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Running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism

Loss of mitochondrial respiratory flux is a hallmark of skeletal muscle aging, contributing to a progressive decline of muscle strength. Endurance exercise alleviates the decrease in respiratory flux, both in humans and in rodents. Here, we dissect the underlying mechanism of mitochondrial flux decl...

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Autores principales: Stolle, Sarah, Ciapaite, Jolita, Reijne, Aaffien C., Talarovicova, Alzbeta, Wolters, Justina C., Aguirre‐Gamboa, Raúl, van der Vlies, Pieter, de Lange, Kim, Neerincx, Pieter B., van der Vries, Gerben, Deelen, Patrick, Swertz, Morris A., Li, Yang, Bischoff, Rainer, Permentier, Hjalmar P., Horvatovitch, Peter L., Groen, Albert K., van Dijk, Gertjan, Reijngoud, Dirk‐Jan, Bakker, Barbara M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5770778/
https://www.ncbi.nlm.nih.gov/pubmed/29120091
http://dx.doi.org/10.1111/acel.12700
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author Stolle, Sarah
Ciapaite, Jolita
Reijne, Aaffien C.
Talarovicova, Alzbeta
Wolters, Justina C.
Aguirre‐Gamboa, Raúl
van der Vlies, Pieter
de Lange, Kim
Neerincx, Pieter B.
van der Vries, Gerben
Deelen, Patrick
Swertz, Morris A.
Li, Yang
Bischoff, Rainer
Permentier, Hjalmar P.
Horvatovitch, Peter L.
Groen, Albert K.
van Dijk, Gertjan
Reijngoud, Dirk‐Jan
Bakker, Barbara M.
author_facet Stolle, Sarah
Ciapaite, Jolita
Reijne, Aaffien C.
Talarovicova, Alzbeta
Wolters, Justina C.
Aguirre‐Gamboa, Raúl
van der Vlies, Pieter
de Lange, Kim
Neerincx, Pieter B.
van der Vries, Gerben
Deelen, Patrick
Swertz, Morris A.
Li, Yang
Bischoff, Rainer
Permentier, Hjalmar P.
Horvatovitch, Peter L.
Groen, Albert K.
van Dijk, Gertjan
Reijngoud, Dirk‐Jan
Bakker, Barbara M.
author_sort Stolle, Sarah
collection PubMed
description Loss of mitochondrial respiratory flux is a hallmark of skeletal muscle aging, contributing to a progressive decline of muscle strength. Endurance exercise alleviates the decrease in respiratory flux, both in humans and in rodents. Here, we dissect the underlying mechanism of mitochondrial flux decline by integrated analysis of the molecular network. Mice were given a lifelong ad libitum low‐fat or high‐fat sucrose diet and were further divided into sedentary and running‐wheel groups. At 6, 12, 18 and 24 months, muscle weight, triglyceride content and mitochondrial respiratory flux were analysed. Subsequently, transcriptome was measured by RNA‐Seq and proteome by targeted LC‐MS/MS analysis with (13)C‐labelled standards. In the sedentary groups, mitochondrial respiratory flux declined with age. Voluntary running protected the mitochondrial respiratory flux until 18 months of age. Beyond this time point, all groups converged. Regulation Analysis of flux, proteome and transcriptome showed that the decline of flux was equally regulated at the proteomic and at the metabolic level, while regulation at the transcriptional level was marginal. Proteomic regulation was most prominent at the beginning and at the end of the pathway, namely at the pyruvate dehydrogenase complex and at the synthesis and transport of ATP. Further proteomic regulation was scattered across the entire pathway, revealing an effective multisite regulation. Finally, reactions regulated at the protein level were highly overlapping between the four experimental groups, suggesting a common, post‐transcriptional mechanism of muscle aging.
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spelling pubmed-57707782018-02-01 Running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism Stolle, Sarah Ciapaite, Jolita Reijne, Aaffien C. Talarovicova, Alzbeta Wolters, Justina C. Aguirre‐Gamboa, Raúl van der Vlies, Pieter de Lange, Kim Neerincx, Pieter B. van der Vries, Gerben Deelen, Patrick Swertz, Morris A. Li, Yang Bischoff, Rainer Permentier, Hjalmar P. Horvatovitch, Peter L. Groen, Albert K. van Dijk, Gertjan Reijngoud, Dirk‐Jan Bakker, Barbara M. Aging Cell Original Articles Loss of mitochondrial respiratory flux is a hallmark of skeletal muscle aging, contributing to a progressive decline of muscle strength. Endurance exercise alleviates the decrease in respiratory flux, both in humans and in rodents. Here, we dissect the underlying mechanism of mitochondrial flux decline by integrated analysis of the molecular network. Mice were given a lifelong ad libitum low‐fat or high‐fat sucrose diet and were further divided into sedentary and running‐wheel groups. At 6, 12, 18 and 24 months, muscle weight, triglyceride content and mitochondrial respiratory flux were analysed. Subsequently, transcriptome was measured by RNA‐Seq and proteome by targeted LC‐MS/MS analysis with (13)C‐labelled standards. In the sedentary groups, mitochondrial respiratory flux declined with age. Voluntary running protected the mitochondrial respiratory flux until 18 months of age. Beyond this time point, all groups converged. Regulation Analysis of flux, proteome and transcriptome showed that the decline of flux was equally regulated at the proteomic and at the metabolic level, while regulation at the transcriptional level was marginal. Proteomic regulation was most prominent at the beginning and at the end of the pathway, namely at the pyruvate dehydrogenase complex and at the synthesis and transport of ATP. Further proteomic regulation was scattered across the entire pathway, revealing an effective multisite regulation. Finally, reactions regulated at the protein level were highly overlapping between the four experimental groups, suggesting a common, post‐transcriptional mechanism of muscle aging. John Wiley and Sons Inc. 2017-11-09 2018-02 /pmc/articles/PMC5770778/ /pubmed/29120091 http://dx.doi.org/10.1111/acel.12700 Text en © 2017 The Authors. Aging Cell published by the Anatomical Society and John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Stolle, Sarah
Ciapaite, Jolita
Reijne, Aaffien C.
Talarovicova, Alzbeta
Wolters, Justina C.
Aguirre‐Gamboa, Raúl
van der Vlies, Pieter
de Lange, Kim
Neerincx, Pieter B.
van der Vries, Gerben
Deelen, Patrick
Swertz, Morris A.
Li, Yang
Bischoff, Rainer
Permentier, Hjalmar P.
Horvatovitch, Peter L.
Groen, Albert K.
van Dijk, Gertjan
Reijngoud, Dirk‐Jan
Bakker, Barbara M.
Running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism
title Running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism
title_full Running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism
title_fullStr Running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism
title_full_unstemmed Running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism
title_short Running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism
title_sort running‐wheel activity delays mitochondrial respiratory flux decline in aging mouse muscle via a post‐transcriptional mechanism
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5770778/
https://www.ncbi.nlm.nih.gov/pubmed/29120091
http://dx.doi.org/10.1111/acel.12700
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