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Methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21

Methionine restriction (MR) decreases body weight and adiposity and improves glucose homeostasis in rodents. Similar to caloric restriction, MR extends lifespan, but is accompanied by increased food intake and energy expenditure. Most studies have examined MR in young animals; therefore, the aim of...

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Autores principales: Lees, Emma K, Król, Elżbieta, Grant, Louise, Shearer, Kirsty, Wyse, Cathy, Moncur, Eleanor, Bykowska, Aleksandra S, Mody, Nimesh, Gettys, Thomas W, Delibegovic, Mirela
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4331744/
https://www.ncbi.nlm.nih.gov/pubmed/24935677
http://dx.doi.org/10.1111/acel.12238
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author Lees, Emma K
Król, Elżbieta
Grant, Louise
Shearer, Kirsty
Wyse, Cathy
Moncur, Eleanor
Bykowska, Aleksandra S
Mody, Nimesh
Gettys, Thomas W
Delibegovic, Mirela
author_facet Lees, Emma K
Król, Elżbieta
Grant, Louise
Shearer, Kirsty
Wyse, Cathy
Moncur, Eleanor
Bykowska, Aleksandra S
Mody, Nimesh
Gettys, Thomas W
Delibegovic, Mirela
author_sort Lees, Emma K
collection PubMed
description Methionine restriction (MR) decreases body weight and adiposity and improves glucose homeostasis in rodents. Similar to caloric restriction, MR extends lifespan, but is accompanied by increased food intake and energy expenditure. Most studies have examined MR in young animals; therefore, the aim of this study was to investigate the ability of MR to reverse age-induced obesity and insulin resistance in adult animals. Male C57BL/6J mice aged 2 and 12 months old were fed MR (0.172% methionine) or control diet (0.86% methionine) for 8 weeks or 48 h. Food intake and whole-body physiology were assessed and serum/tissues analyzed biochemically. Methionine restriction in 12-month-old mice completely reversed age-induced alterations in body weight, adiposity, physical activity, and glucose tolerance to the levels measured in healthy 2-month-old control-fed mice. This was despite a significant increase in food intake in 12-month-old MR-fed mice. Methionine restriction decreased hepatic lipogenic gene expression and caused a remodeling of lipid metabolism in white adipose tissue, alongside increased insulin-induced phosphorylation of the insulin receptor (IR) and Akt in peripheral tissues. Mice restricted of methionine exhibited increased circulating and hepatic gene expression levels of FGF21, phosphorylation of eIF2a, and expression of ATF4, with a concomitant decrease in IRE1α phosphorylation. Short-term 48-h MR treatment increased hepatic FGF21 expression/secretion and insulin signaling and improved whole-body glucose homeostasis without affecting body weight. Our findings suggest that MR feeding can reverse the negative effects of aging on body mass, adiposity, and insulin resistance through an FGF21 mechanism. These findings implicate MR dietary intervention as a viable therapy for age-induced metabolic syndrome in adult humans.
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spelling pubmed-43317442015-02-19 Methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21 Lees, Emma K Król, Elżbieta Grant, Louise Shearer, Kirsty Wyse, Cathy Moncur, Eleanor Bykowska, Aleksandra S Mody, Nimesh Gettys, Thomas W Delibegovic, Mirela Aging Cell Original Articles Methionine restriction (MR) decreases body weight and adiposity and improves glucose homeostasis in rodents. Similar to caloric restriction, MR extends lifespan, but is accompanied by increased food intake and energy expenditure. Most studies have examined MR in young animals; therefore, the aim of this study was to investigate the ability of MR to reverse age-induced obesity and insulin resistance in adult animals. Male C57BL/6J mice aged 2 and 12 months old were fed MR (0.172% methionine) or control diet (0.86% methionine) for 8 weeks or 48 h. Food intake and whole-body physiology were assessed and serum/tissues analyzed biochemically. Methionine restriction in 12-month-old mice completely reversed age-induced alterations in body weight, adiposity, physical activity, and glucose tolerance to the levels measured in healthy 2-month-old control-fed mice. This was despite a significant increase in food intake in 12-month-old MR-fed mice. Methionine restriction decreased hepatic lipogenic gene expression and caused a remodeling of lipid metabolism in white adipose tissue, alongside increased insulin-induced phosphorylation of the insulin receptor (IR) and Akt in peripheral tissues. Mice restricted of methionine exhibited increased circulating and hepatic gene expression levels of FGF21, phosphorylation of eIF2a, and expression of ATF4, with a concomitant decrease in IRE1α phosphorylation. Short-term 48-h MR treatment increased hepatic FGF21 expression/secretion and insulin signaling and improved whole-body glucose homeostasis without affecting body weight. Our findings suggest that MR feeding can reverse the negative effects of aging on body mass, adiposity, and insulin resistance through an FGF21 mechanism. These findings implicate MR dietary intervention as a viable therapy for age-induced metabolic syndrome in adult humans. BlackWell Publishing Ltd 2014-10 2014-06-17 /pmc/articles/PMC4331744/ /pubmed/24935677 http://dx.doi.org/10.1111/acel.12238 Text en © 2014 The Authors. Aging Cell published by the Anatomical Society and John Wiley & Sons Ltd. http://creativecommons.org/licenses/by/3.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Lees, Emma K
Król, Elżbieta
Grant, Louise
Shearer, Kirsty
Wyse, Cathy
Moncur, Eleanor
Bykowska, Aleksandra S
Mody, Nimesh
Gettys, Thomas W
Delibegovic, Mirela
Methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21
title Methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21
title_full Methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21
title_fullStr Methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21
title_full_unstemmed Methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21
title_short Methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21
title_sort methionine restriction restores a younger metabolic phenotype in adult mice with alterations in fibroblast growth factor 21
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4331744/
https://www.ncbi.nlm.nih.gov/pubmed/24935677
http://dx.doi.org/10.1111/acel.12238
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