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Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics

Age‐related sarcopenia is characterized by a progressive loss of muscle mass with decline in specific force, having dramatic consequences on mobility and quality of life in seniors. The etiology of sarcopenia is multifactorial and underlying mechanisms are currently not fully elucidated. Physical ex...

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Autores principales: Zampieri, Sandra, Mammucari, Cristina, Romanello, Vanina, Barberi, Laura, Pietrangelo, Laura, Fusella, Aurora, Mosole, Simone, Gherardi, Gaia, Höfer, Christian, Löfler, Stefan, Sarabon, Nejc, Cvecka, Jan, Krenn, Matthias, Carraro, Ugo, Kern, Helmut, Protasi, Feliciano, Musarò, Antonio, Sandri, Marco, Rizzuto, Rosario
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5210373/
https://www.ncbi.nlm.nih.gov/pubmed/28039397
http://dx.doi.org/10.14814/phy2.13005
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author Zampieri, Sandra
Mammucari, Cristina
Romanello, Vanina
Barberi, Laura
Pietrangelo, Laura
Fusella, Aurora
Mosole, Simone
Gherardi, Gaia
Höfer, Christian
Löfler, Stefan
Sarabon, Nejc
Cvecka, Jan
Krenn, Matthias
Carraro, Ugo
Kern, Helmut
Protasi, Feliciano
Musarò, Antonio
Sandri, Marco
Rizzuto, Rosario
author_facet Zampieri, Sandra
Mammucari, Cristina
Romanello, Vanina
Barberi, Laura
Pietrangelo, Laura
Fusella, Aurora
Mosole, Simone
Gherardi, Gaia
Höfer, Christian
Löfler, Stefan
Sarabon, Nejc
Cvecka, Jan
Krenn, Matthias
Carraro, Ugo
Kern, Helmut
Protasi, Feliciano
Musarò, Antonio
Sandri, Marco
Rizzuto, Rosario
author_sort Zampieri, Sandra
collection PubMed
description Age‐related sarcopenia is characterized by a progressive loss of muscle mass with decline in specific force, having dramatic consequences on mobility and quality of life in seniors. The etiology of sarcopenia is multifactorial and underlying mechanisms are currently not fully elucidated. Physical exercise is known to have beneficial effects on muscle trophism and force production. Alterations of mitochondrial Ca(2+) homeostasis regulated by mitochondrial calcium uniporter (MCU) have been recently shown to affect muscle trophism in vivo in mice. To understand the relevance of MCU‐dependent mitochondrial Ca(2+) uptake in aging and to investigate the effect of physical exercise on MCU expression and mitochondria dynamics, we analyzed skeletal muscle biopsies from 70‐year‐old subjects 9 weeks trained with either neuromuscular electrical stimulation (ES) or leg press. Here, we demonstrate that improved muscle function and structure induced by both trainings are linked to increased protein levels of MCU. Ultrastructural analyses by electron microscopy showed remodeling of mitochondrial apparatus in ES‐trained muscles that is consistent with an adaptation to physical exercise, a response likely mediated by an increased expression of mitochondrial fusion protein OPA1. Altogether these results indicate that the ES‐dependent physiological effects on skeletal muscle size and force are associated with changes in mitochondrial‐related proteins involved in Ca(2+) homeostasis and mitochondrial shape. These original findings in aging human skeletal muscle confirm the data obtained in mice and propose MCU and mitochondria‐related proteins as potential pharmacological targets to counteract age‐related muscle loss.
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spelling pubmed-52103732017-01-05 Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics Zampieri, Sandra Mammucari, Cristina Romanello, Vanina Barberi, Laura Pietrangelo, Laura Fusella, Aurora Mosole, Simone Gherardi, Gaia Höfer, Christian Löfler, Stefan Sarabon, Nejc Cvecka, Jan Krenn, Matthias Carraro, Ugo Kern, Helmut Protasi, Feliciano Musarò, Antonio Sandri, Marco Rizzuto, Rosario Physiol Rep Original Research Age‐related sarcopenia is characterized by a progressive loss of muscle mass with decline in specific force, having dramatic consequences on mobility and quality of life in seniors. The etiology of sarcopenia is multifactorial and underlying mechanisms are currently not fully elucidated. Physical exercise is known to have beneficial effects on muscle trophism and force production. Alterations of mitochondrial Ca(2+) homeostasis regulated by mitochondrial calcium uniporter (MCU) have been recently shown to affect muscle trophism in vivo in mice. To understand the relevance of MCU‐dependent mitochondrial Ca(2+) uptake in aging and to investigate the effect of physical exercise on MCU expression and mitochondria dynamics, we analyzed skeletal muscle biopsies from 70‐year‐old subjects 9 weeks trained with either neuromuscular electrical stimulation (ES) or leg press. Here, we demonstrate that improved muscle function and structure induced by both trainings are linked to increased protein levels of MCU. Ultrastructural analyses by electron microscopy showed remodeling of mitochondrial apparatus in ES‐trained muscles that is consistent with an adaptation to physical exercise, a response likely mediated by an increased expression of mitochondrial fusion protein OPA1. Altogether these results indicate that the ES‐dependent physiological effects on skeletal muscle size and force are associated with changes in mitochondrial‐related proteins involved in Ca(2+) homeostasis and mitochondrial shape. These original findings in aging human skeletal muscle confirm the data obtained in mice and propose MCU and mitochondria‐related proteins as potential pharmacological targets to counteract age‐related muscle loss. John Wiley and Sons Inc. 2016-12-30 /pmc/articles/PMC5210373/ /pubmed/28039397 http://dx.doi.org/10.14814/phy2.13005 Text en © 2016 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of The Physiological Society and the American Physiological Society. 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 Research
Zampieri, Sandra
Mammucari, Cristina
Romanello, Vanina
Barberi, Laura
Pietrangelo, Laura
Fusella, Aurora
Mosole, Simone
Gherardi, Gaia
Höfer, Christian
Löfler, Stefan
Sarabon, Nejc
Cvecka, Jan
Krenn, Matthias
Carraro, Ugo
Kern, Helmut
Protasi, Feliciano
Musarò, Antonio
Sandri, Marco
Rizzuto, Rosario
Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics
title Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics
title_full Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics
title_fullStr Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics
title_full_unstemmed Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics
title_short Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics
title_sort physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5210373/
https://www.ncbi.nlm.nih.gov/pubmed/28039397
http://dx.doi.org/10.14814/phy2.13005
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