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Interleukin-21 Drives a Hypermetabolic State and CD4(+) T Cell-associated Pathogenicity in Chronic Intestinal Inflammation

BACKGROUND & AIMS: Incapacitated regulatory T cells (Tregs) contribute to immune-mediated diseases. Inflammatory Tregs are evident during human inflammatory bowel disease (IBD); however, mechanisms driving the development of these cells and their function are not well understood. Therefore, we i...

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Autores principales: Bamidele, Adebowale O., Mishra, Shravan K., Hirsova, Petra, Fehrenbach, Patrick J., Valenzuela-Pérez, Lucia, Lee, Hyun Se Kim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274654/
https://www.ncbi.nlm.nih.gov/pubmed/37333332
http://dx.doi.org/10.1101/2023.06.02.543518
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author Bamidele, Adebowale O.
Mishra, Shravan K.
Hirsova, Petra
Fehrenbach, Patrick J.
Valenzuela-Pérez, Lucia
Lee, Hyun Se Kim
author_facet Bamidele, Adebowale O.
Mishra, Shravan K.
Hirsova, Petra
Fehrenbach, Patrick J.
Valenzuela-Pérez, Lucia
Lee, Hyun Se Kim
author_sort Bamidele, Adebowale O.
collection PubMed
description BACKGROUND & AIMS: Incapacitated regulatory T cells (Tregs) contribute to immune-mediated diseases. Inflammatory Tregs are evident during human inflammatory bowel disease (IBD); however, mechanisms driving the development of these cells and their function are not well understood. Therefore, we investigated the role of cellular metabolism in Tregs relevant to gut homeostasis. METHODS: Using human Tregs, we performed mitochondrial ultrastructural studies via electron microscopy and confocal imaging, biochemical and protein analyses using proximity ligation assay, immunoblotting, mass cytometry and fluorescence-activated cell sorting, metabolomics, gene expression analysis, and real-time metabolic profiling utilizing Seahorse XF analyzer. We utilized Crohn’s disease single-cell RNA sequencing dataset to infer therapeutic relevance of targeting metabolic pathways in inflammatory Tregs. We examined the superior functionality of genetically-modified Tregs in CD4(+) T cell-induced murine colitis models. RESULTS: Mitochondria-endoplasmic reticulum (ER) appositions, known to mediate pyruvate entry into mitochondria via VDAC1, are abundant in Tregs. VDAC1 inhibition perturbed pyruvate metabolism, eliciting sensitization to other inflammatory signals reversible by membrane-permeable methyl pyruvate (MePyr) supplementation. Notably, IL-21 diminished mitochondria-ER appositions, resulting in enhanced enzymatic function of glycogen synthase kinase 3 β (GSK3β), a putative negative regulator of VDAC1, and a hypermetabolic state that amplified Treg inflammatory response. MePyr and GSK3β pharmacologic inhibitor (LY2090314) reversed IL-21-induced metabolic rewiring and inflammatory state. Moreover, IL-21-induced metabolic genes in Tregs in vitro were enriched in human Crohn’s disease intestinal Tregs. Adoptively transferred Il21r(−/−) Tregs efficiently rescued murine colitis in contrast to wild-type Tregs. CONCLUSIONS: IL-21 triggers metabolic dysfunction associated with Treg inflammatory response. Inhibiting IL-21-induced metabolism in Tregs may mitigate CD4(+) T cell-driven chronic intestinal inflammation.
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spelling pubmed-102746542023-06-17 Interleukin-21 Drives a Hypermetabolic State and CD4(+) T Cell-associated Pathogenicity in Chronic Intestinal Inflammation Bamidele, Adebowale O. Mishra, Shravan K. Hirsova, Petra Fehrenbach, Patrick J. Valenzuela-Pérez, Lucia Lee, Hyun Se Kim bioRxiv Article BACKGROUND & AIMS: Incapacitated regulatory T cells (Tregs) contribute to immune-mediated diseases. Inflammatory Tregs are evident during human inflammatory bowel disease (IBD); however, mechanisms driving the development of these cells and their function are not well understood. Therefore, we investigated the role of cellular metabolism in Tregs relevant to gut homeostasis. METHODS: Using human Tregs, we performed mitochondrial ultrastructural studies via electron microscopy and confocal imaging, biochemical and protein analyses using proximity ligation assay, immunoblotting, mass cytometry and fluorescence-activated cell sorting, metabolomics, gene expression analysis, and real-time metabolic profiling utilizing Seahorse XF analyzer. We utilized Crohn’s disease single-cell RNA sequencing dataset to infer therapeutic relevance of targeting metabolic pathways in inflammatory Tregs. We examined the superior functionality of genetically-modified Tregs in CD4(+) T cell-induced murine colitis models. RESULTS: Mitochondria-endoplasmic reticulum (ER) appositions, known to mediate pyruvate entry into mitochondria via VDAC1, are abundant in Tregs. VDAC1 inhibition perturbed pyruvate metabolism, eliciting sensitization to other inflammatory signals reversible by membrane-permeable methyl pyruvate (MePyr) supplementation. Notably, IL-21 diminished mitochondria-ER appositions, resulting in enhanced enzymatic function of glycogen synthase kinase 3 β (GSK3β), a putative negative regulator of VDAC1, and a hypermetabolic state that amplified Treg inflammatory response. MePyr and GSK3β pharmacologic inhibitor (LY2090314) reversed IL-21-induced metabolic rewiring and inflammatory state. Moreover, IL-21-induced metabolic genes in Tregs in vitro were enriched in human Crohn’s disease intestinal Tregs. Adoptively transferred Il21r(−/−) Tregs efficiently rescued murine colitis in contrast to wild-type Tregs. CONCLUSIONS: IL-21 triggers metabolic dysfunction associated with Treg inflammatory response. Inhibiting IL-21-induced metabolism in Tregs may mitigate CD4(+) T cell-driven chronic intestinal inflammation. Cold Spring Harbor Laboratory 2023-06-06 /pmc/articles/PMC10274654/ /pubmed/37333332 http://dx.doi.org/10.1101/2023.06.02.543518 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Bamidele, Adebowale O.
Mishra, Shravan K.
Hirsova, Petra
Fehrenbach, Patrick J.
Valenzuela-Pérez, Lucia
Lee, Hyun Se Kim
Interleukin-21 Drives a Hypermetabolic State and CD4(+) T Cell-associated Pathogenicity in Chronic Intestinal Inflammation
title Interleukin-21 Drives a Hypermetabolic State and CD4(+) T Cell-associated Pathogenicity in Chronic Intestinal Inflammation
title_full Interleukin-21 Drives a Hypermetabolic State and CD4(+) T Cell-associated Pathogenicity in Chronic Intestinal Inflammation
title_fullStr Interleukin-21 Drives a Hypermetabolic State and CD4(+) T Cell-associated Pathogenicity in Chronic Intestinal Inflammation
title_full_unstemmed Interleukin-21 Drives a Hypermetabolic State and CD4(+) T Cell-associated Pathogenicity in Chronic Intestinal Inflammation
title_short Interleukin-21 Drives a Hypermetabolic State and CD4(+) T Cell-associated Pathogenicity in Chronic Intestinal Inflammation
title_sort interleukin-21 drives a hypermetabolic state and cd4(+) t cell-associated pathogenicity in chronic intestinal inflammation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274654/
https://www.ncbi.nlm.nih.gov/pubmed/37333332
http://dx.doi.org/10.1101/2023.06.02.543518
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