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p38α blocks brown adipose tissue thermogenesis through p38δ inhibition

Adipose tissue has emerged as an important regulator of whole-body metabolism, and its capacity to dissipate energy in the form of heat has acquired a special relevance in recent years as potential treatment for obesity. In this context, the p38MAPK pathway has arisen as a key player in the thermoge...

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Autores principales: Matesanz, Nuria, Nikolic, Ivana, Leiva, Magdalena, Pulgarín-Alfaro, Marta, Santamans, Ayelén M., Bernardo, Edgar, Mora, Alfonso, Herrera-Melle, Leticia, Rodríguez, Elena, Beiroa, Daniel, Caballero, Ainoa, Martín-García, Elena, Acín-Pérez, Rebeca, Hernández-Cosido, Lourdes, Leiva-Vega, Luis, Torres, Jorge L., Centeno, Francisco, Nebreda, Angel R., Enríquez, José Antonio, Nogueiras, Rubén, Marcos, Miguel, Sabio, Guadalupe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6051667/
https://www.ncbi.nlm.nih.gov/pubmed/29979672
http://dx.doi.org/10.1371/journal.pbio.2004455
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author Matesanz, Nuria
Nikolic, Ivana
Leiva, Magdalena
Pulgarín-Alfaro, Marta
Santamans, Ayelén M.
Bernardo, Edgar
Mora, Alfonso
Herrera-Melle, Leticia
Rodríguez, Elena
Beiroa, Daniel
Caballero, Ainoa
Martín-García, Elena
Acín-Pérez, Rebeca
Hernández-Cosido, Lourdes
Leiva-Vega, Luis
Torres, Jorge L.
Centeno, Francisco
Nebreda, Angel R.
Enríquez, José Antonio
Nogueiras, Rubén
Marcos, Miguel
Sabio, Guadalupe
author_facet Matesanz, Nuria
Nikolic, Ivana
Leiva, Magdalena
Pulgarín-Alfaro, Marta
Santamans, Ayelén M.
Bernardo, Edgar
Mora, Alfonso
Herrera-Melle, Leticia
Rodríguez, Elena
Beiroa, Daniel
Caballero, Ainoa
Martín-García, Elena
Acín-Pérez, Rebeca
Hernández-Cosido, Lourdes
Leiva-Vega, Luis
Torres, Jorge L.
Centeno, Francisco
Nebreda, Angel R.
Enríquez, José Antonio
Nogueiras, Rubén
Marcos, Miguel
Sabio, Guadalupe
author_sort Matesanz, Nuria
collection PubMed
description Adipose tissue has emerged as an important regulator of whole-body metabolism, and its capacity to dissipate energy in the form of heat has acquired a special relevance in recent years as potential treatment for obesity. In this context, the p38MAPK pathway has arisen as a key player in the thermogenic program because it is required for the activation of brown adipose tissue (BAT) thermogenesis and participates also in the transformation of white adipose tissue (WAT) into BAT-like depot called beige/brite tissue. Here, using mice that are deficient in p38α specifically in adipose tissue (p38α(Fab-KO)), we unexpectedly found that lack of p38α protected against high-fat diet (HFD)-induced obesity. We also showed that p38α(Fab-KO) mice presented higher energy expenditure due to increased BAT thermogenesis. Mechanistically, we found that lack of p38α resulted in the activation of the related protein kinase family member p38δ. Our results showed that p38δ is activated in BAT by cold exposure, and lack of this kinase specifically in adipose tissue (p38δ (Fab-KO)) resulted in overweight together with reduced energy expenditure and lower body and skin surface temperature in the BAT region. These observations indicate that p38α probably blocks BAT thermogenesis through p38δ inhibition. Consistent with the results obtained in animals, p38α was reduced in visceral and subcutaneous adipose tissue of subjects with obesity and was inversely correlated with body mass index (BMI). Altogether, we have elucidated a mechanism implicated in physiological BAT activation that has potential clinical implications for the treatment of obesity and related diseases such as diabetes.
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spelling pubmed-60516672018-07-27 p38α blocks brown adipose tissue thermogenesis through p38δ inhibition Matesanz, Nuria Nikolic, Ivana Leiva, Magdalena Pulgarín-Alfaro, Marta Santamans, Ayelén M. Bernardo, Edgar Mora, Alfonso Herrera-Melle, Leticia Rodríguez, Elena Beiroa, Daniel Caballero, Ainoa Martín-García, Elena Acín-Pérez, Rebeca Hernández-Cosido, Lourdes Leiva-Vega, Luis Torres, Jorge L. Centeno, Francisco Nebreda, Angel R. Enríquez, José Antonio Nogueiras, Rubén Marcos, Miguel Sabio, Guadalupe PLoS Biol Research Article Adipose tissue has emerged as an important regulator of whole-body metabolism, and its capacity to dissipate energy in the form of heat has acquired a special relevance in recent years as potential treatment for obesity. In this context, the p38MAPK pathway has arisen as a key player in the thermogenic program because it is required for the activation of brown adipose tissue (BAT) thermogenesis and participates also in the transformation of white adipose tissue (WAT) into BAT-like depot called beige/brite tissue. Here, using mice that are deficient in p38α specifically in adipose tissue (p38α(Fab-KO)), we unexpectedly found that lack of p38α protected against high-fat diet (HFD)-induced obesity. We also showed that p38α(Fab-KO) mice presented higher energy expenditure due to increased BAT thermogenesis. Mechanistically, we found that lack of p38α resulted in the activation of the related protein kinase family member p38δ. Our results showed that p38δ is activated in BAT by cold exposure, and lack of this kinase specifically in adipose tissue (p38δ (Fab-KO)) resulted in overweight together with reduced energy expenditure and lower body and skin surface temperature in the BAT region. These observations indicate that p38α probably blocks BAT thermogenesis through p38δ inhibition. Consistent with the results obtained in animals, p38α was reduced in visceral and subcutaneous adipose tissue of subjects with obesity and was inversely correlated with body mass index (BMI). Altogether, we have elucidated a mechanism implicated in physiological BAT activation that has potential clinical implications for the treatment of obesity and related diseases such as diabetes. Public Library of Science 2018-07-06 /pmc/articles/PMC6051667/ /pubmed/29979672 http://dx.doi.org/10.1371/journal.pbio.2004455 Text en © 2018 Matesanz et al http://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/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Matesanz, Nuria
Nikolic, Ivana
Leiva, Magdalena
Pulgarín-Alfaro, Marta
Santamans, Ayelén M.
Bernardo, Edgar
Mora, Alfonso
Herrera-Melle, Leticia
Rodríguez, Elena
Beiroa, Daniel
Caballero, Ainoa
Martín-García, Elena
Acín-Pérez, Rebeca
Hernández-Cosido, Lourdes
Leiva-Vega, Luis
Torres, Jorge L.
Centeno, Francisco
Nebreda, Angel R.
Enríquez, José Antonio
Nogueiras, Rubén
Marcos, Miguel
Sabio, Guadalupe
p38α blocks brown adipose tissue thermogenesis through p38δ inhibition
title p38α blocks brown adipose tissue thermogenesis through p38δ inhibition
title_full p38α blocks brown adipose tissue thermogenesis through p38δ inhibition
title_fullStr p38α blocks brown adipose tissue thermogenesis through p38δ inhibition
title_full_unstemmed p38α blocks brown adipose tissue thermogenesis through p38δ inhibition
title_short p38α blocks brown adipose tissue thermogenesis through p38δ inhibition
title_sort p38α blocks brown adipose tissue thermogenesis through p38δ inhibition
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6051667/
https://www.ncbi.nlm.nih.gov/pubmed/29979672
http://dx.doi.org/10.1371/journal.pbio.2004455
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