Cargando…

CTLA4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular CD4(+) T cells

As chronic antigenic stimulation from infection and autoimmunity is a feature of primary antibody deficiency (PAD), analysis of affected patients could yield insights into T-cell differentiation and explain how environmental exposures modify clinical phenotypes conferred by single-gene defects. CD57...

Descripción completa

Detalles Bibliográficos
Autores principales: Hao, Yuwei, Miraghazadeh, Bahar, Chand, Rochna, Davies, Ainsley R., Cardinez, Chelisa, Kwong, Kristy, Downes, Morgan B., Sweet, Rebecca A., Cañete, Pablo F., D’Orsogna, Lloyd J., Fulcher, David A., Choo, Sharon, Yip, Desmond, Peters, Geoffrey, Yip, Sonia, Witney, Matthew J., Nekrasov, Maxim, Feng, Zhi-Ping, Tscharke, David C., Vinuesa, Carola G., Cook, Matthew C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10166697/
https://www.ncbi.nlm.nih.gov/pubmed/37161048
http://dx.doi.org/10.1038/s41423-023-01027-8
_version_ 1785038497922416640
author Hao, Yuwei
Miraghazadeh, Bahar
Chand, Rochna
Davies, Ainsley R.
Cardinez, Chelisa
Kwong, Kristy
Downes, Morgan B.
Sweet, Rebecca A.
Cañete, Pablo F.
D’Orsogna, Lloyd J.
Fulcher, David A.
Choo, Sharon
Yip, Desmond
Peters, Geoffrey
Yip, Sonia
Witney, Matthew J.
Nekrasov, Maxim
Feng, Zhi-Ping
Tscharke, David C.
Vinuesa, Carola G.
Cook, Matthew C.
author_facet Hao, Yuwei
Miraghazadeh, Bahar
Chand, Rochna
Davies, Ainsley R.
Cardinez, Chelisa
Kwong, Kristy
Downes, Morgan B.
Sweet, Rebecca A.
Cañete, Pablo F.
D’Orsogna, Lloyd J.
Fulcher, David A.
Choo, Sharon
Yip, Desmond
Peters, Geoffrey
Yip, Sonia
Witney, Matthew J.
Nekrasov, Maxim
Feng, Zhi-Ping
Tscharke, David C.
Vinuesa, Carola G.
Cook, Matthew C.
author_sort Hao, Yuwei
collection PubMed
description As chronic antigenic stimulation from infection and autoimmunity is a feature of primary antibody deficiency (PAD), analysis of affected patients could yield insights into T-cell differentiation and explain how environmental exposures modify clinical phenotypes conferred by single-gene defects. CD57 marks dysfunctional T cells that have differentiated after antigenic stimulation. Indeed, while circulating CD57(+) CD4(+) T cells are normally rare, we found that they are increased in patients with PAD and markedly increased with CTLA4 haploinsufficiency or blockade. We performed single-cell RNA-seq analysis of matched CD57(+) CD4(+) T cells from blood and tonsil samples. Circulating CD57(+) CD4(+) T cells (CD4cyt) exhibited a cytotoxic transcriptome similar to that of CD8(+) effector cells, could kill B cells, and inhibited B-cell responses. CTLA4 restrained the formation of CD4cyt. While CD57 also marked an abundant subset of follicular helper T cells, which is consistent with their antigen-driven differentiation, this subset had a pre-exhaustion transcriptomic signature marked by TCF7, TOX, and ID3 expression and constitutive expression of CTLA4 and did not become cytotoxic even after CTLA4 inhibition. Thus, CD57(+) CD4(+) T-cell cytotoxicity and exhaustion phenotypes are compartmentalised between blood and germinal centers. CTLA4 is a key modifier of CD4(+) T-cell cytotoxicity, and the pathological CD4cyt phenotype is accentuated by infection.
format Online
Article
Text
id pubmed-10166697
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-101666972023-05-11 CTLA4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular CD4(+) T cells Hao, Yuwei Miraghazadeh, Bahar Chand, Rochna Davies, Ainsley R. Cardinez, Chelisa Kwong, Kristy Downes, Morgan B. Sweet, Rebecca A. Cañete, Pablo F. D’Orsogna, Lloyd J. Fulcher, David A. Choo, Sharon Yip, Desmond Peters, Geoffrey Yip, Sonia Witney, Matthew J. Nekrasov, Maxim Feng, Zhi-Ping Tscharke, David C. Vinuesa, Carola G. Cook, Matthew C. Cell Mol Immunol Article As chronic antigenic stimulation from infection and autoimmunity is a feature of primary antibody deficiency (PAD), analysis of affected patients could yield insights into T-cell differentiation and explain how environmental exposures modify clinical phenotypes conferred by single-gene defects. CD57 marks dysfunctional T cells that have differentiated after antigenic stimulation. Indeed, while circulating CD57(+) CD4(+) T cells are normally rare, we found that they are increased in patients with PAD and markedly increased with CTLA4 haploinsufficiency or blockade. We performed single-cell RNA-seq analysis of matched CD57(+) CD4(+) T cells from blood and tonsil samples. Circulating CD57(+) CD4(+) T cells (CD4cyt) exhibited a cytotoxic transcriptome similar to that of CD8(+) effector cells, could kill B cells, and inhibited B-cell responses. CTLA4 restrained the formation of CD4cyt. While CD57 also marked an abundant subset of follicular helper T cells, which is consistent with their antigen-driven differentiation, this subset had a pre-exhaustion transcriptomic signature marked by TCF7, TOX, and ID3 expression and constitutive expression of CTLA4 and did not become cytotoxic even after CTLA4 inhibition. Thus, CD57(+) CD4(+) T-cell cytotoxicity and exhaustion phenotypes are compartmentalised between blood and germinal centers. CTLA4 is a key modifier of CD4(+) T-cell cytotoxicity, and the pathological CD4cyt phenotype is accentuated by infection. Nature Publishing Group UK 2023-05-09 2023-07 /pmc/articles/PMC10166697/ /pubmed/37161048 http://dx.doi.org/10.1038/s41423-023-01027-8 Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Hao, Yuwei
Miraghazadeh, Bahar
Chand, Rochna
Davies, Ainsley R.
Cardinez, Chelisa
Kwong, Kristy
Downes, Morgan B.
Sweet, Rebecca A.
Cañete, Pablo F.
D’Orsogna, Lloyd J.
Fulcher, David A.
Choo, Sharon
Yip, Desmond
Peters, Geoffrey
Yip, Sonia
Witney, Matthew J.
Nekrasov, Maxim
Feng, Zhi-Ping
Tscharke, David C.
Vinuesa, Carola G.
Cook, Matthew C.
CTLA4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular CD4(+) T cells
title CTLA4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular CD4(+) T cells
title_full CTLA4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular CD4(+) T cells
title_fullStr CTLA4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular CD4(+) T cells
title_full_unstemmed CTLA4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular CD4(+) T cells
title_short CTLA4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular CD4(+) T cells
title_sort ctla4 protects against maladaptive cytotoxicity during the differentiation of effector and follicular cd4(+) t cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10166697/
https://www.ncbi.nlm.nih.gov/pubmed/37161048
http://dx.doi.org/10.1038/s41423-023-01027-8
work_keys_str_mv AT haoyuwei ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT miraghazadehbahar ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT chandrochna ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT daviesainsleyr ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT cardinezchelisa ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT kwongkristy ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT downesmorganb ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT sweetrebeccaa ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT canetepablof ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT dorsognalloydj ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT fulcherdavida ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT choosharon ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT yipdesmond ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT petersgeoffrey ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT yipsonia ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT witneymatthewj ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT nekrasovmaxim ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT fengzhiping ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT tscharkedavidc ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT vinuesacarolag ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells
AT cookmatthewc ctla4protectsagainstmaladaptivecytotoxicityduringthedifferentiationofeffectorandfollicularcd4tcells