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One, No One, and One Hundred Thousand: T Regulatory Cells' Multiple Identities in Neuroimmunity

As the Nobel laureate Luigi Pirandello wrote in his novels, identities can be evanescent. Although a quarter of a century has passed since regulatory T cells (Treg) were first described, new studies continue to reveal surprising and contradictory features of this lymphocyte subset. Treg cells are th...

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Autores principales: Sambucci, Manolo, Gargano, Francesca, Guerrera, Gisella, Battistini, Luca, Borsellino, Giovanna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6955595/
https://www.ncbi.nlm.nih.gov/pubmed/31956323
http://dx.doi.org/10.3389/fimmu.2019.02947
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author Sambucci, Manolo
Gargano, Francesca
Guerrera, Gisella
Battistini, Luca
Borsellino, Giovanna
author_facet Sambucci, Manolo
Gargano, Francesca
Guerrera, Gisella
Battistini, Luca
Borsellino, Giovanna
author_sort Sambucci, Manolo
collection PubMed
description As the Nobel laureate Luigi Pirandello wrote in his novels, identities can be evanescent. Although a quarter of a century has passed since regulatory T cells (Treg) were first described, new studies continue to reveal surprising and contradictory features of this lymphocyte subset. Treg cells are the core of the immunological workforce engaged in the restraint of autoimmune or inflammatory reactions, and their characterization has revealed substantial heterogeneity and complexity in the phenotype and gene expression profiles, proving them to be a most versatile and adaptive cell type, as exemplified by their plasticity in fine-tuning immune responses. Defects in Treg function are associated with several autoimmune diseases, including multiple sclerosis, which is caused by an inappropriate immune reaction toward brain components; conversely, the beneficial effects of immunomodulating therapies on disease progression have been shown to partly act upon the biology of these cells. Both in animals and in humans the pool of circulating Treg cells is a mixture of natural (nTregs) and peripherally-induced Treg (pTregs). Particularly in humans, circulating Treg cells can be phenotypically subdivided into different subpopulations, which so far are not well-characterized, particularly in the context of autoimmunity. Recently, Treg cells have been rediscovered as mediators of tissue healing, and have also shown to be involved in organ homeostasis. Moreover, stability of the Treg lineage has recently been addressed by several conflicting reports, and immune-suppressive abilities of these cells have been shown to be dynamically regulated, particularly in inflammatory conditions, adding further levels of complexity to the study of this cell subset. Finally, Treg cells exert their suppressive function through different mechanisms, some of which—such as their ectoenzymatic activity—are particularly relevant in CNS autoimmunity. Here, we will review the phenotypically and functionally discernible Treg cell subpopulations in health and in multiple sclerosis, touching also upon the effects on this cell type of immunomodulatory drugs used for the treatment of this disease.
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spelling pubmed-69555952020-01-17 One, No One, and One Hundred Thousand: T Regulatory Cells' Multiple Identities in Neuroimmunity Sambucci, Manolo Gargano, Francesca Guerrera, Gisella Battistini, Luca Borsellino, Giovanna Front Immunol Immunology As the Nobel laureate Luigi Pirandello wrote in his novels, identities can be evanescent. Although a quarter of a century has passed since regulatory T cells (Treg) were first described, new studies continue to reveal surprising and contradictory features of this lymphocyte subset. Treg cells are the core of the immunological workforce engaged in the restraint of autoimmune or inflammatory reactions, and their characterization has revealed substantial heterogeneity and complexity in the phenotype and gene expression profiles, proving them to be a most versatile and adaptive cell type, as exemplified by their plasticity in fine-tuning immune responses. Defects in Treg function are associated with several autoimmune diseases, including multiple sclerosis, which is caused by an inappropriate immune reaction toward brain components; conversely, the beneficial effects of immunomodulating therapies on disease progression have been shown to partly act upon the biology of these cells. Both in animals and in humans the pool of circulating Treg cells is a mixture of natural (nTregs) and peripherally-induced Treg (pTregs). Particularly in humans, circulating Treg cells can be phenotypically subdivided into different subpopulations, which so far are not well-characterized, particularly in the context of autoimmunity. Recently, Treg cells have been rediscovered as mediators of tissue healing, and have also shown to be involved in organ homeostasis. Moreover, stability of the Treg lineage has recently been addressed by several conflicting reports, and immune-suppressive abilities of these cells have been shown to be dynamically regulated, particularly in inflammatory conditions, adding further levels of complexity to the study of this cell subset. Finally, Treg cells exert their suppressive function through different mechanisms, some of which—such as their ectoenzymatic activity—are particularly relevant in CNS autoimmunity. Here, we will review the phenotypically and functionally discernible Treg cell subpopulations in health and in multiple sclerosis, touching also upon the effects on this cell type of immunomodulatory drugs used for the treatment of this disease. Frontiers Media S.A. 2019-12-20 /pmc/articles/PMC6955595/ /pubmed/31956323 http://dx.doi.org/10.3389/fimmu.2019.02947 Text en Copyright © 2019 Sambucci, Gargano, Guerrera, Battistini and Borsellino. http://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
Sambucci, Manolo
Gargano, Francesca
Guerrera, Gisella
Battistini, Luca
Borsellino, Giovanna
One, No One, and One Hundred Thousand: T Regulatory Cells' Multiple Identities in Neuroimmunity
title One, No One, and One Hundred Thousand: T Regulatory Cells' Multiple Identities in Neuroimmunity
title_full One, No One, and One Hundred Thousand: T Regulatory Cells' Multiple Identities in Neuroimmunity
title_fullStr One, No One, and One Hundred Thousand: T Regulatory Cells' Multiple Identities in Neuroimmunity
title_full_unstemmed One, No One, and One Hundred Thousand: T Regulatory Cells' Multiple Identities in Neuroimmunity
title_short One, No One, and One Hundred Thousand: T Regulatory Cells' Multiple Identities in Neuroimmunity
title_sort one, no one, and one hundred thousand: t regulatory cells' multiple identities in neuroimmunity
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6955595/
https://www.ncbi.nlm.nih.gov/pubmed/31956323
http://dx.doi.org/10.3389/fimmu.2019.02947
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