Toll like receptors in Chronic Lymphocytic Leukaemia
HSCT literature review
fJ
fJ The rolle of complement system In Haematopoletic stem cell transplantation (HSCT)
exploring current therapies and new developments.
Abstrw:
Being autologous (the paf t's own stem cells are used) or allogeneic (the stem cells come from a donor), Hematopoietic stem cell transplantation (HSCT) is the transplantation of multipotent hematopoietic stem cells, usually derived from bone marrow, peripheral blood, or umbilical cord blood. It is commonly used to treat haematollogical, and increas.ingly, non-hae logical disorders (NHS Commissioning board, 2013). Following the first donor recruitment drive in 1973, the number of bone marrow and peripheral haematopoietic stem cell donors has increased all over the wor,ld with more than 18 million donors now regist.ered (Gluckman, IE, 2015).
fJ Literature Review:
Hematopoietic stem-cell transplantation is used priw for hematologic and lymphoid cancers but also for many other disorders. Donors receive granulocyte colony stimulating factor (G-CSF) to mobilize haemato oietic stem cells (HSCs), which are collected by leukaQheresis (where abnormal white blood cellls are separated fro'fl sample of blood) (Cancer Research UK. 2015). In autolog!ous HSCT there's a reduced risk of infection during the immune-compromised stag:e of the tre ent as the recovery of the patient's immunity is rapid. In allogeneic HSCT, as the patient is given donor stem cells, this may cause an immunological response. The donor is likely to be a close relative such as a sibling, with a close match for the human leucocyte antigen (HLA). However, the risk of leukaemia rellapse and mortality with autologous HSCT is higher than for allogeneic HSCT.
OOn0,11'
(H matthed sibl ng or unrela ed donor)
( )
Pon m_rrow a pirated froirn
(b)
1
Hclflt,n,nd & p ......
Figure a: Allogeniic SCT and b: autologous SCT
P;i t
(re pi nt)
Pt nt
Patients are prepared for HSCT by a conditioning regimen involving chemotherapy al radiation, which can be myeloablative or non-myeloablative.
• M eloaola tive regimens- These re desi nea to kill all resiaual cancer cells in auto-ous o� allogenic transplantatio .
• No n-m eloablative re imens - These a re immunosu Qressive and rell on the raft il/ersus-tumour effect to kill tumour cells with donor T cells and is typically used in high-risk patients.
A complicatio n in this is graft versus host diseas e (GVHD). GVHD happens when articular ty__Qes of white blood cell (T cells in the donated bone marrow or stem cells
attack our own bod cells. This happens because thlj>nated cells (the graft) see �our bod cells (the host} as forei n and a ck the . Acute GvHD (aGVHD) occurs
.
ost freguentl after engraftment, leading to an arbitrary period of 100 days post HSCT which has defined the acute versus chronic manifestation ofthi1s disease. The characteristic pathologic feature of aGVHD is target tissue (skin, liiver, gastrointestinal [GI] tract) apoptosis. aGVHD was initially described as a "cytokine storm" involviing a three�step disease process. These steps involve:
1) transplant conditioning and associated inflammation:
Foll owing conditioning (radiation and/or chemotherapy), the integrity of the GI mucosa becomes compromised allowing the release of DAMPS and PAMPS. These in turn promote the production of pro-:inflammatory cytokines from recipient cells. These cytokines contribute to host APC (hematopoietic and non-hematopoietic) activation in the gut and lymphoid tissue. GVHD impacts on the gut micro biota, reducing iits diversity with a loss of enteric commensal organisms and an outgrowth of pathogenic microbes that further aggravates the pathological DAMP/PAMP ca scade.
a
CONDITIONING TISSUE DAMAGE
I ,
RADJATtON
I
I
I \ ( \
\
•
CHEMOTHERAPY
t MHC Ci>itimuladon
Figure 1: GVHD pathophysiology phase 1- transplant conditloning1 and Inflammation.
a 2) Donor T-cell priming and differentiation:
Donor CD4 T cells contained within the graft are activated by the inflammatory
environment early after conditioning, facilitating their rapid access to the gut and
lymphoid tissue. Once in the gut, MHC class II-expressing recipient non
hematopo1ietic APCs ca n initiate priming to host antigens while recipient
hematopo,ietic APC initiate priming In lymphoid tissue. Recipient hematopoi:etic APCs
appea.r to be the dominant APCs for CD8 T-cell priming. Donor APCs can further
ntribute to this priming process. Activation in the presence of various cytokines
instructs T-oell differentiation along specific lineage pathways (type 2:, type 117, and
type 1 , respectively). The tra.nscription factors GA T A-3, RO Rgt, and T-bet are critica I
for these Th2, Th17, and Th1 differentiation pathways. Tregs are differentiated in the
presence of I L-2 and TGFb (in the absence of IL-6) and abrogate the differentiation
of effector T cells via effects on DCs and effector T cells themselves.
•
lymph
node
-
ll-12
IL�
TGFP
Figure 2: Phase 2- donor T-cell priming and differentiation.
GAlA•3
3) An effector phase of tissue apoptosis mediated by inflammatory
cytokines and cellular (T and NK cell) effectors:
• • During the effector phase of GVHD, inflammatory cytokines derived from
macrophages and T cells mediate apoptosis in target tissues, particularly within the
gut. Donor Th 1 /T c1 , Th2/T c2, and Th 17 /T c17 cells e I icit GVH D wi1th relatively tissue
specific patterns mediated in part by their respective chemokine profil'es and the
relative sensitivity of the target to effector cytokines generated by each lineage.
Cytolytic T and NK cells mediate antigen-dependent killing of targetti issues via the
perforin/granzyme and TN F member pathways.
SKIN
LUNG
LVER
TNF/LTa
IL-6
Figure 3: GVHD pathophysiology phase 3- the effector phase.
Meticulous supportive care is vital for P-atients with both acute and chronic GVHD
owing to the extended duration of immunosu9-pressive regimens as the man drugs
administered could have synergistic toxic effects. Such care includes early
interventions in cases of suspected infections, extensive infectious prophylaxis, and
prophylaxis against non-infectious side-effects of drugs 1table). These complications
need rapid responses to prevent serious, irreversible damage and are best handled
by a close and efficient colllaboration between the primary doctor and th,e transplant
specialist.
Table 1: Recommendations for supportive care
Other
Viral lnfec:dons
Cyt.:ome:ga1avirus
�sprrato,y viruses
fi!v«, chil s, pain,
erythema
Fewr. (hills,; sepsis
symptoms
Gastroenteritis.
Routln�·mQnltQring
Clinical�. che,t radiCJ!iraph
or CT scan for pos,lble
pneumo.,:ie
Blood cytomeg.aknrirus PCR Ol
lntemltli!I p,,eurr,onla pp6S ant gen l'l!"els
Symptoms of uwer or Cllnle<1I monitoring
low1:r ,,�r,torr-tract
in·fe,etiom
Varictll'a•tost« virus 1/ciielilar skin I sions Clini�I monit,0�114
Funpl and othet Infections
Asperglllo,1$, other
�m .....,.fungal
infections
candida
l'neumocy,tis
Jl\llmona,y lesions, Galaetom�nnan, usavs In
sinusitils. stin nodules high-risk pa�cnts. CT $G;lO if
signs of infectio n
Th,ust,, pvlmonarr
k!sioru
Fe\lef, hypo - ii;
resplratorydl,tress
Clinical eomim:ation,. CT scan if
signs: of infection
Clintcal a ssessment
Otflertoxic effects of Im munosuppres.sive :agents
Cllcineurininhibitors. Tremor Clintcal .asses.s:me11t.. ,drug
t;Qn(entrat1Qfl$
Caldneurlnlnhll>ltors N·eurotaxk effects Assess mental slat.us
Calcineurininhibitor5- Renalimp.airment Creatini.ne· le..-ets. ilnd gk,merular
flltr.atloo r.at,e,
Caldneurlnlnhll>ltor$ Hypertensfon Blood pressure monitoring
�lclneurloinhlbltor$, Trans?1uN1ssoci.t d /Weubloodsm arfor
Cortirnsteroids
Curlirosieroids
Corllrosterolds
Lat.i eraft 111ilur.
81ood disorder$
microonsiopathy
Oislla,(s dise.1st
symptoms
Diabetes
l!leedlnB wrnpto�
aMemi:I
Tllitk, R-mmendalions for SltPPor1 i...e �re
ha.emolysis, sch�tocytes
Assessment of llooe density
Sloodc()<)nt,
AntibiOti(;.$ in hi(h•ililk �tientS (hill,IH!OSt
torticosterolds o.r .aspfenia). lntravenaus.
lmmunoglobu11n If lgG, level <AO() g/l
Pfe-emptlYe treatment in ,p.atient:s with reactivation
Annual lnftuenzo vaccination (stardns 6 month$ post
Hcr), •a,«ln.ition of eares,\>ers
Aciclovir prophylaxii
Vorloonazole, or pol.(!Conatole proph'(la•ls In hlgh-rl�k
patients l�g. high·d0<1e steroids)
�lucon.nole jaspergillus prophyl•�is prote<:ts �ga inst
c.rndida too)
CotrilillO.Xarole. or pentamadine until 1 rrnonth off
mmunosuppre.u1on
Adjust dose todesired trough levels
Adequate fluiduptate(about 3 l pe,darl
utrition:al gvida nee
Obc,in cgtEutM, �mmtdi�t·� intravt'ftOus
.antibfotic treatmenl. ,,emove line
Obtain tuitvtt$:, imrnediat� inttavenous
broad-sp,,ctrum antibiotics, became of'risk of
oveMhelmlngsepslswithln ho 1s
Antiviral treatment lg.anclclovir. v.alganciclovir.
orfoscarnet)
E'.arlv t,eatment with neuramlnld�se fnhlb!to,s
(lnftuenu), other antislral$
Trcatmnnt dom of anti,irals
Anti fungal trealment
T reatme:nt d05es of'.a nti•PCP drugs
,Stop caldneurln Inhibitors
lntravenoo:s. fluids
Anti hypertensive treatment
(angiorer\sln,.ecn.e,rtln-lt'enzvme l!\hlblto,,,
�-blockil'\8 agents),
Stop ca clneurin lnt.lbl1ors, plasrnapher.uls
Insulin tre:atment
Growth, "1c1or� [&raouloevte eclonv-$\lmul;illns
'foetor), �roJlO('ti"1, ttMrlu!iOns
As touched upon earlier, an increasingly frequent treatment for GVHD is
extracorporeal photopheresis. During this, the patient's white blood cells are gathered
by apheresis, incubated with the DNA-intercalating agent 8- methoxypsoralen,
exposed to ultraviolet light, and returned to the patient. Extra.corporeal photopheresis
is known to indte cellular apoptosis, which has strong anti-inflammatory effects in
several syste s, including prevention of rejection of solid organ gra. fts. Experiments
conducted on animals shows that extraco, rporeal photopheresis reverses acute
GVHD by increasing the number of regulatory T cells in blood {Ferrara,J et al. 2009).
The number of allogeneic haemo12oietic-cell transplantations (HCTsJ continues to
rise, with over 25 000 procedures undertaken annually. The graft-versus-leukaemia
or graft-versus-tumour effect during this Qrocedure effectively eradicates many
haematollo ical malignant diseases.
Over the last 60 y,ears, animal models have played a crucial role in shaping the
understanding of GVHD and GVL responses. This could possibly be the greatest
contribution to the field. Nonetheless, they have also generated major new
paradigms that have instructed clinical practices. As we move forward, it is useful to
consider where the next advances will come from and how we should assess the
potential of a therapeutic intervention defined in a preclinical study to translate into
clinical practice (Markey,K et al. 2014).
While randomized trials provide some way to directly compare transplantation
strategies over a set of pre-defined endpoints, these studies are challenging to
conduct because of time involved and the cost as well as the difficulty of generating
adequate sample sizes wi�hin single-centre or oligo-centre studies. Randomized
studies in HSCT r,equire a llarge amount of planning and large cooperative
infrastructures, which cannot easily keep up with the rapid development of new
HSCT strategies. Many of the changes in HSCT practice are therefore likely to come
from the interpretation of non-randomized studies.
l
International collaboration through a number of non-profit organisations has been a
key factor for �he development of haematopoietic stem celll transplantation.
Thanks to the dedication and far-sighted view of a few pioneers, it was realised that
it is essential to work together in order to facilitate the development of
haematopoietic stem cell transplant, help new centres and laboratory facilities to be
established, provide guidel ines, develop accreditation through JACIE and promote
the development of new research protocols.
Refer,ences:
Canoer Research UK. (2015). What is leukapheresis?. Available: http ://www. cancerresearchu k. org/a bout-cancer/cancers-in-general/cancer questions/what-is-leu ka pheresis. Last accessed 9th January 2015.
Ferrara,J, Levine.,J, Reddy,P, Holler.IE, .. (2009). Graft-versus-host disease. Seminar.
373 (3), p1550-1557.
Gluckman, IE. (2012). A brief history of HSCT . In: Gluckman, IE The, EBMT
Handbook 2012 edition. London: . p22-25.
Markey,K, MacDonald,K, IHillll,G. (2014). The biology of graft-versus-host disease:
experimental systems instructing clinical practice. http://www. bloodjournal. orgkontent/124/3/354. full.html. 12:4 (3), p354-359.
NHS Commissloning Board. (2013). Clinical Commissioning Policy: Haematopoietic
Stem Cell Transplantation (HSCT) (All Ages).Available:
https://www.engiand.nhs.uk/wp-content/uploads/2013/1 O/b04-p-a.pdf. Last accessed
26th December 2015.
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Submitted to University of Westminster St udent Paper
Ferrara, J.L.. "Graf t-versus-host disease", The Lancet, 20090502/08 Publicat ion
www.eurocord-ed.org Int ernet Source
gastroindia.net Int ernet Source
en.wikipedia.org Int ernet Source
www.cancerresearchuk.org Int ernet Source
emedicine.medscape.com Int ernet Source
www.nature.com Int ernet Source
Warren D. Shlomchik. "Graf t-versus-host
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disease", Nature Reviews Immunology, 05/2007 Publicat ion
R M Egeler. "Acute GvHD: pathogenesis and classif ication", Bone Marrow Transplantation, 06/2008 Publicat ion
- HSCT literature review
- by Ujala Masood
- HSCT literature review
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