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A metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment

Immunotherapy has led to impressive advances in the treatment of autoimmune and pro-inflammatory disorders; yet, its clinical outcomes remain limited by a variety of factors including the pro-inflammatory microenvironment (IME). Discovering effective immunomodulatory agents, and the mechanisms by wh...

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Autores principales: Das, Jugal Kishore, Guo, Fengguang, Hunt, Carrie, Steinmeyer, Shelby, Plocica, Julia A, Kobayashi, Koichi S., Ding, Yufang, Jayaraman, Arul, Ficht, Thomas A, Alaniz, Robert C., de Figueiredo, Paul, Song, Jianxun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9683044/
https://www.ncbi.nlm.nih.gov/pubmed/36404471
http://dx.doi.org/10.1080/19490976.2022.2143222
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author Das, Jugal Kishore
Guo, Fengguang
Hunt, Carrie
Steinmeyer, Shelby
Plocica, Julia A
Kobayashi, Koichi S.
Ding, Yufang
Jayaraman, Arul
Ficht, Thomas A
Alaniz, Robert C.
de Figueiredo, Paul
Song, Jianxun
author_facet Das, Jugal Kishore
Guo, Fengguang
Hunt, Carrie
Steinmeyer, Shelby
Plocica, Julia A
Kobayashi, Koichi S.
Ding, Yufang
Jayaraman, Arul
Ficht, Thomas A
Alaniz, Robert C.
de Figueiredo, Paul
Song, Jianxun
author_sort Das, Jugal Kishore
collection PubMed
description Immunotherapy has led to impressive advances in the treatment of autoimmune and pro-inflammatory disorders; yet, its clinical outcomes remain limited by a variety of factors including the pro-inflammatory microenvironment (IME). Discovering effective immunomodulatory agents, and the mechanisms by which they control disease, will lead to innovative strategies for enhancing the effectiveness of current immunotherapeutic approaches. We have metabolically engineered an attenuated bacterial strain (i.e., Brucella melitensis 16M ∆vjbR, Bm∆vjbR::tnaA) to produce indole, a tryptophan metabolite that controls the fate and function of regulatory T (T(reg)) cells. We demonstrated that treatment with Bm∆vjbR::tnaA polarized macrophages (Mφ) which produced anti-inflammatory cytokines (e.g., IL-10) and promoted T(reg) function; moreover, when combined with adoptive cell transfer (ACT) of T(reg) cells, a single treatment with our engineered bacterial strain dramatically reduced the incidence and score of autoimmune arthritis and decreased joint damage. These findings show how a metabolically engineered bacterium can constitute a powerful vehicle for improving the efficacy of immunotherapy, defeating autoimmunity, and reducing inflammation by remodeling the IME and augmenting T(reg) cell function.
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spelling pubmed-96830442022-11-24 A metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment Das, Jugal Kishore Guo, Fengguang Hunt, Carrie Steinmeyer, Shelby Plocica, Julia A Kobayashi, Koichi S. Ding, Yufang Jayaraman, Arul Ficht, Thomas A Alaniz, Robert C. de Figueiredo, Paul Song, Jianxun Gut Microbes Brief Report Immunotherapy has led to impressive advances in the treatment of autoimmune and pro-inflammatory disorders; yet, its clinical outcomes remain limited by a variety of factors including the pro-inflammatory microenvironment (IME). Discovering effective immunomodulatory agents, and the mechanisms by which they control disease, will lead to innovative strategies for enhancing the effectiveness of current immunotherapeutic approaches. We have metabolically engineered an attenuated bacterial strain (i.e., Brucella melitensis 16M ∆vjbR, Bm∆vjbR::tnaA) to produce indole, a tryptophan metabolite that controls the fate and function of regulatory T (T(reg)) cells. We demonstrated that treatment with Bm∆vjbR::tnaA polarized macrophages (Mφ) which produced anti-inflammatory cytokines (e.g., IL-10) and promoted T(reg) function; moreover, when combined with adoptive cell transfer (ACT) of T(reg) cells, a single treatment with our engineered bacterial strain dramatically reduced the incidence and score of autoimmune arthritis and decreased joint damage. These findings show how a metabolically engineered bacterium can constitute a powerful vehicle for improving the efficacy of immunotherapy, defeating autoimmunity, and reducing inflammation by remodeling the IME and augmenting T(reg) cell function. Taylor & Francis 2022-11-20 /pmc/articles/PMC9683044/ /pubmed/36404471 http://dx.doi.org/10.1080/19490976.2022.2143222 Text en © 2022 The Author(s). Published with license by Taylor & Francis Group, LLC. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Brief Report
Das, Jugal Kishore
Guo, Fengguang
Hunt, Carrie
Steinmeyer, Shelby
Plocica, Julia A
Kobayashi, Koichi S.
Ding, Yufang
Jayaraman, Arul
Ficht, Thomas A
Alaniz, Robert C.
de Figueiredo, Paul
Song, Jianxun
A metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment
title A metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment
title_full A metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment
title_fullStr A metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment
title_full_unstemmed A metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment
title_short A metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment
title_sort metabolically engineered bacterium controls autoimmunity and inflammation by remodeling the pro-inflammatory microenvironment
topic Brief Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9683044/
https://www.ncbi.nlm.nih.gov/pubmed/36404471
http://dx.doi.org/10.1080/19490976.2022.2143222
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