from parasympathetic nerves causes relaxation of penile smooth muscle with subsequent engorgement.
• The sympathetic nervous system mediates the process of ejaculation. Sym- pathetic actions include contraction of the internal sphincter to prevent retrograde ejaculation and relaxation of the external sphincter to allow emission.
• Sperm deposited in the vagina undergo further changes in a process known as capacitation. This process improves the chances of sperm successfully producing fertilization of an egg. Enzymes are released (acrosome reaction) to facilitate penetration of the ovum, a process that further increases the chances of successful fertilization.
pellucida. Then the entire anterior membrane of the acrosome rapidly dissolves, and all the acrosomal enzymes are immediately released. Within minutes, these open a penetrating pathway for passage of the sperm head through the zona pellucida.
The head at first enters the perivitelline space lying beneath the zona pellucida but outside the membrane of the underlying oocyte. Within 30 minutes, the membranes of the sperm head and the oocyte fuse; the sperm genetic material enters the oocyte to cause fertilization, and the embryo begins to develop.
641
31 Alterations in Male Genital and Reproductive
Function Marvin Van Every
K E Y Q U E S T I O N S • What are the common causes of and clinical findings in
priapism? • What are the common causes of primary and secondary erectile
dysfunction? • What are the usual clinical manifestations and significance of
testicular cancer, testicular torsion, cryptorchidism, and hydrocele or spermatocele?
• What clinical manifestations would lead to a suspicion of prostatitis, and how would confirmed prostatitis be treated?
• How can benign prostatic hyperplasia be distinguished from prostate cancer?
• What clinical manifestations are indicative of prostatic enlargement?
C H A P T E R O U T L I N E Disorders of the Penis and Male Urethra, 641
Congenital Anomalies, 641
Micropenis, 641 Urethral Valves, 642 Urethrorectal and Vesicourethral Fistulas, 642 Hypospadias, 642 Epispadias, 643
Acquired Disorders, 643
Priapism, 643 Phimosis and Paraphimosis, 644 Peyronie Disease, 644 Urethral Strictures, 644 Erectile Dysfunction, 645 Premature Ejaculation, 645
Infectious Disorders, 645
Neoplastic Disorders, 647
Neoplasms of the Penis, 647 Disorders of the Scrotum and Testes, 647
Congenital Disorders, 647
Cryptorchidism, 647
Acquired Disorders, 648
Hypogonadism, 648 Hydrocele, 648 Spermatocele, 649 Testicular Torsion, 649 Male Infertility, 649
Infectious Disorders, 650
Epididymitis, 650 Fournier Gangrene, 650
Neoplastic Disorders, 650
Neoplasms of the Testis, 650
Disorders of the Prostate, 651 Benign Prostatic Hyperplasia, 651 Prostatitis, 652 Prostate Cancer, 652
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
The male genital system is susceptible to numerous congenital, acquired, and infectious conditions and, to a lesser extent, neoplasms. These disorders may interrupt the normal functions of urinary excretion and sexual function and fertility and directly affect the quality of life. This chapter will identify and explain the most common conditions that come to the attention of practitioners.
DISORDERS OF THE PENIS AND MALE URETHRA Congenital Anomalies Micropenis Micropenis is defined as a small, normally formed penis with a stretched length more than two standard deviations below the mean. The normal
642 UNIT IX Genital and Reproductive Function
Finally, urinary ascites (extravasated urine in the peritoneum) may result from a urinary leak that is usually difficult to localize. In an infant with abdominal distention, the diagnosis of urethral valves is confirmed by a plain abdominal radiograph showing the bowel “floating” in the center of the abdomen. Prenatal ultrasounds often suggest the diagnosis before birth so immediate evaluation and treatment can take place upon delivery.
Older infants with a urethral valve are less likely to have a palpable kidney or ascites. Rather, urinary tract infection, poor stream with straining to void, or occasionally hematuria may be present. Urethral valves in these older male infants may not produce much obstruction, thus making the diagnosis more difficult.
Treatment. Management of posterior valves involves initial manage- ment of the metabolic abnormalities with appropriate fluid management and electrolyte replacement. In patients with a urinary tract infection, drainage of urine with a urethral or occasionally a suprapubic catheter is necessary. Finally, ablation of the valves with an endoscopic resectoscope should be performed. In infants, this step may be delayed and a cutaneous vesicostomy made to temporarily divert and drain the urine. This approach reduces the risk of traumatizing the infant’s delicate urethra, which may create urethral stricture disease.
Rarely, urethral valves are located anteriorly in the penile urethra. Valves in this location are a very rare congenital anomaly and most likely represent urethral dilation or a diverticulum proximal to the valve. Endoscopic resection will correct the problem.
Urethrorectal and Vesicourethral Fistulas Etiology. Urethrorectal and vesicourethral fistulas are rare and
almost always associated with an imperforate anus. Failure of the urorectal septum to develop completely leads to persistent com- munication between the rectum posteriorly and the urogenital tract anteriorly.
Clinical manifestations and treatment. Children with a urethrorectal or vesicourethral fistula may pass fecal material and gas through the urethra. If the anus has formed normally with an external opening, urine may drain through the rectum. The diagnosis is made with cystoscopy and contrast-enhanced radiography to delineate a blind rectal pouch or communication. Surgery is needed to resect the fistula and open the imperforate anus.
Hypospadias In hypospadias, the urethral meatus is located on the ventral under- surface of the penis or on the perineum (Fig. 31.2). The condition may occur with varying degrees of severity. In the least severe cases, the meatus is located distally on the penis, either at the corona or on the undersurface of the glans. With increasing severity of the condition, the meatus assumes a more proximal location and is more often associated with chordee, or curvature of the penile shaft (Fig. 31.3).
Etiology and treatment. Hypospadias is the result of incomplete fusion of the urethral folds, so the meatus may be found anywhere along the phallus from the perineum to the glans. In the majority of cases hypospadias occurs distally, with about 85% of all cases involving the glans or corona. Because incomplete fusion of urethral folds may indicate insufficient masculinization, it is recommended that the more severe penoscrotal and perineal openings be evaluated for conditions of intersex.
Management of hypospadias involves surgical repair. Many procedures are available, with several repairs indicated for each type of hypospadias. The goal of surgery is a good overall cosmetic appearance that will allow the patient to stand and direct his urinary stream and will also allow normal sexual function.
range in newborns is 2.0 to 3.5 cm, so micropenis may be defined as a stretched length of less than 1.9 cm.
Etiology and pathogenesis. Penile development and growth are both testosterone dependent. Therefore micropenis may result from defects in testosterone production or a deficiency that results in poor growth of the organs that are targets of this hormone.
Diagnoses and treatment. Patients with micropenis must be evaluated for endocrine abnormalities. To check for these, one should measure serum levels of testosterone, luteinizing hormone, and follicle-stimulating hormone (FSH). A karyotype should also be obtained. Depending on the results of these measurements, the problem may be determined to involve the hypothalamic-pituitary axis (Prader–Willi and Kallmann syndromes) or to be some form of a testicular disorder (Klinefelter syndrome).
Treatment depends on administering testosterone, either intramus- cularly (IM) or topically, to stimulate penile growth. Such treatment requires caution because skeletal growth may be altered by premature closure of the epiphyseal growth plates in the long bones. In rare cases, when micropenis fails to respond to testosterone, a female sex assignment may be indicated.
Urethral Valves The vast majority of urethral valves are posterior in location and occur in the distal prostatic urethra. They are the most common cause of urinary obstruction in male newborns and infants. These valves are mucosal folds that resemble thin membranes and cause obstruction when the child attempts to void (Fig. 31.1).
Etiology. Many theories have been given to explain how valves develop. It has been suggested that several different processes may occur to form different posterior valves. Most commonly, posterior valves may result from abnormal insertion and persistence of the distal Wolffian ducts. Less frequently, a persistent urogenital membrane may result in valves and obstruction.
Clinical manifestations. Children with posterior valves may have variable degrees of obstruction. In the most severe cases, intrauterine renal failure may cause oligohydramnios (decreased amniotic fluid), pulmonary hypoplasia (incomplete lung development), and either stillbirth or extreme distress at the time of delivery. More frequently, inability to void is noted shortly after birth (normal voiding occurs within 48 hours after birth), or the infant has abdominal masses rep- resenting a thickened palpable bladder or hydronephrotic kidneys. Varying degrees of azotemia and renal failure occur with this scenario.
Type 1
Type 2
Type 3
FIG 31.1 Posterior urethral valves. (Redrawn from Young HH, Frontz WA, Baldwin JC: Congenital obstruction of the posterior urethra. J Urol 1919;3:289.)
CHAPTER 31 Alterations in Male Genital and Reproductive Function 643
D E
CA B
FIG 31.2 Varying forms of hypospadias. A, Glanular hypospadias. B, Subcoronal hypospadias. Note the dorsal hood of foreskin. C, Penoscrotal hypospadias with chordee. D, Perineal hypospadias with chordee and partial penoscrotal transposition. E, Megameatal variant of hypospadias diagnosed after circumcision; note absence of hooded foreskin. (From Kliegman RM et al: Nelson textbook of pediatrics, ed 19, Philadelphia, 2011, Saunders.)
Epispadias In epispadias, the urethra opens on the dorsal aspect of the penis at a point proximal to the glans (see Fig. 31.3). Although much less common than hypospadias, it can be considerably more disabling.
Etiology and treatment. The embryogenesis of epispadias is related to another congenital condition: exstrophy of the bladder. In this condition, the abdominal wall fails to form below the level of the umbilicus. At birth, the back wall of the bladder is exposed to the external environment. The development of epispadias is simply a mild degree of exstrophy, with a deficiency of abdominal wall formation present inferiorly. Most commonly, the defect extends proximally to involve the urinary sphincter and results in urinary incontinence. Less commonly, the urethral meatus is located more distally along the dorsum of the penis and is accompanied by urinary continence because the sphincter is not affected.
Management of exstrophy and proximal epispadias with incontinence is difficult and involves staged surgical procedures to reconstruct a continent bladder neck and a functional urethra. The less common distal epispadias is usually managed with tubular reconstruction pro- cedures similar to those used for repair of hypospadias.
Acquired Disorders Priapism Priapism may be defined as a painful, persistent erection. The patient usually reports several hours of painful erection in which the corpora cavernosa are tense with congested blood. The corpus spongiosum and glans are characteristically soft and uninvolved.
Etiology and treatment. The causes of priapism are multiple. Most cases are idiopathic, with the next most common cause being sickle cell disease. Other etiologic factors include use of anticoagulant therapy, presence of diabetes mellitus or leukemia, and use of certain
644 UNIT IX Genital and Reproductive Function
Peyronie Disease Etiology and treatment. Peyronie disease refers to the formation
of palpable, fibrous plaque on the surface of the corpora cavernosa. This plaque subsequently causes curvature of the penis with painful, incomplete erections. No satisfactory treatment for this disease is available, although some cases may remit with time. Conservative therapies that have had limited success include the use of aminobenzoate potassium (Potaba), colchicine, or pentoxifylline (Trental). Intralesional injection of collagenase Clostridium histolyticum with penile modeling can correct the problem in some patients. In addition, several operative procedures have been developed. These procedures involve excising the plaque and repairing the corporal defect with a graft or plicating the corporal bodies.
Urethral Strictures Etiology. Urethral strictures are fibrotic narrowings of the urethra
and are usually composed of scar tissue. Most acquired strictures are due to a prior infection such as gonorrhea, or trauma. Traumatic causes can be both iatrogenic, such as large urethral catheters and instrumenta- tion, and noniatrogenic, such as straddle injuries.
antidepressant medications. Recently intracavernosal injection of vasoactive substances for the management of erectile dysfunction (ED) has been noted to cause priapism. On a rare occasion, oral erectile dysfunction medications can cause priapism. Although multiple causes exist, the common abnormality is probably an obstruction of venous drainage resulting in the buildup of viscous, poorly oxygenated blood in the corpora. If the process is allowed to continue, fibrosis of the corpora cavernosa will eventually occur and may cause ED.
Management of priapism may involve a combination of measures, depending on the cause and duration of the condition. Initial therapy for priapism secondary to sickle cell disease includes sedation and oxygen. For the management of priapism secondary to other causes, initial measures may include aspiration of blood from the corpora, as well as injection of α-adrenergic agents. If the priapism remains refractory to these initial measures, a surgical shunting procedure may be necessary in which a shunt is created between the erect corpora cavernosa and the detumesced corpus spongiosum.
Phimosis and Paraphimosis Etiology, clinical manifestations, and treatment. Phimosis occurs
when the uncircumcised foreskin cannot be retracted over the glans of the penis (Fig. 31.4A). Phimosis is usually the result of chronic inflammation and infection from poor hygiene. Calculi and squamous cell carcinoma may occur, although it is usually the presence of erythema, tenderness of the phimotic foreskin, or a discharge that prompts the patient to seek medical attention. Management involves treating the infection with antifungal agents or antibiotics, followed by circumcision.
Paraphimosis, on the other hand, occurs when a foreskin that has been retracted over the glans up onto the shaft of the penis cannot be replaced in its normal position (see Fig. 31.4B). In this condition, which is usually secondary to chronic inflammation under the foreskin, a constricting ring of skin forms around the base of the retracted glans. The constriction causes venous congestion of the glans, with further swelling and edema making the condition worse. Treatment entails reducing the paraphimotic foreskin back over the glans, which can usually be accomplished by compressing the glans to reduce the edema. Occasionally, a slit or formal circumcision is needed to manage the problem.
A B FIG 31.4 A, Phimosis. B, Paraphimosis.
Symphysis absent
Urethra
1
2
3 4
Chordee
Urethral openings 1. Glanular 2. Penile 3. Penoscrotal 4. Perineal
A B
FIG 31.3 Epispadias (A) and hypospadias (B) showing possible locations of the urethral meatus.
CHAPTER 31 Alterations in Male Genital and Reproductive Function 645
Finally, it must be remembered that successful sexual function depends not only on intact vascular, hormonal, and neurologic systems, but also on intact psychological and social responses. Several psychological factors may be manifested as problems of low desire, erectile failure, or premature ejaculation. A discussion of the psychological contribution to ED is beyond the scope of this book.
Treatment. Management of ED requires an initial evaluation to differentiate organic causes from psychogenic causes. Further evaluation to distinguish among the various organic causes may then be needed. Once a psychogenic cause has been ruled out, several therapeutic options exist. Surgical options include the insertion of an inflatable or semirigid prosthetic device into the corpora cavernosa. Several investigators have discovered that intracavernous injection of various vasoactive substances can cause an erection. Several of these substances, including papaverine, phentolamine, and prostaglandin E1, are commonly used and afford a nonsurgical treatment option.
Viagra, the first oral therapy for ED, is the citrate salt of sildenafil, a selective inhibitor of cyclic guanosine monophosphate (cGMP)–spe- cific phosphodiesterase type 5 (PDE5). To understand its clinical pharmacology, a review of some of the physiologic mechanisms of erection follows. Briefly, erection of the penis involves release of nitric oxide in the corpus cavernosum during sexual stimulation. Nitric oxide then activates the enzyme guanylate cyclase, and the subsequently increased levels of cGMP produce smooth muscle relaxation in the corpus cavernosum and allow inflow of blood. Sildenafil has no direct relaxant effect on isolated human corpus cavernosum, but it enhances the effect of nitric oxide by inhibiting PDE5, which is responsible for degradation of cGMP in the corpus cavernosum. When sexual stimula- tion causes local release of nitric oxide, inhibition of PDE5 by sildenafil causes increased levels of cGMP in the corpus cavernosum, smooth muscle relaxation, and inflow of blood to the corpus cavernosum, which results in erection (Fig. 31.5). Sildenafil citrate at the recom- mended doses appears to have no effect in the absence of sexual stimulation and affords another nonsurgical treatment option. Other PDE5 inhibitors for ED are Levitra and Cialis. In any particular patient, one of the three available oral medications may work better than the others. None of these agents should be used in conjunction with nitrate medications.
Another nonsurgical alternative entails the use of a vacuum device to sustain an erection. Finally, in specific cases of ED, surgical procedures may be done to revascularize the arterial supply of the penis or ligate the penile venous drainage.
Premature Ejaculation Premature ejaculation (PE) is the most common male sexual dysfunction and is present in up to 30% of all males. The International Society for Sexual Medicine defines PE as male sexual dysfunction characterized by ejaculation that always or almost always occurs before or within 1 minute of vaginal penetration, as well as the inability to delay ejaculation upon all or almost all vaginal penetrations combined with negative personal consequences, such as distress, bother, frustration, and/or the avoidance of sexual intimacy.
Etiology and treatment. The etiology of PE is not well defined, but can be both biological and psychosocial. The diagnosis is achieved with a careful medical and sexual history and physical examination.
Some medications for treatment are listed in Table 31.1. Further research will elucidate the causes and allow for better treatment in the future.
Infectious Disorders Sexually transmitted infections (STIs) are common in the male genital
system. A number of infections are sexually transmitted and affect the
Clinical manifestations and treatment. A decreased urinary stream is the most common complaint. Other common complaints include urethral discharge, infection, and urine retention. Urethral strictures are usually diagnosed by cystoscopy or retrograde urethrography, which would demonstrate a narrowing of the urethra. Management of urethral strictures involves procedures to dilate, incise, or reconstruct the urethra, depending on the extent and duration of the stricture.
Erectile Dysfunction Erectile dysfunction (ED) is the inability to achieve or maintain an erection sufficient for satisfactory sexual performance. It is highly prevalent in aging men, affecting approximately 50% of men older than 60 years of age. Its prevalence and incidence are highly connected with risk factors such as hypertension; elevated cholesterol level; presence of diabetes mellitus and/or metabolic syndrome; and lifestyle choices such as smoking, obesity, and lack of exercise.
The physiologic process of penile erection is a complex interaction of the vascular, hormonal, and neurologic systems. ED may be primary or secondary. Primary ED refers to the inability to attain an erection throughout life and is often related to deep-seated psychiatric problems of some duration. Occasionally, vascular trauma sustained during early childhood or adolescence may account for primary ED.
Etiology. Far more common than primary ED is secondary ED. An individual with secondary ED is no longer able to achieve normal erections but did have normal erections in the past. The causes of second- ary ED are multiple and may be discovered by examining the patient’s medical history. Common causes of secondary ED are peripheral vascular disease, the use of certain medications, endocrine problems, trauma, iatrogenic causes (surgery), and psychological causes. To differentiate organic causes from psychogenic ED, one relies on the history, physical, and basic laboratory testing such as measurement of serum glucose and testosterone levels. Penile tumescence testing can also be utilized to make this distinction.
Arterial insufficiency of the penis may occur from obstruction of the arterial supply. Several processes may account for this obstructive arte- riosclerosis. Stenosis of the arteries secondary to atheromatous plaque may be the most common etiologic factor. Diabetes mellitus not only may result in occlusion of arterial vessels, but also may cause a neuropathy of the pudendal nerve that might result in ED. Most investigators have sug- gested that ED may result from excessive venous drainage from the penis. This occurs because the blood is not adequately trapped in the corpora.
The list of medications that may cause ED is long. Several antihy- pertensive agents, including propranolol, monoamine oxidase inhibitors, and thiazides, have been associated with varying degrees of ED. Other medications linked to ED include phenothiazines, antihistamines, and some antidepressants.
Endocrinopathy accounts for a small percentage of ED cases. Pituitary dysfunction resulting in decreased or no secretion of luteinizing hormone may result in decreased secretion of testosterone. Primary failure of the testes may also cause decreased secretion of testosterone. Finally, excessive secretion of the hormone prolactin by the pituitary gland may result in low testosterone levels.
Trauma to the penis resulting in penile fractures and damage to penile erectile tissue may occasionally lead to partial or complete impotence. More common injuries include pelvic fractures with subsequent damage to the penile vascular and nervous supply. Iatrogenic trauma secondary to several commonly performed operations, including aortoiliac vascular surgery, and radical pelvic cancer operations may also result in ED. Peyronie disease is also associated with ED.
A newer concept in ED is the idea of vascular endothelial damage, which can be diffuse throughout the body. Some researchers believe ED may be an indicator of coronary artery disease.
646 UNIT IX Genital and Reproductive Function
Cavernous nerve
Cavernous nerve
Adrenergic
Cholinergic
Acetylcholine Forskolin
Prostaglandin E1
Receptors
Increased inositol
triphospate
Ca2+
Ca2+
Ca2+
Stimulation
Inhibition
Ca2+
Decreased Ca2+
Endoplasmic reticulum
Nonadrenergic, noncholinergic
Nitric oxide
K+
K+
L-Arginine
Smooth- muscle cell
Endothelial cell
O2
5' AMP
5' GMP
ATPeNOS
G protein
cAMP
PDE 2, 3, 4
Papaverine
Myosin head detaches
from actin
Smooth- muscle
relaxation
Adenylyl cyclase
cAMP- specific protein
kinase
cAMP- specific protein
kinase
Guanylyl cyclase
cGMP
PDE 5 GTP
Sildenafil Papaverine Zaprinast
FIG 31.5 Mechanism of corpus cavernosum smooth muscle relaxation. Smooth muscle relaxation in the corpus cavernosum is the underlying mechanism of erection. The principal neurotransmitter is NO acting through cGMP and G-protein. Pharmacologic agents that produce erection act through this pathway by regulation of the intracellular balance of Ca2+ and K+ concentrations. ATP, Adenosine triphosphate; cAMP, cyclic adenosine monophosphate; cGMP, cyclic guanosine monophosphate; GTP, guanosine triphosphate; NO, nitric oxide; eNOS, nitric oxide synthase; PDE5, phosphodiesterase type 5. (Redrawn from Lue TF: Erectile dysfunction. New Engl J Med 2000;342:1802–1813.)
CHAPTER 31 Alterations in Male Genital and Reproductive Function 647
in cases of suspected stage III disease. Systemic chemotherapy is also used to treat metastatic disease.
The prognosis of penile carcinoma depends on the stage of disease. The 5-year survival rate for men with tumors localized to the penis is 65% to 90%. With inguinal node involvement, 5-year survival rates drop to about 30% to 50%, and if distant metastases are present, the 5-year survival rate is low.
TABLE 31.1 Medical Therapy Options for the Treatment of Premature Ejaculation*
Oral Therapies Trade Names† Recommended Dose‡§
Nonselective Serotonin Reuptake Inhibitors Clomipramine Anafranil 25–50 mg/day
or 25 mg 4–24 hr preintercourse
Selective Serotonin Reuptake Inhibitors Fluoxetine Prozac, Sarafem 5–20 mg/day Paroxetine Paxil 10, 20, 40 mg/day
or 20 mg 3–4 hr preintercourse
Sertraline Zoloft 25–200 mg/day or 50 mg 4–8 hr preintercourse
Topical Therapies Lidocaine/
prilocaine cream EMLA cream Lidocaine 2.5%/prilocaine 2.5%
20–30 min preintercourse
*This list does not reflect order of choice or efficacy. †Trade names listed may not be all-inclusive. ‡Peak plasma concentrations occur 2 to 8 hr postdose, and half-lives range from 1 to 3 days. §Titrate doses from low to high based on response.
penis and urethra, including gonococcal urethritis, nongonococcal urethritis, syphilis, herpes, and genital warts. Gonococcal and non- gonococcal urethritis and syphilis are effectively managed with antibiotics. Herpes and genital warts are associated with viruses and tend to be chronic, with intermittent recurrence. A more in-depth discussion of STIs is provided in Chapter 34.
Neoplastic Disorders Neoplasms of the Penis
Etiology. Although cancer of the penis is rare in the United States and accounts for less than 0.2% of cancer deaths, its prevalence fluctuates widely among various locations. The causes are poorly understood, but phimosis of the foreskin accompanied by chronic inflammation has been thought to be the primary etiologic factor. The incidence of penile cancer among circumcised men is extremely low.
The majority of penile cancer cases are squamous cell carcinoma (97%). They usually occur on the glans or the inner surface of the foreskin. Metastasis occurs by lymphatic dissemination, with initial involvement of the palpable inguinal lymph nodes. Death from penile carcinoma is a result of uncontrolled lymphatic spread and subsequent necrosis of the overlying skin, debilitation, and sepsis.
The lesion of penile cancer is usually ulcerative and fungating in appearance and may be associated with pain, bleeding, and urethral discharge. Inguinal adenopathy is present in more than 50% of patients at the time of diagnosis, although frequently the adenopathy represents an inflammatory response secondary to the lesion rather than metastasis.
Treatment. Therapy for penile carcinoma depends on the stage of the lesion. Topical chemotherapy and radiation therapy may be considered for certain lesions. Larger distal penile lesions often require partial penectomy, whereas proximal lesions may require total penectomy with creation of a perineal urethrostomy. Finally, removal of the involved inguinal lymph nodes by inguinal lymphadenectomy may be performed
KEY POINTS • Congenital disorders of the penis may result from hormonal deficiencies or
abnormalities in embryonic development. Micropenis, for example, is usually a result of testosterone deficiency. Urethral valves, fistulas, and malpositioning of the urinary meatus (hypospadias, epispadias) are related to abnormal embryonic development.
• Priapism is a persistent, painful erection, most commonly of unknown cause. Priapism may occur in conditions that cause obstruction of venous drainage, including sickle cell anemia, anticoagulant therapy, diabetes mellitus, certain antidepressant medications, and PDE5 inhibitors such as Viagra.
• Phimosis and paraphimosis are disorders of the foreskin. Phimosis is associated with chronic inflammation and poor hygiene and results in a foreskin that cannot be retracted. Paraphimosis refers to a foreskin that remains retracted and cannot be returned to its normal position.
• Urethral strictures may be congenital or acquired. Most acquired stric- tures are secondary to gonorrheal infection or urethral trauma. Weak urinary stream, bladder infections, and retained urine are common manifestations.
• Erectile dysfunction (ED) is the inability to achieve a sustained erection. Causes of ED are categorized as primary and secondary. Primary ED is rare and is usually related to adolescent vascular trauma or psychiatric problems. Secondary ED may be due to a variety of factors, including vascular disease, medications, endocrine disorders, trauma, and psychologi- cal distress.
• A number of infections are sexually transmitted and affect the penis and urethra, including gonococcal urethritis, nongonococcal urethritis, syphilis, herpes, and genital warts. Gonococcal and nongonococcal urethritis and syphilis are effectively managed with antibiotics. Herpes and genital warts are associated with viruses and tend to be chronic, with intermittent recurrence.
• Penile neoplasms are rare, particularly in circumcised males. Phimosis and chronic inflammation may be important etiologic factors. Like other neoplasms, penile cancer has a better prognosis if managed before dissemination.
DISORDERS OF THE SCROTUM AND TESTES Congenital Disorders Cryptorchidism Cryptorchidism means “hidden testis” and refers to any testis that occupies an extrascrotal position. The cryptorchid testis may be incompletely descended and as such be located intraabdominally, within the inguinal canal, or just external to the canal but above the scrotum. Occasionally the testis may emerge from the external ring of the inguinal canal and be misdirected into an abnormal extrascrotal position. In this situation the testis may be called ectopic. An ectopic testis may be located in any of several locations but is most commonly found in a superficial inguinal pouch (Fig. 31.6).
The incidence of cryptorchidism is about 0.7% to 1.0% of male infants at 1 year of age. The cause of the condition is uncertain but may be related to an intrinsic testicular defect or a subtle hormonal deficiency.
648 UNIT IX Genital and Reproductive Function
characteristically small and soft in the morning but larger and tense at night as it fills with fluid from the abdominal cavity.
Hydroceles may also develop secondary to scrotal injury, radiation therapy, infection of the epididymis, or testicular neoplasms. More commonly, however, the cause is uncertain, with the hydrocele developing slowly over time and occurring in middle-aged or elderly men. These acquired hydroceles may vary in size and consistency from small and soft to large and tense. The fluid is usually clear and yellow.
Treatment. Because a hydrocele is a benign condition, treatment is required only if the fluid collection becomes uncomfortable for the patient. Occasionally, a tense hydrocele might restrict circulation to the testicle. Management usually involves a surgical procedure to drain the fluid with either resection or plication of the hydrocele sac to prevent reaccumulation of the fluid. Aspiration of the hydrocele may be per- formed, although fluid often reaccumulates.
The incompletely descended, cryptorchid testis undergoes deleterious changes. The tubules become fibrotic, with a deficiency of spermato- genesis and subsequent infertility. More important is the increased incidence of testicular malignancy in cryptorchid testes. Several studies have revealed an increased prevalence of testicular tumors in subjects with a history of cryptorchidism.
Treatment. Because of the increased risk of malignancy and infertility, treatment at an early age to bring the testis into a normal scrotal position is recommended. An operative procedure (orchiopexy) is usually required, although in certain situations descent may be stimulated by the admin- istration of human chorionic gonadotropin, which is given in a series of intramuscular injections.
Acquired Disorders Hypogonadism Androgen deficiency in the aging male (ADAM)—or andropause—is increasingly recognized as a problem for American men. The U.S. FDA estimates that between 4 and 5 million men suffer from hypogonadism. There are multiple causes (Box 31.1), but primary testicular failure is the most common etiology. The effects of ADAM include ED, loss of muscle tone, osteoporosis, and lipid metabolism changes. It is also associated with metabolic syndrome.
The diagnosis is made by determining the serum testosterone level. Other laboratory tests may include measurement of prolactin and luteinizing hormone (LH) levels.
Treatment. Fortunately, it is quite easy to treat because multiple forms of testosterone can be administered, including IM injections, patches, gels, and subcutaneous pellets. Patients receiving replacement therapy need to be monitored for prostate cancer and polycythemia.
Hydrocele Etiology and clinical manifestations. A hydrocele consists of a fluid
collection surrounding the testicle or spermatic cord and contained within the tunica or processus vaginalis (Fig. 31.7). Scrotal swelling in infants or young boys may indicate a hydrocele. These congenital hydroceles exist because of communication between the abdominal cavity and scrotum through the processus vaginalis. The scrotum is
Suprapubic
Femoral
Perineal
Superficial inguinal
High scrotal
Intracanalicular
Abdominal
Normal
FIG 31.6 Sites of ectopic testes.
From Carson CC et al: Evolving concepts in the management of androgen deficiency in the aging male. Urol 2003;62:105–109.
Primary Secondary
• Cancer chemotherapy • Excessive heat • Iatrogenic injury • Klinefelter syndrome • Malnutrition • Mumps orchitis • Sickle cell disease • Testicular radiation • Testicular trauma
• Adrenal or testis tumor • AIDS • Hemochromatosis • Hepatic cirrhosis • Hypercortisolemia • Hyperprolactinemia • Hypothyroidism • Medications (glucocorticoids, spironolactone,
cimetidine, phenytoin, flutamide, ketoconazole) • Obesity • Occupational exposures • Pituitary ablation (surgical or external radiation
therapy) • Pituitary or hypothalamic tumor • Severe systemic illness • Uremia
BOX 31.1 Etiologies of Adult-Onset Hypogonadism
Fluid
Testicle
FIG 31.7 Hydrocele.
CHAPTER 31 Alterations in Male Genital and Reproductive Function 649
all cases of male infertility, but other factors may also be involved. Some causes of male infertility are identifiable and can be corrected, such as ductal obstruction, varicocele, or hypogonadotropic hypogonadism (a hormone abnormality) (Box 31.2). Other problems can be diagnosed but not corrected, such as bilateral testicular atrophy. Many cases are simply idiopathic or unexplained.
Diagnosis and treatment. The purpose of evaluating the male partner in infertile couples is to determine the cause of the infertility, if possible, so appropriate treatment and counseling can be accomplished. In some couples, treatment can result in pregnancy through intercourse. In others, more advanced treatments are necessary.
In some patients there is no effective treatment and they can be appropriately counseled. Other patients will have a risk of transmitting genetic abnormalities and will need to be made aware of that potential. In some patients a life- or health-threatening condition may underlie the infertility and need treatment.
As with all medical evaluations, there should be a complete and specific history and physical examination. Laboratory testing includes two semen analyses (Box 31.3) and usually an endocrine evaluation (testosterone and FSH). More evaluation could include postejaculatory urinalysis, transrectal ultrasound, scrotal ultrasound, specialized semen tests, and karyotyping.
Testicle
Twisted spermatic cord and blood vessels
FIG 31.8 Testicular torsion.
From Galarneau GJ, Nagler HM: Cost-effective infertility therapies in the ‘90s: to treat or to cure? Contemp Urol 1999;11:32–45.
Endocrinologic causes Testicular abnormalities
Retractile testes Cryptorchidism Torsion
BOX 31.2 Correctable Causes of Male Infertility
Obstruction Vasal Epididymal Ejaculatory
Disorders of ejaculation Sexual dysfunction Varicocele
On at Least Two Occasions Ejaculate volume 1.5–5.0 mL pH >7.2 Sperm concentration >20 million/mL Total sperm number >40 million/ejaculate Percent motility >50% Forward progression >2 (scale 0–4) Normal morphology:
>50% normal* >30% normal† >14% normal‡
And Sperm agglutination <2 (scale 0–3) Viscosity <3 (scale 0–4)
BOX 31.3 Semen Analysis: Reference Values
From Jarow J, Sigman M, Kolettis PN, Lipshultz LR, McClure RD et al: The optimal evaluation of the infertile male: AUA Best Practice Statement, Linthicum, MD, 2010, American Urological Association Education and Research, pp 1–38.
*World Health Organization, 1987. †World Health Organization, 1992. ‡Kruger (Tygerberg) Strict Criteria, World Health Organization, 1999.
Spermatocele Etiology and treatment. Spermatoceles are painless, cystic masses
containing sperm. Although they are usually small, they may be quite large and difficult to distinguish from a hydrocele. The cause of sper- matoceles is uncertain; they may arise from the tiny tubules that connect the epididymis to the testis (vasa efferentia) or from the epididymis itself. Like hydroceles, spermatoceles need not be treated unless they become large enough to trouble the patient, in which case an operative procedure to excise the spermatocele may be performed.
Testicular Torsion Torsion of the testicle is described as a twisting of the spermatic cord with subsequent compromise of the testicular vascular supply and testicular ischemia, followed by infarction (Fig. 31.8). Although torsion may occur in the neonatal period, the majority of cases occur in pre- pubertal boys.
Clinical manifestations. The diagnosis is suggested by the onset of severe pain in one testis, followed by swelling of the scrotum. Lower abdominal pain accompanied by nausea and vomiting may also occur. The condition may be differentiated from epididymitis (inflammation of the epididymis), which is also associated with scrotal swelling, by the presence of vascular echoes detected with a Doppler ultrasound. A testis made ischemic by torsion will not demonstrate blood flow, whereas the inflammation of epididymitis and its hypervascularity show increased vascular flow. Testicular nuclear scanning is another way to diagnose testicular torsion.
Treatment. Management of torsion involves an operation to open the scrotum, untwist the testis, and “pex” (secure) it to the scrotal wall. Because the chance of torsion also involving the contralateral testis is increased, the contralateral testicle is “pexed” to the scrotal wall as well. If detorsion is accomplished within 12 hours of the event, the prognosis for testicular viability is usually good. If torsion has been present for more than 24 hours, viability of the testis is doubtful.
Male Infertility Etiology and pathogenesis. Approximately 15% of couples are unable
to conceive after 1 year of unprotected intercourse. A male factor is solely responsible in about 20% and contributory in another 30% to 40% of infertility cases. An abnormal semen analysis is present in almost
650 UNIT IX Genital and Reproductive Function
suggests that several unrecognized factors may be contributing to the pathogenesis.
Histologically, testicular tumors may be considered in two groups. In the first group are nongerminal neoplasms, including tumors that originate from either the Leydig cells or other stromal tissue cells of the testis. In the second group are germinal neoplasms, which are derived from the germinal cells of the testis. This group accounts for the vast majority (95%) of testicular tumors. Germinal neoplasms may be further subdivided into two groups: seminomas and nonseminomas.
Treatment. Although germinal tumors may consist entirely of one histologic subtype, many contain elements of more than one subtype. Treatment and prognosis vary according to the subtype of germinal tumor. For example, seminoma in its early stages is exquisitely sensitive to and easily cured with radiation therapy. On the other hand, nonseminomatous germ cell tumors in the early stage are usually successfully managed with surgery. The prognosis is also variable. Pure choriocarcinomas are usually first seen at an advanced stage with distant metastases. Treatment is usually less effective for this aggressive lesion. However, the majority of germ cell tumors may be effectively managed even if lymph node metastases are present.
Except for choriocarcinomas, which disseminate by vascular means, testicular germ cell tumors usually metastasize through the lymphatic system. They usually disseminate in a stepwise manner, first involving the retroperitoneal lymph nodes lying adjacent to the great vessels. If unmanaged, the disease may progress to involve other lymph nodes and other organs such as the lungs.
Multiple staging systems have been devised to classify the extent of this disease. Most are a variation of the system proposed by Boden and Gibb in 1951.
Because the management of testicular tumors is complicated and somewhat controversial, a complete discussion is not possible here; however, several issues can be highlighted. After diagnosis of a testicular tumor, an operation to remove the testicle is performed. This procedure involves an inguinal incision with removal of the testis from the scrotum, followed by ligation and removal of the spermatic cord and testicle together. Histologic classification, additional staging studies, and other factors then determine further treatment. This treatment may involve close observation with frequent radiologic studies to determine new progression, surgery to remove the retroperitoneal lymph nodes (Fig. 31.10), chemotherapy, or radiation therapy. Some situations may call for a combination of these measures.
There are multiple treatments for male factor infertility. In men with varicoceles surgical repair or embolization can often improve fertility. Ductal obstruction can sometimes be surgically treated. In other cases more advanced treatment is necessary such as microsurgical epididymal sperm aspiration or percutaneous testicular sperm extraction. This allows for retrieval of sperm that can then be used for in vitro fertilization or intracytoplasmic sperm injection. Some patients will improve their semen analysis with endocrine therapy, and in some couples intrauterine insemination will be successful. For some couples the best option may be donor sperm or adoption.
Infectious Disorders Epididymitis
Etiology. Epididymitis, or inflammation of the testis, has several causes. It may occur as a result of trauma or the reflux of sterile urine up the vas deferens. However, the majority of cases are probably secondary to a bacterial cause, with both sexually transmitted organisms (Neisseria gonorrhoeae and Chlamydia trachomatis) and non–sexually transmitted organisms (Pseudomonas and Escherichia coli) involved.
Clinical manifestations and treatment. With epididymitis the scrotum may be enlarged, reddened, and tender. The pain may radiate along the spermatic cord into the inguinal area. Fever may also occur, as may urethral discharge, cystitis, and cloudy urine. Laboratory testing usually reveals an elevated white blood cell (WBC) count, and urine culture may reveal the infecting organism.
Treatment for the condition involves bed rest, scrotal support, and administration of antibiotics. In advanced cases, incision and drainage with the intravenous administration of antibiotics may be needed to effectively manage a resulting scrotal abscess. On rare occasions, the testicle may need to be removed.
Fournier Gangrene Etiology, clinical manifestations, and treatment. Fournier gangrene
is a severe but rare condition involving gangrenous necrosis of the scrotum. Symptoms are pain and swelling of the scrotum, fever and chills, and sepsis. The diagnosis can often be made by history and physical examination. Additional tests such as ultrasound, computed tomography (CT), or magnetic resonance imaging can also be helpful in diagnosis. Usually, an underlying disease such as diabetes, alcoholism, or another general debility predisposes the patient to such an aggressive infection. Extravasation of infected urine from urethral trauma, a perforated urethral diverticulum, or a non–urinary tract source such as a perirectal abscess may act as the source of infection. Treatment, which must be instituted swiftly, includes incision and drainage of fluctuant areas and debridement of necrotic tissue along with administra- tion of antibiotics. This often is a fatal disease unless it is managed quickly and aggressively.
Neoplastic Disorders Neoplasms of the Testis Although testicular tumors are rare, with a prevalence of 3.7 cases per 100,000 population, their peak incidence is in late adolescence to early adulthood. These neoplasms therefore represent the most common solid tumors of U.S. men ages 20 to 34 years. Testicular self-examination is an important tool for early detection because prompt treatment is associated with a higher success rate. Fig. 31.9 shows an ultrasound image demonstrating cancer in a testis.
Etiology. Although the cause of testicular tumors is uncertain, a strong association is seen between cryptorchidism and the subsequent development of malignancy. Nevertheless, the majority of patients with testicular tumors have no history of cryptorchidism, which
FIG 31.9 Testis ultrasound demonstrating cancer.
CHAPTER 31 Alterations in Male Genital and Reproductive Function 651
the aging male endocrine system. The process involves hyperplasia of the glands surrounding the prostatic urethra (Fig. 31.11). As this tissue increases in size, it compresses the urethra and produces symptoms of bladder outlet obstruction.
Clinical manifestations. Symptoms of obstruction may be minimal at first but may eventually progress to complete obstruction and urinary retention. A decrease in the force of the urinary stream, hesitancy or difficulty in initiating a urinary stream, and interruption of the stream may occur. Because the bladder may fail to empty completely, infection associated with residual urine may occur. Fig. 31.12 illustrates possible complications of benign prostatic enlargement.
The diagnosis of BPH usually involves recognition of the characteristic symptoms. Rectal examination disclosing an enlarged prostate, urethral catheterization or bladder scanning to document a large postvoid urinary residual, and radiographic evidence of hypertrophy and obstruction on CT scan (Fig. 31.13) or abdominal ultrasound are some of the measures that may be used to make the diagnosis. Urodynamics are sophisticated measures of urinary function that can help confirm the diagnosis.
Treatment. The first line of treatment is with medication such as α-blockers or 5α-reductase inhibitors. The former treatment decreases the tension in the prostate by relaxing the muscle fibers in the gland. This reduces pressure in the bladder neck and urethra, allowing easier flow. The latter treatment actually decreases the size of the gland by blocking the conversion of testosterone to dihydrotestosterone. This can shrink the gland by up to one-third and thereby reverse the years of growth that have caused impingement of the urethra.
The next forms of treatment are the minimally invasive treatments that are usually performed in the physician’s office. These include microwave therapy, needle ablation, and some other forms of treatment to decrease the tissue squeezing the urethra closed. They are usually well tolerated but may not cause total relief of the obstruction, and the long-term results are variable.
The last form of treatment is surgery. The classic operation for BPH is called a transurethral resection of the prostate (TURP). This procedure uses a resectoscope that is passed through the penis and into the prostate. An electric wire is then used to resect chips of tissue from the interior of the gland to form an open channel for urination.
DISORDERS OF THE PROSTATE
Benign Prostatic Hyperplasia Benign prostatic hyperplasia, also referred to as benign prostatic hypertrophy (BPH), is a very common disorder. An estimated 80% of men older than 60 years experience some degree of BPH. It is important to recognize that BPH and prostate cancer are not related entities, and no study has conclusively demonstrated that BPH predisposes to the development of prostate cancer.
Etiology. Although the exact cause of BPH is unknown, the occur- rence of the disease with aging suggests a relationship to changes in
FIG 31.10 CT scan demonstrating large retroperitoneal lymph nodes.
BPH tissue
True prostate tissue
Prostatic capsule
Prostatic urethra
narrowed by
enlarged prostate
Surgical capsule
Urinary bladder
FIG 31.11 Gross appearance of hyperplastic prostatic tissue obstructing the prostatic urethra. BPH, benign prostatic hyperplasia.
KEY POINTS • Cryptorchidism refers to a testis located in a position other than the scrotum.
Often the testis has failed to descend completely and is located in the inguinal canal. Undescended testes are associated with infertility and an increased risk of testicular malignancy.
• A hydrocele is a collection of fluid in the testicle or spermatic cord. In the pediatric age group it is associated with a communication between the abdominal cavity and the scrotum (hernia). Hydroceles are benign and treated only if they become uncomfortable. A spermatocele is a cyst that contains sperm. Like hydroceles, they are benign and do not require treatment unless they cause discomfort.
• Testicular torsion refers to a twisting of the spermatic cord with subsequent testicular ischemia and infarction. Sudden onset of severe testicular pain is common. If the torsion is reduced within 12 hours, the testicle may be viable.
• Inflammation of the epididymis, called epididymitis, is most commonly associated with infectious agents. Manifestations include a swollen, tender, reddened scrotum with associated bladder infection and cloudy urine. Antibiotics are indicated. Aggressive infections of the scrotum may result in Fournier gangrene manifested by gangrenous necrosis of the scrotum.
• Although rare in the population, testicular cancer is the most common solid tumor in men ages 20 to 34 years. The great majority of testicular neoplasms originate in the germ cells. Most germ cell tumors can be effectively managed even after lymph node metastasis. Management includes surgical removal of the testis and spermatic cord, with irradiation and chemotherapy as indicated.
652 UNIT IX Genital and Reproductive Function
The causative organism in bacterial prostatitis is usually E. coli, with species of Proteus, Klebsiella, Enterobacter, Pseudomonas, Serratia, Staphylococcus, and Enterococcus occurring less commonly. Possible routes of infection include ascending infection up the urethra, reflux of infected urine into the prostatic ducts, hematogenous infection, and invasion of rectal bacteria by direct extension or lymphogenous spread (Fig. 31.14). Many cases of prostatitis result from periurethral infection associated with an indwelling urethral catheter.
Clinical manifestations, diagnosis, and treatment. Acute bacterial prostatitis is characterized by the onset of fever; chills; low back pain; and the voiding symptoms of frequency, urgency, and dysuria. Rectal examination usually reveals a tender, swollen prostate, and subsequent urinalysis may show the presence of WBCs and bacteria.
The diagnosis of bacterial prostatitis is usually suggested by the initial symptoms and signs. Microscopic inspection of the urine and expressed prostatic secretions may reveal WBCs and bacteria. A urine culture with sensitivity testing for the offending organism is recom- mended to direct therapy with an appropriate antibiotic. In the event of high fever and an elevated WBC count, intravenous antibiotics are recommended.
Chronic bacterial prostatitis may be associated with variable symp- toms. Although some men with chronic bacterial prostatitis may report a history of acute bacterial prostatitis, many have no history of this problem. Most men complain of voiding symptoms with pain localized to various areas, including the perineum, back, suprapubic area, and, occasionally, the testis. High-grade fever and chills are uncommon with this entity, as opposed to acute bacterial prostatitis.
In chronic bacterial prostatitis, pathogenic organisms may persist in prostatic tissues unaltered by the administration of several antibiotics. Because most antibiotics accumulate poorly in prostatic secretions, dis- continuation of antibiotic use often results in reinfection and recurrence of symptoms. It is this occurrence of relapsing infections, often caused by the same organism, that is typical of chronic bacterial prostatitis. Several antibiotic agents, such as trimethoprim-sulfamethoxazole (Septra, Bactrim) or ciprofloxacin, when used for a prolonged period (4 to 6 weeks) have a better cure rate because of their capability to penetrate prostatic tissue.
Prostatitis may also occur secondary to nonbacterial inflammation. In fact, nonbacterial prostatitis probably accounts for the majority of cases of prostatitis. The symptoms of this entity are variable but usually include irritative voiding; symptoms of urgency, frequency, and nocturia; and occasional perineal and suprapubic pain. Although these symptoms are similar to those of bacterial prostatitis, patients have no history of positive urine cultures or urinary tract infections. Treatment may include a course of antibiotics, oral antiinflammatory agents (e.g., ibuprofen), α-blockers, prostatic massage, and, occasionally, sitz baths. Symptoms are often intermittent, and patients should be reassured that the disease is not contagious and does not predispose to the development of cancer or other serious disease.
The final classification of prostatitis, chronic pelvic pain syndrome, is typified by symptoms of prostatitis but no history of urinary tract infection and no evidence of inflammation in prostatic secretions. The cause of this entity is uncertain and may involve spasm of the pelvic floor musculature. Treatment may involve the use of α-adrenergic receptor–blocking agents, antibiotics, or multiple other therapies.
Prostate Cancer Other than skin cancers, prostate cancer is now recognized as the most prevalent form of cancer in men. About 160,000 cases are diagnosed annually in the United States, with approximately 27,000 deaths annually attributed to the disease. Prostate cancer ranks as the second-leading cause of cancer death among men. Cancer of the prostate rarely occurs
A newer alternative to the TURP is laser therapy. In this approach, a scope is passed via the urethra into the prostate, and the tissue is vaporized with a laser fiber to create an open channel.
In some patients with extremely large glands or other bladder pathology, an incision is made in the lower abdomen and an open simple prostatectomy can be performed to remove the adenoma (inner portion of the gland). This creates a large cavity and channel for the urine to pass through.
All of the treatments have various side effects and risks. There- fore each patient should have his treatment tailored to his specific situation.
Prostatitis Prostatitis, or inflammation of the prostate, has several causes and encompasses several syndromes. A common classification of prostatitis proposed by the National Institutes of Health has three categories of prostatitis with further subcategories to define the disease.
Urine retention and reflux
Normal kidney
Normal ureter
Ureter "fishhooks"
Normal bladder
Normal prostate
Dilated pelvis
Hydroureter
Impeded outflow of urine
Hydronephrosis
Enlarged prostate
Diverticulation, thickening
FIG 31.12 Sites for potential complications caused by benign prostatic enlargement (right) are compared with a normal kidney, ureter, bladder, and prostate (left).
CHAPTER 31 Alterations in Male Genital and Reproductive Function 653
cancers have more indistinct cell borders, larger nuclei, and loss of acinar (gland) formation.
Diagnosis. The diagnosis of prostate cancer may involve several clinical scenarios. The disease may be diagnosed after microscopic inspection of prostate tissue removed for the management of presumed BPH. Prostate cancer may also be detected on rectal examination in patients with or without voiding symptoms. Occasionally, patients have urinary retention or even azotemia and renal failure secondary to obstructive nephropathy. Much interest has focused on the search for effective measures to detect prostate cancer in its early and most easily manageable stages. Two techniques, a blood test for serum
in men younger than 50 years, and its incidence increases with age. The majority (95%) of prostate cancers are adenocarcinomas with abnormal proliferation of prostatic glandular structures.
Etiology. The precise cause of prostate cancer is undetermined, although genetic, hormonal, dietary, and viral factors have all been suggested. Varying degrees of aggressiveness of prostate cancer have been recognized, with different tumors expressing different malignant potential and ultimately carrying a different prognosis. Classification of prostate cancers into different groups considers the structure and internal architecture of tumor cells and their pattern of proliferation. For example, cells of the more aggressive or poorly differentiated prostate
FIG 31.13 CT scan demonstrating BPH (circled areas).
Ascending from urethra
Direct extension or lymphatogenous spread of bacteria from rectum
Direct: Descending from bladder or kidneys
Hematogenous: Bacteria from other sites invade by way of bloodstream
FIG 31.14 Postulated pathways of infection to the prostate gland. (From Black JM, Matassarin-Jacobs E: Medical-surgical nursing: clinical management for continuity of care, ed 6, Philadelphia, 2001, Saunders, p 963.)
654 UNIT IX Genital and Reproductive Function
prostate-specific antigen (PSA) and transrectal ultrasonography, have shown efficacy in the early detection of prostate cancer.
The diagnosis of adenocarcinoma of prostate cancer is usually made by checking the PSA level. This simple blood test has been a major factor in the early detection of adenocarcinoma of the prostate. Although it is not very accurate, it is helpful in identifying men who are at risk of having cancer. Since the adoption of its widespread use, most patients have been diagnosed before becoming symptomatic. Many patients will have voiding symptoms because they also have benign enlargement of the gland, which is often also present in men with prostate cancer. If a patient has symptoms from his cancer, it is often too late for cure because the symptoms usually indicate extensive disease. These symptoms include hematuria, weight loss, malaise, anorexia, and back pain.
Most patients will be diagnosed on the basis of an abnormal PSA blood test result, which usually leads to a transrectal ultrasound and biopsy of the prostate.
Because most patients are now diagnosed at an early stage, there is little need for further staging tests. However, if there is concern for more extensive cancer, then they can be evaluated with a bone scan (Fig. 31.15) or CT scan of the abdomen and pelvis.
Treatment. Management of prostate cancer depends on several factors, including the stage of the tumor, as well as the age and health of the patient. Debate exists over treatment for men with localized disease, with options ranging from active surveillance to aggressive therapy. Active surveillance may be an option for men with early-stage prostate cancer. Patients with more worrisome cancer may be candidates for a more aggressive approach, such as surgery to remove the prostate and surrounding tissue (radical prostatectomy), radiation therapy, or cryotherapy (freezing the gland). It is important to note that approxi- mately 70% to 90% of men who undergo radical prostatectomy will experience erectile dysfunction. Urinary incontinence may also occur.
Whole Body Bone: Anterior and posterior views
Body Scan: Side views of neck and shoulder
Left lateral
Right lateral
Lt Post RtRt Ant Lt MDP Dose in mci = 21.3
FIG 31.15 Bone scan demonstrating skeletal metastases.
Cancer of the prostate rarely occurs in men younger than 50 years, and its incidence increases with age. Symptoms vary depending on the stage of the disease. Men who have early-stage prostate cancer may be monitored closely without any treatment. Men with more advanced-stage disease are usually treated more aggressively.
GERIATRIC CONSIDERATIONS Prostate Cancer
Given the effects of surgical intervention, it is important that patients have access to preoperative and postoperative counseling about issues arising from their diagnosis and the effect of various treatments and potential complications.
In addition to radical prostatectomy or radiation therapy, in some cases lymph nodes in the pelvis are removed (pelvic lymph node dis- section). Advanced disease may respond to hormonal manipulation. Orchiectomy, oral administration of estrogens, or IM injection of LH–releasing hormone agonist and antagonist may reduce the patient’s serum testosterone level. Many prostate cancers are androgen sensitive and may be temporarily controlled with androgen ablation. In more advanced cases that are no longer hormonally responsive, palliative measures such as spot radiation treatment of painful areas of bone metastasis and analgesics may be required.
In the last several years there have been advances in chemotherapy and other treatments such as abiraterone and enzalutamide for advanced and castrate-resistant prostate cancer. Another treatment is sipuleucel-T. This therapy is based on autologous cellular immunotherapy to induce the patient’s immune system to attack the prostate cancer cells. A great deal of research is being conducted to identify vaccines and other therapies to prevent and cure this highly prevalent cancer.
CHAPTER 31 Alterations in Male Genital and Reproductive Function 655
KEY POINTS • Symptoms of benign prostatic hyperplasia include diminished force of the
urinary stream, hesitancy, and poor bladder emptying. Transurethral resection of the obstructing prostatic tissue is the usual treatment.
• Inflammation of the prostate, or prostatitis, is characterized by low back pain, urinary frequency, urgency, and dysuria. Fever and chills may also be present with acute bacterial prostatitis. E. coli is the most commonly associated organism. Prostatitis may also occur in the absence of infection.
• Prostate cancer is usually detected as a lump or enlargement of the prostate gland. As with other cancers, early, accurate diagnosis is important for effective therapy. Surgical resection, radiation therapy, and hormone therapy (to reduce androgen levels) may be used. The choice of treatment depends on the grade and stage of the disease and the individual’s age, general health, and life expectancy.
Disorders of the penis and male urethra may be grouped into congenital and acquired anomalies, infections, and neoplasms. Common congenital anomalies include urethral valves and hypospadias. Common acquired disorders involve phimosis, urethral strictures, and ED. Sexually transmit- ted diseases are some of the most common infections involving the penis and urethra; they include gonococcal urethritis, nongonococcal urethritis, syphilis, genital herpes, and genital warts. Neoplasms of the penis and urethra are relatively rare.
Congenital disorders of the scrotum and testes include cryptor- chidism. This condition is one of the most common problems seen
by pediatric urologists. Testicular torsion and Fournier gangrene are two of the more immediate urologic emergencies. Finally, neoplasms of the testes, although rare, may afflict younger men in the prime of life.
Disorders of the prostate account for a majority of the visits to a practicing urologist. Briefly, these disorders can be divided into problems of BPH, prostatitis, and prostatic cancer. Prostate cancer is the most frequently diagnosed cancer in men, with more than 160,000 cases diagnosed and approximately 27,000 deaths yearly.
S U M M A R Y
RESOURCES American Urological Association: Contemporary management of advanced
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32
Female Genital and Reproductive Function Rosemary A. Jadack
K E Y Q U E S T I O N S • What are the major structures of the internal and the external
female reproductive tract? • What are the major hormonal events of the female reproductive
cycle? • Which hormones are involved in breast development during
pregnancy and lactation, and what are their specific functions?
• What physiologic changes are associated with pregnancy? • What gestational events occur in the fetus during each of the
three trimesters of pregnancy? • What hormonal changes lead to menopause? • What physiologic changes and complications may result from
menopausal hormone deficiencies?
C H A P T E R O U T L I N E Reproductive Structures, 656
Organization of the Female Reproductive Organs, 656
Ovaries, 657 Oviducts, 658 Uterus, 658 Vagina, 658 External Genitalia, 658
Menstrual Cycle, 659 Breast, 662
Structure of the Breast, 662
Breast Development, 662
Lactation, 663
Pregnancy, 663 Early Human Development, 663
Implantation, 663
Fetal Membranes and Placenta, 663
Development of the Human Embryo and Fetus, 664
First Month, 664 Second Month, 665 Third Month, 665 Second Trimester, 665 Third Trimester, 665
Parturition, 665
Hormonal Changes, 665 Mechanical Changes, 667
Response of the Mother’s Body to Pregnancy, 667
Metabolism During Pregnancy, 667 Changes in the Female Reproductive Organs, 667 Changes in the Circulatory System, 667 Changes in the Respiratory System, 668 Changes in the Urinary System, 668 Weight Gain and Nutrition During Pregnancy, 668
Menopause, 668
http://evolve.elsevier.com/Banasik/pathophysiology/
The female reproductive system is complex both in structure and in function. From birth to senescence, the organs of the female reproductive system function in concert with each other, with the brain, and with other endocrine organs. This integrated functioning constitutes some of the most intricate and elegant processes of the human body. This chapter presents an overview of these functions, beginning with the development of the female reproductive tract.
The major processes related to the reproductive tract throughout life, including the menstrual cycle, pregnancy, lactation, and menopause, are then described with an emphasis on recent research findings. Health care providers must also consider the developmental, cognitive, functional, social, and financial aspects of women’s reproductive lives. Because the
functioning of the female reproductive system has an enormous impact on the life of the individual woman, increased importance has been placed on the active involvement of women in understanding their own health care needs. Health care professionals are encouraged to include women as collaborators in decisions about their reproductive health.
REPRODUCTIVE STRUCTURES Organization of the Female Reproductive Organs The internal organs of the female reproductive system include the ovaries, oviducts (fallopian tubes), uterus, cervix, and vagina (Fig. 32.1). These
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 32 Female Genital and Reproductive Function 657
organs are situated in the pelvic cavity and are supported and anchored in place by a series of ligaments (Fig. 32.2).
Ovaries The two ovaries, which are the female gonads, are located close to the lateral walls of the pelvic cavity. When the ovary is in its normal position, its long axis is nearly vertical with respect to the horizontal axis of the body. The size of the ovary varies with age and with the stage of the menstrual cycle. It is somewhat larger before than after pregnancy and further reduces in size with the aging process.
The ovary is covered with a single layer of epithelium. Underneath the epithelium is a layer of dense fibrous connective tissue called the tunica albuginea. The tunica albuginea constitutes the outer portion of the cortex of the ovary. The remainder of the cortex consists of connective tissue called the stroma, which contains ova in various stages of matura- tion. The innermost part of the ovary, the medulla, consists of loose connective tissue that is richly supplied with blood and lymph vessels and nerve fibers.
Before birth, hundreds of thousands of oogonia (cells that develop into ova) are present in the ovaries. Thus the entire lifetime supply of ova is established during embryonic development; no new oogonia arise after birth. Each oogonium is surrounded by a cluster of granulosa cells. The oogonium and its granulosa cells constitute a follicle. During prenatal development, the oogonia increase in size and become primary oocytes. By the time of full gestational development, the primary oocytes are in the prophase of the first meiotic division. Ovarian follicular development is shown in Fig. 32.3. During childhood and into adult life, the oocytes enter a nonactive phase. After puberty, a few of the oocytes develop in follicles each month in response to follicle-stimulating
Symphysis pubis
Urethral meatus
Labia minora
Labia majora
Posterior fornix
Rectouterine pouch
Os
Cervix
Anterior fornix
Rectum
Vagina and rugae
Fundus of uterusCervix
ANTERIOR VIEW OF ADNEXA
Fallopian tube
Fimbria
Ovary
Uterus
Bladder
Mons pubis
Clitoris
FIG 32.1 Cross-sectional view of the female genitourinary system. (From Jarvis C: Physical examination and health assessment, ed 7, St Louis, 2016, Elsevier, p 738.)
Ovary
Vagina
Uterus Broad ligament
of uterus
Uterosacral ligament
Ovarian ligament
Fimbria
Fallopian tube
FIG 32.2 View of the female pelvis showing the ovarian and uterine ligaments.
hormone (FSH) secreted by the anterior pituitary gland. The vast majority of follicles and their oocytes die by atresia. Generally, each month, only one mature follicle will develop to eject an oocyte through the wall of the ovary in the process of ovulation, which is described in more detail in the Menstrual Cycle section.
658 UNIT IX Genital and Reproductive Function
a thin deep layer called the basilar layer and a thick superficial layer referred to as the functional layer. During a woman’s reproductive years, the endometrium displays a constant cyclic activity of alternate prolifera- tion and sloughing of the functional layer in response to estrogen and progesterone secretion. These changes will be discussed in more detail in the Menstrual Cycle section.
Vagina The vagina is the sexual organ that enfolds the penis during sexual intercourse, serves as an exit for discarded endometrium, and forms the lower end of the birth canal. It is located anterior to the rectum and posterior to the urethra and urinary bladder. The vagina surrounds the cervix at one end and opens to the vestibule at its other end. The vagina is a highly elastic muscle that is capable of considerable distention. Two longitudinal ridges run along the anterior and posterior walls, with numerous transverse folds called rugae. The vagina is lined by a mucous membrane of stratified squamous epithelium overlying a layer of connective tissue. The vaginal wall is subject to thinning with aging; this and other age-related changes in the female sexual organs are described in the Menopause section.
External Genitalia The external female genital structures include the mons pubis, labia majora, labia minora, clitoris, and vestibule of the vagina (Fig. 32.5). The stages of development of the female external genitalia are depicted in Fig. 32.6. The mons pubis is a rounded elevation in front of the pubis symphysis. It consists primarily of an accumulation of fat. After puberty, the skin over it is covered by coarse hair. The labia majora, which are homologous (i.e., corresponding in structure) with the scrotum of the male, are folds of skin that run downward and backward from the mons pubis to the area behind the vaginal opening. After puberty, the labia majora become pigmented and covered with hair. The labia minora are two small folds of skin located between the labia majora on either side of the vaginal opening. The vestibule of the vagina is the cleft between the labia minora and contains the openings of the vagina, the urethra, and the ducts of the greater vestibular glands (also called Bartholin glands). These glands, along with the lesser vestibular or Skene glands, secrete mucus to provide lubrication during sexual intercourse.
The clitoris is a body of erectile tissue that projects from the anterior end of the vulva at the anterior junction of the labia minora. It is about 2 cm long and 0.5 cm in diameter and is covered by a fold of tissue called the prepuce, which is formed by the merging of labial tissue. The glans of the clitoris is the rounded elevation on the free end of the body and is highly sensitive to stimulation. During sexual arousal, the erectile tissue of the clitoris becomes engorged with blood.
Oviducts The two oviducts, also called the fallopian or uterine tubes, are each about 10 cm long and are located in the upper margin of the broad ligament. Each oviduct runs laterally from the uterus to the uterine end of the ovary. The free end of the oviduct adjacent to the ovary is called the infundibulum. It is shaped like a funnel with long, finger- like projections termed fimbriae. The ampulla, the longest part of the oviduct, has an inner lining consisting of ciliated mucous membrane arranged in longitudinal folds. Beneath this ciliated lining is a double layer of smooth muscle with a thick outer layer of peritoneal serosa. The oviduct has an active role in propelling the ovum toward the uterus; the current created by the beating cilia and the peristaltic contrac- tions of the muscular wall are powerful forces that move ova along the oviduct. Once inside the oviduct, the ovum is moved through the ampulla to the isthmus (the short, narrow portion near the uterus) and finally through the intramural passageway to the uterus. Fertiliza- tion of the ovum occurs in the upper third of the oviduct, and the zygote (fertilized ovum) begins developing as it moves through the oviduct. If no fertilization occurs, the ovum undergoes degeneration in the oviduct.
Uterus The uterus varies in size, shape, location, and structure during various phases of a woman’s life and reproductive status. In the nonpregnant state, the uterus is about 8 cm long, 4 cm wide in its upper part, and 2 cm thick. The rounded part of the uterus, which lies above and in front of the openings of the oviducts, is called the fundus; the main portion of the uterus is the corpus, or body. The lower, narrow portion of the uterus is the cervix, which extends downward to the opening within the vagina. The cervix contains a narrow canal that joins the uterine cavity at the internal os and opens into the vagina at the external os.
The wall of the body and fundus of the uterus consists of three layers: endometrium, myometrium, and serosa (Fig. 32.4). The outermost layer of the uterus, the serosa, consists of a single layer of mesothelial cells supported by a thin layer of loose connective tissue. The middle layer, the myometrium, consists of three layers of smooth muscle with the muscle fibers arranged in a different direction in each layer. The innermost lining of the uterus, the endometrium, consists of two layers:
FIG 32.3 Ovary at 36 weeks’ gestation showing primordial follicles. (From Mutter GL, Prat J. Pathology of the female reproductive track, ed 3, Philadelphia, 2014, Churchill Livingstone, Elsevier.)
KEY POINTS • Organs of the female reproductive tract include the ovaries, oviducts, uterus,
cervix, and vagina. Ovaries contain a lifetime supply of ova at birth. After puberty, a few of the ovarian follicles develop about every 28 days in response to secretion of follicle-stimulating hormone (FSH).
• The oviducts (fallopian tubes) actively propel the ovum toward the uterus by ciliary action and peristaltic contractions. The uterine lining undergoes a cyclic process of proliferation and then sloughing in response to estrogen and progesterone.
• External genitalia in the female include the mons pubis, labia majora, labia minora, clitoris, and vestibule of the vagina. The urinary meatus, vaginal opening, and vestibular gland ducts are located in the vaginal vestibule.
CHAPTER 32 Female Genital and Reproductive Function 659
The release of hormones and the accompanying response of the female sexual target organs are depicted in Fig. 32.7. The principal female reproductive hormones are summarized in Table 32.1. As shown in Fig. 32.7, the events of the menstrual cycle require precise synchroniza- tion between the activities of the pituitary gland, ovary, and uterus. Beginning at the first day of the menstrual cycle, or the first day of menstruation, these events can be summarized as follows. The thickened functional layer of the endometrium of the uterus is gradually sloughed off, and about 35 mL of blood is lost. During this phase of the menstrual cycle, FSH is released by the pituitary gland and stimulates a group of follicles to develop in the ovary.
In the preovulatory phase, also called the proliferative phase, theca and granulosa cells in the developing follicles in the ovary secrete estrogen, which stimulates growth of the uterine endometrium once again. At about the midpoint of the cycle, an increase in estrogen secretion from the follicles occurs. This increase in estrogen level is thought to render the anterior pituitary more responsive to luteinizing hormone(LH)–releasing
MENSTRUAL CYCLE From menarche onward, the normal reproductive years of the female are characterized by rhythmic changes in hormonal secretion and corresponding changes in the sexual organs, which are called the target organs of the female hormones. This rhythmic pattern is called the menstrual cycle (Fig. 32.7). Two significant results of the menstrual cycle are stimulation of the production of an ovum and preparation of the uterine endometrium for the implantation of a fertilized ovum at the appropriate phase of the cycle.
Although considerable variation can be found in human females, an average menstrual cycle is 28 days long, with cycles as short as 20 days or as long as 45 days occurring in normal women. The first day of menstruation is considered the first day of the menstrual cycle. Ovulation occurs approximately 14 days before the next cycle begins; thus in a 28-day cycle, ovulation occurs on about day 14 of the cycle.
Uterine cavity
Infundibulum
Right ovary Uterine tube
Ovarian ligament
Broad ligament
External os of vaginal cervix
Internal os
Cervical canal
Anterior vaginal wall
B
Body of uterus Uterine
body cavity
Endometrium
Myometrium
Internal os of cervix
External os of vaginal cervix Vagina
Serosa
Cervical canal
Fornix of vagina
Fundus of uterus
Fimbriae
Broad ligament
Uterine artery and vein
Ovarian ligament
Ampulla of uterine tube
Infundibulopelvic ligament
Cervix of uterus
A
Isthmus of uterine tube
Infundibulum of uterine tube
Ovary
FIG 32.4 Internal female reproductive organs (posterior view). A, Diagram shows the left side of uterus and upper portion of the vagina and the left uterine tube and ovary in a frontal section. The broad ligament has been removed from the posterior surface of the uterus and adjacent structures. B, Cadaver dissection showing uterine cavity and cervical canal, exposed by removal of parts of their posterior walls. Note that the uterine wall consists of an epithelial lining from which uterine glands extend through the full thickness of the mucosa. Beneath the endometrium, a portion of myometrium is shown. (A, From Patton KT, Thibodeau GA: Human body in health and disease, ed 7, St Louis, 2018, Elsevier, p 630. B, From Gosling J et al: Human anatomy, ed 4, Philadelphia, 2005, Mosby.)
660 UNIT IX Genital and Reproductive Function
Mons pubis
Clitoris
Labia majora
Opening of Skene’s gland
Opening of Bartholin’s gland
Labia minora
Vaginal orifice
Frenulum
Anus
Urethral meatus
Vestibule
Perineum
Hymen
FIG 32.5 External female genitalia. (From Jarvis C: Physical examination and health assessment, ed 7, St Louis, 2016, Elsevier, p 737.)
Stage I
Stage II
Stage III
Stage IV
Stage V
FIG 32.6 Five Tanner stages of sexual maturity ratings (SMRs) in girls.
TABLE 32.1 Principal Female Reproductive Hormones
Hormone Target Organs Significant Actions
Estrogen Multiple sites throughout body, including reproductive structures, bone, fat, and muscle tissues
Development of reproductive organs during puberty
Development of secondary sex characteristics, including breast maturation, widening of pelvis, and distribution of fat and muscle tissues in a distinctively female pattern
Cyclic preparation of endometrium for implantation of an ovum
Progesterone Primarily uterus and breasts
Cyclic preparation and maintenance of endometrium for implantation of an ovum
Stimulation of development of breast lobes and alveoli
Follicle- stimulating hormone
Ovary Stimulates ovarian follicle development; with luteinizing hormone, stimulates secretion of estrogen and ovulation
Luteinizing hormone
Ovary Stimulates final development of ovarian follicle, process of ovulation, and development of corpus luteum
CHAPTER 32 Female Genital and Reproductive Function 661
1.5 cm, with maximal development attained about 7 to 8 days after ovulation. If pregnancy does not occur, the corpus luteum begins to degenerate, and progesterone and estrogen levels in the blood fall markedly. Constriction of the spiral arteries located in the uterine wall occurs, and the portion of the endometrium supplied by these arteries becomes ischemic. As the cells in the endometrium die, tissue is sloughed off and menstruation begins again. It is presently thought that prosta- glandins liberated in the endometrium may have a role in stimulating the sloughing of endometrial tissue.
If fertilization of the ovum occurs, the embryo arrives in the uterus on about the fourth day of development. Small glands in the endome- trium stimulated by progesterone produce a nutritive fluid for the developing embryo. On approximately the seventh day after fertilization, the embryo implants itself in the thick endometrium of the uterus, and development of the placenta occurs. The placenta secretes the hormone
hormone secreted by the hypothalamus. The anterior pituitary gland then produces a burst of LH. The FSH level also increases about twofold at the same time, and these two hormones act synergistically to cause the extremely rapid swelling of the follicle that culminates in ovulation. During the process of ovulation, the secondary oocyte is ejected through the wall of the ovary into the peritoneal cavity. The free end of the oviduct is strategically located so that the ovum enters its fimbriated end almost immediately.
After ovulation, the postovulatory phase (also called the luteal phase) begins. During the luteal phase the site of the ruptured follicle becomes a corpus luteum (Latin for “yellow body”), which secretes estrogen and progesterone. These hormones stimulate continued thickening of the uterine endometrium. The cells of the corpus luteum become greatly enlarged and develop lipid, or fatty, areas that give the cells a distinctive yellow color. In a normal cycle, the corpus luteum grows to approximately
Luteinizing hormone (LH)
PITUITARY HORMONE RELEASE
UTERINE (ENDOMETRIAL) CYCLE
OVARIAN CYCLE
Follicle-stimulating hormone (FSH)
Maturing follicle
Estrogen
Menses Menses
2824 2620 2216 1812 14842 6 Days
10
Proliferative phase Secretory phase
Menses MensesFollicular phase Luteal phase Premenstrual phase
Progesterone
Corpus luteum
Degenerated corpus
Ovulation
Ovulation
Ovarian hormone secretion
Primary follicle
Pituitary
Endometrium
FIG 32.7 Menstrual cycle. The events that take place within the pituitary, ovary, and uterus are precisely synchronized. When fertilization does not occur, the cycle repeats itself about every 28 days.
662 UNIT IX Genital and Reproductive Function
significance of the breast as a symbol of feminine sexuality in contem- porary Western culture must also be recognized.
Structure of the Breast The breasts are located anterior to the pectoralis major muscle and are separated from it by a layer of fat. The position of the breasts is main- tained by fibrous bands called Cooper ligaments, which are easily stretched, especially if the breasts are large. Lymph drainage from the breasts is mainly toward the axillary lymph nodes, with some drainage toward the substernal and diaphragmatic lymph nodes.
Each breast consists of 15 to 20 lobes of glandular epithelial tissue and a ductal system embedded in interstitial tissue and fat. The secretory cells that constitute the glandular epithelium are arranged in grapelike clusters called alveoli (Fig. 32.8). Ducts or openings from each alveolus unite to form a single duct from each lobe. These main ducts then enlarge slightly into ampullae immediately before opening onto the surface of the nipple. The nipple, located at the center of the adult female breast, is composed of bundles of smooth muscle fibers with erectile properties. The areola that surrounds the nipple has a diameter of 1.5 to 2.5 cm. The openings from the lactiferous ducts are arranged radially under the areola; thus 15 to 20 small openings are located on the surface of each nipple through which milk flows in a lactating female.
Breast Development The five Tanner stages of development of the female breast are depicted in Fig. 32.6. As shown in this figure, the breasts contain only rudimentary glands during childhood. At puberty, estrogen and progesterone, in the presence of growth hormone and prolactin, promote the development
BREAST The breast is an important accessory organ in sexual function and human reproduction. Although its primary physiologic function is lactation (production of milk) to nourish the human infant, the
KEY POINTS • The monthly reproductive cycle averages about 28 days. Beginning on the
first day of menses, the important events of the cycle are as follows: 1. The endometrial layer is sloughed. 2. The ovarian follicles are stimulated by pituitary follicle-stimulating hormone
(FSH). 3. Estrogen is secreted from the developing follicles. 4. Proliferation of the endometrium occurs in response to estrogen. 5. At the midpoint of the cycle, a burst of LH and a doubling of FSH secretion
from the pituitary gland stimulate ovulation. 6. The ruptured follicle changes into a corpus luteum and secretes estrogen
and progesterone. 7. In the absence of pregnancy, secretion of estrogen and progesterone
drops rapidly and the endometrial lining sloughs off again to complete the cycle.
• With fertilization and implantation of the ovum, the developing placenta secretes hCG, which in turn stimulates the corpus luteum to continue to secrete estrogen and progesterone and thus prevent endometrial sloughing.
human chorionic gonadotropin (hCG), which in turn signals the corpus luteum to continue to function. Subsequent events in pregnancy are described later in this chapter.
Montgomery glands
Areola
2nd rib
6th rib
Nipple
Serratus anterior muscle
Adipose tissue
Axillary tail of Spence
Pectoralis major muscle
FIG 32.8 Mature female breast. (From Jarvis C: Physical examination and health assessment, ed 7, St Louis, 2016, Elsevier, p 385.)
CHAPTER 32 Female Genital and Reproductive Function 663
Early Human Development Fertilization of the ovum occurs in the oviduct. Within 24 hours after fertilization, the zygote begins a series of divisions by the process of mitosis; this process is referred to as cleavage (Fig. 32.9). From a two-cell entity the zygote soon divides multiple times, and its cytoplasm begins to be partitioned into specific cells that will serve as the building blocks of the embryo. As more cleavage takes place, the embryo is transported through the oviduct to the uterus. This process takes about 4 days. The embryo receives nutrition during this time from secretions released by the epithelial cells lining the oviduct. After the embryo enters the uterus, the zona pellucida, the membrane surrounding the embryo, dissolves. About day 4, the embryo arrives in the uterus and floats freely while receiving nutrition from secretions from the endometrial glands stimu- lated by progesterone.
At this point the cells of the embryo have arranged themselves into a hollow spherical structure called the blastocyst (Fig. 32.9). The outer cells of the blastocyst, called the trophoblast, will ultimately become the protective and nutritive membranes (chorion and placenta) that surround the developing embryo. The inner cell mass, a small cluster of cells that projects into the cavity of the blastocyst, will develop into the structures of the embryo itself. If at this point the inner cell mass divides into two separate groups of cells, identical twins with an identical genetic complement will result. Fraternal twins develop when two ova are fertilized by two sperm cells and do not have an identical genetic complement.
Implantation On approximately day 7 after fertilization, the embryo attaches to the uterine lining and then implants itself in the endometrium (Fig. 32.10). Enzymes secreted by the trophoblast erode a small portion of the uterine lining, and by day 10 of development the embryo has completely penetrated the endometrium. The opening in the uterine lining is closed, initially by a blood clot and then by regeneration of uterine epithelium; all subsequent development of the embryo occurs in the wall of the uterus.
Fetal Membranes and Placenta Fetal membranes protect the developing embryo or fetus and provide needed substrates for growth and development, particularly oxygen and nutrition. In addition, they serve the purpose of elimination of waste products of metabolism. All terrestrial vertebrates have four fetal membranes: amnion, yolk sac, chorion, and allantois. In the developing human, the yolk sac is usually thought to be a vestigial structure, although it serves as an important temporary center for the formation of blood cells between the second and sixth weeks. The allantois is also considered vestigial, although its blood supply contributes to formation of the umbilical vessels.
The amnion begins to develop at a very early stage and eventually expands to surround the entire embryo. The space between the amnion and the embryo is called the amniotic cavity. It is filled with a clear amniotic fluid that keeps the embryo moist and provides a measure of protection against mechanical injury.
The placenta serves two basic functions. It is the organ of exchange between the developing fetus and the mother; it also provides nutrients to the fetus and removes wastes. It is also an endocrine organ and produces several hormones, most notably hCG. The placenta develops from both the chorion and the maternal uterine tissue. After implantation, the chorion develops rapidly and forms highly vascularized villi while the embryonic circulation develops. The umbilical cord develops and connects the embryo with the placenta. Two umbilical arteries arise in the umbilical cord and
of glandular tissue and ducts and the deposition of fat characteristic of the adult female breast. Throughout the reproductive years, some women note swelling of the breast around the latter part of each menstrual cycle before the onset of menstruation. The water retention and subsequent swelling of breast tissue during this phase of the menstrual cycle are thought to be due to high levels of circulating progesterone stimulating the secretory cells of the breast.
Lactation During pregnancy, high concentrations of estrogen and progesterone produced by the corpus luteum and the placenta stimulate the develop- ment of glands and ducts in the breast. During the first trimester of pregnancy, the ducts proliferate; in the second trimester, the ducts group together to form large lobules with new alveoli formation. In the third trimester, the existing alveoli dilate in preparation for lactation. Toward the end of pregnancy and until 1 to 3 days after childbirth, the mammary glands form colostrum, which contains protein and lactose but little fat. After birth of the infant, the hormone prolactin secreted by the mother’s anterior pituitary gland stimulates milk production, and milk is produced by the third day after delivery. The initiation and maintenance of lactation are a complex neuroendocrine process involving sensory nerves in the nipples and breast tissue, the spinal cord and hypothalamus, and the pituitary gland. The suckling movements of the infant on the breast stimulate the release of prolactin from the anterior pituitary gland and oxytocin from the posterior pituitary gland. These hormones in turn stimulate lactation and ejection of milk from the alveoli into the ducts, where it is accessible to the infant. Oxytocin then promotes the actual release of milk, called the milk ejection reflex.
KEY POINTS • At puberty, breast development occurs in response to estrogen and pro-
gesterone in cooperation with growth hormone and prolactin. During pregnancy, high estrogen and progesterone levels stimulate further develop- ment of the mammary glands and ducts.
• Milk production and release are stimulated by the pituitary hormones prolactin and oxytocin in response to suckling.
PREGNANCY During the 9 months of human gestation, the single-celled zygote gives rise to an infant with a complex set of physiologic systems. The fertilized ovum contains the entire genetic complement—or encoded genetic instructions—to develop into a fully functioning term infant, given adequate nutrition and time. Three basic developmental processes— growth, morphogenesis, and cellular differentiation—are involved in this transformation. Growth denotes the proliferation of new cells by mitosis, a necessary but not sufficient process for development. The arrangement of cells in a particular order is called morphogenesis and is essential to the elaboration of higher forms of life. In addition to growth and morphogenesis, cellular differentiation is needed for cells to specialize structurally and biochemically in a myriad of ways. This section describes the sequence of events in which growth, morphogenesis, and cellular differentiation function to transform a human zygote with encoded genetic information into a human infant. In addition, this section will describe the response of the mother’s body to pregnancy. Information on genetic control of inheritance and genetic disorders is contained in Chapters 5 and 6, respectively, and the reader may wish to refer to these chapters for specific content in these areas.
664 UNIT IX Genital and Reproductive Function
responds by increasing its size and its secretion of estrogen and progesterone, which then promote continued development of the endometrium and the placenta. In the absence of hCG, the corpus luteum would disintegrate, as it does in a nonfertilized menstrual cycle, and the endometrium would deteriorate and be sloughed off along with the embryo. Thus hCG is an essential element in continuation of the pregnant state.
Development of the Human Embryo and Fetus From fertilization to the end of the eighth week, the developing organism is referred to as an embryo; from the ninth week until birth, the developing baby is referred to as a fetus. Development of the fetus proceeds in an orderly sequence of complex events. With recent developments in fetal physiology, it is possible to predict which structures will begin their development or function on a particular day of development after conception. Table 32.2 depicts some important developmental events from the time of fertilization to birth. Detailed information on the development of organ systems during fetal life is contained in the chapters in this book that focus on these organ systems; for example, Chapter 35 contains a description of the development of the gastrointestinal tract.
First Month Rapid growth, morphogenesis, and cell differentiation occur early in development of the human embryo. By 2.5 weeks of development, the notochord and neural plate are formed; these structures eventually give rise to the central nervous system. In addition, the tissue that will form the heart has differentiated. By the end of the first month, an S-shaped heart beats about 60 times per minute, and the three primary vesicles of the brain have formed.
connect with a rapidly proliferating network of capillaries in the villi. The umbilical vein, also located in the umbilical cord, carries blood from the villi back to the fetus.
The placenta eventually consists of the portion of the chorion in which villi develop, along with the uterine tissue between the villi that contains maternal capillaries and small pools of maternal blood. The placenta brings maternal blood adjacent to fetal blood, although the two circulatory systems are completely separate from each other. Thus oxygen and nutrient substrates pass from the maternal blood through the placental tissue and diffuse into the blood of the fetus, where these substances can be used for growth and development of various body tissues. Waste products of fetal metabolism from fetal blood then pass through the placenta into the maternal blood supply and are eventually transported to the maternal kidneys for disposal.
The placenta, like the corpus luteum, secretes both estrogen and progesterone during pregnancy. These hormones serve a variety of purposes in pregnancy. Estrogen promotes enlargement of the uterus and growth of the ductal structure of the breast, as well as alters the elasticity of various pelvic ligaments and the symphysis pubis to allow passage of the infant through the pelvic structures during delivery. In addition to its role in providing early nutrition for the embryo, pro- gesterone has the special effect of decreasing contractility of the gravid uterus, thus preventing spontaneous abortion. In addition, progesterone may have a role in preparing the breasts for lactation, as described earlier in the Lactation section.
Of major importance in the role of the placenta as an endocrine gland is its production of hCG. From the time of implantation, the trophoblastic cells begin to secrete hCG, which sends a signal to the corpus luteum that a pregnancy has begun. The corpus luteum
Uterine (fallopian) tube
First mitosis
Divided zygote
Morula
Uterus
Blastocyst
Implantation
Spermatozoa
Discharged ovum
Fimbriae
Ovary
Corpus luteum
Developing follicles
Ovulation
Fertilization
FIG 32.9 Early human development. Drawings illustrate cleavage of the zygote and formation of the blastocyst. At ovulation, an ovum is released from the ovary and begins its journey through the uterine tube. While in the tube, the ovum unites with a sperm to form the single-celled zygote. After a few days of rapid mitotic division, a ball of cells called a morula is formed. After the morula develops into a hollow ball called a blastocyst, implantation occurs. (From Patton KT, Thibodeau GA: Human body in health and disease, ed 7, St Louis, 2018, Elsevier, p 654.)
CHAPTER 32 Female Genital and Reproductive Function 665
month, the fetus is almost 56 mm in length and weighs about 14 g (Fig. 32.12).
Second Trimester A trimester refers to a period of 3 months during pregnancy. During the second trimester, or months 4 to 6 of development, the fetus achieves independent mobility and can move freely through the amniotic cavity. The heartbeat of the fetus is now audible through a stethoscope and averages 150 beats per minute. By the fifth month of development, the fetus measures 250 mm (10 inches) in length, which is half its total length at birth. Fig. 32.13 shows a fetus in the second trimester at 4 months of development.
Third Trimester By far the greatest growth of the fetus occurs during the third trimester. The weight of the fetus almost doubles during the last 2 months. In addition, final differentiation of tissues and organs takes place. Survival of infants born prematurely during this time has increased markedly in the past few years because of an enhanced ability to sustain vital functions such as respiration and regulation of body temperature in neonatal intensive care settings.
Parturition Parturition refers to the process by which the infant is born. Toward the end of pregnancy, the uterus becomes progressively more excitable until it begins strong rhythmic contractions that ultimately expel the infant. At the present time, the exact cause of the increased uterine activity remains unknown. However, two sets of effects have been suggested as contributing to the increased excitability of uterine musculature at this time: progressive hormonal changes and progressive mechanical changes.
Hormonal Changes During the latter part of pregnancy, large amounts of estrogen, which has a definite tendency to increase uterine contractility, are secreted. Concurrent with this enhanced estrogen release, the secretion of pro- gesterone, which inhibits uterine contractility, remains constant or may decrease slightly. Thus it is hypothesized that the increased ratio of
Second Month Until the sixth week of gestation, the gonads in both genders are bipotential, which means that the gonads present in the embryo may become either testes or ovaries. Beginning about the seventh week, the so-called indif- ferent gonad begins to develop into either a male or a female derivative. Recent research has demonstrated that SRY (sex-determining region of the Y chromosome) is the gene that influences the indifferent gonad to organize into a testis. In a genetically female embryo, the gonad organizes into an ovary under the influence of one or more ovary-determining genes, which have not yet been well characterized. The cortex of the gonad accumulates nests of cells that differentiate into ovarian follicles, each containing a primary oocyte. The Wolffian ducts, the primor- dial structures that are precursors to the male internal reproductive organs, begin to disappear, and the Müllerian ducts, the structures that will develop into the female internal reproductive organs, become dominant.
The external genitalia of both the male and the female are identical until the eighth week of gestation. Like the gonads, the genitalia are bipotential until this time, with the capability of developing into organs of either gender. In a genetically male embryo, dihydrotestosterone, a metabolite of testosterone, binds to androgen receptors in the external genitalia and affects the differentiation of these structures into the male external genitalia. Without the influence of dihydrotestosterone, the bipotential external genitalia will spontaneously develop into female external genitalia.
Fig. 32.11 shows an embryo on day 49. All of the organs continue to develop during the second month, and the embryo becomes capable of movement. The major blood vessels assume their final positions, and the heart assumes its final shape. The brain begins to transmit impulses to regulate function of the organ systems, and a few reflexes are now present. At the end of the second month, the rudiments of all organs are present and the embryo is referred to as a fetus.
Third Month During the third month, the ears and eyes approach their final positions, and some of the bones become distinct. The fetus performs breathing movements consisting of moving amniotic fluid in and out of the lungs and can carry on sucking movements. By the end of the third
Endometrium Epiblast Hypoblast Amniotic
cavity
Trophoblastic lacunae
Uterine epithelium
Uterine cavity
Syncytiotrophoblast Cytotrophoblast
Syncytiotrophoblast Amniotic cavity Epiblast
Uterine cavity
Cytotrophoblast
Primary yolk sac
Hypoblast
Trophoblastic lacunae with maternal blood cells
Heuser's membrane
Extraembryonic mesoderm
FIG 32.10 Nine-day human embryo at the stage of amnion formation. (From Schoenwolf GC, Bleyl SB, Brauer PR, Francis-West PH. Larsen’s human embryology, ed 5, Philadelphia, 2015, Churchill Livingstone.)
666 UNIT IX Genital and Reproductive Function
TABLE 32.2 Summary of Developmental Events in Human Fetal Life
Time From Fertilization Key Events
36 hours Embryo has achieved two-cell stage 4 days Embryo reaches uterus 7 days Implantation of embryo in uterine wall 2.5 weeks Differentiation of heart tissue
Blood cell formation in yolk sac and chorion Formation of notochord and neural plate
3.5 weeks Formation of neural tube Heart tubes begin to beat Primordial eye and ear visible Respiratory system begins development Liver bud differentiates Blood vessels established
4 weeks Formation of three primary brain vesicles Limb buds appear
2 months Embryo capable of movement Cerebral cortex differentiating Gonad identifiable as testis or ovary Bones begin ossification and muscles are
differentiating Major blood vessels in final positions
3 months Fetus performs breathing and sucking movements Gender is clearly identifiable
5 months Heartbeat is audible with a stethoscope Fetus moves freely through amniotic cavity
6 to 9 months Rapid growth with final differentiation of tissues and organs
266 days Birth
Eyelid
External acoustic meatus (external ear canal)
Auricle of external ear
Cervical flexure
Wrist
Eye
A B
Digital ray
Notch between digital rays of hand
Liver prominence
Digital ray of foot plate
Actual size 16.0 mm
Umbilical cord
FIG 32.11 Human embryo in the seventh week of development. (A, From Moore KL et al: Color atlas of clinical embryology, ed 2, Philadelphia, 2000, Saunders. B, From Moore KL, Persaud TVN, Torchia MG: The developing human: clinically oriented embryology, ed 10, Philadelphia, 2016, Saunders.)
FIG 32.12 Photograph of the human fetus at 11 weeks of development. (From Moore KL, Persaud TVN, Torchia MG: The developing human: clinically oriented embryology, ed 10, Philadelphia, 2016, Saunders.)
CHAPTER 32 Female Genital and Reproductive Function 667
Changes in the Female Reproductive Organs The hormones secreted during pregnancy, either by the placenta or by the endocrine glands, directly promote alterations in body structures. In particular, the organs of the female reproductive tract increase markedly in size, with the uterus increasing from 30 to 1100 g and the breasts approximately doubling in size. Concurrently, the vagina enlarges with a widening of the vaginal introitus.
Changes in the Circulatory System In the latter stages of pregnancy, about 625 mL of blood flows through the maternal circulation of the placenta each minute. This factor, along with a general increase in metabolism, causes an increase in maternal cardiac output to 30% to 40% above normal by week 27 of pregnancy. However, for reasons not understood at the present time, cardiac output decreases to a little above normal during the last 8 weeks of pregnancy, although the high uterine blood flow continues. As shown in Fig. 32.14, an increase in maternal blood volume occurs mainly during the latter half of pregnancy. This increase is mainly due to
estrogen to progesterone secretion in the latter part of pregnancy may promote the increased contractility of the uterus.
Oxytocin is a hormone secreted by the posterior pituitary gland that specifically causes uterine contraction and is thought to have a major role in promoting increased uterine contractility during parturi- tion. The rate of oxytocin secretion is considerably increased at the time of labor (see the following Mechanical Changes section), and the uterus displays increased responsiveness to a given dose of oxytocin at this time.
Mechanical Changes Stretching smooth muscle organs increases their contractility; in addition, intermittent stretching of smooth muscle can elicit contraction. Thus it is hypothesized that the stretch or irritation of the fetal head against the cervix begins a reflex action that causes the uterus to contract. As the cycle of stretching and contraction is repeated again and again, increased contractions result. In addition, stretching of the cervix causes the release of oxytocin from the posterior pituitary. Oxytocin then stimulates additional uterine contractions, thus initiating another positive feedback cycle of stretching and contraction.
Response of the Mother’s Body to Pregnancy The presence of a developing fetus in the uterus creates an extra physi- ologic load for the pregnant woman, with resulting effects on her basal metabolism and specific organ systems. Normal physiologic responses to pregnancy are described here; complications of pregnancy are discussed in Chapter 33.
Metabolism During Pregnancy As a result of increased secretion of many hormones, including thyroxine, adrenocortical hormones, and the sex hormones, the basal metabolic rate increases by about 15% during the latter half of pregnancy. This increase in metabolism results in alterations in many organ systems, including the circulatory, respiratory, and urinary systems.
A
B
FIG 32.13 A, Side view of human fetus at 17 weeks. B, Frontal view of 17-week fetus. (A, From Moore KL et al: Color atlas of clinical embryology, ed 2, Philadelphia, 2000, Saunders. B, Courtesy Dr. Robert Jordan, St. Georges University Medical School, Grenada.)
6
5
4
3
2
1
0 0 4 8 12 16 20 24 28 32 36 40 44
O v u
la ti
o n
P a rt
u ri
ti o
n
Duration of pregnancy (weeks)
B lo
o d
v o
lu m
e (
li te
rs )
FIG 32.14 Effect of pregnancy on the mother’s blood volume.
668 UNIT IX Genital and Reproductive Function
hormonal factors. Both aldosterone and estrogens, which are greatly increased in pregnancy, promote increased fluid retention by the kidneys. In addition, bone marrow increases its activity to produce an excess of red blood cells to accompany the excess vascular volume. At the time of parturition, the mother has an additional 1 to 2 extra liters of blood in her circulatory system.
Changes in the Respiratory System The increased basal metabolic rate and size of the pregnant woman result in an increase in oxygen utilization, with utilization of oxygen being 20% above normal at the time of birth. Concurrently, a com- mensurate amount of carbon dioxide is formed. In addition, the growing uterus is pressing upward against the abdominal organs, which in turn press against the diaphragm and cause a decrease in diaphragmatic excursion. The net result of these changes is an increase in minute ventilation of approximately 50% and a decrease in arterial PCO2 to slightly below normal.
Changes in the Urinary System Because of an increased load of excretory products, the rate of urine formation in pregnancy is usually slightly increased. In addition, other alterations in urinary function occur. Renal tubule reabsorption of sodium, chloride, and water is increased as a result of increased produc- tion of steroidal hormones by the placenta and adrenal cortex. Concur- rently, the glomerular filtration rate often increases by as much as 50%, a change that serves to increase the rate of water and electrolyte loss in the urine. These two events tend to balance each other out, with the result that only a moderate excess of water and salt accumulation occurs under normal circumstances. However, in the condition of toxemia of pregnancy, excess water and salt accumulation may occur with life- threatening consequences.
Weight Gain and Nutrition During Pregnancy The average weight gain during pregnancy is about 24 lb, with most of this gain occurring during the last two trimesters. Approximately 7 lb of this weight gain is the fetus; 4 lb of the increased weight is amniotic fluid, placenta, and fetal membranes; 2 lb represents an increase in uterine tissue; and another 2 lb of the weight gain is an increase in breast tissue. Thus an average 9-lb increase in weight occurs in the remainder of the woman’s body. Approximately 6 lb of fluid may be excreted during the days after birth, after loss of the fluid-retaining hormones of the placenta.
Appetite may be greatly increased during the latter part of pregnancy, in part because of fetal removal of food substrates from the mother’s blood and partly because of hormonal factors. The developing fetus assumes priority in regard to many of the nutritional substrates of the mother’s body fluids and will continue to grow even when maternal nutrition is inadequate. However, although fetal length may increase normally in the absence of adequate maternal nutrition, fetal weight will be considerably decreased, and abnormal bone formation and decreased size of many bodily organs of the fetus may result.
If the intake of nutritional elements during pregnancy is inadequate, a number of deficiencies can be present in the mother. In particular, deficiencies of calcium, phosphates, iron, and vitamins may be present. As an example, approximately 375 mg of iron is needed by the fetus to form its blood, and an additional 600 mg is needed by the mother to form her own extra blood supply. Because the normal store of nonhe- moglobin iron in the mother at the beginning of pregnancy is often about 100 mg and seldom greater than 700 mg, anemia will develop in a pregnant woman without sufficient iron intake in her food. Important also is adequate folic acid intake, which has been shown to help prevent neural tube defects.
KEY POINTS • At about the seventh day after fertilization, the embryo attaches to the
uterine lining. The placenta is the fetal lifeline that provides nutrients and oxygen and eliminates wastes. The placenta also secretes hCG, which is important in maintaining pregnancy.
• Normal gestation is about 9 months. Each 3-month period is called a trimester. By the end of the first trimester, fetal structures and organ systems are present. During the second and third trimesters, the fetus grows in size and weight.
• Near the end of the third trimester, an increase in estrogen production and mechanical stretching of the uterus and cervix are thought to induce parturi- tion. Cervical stretching stimulates the release of oxytocin from the pituitary gland. Oxytocin stimulates uterine contractions.
• Pregnancy is associated with many physiologic changes, including an increased basal metabolic rate (15%), increased cardiac output (30% to 40%) and blood volume (1 to 2 L), increased oxygen consumption (20%) and minute ventilation (50%), increased glomerular filtration rate and tubular reabsorption of sodium and water, and increased body weight (24 lb).
MENOPAUSE Although menopause is defined specifically as the last menstrual period in a woman’s reproductive life, the term is often used to denote the entire period of years before and after this event in which the function of the ovaries is in transition. The terms climacteric and perimenopause are used in the health care literature to describe this transitional period. At about 45 to 52 years of age the supply of ovarian follicles declines, with the majority becoming atretic or degenerated. With the depletion of ovarian follicles, secretion of estrogen and progesterone by the ovaries declines, and the menstrual cycle becomes irregular. When too little estrogen is secreted to cause endometrial growth, menstrual periods stop permanently.
The decline in ovarian hormone production that occurs in the perimenopausal period causes important physiologic changes in a woman’s body. The decline in plasma estrogen levels may result in a number of distressing symptoms, although some women experience no symptoms during this time. Hot flushes, described by women as an unpleasant sensation of sudden warmth sweeping upward over the abdomen, chest, neck, and face, are experienced by nearly 75% of postmenopausal women. Although the precise cause of hot flushes is unknown, it is thought that decreased estrogen levels have an effect on the temperature-regulating center in the hypothalamus. Hot flushes are often accompanied by other symptoms of autonomic nervous system instability such as tachycardia, palpitations, and feelings of faintness. Other distressing symptoms, including pain and stiffness in the joints, sleep pattern disturbances, and changes in gastrointestinal function, have been noted by women in the perimenopausal period. These symptoms are presently the focus of many nursing research projects examining the health of aging women. Although such psychological symptoms as increased nervousness have been reported in the medical literature as being related to the hormonal imbalance in menopause, it has been established that psychological symptoms are not directly related to estrogen deficiency. There is an increasing awareness of the importance of the role of culture and other social factors in the under- standing of how women view and experience menopause.
With the decline in estrogen level associated with perimenopause, many structural changes occur in various organs. These changes are sum- marized in Geriatric Considerations: Changes in the Female Reproductive System. The epidermis of the skin becomes thinner and less elastic
CHAPTER 32 Female Genital and Reproductive Function 669
drugs that may retain some of the beneficial effects of estrogen while avoiding the negative effects. Women in perimenopause may wish to discuss the risks and potential benefits of hormone replacement therapy and other menopausal therapies with their health care providers before making an informed decision about these medications.
throughout the entire body. The breasts may decrease in size; the labia may also lose their underlying fat and become thinner. The vaginal epithelium may become thin and atrophied, with the result that sexual intercourse may be painful. The decline in estrogen level also leads to osteoporosis and decreased bone density, particularly in white women, with resulting bone fractures. Exercise and supplemental calcium and vitamin D are recommended for postmenopausal women to prevent accelerated bone loss. At present, most authorities recommend estrogen therapy during the perimenopausal period only to prevent and relieve symptoms such as hot flushes and vaginal atrophy. This is due to strong evidence showing that supplemental estrogen and progestin therapy has been associated with an increased risk of breast cancer and cardiovascular disease. Newer treatments that have been developed for osteoporosis include bisphosphonates, calcitonin nasal spray, and raloxifene. These medications typically fall into two categories: drugs that slow bone loss, and medications that increase rate of bone formation. Work continues on the development of selective estrogen receptor modulators and other
KEY POINTS • Menopause begins at 45 to 52 years of age and denotes the cessation of
menstruation. A declining supply of ovarian follicles with decreased estrogen and progesterone production results in irregular menses and then complete cessation of menstruation.
• Declines in estrogen production are associated with hot flushes, tachycardia, palpitations, faintness, joint pain, and sleep disturbances. Structural changes associated with menopause include osteoporosis, thinning of the skin, and atrophy of the vaginal structures and breast tissue.
Increased fibrosis
Decreased breast duct
size
Decreased breast and nipple size
Decreased elasticity of vagina
Decreased size
Decreased number of ovarian follicles
Arrested germ cell function
Decreased ovary size
Decreased estrogen level
Uterus/cervix atrophy
Decreased secretory activity
Female reproductive system function declines with organ-specific tissue changes. The number of active female germ cells declines over time with variable function before they are arrested in menopause. The ovaries become smaller and increasingly fibrotic and have fewer ovarian follicles.
The secretion of estrogen by the ovaries stops at menopause, resulting in a marked estrogen level decrease. The ovarian follicles become insensitive to gonadotropins (FSH and LH). However, the peripheral conversion of androgens to estrogen causes a small maintenance level of estrogen to persist at 10% to 30% of previous levels. The androgen-producing ovarian cells (hilar and thecal) continue to secrete testosterone in postmenopausal women.
The follicles, uterus, and cervix undergo atrophy with a decrease in size and secretory action. The vagina is reduced in size with a loss of elasticity and atrophy of the vaginal epithelium. The vascular supply to the vaginal walls decreases with reduced amounts of glycogen and mucopolysaccharide. The pH of Bartholin gland secretions is increased (i.e., more alkaline) because of the loss of estrogen.
The breasts decrease in size. Breast ducts become smaller and are replaced by fat tissue. Some fibrosis and calcification may occur within the ducts. The nipples are smaller with less nipple pigmentation. The aging female nipple may be normal or retracted.
GERIATRIC CONSIDERATIONS Changes in the Female Reproductive System
This chapter has described the major processes related to the human female reproductive tract, including the menstrual cycle, pregnancy, lactation, and menopause. In approaching this material, the reader must view the information presented within the current context of social change in which women are taking an active role in meeting their health care needs. In addition, recent research in the area of reproductive endocrinology has yielded a rapidly expanding understanding of the reproductive structures and their function.
The female reproductive structures are a complex set of organs with multiple, integrated functions. Careful review of the section on
reproductive structures, including their embryologic development, will assist the reader in understanding the various alterations in these structures that occur throughout a woman’s life. Although the hormonal and structural changes occurring in the female reproductive organs may at first seem overwhelmingly complex to the student, some basic concepts will help in organizing this material. First, the menstrual cycle has two significant results: production of an ovum and preparation of the uterus for implantation of the fertilized ovum. Second, the fertilized ovum contains the entire encoded genetic instructions to produce a unique human individual. Third, pregnancy consists of three basic
S U M M A R Y
670 UNIT IX Genital and Reproductive Function
menopause is not a discrete event but rather a process during which the supply of ovarian follicles declines. A review of these concepts will prepare the student for a better understanding of women’s health concerns and provide a basis for approaching the next chapter, which considers alterations in reproductive functioning.
developmental processes—growth, morphogenesis, and cellular differentiation—to bring about this transformation, which will also result in multiple changes in the body of the mother. The breast, with its function of lactation, is also a component of the reproductive system and is subject to alterations throughout a woman’s life span. Finally,
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Barrett KE, Barman SM, Boitano S, Brooks HL: Ganong’s review of medical physiology, ed 25, New York, 2015, McGraw-Hill.
Genazzani AR, et al: Neuroendocrinology of the menstrual cycle. Ann N Y Acad Sci 17(816):143–150, 1997.
Hacker NF, Gambone JC, Hobel CJ: Hacker & Moore’s Essentials of obstetrics and gynecology, ed 6, Philadelphia, 2016, Elsevier.
Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2015, Elsevier Saunders.
Hall SK, Moreau C, Trussell J: Determinants of and disparities in reproductive service use among adolescent and young adult women in the United States, 2002-2008. Am J Public Health 102(2):359–367, 2012.
Jacobs J, Stanfors M: Racial and ethnic differences in U.S. women’s choice of reversible contraceptives, 1995-2010. Reprod Health 45(3):139–147, 2013.
Jayes FL, Burns KA, Rodriguez KF, et al: The naturally occurring luteinizing hormone surge is diminished in mice lacking estrogen receptor Beta in the ovary. Biol Reprod 90(2):1–9, 2014.
Lopez LM, Tolley EE, Grimes DA, et al: Theory-based interventions for contraception. Cochrane Database Syst Rev (8):CD007249, 2013.
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Fanchin R: Assessing uterine receptivity in 2001: ultrasonographic glances at the new millennium. Ann N Y Acad Sci 943:185–202, 2001.
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Wilson CA, Davies DC: The control of sexual differentiation of the reproductive system and brain. Reproduction 133(2):331–359, 2007.
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Reginster J, Neuprez A, Beaudart C, et al: Antiresorptive drugs beyond bisphosphonates and selective oestrogen receptor modulators for the management of postmenopausal osteoporosis. Drugs Aging 31(3):413–424, 2014.
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671
33 Alterations in Female Genital and
Reproductive Function Rosemary A. Jadack
K E Y Q U E S T I O N S • What are the differentiating factors of the common menstrual
disorders? • What are the common etiologic factors leading to uterine
prolapse, uterine retrodisplacement, cystocele, and rectocele? • How can the pain of endometriosis be differentiated from that of
dysmenorrhea? • What is the rationale for routine Papanicolaou testing for cervical
cancer?
• What factors contribute to the high mortality rate of ovarian cancer?
• What clinical findings would indicate the development of pregnancy-induced hypertension, placenta previa, and abruptio placentae in a pregnant woman?
• How can benign and malignant breast lumps be clinically differentiated?
C H A P T E R O U T L I N E Menstrual Disorders, 672
Amenorrhea, 672 Abnormal Uterine Bleeding Patterns, 673 Dysmenorrhea, 673
Alterations in Uterine Position and Pelvic Support, 674 Uterine Prolapse, 674 Retrodisplacement of the Uterus, 675 Cystocele, 675 Rectocele, 676
Inflammation and Infection of the Female Reproductive Tract, 676
Pelvic Inflammatory Disease, 676 Vulvovaginitis, 677 Bartholinitis, 677
Benign Growths and Aberrant Tissue of the Female Reproductive Tract, 678
Uterine Leiomyomas, 678 Ovarian Cysts, 678 Endometriosis, 679
Cancer of the Female Genital Structures, 679 Cancer of the Cervix, 679
Endometrial Cancer, 680 Ovarian Cancer, 680 Vaginal Cancer, 680 Cancer of the Vulva, 680
Disorders of Pregnancy, 681 Pregnancy-Induced Hypertension, 681 Hyperemesis Gravidarum, 681 Placenta Previa and Abruptio Placentae, 681 Spontaneous Abortion, 681
Disorders of the Breast, 682 Reactive-Inflammatory Breast Disorders, 682
Mammary Duct Ectasia, 682 Breast Abscess, 682 Fat Necrosis, 682 Reactions to Foreign Material, 683
Benign Breast Disorders, 683
Fibrocystic Breast Disease, 683 Specific Benign Neoplasms, 683
Malignant Disorder of the Breast, 684
Cancer of the Breast, 684
http://evolve.elsevier.com/Banasik/pathophysiology/
The complex functioning of the female reproductive system described in Chapter 32 may be subject to alterations in structure and function throughout a woman’s life that can have far-reaching effects on her health and well-being. This chapter is a survey of these alterations and describes the pathophysiologic basis of the most common disorders of the female reproductive system. In addition, current therapeutics for
these alterations, including pharmacologic therapy, will be summarized. The information presented here is an introduction to these complex areas, and the reader may wish to consult in-depth gynecology and obstetrics texts for more detailed information.
Perhaps no other function of the human body is so closely linked to psychological, social, and spiritual concerns as reproductive function.
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
672 UNIT IX Genital and Reproductive Function
dysmenorrhea (painful menstruation). Although many pathologic conditions can cause these alterations, an obvious cause is often not found.
Amenorrhea Etiology and pathogenesis. Amenorrhea is the absence or suppression
of menstruation in a female age 16 years or older; it occurs if a woman misses three or more consecutive periods. Amenorrhea is categorized as either primary or secondary. Primary amenorrhea is the failure to begin menses by the age of 16 years. Secondary amenorrhea is the cessation of established, regular menstruation for 6 months or longer. Fig. 33.1 shows causes of primary and secondary amenorrhea.
Amenorrhea is normal before menarche (the first menstrual period at the time of puberty), after menopause, and during pregnancy and lactation. At other times, it is considered pathologic and may result from a wide range of pathophysiologic causes (see Fig. 33.1). In the majority of cases, amenorrhea is due to an abnormal pattern of hormonal function- ing that interrupts the normal sequence of events in which the endometrial tissue lining the uterus proliferates and then is sloughed. The endometrial tissue must be stimulated and regulated by the correct quantity and sequence of the female sex hormones estrogen and progesterone and
Any alteration in reproductive status (or the perceived threat of such an alteration) may have profound effects on an individual. Clinicians caring for women experiencing alterations in functioning of the reproductive system should bear in mind the profundity of such alterations for the individual woman and must also maintain an awareness of the context in which women seek help for such problems. The therapeutic environ- ment for women seeking help for reproductive concerns requires a clinical approach in which information is freely shared and mutual decisions are reached between caregiver and client. Previous clinical approaches in which women’s concerns were labeled as unimportant or merely psychogenic often resulted in anger, frustration with health care providers, and withdrawal from the health care delivery system. Women are now seeking active involvement in their own care, and clinicians who care for women experiencing the alterations described in this chapter need to approach women’s health concerns with sensitivity and openness.
MENSTRUAL DISORDERS Alterations in the normal functioning of the menstrual cycle include amenorrhea (no menses), abnormal uterine bleeding patterns, and
PRIMARY AMENORRHEA
Anorexia nervosa Strenuous exercise Isolated GnRH deficiency Congenital defects Tumor
SECONDARY AMENORRHEA
Anorexia nervosa Weight loss Strenuous exercise Pseudocyesis Systemic disease Post-pill amenorrhea Tumor
Prolactinoma Hyperprolactinemia
Hypothyroidism Hyperthyroidism
Congenital adrenal hyperplasia Adenomas/carcinoma Cushing’s disease Ectopic ACTH
Ovarian failure Resistant ovary syndrome Tumors
Ectopic pregnancy
VAGINAL
UTERINE
OVARIAN
ADRENAL
THYROID
PITUITARY
HYPOTHALAMUS
EXTRAUTERINE
Intrauterine pregnancy Trophoblastic disease Uterine synechiae
Prolactinoma Hyperprolactinemia Hypopituitarism
Hypothyroidism
Congenital adrenal hyperplasia Adenomas/carcinoma
Ovarian failure Polycystic ovary disease 17-Hydroxylase deficiency
Vaginal agenesis Transverse vaginal septum Imperforate hymen Testicular feminization
FIG 33.1 Causes of amenorrhea. ACTH, Adrenocorticotropic hormone; GnRH, gonadotropin-releasing hormone. (From Black JM, Hawks JH: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2009, Saunders, p 915.)
CHAPTER 33 Alterations in Female Genital and Reproductive Function 673
the extent and duration of bleeding. Uterine bleeding that is abnormal in both quantity and frequency can therefore occur in a noncyclic pattern.
In perimenopausal women, dysfunctional uterine bleeding may be the result of progressive degeneration and failure of the ovary to produce estrogen. As the number of ovarian follicles diminishes, the production of estrogen by the ovary becomes unpredictable, and the secretion of LH and FSH may also assume an unpredictable pattern. As in adolescents with dysfunctional uterine bleeding, diminished or absent production of progesterone may result in unopposed stimulation of the endometrium by estrogen, with subsequent unpredictable bleeding from a fragile endometrium.
Dysmenorrhea Dysmenorrhea is menstruation that is painful enough to limit normal activity or to cause a woman to seek health care. Dysmenorrhea is a widespread phenomenon that affects many women across the reproduc- tive years, including girls of high school age through perimenopausal women. Although symptoms of dysmenorrhea tend to decrease with age, the traditional notion that childbirth permanently decreases symptoms is unfounded. In addition, the contention that women with dysmenorrhea tend to be neurotic has been refuted in well-designed psychiatric research studies. Recent research into the physiologic process of uterine contractions has enhanced our understanding of the causes of dysmenorrhea and has thus resulted in better treatment.
Etiology and clinical manifestations. Dysmenorrhea is usually classified as primary (not related to any identifiable pathologic condi- tion) or secondary (related to an underlying pathologic condition). The cramps that occur with primary dysmenorrhea are usually located in the suprapubic region and are sharp in quality. The pain may radiate to the inner aspect of the thighs and lower sacral area and may be accompanied by nausea, diarrhea, and headache. Primary dysmenor- rhea usually develops 1 or 2 years after menarche, when ovulatory cycles are established. Under the influence of progesterone, increased amounts of prostaglandins, potent hormonelike unsaturated fatty acids, are released from the endometrium. Prostaglandins have significant effects on smooth muscle and vasomotor tone; when released from the endometrium, prostaglandins promote uterine contractions and ischemia of the endometrial capillaries and thereby cause the cramping pain of dysmenorrhea.
Secondary dysmenorrhea is characterized more often by dull pain that may increase with age. It is associated with pelvic disorders such as endometriosis, leiomyomas, or pelvic adhesions.
Treatment. Recent therapeutic strategies for the management of primary dysmenorrhea have focused on the phenomenon of prostaglandin-induced enhanced uterine contractility. The use of prostaglandin synthetase inhibitors such as ibuprofen, celecoxib, and naproxen, which inhibit the formation of prostaglandins, has been effec- tive in many women experiencing dysmenorrhea. Although evidence supporting their effectiveness is limited, other approaches that use steroid hormones, such as progestins or combined high-progestin/low-estrogen oral contraceptives, have also been advocated. The rationale is that production of the high menstrual levels of prostaglandins needed to produce dysmenorrhea requires high levels of estrogen without pro- gesterone in the proliferative phase of the menstrual cycle. Progestin administration therefore inhibits the production of prostaglandins and relieves the symptoms of dysmenorrhea. However, the use of steroid hormones may involve significant risks, which the individual client must weigh against the benefits of such therapy.
Therapeutic strategies for secondary dysmenorrhea may involve diagnostic operative procedures such as laparoscopy, as well as medical and surgical therapy for the underlying condition.
the gonadotropic hormones follicle-stimulating hormone (FSH) and luteinizing hormone (LH). As described in Chapter 32, the menstrual cycle is dependent on the sequential changes in estrogen and progesterone levels. The initial rise in LH and FSH levels in the menstrual cycle occurs in response to a decline in estrogen and progesterone levels; estrogen levels then rise again in response to actions of the gonadotropic hormones, and the endometrium proliferates again in response to estrogen secretion. Thus events that prevent estrogen production interfere with the normal fluctuations in estrogen levels and those that block the action of estrogen on the endometrium will result in abnormal or absent menstrual flow. Such events may include physical or emotional stress, which can interfere with normal production of the gonadotropic hormones and alter the pattern of estrogen functioning. In addition, ovarian, adrenal, or pituitary tumors may interfere with the normal production of female sex hormones or LH and FSH. Neoplasms of the ovaries or adrenal and pituitary glands may result in excess or deficient production of these hormones, with a consequent interruption in normal menstrual flow.
Treatment. Therapeutic strategies for amenorrhea are directed to correcting the cause of the interruption in hormonal functioning and may include the use of hormonal supplementation to reinstate a normal sequence of events in the menstrual cycle. If amenorrhea is the result of a neoplastic process, surgery may be indicated for tumor removal.
Abnormal Uterine Bleeding Patterns Irregular or excessive bleeding from the uterus is one of the most common alterations in the female reproductive system. Uterine bleeding that varies from a woman’s normal pattern either in quantity or in frequency may occur at any age and for a variety of reasons.
Etiology, clinical manifestations, and treatment. The most common alterations in uterine bleeding patterns and their causes are described here. Metrorrhagia, or bleeding between menstrual periods, usually results from slight physiologic bleeding from the endometrium during ovulation, but may also result from other causes such as uterine malignancy, cervical erosions, and endometrial polyps or as a side effect of estrogen therapy. Hypomenorrhea, or a deficient amount of menstrual flow, results from endocrine or systemic disorders that may interfere with proper functioning of the hormones in the menstrual cycle, or it may be due to partial obstruction of menstrual flow by the hymen or a narrowing of the cervical os. Oligomenorrhea, or infrequent menstrua- tion, usually reflects failure to ovulate because of an endocrine or systemic disorder with accompanying inappropriate hormonal function. Similarly, polymenorrhea, an increased frequency of menstruation, may be associated with ovulation and may be caused by endocrine or systemic factors. Menorrhagia, an often-debilitating increase in the amount or duration of menstrual bleeding, usually results from lesions of the female reproductive organs such as uterine leiomyomas, endometrial polyps, and adenomyosis. It is often managed with surgery, oral contraceptives, and/or antiprostaglandins. A progestin-containing intrauterine device has shown promise in reducing menorrhagia, dysmenorrhea, and anemia.
The term dysfunctional uterine bleeding is used to describe abnormal endometrial bleeding not associated with tumor, inflammation, preg- nancy, trauma, or hormonal effects. Dysfunctional uterine bleeding is most common around the time of menarche and menopause and not as common in women before menopause. In adolescents, dysfunctional uterine bleeding is most often due to immaturity in functioning of the pituitary and ovary, which have not yet properly orchestrated their activities. Thus an imbalance may be present in the ratio of estrogen to progesterone. Absent or diminished levels of progesterone will result in a thick and extremely vascular endometrium that lacks structural support. As a result of this fragile structure, spontaneous and superficial hemorrhage occurs randomly throughout the endometrium. In addi- tion, the blood vessels in the endometrium fail to constrict to limit
674 UNIT IX Genital and Reproductive Function
prolapse, or sinking, of the uterus from its normal position. Descent of the uterus occurs when supporting structures, such as the uterosacral ligaments and the cardinal ligaments, relax and allow the relationship of the uterus to the vaginal axis to be altered. This relaxation permits the cervix to sag downward into the vagina. If the support of the vaginal wall is also compromised, the pressure of the abdominal organs on the uterus will gradually force it downward through the vagina into the introitus. Uterine prolapse may occur at any age. In female infants and in women who have never given birth, congenital defects in the basic integrity of the pelvic supporting structures are usually responsible. Trauma to the ligaments during childbirth is the cause of uterine prolapse in women who have given birth, particularly if multiple deliveries have occurred. Uterine prolapse is classified as first degree, second degree, or third degree according to the level to which the uterus has descended (Fig. 33.2). In first-degree prolapse, the uterus is approximately halfway between the vaginal introitus and the level of the ischial spines. In second-degree prolapse, the end of the cervix has begun to protrude through the introitus. In third-degree or complete prolapse, the body of the uterus is outside the vaginal introitus. Fig. 33.3 shows a third- degree, or complete, uterine prolapse.
Clinical manifestations. The symptoms of uterine prolapse depend on the degree of severity. The woman may become increasingly aware
KEY POINTS • Amenorrhea, the absence of menstruation, is most commonly due to hormonal
disturbances. Stress and neoplasms (ovarian, adrenal, or pituitary tumors) may interfere with the normal patterns of hormone secretion. Treatment is aimed at the underlying cause of the hormonal imbalance.
• Irregular or excessive uterine bleeding is a common problem. Metrorrhagia is bleeding between periods, hypomenorrhea is reduced menstrual flow, oligomenorrhea is infrequent menstruation, polymenorrhea is an increased frequency of menstruation, and menorrhagia is prolonged and heavy bleeding during menstruation. These disorders may be associated with hormonal imbalances or primary lesions of the reproductive tract.
• Dysfunctional uterine bleeding is common at menarche and menopause and is due to irregular secretion of reproductive hormones. Other causes of abnormal bleeding, such as tumor, trauma, inflammation, and endocrine diseases, are ruled out before a diagnosis of dysfunctional uterine bleeding is made.
• Dysmenorrhea is painful menstruation, generally described as sharp suprapubic cramping severe enough to limit activity. Dysmenorrhea may be treated with prostaglandin inhibitors. Dysmenorrhea secondary to pelvic disorders (endometriosis, adhesions) generally has a dull quality and may increase with age.
Vagina
Rectum
FIRST-DEGREE PROLAPSE
Uterus Bladder
Symphysis pubis
THIRD-DEGREE PROLAPSESECOND-DEGREE PROLAPSE
FIG 33.2 Degrees of uterine prolapse. (From Black JM, Hawks JH: Medical-surgical nursing: clinical manage- ment for positive outcomes, ed 8, Philadelphia, 2009, Saunders, p 931.)
FIG 33.3 Complete uterine prolapse. (From Parsons L, Sommers SC: Gynecology, ed 2, Philadelphia, 1978, Saunders, p 1443.)
ALTERATIONS IN UTERINE POSITION AND PELVIC SUPPORT Alterations in uterine position and pelvic support may occur anytime during a woman’s reproductive years. The major support for the uterus and upper part of the vagina is provided by the thickenings of the endopelvic fascia known as the cardinal ligaments. Although tearing of the cardinal ligaments during labor and delivery is rare, they can be stretched abnormally during a difficult or prolonged delivery and subsequently fail to support the pelvic organs adequately. In addition, congenital defects in the muscles of the pelvic floor may promote alterations in position of the uterus and other pelvic structures. The two most common alterations in uterine position are uterine prolapse and retrodisplacement of the uterus. Other commonly occurring altera- tions resulting from a weakening of the vaginal and pelvic floor musculature are cystocele and rectocele.
Uterine Prolapse Etiology. The axis of the uterus normally forms an acute angle with
the axis of the vagina. This anatomic feature itself tends to prevent a
CHAPTER 33 Alterations in Female Genital and Reproductive Function 675
Anteverted Midposition
Anteflexed Retroflexed Retroverted
FIG 33.4 Various positions of the uterus. Note that the classifications describe the position of the long axis of the uterus with respect to the long axis of the body. (From Jarvis C: Physical examination and health assessment, ed 7, St Louis, 2016, Elsevier, p 756.)
Treatment. If the woman has no symptoms, no treatment is indicated. The use of a pessary to support the uterus in a normal position may relieve the symptoms, but surgical correction is sometimes indicated when symptoms are severe. If surgery is indicated, less invasive, lapa- roscopic surgical procedures are often preferred.
Cystocele Etiology. A cystocele is a protrusion of a portion of the urinary
bladder into the anterior of the vagina at a weakened part of the vaginal musculature (Fig. 33.5A). The defect in the vaginal wall is usually caused by injury during childbirth or surgery, but may also result from the aging process or develop as an inherent weakness. Other predisposing factors include obesity and a history of lifting heavy objects. The pressure created by this protrusion causes the anterior vaginal wall to bulge in a downward direction.
Clinical manifestations and treatment. A wide range of symptoms may be present, depending on the degree of severity of the cystocele. A mild degree of protrusion of the bladder may result in no symptoms. In moderate to severe cases, a sensation of pressure can be felt in the vagina, along with dysuria, incontinence, and back pain. Fullness at the vaginal opening may be observed, as may a soft, reducible mucosal mass bulging into the anterior of the vaginal introitus.
Surgical repair of the vagina is done to correct the cystocele and reestablish support of the anterior vaginal wall. The bladder is restored to a normal position by reinforcement of the weakened portion of the anterior vaginal wall. Prosthetic mesh may also be inserted to further support the bladder during the repair of the cystocele.
of a sensation of bearing down and discomfort in the vagina. If the prolapse has advanced to the second or third degree, she may note discomfort while walking or sitting and have difficulty urinating. In addition, as the end of the cervix begins to protrude outside the body, it may be subject to trauma from friction and ulceration. Bleeding and ulceration of the cervix may be present.
Treatment. Uterine prolapse is one of the most common reasons for hysterectomy, usually from the more minimally invasive vaginal approach. In patients who are at poor risk for surgery or who choose not to have a hysterectomy, a pessary, which is a small supportive device, is inserted to hold the uterus in place.
Retrodisplacement of the Uterus The term retrodisplacement refers to situations in which the body of the uterus is displaced from its usual location overlying the bladder to a position in the posterior of the pelvis. As shown in Fig. 33.4, the uterus may be in one of five positions: anteverted, midposition, anteflexed, retroflexed, or retroverted.
Etiology and clinical manifestations. Retrodisplacement can be detected in 20% to 30% of all women. It may be a normal variation and therefore be present throughout a woman’s entire life, or it may develop after childbirth when the supporting structures are injured.
In many women, no symptoms occur from uterine retrodisplacement. In some women, symptoms of pelvic pain or pressure, dysmenorrhea, and dyspareunia (painful intercourse) may be present. In addition, infertility has been associated with retrodisplacement.
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INFLAMMATION AND INFECTION OF THE FEMALE REPRODUCTIVE TRACT Inflammatory and infectious processes of the female reproductive tract may have effects that range from discomfort to life-threatening situations. Because the infectious agents responsible for inflammation and infection of the female genital tract may be sexually transmitted, some overlap in the discussion of these processes and sexually transmitted diseases is necessary. This chapter will describe the two principal inflammatory and infectious processes of the upper and lower female reproductive tract: pelvic inflammatory disease (PID) and vulvovaginitis. The reader may wish to refer to Chapter 34 for additional information on sexually transmitted infections.
Pelvic Inflammatory Disease Pelvic inflammatory disease is any acute, subacute, recurrent, or chronic infection of the oviducts and ovaries with involvement of the adjacent reproductive organs (Fig. 33.6). It includes inflammation of the cervix (cervicitis), uterus (endometritis), oviducts (salpingitis), and ovaries (oophoritis). When the connective tissue underlying these structures between the broad ligaments is also involved, the condition is called parametritis.
Hospitalizations for PID have declined in 2014. The Centers for Disease Control and Prevention (CDC) reports an approximate 40% decrease in the number of health care provider visits for PID among women aged 15 to 44 years, from 123,000 to 88,000 visits. Significant reproductive health problems may occur as a result of PID. A substantial number of women with a history of PID eventually experience one or more long-term health problems. Among women with PID, tubal scarring can cause infertility in 8%, ectopic pregnancy in 9%, and chronic pelvic pain in 18%.
Etiology. Normally, cervical secretions provide protective and defensive functions for the reproductive organs. By providing a bacte- riostatic barrier, cervical mucus prevents bacterial agents present in the cervix or vagina from ascending into the uterus. Therefore conditions or surgical procedures that alter or destroy cervical mucus may impair this bacteriostatic mechanism. PID may follow the insertion of an intrauterine device, pelvic surgery, abortion procedures, and infection during or after pregnancy. Bacteria may also enter the uterine cavity through the bloodstream or from drainage from other foci of infection
Rectocele Etiology. A rectocele (also called proctocele) is a protrusion of the
anterior rectal wall into the posterior of the vagina at a weakened part of the vaginal musculature (see Fig. 33.5B). As with a cystocele, the defect in the vaginal wall is usually caused by injury during childbirth or surgery, but may also occur with aging or arise as an inherent weakness. Other predisposing factors for a rectocele include multiparity, obesity, and postmenopausal status. The rectocele forms a bulging mass beneath the posterior vaginal mucosa and pushes downward into the lower vaginal canal. Gradually, the rectum may be torn from its fascial and muscular attachments to the pelvic wall. The levator ani muscles may also become stretched or torn.
Clinical manifestations and treatment. A wide range of symptoms may be present, depending on the degree of severity of the rectocele. The patient may report a history of difficulty in bowel evacuation and may have experienced chronic constipation with laxative and enema dependency. A feeling of pressure may also be reported, along with painful sexual intercourse. Physical examination reveals a mass bulging into the posterior of the vaginal introitus.
Surgical repair of the vagina is done to correct the rectocele and reestablish support of the posterior vaginal wall. The rectum is restored to its normal location, and the levator ani muscles are realigned in proper position.
CYSTOCELE
RECTOCELE
A
B
Bulge
Bulge
FIG 33.5 A, Cystocele. Note the bulging of the anterior vaginal wall. The urinary bladder is displaced downward. The cystocele pushes the anterior wall downward into the vagina. B, Rectocele. Note the bulging of the posterior vaginal wall. (From Black JM, Hawks JH: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2009, Saunders, p 930.)
KEY POINTS • Uterine prolapse occurs when supporting pelvic structures relax and the
cervix sags downward into the vagina. Congenital defects, pregnancy, and childbirth are the usual contributing factors. Prolapse may be accompanied by a sensation of pelvic fullness and vaginal discomfort.
• Retrodisplacement of the uterus is common (20% to 30% of women) and may be congenital or due to pregnancy and childbirth. The body of the uterus is flexed or rotated into the posterior of the pelvis, which sometimes leads to varied symptoms of pelvic pain or pressure, dysmenorrhea, and dyspareunia.
• A cystocele may result from weakness in the vaginal musculature that allows the urinary bladder to protrude into the anterior of the vagina. Contributing factors include childbirth, surgery, aging, obesity, and heavy lifting. Vaginal pressure, dysuria, and back pain may be present.
• A rectocele may result from weakness in the posterior vaginal musculature that allows the rectum to protrude into the vagina. Contributing factors are similar to those for cystocele. Symptoms include constipation, painful bowel evacuation, and painful intercourse.
CHAPTER 33 Alterations in Female Genital and Reproductive Function 677
of the other. Vulvovaginitis may occur at any time during a girl’s or woman’s life and affects most females at some point in life.
Etiology. Infection by Candida albicans (formerly called Monilia) affects an estimated 75% of women at least once in their lifetime. Approximately 40% to 45% of women will have two or more lifetime episodes of vulvovaginitis caused by C. albicans. (Infection by Candida is referred to as candidiasis.) C. albicans is a fungus that requires glucose for growth; thus its growth may be promoted during the secretory phase of the menstrual cycle when glycogen levels increase in the vaginal environment. In addition, other conditions in which the glycogen content of the vagina is increased, such as diabetes, pregnancy, and use of oral contraceptives may favor candidiasis. Other factors predisposing to the development of vulvovaginitis from Candida infection include the use of estrogen supplementation and antibiotics. Women using estrogen supplementation in the perimenopausal period may be at greater risk for candidal infection of the vagina inasmuch as the glycogen content of the vagina may increase with these therapies. The mechanism by which antibiotic use promotes candidiasis is presently unclear, but it is thought that destruction of the bacteria that normally exert the protective effect of consuming Candida results in overgrowth of the Candida population with subsequent infection.
Other infectious agents that may result in vulvovaginitis include Trichomonas vaginalis, Haemophilus vaginalis, and N. gonorrheae. Viral agents that may cause vulvovaginitis include human papilloma virus (HPV) (venereal warts, condylomata acuminata) or herpesvirus type 2. These organisms can be transmitted during sexual intercourse and are discussed in detail in Chapter 34.
In addition to infectious processes, vulvovaginitis may be promoted by conditions or agents that irritate the vulva and vagina. Chemical irritation or allergic reactions to detergents, feminine hygiene products, and toilet paper may be a causative factor. Trauma to the vulva or vagina or the atrophy of the vaginal wall that occurs postmenopausally may predispose to vulvovaginitis as well.
Clinical manifestations. Vulvovaginitis from candidiasis results in a thick, white discharge and red, edematous mucous membranes with white flecks adhering to the vaginal wall. Intense itching (pruritus) usually accompanies this discharge. The vaginal pH is usually normal (less than 4.5), and fungal organisms are often seen on microscopic studies. Vulvovaginitis from other infectious agents may involve a malodorous, purulent discharge. Irritation and subsequent inflammation of the vulva and vagina may be manifested by red, swollen labia; pain on urination and intercourse; and itching.
Treatment. Appropriate medical therapy for the causative organisms is usually instituted, including local antifungal preparations for vaginal candidiasis and local and systemic antibiotic therapy for vulvovaginitis caused by bacterial agents. Cool compresses and sitz baths provide relief of itching and burning of inflamed tissues. Avoidance of factors that promote irritation of the vulva, such as drying soaps, nonabsorptive underwear, and tight clothing, is also of therapeutic benefit.
Bartholinitis Bartholinitis is an inflammation of the Bartholin glands, which are located on either side of the vaginal orifice and lubricate the vaginal introitus with a clear, viscous secretion. The location of Bartholin glands renders them susceptible to access by bacteria such as N. gonorrheae, C. trachomatis, and other organisms.
Clinical manifestations and treatment. Once bacteria are established, an abscess (also referred to as a Bartholin cyst) may form and cause tenderness and swelling at the site. Pus may be observed exuding from the duct orifice leading to the affected gland, and symptoms of fever and malaise are present in some individuals. Laboratory culture with proper diagnosis of the causative organism is performed, and appropriate
such as a pelvic abscess, ruptured appendix, or diverticulitis of the sigmoid colon.
PID can result from infection with aerobic and anaerobic organisms. Neisseria gonorrheae and Chlamydia trachomatis are the most common causative agents because they readily penetrate the bacteriostatic barrier of cervical mucus. However, a variety of bacterial organisms may contribute to the development of PID, including staphylococci, strep- tococci, diphtheroids, and coliforms such as Pseudomonas and Escherichia coli. These bacteria are commonly found in cervical mucus, and PID can result from infection by one or several of these bacteria. In addition, PID may occur after multiplication of bacteria in the endometrium that are normally nonpathogenic. During parturition, the traumatized endometrium favors the multiplication of bacteria.
Clinical manifestations. The associated signs and symptoms of PID vary with the affected part of the reproductive tract, but generally include abdominal tenderness and tenderness or pain of the cervix or adnexa on palpation. In addition, the temperature may be elevated higher than 38°C and the white blood cell count elevated greater than 10,000/mm3. A pelvic abscess or inflammatory mass may be present on physical examination or ultrasound, and purulent vaginal discharge may be noted.
Treatment. Early and aggressive use of antibiotic agents best suited for the causative organisms is essential in preventing the progression of PID. Various oral and parenteral antibiotic regimens involving the use of multiple antimicrobial agents have been suggested by the CDC for use in PID. All regimens used to treat PID should also be effective against N. gonorrheae and C. trachomatis. Inpatient hospitalization may be indicated for patients with rapidly progressing PID and for those requiring surgical drainage of pelvic abscesses. Rupture of a pelvic abscess is a potentially life-threatening condition, and a total abdominal hysterectomy (removal of the uterus) with bilateral salpingo-oophorectomy (removal of both oviducts and ovaries) may be indicated in this situation.
Vulvovaginitis Vulvovaginitis is an inflammation of the vulva (vulvitis) and vagina (vaginitis). Because the vulva and vagina are anatomically close to each other, inflammation of one location usually precipitates inflammation
Streptococcus
Staphylococcus, gonococcus
Pelvic abscesses
Oophoritis
Parametritis
Endometritis
Endocervicitis
Tubo-ovarian abscesses
Salpingitis
FIG 33.6 Spread of pelvic inflammatory disease. (From Ignatavicius DD, Workman ML: Medical-surgical nursing, ed 7, St Louis, 2013, Elsevier, p 1663.)
678 UNIT IX Genital and Reproductive Function
Clinical manifestations. Uterine leiomyomas can grow to a large size (Fig. 33.7). Obviously, the presence of such a large mass within the uterus will cause symptoms of abdominal pain and pressure, but smaller myomas can result in such symptoms as well. Other symptoms associated with leiomyomas may include abnormal vaginal bleeding and discharge, depending on the location of the mass. If the myoma is sufficiently large to cause pressure on surrounding abdominal organs, backache, constipation, and urinary frequency or urgency may also be present. Finally, uterine leiomyomas can prevent pregnancy and make carrying a pregnancy to term difficult.
Treatment. Treatment for uterine leiomyomas depends on such factors as the severity of symptoms, the size and location of the leio- myoma, and the patient’s age. Small myomas that cause no health problems are generally monitored carefully for growth patterns. Large or multiple masses that promote severe uterine bleeding or interfere with functioning of the gastrointestinal or urinary tract are surgically removed, and hysterectomy may be indicated.
Ovarian Cysts Ovarian cysts are sacs on an ovary that contain fluid or semisolid material. Ovarian cysts can develop at any time between puberty and menopause, including during pregnancy.
Etiology. The cause of the formation of ovarian cysts is presently unknown. They can arise in several locations in the ovaries: 1. Follicular cysts result when a maturing ovarian follicle fails to release
an ovum; instead, the follicle continues to enlarge and produce estrogen.
2. Corpus luteum cysts occur when the corpus luteum fails to degenerate normally; the cyst continues to grow and produce progesterone.
3. Theca-lutein cysts are commonly bilateral and filled with clear, straw-colored fluid. Often their development is associated with hydatidiform mole, choriocarcinoma, or hormone therapy. Clinical manifestations and treatment. Normally, ovarian cysts
produce no symptoms. They may be noted on periodic examination and may increase and decrease in size with the menstrual cycle. Asymp- tomatic simple ovarian cysts smaller than 10 cm in diameter have a low probability of malignancy and can be followed without intervention. However, when a larger ovarian cyst ruptures, an ovarian vessel may tear, with variable amounts of intraperitoneal hemorrhage and abdominal
BENIGN GROWTHS AND ABERRANT TISSUE OF THE FEMALE REPRODUCTIVE TRACT Benign growths and aberrant tissue in the female reproductive tract are not uncommon; for example, uterine leiomyomas develop in approximately 70% of women by the time they reach the age of 50 years. The presence of benign growths or aberrant tissue in the reproduc- tive tract may cause no symptoms and remain entirely unnoticed, or symptoms ranging from debilitating to life threatening may be present. The diagnosis of these growths or tissue abnormalities may cause anxiety in women experiencing them; in spite of their benign classification, their presence can have devastating effects on the underlying reproductive structures. This section focuses on three of the most common forms of benign growths and aberrant tissue in the female reproductive organs: uterine leiomyomas, ovarian cysts, and endometriosis.
Uterine Leiomyomas Uterine leiomyomas, which are also called myomas or fibroids, are the most common form of uterine growths that appear in women. Their actual incidence is difficult to establish because many myomas are either too small or inaccessibly placed to be palpated. Uterine leiomyomas occur in approximately 50% of all premenopausal women and affect black women three times more often than white women. Age appears to be a factor in their development inasmuch as myomas are not found before the onset of puberty and rarely exhibit growth activity after menopause.
Etiology. Uterine leiomyomas make their appearance and exhibit growth activity during the reproductive years. Therefore although the actual cause of myomas is presently unknown, it is thought that estrogen and human growth hormone may influence tumor formation by stimulating susceptible fibromuscular elements in the uterine wall. This theory is supported by the finding that tumor growth is enhanced with the administration of large doses of estrogen and during the later stages of pregnancy, when human growth hormone and estrogen levels are high. In addition, uterine leiomyomas usually shrink or disappear after menopause, when estrogen levels decrease.
KEY POINTS • Pelvic inflammatory disease (PID) refers to any infection of the oviducts,
ovaries, and adjacent reproductive organs. It includes cervicitis, endometritis, salpingitis, and oophoritis. Manifestations and complications of PID include infertility, ectopic pregnancy, pelvic pain, dyspareunia, and abscesses.
• Intrauterine devices, abortion, and pelvic surgery predispose to PID. N. gonorrheae and C. trachomatis are the most common causative organisms, and treatment centers on aggressive antibiotic therapy.
• Inflammation of the vulva and vagina, or vulvovaginitis, is a common problem in women. Most cases are associated with fungal infection by C. albicans and are manifested as a white vaginal discharge and an irritated, itchy mucosa. Predisposing factors include chemical irritation from feminine hygiene products, trauma, allergic reactions, and antibiotic therapy that inhibits the growth of normal flora.
• Inflammation of the Bartholin glands, or bartholinitis, is typically a result of the entry and subsequent infection of the glands by N. gonorrheae or C. trachomatis. Tenderness, swelling, and pus may be present and signify the formation of an abscess within one of the Bartholin glands. Antibiotic therapy and surgical drainage are used to manage the abscess.
Subserous
Submucous
Intramural
FIG 33.7 Uterine leiomyomas. (From Huether SE, McCance KL: Understanding pathophysiology, ed 6, St Louis, 2017, Mosby, p 817.)
antibiotic therapy is usually instituted. Surgical incision and drainage of the abscess may be necessary for effective management.
CHAPTER 33 Alterations in Female Genital and Reproductive Function 679
part of the abdomen and in the vagina, posterior of the pelvis, and back. The pain usually begins 5 to 7 days before the peak of menses and lasts for 2 to 3 days. It differs from the pain of primary dysmenorrhea, which is more cramplike and concentrated in the abdominal midline. Pain may be extremely severe, although the degree of pain does not necessarily indicate the extent of disease. Dyspareunia and pain with defecation may also be present. Significant changes in the pattern of menstrual flow may occur, with excessive bleeding that may progress to anemia and fatigue.
Treatment. Treatment varies according to the extent of disease, and the primary goals of therapy are to relieve pain symptoms and restore or maintain fertility. Many women with endometrial implants never experience symptoms and require no treatment; others experience a rapidly progressive set of severe symptoms requiring immediate interven- tion. Both medical and surgical treatment modalities may be used. Therapies to reduce endometriosis-associated pain symptoms include use of nonsteroidal antiinflammatory drugs (NSAIDs) and hormonal agents, including progestins, androgenic agents, and gonadotropin- releasing hormone (GnRH). Because endometriosis responds to cyclic hormonal functioning, it is thought that the use of hormones to interrupt this cyclic pattern may result in atrophy of the endometrial implants. Surgical intervention includes removal or destruction of the endome- triosis. If damage to the pelvic organs is widespread and the disease is progressing rapidly, total abdominal hysterectomy with removal of the oviducts and ovaries is performed.
pain. In persons with recurrent ovarian cysts, oral contraceptives may be recommended to prevent ovulation. Oral contraceptives do not promote resolution of cysts that are already formed. Occasionally, immediate surgical intervention is indicated to control the hemorrhage and repair the site of rupture.
Endometriosis Endometriosis is the presence of endometrial tissue outside the lining of the uterine cavity. Because the only normal location for endometrial tissue is the endometrial lining of the uterus, the presence of this abnormal growth is associated with a variety of side effects ranging from mild symptoms to life-threatening consequences. These foci of abnormal endometrial tissue are called endometriomas, or endometrial implants, and usually occur within the pelvis. The most common sites of occurrence of endometriosis within the pelvis are the ovary, perito- neum of the cul-de-sac or pouch of Douglas, uterosacral ligaments, round ligament, oviduct, and the peritoneal surface of the uterus. Less frequently, endometrial implants occur in other body sites such as the bladder or large intestine. Although endometriosis is a benign disease, it possesses certain characteristics of malignant disease, such as the ability to grow, infiltrate, and spread. Symptoms of endometriosis may have an abrupt onset or may develop over many years.
The actual incidence of endometriosis is unknown because it can exist without any significant symptoms. Conservative population estimates show that approximately 11% of women have undiagnosed endometriosis. Active endometriosis usually occurs between 30 and 40 years of age, particularly in women who have never given birth. Endo- metriosis is rare in women younger than 20 years or after menopause. Although some authorities report a higher incidence of endometriosis in white women of higher socioeconomic levels, these impressions may not be accurate given the tendency of this group to delay childbearing and to have enhanced access to health care. The infertility rate for women in whom endometriosis is diagnosed is about 30%.
Etiology. At the present time, three major theories on the etiology of endometriosis have been proposed: • Transportation. Endometrial tissue flows backward through the
oviducts during a normal menstrual period. After this retrograde flow, endometrial fragments implant on the ovary, peritoneal surfaces, and other areas.
• Metaplasia. Inflammation or a hormonal change triggers metaplasia (conversion of one kind of tissue to a form that is not normal for that tissue). Thus coelomic epithelium at certain sites converts to endometrial epithelium.
• Induction. In this theory, a combination of transportation and metaplasia takes place, and regurgitated endometrium chemically induces mesenchyma to form endometrial epithelium. (At present, this theory is thought to be the most likely explanation for endometriosis.) Once the endometrial implants arise in their abnormal locations,
they continue to be under hormonal influence, just as the endometrial lining of the uterus responds to hormonal influence. Thus they periodi- cally proliferate and bleed in response to hormonal stimulation. In some instances they may rupture, usually immediately before or after a menstrual period. Endometriomas are filled with brown blood debris; when they rupture, their contents spill onto the sensitive pelvic peri- toneum. This irritative discharge establishes a local chemical peritonitis, followed by the formation of fibrous tissue in the injured location. Dense tissue adhesions in the pelvis may result as the pelvic peritoneum undergoes repeated irritation by the cyclic activities of the endometrial implants.
Clinical manifestations. The most prominent symptom of endo- metriosis is acquired dysmenorrhea, which produces pain in the lower
KEY POINTS • Benign fibroid tumors, or leiomyomas, are the most common uterine tumor,
affecting about 20% of women older than 35 years. Depending on their size, uterine leiomyomas may be characterized by abnormal vaginal bleeding, pelvic pain, constipation, and urinary frequency.
• Ovarian cysts are usually asymptomatic and may change in size with the menstrual cycle. Rupture of an ovarian cyst may result in severe abdominal pain and hemorrhage, which occasionally necessitates immediate surgical intervention.
• Endometriosis occurs when endometrial tissue grows in areas other than the uterine lining. Endometriosis may involve the ovary, peritoneum, oviduct, outer layer of the uterus, bladder, and intestine. Although considered benign, endometriosis tends to infiltrate and spread to adjacent tissues. Endometriosis may be initiated by reflux of the uterine lining through the oviducts into the abdominal cavity during menses.
• Ectopic endometrial tissues periodically proliferate and bleed in response to fluctuations in the levels of reproductive hormones. Dysmenorrhea, with pelvic, back, and lower abdominal pain, usually begins 5 to 7 days before the peak of menses and lasts 2 to 3 days. The pain is more diffuse than that of primary dysmenorrhea. Treatment may include induction of a menopause-like state with hormone administration or the surgical excision of affected structures.
CANCER OF THE FEMALE GENITAL STRUCTURES Malignant neoplasms occur in every part of the female reproductive system. This section describes the incidence and pathophysiologic aspects of the most common types of malignancies in female genital structures. For further information about the process of neoplasm development, the reader may wish to refer to Chapter 7 of this text.
Cancer of the Cervix Etiology. Cancer of the uterine cervix is a neoplasm that can be
detected in the early, curable stage by the Papanicolaou (Pap) test. The
680 UNIT IX Genital and Reproductive Function
tissue examination. Treatment strategies for endometrial cancer include radiation therapy and total hysterectomy with possible removal of the ovaries and oviducts. The 5-year survival rate for patients in whom endometrial cancer (adenocarcinoma) is diagnosed early at a local stage is approximately 90%. The 5-year survival rate drops to 17% if the cancer has metastasized before diagnosis.
Ovarian Cancer Ovarian cancer has replaced cervical cancer as the leading cause of death from genital cancer. The peak incidence is between 60 and 80 years of age. Because no symptoms are noted until late in the disease, the mortality rate is high, with only a 45% 5-year survival rate.
Clinical manifestations and treatment. When symptoms occur, they are related to intraabdominal metastasis and include increasing abdominal girth, weight loss, abdominal pain, dysuria or urinary frequency, and constipation. Management of ovarian cancer includes removal of the uterus, ovaries, and oviducts. Radiation therapy and chemotherapy may be used in conjunction with surgery. Increasingly, prophylactic oopho- rectomy or salpingo-oophorectomy is being recommended in high-risk women, particularly in women who are carriers of the BRCA1 and BRCA2 mutations.
Vaginal Cancer Cancer of the vagina generally occurs in women in their early to mid- fifties, although it has an increased incidence in young women whose mothers took diethylstilbestrol during pregnancy. Because the vagina is a thin-walled structure with rich lymphatic drainage, vaginal cancer may metastasize to the bladder, rectum, vulva, pubic bone, and other surrounding structures.
Clinical manifestations and treatment. The primary signs and symptoms of vaginal cancer are vaginal spotting and discharge, pain, groin masses, and changes in urinary pattern. Early-stage therapy is designed to treat the malignant area while preserving normal parts of the vagina. Radiation therapy or surgery varies based on the size, depth, and location of the tumor. Preservation of a functional vagina is generally possible only in the early stages, although grafting from other body sites may be performed to avoid vaginal stenosis, particularly in younger women.
Cancer of the Vulva Clinical manifestations and treatment. Cancer of the vulva is rare,
with a crude mortality rate of 1.3 per 100,000 women. It can occur at any age, including infancy, but has a peak incidence in the mid-sixties. Factors that seem to predispose to the disease include sexually transmitted infections, chronic pruritus of the vulva with swelling and dryness, obesity, hypertension, diabetes, and never having been pregnant.
Leukoplakic changes (the presence of whitish plaquelike or ulcerated lesions) in the vulva may precede the development of carcinoma. Once the carcinoma develops, vulvar masses may be present, with groin masses and abnormal urination and defecation manifesting later in the disease. Management of vulvar cancer includes partial excision of the vulva to remove precancerous leukoplakic lesions and total vulvar excision for advanced disease. Local relapse is common whether conservative or radical procedures are undertaken.
main cause of cervical cancer is certain HPV types. Other factors include having intercourse at a young age or with multiple sexual partners, becoming pregnant multiple times, or being infected by sexually transmitted infections. The incidence of cervical cancer is decreasing in the United States; approximately 12,000 new cases of HPV-related cervical cancer are diagnosed each year and over 4000 women in the United States die annually from cervical cancer. Widespread screening with a yearly Pap test in women at risk has continued to decrease the mortality of cervical cancer. The American Cancer Society now recom- mends that all women should begin cervical cancer screening at 21 years of age. After three consecutive negative Pap tests, women older than 30 years who are not at high risk can be tested every 2 to 3 years. For women who have had a hysterectomy unrelated to cervical neoplasia, the CDC no longer recommends Pap screening unless surgery was done as treatment for cervical cancer or precancer. Low-risk women who have been screened regularly may also stop screening at age 70.
Clinical manifestations. Preinvasive cervical cancer produces no symptoms, although the Pap test can detect changes in cells of the cervical epithelium, which may be present for 10 years before invasive cancer develops. Early invasive cancer causes abnormal vaginal bleeding, persistent vaginal discharge, and pain and bleeding after intercourse. When symptoms appear, the cancer has usually progressed beyond its early stages. Squamous cell carcinoma accounts for 95% of all invasive cervical cancers diagnosed, and adenocarcinomas account for most of the rest. Invasive carcinoma of the cervix spreads by direct extension to the vaginal wall, laterally into the parametrium toward the pelvic wall, and anteroposteriorly into the bladder and rectum. Metastasis to the pelvic lymph nodes is more common than spread to distant lymph nodes.
Treatment. The treatment strategy depends on the clinical stage of the tumor at the time of diagnosis. Surgery—including cryotherapy, excision, and laser surgery for precancerous conditions and hysterectomy for invasive carcinoma—may be indicated. Chemotherapy and radiation therapy may be used in invasive disease. Radical surgery, including pelvic exenteration, or removal of all the pelvic organs, can now be performed with limited morbidity. Treatment works best at the early stages of cancer. The 5-year survival rate for stage I cervical cancer is 93%. The 5-year survival rate for stage IV cancer is only 15%.
Prevention. In 2006 the Food and Drug Administration licensed the first vaccine developed to prevent cervical cancer and other diseases in females caused by certain types of HPV. The quadrivalent vaccine Gardasil protects against four HPV types (6, 11, 16, 18) that are responsible for 70% of cervical cancers and 90% of genital warts. A bivalent vaccine, Cervarix, is also available and protects against HPV types 16 and 18. Most recently, a nine-valent form of the vaccine has become available (Gardasil 9). The HPV vaccine is recommended for 11- to 12-year-old girls, but can be administered to girls as young as 9 years of age. The vaccine also is recommended for 13- to 26-year-old females who have not yet received or completed the vaccine series. Ideally, the vaccine should be administered before onset of sexual activity. However, females who are sexually active also may benefit from vaccina- tion. Experts also suggest similar vaccination recommendations for males.
Endometrial Cancer Cancer of the endometrial lining of the uterus is less common than cervical cancer in young women, but both types of cancer occur with equal frequency in postmenopausal women. Related factors include infertility, late menopause (older than 55 years), obesity, diabetes, and hypertension. Unopposed estrogen therapy also increases the frequency.
Clinical manifestations and treatment. The most common initial symptom is bleeding between menstrual periods or postmenopausal bleeding. The diagnosis of endometrial cancer is based on histologic
KEY POINTS • Cervical cancer may be detected by evaluation of cervical cells (Pap test).
Early-stage cervical cancer may be asymptomatic. When they appear, symptoms include abnormal vaginal bleeding and discharge. Cervical cancer may spread to the vaginal wall, pelvis, bladder, rectum, and pelvic lymph
CHAPTER 33 Alterations in Female Genital and Reproductive Function 681
of women in the first trimester of pregnancy, in a few women these symptoms continue throughout the entire course of pregnancy. Intrac- table vomiting, or hyperemesis gravidarum, occurs in about 0.3% to 2% of pregnancies, sometimes with life-threatening consequences. Severe dehydration and electrolyte imbalance, hepatic and renal damage, encephalopathy, and ultimately death may ensue if the vomiting cannot be controlled.
Clinical manifestations and treatment. The causes of hyperemesis gravidarum are unknown, but it is thought that an abnormal response to the production of large amounts of human chorionic gonadotropin hormone by the placenta may be implicated. Intravenous therapy to correct metabolic and nutritional abnormalities, antiemetic agents, and supportive care in a hospital environment may be needed to resolve the symptoms.
Placenta Previa and Abruptio Placentae Etiology and clinical manifestations. Placenta previa is a condition
in which the placenta is implanted abnormally over the internal cervical os. Abruptio placentae is premature separation of the placenta before delivery of the fetus. Placenta previa occurs in approximately 1 in 200 deliveries and is more common in women with multiple pregnancies and previous cesarean section; its cause is unknown. Placenta previa may occur in varying degrees of severity ranging from partial to entire coverage of the internal cervical os. Abruptio placenta, or premature separation of the placenta, occurs after 20 weeks of gestation in about 1% of deliveries. The detachment may be partial or complete and may cause overt or concealed hemorrhage. Abruptio placentae can be caused by trauma, a short umbilical cord, occlusion of the inferior vena cava, PIH, or abnormal uterine anatomy.
Treatment. Therapeutic strategies for placenta previa and abruptio placentae include cesarean section for fetal distress or hemorrhage control. Medications designed to control preterm labor may also be administered.
Spontaneous Abortion Spontaneous abortion is expulsion of the products of conception from the uterus before the period of fetal viability. It is usually called a miscar- riage by laypersons, and it is differentiated from elective abortion. Although the precise incidence is unknown, it is estimated that 50% of all pregnancies end in spontaneous abortion. Among those women who know they are pregnant, the rate of spontaneous abortion is 15% to 20%.
Etiology. Abnormal development accounts for a large percentage of aborted pregnancies. Nearly 61% of abortuses expelled in the first trimester demonstrate chromosomal abnormalities. In addition, abnormal development may result from faulty implantation of the fertilized ovum or from an abnormality in the uterine environment. Maternal factors responsible for spontaneous abortion include both systemic and localized conditions. Infectious processes that may contribute to spontaneous abortion include cytomegalovirus, herpesvirus, and rubella infections. Abnormalities of the reproductive organs, immune disorders, endocrine malfunction, and physical and psychic trauma may all contribute to spontaneous abortion.
Clinical manifestations and treatment. Associated signs and symp- toms of spontaneous abortion include vaginal bleeding and abdominal cramps. The cramps may intensify as the cervix dilates for expulsion of the uterine contents. If the entire contents are expelled, the bleeding and cramps subside. However, if any contents remain, an incomplete abortion has occurred, and intervention may be needed to control bleeding and to surgically remove the remaining uterine contents.
DISORDERS OF PREGNANCY Pregnancy results in a number of physiologic alterations in the mother that are usually well tolerated, particularly if adequate prenatal care is available. However, pregnancy can result in a number of conditions that may be life threatening to the mother and the developing fetus. The most common pregnancy-related disorders are described here; in addition, for information concerning diabetes in pregnancy, the reader may wish to consult Chapter 41, which covers the topic of diabetes in depth.
Pregnancy-Induced Hypertension Pregnancy-induced hypertension (PIH) is known by other names such as toxemia and preeclampsia-eclampsia. Worldwide, 76,000 pregnant women die each year from preeclampsia and hypertension-related disorders; 500,000 babies die of these disorders annually. Hypertension complicates 5% to 8% of all births in the United States and is one of the leading causes of pregnancy-related deaths. PIH is characterized by a rapid rise in arterial blood pressure associated with the loss of large amounts of protein in the urine. Women at risk for the development of PIH include teenagers and women in their late thirties and early forties. In addition, the presence of multiple fetuses and the preexistence of hypertension, renal and cardiovascular disease, and diabetes may predispose to the development of PIH.
Etiology, clinical manifestations, and treatment. The exact causes of PIH are presently unknown, although poor nutrition and genetic and immunologic factors have been suggested. PIH is characterized by salt and water retention by the kidneys, weight gain, and edema. In addition, arterial spasm occurs in many parts of the body, most sig- nificantly in the kidneys, brain, and liver. Both renal flow and the glomerular filtration rate are decreased, a condition exactly opposite the normal changes in pregnancy. The renal effects are caused by thickening of the glomerular tufts, which contain a fibrinoid deposit in the basement membranes.
The severity of symptoms of PIH is closely related to the retention of salt and water and the degree of the increase in arterial pressure. The increasing arterial pressure seems to promote a vicious cycle in which arterial spasm and other pathologic effects give rise to further increases in arterial pressure. Milder forms of the disease are managed with bed rest. Fetal well-being is periodically assessed, and the infant is delivered if conditions deteriorate or maturity is achieved.
In its severe form, PIH is characterized by extreme vascular spasticity throughout the body, clonic convulsions followed by coma, renal failure, liver malfunction, and extreme hypertension. Usually, this severe form occurs shortly before parturition. The mortality rate in women with severe PIH who are left untreated is high. However, the immediate use of rapidly acting vasodilating drugs, seizure prophylaxis, and rapid delivery have reduced the mortality rate from PIH to less than 1%.
Hyperemesis Gravidarum Hyperemesis gravidarum is a Latin term for excessive vomiting in pregnant women. Although transient nausea and vomiting occur in about half
nodes. The quadrivalent vaccine Gardasil protects against four HPV types (6, 11, 16, 18), which are responsible for 70% of cervical cancers and 90% of genital warts. A nine-valent vaccine is now available and recommended. The vaccine is recommended for both young women and men.
• Other cancers of the female reproductive tract include endometrial, ovarian, vaginal, and vulvar cancers. No routine screening tests are available for these diseases. Ovarian cancer has a high mortality rate because it is usually diagnosed after it has metastasized.
682 UNIT IX Genital and Reproductive Function
is thought that the presence of this nipple anomaly may in some way contribute to ductal wall irritation.
Clinical manifestations and treatment. In addition to a palpable mass and dimpling or distortion of the breast or areola, women with mammary duct ectasia may have a persistent nipple discharge. These signs must be evaluated carefully because they may also be indicative of a malignant breast mass. A biopsy is usually performed to rule out the presence of a malignancy. After confirmation of the diagnosis of mammary ductal ectasia, surgical excision of the dilated subareolar ducts is performed.
Breast Abscess The majority of abscesses occurring in the breast are not associated with breast feeding and are referred to as nonlactational breast abscesses (for a complete description of abscesses or mastitis related to lactation, the reader may wish to refer to an obstetric or maternity nursing text). Nonlactational breast abscesses are most often a recurring problem and usually affect persons with conditions that predispose to infections, such as having diabetes mellitus, undergoing steroid therapy, or being afflicted with other skin lesions.
Etiology. Multiple factors may contribute to the formation of nonlactational breast abscesses. In some women, the presence of a congenital inverted nipple may predispose to abscess formation. Abscesses may also be part of the syndrome of mammary duct ectasia; in addition, women with the aforementioned preexisting conditions that predispose to infections may be at increased risk for the development of an infectious process in the breast tissue. Unlike breast abscesses occurring during breast feeding, in which Staphylococcus aureus is the most common causative organism, nonlactational breast abscesses usually yield multiple organisms when cultured.
Clinical manifestations and treatment. Signs and symptoms of these abscesses include an area of tenderness, redness, and induration under the periareolar skin. Unfortunately, nonlactational breast abscesses do not respond well to antibiotic therapy and often recur, and it is sometimes necessary to excise the major duct system beneath the areola to prevent further recurrence.
Fat Necrosis Necrosis refers to the death of a portion of tissue, and fat necrosis in the breast is the death of fat tissue after trauma or injury to the breast.
DISORDERS OF THE BREAST The breast is considered an accessory organ of the female reproductive tract and is affected by many of the same factors that promote altera- tions in the other reproductive organs. Women’s breast health has become a critical concern in the United States because the breast is the most common site of cancer in women between 25 and 75 years of age. In addition, women are playing an increasingly important role in recognizing the symptoms of breast disease and are seeking earlier intervention with improved outcomes. It is essential that health care professionals continue to encourage this enhanced role and provide accurate information about breast health to their clients. This section includes information on specific breast disorders involving reactive- inflammatory breast disorders, benign breast disorders, and carcinoma of the breast. Before reading this information, the reader may wish to review the section on the structure and function of the breast in Chapter 32 of this text and the specific information on neoplasm development in Chapter 7.
Reactive-Inflammatory Breast Disorders Breast disorders in which an inflammatory response occurs in reaction to irritation, injury, or infection include mammary duct ectasia, breast abscess, fat necrosis, and reactions to injections or implantation of foreign materials in the breast.
Mammary Duct Ectasia Mammary duct ectasia is a chronic inflammatory process occurring in and around the terminal subareolar ducts of the breast (it is also referred to as periductal mastitis). It is more prevalent in older women, primarily postmenopausal women. The Latin word ectasia means dilation, and in mammary duct ectasia the collecting ducts beneath the nipple and areola become dilated, thinned, and filled with secretions.
Pathogenesis. Over time, the ducts become distended with cellular debris, and the debris begins to have an irritating effect on the duct walls. The inflammatory response is initiated, and a zone of granulation tissue is created around a small cavity filled with thick yellowish or brownish material. This area will be palpable as a mass in the central area of the breast, beneath or near the areola. By the time the duct ectasia has grown into a palpable mass, a reactive fibrosis will also have formed in the tissue around the mass. This fibrous thickening of the surrounding breast tissue causes dimpling and distortion of the breast and nipple inversion (Fig. 33.8). However, a congenital inverted nipple is already present in some women with mammary duct ectasia, and it
KEY POINTS • Pregnancy induced hypertension (PIH) is characterized by a rapid rise in
blood pressure and proteinuria. Renal blood flow and the glomerular filtration rate are reduced, and the kidneys retain salt and water. When severe, PIH may be associated with convulsions and coma. Antihypertensive therapy may be indicated.
• Excessive vomiting during pregnancy is termed hyperemesis gravidarum. Dehydration, electrolyte imbalance, hepatic and renal damage, and death may ensue.
• Placenta previa occurs when the placenta is implanted over the cervical os. Abruptio placentae is premature separation of the placenta. Both condi- tions may interrupt fetal oxygen supply and cause maternal hemorrhage. Cesarean section is indicated.
• It is estimated that 10% to 15% of known pregnancies end in spontaneous abortion. Fetal abnormalities, faulty implantation, infections, and trauma increase the risk of spontaneous abortion.
FIG 33.8 Nipple retraction in the right breast as a result of mammary duct ectasia. (From Haagensen CD: Diseases of the breast, ed 3, Phila- delphia, 1986, Saunders, p 359.)
CHAPTER 33 Alterations in Female Genital and Reproductive Function 683
female breasts, which has led some authorities to question use of the term “disease” for such a widespread condition. Until a more precise system for classifying this type of benign breast disorder is widely adopted, fibrocystic breast disease will probably continue to be used to describe this phenomenon of tender breast masses that occur on a cyclic basis. A comparison of normal and fibrocystic breast tissue is shown in Fig. 33.9.
Etiology and clinical manifestations. Hormonal imbalance in the reproductive years is thought to contribute to fibrocystic breast disease. Fibrocystic breast disease is more common in women ages 30 to 50 years. It is usually characterized by tenderness or pain in one or both breasts immediately before onset of the menstrual period. On palpation, the cysts tend to be firm, regular in shape, and mobile. They are located most often in the upper outer quadrant of the breasts, and their size may fluctuate throughout the menstrual cycle.
Although it was previously thought that all women with fibrocystic breast disease were at increased risk for breast cancer, recent research has disproved this theory. It is now known that only certain types of tissue changes may predispose a woman with fibrocystic breast disease to the development of breast malignancy. The vast majority of women with fibrocystic disease do not have these alterations in breast tissue and therefore are not at a substantially increased risk for breast cancer.
Diagnoses and treatment. Diagnostic studies can include ultrasound and needle aspiration of a cyst for histologic analysis. Oral contraceptives have been recommended to control symptoms of fibrocystic breast disease. NSAIDs may be helpful for breast discomfort. Other supportive measures include the application of local heat and use of a support bra. Nutritional therapies have shown success in some women, particu- larly avoidance of foods with methylxanthines, such as tea, coffee, cola, and chocolate. It is thought that methylxanthines tend to stimulate cyclic adenosine monophosphate and thus increase metabolic activity in the breast. A low-fat, high-carbohydrate diet has been shown to decrease breast swelling and tenderness.
Specific Benign Neoplasms Specific benign neoplasms of the breast, such as fibroadenomas, adeno- mas, and papillomas, may occur at any time during a woman’s life from childhood through old age. These neoplasms behave in a clinically “benign” fashion; that is, they do not invade the surrounding tissue or
The position of the breasts makes them vulnerable to trauma, particularly in larger women with pendulous breasts. This phenomenon is important for health care professionals to assess because fat necrosis may mimic or obscure carcinoma of the breast.
Clinical manifestations and diagnoses. Fat necrosis of the breast may have many of the same clinical signs as breast malignancy, including a painless mass in the breast that is firm, ill defined, and poorly mobile. Skin thickening and retraction may also be present. In addition, a mammogram may not provide a clear diagnosis. Unfortunately, many women with pendulous breasts frequently sustain injuries to the breast and may be unable to recall any specific trauma; thus a diagnosis of fat necrosis may be difficult to make. If fat necrosis cannot be reliably distinguished from carcinoma based on clinical observation or mam- mography, excisional biopsy must be performed.
Reactions to Foreign Material Surgery to enlarge the female breast has become one of the most popular of all cosmetic surgical procedures in recent years. Since the early twentieth century, a variety of materials have been used for breast augmentation. Silicone implants, which consist of silicone gel encased in polyurethane or other materials, have been the most widely used devices for breast enlargement and have been implanted in more than 1 million women. At present, controversy surrounds the use of silicone breast implants because some side effects, including irritation at the implantation area and other symptoms suggestive of an immune system response, have been reported. Currently, the recommendations sur- rounding silicone breast implants are conflicting. The use of silicone implants for routine cosmetic breast augmentation is specifically controlled in the United States, favoring implants filled with a saline solution. Health care professionals should be aware of the reported side effects of silicone breast implants inasmuch as a substantial segment of the female population in the United States and Western Europe has undergone breast augmentation with these devices. In addition, persons with silicone implants who sustain blunt trauma to the chest are at risk for rupture of the implant, with subsequent leakage of the silicone gel into surrounding tissue. After chest trauma, the communication of information regarding the presence of silicone breast implants to other health care professionals is an important consideration in planning care and preventing further tissue exposure to silicone.
Benign Breast Disorders The term benign breast disorders encompasses a group of lesions affecting the breast. These disorders are usually divided into two categories: (1) fibrocystic breast disease and (2) specific benign neoplasms of the breast such as fibroadenomas, adenomas, and papillomas. It is important for health care professionals to understand the clinical significance of these benign disorders. Although these entities are “benign” in the sense of being differentiated from malignant breast neoplasms, clients experienc- ing them may be at risk for experiencing a psychological crisis and may need to be educated regarding their potential risk for breast malignancy.
Fibrocystic Breast Disease Although the term fibrocystic breast disease is frequently used by health care professionals, it is important to understand that it is not a distinct disease entity. Instead, it is a diagnosis classification that is applied to a condition in which the presence of palpable breast masses fluctuates with the menstrual cycle and may be associated with pain or tenderness. Laboratory examination of this breast tissue shows macroscopic and microscopic cysts, along with a variety of alterations in tissue structure such as fibrosis or overgrowth of stromal fibrous tissue. However, these alterations in breast tissue are present to some degree in all
Cysts
Fibrous tissue
B
Mammary glands
Fat
A
Muscle
FIG 33.9 A, Normal breast. B, Fibrocystic breast tissue. Note image of cysts showing typical smooth margins, dark center, edge shadows, and a bright posterior wall. (From Lewis SL et al, editors: Medical-surgical nursing: assessment and management of clinical problems, ed 10, St Louis, 2017, Elsevier.)
684 UNIT IX Genital and Reproductive Function
of viable children a woman has borne) has been associated with risk, with low parity increasing risk and high parity having a protective effect.
Dietary factors. It has been suggested that the amount of fat in the diet is a risk factor for breast cancer. Researchers who favor this theory point to the relatively low rates of dietary fat ingestion in countries with low rates of breast cancer. Although the media have given a great deal of attention to this issue, scientific data have been inconclusive thus far. Countries in which low-fat diets are widespread are typically nonindustrialized countries in which other factors, such as age at first delivery or parity, differ from those in industrialized countries. No single dietary pattern or food has been shown to “cause” cancer, just as no specific food has been shown to prevent or cure cancer.
Family history. The role of heredity in contributing to breast cancer has long been recognized. Specific gene mutations such as BRCA1 and BRCA2 have been identified in high-risk families. Research studies have indicated that women with a mother or sister with breast cancer have an increased risk of developing breast cancer, even if specific gene mutations are not identified. Women with family risk factors and gene mutations need careful care and accurate information in order to make informed choices. Women with BRCA1 and BRCA2 gene mutations are at risk for both breast cancer and ovarian cancer and may benefit from prophylactic salpingo-oophorectomy to reduce their risk. Another controversial option for some high-risk women is bilateral mastectomy. Finally, chemoprevention with selective estrogen receptor modulators (SERMs) may be an option for some high-risk women. SERMs may not be recommended in low-risk to average-risk women because they have their own adverse effects such as thromboembolic events and endometrial cancer.
Age. Breast cancer is extremely rare in young women. The incidence begins to increase by 25 to 30 years of age and continues to increase with advancing age.
Other factors. Other factors, such as radiation exposure and a history of cancer, have been shown to be risk factors for the development of breast cancer. Several potential factors have been suggested, such as exposure to low-frequency electric or magnetic fields and a virus transmitted through lactation. More research is required to establish the role of these potential factors.
Clinical manifestations. Many breast cancers are discovered by the woman herself through self breast examination. She usually finds a single lump that is painless, hard, and poorly movable. Yearly clinical breast examinations by trained clinicians are also recommended after the age of 40 years. Digital mammography is an important clinical tool, and according to current screening guidelines, most women should have yearly mammograms beginning at age 40. Other technologies, such as magnetic resonance imaging (MRI), are showing promise as screening tools. Improvements in technology, such as digital mam- mography and MRI, have greatly increased the ability to identify breast cancers.
Half of malignant tumors occur in the upper outer quadrant of the breast. Other signs of advanced tumor development include dimpling of the skin (Fig. 33.10), retraction of the nipple, changes in breast contour, and bloody discharge from the nipple. Breast cancer is diagnosed by a number of techniques that use films (mammography, xerography) (Figs. 33.11 and 33.12), by computerized technologies (digital mam- mography), and by thermography, a technique in which “hot spots” indicate increased metabolic activity. A person of any age with a suspected breast mass should undergo mammography and biopsy.
Most breast carcinomas arise in the epithelium of the glandular ducts of the breast. The lesion(s) have infiltrating edges that begin to invade normal breast tissue (Fig. 33.13). After this invasion, malignant cells begin to scatter or disseminate into the lymph system of the axilla
metastasize to other sites. They generally appear as freely movable, encapsulated masses that are sharply delineated from the surrounding breast tissue. However, it is important to have any breast mass evaluated because biopsy and histologic examination may be needed to differentiate these benign neoplasms from breast carcinoma.
Malignant Disorder of the Breast Cancer of the Breast Carcinoma of the breast remains the most common form of cancer in women between the ages of 25 and 75 years. In the United States it is the second leading cause of cancer mortality in women. The incidence of breast carcinoma appears to be increasing in the United States, with an estimated 231,840 newly diagnosed cases per year. Although the disease is more common in white women, its incidence in blacks and Asians is rising. Breast cancer does occur in males, but is 100 times less common. Even though recent advances in early detection and treatment have afforded longer survival after diagnosis, invasive breast carcinoma remains an incurable disease that continues to take the lives of a large segment of the population.
Etiology. A substantial number of studies conducted in the past 30 years have begun to establish the risk factors and possible causes of breast cancer. Some factors that may place a woman at risk for breast cancer include hormonal influences, reproductive factors, dietary factors, family history, age, radiation exposure, history of cancer, and lack of access to health care. It should be noted that helping a client understand and interpret her personal breast cancer risk is a difficult task for a health care professional. The public media have given much attention to some of the risk factors for breast cancer, but have not provided much context in which to interpret evaluations for individual risk factors.
Risk factors are characteristics related to the probability of a certain outcome—in this case, breast cancer. These risk factors may be either causally or correlatively associated with an outcome. For example, a factor may directly cause an outcome (as the smallpox virus causes smallpox) or may be correlated with an outcome (as not wearing a seat belt is correlated with an increased degree of injury in a motor vehicle accident). The distinction between causality and correlation is an important concept to impart to clients when discussing risk factors. A client may express concern, for example, that a certain risk factor will directly cause the development of breast cancer. The ability of a health care professional to describe and discuss risk factors in a knowledgeable way will greatly enhance the client’s ability to make decisions regarding such issues as hormonal replacement therapy after menopause.
Hormonal factors. Several hormonal factors have been shown to be linked to the development of breast cancer. Length of exposure to the hormones secreted by the ovary (estrogen and progesterone) has been shown to affect the risk for breast cancer in the following way: If a woman has had an early (younger than 12 years) onset of menses and a late (older than 55 years) menopause, her risk is increased. Stated another way, women with 40 or more years of menstrual activity have twice the breast cancer risk as women with fewer than 30 years of menstrual activity. Postmenopausal hormone replacement therapy may increase the risk of breast cancer; data suggest clearly that there may be risk for women taking estrogen/progesterone combination therapies. For some women, the known benefits of these medications may outweigh effects on cancer risk. Future research is needed to clarify the way in which hormonal exposure may foster breast cancer development and the many interactive factors associated with taking hormonal medications.
Reproductive factors. It has been observed in many research studies that giving birth at a young age (less than 18 years) is associated with a decreased risk of breast cancer and that giving birth for the first time at 35 years or older increases the risk. In addition, parity (the number
CHAPTER 33 Alterations in Female Genital and Reproductive Function 685
FIG 33.10 Skin dimpling caused by an underlying malignant tumor. (From Donegan WL, Spratt JS: Cancer of the breast, ed 5, Philadelphia, 2002, Saunders, p 321.)
Central ray
Divergent ray
FIG 33.11 Placement of the breast for mammography, along with the direction of the x-rays.
A B
FIG 33.12 Mammogram showing bilateral invasive ductal carcinoma. A, Left breast. The larger mass was palpable. The smaller right mass was not palpable (arrow). B, Right breast. Multiple masses are shown. (From Powell DE, Stilling CB: Diagnosis and detection of breast diseases, St Louis, 1993, Mosby.)
FIG 33.13 Ultrasound scan of a carcinoma. Note the ragged appearance of this invasive, malignant lesion. (From Donegan WL, Spratt JS: Cancer of the breast, ed 5, Philadelphia, 2002, Saunders, p 332.)
(Fig. 33.14). The breast is in close proximity to the large system of axillary lymph nodes, which makes easy dissemination of malignant cells possible. The major way by which breast carcinoma causes morbidity and death is through the dissemination of malignant cells to other body sites, most commonly lung, liver, and bone. Metastasis (or spread of carcinoma) to these other body sites signifies a poorer prognosis. The prognosis is vastly better for persons with no evidence of spread of malignant cells to the regional lymph nodes. The 5-year survival rate is 99% when no lymph node involvement is found, but averages 85% when lymph node involvement is present. For women with distant spread (metastases), the rate drops to 25%. The greater the number of positive lymph nodes (nodes with malignant cells) found at surgery, the less favorable the prognosis.
Treatment. Treatment for breast cancer includes surgery, chemo- therapy, radiation therapy, and supportive measures. Surgical therapy is a controversial area, and various options are available. Breast-conserving
therapy, which includes removal of only the lesion, is called a lumpectomy. Lumpectomy or lumpectomy in conjunction with either chemotherapy or/and radiation is becoming increasingly preferred. Removal of only the breast is called a simple mastectomy. Other surgical interventions include a modified radical mastectomy, in which the breast is removed and a portion of the axillary lymphatic system is dissected, and a radical mastectomy (rare), in which the breast, lymphatic drainage, and underly- ing pectoral muscles are removed.
Chemotherapy entailing a variety of hormonal and antineoplastic agents is also used. Malignant cells may have cytoplasmic hormone receptors that bind to hormone molecules and promote cellular division and growth. SERMs, estrogen antagonists, are the most common agents used. Popular examples of SERMs include tamoxifen and raloxifene. Antineoplastic agents are given to control the spread of malignant cells.
Radiation therapy may be used as an adjunct to the aforementioned therapy and to control pain by shrinking large tumor masses. Other
686 UNIT IX Genital and Reproductive Function
supportive measures in advanced disease include operations to reduce the bulk of tumors.
Continuum of care. Breast cancer is characterized by a wide varia- tion in clinical course. Many patients who undergo therapy for breast carcinoma are able to achieve a satisfying quality of life. Educational and support programs for breast cancer patients and their families, both preoperatively and postoperatively, have been an important means
KEY POINTS • Chronic inflammation of the subareolar ducts may result in mammary duct
ectasia. Fibrous thickening results in a palpable central mass, breast distortion and dimpling, and nipple inversion. Persistent nipple discharge may occur. These signs are similar to those of malignancy and are carefully evaluated by biopsy. Surgical excision may be performed.
• Breast abscesses in nonlactating women are commonly associated with chronic infection, diabetes, and steroid therapy. These abscesses respond poorly to antibiotics and tend to recur.
• Fibrocystic breast disease is a condition in which palpable breast masses are present and fluctuate with the menstrual cycle. Breast cysts are firm, mobile, and tender, and are usually located in the upper outer quadrant. There is no evidence that women with fibrocystic breasts are at higher risk for breast cancer. A low-fat, high-carbohydrate diet; danazol; heat therapy; and avoidance of methylxanthines may be recommended.
• Breast cancer is a common cancer in women between 25 and 75 years of age. Malignant tumors tend to be painless, hard, and fixed in place, in contrast to benign breast tumors, which are mobile and encapsulated. Risk factors for breast cancer include a first-degree relative with breast cancer, increasing age, radiation exposure, and a previous malignancy. In addition, reproductive factors such as the age at first pregnancy and the number of pregnancies may be associated with altered cancer risk.
• Breast cancer may spread to the regional lymphatics and disseminate to other sites. Localized breast cancer, without lymph node involvement, has a 99% 5-year survival rate. The survival rate falls to 85% when lymph nodes are cancerous and to 25% when there are distant metastases. Depending on the extent of tumor spread, surgery may be performed to remove the tumor only (lumpectomy); the affected breast only (simple mastectomy); the affected breast and involved lymph nodes (modified radical mastectomy); or the breast, lymphatics, and underlying muscle (radical mastectomy). In addition, radiation therapy and chemotherapy may be initiated.
Interpectoral nodes
Internal mammary nodes
External mammary
nodes
Scapular nodes
Cephalic vein
Central axillary nodes
Subclavicular nodes
Internal jugular vein
FIG 33.14 Lymphatic drainage of the breast. In general, lateral lesions in the breast metastasize to axillary and supraclavicular nodes, whereas medial tumors tend to metastasize to the internal mammary and mediastinal lymph nodes, as well as the supraclavicular nodes. (From Lewis SL et al, editors: Medical-surgical nursing: assessment and management of clinical problems, ed 10, St Louis, 2017, Elsevier.)
of providing emotional support. Programs for continuing care after mastectomy have helped patients and families face the adaptive challenges of living with breast cancer. Follow-up care includes early detection of recurrent disease, with an emphasis on breast self-examination, yearly mammography, and regular examination by health care professionals.
This chapter has described the most prevalent women’s reproductive health problems at the present time. Any alteration in reproductive status may have profound implications for the individual; thus the reader should review this material carefully to acquire the ability to distinguish the differences and similarities in these alterations.
Commonly occurring alterations in reproductive health for women may have serious consequences and require immediate intervention. Menstrual disorders may have multiple manifestations, and such disorders as amenorrhea and abnormal uterine bleeding may occur at any time throughout a woman’s life. Alterations in uterine position and pelvic support, including uterine prolapse, retrodisplacement of the uterus, cystocele, and rectocele, may result in severe symptoms and require surgical correction. Inflammation and infection of the female reproduc- tive tract, including PID and vulvovaginitis, may have far-reaching effects for the individual experiencing them.
The reader should pay particular attention to the section on benign growths and aberrant tissue of the female reproductive tract given
the widespread nature and potentially serious consequences of these lesions. A thorough understanding of uterine leiomyomas, ovarian cysts, and endometriosis includes the ability to define these syndromes as described in this book, as well as an ability to explain them to clients. In addition, the reader is urged to review the material regarding the efficacy of the Pap smear in detecting cervical cancer at an early stage.
The section on disorders of pregnancy highlighted the most important aspects of this topic; the reader will probably wish to use this information as a basis for a more in-depth study of this area in a specialized course in maternal-child nursing. Finally, because of the widespread threat to women’s health posed by disorders of the breast, the reader should pay particular attention to the final section. Specifically, the reader must be able to compare and contrast the differences between benign breast disorders and carcinoma of the breast and discuss the meaning and importance of various risk factors for breast carcinoma in a knowledge- able way.
S U M M A R Y
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34
Sexually Transmitted Infections Rosemary A. Jadack
K E Y Q U E S T I O N S • What are the characteristic clinical manifestations and lesions of
gonorrhea and chlamydial infection? • How do the pathologic changes and clinical manifestations of
syphilis differ during the incubation, primary, secondary, and tertiary phases?
• How do the lesions of herpes simplex, syphilis, and lymphogranuloma venereum differ?
• Which sexually transmitted diseases remain localized, and which have systemic consequences?
• What are the causative organisms and characteristic lesions of the following localized sexually transmitted diseases: chancroid, granuloma inguinale, molluscum contagiosum, and condylomata acuminata (genital warts)?
C H A P T E R O U T L I N E Urethritis, Cervicitis, Salpingitis, and Pelvic Inflammatory
Disease, 690 Gonococcal Infection, 690 Nongonococcal Infection, 691
Diseases With Systemic Involvement, 691 Syphilis, 691 Lymphogranuloma Venereum, 692 Herpesvirus Infections, 692
Diseases With Localized Lesions, 694 Ulcerative Lesions, 694
Chancroid, 694 Granuloma Inguinale, 694
Nonulcerative Lesions, 694
Molluscum Contagiosum, 694 Human Papilloma Virus Infections, 694
Enteric Infections, 695
http://evolve.elsevier.com/Banasik/pathophysiology/
An epidemic of sexually transmitted infections (STIs) currently exists in the United States. The Centers for Disease Control and Prevention (CDC) estimate that there are 19 million new infections every year. More than 800,000 cases of gonococcal infections and 2.8 million chlamydial infections. The true incidence of these infections is likely to be significantly higher inasmuch as many STIs are unreported. The cost of STIs is extremely high. It is estimated that STIs cost the American health care system $17 billion every year. In addition, the personal costs to the individual experiencing an STI may include pain, disfigurement, psychosocial difficulties, and reproductive problems. Because of the epidemic status of these diseases and the enormous costs associated with them, it is imperative that health care providers become sufficiently knowledgeable to assess their patients’ STI status and educate them about STIs in an accurate and compassionate manner.
It is important to acknowledge that STIs are also alarming global health concerns and are a major cause of serious illness worldwide. Consequences of STIs include infertility, long-term disability, and death affecting millions of men, women, and infants. According to the World Health Organization, more than 1 million STIs are acquired each day worldwide. Every year, there are an estimated 105.7 million new cases
of chlamydia, 106.1 million new cases of gonorrhea, 10.6 million new cases of syphilis, and 276.4 million new cases of trichomoniasis. The prevalence of genital herpes infection is more than 500 million people; 290 million women have acquired a human papilloma virus (HPV) infection.
Control of STIs is complex. An effective global response must include consistent access to medical treatment of disease. However, careful attention to societal issues that involve disparities, social and sexual networks, risk behaviors, attitudes, and cultural meanings surrounding sexuality is also essential. According to current research, effective interventions must be multifaceted and multidisciplinary. They must include quality epidemiology and surveillance, tested individual- and community-based interventions, methods to ensure that interventions focused on STIs are included in health care policy, and advocacy to get interventions implemented.
The term sexually transmitted infections refers to a large group of disease syndromes that can be transmitted sexually, regardless of whether the disease has manifestations in genital structures. In older texts, STIs are referred to as sexually transmitted diseases and venereal diseases. Although STIs are more prevalent in the 15- to 25-year-old age group,
• Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
690 UNIT IX Genital and Reproductive Function
infections are potentially transmitted by sexual contact. Cytomegalovirus infection; hepatitis A, B and C; and HIV have the potential for sexual transmission. These diseases are covered in detail in Units III and IX, along with more in-depth information concerning infectious processes and immune responses. Before studying this chapter, the reader may wish to refer to Chapters 8 and 9 for a review of basic terminology such as incubation period and period of communicability. Health care providers caring for persons at risk for STIs should be aware of the potential for acquisition of systemic diseases by sexual contact and include assessment of these diseases as part of their overall clinical evaluation.
URETHRITIS, CERVICITIS, SALPINGITIS, AND PELVIC INFLAMMATORY DISEASE Three types of STI are manifested by urethritis (inflammation of the urethra), cervicitis (inflammation of the uterine cervix), and/or salpingitis (inflammation of the oviduct or fallopian tube). Gonor- rhea is an inflammation of epithelial tissue by the organism Neis- seria gonorrheae. In men, nongonococcal urethritis refers to urethritis resulting from a pathogen other than the gonococcus, which is usually Chlamydia trachomatis. In women, mucopurulent cervicitis refers to an inflammation of the cervix, which is usually caused by either C. trachomatis or N. gonorrheae. Pelvic inflammatory disease, which was described in Chapter 33, is usually the result of acute salpingitis caused by gonococcal or chlamydial infection that has extended into nearby pelvic tissue.
Gonococcal Infection Gonorrhea is associated with the gram-negative diplococcus N. gonorrheae.
Etiology and clinical manifestations. In gonorrhea, disease transmis- sion occurs through contact with exudates from the mucous membranes of infected persons, usually by direct contact. The gonococcus then attaches to and penetrates columnar epithelium and produces a patchy inflammatory response in the submucosa. Although usually asymptomatic in women, gonorrhea may produce purulent vaginal discharge, dysuria, and abnormal vaginal bleeding. The most commonly affected areas in women are the cervix, the urethra, the Skene and Bartholin glands, and the anus. Among females, adolescents (ages 15 to 19 years) and young adults (ages 20 to 24 years) now have the highest rates of gonorrhea. In men, symptoms of urethritis, including dysuria and a purulent urethral discharge accompanied by redness and swelling at the site of infection, usually occur after a 3- to 6-day incubation period. Among males, young adults (ages 20 to 24 years) have the highest rates of gonorrhea. In both genders, infection and inflammation of the pharynx, conjunctivae, and anus may be present. Direct extension of the infection with gonococci occurs by way of the lymphatic system. In the female, extension may spread unilaterally or bilaterally to the oviducts, with subsequent sal- pingitis. In the male, direct extension of the infection most frequently occurs to the epididymis.
Once gonococcal infection has spread to other areas, localized infection occurs and may cause the formation of cysts and abscesses. Purulent exudate containing the organism causes damage to tissue, and fibrous tissue replaces inflamed tissue. This hardened, fibrous tissue may result in scarring and narrowing of the urethra, epididymis, or oviducts. In women, partial or complete closure of the oviducts results in sterility. Infection of the oviducts may also result in pelvic inflam- matory disease if exudate is released into the peritoneal cavity. As described in Chapter 33, pelvic inflammatory disease may be an acute or chronic condition causing widespread damage to the pelvic organs in the female.
they can occur at any age. These diseases are sometimes contracted by nonsexual transmission, as when a newborn infant contracts an STI from an infected mother during passage through the birth canal.
A list of sexually transmitted organisms grouped according to type of pathogen is found in Box 34.1. A useful approach to learning the complex pathophysiologic processes of STIs is to group them according to the disease manifestations that the patient is most likely to exhibit when first seen by the health care provider. These categories of STIs and the disease manifestations associated with them are listed in Table 34.1. This chapter describes each of these categories and the pathophysi- ologic processes associated with each relevant STI.
Some diseases listed in Table 34.1 are discussed elsewhere in this text but have been included here for completeness. In particular, the reader may wish to refer to Chapter 33 for more detailed information on pelvic inflammatory disease and vulvovaginitis. Also, certain systemic
Bacterial Pathogens Calymmatobacterium granulomatis Chlamydia trachomatis Gardnerella vaginalis Haemophilus ducreyi Mycoplasma hominis Neisseria gonorrheae Shigella Group B streptococci Ureaplasma urealyticum Treponema pallidum
Fungal Pathogens Candida albicans Candida glabrata
BOX 34.1 Sexually Transmitted Organisms Viral Pathogens Human immunodeficiency virus Cytomegalovirus Herpes simplex virus Hepatitis virus Human papilloma virus Molluscum contagiosum virus
Protozoan Pathogens Entamoeba histolytica Giardia lamblia Trichomonas vaginalis
TABLE 34.1 Sexually Transmitted Infections Categorized According to Disease Manifestations
Disease Manifestations Disease
Urethritis, cervicitis, and salpingitis Gonorrhea Nongonococcal urethritis Pelvic inflammatory disease
Ulcerative lesions with systemic involvement
Syphilis Lymphogranuloma venereum Herpes simplex virus
Ulcerative lesions only Chancroid Granuloma inguinale (donovanosis)
Nonulcerative lesions Molluscum contagiosum Genital warts (condylomata acuminata)
Vulvovaginitis Trichomoniasis Candidiasis Gardnerella vaginalis vaginitis
Systemic infections Cytomegalovirus Hepatitis AIDS
Enteric infections Giardiasis Campylobacter enteritis Shigellosis Amebic dysentery
CHAPTER 34 Sexually Transmitted Infections 691
Etiology. Syphilis is caused by Treponema pallidum, an anaerobic spirochete. The disease is acquired when T. pallidum penetrates intact mucous membranes or abraded skin during sexual contact. (The process of transmission of congenital syphilis is described later.) Some of the T. pallidum pathogens remain at the original invasion site, whereas others migrate to regional lymph nodes within hours. During this incubation phase, T. pallidum is disseminated throughout the body and can invade and multiply in any organ system.
Pathogenesis. During all stages of syphilis, invasion of tissue by T. pallidum results in pathologic changes in the vascular system. The inflammatory response in endothelial tissue causes the infiltration of lymphocytes and plasma cells, with subsequent endothelial swelling. The terminal arterioles and small arteries may become obliterated and no longer functional. Finally, long-term inflammation of vascular tissue results in the formation of hardened, fibrous thickening in the blood vessels and eventually tissue necrosis.
After the initial incubation period of 10 to 90 days, the primary phase begins with the formation of a chancre, a painless, ulcerative lesion that arises at the original spirochete portal of entry (Fig. 34.1). The chancre may remain unnoticed in a female if it occurs on the cervix or in the vagina; in fact, most cases of syphilis in women are undiagnosed until recognized by positive testing of the blood in the latent phase. In males, the chancre may form on the genitalia; in both genders, chancres may erupt on the anus, fingers, lips, tongue, nipples, tonsils, or eyelids.
Untreated chancres will resolve spontaneously within 3 to 6 weeks and are followed by the secondary stage of syphilis, which is characterized by a low-grade fever, malaise, sore throat, headache, lymphadenopathy, and mucosal or cutaneous rash (Fig. 34.2). This secondary stage occurs as T. pallidum is spread throughout the bloodstream and lymphatic system. The secondary stage is also self-limiting and is followed by a latent phase in which no symptoms are present. During the latent stage, the affected person will test positive for syphilis on serologic assays and may still experience infectious mucocutaneous lesions during the early latent stage. Thus the early latent stage is considered contagious. The latent stage is of variable length and may last more than 40 years. In approximately two-thirds of patients, the infection remains asymptomatic and never causes a recurrence of symptoms. If syphilis remains untreated, then late syphilis—the final, destructive phase of the disease—will
Nongonococcal Infection Etiology. Nongonococcal urethritis and cervicitis are often caused
by strains of C. trachomatis that act on columnar epithelium in a manner similar to that noted for the gonococcus. The symptoms of infection with Chlamydia are generally less severe than those of gonorrhea. As with gonorrhea, the infection may spread by extension to the oviducts, and pelvic inflammatory disease may eventually result. Upper reproduc- tive tract infection, whether symptomatic or subclinical, is an important cause of infertility and ectopic pregnancy. Transmission of Chlamydia during birth may result in ophthalmia neonatorum, or infection of the eyes in the newborn.
Treatment. The resistance of N. gonorrheae to antimicrobial agents continues to spread and intensify, causing concern nationally and internationally. Antimicrobial agents such as ceftriaxone, cefixime, spectinomycin, and cephalosporin are used to manage uncomplicated gonococcal infections. The CDC no longer recommends fluoroquinolones for treatment of gonococcal infections because of fluoroquinolone resistance by N. gonorrheae. Increased resistance to cephalosporin is also currently being monitored. Unless chlamydial infection is ruled out, dual therapy for gonococcal and chlamydial infection consisting of azithromycin or doxycycline added to one of the aforementioned agents is recommended. Pelvic inflammatory disease is also generally managed with two agents to cover potential chlamydial and gonorrheal infection. A number of organizations worldwide now recommend Chlamydia (as well as gonorrhea) screening for sexually active adolescents and women through age 25 who have no symptoms in order to reduce the sequelae of infection.
KEY POINTS • Urethritis, cervicitis, salpingitis, and pelvic inflammatory disease commonly
result from gonorrheal or chlamydial infection. Transmission is usually by direct contact with infected mucous membranes. The symptoms of chlamydial infection are similar to but usually less severe than those of gonorrhea.
• Gonorrhea may produce purulent discharge, dysuria, and abnormal vaginal bleeding. Cysts and abscesses may form in localized areas of infection, followed by scarring and fibrosis. Inflammation of the pharynx, conjunctivae, and anus may be present. Antibiotic therapy is indicated.
FIG 34.1 Typical syphilitic chancre, a painless, ulcerative lesion that arises at the original spirochete portal of entry. (From Morse SA et al: Atlas of sexually transmitted diseases and AIDS, ed 4, St Louis, 2010, Elsevier.)
DISEASES WITH SYSTEMIC INVOLVEMENT Several STIs cause a distinctive ulcerative lesion and disseminate throughout the body to affect multiple organ systems. Most prominent of this type of STI are syphilis, herpesvirus infections, and lympho- granuloma venereum.
Syphilis Syphilis is a systemic infection of the vascular system consisting of five distinct stages: incubation, primary and secondary stages, latency, and late syphilis. Syphilis is communicable by persons with primary, second- ary, or early latent syphilis. The incidence has varied in the United States since reporting began in 1941. The rate of primary and secondary syphilis decreased during the 1990s to its lowest levels since 1941. However, overall rates increased again between 2001 and 2014. Until 2013, increased incidence rates were attributed primarily to men who have sex with men (MSM). However, rates increased 22.7% for women between 2013 and 2014. This increase is concerning because congenital syphilis rates tend to increase with increased incidence rates in women. Current estimates of primary and secondary syphilis are 6.3 cases per 100,000 population in the United States (2013–2014).
692 UNIT IX Genital and Reproductive Function
positive result of a serologic screening test, such as the Venereal Disease Research Laboratories or rapid plasma reagin test, followed by a positive result of a treponemal serologic test. Dark-field examination of tissue and exudates or direct fluorescent antibody tests are also useful.
Treatment. Benzathine penicillin G is the first choice for the manage- ment of syphilis. If the affected person is allergic to penicillin, tetracycline or doxycycline is given. Treatment is administered to all individuals with positive evidence of syphilis on laboratory testing and to people who have had sexual contact with infected individuals. Response to antibiotic treatment is monitored by repeating laboratory testing for evidence of syphilis at regular intervals up to 24 months after therapy. Management during pregnancy is complex, but it focuses on maternal cure and prevention of congenital syphilis.
Lymphogranuloma Venereum Lymphogranuloma venereum (LGV) is a highly contagious systemic infection caused by a number of closely related strains of Chlamydia. The disease occurs more commonly in the tropics, but rates have been increasing in industrialized countries. LGV develops more often in males than in females and has a higher incidence among sexually active young adults. In the United States increasing rates are in part attributed to MSM.
Etiology and pathogenesis. Like syphilis, LGV has stages of develop- ment in which an initial lesion forms and systemic disease occurs after dissemination via the lymphatic system. After invasion of the mucosa by Chlamydia during sexual contact, a painless lesion appears on the genitalia after a 1- to 3-week incubation period. The lesion may range from a slight erosion to a small papule and often remains undetected (Fig. 34.3). This lesion heals spontaneously in a few days. During this period, the pathogens are disseminated to regional lymph nodes, primarily the inguinal lymph nodes.
About 2 weeks after appearance of the primary lesion, the inguinal lymph nodes begin to swell, and the systemic symptoms of fever and malaise develop. The nodal swelling is a manifestation of inflammation of the lymphatic system in which lesions filled with polymorphonuclear leukocytes are forming in the lymph nodes. Spread of the inflammation throughout adjacent lymph nodes causes multiple nodes to become matted together and form a large abscess. These abscesses are said to be regional because they develop in one or more areas along the lymphatic system. If a person with LGV remains untreated, the abscesses rupture through the skin and other body cavities to create chronic fistulas. Thus, as the regional lymphadenitis progresses, complications such as perianal and rectovaginal fistulas develop, along with strictures of the rectum. Other complications include extreme swelling of the genitalia; this occurs because the normal lymph drainage of this area is impeded. The diagnosis is usually made by serologic testing (antibody titers).
Treatment. Doxycycline is the recommended antibiotic, with erythromycin being the alternative. Surgical treatment may include aspiration of lymph nodes as needed; rectal strictures and fistulas may require surgical correction.
Herpesvirus Infections Herpesviruses are an important group of viral agents that produce infection in humans. Two types of herpes simplex virus (HSV)—type 1 and type 2—may be sexually transmitted and are discussed in this section. HSV type 1 is most often associated with herpetic infections above the waist, typically in the oral cavity and on the lips, but also in the eyes or on the epidermis. HSV type 1 can be transmitted sexually and can cause genital herpetic infections. It is present in saliva, stool, and urine. The vesicles resulting from type 1 infection in the oral cavity are commonly referred to as cold sores or chancres and often affect children younger than 5 years. HSV type 2 is implicated in most genital,
eventually develop in approximately one-third of affected people. The manifestations of late syphilis depend on the area of arterial lesions and the extent of circulatory insufficiency. Body systems particularly at risk are the cardiovascular and central nervous systems. Damage to the cardiovascular system may include aortic necrosis and subsequent aortic insufficiency; damage to the central nervous system may be progressively widespread, with degeneration of the cortical neurons and, eventually, paresis, blindness, and mental deterioration.
Transmission of T. pallidum from the mother to the fetus may occur transplacentally at any point during pregnancy, but an inflammatory response to the pathogen does not develop in the fetus until around the fifteenth week of gestation. Therefore treatment of infected women before the fifteenth week may prevent damage to the fetus. Infection with syphilis before birth may result in physical deformities and developmental disabilities in the infant. Infants born to untreated or inadequately treated mothers will have active infection and must be treated. A presumptive diagnosis of syphilis is generally based on a
FIG 34.2 Typical generalized skin rash of secondary syphilis. (From Morse SA et al: Atlas of sexually transmitted diseases and AIDS, ed 4, St Louis, 2010, Elsevier.)
FIG 34.3 Lymphogranuloma venereum is characterized by a small, transient genital ulcer with swollen, extremely painful inguinal lymph nodes. (From Lewis SM et al: Medical-surgical nursing, ed 6, St Louis, 2004, Mosby, p 1392.)
CHAPTER 34 Sexually Transmitted Infections 693
3 to 10 days. HSV infections are usually diagnosed by cell culture. Exudate from early lesions gives the most positive results.
Treatment. Normally, HSV type 1 lesions are self-limiting and respond to measures that promote good oral hygiene. HSV type 2 genital lesions are usually self-limiting but may be extremely painful. The use of antiviral agents such as acyclovir, famciclovir, and valacyclovir has been shown to accelerate healing time and reduce the duration and severity of symptoms in initial episodes of HSV type 2 infection. Long-term or episodic suppression may also be used to reduce the number or severity of recurrent episodes. Consistent use of condoms reduces transmission from men to women and is a major focus of STI prevention worldwide. Prevention teaching should include the possibility of asymptomatic shedding of the virus. If HSV type 2 lesions are active in a pregnant mother at term, a cesarean section may be recommended to reduce the risk of transmission to the newborn.
anal, and perianal herpes and is sometimes referred to as genital herpes for this reason. Type 2 HSV can also result in oral lesions after sexual contact. Serologic studies indicate that one in five individuals in the United States have been infected with type 2 HSV. Although type 2 is primarily transmitted through sexual contact, pregnant mothers can transmit the infection to newborns during vaginal delivery.
Etiology. HSV types 1 and 2 have certain characteristics in common. Both produce an initial infection that is self-limiting. The lesions produced by this infection heal, but HSV continues to be present in the body. Recurrence of the lesions, usually in the area of the initial infection, may take place as the virus is reactivated. Recurrence of either type may be triggered by an infectious disease, emotional stress, or immunosuppression. The exact mechanism for reactivation of the virus is presently unknown, but it is thought that ganglion neurons may contain latent forms of the virus and then receive a trigger to stimulate replication of the virus under certain conditions.
Clinical manifestations. Genital infection with HSV type 2 is manifested by the appearance of fluid-filled vesicles after a 3- to 7-day incubation period. In the female, the cervix is usually the primary infection site, although the labia, perianal skin, vulva, or vagina may also be involved (Fig. 34.4). In the male, the vesicles are located on the glans penis, foreskin, or penile shaft (Fig. 34.5). Extragenital lesions may appear on the mouth or anus. In both males and females, the vesicles, which are usually painless at first, may rupture and develop into extensive shallow, painful ulcers. The virus may enter the lymphatic system and create localized lesions there; thus the inguinal lymph nodes may be edematous and tender. Rarely, the virus spreads to visceral organs and can produce areas of necrosis in the liver, adrenal glands, lungs, and central nervous system. In newborns and people with weak immune defenses (particularly people with AIDS), HSV type 2 may result in severe damage to these organ systems, with high related mortality. Most HIV-infected individuals are HSV-2 seropositive, and perirectal involvement is common.
HSV type 1 infections may appear as single or multiple fluid-filled, tender vesicles in the oral cavity or on the lips. Usually, the appearance of the lesions is preceded by 1 or 2 days of paresthesia before the chancre, or “cold sore,” erupts. These lesions will generally crust and heal within
FIG 34.4 Primary genital herpes in the female showing herpetic vesicles and tender ulcerations. (From Morse SA et al: Atlas of sexually transmitted diseases and AIDS, ed 4, St Louis, 2010, Elsevier.)
FIG 34.5 Recurrent genital herpes in the male showing erythema, groups of vesicles, erosions, and edema on the shaft of the penis. (From Morse SA et al: Atlas of sexually transmitted diseases and AIDS, ed 4, St Louis, 2010, Elsevier.)
KEY POINTS • Syphilis is caused by an anaerobic spirochete that is transmitted sexually
but disseminates throughout the body during incubation. Manifestations of early syphilis include chancre formation at the portal of entry, which spontaneously resolves in 3 to 6 weeks if untreated. General malaise, fever, sore throat, and rash may then occur, followed by an asymptomatic latent phase. The latent phase may last more than 40 years. Late syphilis is characterized by central nervous system degeneration, blindness, and paresis.
• Lymphogranuloma venereum (LGV) is a highly contagious systemic infection caused by strains of Chlamydia. An initial painless genital lesion appears after 1 to 3 weeks of incubation. The infection spreads to regional lymph nodes and is accompanied by fever and malaise. Infected lymph nodes become abscessed and may rupture through the skin and body cavities, causing fistula formation.
• Herpes simplex virus (HSV) types 1 and 2 are implicated in cases of genital herpes. Herpes lesions are fluid-filled vesicles that appear 3 to 7 days after infection. The virus may enter the lymphatics and cause inguinal lymph node tenderness. Although the lesions may disappear, the virus remains in the body, thus predisposing to recurrence. Herpes may be transmitted from mother to newborn during the birth process.
694 UNIT IX Genital and Reproductive Function
Pathogenesis and clinical manifestations. Transmission of granu- loma inguinale is not clearly understood. It is generally thought to be an STI, but the disease is also seen in adults who are not sexually active and in young children, possibly as a result of autoinoculation. The causative bacterium is found in the rectum of nondiseased persons, which suggests that the organism may be part of the normal gastro- intestinal flora in some persons.
The incubation period is variable and ranges from a few days to months. The initial sign of the disease may be a painless papule or nodule that subsequently ulcerates into an enlarging, granulomatous, red velvety ulcer. The raised mass of granulation tissue may look more like a tumor than an ulcer. The lesions are highly vascular and bleed easily with minor contact. Single or multiple lesions may coalesce, or lesions may spread to nearby tissue. Secondary infection of the ulcers and expanding tissue necrosis in lesions may lead to erosion of the genitals. Diagnosis is by identification of the dark-staining Donovan bodies on biopsy or tissue crush preparations.
Treatment. Doxycycline is given for at least 3 weeks or until all lesions are healed. Alternative agents include trimethoprim- sulfamethoxazole, ciprofloxacin, erythromycin, and azithromycin.
Nonulcerative Lesions Molluscum contagiosum and infections caused by HPV (also called genital warts) are two prevalent types of STIs that produce nonulcerative lesions. Both are caused by viral agents that invade superficial layers of the epidermis during sexual contact.
Molluscum Contagiosum Etiology. Molluscum contagiosum is a viral skin disease caused by
a member of the poxvirus family. (The term poxvirus refers to a viral agent that causes an eruption, or “pox,” on the skin.) The manifestations are much milder than those of smallpox or chickenpox. Two forms of the disease exist. One affects children and is transmitted by skin-to-skin contact and indirect contact; the other affects young adults and is transmitted during sexual contact.
Pathogenesis and clinical manifestations. After invasion of the epidermis by the virus, pink to white lesions with an exudative core appear on the genitalia. The lesions are multiple, are slow to develop, and remain stable for long periods. The disease is usually asymptomatic.
Treatment. The goal of treatment is primarily to prevent spread of the infection for cosmetic reasons. The lesions can be removed by minor surgery or frozen with liquid nitrogen. Sexual contacts of affected persons should be examined to prevent further spread.
Human Papilloma Virus Infections Etiology. Human papilloma virus (HPV) infections cause epithelial
lesions of the anogenital region. Also called genital warts or condylomata acuminata, HPV is predominantly transmitted sexually in young adults, with the highest prevalence in the 16- to 25-year-old age group. The risk of contracting the disease by sexual contact with an infected person is high; lesions will develop in up to two thirds of the sexual contacts of affected persons. Nonsexual transmission has also been documented, and lesions have been found in infants. The period of communicability is unknown, but is thought to last as long as the lesions persist, and perhaps even after they are clinically removed.
Pathogenesis and clinical manifestations. After invasion of the epidermis by HPV, an incubation period of 1 to 20 months (usually about 4 months) precedes the appearance of lesions. It is thought that the virus infects single epithelial cells and stimulates the cells to divide and proliferate into the wartlike lesions. The lesions can be single or multiple and may have a soft pink to brown coloring. They can be small or large and raised or flat (Fig. 34.7). The lesions are generally
DISEASES WITH LOCALIZED LESIONS Ulcerative Lesions Two types of STIs result in the formation of ulcerative lesions but do not progress to systemic involvement. Chancroid (also called soft chancre) and granuloma inguinale are both manifested by ulcerative lesions, although their pathophysiologic courses differ.
Chancroid Etiology. Chancroid is an ulcerative, infectious disease of the genital
tract caused by the sexually transmitted anaerobic bacillus Haemophilus ducreyi. Chancroid is relatively rare in the United States. The disease is a cofactor for HIV infection.
Pathogenesis and clinical manifestations. H. ducreyi initially invades the genital skin or mucous membranes at sites traumatized by sexual contact. The patient generally has one or more painful genital ulcers, unlike the chancre in syphilis, which is generally solitary and painless. Fresh lesions may occur from autoinoculation (self-infection). The ulcerated lesions may enlarge, continue to erode (Fig. 34.6), and produce destruction of surrounding tissue. In addition, inguinal lymph nodes may become tender and painful as the infection is disseminated to this region. If the infection goes untreated, the enlarged lymph gland (called a bubo) may rupture, draining pus and leaving a large inguinal ulcer. The infection is communicable until the lesions heal, which may be a period of weeks. Scarring may occur in advanced cases. Diagnosis is usually made by culture for H. ducreyi.
Treatment. Antiinfective agents recommended for management of chancroid include azithromycin, erythromycin, ceftriaxone, and cipro- floxacin. Large ulcers may not heal for more than 2 weeks. As with all STIs, sexual partners should be treated simultaneously and reexposure avoided until therapy is completed.
Granuloma Inguinale Etiology. Calymmatobacterium granulomatis is the causative agent
of granuloma inguinale. This intracellular bacterium is also referred to as a Donovan body and the disease as donovanosis. Granuloma inguinale is rare in the United States.
FIG 34.6 Eroded, purulent ulcer of chancroid. (From Morse SA et al: Atlas of sexually transmitted diseases and AIDS, ed 4, St Louis, 2010, Elsevier.)
CHAPTER 34 Sexually Transmitted Infections 695
nine-valent forms of the vaccine are available. The bivalent version of the vaccine protects against HPV types 16 and 18. The quadravalent form protects against HPV types 6, 11, 16, and 18. The nine-valent form of the vaccine is recommended for 11- to 12-year-old girls, but can be administered to girls as young as 9 years of age. The vaccine is recom- mended for young men if it is readily available. Ideally, the vaccine should be administered before the onset of sexual activity. However, females and males who are sexually active also may benefit from vaccination.
asymptomatic but may be pruritic (itchy), painful, or friable (bleed easily). In females, HPV may be found in the vagina and cervix, as well as in the anogenital area. In males, HPV lesions may occur in the anterior urethra and anogenital area.
Treatment. External genital warts may be treated with patient-applied podofilox or imiquimod topical preparations. Providers can perform cryotherapy; administer podophyllin, trichloroacetic acid, or bichloro- acetic acid; or carry out surgical excision of the warts. Patient-applied preparations are also available and include podofilox (0.5%) and imiquimod (5%) cream. Alternative regimens include intralesional interferon and laser surgery. Malignant transformation to invasive carcinoma has been observed with some types of genital warts. Persistent infections of HPV types 6, 11, 16, and 18 are thought to be responsible for 70% of cervical cancers and 90% of genital warts. Therefore it is generally agreed that affected persons should be treated or monitored carefully. Because HPV has been associated with cervical cancer, there has been an increasing use of HPV testing in evaluating abnormal Papanicolaou smears.
In 2006 the Food and Drug Administration licensed the first vaccine developed to prevent cervical cancer and other diseases in females caused by certain types of HPV (see Chapter 33). Bivalent, quadravalent, and
FIG 34.7 Human papilloma virus of the vulva. (From Morse SA et al: Atlas of sexually transmitted diseases and AIDS, ed 4, St Louis, 2010, Elsevier.)
KEY POINTS • Chancroid is caused by infection with an anaerobic bacillus. Initially the
lesion is a small erythematous papule, and after 2 to 3 days the painful lesion ulcerates. Lesions resemble those of syphilis; however, the lesions of syphilis are painless.
• Granuloma inguinale is caused by an intracellular bacterium. The initial papule is painless and subsequently ulcerates into a growing granulomatous ulcer resembling a tumor.
• Molluscum contagiosum is associated with infection by a poxvirus. Genital lesions are pink to white with an exudative core. The disease is usually asymptomatic and self-limiting.
• Condylomata acuminata, or genital warts, is associated with infection by human papilloma virus (HPV). Warts are pink to brown and painless and may occur in clusters. Persistent HPV infection is an important risk factor for cervical cancer.
ENTERIC INFECTIONS Until recently, information regarding the transmission of enteric infec- tions of the gastrointestinal tract through sexual contact was limited. Enteric pathogens may be transmitted sexually among any individuals who engage in direct or indirect fecal-oral contact. Enteric organisms that may be transmitted through sexual contact include Giardia, Campylobacter, Shigella, and the agents causing amebic dysentery.
The pathophysiologic process of enteric infections of the gastro- intestinal tract is described in Chapter 36, and the reader may wish to refer to this material. In general, persons who have acquired enteric infections by sexual contact will have variable manifestations. Some individuals may experience no symptoms, whereas others will have marked symptoms of enteritis or proctitis. All individuals who engage in oral-anal sexual practices should be monitored for the presence of enteric infections with laboratory studies and diagnostic examinations. Education for persons at risk for sexually transmitted enteric infections includes an emphasis on protective hygienic practices. Infected persons should avoid all sexual contact until all partners are examined and treated if necessary. After completion of appropriate therapy for enteric infections, affected individuals should be retested for assessment of therapeutic effectiveness.
Because of the epidemic nature of STIs worldwide, it is essential for readers preparing for careers in the health sciences to have a complete grasp of the material in this chapter. The STIs considered in the chapter are grouped according to the disease manifestations that the patient is most likely to exhibit. Gonorrhea, most chlamydial infections, and pelvic inflammatory disease are manifested by urethritis, cervicitis, or salpingitis. A second group of STIs cause ulcerative lesions with systemic involvement. Syphilis, herpes, and LGV all cause a distinctive ulcerative lesion and may disseminate throughout the body to affect multiple organ systems.
In reviewing the material on STIs related to ulcerative and nonulcer- ative lesions, the reader should compare and contrast the appearance of these lesions and consider the differing pathophysiologic characteristics of each type. Finally, the reader should consider how he or she would incorporate this material into an overall assessment process, as well as interventions focused on prevention. Nurses and other health care providers caring for persons at risk for STIs should be aware of the potential for acquisition of these diseases as well. The overall goal in learning the material in this chapter is to be able to assess and educate clients with STIs in a comfortable and accurate manner.
S U M M A R Y
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HIV and other sexually transmitted infections. Cochrane Database Syst Rev (7):CD003363, 2014.
Morris GC, Stewart CM, Schoeman SA, Wilson JD: A cross-sectional study showing differences in the clinical diagnosis of pelvic inflammatory disease according to the experience of clinicians: implications for training and audit. Sex Transm Infect 90(6):445–451, 2014.
Panel on Opportunistic Infections in HIV-Infected Adults and Adolescents: Guidelines for the prevention and treatment of opportunistic infections in HIV-infected adults and adolescents: recommendations from the Centers for Disease Control and Prevention, the National Institutes of Health, and the HIV Medicine Association of the Infectious Diseases Society of America. Available at http://aidsinfo.nih.gov/contentfiles/lvguidelines/adult_oi.pdf.
Petrosky E, Bocchini JA, Hariri S, et al: Use of 9-valent human papillomavirus (HPV) vaccine: updated HPV vaccination recommendations of the advisory committee on immunization practices. MMWR 64(11):300–304, 2015.
Schwarz TF, et al: Four-year follow-up of the immunogenicity and safety of the HPV-16/18 AS04-adjuvanted vaccine when administered to adolescent girls aged 10-14 years. J Adolesc Health 50(2):187–194, 2012.
Van der Bij AK, Spaargaren J, Morre SA, et al: Diagnostic and clinical implications of anorectal lymphogranuloma venereum in men who have sex with men: a retrospective case-control study. Clin Infect Dis 42(2):186–194, 2006.
Van Velzen M, Ouwendijk W, Selke S, et al: Longitudinal study on oral shedding of herpes simplex virus 1 and varicella-zoster virus in individuals infected with HIV. J Med Virol 85:1669–1677, 2013.
World Health Organization: Global incidence and prevalence of selected curable sexually transmitted infections – 2008, Geneva, 2012, WHO.
World Health Organization: Sexually transmitted infections: Fact sheet No. 110, Dec 2015. Retrieved from http://www.who.int/mediacentre/factsheets/ fs110/en/.
Zenilman JM, Shahmanesh M: Sexually transmitted infections: diagnosis, management, and treatment, Sudbury, MA, 2011, Jones and Bartlett Learning.
RESOURCES Centers for Disease Control and Prevention: Sexually transmitted diseases
treatment guidelines. MMWR Morb Mortal Wkly Rep 64(3):2015, 2015. Centers for Disease Control and Prevention: Sexually transmitted disease
surveillance 2014, Atlanta, GA, 2015, U.S. Department of Health and Human Services.
Centers for Disease Control and Prevention: CDC grand rounds: the growing threat of multidrug-resistant gonorrhea. MMWR Morb Mortal Wkly 62(6):103–106, 2013.
Centers for Disease Control and Prevention: Cephalosporin susceptibility among Neisseria gonorrhoeae isolates—United States, 2000-2010. MMWR Morb Mortal Wkly Rep 60:873–877, 2011.
Centers for Disease Control and Prevention: Lymphogranuloma venereum among men who have sex with men: Netherlands, 2003-2004. MMWR Morb Mortal Wkly Rep 53(42):985–988, 2004.
Giuliano AR, et al: Efficacy of quadrivalent HPV vaccine against HPV infection and disease in males. N Engl J Med 363(5):401–411, 2011.
Holmes KK, et al: Sexually transmitted diseases, ed 4, New York, 2007, McGraw-Hill.
Kirkcaldy RD, Ballard RC, Dowell D: Gonococcal resistance: are cephalosporins next? Curr Infect Dis Rep 13:196–204, 2011.
LeFerve ML: Screening for chlamydia and gonorrhea: US Preventive Services Task Force recommendation statement. Ann Intern Med 161(2):902–910, 2014.
Low N, Broutet N, Adu-Sarkodie Y, et al: Global control of sexually transmitted infections. Lancet 368(9551):2001–2016, 2006.
Menon S, Timms P, Allan JA, et al: Human and pathogen factors associated with Chlamydia trachomatis-related infertility in women. Clin Microbiol Rev 28(4):969–985, 2015.
Moore MS, Golden MR, Scholes D, Kerani R: Assessing trends in chlamydia positivity and gonorrhea incidence and their associations with the incidence of pelvic inflammatory disease and ectopic pregnancy in Washington state, 1988-2010. Sex Transm Dis 43(1):2–8, 2016.
Moreno R, Nababan HY, Ota E, et al: Structural and community-level interventions for increasing condom use to prevent the transmission of
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UNIT X Gastrointestinal Function
35
Gastrointestinal Function Jeffrey S. Sartin
K E Y Q U E S T I O N S • What are the major structures of the gastrointestinal tract and
their corresponding functions? • How does the autonomic nervous system influence
gastrointestinal motility? • How do segmental and propulsive movements influence the
digestive and absorptive functions of the small intestine? • What are the major secretions of each of the following secretory
cells and glands: salivary, gastric, intestinal epithelium, pancreas, and gallbladder?
• How and where are complex carbohydrates, proteins, and lipids digested and absorbed?
• How and where are water and electrolytes absorbed? • What alterations in gastrointestinal function occur in association
with very young or very old age?
C H A P T E R O U T L I N E Structure and Organization of the Gastrointestinal Tract, 698
Embryology, 698
Functional Anatomy, 699
Oral Cavity and Pharynx, 699 Esophagus, 700 Stomach, 700 Small Intestine, 701 Large Intestine, 703
Gastrointestinal Motility, 704 Characteristics of the Intestinal Wall, 704
Neural Control, 704
Parasympathetic Innervation, 705 Sympathetic Innervation, 705 Afferent Nerve Fibers, 705 Electrical Activity of Gastrointestinal Smooth Muscle, 705
Hormonal Control, 706
Movement in the Gastrointestinal Tract, 706
Contraction of Gastrointestinal Smooth Muscle, 706 Propulsive Movements, 706 Mixing Movements, 707
Movement of Nutrients, 707
Chewing, 707
Swallowing, 707 Motor Functions of the Stomach, 708 Motility of the Small Intestine, 709 Ileocecal Sphincter, 710 Motility of the Colon, 710
Secretory Function, 712 Secretion of Gastrointestinal Juices, 712
Gastrointestinal Hormones, 712
Digestion and Absorption, 712 Digestion of Carbohydrates, 713
Digestion of Lipids, 713
Digestion of Proteins, 714
Absorption, 715
Carbohydrates, 715 Lipids, 715 Proteins, 715 Water and Electrolytes, 715
Gastrointestinal Function Across the Life Span, 717 Maturation, 717
Age-Related Changes, 717
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
698 UNIT X Gastrointestinal Function
describes each of these functions in detail and provides an overview of the structure and organization of the GI tract and its growth and alteration across the life span.
STRUCTURE AND ORGANIZATION OF THE GASTROINTESTINAL TRACT Embryology As early as the third week of gestation, the embryonic structure begins to fold inward to create the primitive gut. By the fourth week structures of the foregut, midgut, and hindgut are in place.
The foregut develops into the pharynx, the esophagus, the stomach, the duodenum proximal to the opening of the common bile duct, the hepatobiliary system, and the pancreas. The midgut forms the small intestine (below the opening of the common bile duct), the cecum, the
The gastrointestinal (GI) system represents a remarkable interface between the human organism and the external environment for the purpose of providing nutrients for the body. The components of the GI tract can be thought of as a continuous tube about 7 m in length extending from the mouth to the anus. Beginning with the mouth and pharynx, the GI tract includes the esophagus, stomach, and small and large intestines (Fig. 35.1). Other parts of the GI system located outside the GI tract include the salivary glands, the pancreas, and the biliary system (liver, gallbladder, and bile ducts).
The process of ingesting nutrients, propelling them through the GI tract, and transforming them into a form capable of absorption into the body’s internal milieu is remarkably complex. The general functions of the GI tract can be divided into (1) movement of nutrients, including propulsive and mixing movements; (2) secretion of digestive juices; (3) digestion of nutrients; and (4) absorption of nutrients. This chapter
Mouth
Sublingual
Submandibular
Pharynx
Parotid
Esophagus
Stomach
Diaphragm
Spleen
Transverse colon
Small intestine
Descending colon
Sigmoid colon
Rectum
Anus
Liver
Gallbladder
Common bile duct
Pancreas
Duodenum
Ascending colon
Cecum
Appendix
Pancreatic duct
Salivary glands
FIG 35.1 The gastrointestinal system. (From Monahan FD, Neighbors M: Medical surgical nursing: foundations for clinical practice, ed 2, Philadelphia, 1998, Saunders, p 950.)
CHAPTER 35 Gastrointestinal Function 699
General factors such as adequate nutrition and appropriate levels of insulin, growth hormone, thyroid hormone, cortisol, androgens, and estrogens play a role in GI development, as well as local factors such as the direct effect of ingested nutrients, GI hormones, and secretions.
Functional Anatomy Each part of the GI tract is uniquely adapted for a specific function in providing nutrients for the body. The role of each major component of the GI tract will be described in some detail.
Oral Cavity and Pharynx The mouth, or oral cavity, is the usual point of entry for nutrients and is the site of the initial breakdown of nutrient substances into a form usable by the body. Food is pushed toward the side of the mouth by the tongue to facilitate chewing and grinding on the surfaces of the molar and premolar teeth. As the food is manipulated and broken down, it is moistened by saliva secreted by three major pairs of salivary glands: the parotid, submandibular, and sublingual glands (Fig. 35.2). Saliva serves three major functions: (1) through its moistening action, saliva allows the tongue to convert a mouthful of food into a bolus, or semisolid mass, that can be swallowed easily; (2) it allows for taste perception by the papillae on the surface of the tongue, which are sensitive to chemi- cal differences among dissolved food molecules; and (3) the digestive enzyme contained in saliva, salivary amylase (also called ptyalin), initiates carbohydrate digestion by breaking down polysaccharides (also called starch) into the simpler molecular structures of dextrin and maltose. Important changes in oral structure and function that occur with aging are detailed in Geriatric Considerations: Changes in the Mouth.
The pharynx, or throat, is about 12 cm long and serves as the entryway for both the respiratory and the GI systems. The oropharynx, the portion of the pharynx posterior to the mouth, is separated from the nasopharynx, the portion of the pharynx posterior to the nose, by the soft palate. The laryngopharynx is the portion of the pharynx that opens into the larynx and the esophagus. During swallowing, the soft palate is pulled upward to close off the nasopharynx. The bolus of food being swallowed is propelled by reflex movements of muscles in the pharynx through the laryngopharynx and into the esophagus. Simultaneously, the opening to the larynx is closed by the epiglottis. This coordinated set of actions prevents food substances and liquids from inadvertently entering the respiratory system, a potentially life-threatening occurrence referred to as aspiration.
appendix, the ascending colon, and the proximal portion of the transverse colon. The hindgut develops into the distal part of the transverse colon, the descending and sigmoid colon, the rectum, and the superior portion of the anal canal.
Developmental abnormalities are relatively common as a result of incomplete partitioning during gut differentiation. The trachea and esophagus share a common developmental origin, and incomplete development of these structures may lead to tracheoesophageal fistula (TEF), an anomaly characterized by an abnormal connection between the trachea and esophagus (often accompanied by esophageal atresia (EA), where the esophagus is closed off in a blind pouch). The fistula tract is thought to occur when a branch of the embryonic lung bud fails to undergo branching because of defective epithelial-mesenchymal interactions. These disorders occur in about 1 in 3500 live births, with about one-third of affected infants born prematurely, and there are associated anomalies in about half of the cases of TEF and EA. One of the more serious surgical emergencies in newborns, TEF requires immediate diagnosis and surgical correction. The current prognosis for such infants is very good, with about 90% survival beyond the neonatal period.
Failure of normal partitioning between the foregut and midgut can lead to intestinal atresia (IA), a condition in which the lumen of the small intestine is obliterated. Congenital IA may also occur as the result of an ischemic event, in which the necrotic area of gut is resorbed by the developing fetus, leading to a blind pouch and area of discontinuity. One potential etiology for such events is maternal use of vasoconstric- tive drugs such as methamphetamine and pseudoephedrine, as well as maternal smoking. IA is an important cause of intestinal obstruction in the newborn and necessitates prompt surgical correction. Failure of the midgut to develop or rotate properly with respect to the umbilical cord can result in omphalocele, a congenital herniation of viscera into the base of the umbilical cord, which may require surgical correction as well.
Congenital malformations resulting from inappropriate development of the anorectal portion of the GI tract include colonic or anal agenesis, a condition in which the rectal pouch ends blindly. Other developmental anomalies of this portion of the GI tract include anal stenosis, in which the anal aperture is small, and anal atresia (or imperforate anus), in which the anal membrane persists and covers the aperture to create an obstruction.
After its initial embryologic development, the GI tract continues to grow in length and diameter until somatic growth ends with puberty.
Mucous membrane (cut edge)
Opening of submandibular
(Wharton's) duct
Sublingual gland
Submandibular (Wharton's) duct
Submandibular gland
Parotid duct
Body of mandible
Parotid gland
Accessory part of parotid gland
FIG 35.2 Oral cavity. Structures of the mouth and location of the salivary glands. (From O’Toole M, editor: Miller-Keane encyclopedia and dictionary of medicine, nursing, and allied health, ed 7, Philadelphia, 2003, Saunders.)
700 UNIT X Gastrointestinal Function
Esophagus The esophagus is a muscular tube approximately 25 cm in length that initiates the progress of food through the gut after ingestion. Passage of food through the esophagus is greatly facilitated by mucus secreted by cells in the epithelial lining. Extremely rough or fibrous foods may potentially penetrate the mucous lining of the esophagus and cause damage. The stratified squamous epithelium lining the esophagus normally repairs itself quickly after injury and is constantly renewed by cells moving to the surface from below, though bones in foods such as fish or chicken may cause serious penetrating injuries.
The esophagus propels nutrients to the stomach by means of strong muscular contractions. (Presbyesophagus, or abnormal esophageal motility occurring with advanced age, is described in detail in the Age-Related Changes section.) When the body is in an upright position, gravity assists in the downward movement of food to the stomach. However, the muscular contractions of the esophagus are strong enough to transport nutrients to the stomach even in the absence of gravity, as persons living (and eating) in the weightless conditions of space have demonstrated.
At the lower end of the esophagus, about 2 to 5 cm above its juncture with the stomach, the circular muscle of the esophagus forms the lower esophageal sphincter (LES). Although anatomically this sphincter is no different from the remainder of the esophagus, it remains tonically constricted, in contrast to the middle and upper portions of the esophagus, which are completely relaxed under normal conditions. Thus the LES serves to prevent the highly acidic gastric contents from moving in a retrograde motion (refluxing) back into the esophagus. Under certain conditions the LES does not function properly, and reflux of
Elderly people experience a decline in taste. This decline is due to both an increase in the sensation threshold for all four tastes and a decrease in the number of papillae. For example, children have more than 200 taste buds, whereas the elderly have fewer than 100. Of the four basic tastes, elderly people experience a particular decrease in salt and sugar tastes.
Older individuals also experience a decrease in the number of acinar cells in the salivary glands, leading to a reduction in salivary secretion. These changes can contribute to halitosis (bad breath).
Loss of teeth in the elderly is due to atrophy of gum and bone tissue as well as actual tooth deterioration. As tooth enamel is destroyed, dentin is exposed, allowing development of caries (cavities). Gingival epithelial loss may occur as a result of pathologic processes as well as normal aging.
GERIATRIC CONSIDERATIONS Changes in the Mouth
Cosmetic effects
Decreased saliva
Halitosis
Decreased acinar cells in salivary glands
Decreased number of taste buds
Atrophy of bone tissue
Loss of teeth
Increased saliva alkalinity
Decreased taste
gastric contents into the esophagus—gastroesophageal reflux disease (GERD)—may occur. The resulting subjective sensation of irritation and spasms of the distal portion of the esophagus is often referred to as heartburn or dyspepsia.
Stomach The stomach (Fig. 35.3) is essentially an elastic food reservoir. Under normal circumstances, its capacity is 1000 to 1500 mL, although a capacity of as much as 6000 mL is possible. The portion of the stomach immediately below the LES is called the cardia. The fundus is the part of the stomach that continues lateral to and above the cardia; the body of the stomach extends from the cardia to the antrum, which stretches from the angulus to the pylorus. The antrum differs markedly from the rest of the stomach in function and is distinguished by the absence of rugae, the folds present in the mucous membrane of the other areas of the stomach. The pylorus is a muscular sphincter between the stomach and duodenum that serves to control gastric emptying and limits the reflux of bile from the small intestine.
The stomach is lined with simple columnar epithelium containing millions of gastric glands that extend down to the mucosa. A typical gastric gland is shown in Fig. 35.4. As shown in this illustration, gastric glands are lined by several types of specialized cells. Chief cells produce pepsinogen, the inactive form of the enzyme pepsin; parietal cells produce hydrochloric acid and also a substance called intrinsic factor (IF) that is needed for intestinal absorption of vitamin B12. Mucous cells produce a layer of alkaline mucus more than 1 mm thick that serves to shield the stomach wall and neutralize the acidity in the immediate area of the lining. In addition to these cells, gastrin cells located in the antral epithelium have surface microvilli that monitor
CHAPTER 35 Gastrointestinal Function 701
circulares, permanent ridges that do not lose their elasticity when the intestine is distended.
On microscopic examination, the lining of the small intestine contains millions of fingerlike projections called intestinal villi (Fig. 35.5). Like the circular folds just described, these villi serve to increase the surface area of the intestine for digestion and absorption of nutrients. Each villus has its own microscopic projections called microvilli, which in turn are covered by a fuzzy coat (called the brush border because of its brushlike appearance when viewed with an electron microscope) contain- ing many digestive enzymes. The combined effect of the circular folds,
intragastric pH. The role of these cells and the substances they secrete in the digestion of nutrients are described in detail in the Secretory Function section.
Small Intestine The small intestine of an adult is approximately 5 to 6 m long (the longest portion of the GI tract). The first 22 cm of the small intestine is called the duodenum; the jejunum constitutes the next 2 m, and the ileum forms the remainder. The entire inner wall of the small intestine is marked by circular folds of a mucous membrane called the plicae
Pylorus
Esophagus
Fundus
Greater curvature
Mucous membrane
Submucosa
Lesser curvature
Rugae Pyloric canal
Duodenum
Pyloric sphincter
Lower esophageal sphincter (LES)
Body
Longitudinal muscle layer
Circular muscle layer
Oblique muscle layer
Mucous cell
Parietal cell (HCI, intrinsic factor)
Chief cell (digestive enzymes)
FIG 35.3 Physiologic anatomy of the stomach. HCl, Hydrochloric acid. (From Herlihy B: The human body in health and illness, ed 4, Philadelphia, 2011, Saunders.)
702 UNIT X Gastrointestinal Function
Parietal cells
Gastric pit (foveolus)
Isthmus
Neck
O xy
n tic
g la
n d
Base (fundus)
Mucous neck cells
Endocrine cells
Chief cells
Surface mucous cells
FIG 35.4 Gastric mucosa and gastric glands.
Cell shedding
Villus
Intestinal crypt (of Lieberkühn)
Paneth cell
Intestinal stem cells
Differentiating cells
Goblet cell
Lymph lacteal
Enterocytes (absorptive cells) Endocrine cell
M u co
sa Villi mucosa
Lamina propria Muscularis mucosae Duodenal glands extending into mucosa
Circular muscle layer Longitudinal muscle layer Serosa
Longitudinal section of duodenum
Ligament of Treitz
Ileocecal valve
JejunumIleum
Appendix
Cecum
Lymph lacteal
Artery
Muscularis mucosae
Vein Lymph duct
FIG 35.5 The small intestine. (From Huether S, McCance K: Understanding pathophysiology, ed 6, St Louis, 2016, Mosby.)
villi, and microvilli is to increase the surface area of the small intestine by about 600 times, thereby creating a remarkably efficient interface for nutrient digestion and absorption. Fig. 35.6 shows a microscopic section of the small intestine.
Between the villi are situated the intestinal glands, or crypts of Lieberkühn. The intestinal glands secrete about 2 L of fluid daily into the lumen of the intestine, most of which is quickly reabsorbed by the villi. Goblet cells throughout the intestinal mucosa secrete large amounts of mucus. In addition, specialized mucous glands located in the first few centimeters of the duodenum, called Brunner glands, release a thick coating of mucus to protect the mucosa of this intestinal region from the potentially damaging effects of acidic gastric juice entering through the pylorus.
Although the details of the process of digestion and absorption of nutrients in the intestinal mucosa will be covered in greater detail in subsequent sections, a unique and salient feature of the villus epithelial cells is described here. Villus epithelial cells have both digestive and absorptive functions, apparently dependent on their current stage of maturation. The rapidly dividing cells at the base of the intestinal glands are responsible for secretion, but as they migrate to the villus, they mature into absorptive cells and are eventually pushed out of the villus tip. Turnover of cells in the small intestine occurs in 48 to 72 hours, one of the fastest cell turnover rates in the body. Therefore conditions
CHAPTER 35 Gastrointestinal Function 703
FIG 35.6 Microscopic section of the small intestine. (From Klatt EC: Robbins and Cotran atlas of pathology, ed 3, Philadelphia, 2015, Saunders.)
Hepatic (right colic) flexure
Ascending colon
Superior mesenteric artery
Inferior vena cava Portal vein Aorta
Inferior mesenteric artery and vein
Mesentery
Descending colon
Taeniae coli
Sigmoid artery and vein
Sigmoid colon
Haustra Rectum
Anus
External anal sphincter muscle
Superior rectal artery and vein
Vermiform appendix
Cecum
Ileocecal valve Ileum
Splenic (left colic) flexureSplenic
vein
Transverse colon
FIG 35.7 Divisions of the large intestine. (From Patton KT, Thibodeau GA: Essentials of anatomy and physiology, St Louis, 2012, Mosby.)
such as malnutrition or substances that interfere with cell replication or protein synthesis, such as chemotherapeutic agents, may severely compromise intestinal function.
The ileocecal valve, a sphincter between the small and large intestines, is normally closed so that the contents of the large intestine cannot reflux back into the small intestine. As peristaltic contractions move intestinal contents toward the large intestine, the ileocecal valve opens.
Large Intestine The large intestine (Fig. 35.7) is a muscular tube 1.5 m long and 6.5 cm in diameter that forms a frame around the small intestine. The portion of the large intestine from the cecum to the rectum is known as the colon. The ascending colon extends from the cecum straight up to the lower border of the liver; the transverse colon then extends across the abdomen, anterior to the small intestine. The descending colon turns downward on the left side of the abdomen, finally becoming the S-shaped sigmoid colon, which empties into the rectum. The rectum has its outlet at the anus, the opening for elimination of feces (see Fig. 35.7).
The vermiform appendix, attached to the cecum, is a worm-shaped blind tube containing specialized lymphatic structures. It contains T and B lymphocytes, secretes immunoglobulin A, and contributes to gut-associated lymphoid function. Inflammation of the appendix, or appendicitis, is one of the most common catastrophic events involving the gut, which can quickly lead to peritonitis and death if not diagnosed and managed promptly.
The mucosa of the large intestine has no villi and does not produce digestive enzymes (Fig. 35.8). The epithelial surface of the colon consists of absorptive cells that predominantly absorb water and electrolytes. Mucus-producing goblet cells line the glandular crypts present in the surface epithelium. Endocrine cells are also present, perhaps helping coordinate colon neurologic activity, but at present the function of hormones in the large intestine is poorly understood. The turnover time of cells in the colonic mucosa is 3 to 8 days, comparatively longer than that of cells in the small intestine.
704 UNIT X Gastrointestinal Function
FIG 35.8 Normal colon histology. Mucosal crypts are aligned parallel to one another “like a row of test tubes.” Epithelium on the surface and lining the crypts consists of absorptive tall columnar cells and goblet cells. Lamina propria invests the crypts and contains fibroblasts, macrophages, neuroendocrine cells, plasma cells, lymphocytes, eosinophils, and mast cells. A thin but distinct layer of smooth muscle (muscularis mucosae) separates mucosal elements from the submucosal space. The submucosa contains neural plexuses, fat, blood vessels, and lymphatic vessels. The muscularis externa is composed of an inner circular and an outer longitudinal layer of smooth muscle. (From MacLennan GT: Hinman’s atlas of urosurgical anatomy, ed 2, Philadelphia, 2012, Saunders.)
KEY POINTS • Tracheoesophageal fistula, esophageal and duodenal atresia, and anal
agenesis are congenital disorders that occur with abnormal development of the GI tract. These disorders are usually manifested as obstructions in the neonatal period.
• The major structures and corresponding functions of the GI tract can be summarized as follows:
• Mouth and salivary glands: Mastication, moistening, and the beginning of starch digestion (by the enzyme salivary amylase) of foodstuff.
• Pharynx: Transport of food to the esophagus and protection of the airway from aspiration of food particles.
• Esophagus: Movement of food to the stomach by peristaltic waves. The lower esophageal sphincter (LES) prevents reflux of stomach contents.
• Stomach: Reservoir for food, mixing, and initial digestion of proteins (by the enzyme pepsin); secretion of hydrochloric acid, intrinsic factor, and gastrin. The pyloric sphincter prevents reflux of intestinal contents.
• Small intestine: Digestion and absorption of nearly all nutrients in the duodenum and jejunum; absorption of bile salts in the terminal ileum. The brush border contains numerous digestive enzymes. The enzymes secretin and cholecystokinin are secreted by intestinal mucosa.
• Pancreas and gallbladder: The pancreas delivers digestive enzymes and bicarbonate to the duodenum. The gallbladder delivers bile salts to the duodenum.
• Large intestine: Reabsorption of water and storage of feces. Feces are delivered to the rectum for defecation.
GASTROINTESTINAL MOTILITY The way in which nutrients and their eventual waste products are propelled through the GI tract is a complex and fascinating process, involving an exquisitely timed set of autoregulatory actions and responses. A summary of the characteristics of the intestinal wall, innervation of the gut, and hormonal control of GI motility will provide a basis for understanding how nutrients move through the GI tract.
Characteristics of the Intestinal Wall A typical cross-section of the intestinal wall is depicted in Fig. 35.9. From the outer surface inward are five main layers: the serosa, a lon- gitudinal muscle layer, a circular muscle layer, the submucosa, and the mucosa. A small layer, the muscularis mucosa, is located between the mucosa and submucosa. The muscular movements of the GI tract are performed mostly by the different layers of smooth muscle, which extend from the distal end of the esophagus through most of the large intestine. However, skeletal muscle has a key role in motility at both ends of the GI tract; motility from the mouth through the proximal portion of the esophagus at the upper end and through the external sphincter of the anus at the lower end is mediated by the action of skeletal muscle.
The general characteristics of smooth muscle are covered in Chapter 5. Two specific characteristics of smooth muscle in the gut that enable its unique function are the close proximity of these fibers to each other and the ability of these cells to work in an integrated fashion. In most areas of the GI tract, smooth muscle fibers are extremely close; about 12% of their membrane surfaces are actually fused with the membranes of other adjacent muscle fibers to form a nexus, or junction. This allows intracellular current to travel very easily from one muscle fiber to another. Moreover, action potentials originating in one smooth muscle fiber in the GI tract are generally propagated from one fiber to another; therefore the GI tract acts as a functional syncytium, where separate cells have the ability to function in a unified manner.
Neural Control Movement of nutrients through the GI tract is controlled by the central nervous system through its autonomic division and is modulated by numerous hormonal interactions. In addition, the GI system has an intrinsic nervous system of its own affecting most GI functions. The intrinsic nervous system is composed of two layers: (1) the myenteric, or Auerbach, plexus, which lies between the longitudinal and circular muscular layers; and (2) the submucosal, or Meissner, plexus, which lies in the submucosa. The myenteric plexus is largely responsible for control of GI movements; the submucosal plexus serves to control secretion and is also involved in many sensory functions, with information being received from the gut epithelium and stretch receptors in the intestinal wall. The entire intrinsic nervous system, including both the myenteric plexus and the submucosal plexus, is responsible for many reflexes that occur locally in the GI tract, such as the localized secretion of digestive juices by the submucosal glands or an increase in gut smooth muscle activity.
In general, when the myenteric plexus is stimulated, activity in the GI tract increases. This stimulation has four principal effects: (1) tonic contraction of the intestinal wall increases; (2) rhythmic contractions increase in intensity; (3) rhythmic contractions increase in rate; and (4) the velocity of conduction of excitatory waves along the intestinal wall increases. As part of the parasympathetic nervous system, these excitatory fibers of the myenteric plexus are primarily cholinergic (i.e., secrete acetylcholine), in addition to one or more other excitatory transmitter substances. However, some myenteric plexus fibers have an inhibitory effect and may secrete purine-based transmitter substances such as adenosine triphosphate (ATP).
Input from the sympathetic and parasympathetic nervous systems can strongly affect the activity of the intrinsic nervous system. In general,
CHAPTER 35 Gastrointestinal Function 705
through the GI tract. GI sympathetic activity can also initiate vomiting through a complex sequence of events mediated by various neurotransmitters.
Afferent Nerve Fibers The GI tract is richly supplied with afferent nerve fibers arising from the gut that transmit important information about the status of the GI tract. Afferent fibers that have their cell bodies in the submucosal plexus and terminate in the myenteric plexus transmit signals in response to irritation of the gut mucosa, excessive distention, or the presence of specific chemical substances. These signals can result in excitation or, in some circumstances, inhibition of intestinal motility or secretion. Other afferent fibers with cell bodies in the dorsal root ganglia of the spinal cord or cranial nerve ganglia can transmit signals to higher levels of the central nervous system by traveling along sympathetic or para- sympathetic pathways. For example, the vagus nerves contain many afferent fibers that transmit signals to the medulla; this information is then used to initiate and modulate vagal signals that control many important functions of the GI tract.
Electrical Activity of Gastrointestinal Smooth Muscle Electrical activity is almost constantly present in the smooth muscle layers of the GI tract. Two basic types of electrical wave activity have been identified in the gut: slow waves and spikes (the latter named for the spiking appearance of these sudden increases in membrane potential). These two types of electrical wave patterns are shown in Fig. 35.10. Slow-wave electrical activity represents an ongoing tonic oscillation in membrane potential that occurs in the smooth muscle of the GI tract, especially in the muscle in the longitudinal layer. Normally, between 3 and 12 slow waves occur per minute, ranging from 40 to 50 millivolts (mV) in amplitude. Slow waves can be any degree of intensity and are
sympathetic stimulation decreases the activity of the intrinsic nervous system, whereas parasympathetic stimulation increases its activity.
Parasympathetic Innervation The parasympathetic supply to the GI tract is divided into cranial and sacral divisions. Cranial parasympathetic stimulation is transmitted almost entirely by the vagus nerves, which provide extensive innervation to the esophagus, stomach, pancreas, and the first half of the large intestine (with little innervation of the small intestine). The sacral parasympathetic division originates in the second, third, and fourth sacral segments of the spinal cord and innervates the distal half of the large intestine. The sigmoid, rectal, and anal regions of the large intestine are especially well supplied with parasympathetic fibers; these fibers have a key role in the defecation reflex.
Sympathetic Innervation The sympathetic fibers that innervate the GI tract have their origin in the spinal cord between T8 and L3. After exiting the cord, the pregan- glionic fibers enter the sympathetic chains and then pass through these chains to various ganglia adjacent to the GI tract, such as the celiac ganglion and the mesenteric ganglia. From these locations, postganglionic fibers radiate out to all parts of the gut. These sympathetic fibers supply essentially all parts of the GI tract (in contrast to the concentration of parasympathetic innervation at locations close to the entry and exit points of the gut). The sympathetic nerve endings in the GI tract secrete norepinephrine, which has an inhibitory effect on the parasympathetic nervous system. Norepinephrine acts directly on smooth muscle in the GI tract to inhibit activity; in addition, norepinephrine has an inhibitory effect on the neurons of the intrinsic nervous system of the GI tract. Strong stimulation of the sympathetic nervous system can effectively stop motility in the gut and therefore block the movement of nutrients
Lymph nodule
Duct from gland
Gland in submucosa
Mesentery Nerve
Myenteric plexus
Submucosal plexus Intramural plexus
SUBMUCOSA
SEROSA
Mucous epithelium
Circular muscle layer
Longitudinal muscle layer
MUCOSA
MUSCULARIS
Lamina propria
Muscularis mucosae
Blood vessels
Connective tissue layer
Peritoneum
FIG 35.9 Cross-section of a typical segment of the intestinal wall showing the four principal layers and associated structures: mucosa, submucosa, muscularis, and serosa. Although different areas of the GI tract specialize in function, the anatomy of the wall is similar in structure. (From Patton KT, Thibodeau GA: Essentials of anatomy and physiology, St Louis, 2012, Mosby.)
706 UNIT X Gastrointestinal Function
somatostatin, motilin, leptin, and ghrelin. Somatostatin analogs (e.g., octreotide) have been used therapeutically to treat some forms of diarrhea, endocrine tumors, and parietal hemorrhage and to reduce fluid output from pancreatic fistulas.
Ghrelin is a recently discovered peptide secreted by the stomach that increases appetite, stimulates growth hormone secretion, and produces weight gain. It helps regulate mealtime hunger and meal initiation, and as such has been the focus of intense research as a mediator for obesity, with the potential for a therapeutic antiobesity drug that would block ghrelin’s effects on the body.
Movement in the Gastrointestinal Tract Contraction of Gastrointestinal Smooth Muscle In general, most contraction in the GI tract occurs in response to spike potentials; slow waves without superimposed spikes ordinarily do not lead to contraction. Spike potentials occurring in GI smooth muscle are analogous to action potentials in cardiac muscle and are responsible for the membrane changes that initiate contraction. As calcium enters the cell membrane and passes to the interior of the smooth muscle, it initiates a reaction between actin and myosin, a process described in detail in Chapter 17.
The electrical activity occurring in the smooth muscle of the gut develops into tonic contractions and rhythmic contractions, both of which occur in most types of smooth muscle. Tonic contraction is continuous, instigated by pacemaker cells that reside at the interface between the longitudinal and circular muscle layers. The intensity of tonic contraction varies with the frequency of spike potentials and determines the amount of pressure in that segment. Thus the degree of contraction exerted by the pyloric, ileocecal, and anal sphincters serves to regulate the movement of nutrients through the GI tract.
The degree of rhythmic contraction varies in different parts of the GI tract. These differing rhythmic frequencies are dependent on the rate of slow wave activity in a particular segment and may occur at rates of 3 to 12 times per minute. These slow wave–dependent contrac- tions are responsible for the mixing and peristaltic propulsive movements present in the GI tract.
Two types of muscular activity are involved in the digestive and absorptive functions of the GI tract: mixing movements and propulsive movements. In different portions of the GI tract these movements may serve different functions to achieve proper digestion and absorption of nutrients. For example, mixing movements in the stomach and small intestine promote digestion by mixing the digestive juices with the food that enters from the esophagus. In the small intestine and proximal segment of the large intestine, mixing movements facilitate absorption by exposing newly arrived intestinal contents into contact with absorbing surfaces. In the case of propulsion, the rate at which nutrients are propelled through the GI tract depends on the function of the different organs of the tract. For example, the passageway for nutrients from the mouth through the pharynx and esophagus is simply a conduit; essentially no digestive or absorptive function occurs there, and the transit of nutrients is quite rapid. In contrast, transit from the stomach and through the small and large intestines is quite slow. This slow rate of passage allows for completion of the digestive and absorptive processes that occur in these portions of the GI tract.
Although the characteristics of mixing and propulsive movements differ in various parts of the GI tract and will be described separately in the next section, a description of the general characteristics of these movements is presented here.
Propulsive Movements The basic propulsive movement of the GI tract is called peristalsis (Fig. 35.11). Nutrients are propelled by the slow advancement of a circular
not the “all-or-nothing” type of action potential seen in other smooth muscle fibers in the body. In contrast to these nearly continuous slow waves, spikes occur under certain circumstances. When the muscle layer in the GI tract is stimulated by being stretched or by the effects of acetylcholine or parasympathetic excitation, the intracellular resting membrane potential of the muscle fibers becomes relatively more positive. The entire potential level of the slow waves is raised—an effect called depolarization. As shown in Fig. 35.10, when depolarization rises above a certain level (around −40 mV), sudden increases in the membrane potential, or spikes, start to appear on the peaks of the slow waves. If the resting potential rises further, spikes appear more frequently. With very strong stimulation, the spikes generally disappear because the membrane now remains entirely depolarized. Fig. 35.10 also illustrates the response of smooth muscle fibers to stimulation by norepinephrine or sympathetic excitation. In this situation, the resting membrane potential is decreased, or hyperpolarized, and electrical activity is almost abolished.
Hormonal Control Hormones play a pivotal role in controlling GI secretion, in many cases affecting several different portions of the GI tract. Gastrin, which is secreted by specialized endocrine cells (G cells) of the stomach mucosa in response to food entry, increases stomach motility and is the primary mediator of gastric acid secretion. In addition, it promotes increased constriction of the LES, which serves to prevent reflux of stomach contents into the esophagus. Gastrin may also have a small effect in increasing motility of the small intestine and gallbladder.
Cholecystokinin (CCK), which is secreted mainly by I cells of the jejunum in response to the entry of fatty substances, has an extremely strong effect on gallbladder contractility. This stimulation of gallbladder activity results in an outpouring of bile, which plays an important role in fat digestion and absorption. CCK also stimulates pancreatic secretion, helps regulate gastric emptying and bowel motility, and induces satiety.
Secretin, which is produced by the mucosa of the duodenum in response to the entry of acidic gastric juice from the stomach, stimulates pancreatic fluid and bicarbonate secretion, with the effect of neutralizing the acidity of intestinal contents. It also has a mild inhibitory effect on motility in most of the GI tract.
Other important GI polypeptide hormones include vasoactive intestinal polypeptide, glucagon, glucose-dependent insulinotropic polypeptide (also called gastric inhibitory polypeptide, or GIP),
M e m
b ra
n e p
o te
n ti
a l (m
il li v o
lt s )
−70 −60 −50 −40 −30 −20 −10
0
0 6 12 18
Spikes
Depolarization
Stimulation by 1. Norepinephrine 2. Sympathetics
Stimulation by 1. Stretch 2. Acetylcholine 3. Parasympathetics
Resting
Hyperpolarization
Slow waves
24 30 36 42 48 54 SecondsSeconds
FIG 35.10 Membrane potentials in intestinal smooth muscle. (From Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Phila- delphia, 2016, Saunders.)
CHAPTER 35 Gastrointestinal Function 707
Chewing The entry of solid food into the mouth results in the action of chewing, an important first step in the process of nutrient digestion. The process of moving the food around in the mouth and mixing it with saliva results in stimulation of the taste buds and olfactory epithelia; this sensory input greatly increases the subjective enjoyment of eating. As the food is mixed with saliva, it becomes softened and formed into a mass of appropriate size (bolus) that can be swallowed. The action of the molars and premolars in crushing more rigid forms of foods serves to prepare rough substances for transport down the esophagus. Although the act of chewing is under voluntary control, it is also partly reflexive in nature. The entry of food into the mouth has been shown to stimulate chewing in animals in the absence of full cerebral function. The move- ments of the skeletal muscles responsible for chewing are coordinated by impulses traveling through cranial nerves V, VII, IX, X, XI, and XII. Interruption of the proper transmission of impulses through these nerve tracts places an individual at risk for decreased voluntary control of the chewing function, with a resultant risk of aspiration (improper entry of oral or esophageal contents into the airways).
Swallowing Swallowing is the transport of material from the mouth to the stomach. The process of swallowing has been divided into three stages that describe the regions through which the bolus of nutrients passes on its way to the stomach: (1) the oral stage, (2) the pharyngeal stage, and (3) the esophageal stage.
During the oral stage, the bolus is passed from the mouth to the pharynx through the space called the fauces. The bolus, either solid or liquid, is rolled toward the back of the tongue, and the front of the tongue is then pushed up against the hard palate. Respiration is inhibited briefly in this phase, while the pharyngeal muscles constrict to force the bolus of food into the pharynx. In the pharyngeal stage the bolus is passed through the pharynx into the esophagus, a process taking about 0.2 seconds. Continued contraction of the pharyngeal muscles and the position of the tongue prevent reentry of the bolus into the oral cavity. The soft palate is pulled upward to block the nasopharynx; simultaneously, food is prevented from entering the larynx by elevation of the larynx and approximation of the vocal cords, both actions serving to close the glottis. As these openings are blocked, the pharyngeal constrictors contract and force the bolus of food into the esophagus. Respiration is now resumed, and pressure in the pharynx rises as a result of the muscular activities that have occurred.
The muscular characteristics of the esophagus are of particular importance in effecting the third, or esophageal, stage of swallowing. The upper one-third of the esophagus consists of skeletal muscle, whereas the lower two-thirds consist of predominantly smooth muscle. In the normal resting stage, the upper part of the esophagus is closed by the tonic contraction of a band of skeletal muscle that serves as the pha- ryngoesophageal sphincter. The pressure exerted by the pharyngoesopha- geal sphincter in this region is normally about 20 to 40 cm H2O above atmospheric pressure; this zone of high pressure keeps air from entering the esophagus during inspiration. Almost immediately after initiation of a swallow, the sphincter relaxes and pressure in the region drops to atmospheric pressure, thus allowing the bolus to be forced into the esophagus by the pressure generated in the pharynx. Pressure in the pharyngoesophageal junction region then rises as a result of contraction of skeletal muscle in this area, thus preventing reflux of food from the esophagus back to the pharynx. Pressure in this region then gradually subsides to a resting level while muscular relaxation occurs.
If the bolus being swallowed is a liquid, it is propelled through the esophagus by the initial force of swallowing and travels by gravity to the stomach in about 1 second. If the bolus is a semisolid mass, it is
constriction that squeezes the materials in front of the constricted area forward. Peristalsis is an inherent property of any smooth muscle tube that, like the intestine, is a functional syncytium. However, effective intestinal peristalsis requires the presence of an intact myenteric nerve plexus. The usual stimulus for peristalsis is distention of the intestinal walls. The entry and subsequent stretching of the intestinal wall by a bolus of food will have the effect of stimulating the gut wall 2 to 3 cm above this point, and a circular constriction will then occur and propel the food with a peristaltic movement. Although peristalsis can move in both directions in the gut, it normally moves toward the anus. It is thought that the myenteric plexus is organized in such a way that preferential transmission of signals downward occurs simultaneously with relaxation of the distal portion of the intestine below the distended stimulus point.
Mixing Movements Segmental contractions serve to keep the intestinal contents thoroughly mixed on a constant basis. These movements may vary according to the specific function of each portion of the GI tract (see the Secretory Function section).
Movement of Nutrients The path taken by foods ingested into the GI tract, as these nutrients travel down the tract and are digested and absorbed, will be traced beginning with the mouth. Although this process is described here as a linear sequence, it is important to note that several steps may occur simultaneously. The individual steps involved in nutrient ingestion constitute a synergistic process, and an inability to perform one phase of the process will ultimately have a profound effect on the entire GI tract. In addition, individuals manifest a great deal of variability in such aspects of digestive function as tolerance of certain nutrients and defecation patterns. Such variations may represent the influence of diet over a long period, conditioned responses to environmental cues, or age-related changes.
A
B
C
Contraction Bolus
FIG 35.11 Peristalsis is a progressive type of movement, propelling material from point to point along the GI tract. A, A ring of contraction occurs where the GI wall is stretched, pushing the bolus forward. B, The moving bolus triggers a ring of contraction in the next region, which pushes the bolus even farther along. C, The ring of contraction moves like a wave along the GI tract, pushing the bolus forward. (From Patton KT, Thibodeau GA: Essentials of anatomy and physiology, St Louis, 2012, Mosby.)
708 UNIT X Gastrointestinal Function
Disorders of the gag reflex such as stroke or neuropathy can lead to life-threatening obstruction or aspiration.
Motor Functions of the Stomach The motor functions of the stomach include the storage of ingested nutrients for variable lengths of time and the discharge of gastric contents into the small intestine at an appropriate rate for optimal digestion and absorption. The stomach also aids in the digestive process by its mixing movements, which convert large pieces of food to a finer, liquid consistency.
Gastric filling and storage. On entering the stomach from the esophagus, newly arrived food forms concentric circles in the body and fundus of the stomach, with the most recently ingested food lying closest to the esophagus and older food lying closer to the stomach wall. The smooth muscle in the fundus and body of the stomach can adapt to the volume of contents so that relatively large contents can be introduced with little increase in intragastric pressure. The fundus and body of the stomach maintain a consistent pressure at all times. This tonic contraction continually presses on the food mass and aids in its delivery to the pyloric antrum.
Peristaltic contractions occur in the stomach once every 20 seconds. These rippling peristaltic waves begin in the corpus and move at a velocity of about 1 to 2 cm/sec. When they reach the more thickly walled pyloric antrum, they become much more vigorous and also increase in speed. These strong peristaltic contractions in the pyloric antrum are largely responsible for mixing ingested nutrients with gastric secretions. As ingested food is churned and mixed to a greater degree of fluidity, the mixture takes on a milky white sludge appearance and is then called chyme.
Emptying. As pressure in the antrum rises momentarily because of peristaltic contraction, a pressure differential exists between pressure in the antral pylorus and pressure in the duodenal bulb. The higher pressure in the antrum is sufficient to overcome the resistance of the pyloric sphincter, and the contents of the stomach are then propelled into the duodenum. Concurrently, the degree of constriction of the pyloric sphincter may increase or decrease, depending on several factors discussed in the next section. Because this process is dependent on the muscular activity of the antrum as well as the muscular tone of the pylorus, gastric emptying is largely regulated by mechanisms that affect each of these regions.
Regulation of gastric emptying. Factors that may affect the rate at which the stomach empties include the degree of distention of the gastric wall and the release of the hormone gastrin in response to certain types of food in the stomach. Both of these factors increase the rate of gastric emptying by increasing the force of antral contractions, while simultaneously inhibiting pyloric constriction. Distention of the gastric wall results in stimulation of mechanoreceptors in the stomach with subsequent activation of reflexes over the vagus and the intrinsic nerve plexuses. These neural influences, along with contractile activity as a direct response to the stretch of gastric muscle, constitute a major stimulus for gastric emptying. Gastric emptying time can vary depending on the food ingested (e.g., whether solid or liquid) and generally ranges from 1 to several hours.
Gastrin is released from the antral mucosa in response to stretching of the gastric wall, as well as the presence of certain foods, particularly meat. The role of gastrin in promoting the secretion of highly acidic gastric juices will be discussed later. With respect to stomach emptying, gastrin has a key role in enhancing peristalsis while at the same time relaxing the pylorus.
In addition to these influences, many of the mechanisms that affect gastric emptying are initiated in the duodenum. Reflex nervous signals are transmitted from the duodenum back to the stomach in
propelled down the esophagus by means of a peristaltic wave. This esophageal peristalsis is caused by a contraction of circular muscle that forces the bolus ahead of it toward the stomach, with a transit time of about 4 to 6 seconds.
Although no well-differentiated muscular structure is located in the area where the esophagus joins the stomach, the region approximately 2 to 5 cm above the juncture with the stomach is referred to as the LES as described in the Esophagus section earlier. Almost immediately after initiation of a swallow, pressure at the LES drops and remains low during the time that a peristaltic wave is passing down through the lower end of the esophagus. Once the bolus has passed through the lower esophageal region and pressure in the lower portion of the esophagus has fallen to a resting level, the pressure in the LES rises and remains elevated for about 10 seconds before declining to a resting level once again.
Neural control of swallowing. Fig. 35.12 illustrates the neural pathways involved in the swallowing mechanism. Swallowing receptors in the posterior of the mouth and throat transmit impulses in response to a stimulus to the mucous membranes in the mouth, such as the presence of a moderate amount of fluid. These impulses travel mainly through the trigeminal nerve (cranial nerve V) into the reticular substance of the medulla oblongata, where the swallowing center is located. Once this center has been activated, the sequence of muscular reactions described earlier occurs automatically and usually cannot be voluntarily stopped. The swallowing center then sends impulses over a number of efferent nerves to the numerous skeletal and smooth muscles involved in the swallowing process to allow the complete act of swallowing to occur in the appropriate sequence. The glossopharyngeal (cranial nerve IX) and hypoglossal nerves (cranial nerve XII) are primarily concerned with the oral and pharyngeal stages, whereas the vagus nerve (cranial nerve X) is important in activating the esophageal stage.
The gag reflex is an important protective mechanism that aborts the normal swallowing response and helps eliminate potentially harmful ingestions. The afferent limb of the reflex is controlled by the glosso- pharyngeal nerve, and the efferent limb is regulated by the vagus nerve.
Esophagus
Vagus Glossopharyngeal nerve
Trigeminal nerve
Bolus of food Uvula
Epiglottis
Vocal cords
Peristalsis
Pharynx
Medulla
Swallowing center
FIG 35.12 Neural pathways of the swallowing mechanism. (From Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2016, Saunders.)
CHAPTER 35 Gastrointestinal Function 709
circumferential stretch and initiate a local myenteric reflex in response to this stimulation. The resulting contraction of longitudinal muscle, followed by the contraction of circular muscle, spreads downward in a peristaltic motion.
The peristaltic waves in the small intestine not only propel chyme downward toward the ileocecal valve but also spread the chyme along the intestinal mucosa, thus facilitating the process of absorption of nutrients (Fig. 35.13). As additional chyme enters the small intestine, this spreading process intensifies while peristalsis increases. When chyme reaches the ileocecal valve, it is sometimes stationary for several hours until the individual eats another meal and a new gastroenteric reflex intensifies the peristaltic process and propels the remaining chyme through the ileocecal valve.
Certain disease states, particularly those that involve intense irritation of the intestinal mucosa, may result in a peristaltic rush, a powerful peristaltic wave that travels long distances in the small intestine in a short period. The peristaltic rush clears the contents of the small intestine into the colon, thus relieving the small intestine of either irritating substances or excessive distention.
Mixing. In addition to propulsive peristaltic movements, a set of movements characterized as segmentation contractions occur in the small intestine. The primary effect of these contractions is progressive mixing of solid chyme particles with secretions of the small intestine. As their name implies, segmentation contractions involve contraction of the small intestine in regularly spaced segments that have the appear- ance of sausages (Fig. 35.14). As one set of segmentation contractions is completed, a new set begins, with contractile points located at different locations along the small intestine. Segmentation contractions occur at a rate of 7 to 12 times per minute and effectively chop and mix the chyme, as well as assist in propelling the chyme toward the ileocecal valve (see Fig. 35.14).
Control of motility. The electrical and mechanical activities of the small intestine are closely associated. Slow waves, as described previously in this chapter, occur at the membranes of the longitudinal smooth muscle, with frequencies of 11 to 12 per minute in the duodenum decreasing to 7 to 9 per minute in the terminal ileum. Slow waves do not directly produce muscular contractions in the small intestine, but provide the conditions under which contractions can occur. Although slow waves determine the velocity and direction of peristalsis, other factors determine whether action potentials and thus contraction will occur. Local mechanical and chemical stimulation by chyme is probably largely responsible for the initiation and continuance of contraction in the small intestine. Thus when the intestinal tract becomes overly distended or when the mucosa becomes irritated, myenteric reflexes enhance the electrical activity of the gut and spike potentials are superimposed on the slow waves. These spike potentials then spread through both longitudinal and circular muscle, and contraction results.
Intestinal motility may also be influenced by stimulation from sources extrinsic to the colon. Stimulation of the vagus nerve generally causes increased intestinal motility, with sympathetic stimulation resulting in inhibition. Intestinal motility can be altered reflexively by stimulation of many sensory areas. For example, trauma to organs outside the GI tract, such as irritation of the peritoneum or urinary tract, may cause intestinal inhibition. A condition called paralytic ileus, in which intestinal motility is inhibited as the result of reflex inhibition, may occur as a response to intraabdominal infection or surgery in this area.
Much current research is focused on the involvement of GI hormones in the regulation of GI tract motility. CCK, a hormone released from the mucosa of the jejunum in response to fatty substances in chyme, has been shown to block the increased gastric motility caused by gastrin. Another hormone, secretin, which is released mainly from the duodenal mucosa in response to gastric acid entering the duodenum, has the
response to intraluminal stimuli; these signals likely help control both peristaltic activity and the degree of pyloric constriction. Stimulation of the duodenum in a variety of ways has the effect of slowing gastric emptying; both the chemical and the physical properties of chyme enter- ing the duodenum may affect the rate of gastric emptying. A variety of both duodenal cells and duodenal receptors, including osmoreceptors, mechanoreceptors, and chemoreceptors, respond to intraluminal stimuli to produce hormonal and reflex inhibition of gastric motor activity and enhancement of pyloric tone. The presence in the duodenum of chyme containing the breakdown products of proteins, and to a lesser extent fats, may impede gastric emptying. Also, the presence of highly acidic or highly hypertonic or hypotonic chyme in the duodenum may inhibit the rate of gastric emptying. The degree of distention of the duodenum, as well as the presence of any degree of irritation of the duodenum, may also slow emptying of the stomach. These inhibitory mechanisms have a protective function and are effective in preventing the intestinal mucosa from overloading its digestive and absorptive abilities and potentially being damaged by chemical or mechanical sources.
Although regulation of gastric emptying is largely dependent on factors in the stomach and duodenum, gastric motility may be stimu- lated or inhibited reflexively from a variety of regions of the body. For example, stomach emptying is inhibited when the ileum is full and when the anus is mechanically distended. Stimulation of visceral and somatic pain receptors may result in inhibition of gastric motility. Various strong emotions such as anger, fear, and anxiety may produce changes in motility of the stomach, but whether these states tend to predispose an individual to inhibition or excitation of gastric motility is not always predictable.
Vomiting. Vomiting is rapid emptying of the contents of the stomach through the esophagus and into the mouth. The major force for vomiting is supplied by the skeletal muscle of the diaphragm and abdomen, rather than by contraction of the muscles of the stomach wall. Vomiting is the result of an extremely complex set of neural events coordinated by the nucleus tractus solitarius (NTS), a center located in the medulla. Afferent impulses from receptors in various regions of the body, including the sensory nerve endings of the pharynx, abdominal viscera, and the labyrinths, arrive at this center to initiate the vomiting reflex. This reflex causes closure of the glottis and trachea, relaxation of the gastroesopha- geal sphincter, and contraction of the diaphragm and the abdominal muscles, which forcibly expels the contents of the stomach.
Motility of the Small Intestine After intact food entering the mouth has been liquefied and partially digested in the stomach, it enters the small intestine, where the major part of digestion and absorption occurs. As in other parts of the GI tract, movements of the small intestine can be described as propulsive and mixing movements, which in the small intestine generally occur simultaneously.
Propulsion. Chyme is propelled through the small intestine by peristaltic waves that move at a rate of 0.5 to 2 cm/sec, with a faster rate at the proximal part of the intestine and a slower rate in the terminal portion. Approximately 3 to 5 hours is normally needed for the passage of chyme from the pyloric sphincter to the ileocecal valve, but this period may vary in some disease states. Peristaltic activity in the small intestine is greatly increased after the ingestion of a meal. The increase in contractile activity in the stomach caused by distention of the stomach wall is conducted principally through the myenteric plexus down along the wall of the small intestine. This so-called gastroenteric reflex serves to increase the activity of the small intestine, with an enhancement of both intestinal motility and intestinal secretion.
The usual stimulus for peristalsis in the small intestine is distention of the intestinal walls; stretch receptors in the gut wall are sensitive to
710 UNIT X Gastrointestinal Function
chyme and (2) storage of the fecal mass until it can be expelled from the body by defecation.
Colonic movements. For most of the time, the large intestine in humans is inactive. However, the presence of material in the proximal end of the colon results in a type of mixing movement in the haustra (the outpouchings in the colon wall), termed haustral churning, that is similar to the segmenting movements in the small intestine. This move- ment is the major type of motility in the large intestine. Haustral churning exposes the contents of the large intestine to the mucosa, thus promoting the absorption of water. Normally, about 500 mL of chyme enters the proximal part of the colon each day. Out of this total volume, 400 mL— mostly water and electrolytes—is reabsorbed before defecation takes place, with an average volume of 100 mL of feces remaining for eventual disposal from the body.
At infrequent intervals of about three to four times a day, a strong peristaltic movement termed a mass movement occurs and propels the fecal material long distances. These strong contractions may reach a peak of 100 cm H2O pressure in the segment undergoing the contraction. Fecal material may be transported all the way from the ascending colon to the descending colon by a mass movement. Feces are then stored in the distal end of the colon until defecation occurs.
Defecation. Under normal conditions, it takes about 18 hours for intestinal contents to reach the distal end of the colon after leaving the small intestine. Fecal material is stored in the distal part of the colon for
general effect of decreasing GI motility. The hormone GIP, which is released from the upper portion of the small intestine in response to fat in chyme, as well as to carbohydrates, is known to inhibit gastric motility under some conditions. These hormones will be described in more detail in the Secretory Function section.
Ileocecal Sphincter Chyme from the small intestine is eventually propelled downward to the terminal ileum immediately proximal to the cecum, where the last 2 to 3 cm of the muscular coat is thicker than that in the rest of the ileum. This region, called the ileocecal sphincter, has a high resting pressure (about 20 cm H2O above atmospheric pressure) and is normally closed. Distention of the distal ileum lowers the pressure in the ileocecal sphincter. Thus when intestinal contents are present in the terminal ileum at sufficient quantity and are ready to be propelled into the cecum, the sphincter reflexively relaxes and the intestinal contents are pushed into the cecum by the propulsive movements of the distal small intestine. Conversely, distention of the cecum after it is filled with contents passing through the ileocecal valve results in increased pressure in the sphincter, which prevents reflux back into the ileum (Fig. 35.15).
Motility of the Colon The movements of the colon are effective in promoting the two major functions of the colon: (1) absorption of water and electrolytes from
Esophagus
Mouth
Stomach
1. Food converted to chyme.
2. Chyme expelled into the duodenum.
4. Unabsorbed food material moves along the jejunum and ileum, and into the large intestine.
3. Simple sugars and the amino acids are absorbed into the blood capillaries of the villi.
Duodenum
Jejunum
Ilium
Rectum
Feces
Large intestine
Villus
Lacteal
Anus
Liver 1
3
4
2 Si
mp le
sug ars
,
am ino
ac ids
Fa t p
ro du
cts
FIG 35.13 Chyme and the process of absorption of nutrients. (Modified from Herlihy B: The human body in health and illness, ed 4, Philadelphia, 2011, Saunders.)
CHAPTER 35 Gastrointestinal Function 711
contraction of the abdominal muscles and forcible expiration with closure of the glottis (the Valsalva maneuver, often referred to as bearing down).
Regulation of colonic motility. Movements in the proximal portion of the colon are largely initiated by distention in the colonic walls, which stimulates contractile activity by triggering short reflexes through the intrinsic nerve plexuses. Although the proximal part of the colon receives extrinsic innervation via the vagus nerve, it functions in a rela- tively autonomous manner in the absence of extrinsic motor innervation and is thus a somewhat self-regulating structure. Extrinsic nerves may occasionally modify proximal colonic activity; for example, entry of food into the stomach or duodenum may result in a mass contraction in the proximal end of the colon. Sometimes termed the gastrocolic or duodenocolic reflexes, these strong mass movements are most evident after the first intake of nutrients in the morning and are often followed by a strong need to defecate.
In contrast, the distal part of the colon is somewhat more dependent on its extrinsic nerve supply, so movements in this region, including the act of defecation, may be entirely abolished after injury to these nerves. However, weak movements return eventually, and defecation can still occur without voluntary control after the initial response to injury has passed.
A
Contraction Bolus
B
C
FIG 35.14 Segmentation. Segmentation is a back-and-forth action that separates chunks of food and mixes in digestive juices. A, Ringlike regions of contraction occur at intervals along the GI tract. B, Previously contracted regions relax and adjacent regions now contract, effectively “chopping” the contents of each segment into smaller chunks. C, Locations of the contracted regions continue to alternate back and forth, chopping and mixing the contents of the GI lumen. (From Patton KT, Thibodeau GA: Essentials of anatomy and physiology, St Louis, 2012, Mosby.)
Colon
Valve
Ileocecal sphincter
Ileum
Pressure or chemical irritation in cecum inhibits peristalsis of ileum and excites sphincter
Pressure and chemical irritation relax sphincter and excite peristalsis
Fluidity of contents promotes emptying
FIG 35.15 Emptying of the ileocecal valve. (From Hall JE: Guyton and Hall textbook of medical physiology, ed 12, Philadelphia, 2011, Saunders.)
varying lengths of time; defecation may take place 24 hours or longer after the ingestion of food. Ordinarily the rectum is empty, but fecal material is occasionally shifted into it after one of the mass movements, and the resulting distention of the rectum initiates the urge to defecate. The act of defecation is a combination of voluntary and involuntary movements. Contraction of the distal end of the colon and relaxation of the internal anal sphincter, which are regions composed of smooth muscle, are involuntary movements. Relaxation of the external anal sphincter, which consists of striated muscle, is a voluntary movement. Other voluntary movements that may assist in the act of defecation are
KEY POINTS • Movements of the GI tract are due to contraction of two layers of smooth
muscle (i.e., the longitudinal and circular layers). Smooth muscle exhibits two types of electrical potentials: basic oscillations (slow waves), which do not result in contraction, and action potentials (spikes), which trigger calcium entry and result in contraction. Contraction of smooth muscle results in two types of intestinal motility: propulsive (peristalsis) and mixing (segmental).
• GI motility is regulated by the enteric nervous system, the autonomic nervous system, and hormonal mediators. The enteric nervous system has two branches—myenteric and submucosal—that coordinate reflexive contraction and relaxation along the entire GI tract.
• Luminal distention is an important stimulus for reflexive motility. Sympathetic nervous system activity is generally inhibitory to GI motility (and secretion). Parasympathetic nervous system activity generally enhances motility. Regula- tory hormones include gastrin (increases gastric motility), GIP (decreases gastric motility), CCK (stimulates gallbladder contraction), and secretin (decreases GI motility).
• Swallowing is a complex function coordinated by a swallowing center in the medulla.
• Swallowing is partially voluntary and partially involuntary. Cranial nerves IX, X, and XI mediate the various stages of swallowing.
• Regulation of gastric emptying involves gastric and duodenal factors. Gastric distention and the release of gastrin from gastric mucosa promote gastric emptying. Duodenal distention, acidity, hypertonicity, and high protein and fat concentrations inhibit gastric emptying.
• Chyme remains in the small intestine for 3 to 5 hours, where it is continually mixed by segmental contractions and slowly propelled toward the ileocecal valve by peristalsis. Distention of the terminal ileum results in relaxation of the ileocecal sphincter, which allows contents to enter the large intestine.
• Segmental contractions (haustra) in the large intestine promote water absorption. About 18 hours is required for the contents to traverse the large intestine and reach the distal end of the colon. Three to four times a day a peristaltic mass movement sweeps fecal material along the colon. Mass movements may be initiated by entry of food into the stomach and duodenum (gastrocolic reflex).
• Contraction of the distal end of the colon and relaxation of the internal anal sphincter occur involuntarily as feces enter the rectum, and an urge to defecate occurs. The external anal sphincter is under voluntary control and inhibits defecation until voluntarily relaxed.
712 UNIT X Gastrointestinal Function
TABLE 35.1 Major Hormones of the Gastrointestinal Tract
Hormone Source Target Organ Major Actions Stimulated By
Gastrin Stomach (mucosa)
Stomach (gastric glands)
Stimulates gastric glands to secrete specific substances and HCl
Distention of stomach by food; other specific substances (e.g., partially digested proteins, caffeine)
Secretin Duodenum (mucosa)
Pancreas Stimulates release of alkaline component of pancreatic juice
Acidic chyme acting on duodenal mucosa
Liver Increases bile secretion rate Cholecystokinin Duodenum
(mucosa) Pancreas Stimulates release of digestive
enzymes Presence of fatty acids and partially
digested proteins in duodenum Gallbladder Stimulates gallbladder contraction
and emptying Glucose-dependent insulinotropic
polypeptide (gastric inhibitory peptide) Duodenum
(mucosa) Stomach Reduces motor activity of stomach;
slows rate of gastric emptying Presence of fat or carbohydrate in
duodenum
SECRETORY FUNCTION Secretion of Gastrointestinal Juices The many glands associated with the GI tract produce enzymes that break down the major nutrient components of carbohydrates, fats, and proteins as part of the digestive process. The somewhat archaic term juices is still used to describe the fluids secreted in the GI tract, which contain a complex mixture of salts and protein enzymes. Secretion of these digestive juices is stimulated by various factors, including mechani- cal and chemical stimulation by chyme, parasympathetic stimulation (in certain regions of the GI tract), and various hormones.
Gastrointestinal Hormones Table 35.1 lists the major hormones of the GI tract and their sources, target organs, major actions, and factors that stimulate release. These hormones are released from the GI mucosa in response to distention or the presence of certain nutrient substances. They are then absorbed into the blood and carried to glands in target tissues (i.e., tissues on which they exert their effects), where they stimulate secretion. Chemically, GI hormones are polypeptides or polypeptide derivatives. Receptors for the peptide hormones are widely distributed throughout the body, including in the brain and central nervous system, and much current research is focused on the varied effects of these complex chemicals.
In addition to their effects on motility, as mentioned previously, gastrin, secretin, CCK, and GIP have critical roles in mediating secretion of GI juices. Gastrin is secreted by the stomach mucosa and stimulates the exocrine (secretory) cells of the gastric glands to produce their specific products, including hydrochloric acid (HCl). Research over the last two decades has shown that gastrin exerts its primary effect on enterochromaffin-like cells (ECL cells), provoking them to release histamine. Histamine, an amine with multiple roles in human physiologic processes, including an ability to constrict bronchial smooth muscle, diffuses readily into nearby parietal cells to induce acid release (Fig. 35.16). The development of specific medications that block the action of histamine (H2 antagonists) led to the first effective treatment for peptic ulcers by reducing gastric acid secretion.
Secretin was one of the first of the body’s many hormones to be discovered. The most potent stimulus for secretin release is HCl, and the presence of acidic chyme in the duodenum promotes its release into the blood from the duodenal mucosa. It is carried to the pancreas, where it stimulates the secretion of a large volume of alkaline juice rich in sodium bicarbonate. In the duodenum, sodium bicarbonate then neutralizes the HCl of the chyme, thus protecting the duodenal mucosa from potential damage and creating a slightly alkaline medium that is
optimal for chemical digestion by pancreatic intestinal enzymes. Although the liver produces bile continuously, secretin is effective in increasing the rate of bile secretion. Hormonal regulation is the most important mechanism governing the activity of the pancreas, and CCK has a key role in stimulating the release of large amounts of digestive enzymes from the pancreas. CCK also stimulates the gallbladder to release the bile it stores. GIP acts to slow stomach emptying by decreasing gastric motor activity.
Stimulation of the parasympathetic nerves to certain regions of the GI tract will also increase the rates of glandular secretion. Those glands in the upper portion of the GI tract that are innervated by the vagus and other cranial parasympathetic nerves (particularly the salivary, esophageal, and gastric glands; the pancreas; and some duodenal glands) are especially subject to parasympathetic stimulation. Glands in the distal portion of the large intestine are also affected by parasympathetic stimulation because this region is innervated by the pelvic parasympa- thetic nerves. In the small intestine, the major stimulus for intestinal secretion is local and mechanical stimulation of the intestinal wall, which initiates the excitation of local myenteric reflexes and subsequent release of secretions.
KEY POINTS • Major secreting glands and secretions in the GI tract can be summarized
as follows: • Salivary glands: Secrete salivary amylase. • Gastric glands: Chief cells secrete pepsinogen; parietal cells secrete HCl
and IF. HCl activates the conversion of pepsinogen to pepsin, and IF enhances vitamin B12 absorption. Parietal cell secretion is stimulated by acetylcholine, histamine, and gastrin. G cells secrete gastrin into the bloodstream. Gastrin increases gastric motility and stimulates chief and parietal cell secretion.
• Intestinal epithelium: Secretes brush border enzymes (peptidases, lipases, sucrase, lactase), secretin (stimulates pancreatic secretion), and CCK (stimulates gallbladder contraction).
• Pancreas: Secretes bicarbonate-rich fluid containing amylase, trypsin, chymotrypsin, and lipase into the duodenum when stimulated by secretin.
• Gallbladder: Secretes concentrated bile salts into the duodenum when stimulated by CCK.
DIGESTION AND ABSORPTION Substances contained in foods that are important to maintenance of the body include carbohydrates, fats (also called lipids), proteins, vitamins, inorganic salts, and water. Many of the nutrient constituents that compose
CHAPTER 35 Gastrointestinal Function 713
Glucose, the major product of carbohydrate digestion, accounts for about 80% of the monosaccharides obtained from food, whereas fructose and galactose account for the other 20%. Humans do not secrete an enzyme capable of digesting cellulose—a plant polysaccharide present in large amounts in the cell walls of fibrous vegetables. Although cellulose consists of glucose molecules, it contains molecular linkages different from those of starch. Consequently, much of this complex carbohydrate passes through the digestive tract without being digested and is excreted in the feces.
Digestion of Lipids Lipids in the diet are mostly in the form of triglycerides but also include phospholipids, cholesterol, and the fat-soluble vitamins A, D, E, and K. Digestion of lipids occurs in the small intestine, where fats are emulsified by the action of bile; neither salivary nor gastric enzymes appear to have any effect on triglycerides. As the lipid particles enter the duodenum from the stomach, bile exerts a detergent action on them in which the surface tension of the particles is decreased. This decrease in surface tension promotes fragmentation of the particles into smaller particles as they are blended by the mixing movements of the small intestine. The emulsification process is an entirely mechanical action because bile contains no enzymes and thus performs no chemical digestion.
Eventually, the detergent action of bile salts reduces the particles of fat to tiny droplets so that their surface area is greatly increased. This enhancement of surface area allows for maximal exposure to pancreatic lipase, an enzyme that (along with intestinal lipase, to a lesser extent) hydrolyzes the triglycerides to free fatty acids and glycerol. Some monoglycerides (glycerol with one fatty acid still attached) may remain; in fact, some fat may escape digestion entirely or be reduced only to diglycerides (glycerol with two fatty acids attached). A summary of triglyceride digestion is presented in Table 35.2.
intact food substances are structurally complex and cannot be easily absorbed from the GI tract in their original forms. During the process of digestion, digestive juices and the enzymes contained in these secretions convert these complex organic molecules to smaller molecules (Fig. 35.17). These simpler compounds are then capable of absorption across the wall of the small intestine into the blood and lymph and subsequent transfer to the cells, the primary task of the GI tract. This section describes the mechanisms of digestion and absorption of the three major groups of nutrients: carbohydrates, lipids, and proteins.
Digestion of Carbohydrates In terms of calories, carbohydrates account for approximately half of the American diet. The major digestible carbohydrate in food is plant starch, a large polysaccharide composed of straight and branched chains of glucose. A summary of carbohydrate digestion is presented in Table 35.2.
Digestion of starch begins in the mouth, as salivary amylase breaks down polysaccharides to the much smaller disaccharide molecules maltose and dextrin. In the stomach, this action of salivary amylase continues until the enzyme is eventually inactivated by acidic gastric juice. In the duodenum, the pancreatic enzyme amylase completes the task of splitting any remaining undigested polysaccharides and dextrins to small maltose units. Then maltase, an enzyme located in the brush border of the epithelial cells lining the duodenum, hydrolyzes each maltose molecule to two molecules of glucose. Other carbohydrates that are present in the diet in smaller quantities are the disaccharides sucrose, which is table sugar (glucose-fructose), and lactose, which is milk sugar (glucose-galactose). These two carbohydrates remain chemi- cally unaltered until they reach the duodenum, where the enzyme sucrase in the brush border converts sucrose to the monosaccharides glucose and fructose. The enzyme lactase hydrolyzes lactose into the monosac- charides glucose and galactose.
H+
H+
H+
H+
H+
H+ H+
H+
H+
H+ H+
Proton pump
ATP ADP Pi
ATP
ADP Pi
Histamine
Capillary bed
ACh receptor
Parietal cells
PSNS
Gastrin
Translocation of proton pumps
Lumen of stomach
FIG 35.16 Schematic diagram of the complex regulation of acid (H+) secretion from parietal cells in the gastric pits. Gastrin stimulates enterochromaffin-like cells (ECL cells), which in turn release histamine onto H2 receptors on the parietal cell. Gastrin also stimulates acid secretion directly, as does acetylcholine. ACh, Acetylcholine; ADP, adenosine diphosphate; ATP, adenosine triphosphate; Pi, inorganic phosphate; PSNS, parasympathetic nervous system.
714 UNIT X Gastrointestinal Function
Polysaccharide Fat
Disaccharides
Monosaccharides
Protein
Amino acids
Amylases
Lipases
Bile, emulsification
Tiny fat globules
Fatty acids and glycerol
Disaccharidases (sucrase, lactase,
maltase)
Proteases
A B C FIG 35.17 Chemical digestion. A, Amylases and disaccharidases break carbohydrates down into monosac- charides. B, Lipases break fats down to fatty acids and glycerol. The large fat globule must first be emulsified by bile. C, Proteases and peptidases break proteins down into amino acids. (From Herlihy B: The human body in health and illness, ed 4, Philadelphia, 2011, Saunders.)
TABLE 35.2 Summary of Carbohydrate, Protein, and Lipid Digestion
Location of Digestive Process
Source of Digestive Enzyme or Substance Basic Digestive Process
Carbohydrates Mouth, stomach Salivary glands (salivary amylase) Polysaccharides → salivary amylase → maltose + dextrin Small intestine lumen Pancreas (pancreatic amylase) Undigested polysaccharides/dextrins → pancreatic amylase → maltose Brush borders Intestine (maltase, sucrase, lactase) Maltose → maltase → glucose + glucose
Sucrose → sucrase → glucose + fructose Lactose → lactase → glucose + galactose
Lipids Small intestine Liver Lipid particle → bile salts → emulsified fat (triglycerides)
Pancreas Triglyceride → lipase → fatty acids + glycerol
Proteins Stomach Stomach (gastric glands) Protein → pepsin → polypeptides Small intestine lumen Pancreas Polypeptides → trypsin, chymotrypsin → tripeptides + dipeptides →
carboxypeptidase → free amino acids Brush borders (and within cytoplasm
of epithelial cells) Small intestine Tripeptides and dipeptides → peptidase → free amino acids
Cholesterol, a steroid type of lipid, is ingested in the form of cho- lesterol esters, which cannot be directly absorbed. An esterase in pancreatic juice degrades cholesterol esters to cholesterol and fatty acid, which then undergo absorption.
Digestion of Proteins Proteins are composed of molecular subunits called amino acids that are linked together by peptide bonds. Proteins that undergo digestion in the small intestine include both protein from food and protein from desquamated cells and the many enzymes of the GI tract. This protein of endogenous origin constitutes a sizable portion of the total protein subjected to digestion and absorption.
Protein digestion involves breakage of the peptide bonds by hydrolysis and release of free amino acids. It begins in the stomach with the action of the enzyme pepsin, which is secreted by the gastric glands. By its action on peptide bonds, pepsin reduces most proteins to intermediate-sized polypeptides. Pepsin is also capable of breaking down collagen, a protein component of intercellular connective tissue, thus rendering cellular proteins more accessible to enzymatic action in the GI tract. In the duodenum, the trypsin and chymotrypsin contained in pancreatic juice reduce the polypeptides to small peptides (tripeptides and dipeptides). Carboxypeptidase, which has its source in the pancreas, and peptidases in the brush borders of the intestinal epithelial cells split some of these peptides into free amino acids. Free amino acids, in addition to dipeptides
CHAPTER 35 Gastrointestinal Function 715
molecule that ferries glucose and galactose also carries sodium, which also enhances the carrier affinity for monosaccharides. In contrast to the other monosaccharides, the monosaccharide fructose is absorbed passively by means of a diffusion gradient.
Lipids Absorption of lipids occurs by a highly complex, unique process. As fatty acids and monoglycerides are freed during digestion, they become dissolved in bile salt micelles, which are colloidal particles composed of many molecules. Within the micelles, the products of lipid digestion are now soluble and can be absorbed far more efficiently. The bile salt micelles transport the lipid products to the epithelial brush borders, where the monoglycerides or fatty acids, which are highly soluble in the lipid cell membrane, diffuse into the epithelial cells and leave the micelle behind. The micelle is now emptied of its cargo and can pick up more fatty acids and monoglycerides and transport them to the cell membrane.
Bile salts, which are required for micelle formation, are absorbed mostly in the terminal ileum and then recycled in the liver. In the absence of bile, the amount of lipid absorbed in this manner is reduced by more than 25%. In this situation, the absorption of fat-soluble vitamins (vitamins A, D, E, and K) is compromised. Several cholestatic conditions, such as primary biliary cirrhosis and primary sclerosing cholangitis, may be associated with deficiencies of fat-soluble vitamins.
Monoglycerides may be further degraded into glycerol and fatty acids by the enzyme lipase within the epithelial cell. Short-chain fatty acids (those with fewer than 12 carbon atoms) can be absorbed directly into the blood at this point. Long-chain fatty acids and glycerol, however, are reassembled into triglycerides by the endoplasmic reticulum. These newly synthesized triglycerides are aggregated into droplets that become progressively larger during passage through the cell. These lipid droplets are stabilized by enclosure with absorbed cholesterol and phospholipids and encased by a protein coat. The final product, called a chylomicron, passes out of the cell and into the lacteal of the villus. From the lacteal, chylomicrons pass through a series of lymph vessels that eventually drain into the general circulation.
Proteins Amino acids are transported across the epithelial membrane by means of an active transport carrier system in much the same way as monosaccha- rides. It is currently thought that different carrier systems exist to carry the different chemical classes of amino acids (i.e., neutral, basic, dicarboxylic, and imino acids). As is the case for the transport of monosaccharides, brush border membrane carriers are involved in the transfer of amino acids across the intestinal epithelial cell; these carriers require energy and are coupled to the transport of sodium. After being transported to the epithelial cells of the villi, amino acids diffuse through the base of the cell and into the blood. Both amino acids and monosaccharides are transported directly to the liver by the hepatic portal vein.
Water and Electrolytes Water and inorganic ions, which are in the GI tract as a result of ingestion and secretion, are absorbed mainly from the small intestine and, to a lesser extent, from the colon. The process of absorption of water and ions is the same in both the small and large intestines: sodium is actively transported to the blood, and water follows passively in response to the osmotic gradi- ent created by the removal of sodium from the intraluminal fluid. About 8000 mL of water is absorbed every day by the small intestine and about 300 to 400 mL by the colon. Frequently, diarrhea is the result of failure of the small intestine to absorb water appropriately. If large quantities of water are allowed to enter the colon from the small intestine because of some malfunction of the small intestine’s absorptive ability, the colonic absorptive mechanism may be overwhelmed, and diarrhea is the result (Fig. 35.18).
and tripeptides, are absorbed into the intestinal epithelial cells. Within the cytoplasm of epithelial cells the small peptides are then hydrolyzed by various peptidases into free amino acids before their passage into the circulation. Numerous proteolytic enzymes are involved in protein digestion, and each enzyme acts on a slightly different type of peptide linkage. Protein digestion is summarized in Table 35.2.
Absorption Intestinal absorption is the movement of water and dissolved materials, such as the products of nutrient digestion, vitamins, and inorganic salts, from the inside of the small intestine through the semipermeable intestinal membrane and into the blood and lymph. A major feature of the intestinal absorptive surface is the villus, the small fingerlike projection lined with epithelial cells that was described earlier in this chapter. Within each villus is a network of capillaries that branch from a miniscule artery and empty into a miniscule vein. A central lymph vessel called a lacteal is also located in the villus. In the process of absorption, nutrient molecules pass through the single layer of epithelial cells lining the villus and through the single layer of cells forming the wall of the capillary or lacteal. A number of transport systems specific to certain nutrient components function in the intestinal epithelium to promote this process of absorption.
Operation of the intestinal transport systems is dependent on ATP production by the epithelial cells. These systems are capable of moving the products of nutrient digestion and inorganic salts from the intestinal lumen into the blood against electrochemical gradients (active transport). In addition to active transport, some molecules may move across the intestinal epithelium by passive means when a difference in concentration on the two sides of the epithelium exists. The rate of molecular transfer based on diffusion gradients is dependent not only on the magnitude of the difference in concentration, but also on the size of the molecules and the lipid solubility of the substances involved.
Almost all substances capable of intestinal absorption disappear from the lumen of the small intestine by the time that the intestinal contents reach the midjejunum. The ileum is not involved in absorption to any significant degree because the proximal regions of the small intestine have usually completed the process of absorption before the intestinal contents reach the ileal region. Nevertheless, the distal end of the small intestine has the capability of absorption and may do so in situations in which absorption has not taken place in the proximal part of the small intestine. Thus about 50% of the small intestine can be surgically removed without compromising absorptive ability. However, it is important to note that vitamin B12 and bile salts are absorbed specifically in the terminal ileum, and surgical removal of this portion of the small intestine will result in impaired absorption of these sub- stances. IF produced by the parietal cells of the gastric antrum is also required for B12 absorption; IF deficiency leads to a condition known as pernicious anemia.
The intestinal contents arriving at the terminal ileum contain no digest- ible carbohydrate, very little fat, and only 15% to 17% nitrogen-containing substances. Most of the contents of the terminal ileum consist of bacteria, desquamated epithelial cells, digestive secretions, and the residue of foods that are undigested and therefore unabsorbed, such as the cellulose walls of fibrous plants and connective tissue from animal sources.
Carbohydrates Carbohydrates are absorbed in the form of monosaccharides. The intestinal epithelium is impermeable to carbohydrates of high molecular weight such as disaccharides and polysaccharides, and no transport systems exist for these types of carbohydrate molecules. The monosac- charides glucose and galactose are absorbed by an active, energy-requiring process in which a carrier molecule located on the luminal border of epithelial cells transports them across the border. The same carrier
716 UNIT X Gastrointestinal Function
Semifluid
Fluid Ileocecal valve
Solid
Mush
Semi-mush
Semi-solid
Poor motility causes greater absorption, and hard feces in transverse colon causes constipation
Excess motility causes less absorption and diarrhea or loose feces
FIG 35.18 Absorptive function of the large intestine. (From Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2016, Saunders.)
KEY POINTS • Digestion, the process of converting large molecules to simpler forms, is
accomplished by mechanical and enzymatic processes. Digestion is a neces- sary prelude to absorption because only simple molecules can cross the intestinal epithelia.
• Digestion of complex carbohydrates is initiated in the mouth, where salivary amylase begins to cleave polysaccharides into disaccharides. Pancreatic amylase continues this process in the small intestine. Disaccharides (e.g., maltose, sucrose, lactose) are cleaved into monosaccharides (e.g., glucose, fructose, galactose) by brush border enzymes (e.g., maltase, sucrase, lactase) on the intestinal epithelia. Glucose and galactose are absorbed across the intestinal epithelia by a sodium-dependent cotransporter. Fructose is absorbed passively by facilitated diffusion. Monosaccharides then travel via the bloodstream to the liver.
• Lipid digestion begins in the small intestine, where bile salts from the gallbladder mix and emulsify the fatty substances. Emulsification mechanically separates the lipids into small drops that are more accessible to enzymatic digestion. Pancreatic lipase and brush border lipases digest the lipids into free fatty acids and glycerol, which remain associated with the bile salts and form micelles. Cholesterol is digested by pancreatic esterase. Fatty acids are transported to the intestinal epithelia by micelles. Free fatty acids diffuse out of the micelle and into the epithelial cell passively. Epithelial cells synthesize large protein-lipid complexes (chylomicrons) that enter the lymphatic system.
PEDIATRIC CONSIDERATIONS Changes in the Gastrointestinal System in the Infant
The acid and enzymes present in the infant’s GI system are different from those in the adult’s GI tract and affect the infant’s ability to digest nutrients. The stomach depends on hydrochloric acid to begin digestion of human milk. Although hydrochloric acid is present, the stomach acidity is low. This low acidity limits the GI system’s ability to destroy ingested bacteria, which causes the infant to be more susceptible to GI infections. The acidity is also too low to digest protein in the stomach via the enzyme pepsin. As the child matures, the acidity of the gastric contents continues to increase until it reaches adult levels in adolescence.
Lipase and amylase in the intestine are limited for the first 4 months of the infant’s life. The infant is unable to digest fats and complex carbohydrates until the levels of these enzymes are sufficient. Levels of the enzyme lactase, found in the small intestine, are extremely high in the newborn. This is essential for digestion of the human milk diet of the infant. The lactase levels decline after infancy, and for most individuals, lactase levels are absent by adulthood. Because
of the enzyme composition in the infant GI system, human milk is the ideal food source for an infant.
Several factors of the GI system predispose the infant to regurgitation. The lower esophageal sphincter is immature in the infant. This immaturity leads to inappropriate relaxation of the sphincter, and the pressure of the sphincter is decreased. The infant also has a shorter esophagus, which results in less distance for gastric contents to travel and increases the likelihood of regurgitation. Muscle development is immature in the intestine. This immaturity leads to rapid peristaltic waves and simultaneous nonperistaltic waves. This inconsistency of the intestine to move food efficiently leads to delayed gastric emptying. As the gastric contents increase, the pressure of the stomach increases and exceeds the pressure of the lower esophageal sphincter. Once the pressure of the sphincter is exceeded, regurgitation occurs. As the infant grows, the GI system develops and is fairly complete by the beginning of toddlerhood.
High amounts in small intestine
Immature muscle development of intestine
Immature lower esophageal sphincter
Delayed gastric emptying
Inappropriate relaxation
Low acidity, high pH
Deficient amounts
Unable to break down complex carbohydrates
and fats
Human milk ideal food source
Increased risk of infection
Impairs destruction of ingested
bacteria
Impairs digestion of
proteins
Rapid peristaltic and simultaneous
nonperistaltic waves
Decreased sphincter pressure
Increased intragastric pressure
Hydrochloric acid Amylase Lipase Lactase
Regurgitation
Short esophagus
CHAPTER 35 Gastrointestinal Function 717
• Protein digestion begins in the stomach, where HCl from parietal cells activates the conversion of pepsinogen to pepsin. Pepsin cleaves proteins into smaller polypeptides. Pepsin is neutralized in the duodenum, and pancreatic trypsin, chymotrypsin, and carboxypeptidase take over protein digestion. Brush border peptidases split tripeptides and dipeptides into single amino acids. Amino acid transport into intestinal epithelial cells is mediated by a sodium-dependent cotransport system similar to monosaccharide transport. Small peptides may also undergo endocytosis and be cleaved into amino acids within the epithelial cells.
• Amino acids pass into the bloodstream and travel to the liver. • Absorption of water occurs passively by osmosis. An osmotic gradient for
water absorption is created as electrolytes are absorbed.
As a person ages, gastrointestinal muscle strength and movement decrease, leading to reduced peristalsis and decreased gastrointestinal motility throughout the system.
In the esophagus, the elderly person experiences greater numbers of muscle movements that do not propel the contents onward. These nonperistaltic waves are common in the lower esophagus. The phenomenon of presbyesophagus—in which the esophageal sphincter fails to relax and the lower esophagus becomes dilated—may not necessarily be normal to the elderly.
In the stomach, decreased numbers of parietal and chief cells result in diminished acid (HCl) and pepsin secretion. This leads to increased pH and a more alkaline secretion. The amount of protective alkaline viscous mucus in the stomach is
also decreased. The loss of smooth muscle in the stomach can delay emptying time, which increases and prolongs the exposure of gastric epithelial cells to the gastric contents.
The amount of small intestinal smooth muscle, Peyer patches, and lymphatic follicles is decreased. Normal intestinal absorption in the elderly is not well understood and may be influenced by a number of factors, including bowel motil- ity, epithelial membranes, vascular perfusion, and gastrointestinal membrane transport. However, absorption of lipids, amino acids, glucose, calcium, and iron is known to be decreased. Normal changes in the large intestine have been difficult to determine. As a result of smooth muscle changes, anal sphincter tone decreases.
GERIATRIC CONSIDERATIONS Changes in the Gastrointestinal System
Increased pH (alkalinity)
Decreased absorption of lipids, amino acids, glucose, Ca21, iron
Delayed emptying time
Decreased anal sphincter tone
Epithelial membrane changes
Decreased parietal and chief cells
Decreased acid (HCl) and pepsin in stomach
Decreased smooth muscle
Decreased peristalsis
Increased nonperistaltic
waves
Decreased strength and muscle tone
first 3 to 4 months, so antral mixing is inadequate for the digestion of solid foods. At about 12 weeks of age, intestinal peristalsis similar to that in adults begins to develop, but it is one-third slower. This slower transit in infants may serve to improve nutrient digestion and absorption by increasing the exposure of nutrients to the intestinal mucosa. The motor function of the large intestine appears to be fully developed at birth. During the first 2 years of life, the secretory and absorptive functions of the intestine mature and begin a pattern of functioning that continues into senescence. See Pediatric Considerations box.
Age-Related Changes Changes in GI function in older adults occur simultaneously with other age-related changes such as a decrease in lean body mass and impaired homeostasis of multiple body systems. Within the GI tract, a variety of changes occur that may place an aging individual at risk for health problems related to GI functioning and nutrition. Important elements of this process are summarized in Geriatric Considerations: Changes in the Gastrointestinal System.
Loss of dentition and reduced taste and smell acuity may promote a decreased interest in food intake as chewing becomes difficult and the sensory enjoyment associated with food becomes impaired. A condition called presbyesophagus, in which esophageal motility is slowed or disorganized, may develop in older adults. Presbyesophagus may be manifested as difficulty in swallowing and may cause discomfort as food passes through the esophagus. The incidence of hiatal hernia, where part of the stomach moves into the chest cavity through an enlarged diaphragmatic opening, is also increased in the aging population,
GASTROINTESTINAL FUNCTION ACROSS THE LIFE SPAN Maturation During the first months of life, the newborn’s GI tract undergoes many maturational changes. In the first 3 to 4 months of life, sucking reflexes are present, and extrusion reflexes protect against the ingestion of solids.
The pressure in the LES remains low during this time, and “spitting up” of gastric contents is common because intragastric pressure often exceeds LES pressure. Gastric motility is not well coordinated for the
718 UNIT X Gastrointestinal Function
affecting two-thirds of persons older than 70 years. The transit time for intestinal contents to pass through the GI tract is increased in older persons; this factor, coupled with a decreased perception of the sensory stimuli that produce the urge to defecate, may promote constipation in the aging population. Conversely, a confused or neurologically impaired older individual may experience fecal incontinence because the sensation and tone of the rectum diminish with aging.
This chapter describes the structure of the human GI system and the process by which it provides nutrients for the body. A thorough understanding of the structure and motility of the GI tract, secretion of digestive juices, and digestion and absorption of nutrients is needed as a basis for understanding other principles of health and disease.
GI motility is a complex process involving a set of carefully timed autoregulatory action responses (Fig. 35.19). You may wish to trace the path and destiny of the apple you ate for lunch as an example of this process. As you track the movement of nutrients through the GI tract, consider the ways in which secretion of digestive juices occurs in response
S U M M A R Y
Mouth Breaks up food particles Assists in producing spoken language
Pharynx Swallows
Stomach Stores and churns food Pepsin digests protein HCI activates enzymes, breaks up food, kills germs Mucus protects stomach wall Limited absorption
Liver Breaks down and builds up many biological molecules Stores vitamins and iron Destroys old blood cells Destroys poisons Bile aids in digestion
Gallbladder Stores and concentrates bile
Small intestine Completes digestion Mucus protects gut wall Absorbs nutrients, most water Peptidase digests proteins Sucrases digest sugars Amylase digests polysaccharides
Anus Opening for elimination of feces
Pancreas Hormones regulate blood glucose levels Bicarbonates neutralize stomach acid Trypsin and chymotrypsin digest proteins Amylase digests polysaccharides Lipase digests lipids
Large intestine Reabsorbs some water and ions Forms and stores feces
Rectum Stores and expels feces
Salivary glands Saliva moistens and lubricates food Amylase digests polysaccharides
Esophagus Transports food
FIG 35.19 Summary of digestive function. (From Patton KT, Thibodeau GA: Essentials of anatomy and physiology, St Louis, 2012, Mosby.)
KEY POINTS • Infants may experience GI dysfunction because of immaturity of the GI tract.
Motility is not well coordinated until 3 to 4 months of age, making digestion of solids difficult in infancy. Pressure in the LES is low, which leads to “spitting up” and gastric distention. Maturation of the GI tract is complete by about 2 years of age.
• Elderly individuals may experience GI dysfunction for a number of reasons. Poor dentition, loss of taste and smell acuity, and reduced esophageal motility may lead to poor intake of nutrients. Hiatal hernia and constipation are common in the elderly.
CHAPTER 35 Gastrointestinal Function 719
RESOURCES Barocelli E, Ballabeni V: Histamine in the control of gastric acid secretion: a
topic review. Pharmacol Res 47(4):299–304, 2003. Berna MJ, Jensen RT: Role of CCK/gastrin receptors in gastrointestinal/
metabolic diseases and results of human studies using gastrin/CCK receptor agonists/antagonists in these diseases. Curr Top Med Chem 7(12):1211–1231, 2007.
Burns AJ, Thapar N: Advances in ontogeny of the enteric nervous system. Neurogastroenterol Motil 18(10):876–887, 2006.
de Herder WW, Lamberts SW: Somatostatin and somatostatin analogues: diagnostic and therapeutic uses. Curr Opin Oncol 14(1):53–57, 2002.
Feldman M, Friedman LS, Brandt LJ: Sleisenger and Fordtran’s gastrointestinal and liver disease, ed 10, Philadelphia, 2015, Saunders Elsevier.
Gebruers EM, Hall WJ: Role of the gastrointestinal tract in the regulation of hydration in man. Dig Dis 10(2):112–120, 1992.
Hall JE: Guyton and Hall textbook of medical physiology, ed 13, Philadelphia, 2015, Saunders Elsevier.
Herrera JL, Lyons MF, 2nd, Johnson LF: Saliva: its role in health and disease. J Clin Gastroenterol 10(5):569–578, 1988.
Hockenberry MJ, Wilson D: Wong’s nursing care of infants and children, ed 9, St Louis, 2011, Mosby.
Hofmann AF: Cholestatic liver disease: pathophysiology and therapeutic options. Liver 22(Suppl 2):14–19, 2002.
Hornby PJ: Central neurocircuitry associated with emesis. Am J Med 111(Suppl 8A):106S–112S, 2001.
Jaffe BM, Berger DH: The appendix. In Schwartz SI, Brunicardi CF, editors: Schwartz principles of surgery, ed 8, New York, 2005, McGraw-Hill.
Johnson LR: Gastrointestinal physiology, ed 8, Philadelphia, 2013, Mosby Elsevier.
MacGregor J: Introduction to the anatomy and physiology of children: a guide for students of nursing, child care and health, ed 2, New York, 2008, Routledge.
Nonogaki K: Ghrelin and feedback systems. Vitam Horm 77:149–170, 2007. Orr WC, Chen CL: Aging and neural control of the GI tract, IV: clinical and
physiological aspects of gastrointestinal motility and aging. Am J Physiol Gastrointest Liver Physiol 283(6):G1226–G1231, 2002.
Pedersen AM, et al: Saliva and gastrointestinal functions of taste, mastication, swallowing and digestion. Oral Dis 8(3):117–129, 2002.
Podolski DK, et al, editors: Yamada’s textbook of gastroenterology, ed 6, Oxford, 2015, Wiley-Blackwell.
Rehfeld JF, Friis-Hansen L, Goetze JP, et al: The biology of cholecystokinin and gastrin peptides. Curr Top Med Chem 7(12):1154–1165, 2007.
Ross AC, et al, editors: Modern nutrition in health and disease, ed 11, Philadelphia, 2012, Lippincott Williams & Wilkins.
Roy CC, Siverman A, Alagille D, editors: Pediatric clinical gastroenterology, ed 4, St Louis, 1995, Mosby.
Thomson AB, et al: Small bowel review: normal physiology part 2. Dig Dis Sci 46(12):2588–2607, 2001.
Wiedmer P, Nogueiras R, Broglio F, et al: Ghrelin, obesity and diabetes. Nat Clin Pract Endocrinol Metab 3(10):705–712, 2007.
to the ingestion of your apple, which contains a great deal of carbohydrate (fructose), small amounts of protein, and minimal lipid. Consider also how digestion and absorption of these nutrients are occurring. What part of the apple will you use, for example, for energy to study this text? What part of the apple will your body “throw away,” and how will
this be accomplished? Finally, will your GI tract respond the same way to eating an apple when you are 85 years old? A careful review of the elegant and nearly automatic function of the human GI tract will prepare you to care for individuals experiencing interruptions in proper nutrient digestion and absorption.
720
36
Gastrointestinal Disorders Jeffrey S. Sartin
K E Y Q U E S T I O N S • What are the common causes of these general manifestations of
gastrointestinal disorders: pain, nausea, vomiting, diarrhea, and constipation?
• What are the predisposing factors and characteristics common to inflammatory disorders of the gastrointestinal tract?
• What are the common causes of and clinical findings in functional and mechanical bowel obstructions?
• What are the common causes of and clinical findings in gastrointestinal malabsorption disorders?
• What are the warning signs that may indicate cancer of the gastrointestinal tract?
C H A P T E R O U T L I N E Manifestations of Gastrointestinal Tract Disorders, 721
Dysphagia, 721
Categories, 721
Esophageal Pain, 721
Abdominal Pain, 721
Vomiting, 723
Intestinal Gas, 723
Alterations in Bowel Patterns, 723
Constipation, 723 Diarrhea, 723
DISORDERS OF THE MOUTH AND ESOPHAGUS, 724 Oral Infections, 724
Stomatitis, 724
Esophageal Disorders, 724 Gastroesophageal Reflux Disease, 724 Hiatal Hernia, 725 Mallory–Weiss Syndrome, 725 Esophageal Varices, 725
ALTERATIONS IN THE INTEGRITY OF THE GASTROINTESTINAL TRACT WALL, 726
Inflammation of the Stomach and Intestines, 726 Gastritis, 726 Gastroenteritis, 726 Peptic Ulcer Disease, 726
Inflammatory Bowel Disease, 728 Ulcerative Colitis, 729 Crohn Disease, 730
Enterocolitis, 731 Antibiotic-Associated Colitis (Pseudomembranous Colitis), 731
Necrotizing Enterocolitis, 731 Appendicitis, 731 Diverticular Disease, 731
ALTERATIONS IN MOTILITY OF THE GASTROINTESTINAL TRACT, 733
Motility Disorders, 733 Irritable Bowel Syndrome, 733 Intestinal Obstruction, 733 Volvulus, 734 Intussusception, 734 Megacolon, 734 Hirschsprung Disease, 734
Disorders of Malabsorption, 735 Mucosal Disorders, 735
Celiac Disease, 735 Tropical Sprue, 735
Malabsorption Disorders After Surgical Intervention, 735 Dumping Syndrome, 735 Short-Bowel Syndrome, 736
NEOPLASMS OF THE GASTROINTESTINAL TRACT, 737 Esophageal, Gastric, and Small Intestinal Cancers, 737
Esophageal Cancer, 737 Gastric Carcinoma, 737 Small Intestinal Neoplasms, 737
Colonic Polyps and Colon Cancer, 738 Colon Polyps, 738 Colon Cancer, 738
Psychosocial Aspects of Gastrointestinal Disorders, 739 Stress of Lifestyle Changes, 739
http://evolve.elsevier.com/Banasik/pathophysiology/ • Review Questions and Answers • Glossary (with audio pronunciations for selected terms) • Animations
• Case Studies • Key Points Review
CHAPTER 36 Gastrointestinal Disorders 721
more layers of the esophageal wall; achalasia, a disorder of esophageal smooth muscle function; and structural disorders such as neoplasms or strictures. This alteration in peristalsis may be simply weak peristaltic activity, aperistalsis (the absence of all peristaltic activity), or disorganized and therefore ineffective peristalsis. With this type of dysphagia the individual may have the sensation that food is “stuck” behind the sternum. Initially, dysphagia may be noted with solid foods; if the underlying pathologic process fosters a worsening of peristaltic ability, the passage of liquids may also become impaired.
The third category of dysphagia, which results from problems of bolus entry into the stomach, is secondary to any condition in which the LES functions improperly or is obstructed by a lesion. Tumors of the mediastinum, lower part of the esophagus, or gastroesophageal junction may produce an obstruction at the LES or invade the myenteric plexus, thus interrupting normal LES function. In addition, motor disorders resulting from neuromuscular diseases or chronic lower esophageal inflammation from the reflux of acidic gastric contents may limit the ability of the LES to function properly. This type of dysphagia may be manifested as tightness or pain in the substernal area during the swallowing process.
Esophageal Pain Two types of pain occur in the esophagus: (1) heartburn (also called pyrosis) and (2) pain located in the middle of the chest, which may mimic the pain of angina pectoris. Heartburn is a substernal burning sensation that may radiate to the neck or throat, caused by the reflux of gastric contents into the esophagus. Two common mechanisms contribute to the manifestations of heartburn. First, the highly acidic gastric contents may be a noxious stimulant to sensory afferent nerve endings in the esophageal mucosa. Second, spasm of the esophageal muscle instigated by acid stimulation may produce esophageal pain.
Chest pain other than heartburn may be the result of esophageal distention or powerful esophageal contractions. These stimuli may arise from esophageal obstruction or a condition called diffuse esophageal spasm, in which high-amplitude, simultaneous contractions in the smooth muscle portion of the esophagus alternate with normal peristalsis. This type of esophageal pain is similar to that of angina pectoris, particularly in its pattern of radiation into the neck, shoulder, arm, and jaw. Odynophagia may accompany diffuse esophageal spasm and can be indistinguishable from esophageal chest pain, except that it is triggered specifically by swallowing.
Infections of the esophagus attributable to herpes simplex virus (HSV), cytomegalovirus, or Candida species occur in immuno- compromised patients. Patients with infectious esophagitis may experi- ence a dull, aching chest pain. Swallowing generally worsens the sensation of heartburn or chest pain.
Abdominal Pain Pain in the abdominal region may be the first sign of a disorder of the GI tract and is often an important impetus for seeking medical care. Although abdominal pain may result from GI tract disorders, it may also be the result of reproductive, genitourinary, musculoskeletal, or vascular disorders, as well as toxins or drug use. Abdominal pain is usually categorized into three types, which may manifest separately or in combination: (1) Visceral pain develops from stretching or distending an abdominal organ or from inflammation. The pain is diffuse and poorly localized and has a gnawing, burning, or cramping quality. (2) Somatic pain arises from injury to the abdominal wall, the parietal peritoneum, the root of the mesentery, or the diaphragm. In contrast to visceral pain, it is sharper, more intense, and generally well localized to the area of irritation. (3) Referred pain is felt at a location distant from the source of the pain but in the same dermatome or neurosegment.
Alterations in function of the gastrointestinal (GI) tract may have far-reaching consequences in an individual’s life. The ability to take in nutrients, convert them to usable forms for body functions, and dispose of their waste products goes beyond physiologic function and is intimately associated with social and psychological health. A person with an alteration in GI function may experience great emotional distress and be unable to participate fully in social activities, which in many societies are often centered on food consumption. Certain symptoms that may accompany GI disorders, such as chronic diarrhea and abdominal pain, may severely limit an individual’s ability to maintain employment. It has been estimated that 200,000 people miss work daily because of GI-related problems. In addition, GI diseases account for more hospital admissions in the United States than any other category of disease. Because many chronic GI conditions begin in midlife and continue into old age, their prevalence will likely increase as the U.S. population continues to age.
This chapter describes the pathophysiologic processes associated with the most common GI disorders, along with current treatment recommendations for these conditions. Because GI disorders represent an important focus of current research, knowledge about these disorders is expanding rapidly. Some of the most current evidence-based treatment options are described. A discussion of the emotional and psychological aspects of GI disturbances is provided within the context of patient integrity and well-being.
MANIFESTATIONS OF GASTROINTESTINAL TRACT DISORDERS Common manifestations of GI disorders include dysphagia, esophageal and abdominal pain, vomiting, intestinal gas, and alterations in bowel patterns.
Dysphagia Dysphagia is a subjective difficulty in swallowing (Fig. 36.1). It may include the inability to initiate swallowing or the sensation that the swallowed solids or liquids “stick” in the esophagus. In certain disorders, odynophagia, or pain with swallowing, may accompany dysphagia. The physiologic mechanism of normal swallowing is described in Chapter 35.
Categories The pathophysiologic basis for dysphagia usually falls into three major categories: (1) problems in delivery of the bolus of food or fluid into the esophagus as a result of neuromuscular incoordination; (2) problems in transport of the bolus down the body of the esophagus as a result of altered esophageal peristaltic activity; and (3) problems in bolus entry into the stomach as a result of lower esophageal sphincter (LES) dysfunction or obstructing lesions.
In the first category of dysphagia, individuals have a decreased ability to accomplish the initial steps of swallowing in an orderly sequence. The normal sequence of contraction of the pharynx, closure of the epiglottis, relaxation of the upper esophageal sphincter, and initiation of peristalsis by contraction of the striated muscle in the upper portion of the esophagus is altered, or certain steps in the sequence may be absent. Persons experiencing this type of dysphagia may cough and expel the ingested food or fluids through their mouth and nose or aspirate when they attempt to swallow. With this type of swallowing dysfunction, symptoms are usually worse with the consumption of liquids than with solids.
The second type of dysphagia may be the result of any disorder, structural or neuromuscular, in which the peristaltic activity of the body of the esophagus is altered. Some conditions leading to disordered peristalsis include esophageal diverticula, or outpouchings of one or
722 UNIT X Gastrointestinal Function
Fibrosis Compression Diverticulum
Food
Esophagus
Scar tissue contracts
Tumor
Undigested food in pouch obstructs esophagus
Food Food
Congenital tracheoesophageal fistula
Food
Developmental defect— connection between esophagus and trachea
Congenital atresia
Food
Developmental defect—tube with blind ends
Neurologic damage to cranial nerves V, VII, IX, X, and XII
Achalasia
Food
Loss of peristalsis in lower esophagus
Stomach Food collects here
FIG 36.1 Causes of dysphagia. (From Gould BE: Pathophysiology for the health professions, ed 6, Philadelphia, 2018, Saunders.)
CHAPTER 36 Gastrointestinal Disorders 723
stools per week as a guideline for defining constipation. (Many textbooks suggest that everyone should have at least one bowel movement no longer than 72 hours apart.) Dietary factors, particularly a diet low in fiber, have been shown to contribute to constipation. The presence of cellulose, the carbohydrate component of dietary fiber that is indigestible in the human intestine, may be effective in promoting regular peristaltic movement in the GI tract by forming bulk within the intestinal lumen to stimulate propulsion. Because exercise stimulates intestinal peristalsis, a lack of exercise has been implicated in the development of constipation. In elderly persons the slowed rate of peristalsis that occurs with the aging process coupled with a decreased level of physical activity may promote chronic constipation. These factors may eventually lead to fecal impaction, a condition in which a firm, immovable mass of stool obstructs the lower GI tract. Constipation may also be the result of pathologic conditions, including processes that alter the motility of the GI tract (such as intestinal obstruction) or processes that alter the integrity of the GI tract wall (such as diverticulitis).
Diarrhea Diarrhea is defined as an increase in the frequency and fluidity of bowel movements and is often a primary sign of GI tract disorders. Although stool weight in excess of 200 g in 24 hours is an easily obtain- able, objective definition of diarrhea, most persons consider increased liquidity as the primary determinant. Diarrhea may occur as an acute or chronic condition. Acute diarrhea may be the result of an acute infection, emotional stress, or leakage of liquid stool around impacted feces. Chronic diarrhea is usually defined as symptoms lasting longer than 4 weeks and may be the result of a chronic GI tract infection (often associated with immune system compromise), alterations in the motility or integrity of the GI tract, malabsorption disorders, or certain endocrine disorders. Diarrhea that occurs on an episodic basis may be related to a food allergy or may be due to the ingestion of irritants to the GI tract, such as caffeine. Diarrhea in children frequently results from infection, although malabsorption disorders, anatomic defects, and allergy issues can also be causative factors.
Pathophysiologic mechanisms. Four major pathophysiologic mechanisms have been identified in the development of diarrhea: (1) In osmotic diarrhea, increased amounts of poorly absorbable, osmotically active solutes such as a carbohydrate or magnesium sulfate cause sodium and water influx into the bowel lumen, resulting in diarrhea. (2) In secretory diarrhea, a pathophysiologic event such as the presence of a bacterial toxin causes enhanced secretion of chloride ion and water in the small intestine by simultaneously stimulating active secretion and inhibiting resorption. Diarrhea of 1 L or more per day may result from this inappropriate secretion of fluid across the intestinal mucosa. Causes of secretory diarrhea include enterotoxins produced by such organisms as Vibrio cholerae and Staphylococcus aureus. (3) Exudative diarrhea is the result of exudation of mucus, blood, and protein from sites of active inflammation into the bowel lumen. This creates an increased osmotic load and a subsequent shift of water across the epithelium. In addition, if a large surface area of the bowel has an alteration in its integrity, intestinal absorption will be severely impaired, further compounding the diarrhea produced. Crohn disease and UC are prominent causes of exudative diarrhea. (4) Diarrhea related to motility disturbances is a result of the decreased contact time of chyme with the absorptive surfaces of the intestinal lumen. If inadequate absorption takes place in the small intestine, large amounts of fluid will be delivered to the colon and may overwhelm the absorptive capability of the colon and cause diarrhea. In addition, if the fatty acids and bile salts present in chyme have not been adequately absorbed in the small intestine, they may induce a secretory diarrhea once they reach the colon, further compounding the process of diarrhea formation. Diarrhea associated
Referred pain is usually sharp and well localized and may be felt in the skin or deeper tissues.
Abdominal pain may be acute with instantaneous onset, such as pain caused by a perforated ulcer or a ruptured internal organ. A more gradual development of abdominal pain may accompany such chronic states as diverticulitis or ulcerative colitis (UC). Abdominal pain seldom occurs as a solitary manifestation of GI disorders; it is usually accom- panied by other manifestations such as vomiting or alteration in bowel patterns to a variable degree.
Vomiting Vomiting is the forceful expulsion of gastric contents through the mouth. Vomiting is usually accompanied by a feeling of nausea and is the result of a coordinated sequence of abdominal muscle contractions and reverse esophageal peristalsis. Although vomiting is a common sign of GI disorders, it may also occur with metabolic, endocrine, vestibular (inner ear), and cardiac disorders, as well as infection and fluid and electrolyte imbalances. It is also associated with such nonpathologic causes such as pharmacologic agents, surgery, and the first trimester of pregnancy.
Vomiting associated with GI disorders may be the result of alterations in the integrity of the GI tract wall, such as gastroenteritis, or alterations in the motility of the GI tract, such as intestinal obstruction. The characteristics of the vomitus and the presence of blood or fecal matter may suggest the nature of the GI disorder and the level of the GI tract at which the disorder is located.
Intestinal Gas Gas is a normal occurrence in the GI tract as the result of the swallowing of air or bacterial and digestive action on intestinal contents, diffusion from the blood, or the neutralization of acids by bicarbonate within the upper GI tract. The manifestations of excess intestinal gas include distention of the abdomen and prominent belching and flatus. These manifestations may occur singly or in combination and may stem from a variety of causes. One prominent cause of abdominal distention is failure to adequately digest a particular nutrient, such as the carbohydrate lactose. In the absence of adequate lactase (the digestive enzyme that breaks down lactose into glucose and galactose in the intestine), lactose undergoes bacterial fermentation, which results in gas production in the intestinal lumen. In some individuals, abdominal distention from excess gas may result from a defect in intestinal motility in which the intestinal contents are not propelled in a regular fashion, rather than from the production of too much gas. Belching is a normal phenomenon caused by the eructation of swallowed air, but may also be the result of a motility disorder or gastric outlet obstruction. Excessive flatus has causes similar to those of abdominal distention. Most commonly, it is the result of the action of bacteria on nutritional substrates that are particularly gas producing, such as certain vegetables and legumes. Some individuals are particularly sensitive to the flatulent effects of beans.
Alterations in Bowel Patterns Because there is a wide variation in bowel patterns in individuals, both constipation and diarrhea are difficult to define with precision. In addition, cultural and family socialization may play a role in the way in which an individual perceives bowel patterns. Alterations in bowel patterns may be the result of a change in GI tract motility or may be a component of a functional GI disorder such as irritable bowel syndrome (IBS).
Constipation Constipation may be defined as small, infrequent, or difficult bowel movements. Authorities have agreed on a norm of fewer than three
724 UNIT X Gastrointestinal Function
along with fever and pharyngitis. Vesicles may erupt on any part of the oral mucosa, particularly the tongue, gums, and cheeks. They form on an erythematous base, eventually rupture, and leave a painful ulcer. Once HSV is acquired, it remains latent in the dorsal ganglia of the spinal cord and may reactivate spontaneously or be triggered by physical or emotional stressors.
Treatment. The pharmacologic therapy used for stomatitis depends on its cause. The antiviral drugs acyclovir, famciclovir, and valacyclovir have been approved for treating acute herpetic stomatitis. Stomatitis due to autoimmune conditions such as pemphigus or Behçet syndrome may respond to topical or systemic steroids or other immunomodulating agents. Unfortunately, in a significant number of cases stomatitis is idiopathic or not amenable to specific therapy (e.g., stomatitis attributable to chemotherapy). In all types of stomatitis, measures designed to provide adequate oral hygiene and increase comfort in the oral cavity will be helpful in preventing decreased nutritional intake during the period of inflammation and assist in promoting the healing process. Topical mucosal barriers are often of benefit—one popular newer treatment is Gelclair, a bioadherent oral gel containing maltodextrin, polyvinylpyr- rolidone, and sodium hyaluronate. Coating agents with topical steroids (e.g., triamcinolone [Kenalog] in Orabase) are also useful, whereas pentoxifylline, colchicine, dapsone, and thalidomide have been used for recalcitrant cases of idiopathic stomatitis.
ESOPHAGEAL DISORDERS Gastroesophageal Reflux Disease Gastroesophageal reflux disease (GERD) is the backflow of gastric contents into the esophagus through the LES. GERD may or may not be symptomatic.
Pathogenesis. GERD is a function of a multifactorial process. Any condition or agent that alters the closure strength and efficacy of the LES or increases intraabdominal pressure may predispose an individual to GERD. For example, the closure strength of the LES may be adversely affected by the intake of fatty foods, caffeine, and alcohol; cigarette smoking; sleep position; or obesity. In addition, pharmacologic agents such as progesterone-containing medications (e.g., birth control pills), narcotics, benzodiazepines, calcium channel blockers, and theophylline may decrease the pressure of the LES. Pregnancy increases the risk of reflux both by increasing intraabdominal pressure and by the effect of hormones on LES muscle tone. Certain anatomic features, especially hiatal hernia, have been associated with GERD. The extent and severity of damage to the esophagus from GERD reflect the frequency and duration of exposure to refluxed material, as well as the volume and acidity of the gastric juices being refluxed. The role of Helicobacter pylori, a cause of gastric and duodenal ulceration, in GERD is poorly understood and controversial. In fact, eradication of H. pylori for treatment of peptic ulcer disease (PUD) may increase reflux symptoms by unmasking hidden esophagitis.
Clinical manifestations. Most GERD symptoms are attributed to reflux esophagitis, which is esophageal inflammation caused by the highly acidic refluxed material. The most common manifestations of this condition are heartburn, regurgitation, chest pain, and dysphagia. Complications of persistent GERD include esophageal strictures; Barrett esophagus (see Complications section); and pulmonary symptoms related to reflux esophagitis, such as cough, asthma, and laryngitis.
Treatment. Appropriate therapy is directed to increasing LES pres- sure, enhancing esophageal clearance, improving gastric emptying, and suppressing gastric acidity. Dietary and behavioral changes, such as avoiding tobacco and aggravating food and drink, are advised for all patients, whereas over-the-counter antacids and histamine (H2)-blocking medications may be effective for occasional GERD. Proton pump
DISORDERS OF THE MOUTH AND ESOPHAGUS The mouth and the esophagus are the portals of entry for nutrients into the GI tract. Impairment in the proper functioning of these structures may have a profound effect on the ability of the individual to ingest adequate nutrients and begin the initial steps of the digestive process. Although disorders of the mouth and esophagus may not be acute, life-threatening emergencies, they may have severe long-term conse- quences for the well-being of the individual experiencing them.
ORAL INFECTIONS Stomatitis
Etiology. Stomatitis is defined as an ulcerative inflammation of the oral mucosa that may involve the buccal mucosa, lips, and palate. Among its many causes are pathogenic organisms, including bacteria and viruses; mechanical trauma; exposure to such irritants as alcohol, tobacco, and other chemical substances; certain medications, particularly chemo- therapeutic agents; radiation therapy; autoimmune disorders; and nutritional deficiencies, especially vitamin deficiencies. Stomatitis is a central manifestation of several autoimmune disorders, including Reiter syndrome and Behçet syndrome. Stomatitis may also be idiopathic, that is, without identifiable cause.
One of the most commonly encountered types of stomatitis is acute herpetic gingivostomatitis, called more colloquially cold sores. The HSV has an affinity for the skin, particularly mucous membranes, and nervous system. This type of stomatitis is commonly acquired by children between the ages of 1 and 3 years, although it can occur at any age. In primary infection, a brief period of prodromal tingling and itching may occur,
KEY POINTS • Dysphagia is the perception of difficulty in swallowing. Dysphagia caused by
neuromuscular disorders may be accompanied by coughing and aspiration, particularly with liquid ingestion. Altered esophageal peristalsis is associated with the sensation that food has become “stuck” behind the sternum. Lower esophageal sphincter (LES) dysfunction may be manifested as substernal pain.
• Pain is a common symptom of GI disorders. A heartburn type of pain is associated with esophageal reflux. Chest pain similar to anginal pain may result from esophageal distention and obstruction. Abdominal pain may be visceral (diffuse, poorly localized), somatic (sharp, well localized), or referred (at a distance from the source but in the same dermatome).
• Nausea and vomiting are manifestations of many GI and other disorders. Alterations in bowel motility or integrity are causative factors. Excess gas may result from altered motility or lack of digestive enzymes. Gas is generated by swallowed air and bacterial action on nutritional substrates.
• Constipation is defined as small, infrequent (fewer than three per week), or difficult bowel movements. Lack of exercise, lack of dietary fiber, slowed peristalsis, and pathologic conditions that alter motility (e.g., obstruction) may produce constipation.
• Diarrhea is defined as an increased frequency and fluidity of bowel movements. Acute infection, stress, fecal impaction, malabsorption disorders, and ingestion of bowel irritants may produce diarrhea. Osmotic diarrhea is due to increased amounts of poorly absorbed solutes in the intestine. Secretory diarrhea is usually due to toxins that stimulate intestinal fluid secretion and impair absorption. Exudative diarrhea (mucus, blood, protein) results from inflam- matory processes. A decreased transit time in the small intestine results in diarrhea because the absorptive capacity of the large intestine is exceeded.
with postgastrectomy dumping syndrome and IBS are examples of this type of diarrhea.
CHAPTER 36 Gastrointestinal Disorders 725
the mucosal surface of the stomach as it slides through the diaphragmatic opening, so-called Cameron ulcers. This is a fairly uncommon cause of chronic upper GI blood loss. A potentially life-threatening situation can develop if a large portion of the stomach becomes caught above the diaphragm and is incarcerated, although this is extremely rare. Medical therapy for hiatal hernia is the same as that for GERD, detailed previously. Indications for surgery include acute incarceration or intractable reflux.
Mallory–Weiss Syndrome Etiology. Mallory–Weiss syndrome is bleeding caused by a tear in
the mucosa or submucosa of the cardia or lower portion of the esophagus. The tear is usually longitudinal, caused primarily by forceful or prolonged vomiting during which the upper esophageal sphincter fails to relax. Approximately 75% of individuals with Mallory–Weiss syndrome are men with a history of excessive ingestion of alcohol or salicylates. Other factors and conditions that may contribute to the development of esophageal tearing in Mallory–Weiss syndrome are coughing, straining during bowel movements, trauma, esophagitis, gastritis, and use of polyethylene glycol as a preparation for colonoscopy. Hiatal hernia is an important predisposing condition.
Clinical manifestations and treatment. Manifestations of Mallory– Weiss syndrome include vomiting blood and passing large amounts of blood per rectum after an episode of forceful vomiting. Epigastric or back pain may also be present. Bleeding may range in severity from mild to massive. It is often profuse when the tear is near the cardia of the stomach and may proceed to fatal shock in this circumstance. Identification is made by endoscopic examination during an episode of acute upper GI bleeding. The majority of patients require at least one blood transfusion, but in most cases bleeding stops spontaneously. Control of active bleeding may be achieved through endoscopic multipolar electric coagulation or similar techniques, epinephrine injection, or interventional radiologic procedures (e.g., vasopressin infusion, Gelfoam embolization). In selected cases, surgical intervention may be necessary.
Esophageal Varices Esophageal varices represent a complication of portal hypertension, which in Western society is generally the result of cirrhosis attributable to alcoholism or viral hepatitis. In developing tropical countries, chronic infection with the Schistosoma species of liver flukes is a major cause of portal hypertension, along with cirrhosis attributable to chronic hepatitis B infection. Varices will affect more than half of cirrhotic patients, and approximately 30% of these patients experience an episode of variceal hemorrhage within 2 years of the diagnosis of varices. The diagnosis and management of varices are discussed in detail in Chapter 38.
inhibitors (PPIs) are the mainstays of treatment for chronic GERD and have proven very successful in halting and even reversing the changes of chronic GERD. Long-term use of PPIs can lead to malabsorption of vitamin B12, iron, and magnesium, as well as calcium. Studies show a 30% increase in the incidence of hip fracture due to osteoporosis in patients on long-term PPIs.
When reflux esophagitis has progressed in severity, tissue damage, including ulceration, fibrotic scarring, and strictures, may be present in the distal third of the esophagus. Upper GI endoscopy is indicated for patients with ongoing symptoms, and some patients with stricture may require endoscopic dilatation. Surgical intervention, such as thoracoscopic Nissan fundoplication, may be helpful for intractable GERD.
Complications. Barrett esophagus is a serious complication of chronic GERD in which the normal squamous epithelium of the distal esophagus, exposed chronically to acid reflux, is replaced by columnar tissue. It carries a significant risk for esophageal cancer, and patients with Barrett esophagus should undergo regular endoscopic screening for cancer, along with pharmacologic control of their reflux. For patients with documented dysplastic changes, endoscopic eradication therapy (usually with radiofrequency ablation) is a relatively low-morbidity option for treatment.
Hiatal Hernia A hiatal hernia is a defect in the diaphragm that allows a portion of the stomach to pass through the diaphragmatic opening into the thorax. Two types of hiatal hernia are commonly recognized: (1) a sliding hernia, in which both a portion of the stomach and the gastroesophageal junction slip up into the thorax so that the gastroesophageal junction is above the diaphragmatic opening; and (2) a paraesophageal hernia, in which a part of the greater curvature of the stomach rolls through the dia- phragmatic defect (Fig. 36.2). “Mixed” hiatal hernias with features of both of these types may also occur. Sliding hernias are 3 to 10 times more common than paraesophageal and mixed hernias combined. The incidence of hiatal hernia increases with age and occurs more often in women than in men.
Etiology. Although the cause of the anatomic deformity leading to hiatal hernia is not well understood, certain conditions seem to predispose to loosening of the muscular band around the esophageal and dia- phragmatic junction. Conditions in which intraabdominal pressure increases, such as ascites, pregnancy, obesity, and chronic straining or coughing, have been associated with the development of hiatal hernia.
Clinical manifestations and treatment. Individuals with hiatal hernia are predisposed to GERD and may experience symptoms such as heartburn, chest pain, and dysphagia. Ulcerations can develop along
Esophagus Hiatus
Part of fundus above diaphragm
Sac and peritoneum in mediastinum
Stomach
Diaphragm
Normal stomach Sliding hiatal hernia Paraesophageal hernia
FIG 36.2 Types of hiatal hernia. (From Gould BE: Pathophysiology for the health professions, ed 6, Philadelphia, 2018, Saunders.)
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pylori infection among older individuals. Consequences of H. pylori gastritis include PUD (discussed in a later section), atrophic gastritis, gastric adenocarcinoma, and mucosa-associated lymphoid tissue lymphoma. The diagnosis and management of H. pylori infection will be discussed later.
Clinical manifestations. Although gastritis may be asymptomatic, manifestations of acute gastritis include anorexia, nausea, vomiting, and postprandial discomfort. Occasionally, hematemesis may occur in response to damage to the gastric epithelial mucosa. These manifestations usually disappear when the causative agent is removed and the gastric epithelium undergoes a process of renewal after sloughing off the layer of damaged cells.
Gastroenteritis Etiology. Gastroenteritis is an inflammation of the stomach and
small intestine, and may occur on an acute or chronic basis. Chronic gastroenteritis is usually the result of a primary inflammatory disorder, such as Crohn disease, and is discussed in a later section. Acute gastro- enteritis commonly occurs as the result of direct infection of the GI tract lining by a pathogenic organism such as the Norwalk virus; it can also occur from ingestion of preformed bacterial toxins (e.g., S. aureus, Bacillus cereus) or bacteria that produce toxins (e.g., Clostridium perfringens). An imbalance in the normal bacterial flora of the GI tract, such as the introduction of an unusual bacterial strain during travel, can trigger GI symptoms as well.
Clinical manifestations and treatment. Acute gastroenteritis in adults is usually a self-limited disease with diarrhea, abdominal discomfort and pain, nausea, and vomiting. An elevated temperature and malaise may also be present. The manifestations vary according to the type of causative pathologic organism and the region of the GI tract affected. Many pathogenic organisms induce a severe secretory type of diarrhea (see the earlier discussion on the pathophysiology of secretory diarrhea). In children and the elderly, fluid losses from diarrhea and vomiting can have serious consequences and could prove life threatening, par- ticularly in underdeveloped countries. Supportive treatment designed to provide fluid and electrolyte replacement is recommended for patients experiencing severe acute gastroenteritis.
Peptic Ulcer Disease The term peptic ulcer disease (PUD) refers to disorders of the upper GI tract caused by the action of hydrochloric acid and pepsin. These disorders are characterized by injury to the mucosa of the esophagus, stomach, or duodenum and may range from a slight irritation to severe ulceration (Figs. 36.3 and 36.4). The GI mucosa is continuously exposed to caustic substances, and mucosal health depends on a number of protective mechanisms. The presence of an intact gastric mucosal barrier and the ability of the mucosa to renew its epithelium serve to protect it against injury. On the other hand, the presence of hydrochloric acid, which potentiates the actions of pepsin and other injurious substances such as aspirin and NSAIDs, will promote injury to the mucosa. PUD thus is the result of an excess of factors that tend to injure the mucosa relative to factors that protect it.
Previously, PUD was attributed to a stressful lifestyle and an irritating diet, and treatment revolved around removing spices from the diet (the much-despised “bland diet”) and promoting a more relaxing lifestyle. In recent years, however, research has suggested that the organism H. pylori is the major precipitant of PUD, along with NSAIDs. A brief review of the current understanding of PUD pathogenesis will form the basis for further discussion of the manifestations and management of this disease.
Etiology and pathogenesis. Most peptic ulcers are found in the stomach and duodenum. Although the precise mechanisms of ulcer
ALTERATIONS IN THE INTEGRITY OF THE GASTROINTESTINAL TRACT WALL
Alterations in the integrity of the GI tract may occur at any location along the approximately 30 feet of its length, resulting from infection, an inflammatory process, or weakness of the intestinal wall. Such alterations may present as an acute, life-threatening situation or as a chronic, disabling condition. When the integrity of the GI tract wall is compromised, the ability to perform digestive and absorptive functions may also be compromised because the surface area or motility (or both) is altered.
INFLAMMATION OF THE STOMACH AND INTESTINES Gastritis
Etiology. Gastritis is defined as inflammation of the stomach lining. Acute gastritis may be triggered by ingestion of toxins such as alcohol, aspirin, or other irritating substances or may occur as a consequence of viral, bacterial, or autoimmune illnesses. (Some experts prefer use of the term “gastropathy” for toxic gastric inflammation, with “gastritis” reserved for gastric inflammation due to infection or autoimmune disorders.) In Western countries, overuse of nonsteroidal antiinflam- matory drugs (NSAIDs) and overindulgence in alcohol and tobacco are preeminent causes of acute gastritis.
Pathogenesis. Chronic gastritis is currently the focus of extensive research. The factors promoting the condition have always been poorly understood. However, in 1983 identification of the bacterium H. pylori proved to be a landmark event. Since that time, H. pylori has generated worldwide attention for its role in the promotion of chronic gastritis, PUD, and gastric carcinoma and lymphoma. Circumstantial evidence suggests that the mode of transmission of H. pylori is primarily person to person. Some studies suggest a fecal-oral route, with the possibility of a reservoir in water sources.
It is now known that H. pylori causes chronic, superficial gastritis in virtually all infected persons. Once established in the gastric mucosa, H. pylori establishes a destructive pattern of persistent inflammation. This persistent inflammation may resolve spontaneously, with clearance of the organism over time, as reflected in a decreased prevalence of H.
KEY POINTS • Stomatitis is inflammation of the oral mucosa. It may result from pathogenic
organisms, trauma, chemical irritants, chemotherapy, radiation therapy, or nutritional deficiencies.
• Common esophageal disorders are gastroesophageal reflux disease (GERD) with esophagitis, hiatal hernia, and bleeding. Reflux esophagitis is manifested as heartburn, chest pain, and dysphagia and may be precipitated by gastric overdistention or poor lower esophageal sphincter (LES) tone. Fatty foods, cigarettes, morphine, theophylline, and progesterone may inhibit LES tone. Chronic GERD may cause Barrett esophagus.
• Hiatal hernias may be sliding or rolling (paraesophageal). Conditions that increase intraabdominal pressure predispose to the development of hiatal hernia. Esophageal reflux often accompanies hiatal hernia, and the manifesta- tions are similar: heartburn, chest pain, and dysphagia.
• Bleeding from the esophagus may pose a life-threatening situation. Mallory– Weiss syndrome is bleeding caused by tears in the lower end of the esophagus or upper part of the stomach. Alcohol and salicylate ingestion appear to be factors. Esophageal bleeding may also be precipitated by coughing, straining, or esophagitis. Rupture of esophageal varices is a dreaded complication of cirrhosis with portal hypertension and carries a high mortality.
CHAPTER 36 Gastrointestinal Disorders 727
formation remain not well understood, the process involves the interplay of mucosal defense mechanisms, pepsin, and acid. The primary event in ulcer formation is thought to be a breakdown in the normally protec- tive epithelial lining of the stomach (Fig. 36.5). The barrier of the epithelial layer and the slightly alkaline layer of mucus may be interrupted by the chronic presence of such injurious substances as aspirin, NSAIDs, alcohol, and bile acids, which may be regurgitated from the duodenum. These substances strip away the surface mucus and cause degeneration of the epithelial cell membranes, with diffusion of hydrochloric acid into the gastric epithelial wall.
Inappropriate excess secretion of acid is a major factor in the development of PUD in the duodenum (Fig. 36.6). Studies have docu- mented that the basal activity of the vagus nerve is increased in persons with PUD of the duodenum, particularly during a fasting state and at night. Vagal activity stimulates the pyloric antrum cells to release gastrin, which travels via the bloodstream and acts on the gastric parietal cells to release hydrochloric acid (HCl). The result is an inappropriately high level of HCl in the duodenum.
H. pylori has a key role in promoting both gastric and duodenal ulcer formation (Fig. 36.7). Up to 75% of persons with duodenal ulcers and 60% of persons with gastric ulcers have H. pylori infection. H. pylori thrives in acidic conditions; infection renders a person with PUD subject to a slow rate of ulcer healing and a high rate of recurrence, and clearance of H. pylori promotes ulcer healing. Although the precise
FIG 36.3 Radiograph of an ulcer in the lesser curvature of the stomach (arrow). (From Laufer I: Double contrast gastrointestinal radiology with endoscopic correlation, Philadelphia, 1979, Saunders.)
A B
*
DC
FIG 36.4 Endoscopic stigmata of recent peptic ulcer bleeding. A, Active bleeding with spurting. B, Visible vessel (arrow) with adjacent clot. C, Adherent clot. D, Slight oozing of blood after washing in the center of the ulcer, without clot or a visible vessel. (From Feldman M, Friedman LS, Brandt LJ, editors: Sleisenger and Fordtran’s gastrointestinal and liver disease, 10e, Philadelphia, 2016, Saunders.)
728 UNIT X Gastrointestinal Function
specific enough to allow for a diagnosis without testing, and malignant conditions can mimic benign PUD.
Diagnosis can be accomplished by upper GI barium contrast radiography or by endoscopy. The finding of a duodenal ulcer indicates a high probability of H. pylori and a low probability of malignancy, and the condition can be managed on this basis. All gastric ulcers should be visualized with endoscopy and biopsied to rule out malignancy and confirm the presence of H. pylori. Testing for H. pylori in patients with uncomplicated duodenal ulcers, given the very high pretest probability, is not usually recommended. Most authorities do recommend testing for this organism in the case of gastric ulcers. Noninvasive testing modalities include the urease breath test, fecal antigen testing, and serologic analysis; the first two are generally preferred, as serologic testing can be misleading in persons with a low pretest prevalence. Invasive endoscopic tests include the tissue urease test, histologic analysis, and bacterial culture.
Treatment. The major treatment objectives for PUD are to encourage healing of the injured mucosa by reducing gastric acidity and to prevent recurrence. PPIs are generally given to block acid secretion. Agents such as sucralfate form a protective coating over the injured mucosa and may be useful under some circumstances. Eradication of H. pylori infection with antibiotics is recommended for patients in whom this organism is found, and treatment has led to a marked reduction in the recurrence rate of PUD to less than 10%.
In addition to these pharmacologic strategies, such measures as cessation of smoking, avoidance of aspirin and other NSAIDs, and reduction of stress are all part of a comprehensive program to manage PUD. At the present time, no conclusive research has demonstrated that any specific diet has a therapeutic effect. Susceptible people are generally advised to avoid foods that seem to exacerbate symptoms, including caffeinated beverages and alcohol.
INFLAMMATORY BOWEL DISEASE The term inflammatory bowel disease (IBD) refers to the two separate disease entities of UC and Crohn disease. IBD is generally a life-altering chronic illness with serious consequences for people and their families who must cope with it, particularly when it occurs early in life. Both UC and Crohn disease have onsets most commonly in childhood or young adulthood, with a possible second peak between age 50 and 80 years. There is a slight female predominance in the incidence of Crohn disease and a higher incidence of UC among males.
IBD is typically characterized by exacerbations and remissions. Its causes are poorly understood, but recent research has focused on genetic, environmental, and immunologic factors. About 10% to 25% of IBD patients have a first-degree relative with either UC or Crohn disease. Both IBD illnesses are more common in individuals with Jewish ancestry and in whites compared with black and Hispanic populations.
mechanisms for the development of PUD remain complex and poorly understood, H. pylori virulence is associated with several factors, including the presence of unique, lengthy DNA sequences known as pathogenicity islands, particularly cytotoxin-associated gene A (CagA). PUD patients have lower bicarbonate levels in the duodenum as a consequence of the effect of H. pylori on the duodenal mucosa.
Other cofactors in the development of PUD have been investigated. Stress has long been considered a key factor in PUD. Glucocorticoid release in response to stress may have a role in promoting excess acid production and inhibiting gastric mucosal defenses. Smoking is also an important environmental risk factor, as identified by epidemiologic studies showing that PUD is twice as likely to develop in smokers as in nonsmokers. In addition, smoking is related to poor ulcer healing and high rates of recurrence. Heredity is thought to have a role in the development of PUD. Certain patterns of gastrin release and pepsin secretion have been identified as genetic traits in families with an increased incidence of PUD. Somewhat surprisingly, given the historical context, there is little evidence of a pathogenic role for alcohol, spicy foods, and caffeine.
Clinical manifestations and diagnoses. Manifestations of PUD include epigastric burning pain that is usually relieved by the intake of food (especially dairy products) or antacids. The pain of gastric ulcers typically occurs on an empty stomach, but may present soon after a meal. Duodenal ulcer pain classically occurs 2 to 3 hours after a meal and is relieved by further food ingestion. Other manifestations that may occur in individuals with PUD include nausea, abdominal upset (dyspepsia), and chest discomfort. A significant proportion of ulcers are asymptomatic, and life-threatening complications, such as GI bleeding, may occur in patients with no warning. The symptoms of PUD are not
Erosion
Mucosa
Submucosa
Tunica muscularis
Serosa
Muscularis mucosa
True ulcer Penetrating ulcer
FIG 36.5 Lesions caused by peptic ulcer disease. (From Monahan FD, Sands JK, Neighbors M, Marek JF, Green-Nigro CJ: Phipps medical-surgical nursing: health and illness perspectives, ed 8, St Louis, 2007, Mosby.)
FIG 36.6 Duodenal bulbar ulcer. (From Sleisenger MH, Fordtran JS, editors: Gastrointestinal disease, ed 5, Philadelphia, 1993, Saunders.)
CHAPTER 36 Gastrointestinal Disorders 729
extent around the colon, although there are several exceptions to this general rule. The annual incidence in North America has been estimated between 2 and 14 per 100,000 persons.
Etiology and clinical manifestations. UC begins as an inflammation at the base of the crypts of Lieberkühn. Damage to the crypt epithelium results, with eventual invasion of leukocytes and the formation of abscesses in the crypts. When multiple abscesses form in close proximity and begin to coalesce, large areas of ulcerations develop in the epithelium. Concurrent with this destructive process are attempts at repair of damaged tissue, along with the development of fragile and highly vascularized granulation tissue. The manifestations of UC are the result of these processes and include abdominal pain, diarrhea, and rectal bleeding. Bleeding occurs as a result of mucosal destruction and ulceration, as well as damage to newly developed granulation tissue. Diarrhea is a result of the mucosal destruction in the colon, which leads to a decreased ability of the bowel to absorb water and sodium and thus to an increased volume of fluid in the intestinal contents.
The progression of UC is highly variable. In some individuals it may have very mild manifestations; in others it may rapidly progress to a life-threatening disorder. Approximately 5% to 10% of persons with UC have only one attack, with no further recurrence. However, 65% to 75% of those with UC experience an intermittent series of exacerbations and remissions. Rarely, patients with UC will manifest toxic megacolon, a life-threatening condition in which the colon becomes massively enlarged. This condition requires urgent treatment and may necessitate emergency colectomy.
A number of conditions in other organ systems complicate UC, the most devastating of which is the relentlessly progressive liver condi- tion primary sclerosing cholangitis (PSC), which occurs in 3% of UC patients. An additional concern is increased risk for the development of colon cancer in persons who have had UC for more than 7 to 10 years. Authorities recommend monitoring these individuals carefully with regular endoscopy and biopsy. The presence of high-grade dysplasia should prompt consideration of prophylactic complete colectomy. Recent surgical advances, such as the ileoanal pouch, have allowed colectomy patients to avoid colostomy and have close to normal bowel function.
Treatment. Management of UC is complex and ever evolving. Corticosteroids have long been the mainstay of treatment of acute
Environmental factors have also been investigated. Cigarette smoking has been shown to increase the risk for Crohn disease, whereas it may be protective of the development of UC. Appendectomy may protect against the development of UC, but not Crohn disease. Some features of a “Western” style diet, with highly processed foods high in carbo- hydrates, are associated with an increased risk of developing Crohn disease and possibly UC. Obesity has been shown to increase disease activity in patients with Crohn disease. An important immunologic basis for IBD is supported by the fact that it frequently accompanies other autoimmune conditions such as thyroid disease and pernicious anemia.
Ulcerative Colitis Ulcerative colitis (Fig. 36.8) is an inflammatory disease of the mucosa of the rectum and colon. Approximately one fifth of patients have total colitis, one-third have subtotal disease extending beyond the sigmoid, and one-half have disease limited to the rectum and rectosigmoid. The changes are usually most severe in the rectum and extend for a variable
FIG 36.8 Ulcerative colitis. (From Sleisenger MH, Fordtran JS, editors: Gastrointestinal disease, ed 5, Philadelphia, 1993, Saunders.)
A B C FIG 36.7 Penetration of the mucosal layer by Helicobacter pylori. A, After penetration, H. pylori forms clusters near membranes of surface epithelial cells. B, Some attach to the cell membrane. C, Others lodge between the epithelial cells.
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right lower quadrant, reflecting significant ileocecal involvement. The stool may be bloody, although not usually to the extent of that seen with UC. The cause of Crohn disease is unknown at the present time. There are fascinating parallels with UC as well as unexpected distinctions. For instance, smoking has been shown to protect against UC but to increase the risk of Crohn disease. The annual incidence of Crohn disease in North America has been estimated from 3 to 15 per 100,000, and up to 5% of people with Crohn disease have one or more affected relatives.
Etiology and pathogenesis. Crohn disease appears to result primarily from a process in which the lymphoid and lymphatic structures of the GI tract become blocked. Subsequent engorgement and inflammation of surrounding tissue lead to the development of deep linear ulcers in the bowel wall. Eventually, all layers of the GI tract wall may become involved, and the portion of intestine that is affected may become thickened by fibrous scar tissue. Deep fissures may develop into fistulas, which may extend into adjacent tissue of other organs such as the bladder wall or even the skin. One of the cardinal features of Crohn disease on histopathologic analysis is granulomas, which is generally diagnostic of this disorder.
Clinical manifestations. The manifestations of Crohn disease are the result of the pathologic changes in which the bowel becomes incapable of adequately absorbing the intestinal contents. Complications such as perianal fissures, fistulas, and abscesses are common in Crohn disease
exacerbations, but side effects limit their long-term use. Patients with signs of systemic toxicity, especially those with impending or full-blown toxic megacolon, should receive broad-spectrum antibiotics, including an agent effective against anaerobic bacteria (e.g., metronidazole). Important categories of disease-modifying agents include the salicylate analogs, and immunomodulating agents such as azathioprine and mercaptopurine. Intravenous followed by oral cyclosporine is a relatively recent treatment advance for steroid-refractive UC that may help patients avoid colectomy. Antitumor necrosis factor (anti-TNF) therapy with infliximab and adalimumab has also been shown to be effective in patients with moderate to severe UC, though there are important cost and side effect issues.
Crohn Disease Crohn disease, also called regional enteritis or granulomatous colitis, is an inflammation of the GI tract that extends through all layers of the intestinal wall (Fig. 36.9). It most commonly affects the proximal portion of the colon and, less often, the terminal ileum. It may affect multiple portions of the colon, with intervening normal areas left between the affected regions. The manifestations of Crohn disease differ in some respects from those of UC, although some overlap may occur and distinction may be difficult, even after pathologic examination. In Crohn disease, abdominal pain is often constant and in the right lower quadrant of the abdomen. A palpable abdominal mass may be present in the
C
A
D
B
FIG 36.9 Endoscopic appearance of Crohn disease. A wide variety of findings may be visualized on endoscopy, in part depending on the duration and severity of the inflammation. A, Typical aphthous ulcers (arrows), consisting of a central white depression surrounded by a slightly elevated, erythematous rim only a few millimeters in diameter. B, Findings more typical of advanced disease, with erythema, edema, and a cobblestoned appear- ance. C, Stellate ulcers (arrows) in the terminal ileum. D, Discrete ulcers (arrows) with normal intervening mucosa, typical of the patchy inflammation seen in Crohn disease. (From Feldman M, Friedman LS, Brandt LJ, editors: Sleisenger and Fordtran’s gastrointestinal and liver disease, 10e, Philadelphia, 2016, Saunders.)
CHAPTER 36 Gastrointestinal Disorders 731
and treat this condition, and in particular vaccination for prevention and treatment with lyophilized fecal flora look promising.
Necrotizing Enterocolitis Etiology. Necrotizing enterocolitis (NEC) is a disorder occurring
most often in premature infants (less than 34 weeks’ gestation) and infants with low birth weight (less than 5 lb or 2.25 kg). This disorder is characterized by diffuse or patchy intestinal necrosis accompanied by sepsis.
Clinical manifestations and treatment. Early manifestations include a distended abdomen and stomach. The major complication of NEC is intestinal perforation, which may necessitate surgery. Various theories regarding the etiologic progression of NEC include perinatal oxygen deficit with insufficient blood flow to the viscera and the use of hypertonic feeding formulas in newborn infants. More than 90% of infants with NEC have a history of milk feeding as well. A special form of NEC called typhlitis may afflict adult cancer patients with neutropenia and carries a grave prognosis. Management of neonatal and adult forms of NEC includes careful supportive care, including fluid management and administration of broad-spectrum antibiotics. Early surgical consultation is essential for this syndrome, and surgery is necessary for patients with evidence of significant ischemia or perforation.
Appendicitis Etiology. The most common cause of emergency surgery on the
abdomen, appendicitis is an inflammation of the vermiform appendix. The classic hypothesis suggests that obstruction of the appendiceal lumen by a fecalith causes most cases of appendiceal inflammation. Less commonly, lymphoid hyperplasia or parasitic worms may lead to appendicitis. In an unknown number of cases appendiceal inflammation may be self-limited and may remit (e.g., with relief of the obstruction). If left unchecked, inflammation generally leads to necrosis of the appendix, with subsequent abscess formation and life-threatening peritonitis. Rarely appendicitis may occur in a subacute or stuttering fashion over several days or weeks.
Clinical manifestations and treatment. Appendicitis is two times more likely to occur in individuals younger than age 45 compared with those 45 years and older, and it affects men more often than women. The peak incidence is between ages 10 and 19 years. The earliest mani- festation of appendicitis is generalized periumbilical pain accompanied by nausea and, occasionally, diarrhea. The pain is often described as “migrating” or localizing to the lower right abdomen (McBurney point) because of distention of the serosa from inflammatory edema, at which time fever usually manifests. Experienced surgeons generally operate in suspicious cases. Less typical cases should be assessed with computed tomography (CT) or with ultrasound if the patient is a child or pregnant woman or if CT is not readily available. Such an approach yields a relatively low false-positive surgical rate of around 5%. Surgical removal of the appendix, either through an open procedure or laparoscopically, is the treatment of choice for appendicitis. Administration of antibiotics with replacement of fluid and electrolytes is usually necessary. Localized abscesses secondary to perforation may be managed with percutaneous tube drainage and antibiotics alone if there are no signs of diffuse peritonitis. Delayed appendectomy is usually carried out several weeks later, after the initial inflammation has subsided.
Diverticular Disease Etiology. The term diverticular disease generally refers to diverticu-
losis, or the presence of diverticula in the colon. Diverticula are acquired herniations of the mucosa and submucosa through the muscular coat of the colon (Fig. 36.10) that likely result from a combination of structural and functional factors. In particular, areas of weakness in the bowel
and may be the symptoms that lead individuals to seek health care. The onset and course of Crohn disease may vary a great deal, and the symptoms present during a period of exacerbation may be subtle but persistent. At the present time, it is unclear whether a significantly increased incidence of intestinal cancer occurs in persons with Crohn disease. However, when Crohn disease involves the large bowel, the risk of colorectal cancer appears to be similar to that for UC of similar extent. There is known to be an increased risk of lymphoma in patients on long-term thiopurines like azathioprine, in particular, in combination with anti-TNF agents. Toxic megacolon and PSC also occur with Crohn disease, but are much less frequent than in patients with UC. Many extraintestinal manifestations occur, including spondyloarthritis and uveitis.
The diagnosis of Crohn disease is typically made on the basis of the clinical history, radiographic changes, and typical biopsy findings of granulomatous intestinal inflammation. Several immunologic tests are also available, in particular, testing for antibodies directed against nuclear cytoplasmic antigens, the yeast Saccaromyces cerevesiae, and the Omp-C antigen, but these are expensive and generally reserved for cases where the diagnosis is uncertain.
Treatment. Because the etiology of Crohn disease is unknown, therapeutic strategies are focused on alleviating and reducing inflam- mation and symptoms. Therapeutic drug categories are similar to those for UC. Prednisone or sulfasalazine is generally used as initial therapy to achieve remission. The antibiotic metronidazole is particularly useful for colonic Crohn disease. Options for the treatment of refractory patients include azathioprine, 6-mercaptopurine, methotrexate, and biological therapies.
Newer treatment options include the anti-TNF agents infliximab, adalimumab, and certolizumab and the newer antiintegrin agents natalizumab, vedolizumab and ustekinumab. All of these newer options have shown success in trials and are indicated for refractory Crohn disease. All of these agents have the significant cost and side effect issues noted earlier in the section on UC.
Despite rapid progress in treatment modalities over the last decade, there is no cure for this challenging condition.
ENTEROCOLITIS Antibiotic-Associated Colitis (Pseudomembranous Colitis)
Etiology. Antibiotic-associated colitis (AAC), also known as pseu- domembranous colitis, is an acute inflammation and necrosis of the large intestine caused by Clostridium difficile, usually affecting the mucosa but sometimes extending to other layers. Exposure to antibiotics is the major factor predisposing to the development of this disorder, and patients with cancer or who have undergone abdominal surgery are at particular risk. The disease is mediated by bacterial toxins, leading to mucosal necrosis and the characteristic pseudomembrane composed of leukocytes, mucus, fibrin, and inflammatory cells.
Clinical manifestations and treatment. Resulting manifestations include diarrhea (often bloody), abdominal pain, fever, leukocytosis, and, rarely, toxic megacolon or colonic perforation. AAC is a major cause of fever and leukocytosis (elevated white blood cell count) among hospitalized patients receiving antibiotics. Treatment involves stopping the offending antibiotic, treating ischemia and other contributing conditions if present, and using antibiotics directed against C. difficile. Important antibiotics effective against this organism include metroni- dazole, oral vancomycin, and oral fidaxomicin. Recurrences are relatively common and may necessitate retreatment. In rare cases a fecal transplant (transfer of fecal material from another healthy person to the source patient via colonoscopy, enema, or gastric tube) or colectomy may be necessary to clear the infection. Much research is underway to prevent
732 UNIT X Gastrointestinal Function
wall, especially where blood vessels enter, are subject to damage from high intraluminal pressures. Colonic diverticulosis is common in Western countries and is associated with a diet low in fiber; this lack of fiber presumably fails to provide enough bulk to dampen pressure variations in the intestine. The prevalence of diverticulosis increases with age; about 30% of the general population at 60 years of age and about 80% at 80 years will have diverticula in the colon. Most persons experience no manifestations of diverticulosis, and by itself diverticulosis is not considered a pathologic condition. However, when diverticula become inflamed, the condition is referred to as diverticulitis (see Box 36.1 for the terminology of diverticulosis).
Clinical manifestations and treatment. Inflammation of diverticula can lead to serious consequences such as intestinal obstruction and perforation with the development of abscesses in the bowel wall or peritonitis. Manifestations of diverticulitis include acute lower abdominal pain (usually left lower quadrant in location), fever, and leukocytosis. Constipation is common, but 25% of patients may have diarrhea. During an acute episode of diverticulitis, the administration of broad-spectrum antibiotics is indicated, and on occasion percutaneous or surgical drainage of an abscess may be necessary. Recurrence of diverticulitis is common. Long-term complications include colonic strictures and fistulas, which may necessitate surgery. Surgery is also recommended for patients with one or more recurrences of diverticulitis.
A B C
FIG 36.10 Endoscopic stigmata of recent colonic diverticular bleeding. A, Active bleeding (arrow). B, Adherent clot (arrow). C, Nonbleeding visible vessel (arrow). (From Feldman M, Friedman LS, Brandt LJ, editors: Sleisenger and Fordtran’s gastrointestinal and liver disease, 10e, Philadelphia, 2016, Saunders.)
Diverticulum: A single pouchlike herniation through the muscular layer of the colon
Diverticula: More than one diverticulum (Latin plural form) Diverticulosis: The presence of one or more diverticula Diverticulitis: Inflammation of one or more diverticula Diverticular disease: Complications related to the presence of diverticula
BOX 36.1 Terminology of Diverticulosis
KEY POINTS • Alterations in intestinal wall integrity are generally a result of infection,
inflammation, or weakness of the muscular layers. General symptoms include pain, bleeding, and diarrhea.
• Gastritis may be acute or chronic. Acute gastritis is generally precipitated by the ingestion of irritating substances, including alcohol and aspirin. Chronic
gastritis may lead to atrophy of the gastric mucosa and the subsequent decreased production of HCl and intrinsic factor. Acute gastroenteritis is usually due to the ingestion of pathogenic organisms or preformed bacterial toxins and is characterized by self-limited vomiting, diarrhea, and abdominal pain.
• Peptic ulcer disease (PUD) may affect the esophagus, stomach, and duodenum. Gastric ulcers are thought to be due to the breakdown of the protective mucous layer that normally prevents the diffusion of acids into gastric epithelia. Duodenal ulcers are caused by excessive acid secretion that is mediated by increased vagal activity. The organism H. pylori has been implicated in the pathogenesis of both gastric and duodenal ulcers. PUD is characterized by epigastric pain that is relieved by food or antacids. Perforation and bleeding are the major complications. Management of PUD is aimed at minimizing acid secretion and eradicating H. pylori.
• Ulcerative colitis (UC) and Crohn disease are chronic inflammatory disorders of the bowel. UC (inflammation and ulceration of the colon and rectal mucosa) is manifested as bloody diarrhea and abdominal pain. There is an increased risk for colon cancer in persons who have had UC for more than 7 to 10 years. Crohn disease generally affects the proximal portion of the colon or the terminal ileum. Involvement of all layers of the intestinal wall predisposes to fistula formation and malabsorption. Crohn disease may result from blockage and subsequent inflammation of lymphatic vessels. Chronic abdominal pain and diarrhea are common. Management of UC and Crohn disease is aimed at reducing inflammation and subsequently trying to maintain remission.
• Antibiotic-associated colitis (AAC) or pseudomembranous colitis is associated with C. difficile infection. Abdominal pain, diarrhea, fever, and sepsis may result. The use of broad-spectrum antibiotics has been implicated in the etiologic development of AAC. NEC, which occurs most often in infants, is thought to be due to bowel ischemia.
• Appendicitis is characterized by right lower quadrant pain, nausea and vomiting, and systemic signs of inflammation. Surgical removal of the appendix is necessary. Untreated appendicitis may result in rupture of the appendix and subsequent peritonitis; localized abscesses may be managed with tube drainage and antibiotics alone.
• Diverticula of the colon are common in Western society because of a low intake of dietary fiber. Low-bulk stools result in the development of high intraluminal pressure, which predisposes to diverticula formation. Diverticulosis is generally asymptomatic. Inflammation of the diverticula, or diverticulitis, is manifested as fever and lower abdominal pain. Anti- biotics and surgery may be required for management of complicated diverticulitis.
CHAPTER 36 Gastrointestinal Disorders 733
Ingestion of a diet with increased amounts of fiber has proved useful in many cases and is thought to promote a more normal pattern of myoelectric activity by providing a regular propulsive stimulus in the gut. Perhaps more than with most GI disorders, patients with IBS may benefit from support groups, Internet-based resources, and alternative therapies.
Intestinal Obstruction Intestinal obstruction is partial or complete blockage of the intestinal lumen of the small or large bowel. Mechanical obstructions are caused by blockage of the intestine by adhesions, hernia, tumor, inflammation, stricture (as in Crohn disease), impacted feces, volvulus, or intussuscep- tion. (Volvulus and intussusception are covered in more detail in the following sections.) Functional obstruction or ileus refers to the loss of propulsive ability by the bowel and may occur after abdominal surgery or in association with hypokalemia, peritonitis, severe trauma, spinal fractures, ureteral distention, and the administration of medications such as narcotics. Ogilvie syndrome, also known as intestinal pseudoob- struction, is a rare severe motility problem characterized by recurrent bouts of ileus.
Etiology and pathogenesis. The most common location for GI obstruction is the small bowel (90% of cases). The most frequent contributing factors are previous abdominal surgery with adhesions and congenital abnormalities of the bowel. Metastatic carcinoma, particularly cancer of the intestinal tract or female reproductive organs, is an important cause of obstruction and should be considered in patients with obstruction who have never had abdominal surgery. The severity and types of symptoms initially accompanying an intestinal obstruction vary with its cause and location.
With obstruction of the bowel lumen, fluid and gas begin to accu- mulate proximal to the obstructed location. The distention produced by trapped fluid and gas causes water and electrolytes to be secreted into the obstructed lumen of the small bowel. Distention also results in the impedance of venous return, and the bowel wall becomes edematous. The absorptive ability of the bowel wall is compromised, and fluid and gas continue to accumulate as additional water and electrolytes are secreted into the lumen. The pressure on the bowel wall exerted by the excess fluid and gas may result in leakage of fluid through the wall into the peritoneum, as well as necrosis of the bowel wall.
In addition to the process just described, other complications may be present with blockage of the intestinal lumen. Impairment of bowel circulation leads to ischemia, a process referred to as strangulation. Bacteria and bacterial endotoxins may translocate across the bowel wall into the bloodstream to produce fever and other signs of sepsis. As blood escapes from the engorged veins, significant loss of blood and plasma from the affected segment may result in the rapid development of shock. In addition, the strangulated segment may become gangrenous, with resulting peritonitis, or become perforated, with the leakage of highly toxic bacterial material into the peritoneal cavity. If left untreated, a person with an intestinal obstruction of the small bowel has a high risk of death from shock and vascular collapse.
Clinical manifestations and treatment. The manifestations of an intestinal obstruction depend on its site and duration. Obstructions in the upper jejunal area usually result in vomiting, dehydration, and electrolyte depletion. In obstructions of the distal portion of the small bowel or ileum, constipation may be an early manifestation, with massive accumulation of fluid in the lumen occurring later. Dehydration may progress to hypovolemic shock if the obstruction is left untreated. In obstructions of the colon, massive gas distention may be present. The fluid and electrolyte losses associated with colonic obstruction may not be as severe as those seen in obstruction of the small bowel. Blockage of the colon by a tumor is the most common cause of colonic obstruction,
ALTERATIONS IN MOTILITY OF THE GASTROINTESTINAL TRACT
Disorders of the GI tract that alter its regular propulsive ability may have a negative effect on nutrient absorption. In the case of increased motility, the transit time of substances passing through the GI tract may be too fast to allow for adequate absorption. Conversely, a blockage or constriction of the GI tract may result in slowed or absent motility, which also prevents normal ingestion and processing of nutrient substances. As with alterations in the integrity of the GI tract wall, these alterations in GI motility may be acute or chronic, with many implications for the lifestyle of the patient.
MOTILITY DISORDERS Irritable Bowel Syndrome Irritable bowel syndrome is a complex entity that remains incompletely understood despite decades of intensive research. A clear definition of this syndrome has not yet been decided by all authorities; nevertheless, certain defining characteristics have been established. Typically, IBS is the presence of alternating diarrhea and constipation accompanied by abdominal cramping pain in the absence of any identifiable pathologic process in the GI tract. (Other terms that have been used for this syndrome include spastic colitis and irritable colon syndrome.) Many authorities emphasize that the quantity of symptoms is not as important as their effect on the normal lifestyle of an individual. Persons with IBS may miss work, curtail their social life, and avoid sexual intercourse. This is an extremely common disorder, affecting up to 20% of the U.S. population. It is important to differentiate IBS, in which no pathologic process of the GI tract has been identified, from inflammatory bowel disease, in which a specific pathologic process is identifiable. There are two classifications of IBS: IBS diarrhea and IBS constipation.
Etiology and pathogenesis. The etiologic factors and pathogenesis of IBS are presently obscure. Most evidence seems to show that IBS is primarily a disorder of bowel motility. Studies have demonstrated that the myoelectric activity of the colon in persons with IBS is altered. In particular, the slow wave activity of the colon, which usually occurs at a rate of three to six times per minute, is markedly increased in IBS. Moreover, the sensory response to distention and stimulation seems to be heightened. Whether these findings are the result of genetic factors or such environmental factors as episodic infection, psychological stressors, or dietary patterns remains unknown. The role of sensitivity to substances in ingested foods such as gluten and the contribution of bacterial overgrowth to symptoms are among current areas of exploration.
Clinical manifestations and treatment. The manifestations of IBS may vary greatly, with some persons experiencing only diarrhea or constipation and others experiencing an alternating pattern of both. In addition to cramping abdominal pain, manifestations such as nausea and mucus in the stool may be present. The severity of manifestations ranges from barely noticeable to incapacitating. Current therapy focuses on dietary modification and on the use of antidiarrheal/antispasmodic agents and laxatives (for constipation-predominant IBS) as appropriate. The 5-hydroxytryptamine-3 (serotonin, 5-HT3) receptor antagonist alosetron has shown favorable results for the diarrhea-predominant form of IBS, though it has been associated with significant side effects, necessitating the Food and Drug Administration to restrict use. Lubi- prostone is a locally acting chloride channel activator that enhances chloride-rich intestinal fluid secretion and is useful for patients with primarily constipative IBS.
734 UNIT X Gastrointestinal Function
Megacolon Megacolon can be congenital or acquired at any age. Perhaps the most common cause in Western countries is prolonged constipation/ obstipation, usually chronic in nature. This is particularly common in younger children who are dealing with the psychological aspects of toilet training and bowel control. Although most of these children are psychologically normal, a small number of children with encopresis have experienced sexual abuse, and its presence should be considered. Significant voiding issues also plague the other end of the age spectrum, and constipation/obstipation in the elderly may lead to megacolon, particularly when the sufferer has relied on regular enemas or laxatives for many years.
Hirschsprung disease (see the following section) is characterized by the congenital absence of autonomic smooth muscle ganglia. The aganglionic bowel segment contracts, but without the reciprocal relaxation needed to propel the intestinal contents forward. Stasis of stool and dilation of the proximal end of the colon result in megacolon, or massive dilation of the colon. Chagas disease caused by infection with Trypanosoma cruzi is a common cause of acquired colon neuronal dysfunction and megacolon in Central and South America, but is rarely seen in the United States, except among immigrants from endemic countries. As discussed earlier in the chapter, AAC (pseudomembranous colitis) may result in acute megacolon, which is a surgical emergency. Finally, the idiopathic syndrome of intestinal pseudoobstruction (Ogilvie syndrome) may rarely result in megacolon.
Hirschsprung Disease Hirschsprung disease is a congenital disorder of the large intestine in which the autonomic nerve ganglia in the smooth muscle are absent or markedly reduced in number. In 90% of individuals with Hirschsprung disease, the aganglionic segment is in the rectosigmoid area, but occasion- ally the entire colon may be affected. Hirschsprung disease occurs in approximately 1 in 5000 live births and is occasionally familial. It is more common in males than in females, with a ratio of 3.8 : 1. The disease often coexists with other anomalies, particularly Down syndrome. Although Hirschsprung disease is most commonly identified in infants and children, it may be present in adults as a long-standing undiagnosed condition.
In infants, Hirschsprung disease may have severe, life-threatening effects. Fecal stagnation may result in enterocolitis with bacterial overgrowth, profuse diarrhea, hypovolemic shock, and intestinal perfora- tion. Interventions such as colonic lavage may be performed to empty the bowel until the infant is stable enough to withstand surgical interven- tion, which is the definitive treatment.
and perforation of the bowel wall adjacent to the tumor may occur in association with an obstruction.
Therapeutic strategies for intestinal obstruction include surgical intervention to correct or remove the source of a mechanical obstruction. Supportive therapy, including decompression of the bowel with special- ized tubes or endoscopy, and fluid and electrolyte replacement therapy may be needed during an acute obstructive episode.
Volvulus Volvulus is the twisting of the bowel on itself, causing intestinal obstruc- tion and blood vessel compression (Fig. 36.11). The two most common sites for the development of volvulus are the cecum and the sigmoid colon. A volvulus may be the result of an anomaly of rotation, an ingested foreign body, or an adhesion; however, the cause cannot always be determined. Volvulus tends to occur in elderly individuals with coexistent medical conditions. With the sudden tight twisting of the bowel on its mesentery, blood flow to the bowel is impeded. Gangrene, necrosis, and perforation may develop, resulting in a life-threatening situation. If both ends of a bowel segment are twisted, a closed-loop obstruction results, with the manifestations described earlier for intestinal obstruction. Treatment varies according to the severity and location of the volvulus and includes the therapeutic approaches described for intestinal obstruction.
Intussusception Intussusception is a telescoping or invagination of a portion of the bowel into an adjacent distal portion (Fig. 36.12). It is most common in infants and occurs three times more often in males than in females. In most cases involving infants, the actual cause is unknown, although intussusception has been linked to viral infections and the use of some forms of rotavirus vaccine. In older children, it may be associated with alterations in intestinal motility or a condition called Meckel diverticulum, in which a congenital abnormality consisting of a blind tube is present in the distal end of the ileum. In adults, intussusception usually results from the presence of benign or malignant tumors.
As a bowel segment undergoes intussusception, peristalsis acts to pull more bowel along with it. The resulting area of tightened, invaginated bowel becomes edematous; venous engorgement with hemorrhage may occur. Intestinal obstruction of the bowel may develop, with eventual gangrene, shock, and perforation of the bowel if surgical treatment is delayed.
180° twist Distal end
Proximal end
FIG 36.11 Volvulus. Intestine twists at least 180 degrees, causing obstruction and ischemia. (From Black JM, Hawks JH: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2009, Saunders, p 714.)
Proximal bowel Distal bowel
Telescoped bowel
FIG 36.12 Intussusception. A portion of bowel telescopes into adjacent (usually distal) bowel. (From Black JM, Hawks JH: Medical-surgical nursing: clinical management for positive outcomes, ed 8, Philadelphia, 2009, Saunders, p 714.)
CHAPTER 36 Gastrointestinal Disorders 735
may present in infancy, when gluten-containing products are first introduced into the diet, but is more common in the fourth and fifth decades.
Diagnosis and treatment. In the past the diagnosis of celiac disease relied on intestinal biopsy showing the typical pathologic manifestations. New blood tests that assay for anti–tissue transglutaminase antibody and the more specific immunoglobulin A endomysial antibody have a high degree of sensitivity and specificity, although in general biopsy is still recommended for confirmation. Effective treatment includes the elimination of all gluten from the diet, which results in significant improvement in the intestinal mucosa, and the administration of supplemental iron, folate, and in specific cases vitamin B12 and the fat-soluble vitamins (A, D, E, K). Refractory cases may be treated with oral corticosteroids or other immunomodulating agents. Ulcerative jejunitis and lymphoma should be suspected among refractory patients who do not respond to corticosteroids. Importantly, although the overall risk for malignancy is no higher than the general population, the incidence of certain types of intestinal malignancy, especially lymphoma, is modestly increased among sprue patients.
Tropical Sprue Etiology. Tropical sprue or enteropathy is a malabsorptive syndrome
of unknown cause prevalent in equatorial countries. Current theory suggests that bacterial overgrowth of the large intestine produces products of fermentation that damage intestinal mucosa, although the exact etiology is obscure. In tropical sprue, the mucosa of the small intestine atrophies, with resulting malabsorption, malnutrition, and B12 and folic acid deficiency. Its incidence is high in persons living in or visiting tropical climates, and it appears to affect adults more often than children. Although environmental factors seem preeminent, a genetic component may be present in some cases.
Clinical manifestations and treatment. The atrophy of the small intestinal mucosa may have severe effects. Massive malabsorption may result from failure of the mucosa to produce the enzymes needed for digestion. Manifestations include severe diarrhea with blood-tinged stools, abdominal distention, and steatorrhea (the presence of excess fat in the stool). In the Caribbean, tropical sprue is strongly linked to the presence of enterotoxin-producing coliforms and responds well to broad-spectrum antibiotics. The response of patients from other areas (e.g., India) to treatment is less predictable than that of patients with Caribbean sprue. Treatment includes antidiarrheal medication and prolonged antimicrobial therapy, as well as replacement of deficient vitamins, particularly folic acid.
MALABSORPTION DISORDERS AFTER SURGICAL INTERVENTION Surgical procedures in which a portion of the stomach or small bowel is removed may result in loss of the ability to absorb nutrients properly, either through a loss of appropriate motility patterns or through a loss of the surface area of the small bowel needed for adequate absorption. Two types of disorders of malabsorption may occur after surgical intervention on the stomach or small bowel: dumping syndrome and short-bowel syndrome.
Dumping Syndrome Etiology. Dumping syndrome is a term used to describe the literal
dumping of stomach contents into the proximal portion of the small intestine because of impaired gastric emptying (Fig. 36.13). This loss of normal, gradual pyloric emptying may occur after removal of all or part of the stomach (gastrectomy), a procedure performed commonly for PUD in previous years, but more recently primarily for control of
DISORDERS OF MALABSORPTION Malabsorption refers to failure of the GI tract to absorb or normally digest one or more dietary constituents. It is typically manifested as diarrhea, with the passage of inappropriately processed intestinal contents resulting in impaired fluid absorption. A variety of pathologic processes produce malabsorption syndromes, including intestinal enzyme abnormalities (e.g., lactase deficiency), infection (e.g., AIDS enteritis), and radiation enteritis, among others. The types of malabsorption syndromes discussed here result from a mucosal disorder of the small bowel or from the surgical removal of portions of the stomach or small bowel.
MUCOSAL DISORDERS Myriad disorders affect the mucosa of the small intestine. Because the small intestine is the principal site of digestion and absorption of nutrients, a defect in this area has the potential for causing malabsorption of fat, protein, carbohydrate, vitamins, and minerals. Crohn disease, described earlier, may result in damage to the mucosa of the distal portion of the ileum, which is the site of vitamin B12 and bile acid absorption. Other important mucosal disorders of the small intestine are celiac disease and tropical sprue.
Celiac Disease Etiology. Celiac disease (also called celiac sprue) is characterized by
intolerance of gluten, a protein in wheat and wheat products. Current research suggests that celiac sprue is an immune disorder triggered by exposure to gliadin (a specific wheat gluten) in genetically predisposed persons. Environmental, genetic, and immune factors play pivotal roles in determining the nature of symptoms. The main pathologic finding is villus atrophy, with a decrease in the activity and amount of surface epithelial enzymes. The resulting malabsorption of ingested nutrients may promote malnutrition and severe debilitation.
Celiac disease affects twice as many females as males and may have a familial inheritance pattern. More accurate serologic tests have shown the incidence in the general population to be much higher than previously believed; the current prevalence is about 1 in 300, with those affected primarily of northwestern European ancestry. The onset of celiac disease
KEY POINTS • Irritable bowel syndrome (IBS) is manifested by bouts of alternating diarrhea
and constipation in the absence of an identifiable GI pathologic process. The cause is unclear; however, the slow wave activity of the bowel is markedly increased. A high-fiber diet and antidiarrheal agents may be recommended.
• Intestinal obstructions may be mechanical or functional. Mechanical obstructions are due to adhesions, hernia, tumors, impacted feces, volvulus (twisting), or intussusception (telescoping). Mechanical obstructions are characterized by increased bowel sounds initially, accompanied by abdominal pain, nausea, and vomiting. Functional obstructions are due to conditions that inhibit peristalsis, such as use of narcotics, exposure to anesthetic agents, surgical manipulation, peritonitis, hypokalemia, and spinal cord injuries. Functional obstructions are characterized by the absence of bowel sounds. Uncorrected obstruction may lead to intestinal wall edema, ischemia, and necrosis. Bowel gangrene, sepsis, and shock can result. Surgical intervention or decompression with an intestinal tube is often required.
• Hirschsprung disease is a familial, congenital disorder of the large intestine in which the autonomic ganglia are reduced or absent. Stasis of stool and megacolon may occur in the abnormally innervated section of bowel. Megacolon can also be acquired as an adult.
736 UNIT X Gastrointestinal Function
Short-Bowel Syndrome Etiology. Short-bowel syndrome refers to the severe diarrhea and
significant malabsorption that develop after the surgical removal of large portions of the small intestine.
Pathogenesis and clinical manifestations. The severity of the manifestations depends on the amount and location of the bowel resected. In particular, removal of the distal two-thirds of the ileum and the ileocecal valve may result in severe malabsorption. Because the ileocecal valve serves to regulate the transit time of intestinal contents, its removal may promote a transit time that is too rapid for adequate absorption of nutrients. In addition, loss of large portions of the small intestine will result in a diminished ability to absorb water, electrolytes, protein, fat, carbohydrates, vitamins, and trace elements. Removal of the terminal ileum will adversely affect vitamin B12 malabsorption and will likely necessitate intramuscular replacement.
Treatment. The small intestine displays an amazing ability to adapt after bowel resection. The remaining villi may enlarge and lengthen, thus increasing the absorptive surface area of the bowel. The presence
obesity. Interestingly, dumping seems to occur only with Roux-en-Y gastric bypass procedures.
Pathogenesis and clinical manifestations. With the normal reservoir function of the stomach now impaired, a large volume of hyperosmolar food is dumped rapidly into the small intestine, with consequences that may be severe. The hyperosmolar contents of the small intestine draw water into the lumen and stimulate bowel motility, with manifestations of diarrhea and abdominal pain. In addition, the rapid absorption of a large amount of glucose and a subsequent rise in blood glucose levels promote an excessive rise in plasma insulin level. The elevated insulin level then causes a rapid fall in blood glucose levels 1 to 3 hours after a meal. This sudden reversal is referred to as rebound hypoglycemia.
Treatment. Persons who have undergone a gastrectomy procedure will require specific instruction regarding eating small meals six to eight times a day rather than three large meals. Restriction of carbohydrate intake may be needed to limit glucose absorption. Medications to reduce bowel motility have been helpful in promoting a more normal pattern of bowel function in this population.
2. Gastric resection Decreased gastric capacity and loss of pyloric sphincter
4. Fluid shifts from blood into small intestine to dilute hypertonic chyme
5. Hypovolemia • Decreased blood pressure • Faint, weak, dizzy • Tachycardia • Pallor, diaphoresis
Stomach resected
Small intestine
Capillary
Food
6. Distended intestine • Pain, cramps • Nausea and vomiting
7. Rapid digestion and absorption of food intake
8. Hyperglycemia and increased insulin secretion
9. Hypoglycemia • Weak, confused • Tachycardia • Pallor, diaphoresis
Immediate effects
No stored food available from stomach
1–3 Hours later
1. Food intake
3. Large amount of undiluted chyme is “dumped” in small intestine
FIG 36.13 Dumping syndrome (postgastrectomy). (From Gould BE: Pathophysiology for the health professions, ed 6, Philadelphia, 2018, Saunders.)
CHAPTER 36 Gastrointestinal Disorders 737
surrounding organs by way of the esophageal lymphatics at an early stage. Invasion of surrounding structures may lead to the formation of esophagobronchial or esophagopleural fistulas, with subsequent pneu- monia or abscess. The tumor may partially constrict the lumen of the esophagus, and surgery, radiation therapy, or other measures may be considered to maintain a patent esophagus. Endoscopic procedures of benefit include stent placement and ablation of the tumor through heat probe and laser techniques. If the individual survives the initial extension of the tumor, the liver and lungs are the usual sites of distant metastasis. Regardless of the cell type, the prognosis is generally poor. Selected patients may be candidates for surgical resection, with or without adjuvant chemotherapy and radiation treatment, with a very high rate of complications.
Gastric Carcinoma Gastric carcinoma is common throughout the world; however, certain population groups appear to be at higher risk than others. In Japan, the prevalence of gastric adenocarcinoma is about 10 times the prevalence in the United States. The incidence is higher in men older than 30 years than in other age and gender groups. This disease strikes about 25,000 Americans a year, with a male-to-female ratio of approximately 2 to 1. The overall 5-year survival rate is 28%, although the prognosis depends on the stage of the disease at the time of diagnosis. Early-stage gastric cancer has not penetrated the major muscle layer of the stomach wall and is associated with a more favorable survival rate than that seen in more advanced disease.
Etiology. The etiology of gastric cancer is a rapidly expanding area of research. A recent consensus committee of the World Health Organiza- tion affirmed the role that H. pylori plays in development of gastric cancer, with a twofold increased risk for infected individuals compared with their uninfected peers. In particular, the development of multifocal atrophic gastritis induced by persistent H. pylori infection is a critical step in the development of gastric cancer. Epstein–Barr virus is another viral oncogene that has been identified as contributing to the global burden of gastric cancer. Other risk factors are similar to those for esophageal cancer, with the exception that alcohol is not a significant contributor to gastric carcinoma. Aspirin use seems to be protective against stomach cancer. Small numbers of gastric neoplasms may have different histologic characteristics, including lymphoma and carcinoid tumors, and have distinct clinical courses.
Clinical manifestations and treatment. Unfortunately, early gastric cancer typically has no manifestations and is rarely identified in countries that do not have a widespread screening program. Gastric carcinoma extends rapidly to the regional lymph nodes and surrounding organs by way of the lymphatic system and the bloodstream and by direct extension through the wall of the stomach. Advanced gastric cancer (Fig. 36.14) has penetrated the muscle layer of the stomach and produces manifestations such as anorexia, weight loss, and GI bleeding.
Surgical resection of the tumor with appropriate surrounding margins remains the only effective treatment for this cancer, which, like esophageal cancer, has a poor long-term survival.
Small Intestinal Neoplasms Neoplasms of the small intestine may be benign or malignant. Fairly unusual, they account for fewer than 5% of GI tumors. Tumors of the small intestine (usually adenocarcinomas) occur most often in persons older than 50 years. Carcinoid tumors, lymphoma, and sarcoma represent less common forms of intestinal tumors. Depending on the extent and type of tumor, partial or complete obstruction of the small bowel may occur.
Clinical manifestations and treatment. If the tumor is located near the ampulla of Vater, the common bile duct may become obstructed,
NEOPLASMS OF THE GASTROINTESTINAL TRACT
Neoplasms may develop in any region of the GI tract. They vary in their severity and in their ability to disrupt normal GI functioning. The most common neoplastic processes of the GI tract are summarized here; the reader may wish to refer to Chapter 7 as a background for understanding these specific types of neoplasms occurring in the GI tract.
ESOPHAGEAL, GASTRIC, AND SMALL INTESTINAL CANCERS Esophageal Cancer
Etiology. Esophageal cancer accounts for 1% to 2% of all cancers (about 17,000 cases annually in the United States) and affects men three times more often than women. It usually develops in men older than 60 years, with an overall 5-year survival rate of 18%. Although the cause of esophageal cancer is presently unknown, several predisposing factors have been identified, including genetic predisposition, dietary habits (especially ingestion of foods high in nitrosamine content), environmental exposures, and chronic irritation of the esophagus. It has been estimated that smoking, alcohol consumption, and diets low in fruits and vegetables account for 90% of squamous cell esophageal cancers in the United States. Chronic severe reflux, especially that associated with achalasia, is a prominent risk factor for adenocarcinoma as well.
Most esophageal tumors worldwide are squamous cell carcinomas. The incidence of adenocarcinoma of the gastroesophageal junction has been increasing steadily in the United States, though, and is now more common than squamous cell cancer. This shift seems to reflect an increased prevalence of Barrett esophagus (discussed earlier in the chapter). As noted earlier, infection with H. pylori may actually protect against development of this form of esophageal cancer.
Pathogenesis and treatment. Tumors of the esophagus are usually insidiously infiltrating, and the disease may spread extensively to
KEY POINTS • Malabsorption occurs when the small bowel fails to absorb one or more
dietary components. Diarrhea and abdominal discomfort are the usual manifestations. Malabsorption may occur because of mucosal dysfunction (Crohn disease, celiac disease, tropical sprue), enzyme deficiencies, or surgical alterations that affect transit time and absorptive surface area.
• Celiac disease appears to be caused by a familial intolerance of gluten- containing foods. Ingestion of gluten leads to inflammation and atrophy of the intestinal villi. A reduced surface area and a decreased number of brush border enzymes impair nutrient absorption.
• Dumping syndrome occurs with loss of pyloric sphincter regulation, generally after gastric surgery for ulcers or cancer. Rapid dumping of chyme into the duodenum causes an osmotic shift of water into the lumen and diarrhea. Glucose absorption may be rapid and lead to overshoot of insulin secretion and rebound hypoglycemia.
• Short-bowel syndrome follows surgical procedures involving removal of large sections of the small intestine. Rapid transit time and reduced surface area for absorption lead to diarrhea and malabsorption.
of orally ingested nutrients is needed for this adaptive process to occur, and a gradual increase in oral intake after bowel resection may promote gradual improvement in absorptive ability. Intravenous nutritional support may be required temporarily or indefinitely after surgical foreshortening of the gut.
738 UNIT X Gastrointestinal Function
be present; the probability of colorectal cancer in a person who has a first-degree relative with the disease is greater than 15%, compared with a 5% risk in the general population.
An important hereditary condition is familial adenomatous polyposis, one form of which is Gardner syndrome. More common are the so-called hereditary nonpolyposis colorectal cancer syndromes. Clues to a familial syndrome include at least three close relatives with colorectal cancer, colorectal cancer involving at least two generations, and one or more cases of colorectal cancer occurring before age 50 years. Colon cancer
with resulting biliary stasis and jaundice. Bleeding and ulceration of small intestinal tumors are common manifestations, as is obstruction and, less commonly, intussusception. Treatment may include surgical intervention to remove the tumor and the affected portion of the small intestine, as well as chemotherapy for lymphomas and carcinoid tumors.
COLONIC POLYPS AND COLON CANCER Cancer of the colon and rectum is identified in approximately 140,000 men and women in the United States each year, with the incidence equally distributed between men and women. It is second only to lung cancer as a cause of cancer deaths. It is well accepted that adenomatous colon polyps represent the major precursor lesion in the development of colon cancer.
Colon Polyps The term polyp refers to any protrusion into the lumen of the GI tract. Polyps may be benign or malignant, although most clinicians use the term polyp to refer to a benign or not-yet-malignant lesion. Polyps can have several forms; a sessile polyp is a raised protuberance with a broad base, whereas a pedunculated polyp is attached to the bowel wall by a stalk that is narrower than the body of the polyp. Benign adenomatous polyps of the colon predispose to malignant adenocarcinoma of the colon through dysplasia and neoplastic degeneration. In fact, some adenomatous polyps may already contain a focus of carcinoma (car- cinoma in situ). Most persons with polyps have no manifestations, although polyps may cause occult or gross bleeding and abdominal pain attributable to obstruction. Treatment will vary according to the size and type of polyp and its location in the colon. Biopsy and subsequent removal of polyps may be performed during sigmoidoscopy or colonoscopy. Fig. 36.15 shows various colonic polyps. Several benign colon polyps, including the common hyperplastic variety, may be found on endoscopic biopsy and carry no cancer risk.
Colon Cancer Etiology and risk factors. A number of risk factors have been
identified for the development of colon cancer. The risk increases with advancing age. After age 40 the annual incidence of colon cancer accelerates, doubling every decade until age 80. Dietary factors also seem to increase the risk; a high-fat, low-fiber diet has been proposed as an associated factor. Certain bowel conditions may predispose an individual to colon cancer, including UC and Crohn disease of the colon (see previous discussions). A hereditary predisposition may also
FIG 36.14 Ulcerating gastric cancer. (From Sleisenger MH, Fordtran JS, editors: Gastrointestinal disease, ed 5, Philadelphia, 1993, Saunders.)
FIG 36.15 Photographs of colonic polyps. (Courtesy LE Copstead.)
CHAPTER 36 Gastrointestinal Disorders 739
PSYCHOSOCIAL ASPECTS OF GASTROINTESTINAL DISORDERS Stress of Lifestyle Changes GI disorders may have profound effects on the psychosocial functioning of the affected individual. Moreover, these disorders may place great stress on the family attempting to cope with the demands of that person’s illness. Nutrition and bowel elimination are behaviors that are dependent on cultural norms; changes in these basic areas of human activity caused by a GI disorder may have a variety of meanings to different individuals. A teenager affected by a chronic GI disorder such as Crohn disease may be unable to participate in social activities that revolve around eating and thus may feel isolated from peers. IBS in a young adult who is beginning the most productive years of life may curtail the ability to function fully in the roles of spouse, parent, and wage earner. Finally, the onset of GI disorders, particularly a neoplastic process, in a middle- aged or older individual may not only limit that person’s ability to perform activities of daily living, but also may cause depressive symptoms in the face of aging and mortality.
screening guidelines have recently been updated; for the individual at average risk, colonoscopy every 10 years is recommended beginning at age 50. Persons with an increased risk for colon cancer based on family history or IBD should undergo more aggressive colon cancer screening.
Clinical manifestations. The manifestations of colon cancer depend on the anatomic location and function of the bowel segment containing the tumor. On the right side of the colon, the site of water and electrolyte absorption, tumor growth tends to extend along the bowel rather than surround the lumen (Fig. 36.16). Although no signs of obstruction are present, black, tarry stools, which signify bleeding into the intestinal lumen, are a significant finding. On the left side of the colon, a tumor may cause manifestations of obstruction in the early stages of its growth. Feelings of intermittent abdominal cramping and fullness may be present, and “ribbon” or pencil-shaped stools may occur. Typically, the individual may note that the passage of stool or flatus relieves the abdominal pain. As tumor growth progresses, blood or mucus may be present in the stool. When the tumor is located in the rectum, early manifestations may include a change in bowel habits, often beginning with an urgent need to defecate upon awakening in the morning or alternating constipa- tion and diarrhea. Later in the progression of tumor growth, a sensation of rectal fullness and a dull ache may be felt in the rectum or sacral region.
Treatment. The treatment and prognosis for colon cancer depend on several factors, including the extent of tumor invasion through the colon wall, cell type and degree of dysplasia, tumor genetics, and the presence or absence of local or distant tumor metastases. The 5-year survival rate is directly related to the extent of tissue invasion. The traditional Dukes classification scheme (Table 36.1) has been modified and expanded over the last several decades; currently the tumor-node- metastasis (TNM) classification is accepted as the standard scheme (see Chapter 7). The most effective treatment is surgery to remove the
FIG 36.16 Barium enema demonstrating extensive mucosal destruction from a primary lymphoma of the right colon (arrowhead). (From Sleisenger MH, Fordtran JS, editors: Gastrointestinal disease, ed 5, Philadelphia, 1993, Saunders, p 1484.)
TABLE 36.1 Modified Dukes Classification for Colorectal Cancer
Dukes Category Definition
5-Yr Survival (%) After Treatment
A Cancer limited to mucosa or submucosa
90
B1 Cancer penetrates into but not through muscularis propria
80
B2 Cancer penetrates through muscularis
70
C1 Same as B1, plus lymph node metastases
50
C2 Same as B2, plus lymph node metastases
50
D Distant metastases are present <30
KEY POINTS • Warning signs for cancer of the GI tract include black, tarry, bloody, or
pencil-shaped stools and a change in bowel habits. Risk factors for GI cancer include a low-fiber, high-fat diet; polyps; and chronic irritation or inflammation.
• The prognosis for GI cancer is related to the extent of spread in the body. Surgical removal of tumors followed by chemotherapy, radiation therapy, or both is the usual treatment. Early detection is associated with a better prognosis.
malignant tumor and adjacent tissue and lymph nodes that may contain cancer cells. The surgical formation of a colostomy, or an artificial opening of the colon on the abdominal wall, may be performed after removal of the affected bowel segment. Chemotherapy and radiation therapy are used as supportive measures in addition to surgical interven- tion. Chemotherapy in particular has advanced rapidly over the last 2 decades and has significantly improved the prognosis for moderately advanced (i.e., with nodal metastases) colon cancer. Thus about 90% of patients with localized cancer survive 5 years and 70% of those with regional spread survive this long. Patients with distal metastases have a 14% long-term survival.
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although some chronic diseases of the GI tract may be aggravated by emotional factors. The stress of coping with a chronic, disabling illness may result in psychological trauma; in addition, any type of illness represents a threat to the integrity of the person. Individuals experiencing a chronic GI disorder may exhibit the psychological effects of such threats and will benefit from a sensitive approach to meeting their needs.
In the past, much of the health care literature, including nursing texts, has tended to stereotype individuals with chronic disorders of the GI tract as having behavioral disorders. Aberrant psychological characteristics were purported to be associated with or even responsible for certain diseases of the GI tract, such as Crohn disease and UC (e.g., the so-called Crohn personality). It is now recognized that the pathogenic process is almost never the result of primarily psychological causes,
This chapter has described the major alterations in the GI tract that may occur across the human life span. Because of the strong links between cultural and psychological functioning and activities associated with the GI tract, an in-depth understanding of these alterations is essential for health care professionals.
Disorders of the GI tract may have many manifestations, including dysphagia, pain, vomiting, gas, and alterations in bowel elimination patterns. Disorders may occur in any portion of the GI tract, from the mouth to the anus, and may be the result of alterations in the integrity of the GI tract wall (as in UC) or alterations in motility
(as in IBS). Disorders of malabsorption, such as celiac disease, may seriously limit the individual’s ability to utilize dietary nutrients and are therefore potentially life threatening. Patients who have undergone surgery on the GI tract may also be at risk for malabsorption. Neoplasms of the GI tract are prevalent in the U.S. population, and the reader will want to review the associated risk factors for these neoplasms very carefully. Finally, readers anticipating a career in health care should carefully consider the psychosocial aspects of GI disorders and identify ways to provide optimal care for patients with these conditions.
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