Alemtuzumab-induced immune phenotype and repertoire changes: implications for secondary autoimmunity.
CD52
T-cell repertoire
alemtuzumab
immune reconstitution therapy
secondary autoimmunity
Journal
Brain : a journal of neurology
ISSN: 1460-2156
Titre abrégé: Brain
Pays: England
ID NLM: 0372537
Informations de publication
Date de publication:
03 06 2022
03 06 2022
Historique:
received:
30
12
2020
revised:
04
01
2022
accepted:
27
01
2022
entrez:
6
6
2022
pubmed:
7
6
2022
medline:
9
6
2022
Statut:
ppublish
Résumé
Alemtuzumab is a monoclonal antibody that causes rapid depletion of CD52-expressing immune cells. It has proven to be highly efficacious in active relapsing-remitting multiple sclerosis; however, the high risk of secondary autoimmune disorders has greatly complicated its use. Thus, deeper insight into the pathophysiology of secondary autoimmunity and potential biomarkers is urgently needed. The most critical time points in the decision-making process for alemtuzumab therapy are before or at Month 12, where the ability to identify secondary autoimmunity risk would be instrumental. Therefore, we investigated components of blood and CSF of up to 106 multiple sclerosis patients before and after alemtuzumab treatment focusing on those critical time points. Consistent with previous reports, deep flow cytometric immune-cell profiling (n = 30) demonstrated major effects on adaptive rather than innate immunity, which favoured regulatory immune cell subsets within the repopulation. The longitudinally studied CSF compartment (n = 18) mainly mirrored the immunological effects observed in the periphery. Alemtuzumab-induced changes including increased numbers of naïve CD4+ T cells and B cells as well as a clonal renewal of CD4+ T- and B-cell repertoires were partly reminiscent of haematopoietic stem cell transplantation; in contrast, thymopoiesis was reduced and clonal renewal of T-cell repertoires after alemtuzumab was incomplete. Stratification for secondary autoimmunity did not show clear immununological cellular or proteomic traits or signatures associated with secondary autoimmunity. However, a restricted T-cell repertoire with hyperexpanded T-cell clones at baseline, which persisted and demonstrated further expansion at Month 12 by homeostatic proliferation, identified patients developing secondary autoimmune disorders (n = 7 without secondary autoimmunity versus n = 5 with secondary autoimmunity). Those processes were followed by an expansion of memory B-cell clones irrespective of persistence, which we detected shortly after the diagnosis of secondary autoimmune disease. In conclusion, our data demonstrate that (i) peripheral immunological alterations following alemtuzumab are mirrored by longitudinal changes in the CSF; (ii) incomplete T-cell repertoire renewal and reduced thymopoiesis contribute to a proautoimmune state after alemtuzumab; (iii) proteomics and surface immunological phenotyping do not identify patients at risk for secondary autoimmune disorders; (iv) homeostatic proliferation with disparate dynamics of clonal T- and B-cell expansions are associated with secondary autoimmunity; and (v) hyperexpanded T-cell clones at baseline and Month 12 may be used as a biomarker for the risk of alemtuzumab-induced autoimmunity.
Identifiants
pubmed: 35661859
pii: 6590581
doi: 10.1093/brain/awac064
pmc: PMC9166548
doi:
Substances chimiques
Alemtuzumab
3A189DH42V
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
1711-1725Commentaires et corrections
Type : CommentIn
Informations de copyright
© The Author(s) 2022. Published by Oxford University Press on behalf of the Guarantors of Brain.
Références
CNS Drugs. 2016 Jan;30(1):41-51
pubmed: 26758290
Nat Rev Neurol. 2020 Jan;16(1):56-62
pubmed: 31649335
Brain. 2013 Sep;136(Pt 9):2888-903
pubmed: 23864273
JAMA Neurol. 2017 Aug 1;74(8):961-969
pubmed: 28604916
Brain. 2000 Jun;123 ( Pt 6):1102-11
pubmed: 10825350
Neurology. 2018 Dec 11;91(24):e2233-e2237
pubmed: 30404783
Curr Opin Immunol. 2016 Dec;43:81-88
pubmed: 27764715
Front Immunol. 2018 Oct 17;9:2374
pubmed: 30386337
BMC Neurol. 2016 Mar 10;16:34
pubmed: 26966029
J Clin Invest. 2009 Jul;119(7):2052-61
pubmed: 19546505
J Neurol Neurosurg Psychiatry. 2012 Mar;83(3):298-304
pubmed: 22056965
Neurol Neuroimmunol Neuroinflamm. 2020 Aug 7;7(6):
pubmed: 32769201
J Autoimmun. 2018 Aug;92:35-46
pubmed: 29934135
J Neuroinflammation. 2018 Oct 30;15(1):300
pubmed: 30373595
Lancet. 2012 Nov 24;380(9856):1819-28
pubmed: 23122652
Immunology. 2018 Jun;154(2):253-260
pubmed: 29247512
Blood. 2011 Aug 11;118(6):1693-8
pubmed: 21596847
Neurol Neuroimmunol Neuroinflamm. 2017 Jun 05;4(4):e360
pubmed: 28626781
J Neurol Neurosurg Psychiatry. 2021 Sep;92(9):1007-1013
pubmed: 33712515
Cell Rep Med. 2021 May 18;2(5):100287
pubmed: 33969320
PLoS One. 2012;7(3):e34547
pubmed: 22479644
J Neuroinflammation. 2020 Jun 15;17(1):189
pubmed: 32539719
Blood. 2007 Mar 15;109(6):2643-548
pubmed: 17119125
Nat Rev Neurol. 2013 Mar;9(3):125-6
pubmed: 23358486
PLoS One. 2011;6(8):e24226
pubmed: 21918685
J Clin Endocrinol Metab. 2014 Jan;99(1):80-9
pubmed: 24170099
Nat Methods. 2015 May;12(5):380-1
pubmed: 25924071
CNS Drugs. 2020 Sep;34(9):973-988
pubmed: 32710396
Exp Neurol. 2014 Dec;262 Pt A:37-43
pubmed: 24792641
PLoS Comput Biol. 2015 Nov 25;11(11):e1004503
pubmed: 26606115
J Clin Invest. 2014 Mar;124(3):1168-72
pubmed: 24531550
Nat Cancer. 2020 Feb;1(2):197-209
pubmed: 33305293
Immunology. 2009 Oct;128(2):260-70
pubmed: 19740383
J Exp Med. 2005 Mar 7;201(5):805-16
pubmed: 15738052
Int J Mol Sci. 2015 Jul 20;16(7):16414-39
pubmed: 26204829
Brain. 2021 Oct 22;144(9):2625-2634
pubmed: 33848319
Front Immunol. 2018 Mar 12;9:410
pubmed: 29593711
Mult Scler. 2018 Nov;24(13):1776-1778
pubmed: 30307371
Mult Scler. 2018 Nov;24(13):1783-1784
pubmed: 30307361
Mult Scler. 2018 Nov;24(13):1779-1782
pubmed: 30307364
Neurology. 2011 Aug 9;77(6):573-9
pubmed: 21795656
J Neurol Neurosurg Psychiatry. 2015 Feb;86(2):208-15
pubmed: 24849515
EBioMedicine. 2019 Aug;46:381-386
pubmed: 31371192
Nat Rev Neurol. 2017 Jul;13(7):391-405
pubmed: 28621766
J Neurol Neurosurg Psychiatry. 2014 Jul;85(7):795-8
pubmed: 24368840
Lancet. 2012 Nov 24;380(9856):1829-39
pubmed: 23122650
Lancet. 2019 Apr 27;393(10182):1683
pubmed: 31034363
Mult Scler. 2006 Dec;12(6):814-23
pubmed: 17263012
Neurology. 2012 Apr 3;78(14):1069-78
pubmed: 22442431
Proc Natl Acad Sci U S A. 2020 Sep 1;117(35):21546-21556
pubmed: 32817525
J Neurol. 2022 May;269(5):2513-2526
pubmed: 34633525
Arthritis Res Ther. 2016 Aug 17;18:188
pubmed: 27535236
Neurol Neuroimmunol Neuroinflamm. 2016 Jan 21;3(1):e194
pubmed: 26819963
J Invest Dermatol. 2001 Dec;117(6):1464-70
pubmed: 11886510
Cell. 2004 Apr 16;117(2):265-77
pubmed: 15084263
Oncologist. 2008 Feb;13(2):167-74
pubmed: 18305062
Sci Transl Med. 2019 May 1;11(490):
pubmed: 31043571
Int Immunol. 2010 Apr;22(4):259-70
pubmed: 20139172
Proc Natl Acad Sci U S A. 2016 May 24;113(21):E2973-82
pubmed: 27162345
Neurology. 2008 Oct 14;71(16):1261-7
pubmed: 18852441
Neurology. 2014 Jun 17;82(24):2158-64
pubmed: 24838790
Neurol Res Pract. 2021 Aug 6;3(1):45
pubmed: 34362474
Immunopharmacol Immunotoxicol. 2020 Apr;42(2):110-118
pubmed: 32066303
J Immunol. 2013 Dec 15;191(12):5867-74
pubmed: 24198283
Proc Natl Acad Sci U S A. 2013 Dec 10;110(50):20200-5
pubmed: 24282306
N Engl J Med. 2008 Aug 14;359(7):768-9
pubmed: 18703487
Clin Immunol. 2006 Aug;120(2):121-8
pubmed: 16766227
Mult Scler. 2012 May;18(5):569-77
pubmed: 22127897
Neurol Neuroimmunol Neuroinflamm. 2016 Oct 12;3(6):e289
pubmed: 27766281
Ann Neurol. 2013 Mar;73(3):341-54
pubmed: 23463494
Neurol Neuroimmunol Neuroinflamm. 2019 Oct 29;7(1):
pubmed: 31662412