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Distinct functions and transcriptional signatures in orally induced regulatory T cell populations

Oral administration of antigen induces regulatory T cells (Treg) that can not only control local immune responses in the small intestine, but also traffic to the central immune system to deliver systemic suppression. Employing murine models of the inherited bleeding disorder hemophilia, we find that...

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Autores principales: Biswas, Moanaro, So, Kaman, Bertolini, Thais B., Krishnan, Preethi, Rana, Jyoti, Muñoz-Melero, Maite, Syed, Farooq, Kumar, Sandeep R. P., Gao, Hongyu, Xuei, Xiaoling, Terhorst, Cox, Daniell, Henry, Cao, Sha, Herzog, Roland W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10637621/
https://www.ncbi.nlm.nih.gov/pubmed/37954612
http://dx.doi.org/10.3389/fimmu.2023.1278184
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author Biswas, Moanaro
So, Kaman
Bertolini, Thais B.
Krishnan, Preethi
Rana, Jyoti
Muñoz-Melero, Maite
Syed, Farooq
Kumar, Sandeep R. P.
Gao, Hongyu
Xuei, Xiaoling
Terhorst, Cox
Daniell, Henry
Cao, Sha
Herzog, Roland W.
author_facet Biswas, Moanaro
So, Kaman
Bertolini, Thais B.
Krishnan, Preethi
Rana, Jyoti
Muñoz-Melero, Maite
Syed, Farooq
Kumar, Sandeep R. P.
Gao, Hongyu
Xuei, Xiaoling
Terhorst, Cox
Daniell, Henry
Cao, Sha
Herzog, Roland W.
author_sort Biswas, Moanaro
collection PubMed
description Oral administration of antigen induces regulatory T cells (Treg) that can not only control local immune responses in the small intestine, but also traffic to the central immune system to deliver systemic suppression. Employing murine models of the inherited bleeding disorder hemophilia, we find that oral antigen administration induces three CD4+ Treg subsets, namely FoxP3+LAP-, FoxP3+LAP+, and FoxP3-LAP+. These T cells act in concert to suppress systemic antibody production induced by therapeutic protein administration. Whilst both FoxP3+LAP+ and FoxP3-LAP+ CD4+ T cells express membrane-bound TGF-β (latency associated peptide, LAP), phenotypic, functional, and single cell transcriptomic analyses reveal distinct characteristics in the two subsets. As judged by an increase in IL-2Rα and TCR signaling, elevated expression of co-inhibitory receptor molecules and upregulation of the TGFβ and IL-10 signaling pathways, FoxP3+LAP+ cells are an activated form of FoxP3+LAP- Treg. Whereas FoxP3-LAP+ cells express low levels of genes involved in TCR signaling or co-stimulation, engagement of the AP-1 complex members Jun/Fos and Atf3 is most prominent, consistent with potent IL-10 production. Single cell transcriptomic analysis further reveals that engagement of the Jun/Fos transcription factors is requisite for mediating TGFβ expression. This can occur via an Il2ra dependent or independent process in FoxP3+LAP+ or FoxP3-LAP+ cells respectively. Surprisingly, both FoxP3+LAP+ and FoxP3-LAP+ cells potently suppress and induce FoxP3 expression in CD4+ conventional T cells. In this process, FoxP3-LAP+ cells may themselves convert to FoxP3+ Treg. We conclude that orally induced suppression is dependent on multiple regulatory cell types with complementary and interconnected roles.
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spelling pubmed-106376212023-11-11 Distinct functions and transcriptional signatures in orally induced regulatory T cell populations Biswas, Moanaro So, Kaman Bertolini, Thais B. Krishnan, Preethi Rana, Jyoti Muñoz-Melero, Maite Syed, Farooq Kumar, Sandeep R. P. Gao, Hongyu Xuei, Xiaoling Terhorst, Cox Daniell, Henry Cao, Sha Herzog, Roland W. Front Immunol Immunology Oral administration of antigen induces regulatory T cells (Treg) that can not only control local immune responses in the small intestine, but also traffic to the central immune system to deliver systemic suppression. Employing murine models of the inherited bleeding disorder hemophilia, we find that oral antigen administration induces three CD4+ Treg subsets, namely FoxP3+LAP-, FoxP3+LAP+, and FoxP3-LAP+. These T cells act in concert to suppress systemic antibody production induced by therapeutic protein administration. Whilst both FoxP3+LAP+ and FoxP3-LAP+ CD4+ T cells express membrane-bound TGF-β (latency associated peptide, LAP), phenotypic, functional, and single cell transcriptomic analyses reveal distinct characteristics in the two subsets. As judged by an increase in IL-2Rα and TCR signaling, elevated expression of co-inhibitory receptor molecules and upregulation of the TGFβ and IL-10 signaling pathways, FoxP3+LAP+ cells are an activated form of FoxP3+LAP- Treg. Whereas FoxP3-LAP+ cells express low levels of genes involved in TCR signaling or co-stimulation, engagement of the AP-1 complex members Jun/Fos and Atf3 is most prominent, consistent with potent IL-10 production. Single cell transcriptomic analysis further reveals that engagement of the Jun/Fos transcription factors is requisite for mediating TGFβ expression. This can occur via an Il2ra dependent or independent process in FoxP3+LAP+ or FoxP3-LAP+ cells respectively. Surprisingly, both FoxP3+LAP+ and FoxP3-LAP+ cells potently suppress and induce FoxP3 expression in CD4+ conventional T cells. In this process, FoxP3-LAP+ cells may themselves convert to FoxP3+ Treg. We conclude that orally induced suppression is dependent on multiple regulatory cell types with complementary and interconnected roles. Frontiers Media S.A. 2023-10-26 /pmc/articles/PMC10637621/ /pubmed/37954612 http://dx.doi.org/10.3389/fimmu.2023.1278184 Text en Copyright © 2023 Biswas, So, Bertolini, Krishnan, Rana, Muñoz-Melero, Syed, Kumar, Gao, Xuei, Terhorst, Daniell, Cao and Herzog https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Immunology
Biswas, Moanaro
So, Kaman
Bertolini, Thais B.
Krishnan, Preethi
Rana, Jyoti
Muñoz-Melero, Maite
Syed, Farooq
Kumar, Sandeep R. P.
Gao, Hongyu
Xuei, Xiaoling
Terhorst, Cox
Daniell, Henry
Cao, Sha
Herzog, Roland W.
Distinct functions and transcriptional signatures in orally induced regulatory T cell populations
title Distinct functions and transcriptional signatures in orally induced regulatory T cell populations
title_full Distinct functions and transcriptional signatures in orally induced regulatory T cell populations
title_fullStr Distinct functions and transcriptional signatures in orally induced regulatory T cell populations
title_full_unstemmed Distinct functions and transcriptional signatures in orally induced regulatory T cell populations
title_short Distinct functions and transcriptional signatures in orally induced regulatory T cell populations
title_sort distinct functions and transcriptional signatures in orally induced regulatory t cell populations
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10637621/
https://www.ncbi.nlm.nih.gov/pubmed/37954612
http://dx.doi.org/10.3389/fimmu.2023.1278184
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