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Physical Exercise Regulates p53 Activity Targeting SCO2 and Increases Mitochondrial COX Biogenesis in Cardiac Muscle with Age

The purpose of this study was to outline the timelines of mitochondrial function, oxidative stress and cytochrome c oxidase complex (COX) biogenesis in cardiac muscle with age, and to evaluate whether and how these age-related changes were attenuated by exercise. ICR/CD-1 mice were treated with pifi...

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Autores principales: Qi, Zhengtang, He, Jie, Su, Yuhui, He, Qiang, Liu, Jingxia, Yu, Lu, Al-Attas, Omar, Hussain, Tajamul, Ding, Shuzhe, Ji, Liu, Qian, Min
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3131270/
https://www.ncbi.nlm.nih.gov/pubmed/21750704
http://dx.doi.org/10.1371/journal.pone.0021140
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author Qi, Zhengtang
He, Jie
Su, Yuhui
He, Qiang
Liu, Jingxia
Yu, Lu
Al-Attas, Omar
Hussain, Tajamul
Ding, Shuzhe
Ji, Liu
Qian, Min
author_facet Qi, Zhengtang
He, Jie
Su, Yuhui
He, Qiang
Liu, Jingxia
Yu, Lu
Al-Attas, Omar
Hussain, Tajamul
Ding, Shuzhe
Ji, Liu
Qian, Min
author_sort Qi, Zhengtang
collection PubMed
description The purpose of this study was to outline the timelines of mitochondrial function, oxidative stress and cytochrome c oxidase complex (COX) biogenesis in cardiac muscle with age, and to evaluate whether and how these age-related changes were attenuated by exercise. ICR/CD-1 mice were treated with pifithrin-μ (PFTμ), sacrificed and studied at different ages; ICR/CD-1 mice at younger or older ages were randomized to endurance treadmill running and sedentary conditions. The results showed that mRNA expression of p53 and its protein levels in mitochondria increased with age in cardiac muscle, accompanied by increased mitochondrial oxidative stress, reduced expression of COX subunits and assembly proteins, and decreased expression of most markers in mitochondrial biogenesis. Most of these age-related changes including p53 activity targeting cytochrome oxidase deficient homolog 2 (SCO2), p53 translocation to mitochondria and COX biogenesis were attenuated by exercise in older mice. PFTμ, an inhibitor blocking p53 translocation to mitochondria, increased COX biogenesis in older mice, but not in young mice. Our data suggest that physical exercise attenuates age-related changes in mitochondrial COX biogenesis and p53 activity targeting SCO2 and mitochondria, and thereby induces antisenescent and protective effects in cardiac muscle.
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spelling pubmed-31312702011-07-12 Physical Exercise Regulates p53 Activity Targeting SCO2 and Increases Mitochondrial COX Biogenesis in Cardiac Muscle with Age Qi, Zhengtang He, Jie Su, Yuhui He, Qiang Liu, Jingxia Yu, Lu Al-Attas, Omar Hussain, Tajamul Ding, Shuzhe Ji, Liu Qian, Min PLoS One Research Article The purpose of this study was to outline the timelines of mitochondrial function, oxidative stress and cytochrome c oxidase complex (COX) biogenesis in cardiac muscle with age, and to evaluate whether and how these age-related changes were attenuated by exercise. ICR/CD-1 mice were treated with pifithrin-μ (PFTμ), sacrificed and studied at different ages; ICR/CD-1 mice at younger or older ages were randomized to endurance treadmill running and sedentary conditions. The results showed that mRNA expression of p53 and its protein levels in mitochondria increased with age in cardiac muscle, accompanied by increased mitochondrial oxidative stress, reduced expression of COX subunits and assembly proteins, and decreased expression of most markers in mitochondrial biogenesis. Most of these age-related changes including p53 activity targeting cytochrome oxidase deficient homolog 2 (SCO2), p53 translocation to mitochondria and COX biogenesis were attenuated by exercise in older mice. PFTμ, an inhibitor blocking p53 translocation to mitochondria, increased COX biogenesis in older mice, but not in young mice. Our data suggest that physical exercise attenuates age-related changes in mitochondrial COX biogenesis and p53 activity targeting SCO2 and mitochondria, and thereby induces antisenescent and protective effects in cardiac muscle. Public Library of Science 2011-07-07 /pmc/articles/PMC3131270/ /pubmed/21750704 http://dx.doi.org/10.1371/journal.pone.0021140 Text en Qi 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Qi, Zhengtang
He, Jie
Su, Yuhui
He, Qiang
Liu, Jingxia
Yu, Lu
Al-Attas, Omar
Hussain, Tajamul
Ding, Shuzhe
Ji, Liu
Qian, Min
Physical Exercise Regulates p53 Activity Targeting SCO2 and Increases Mitochondrial COX Biogenesis in Cardiac Muscle with Age
title Physical Exercise Regulates p53 Activity Targeting SCO2 and Increases Mitochondrial COX Biogenesis in Cardiac Muscle with Age
title_full Physical Exercise Regulates p53 Activity Targeting SCO2 and Increases Mitochondrial COX Biogenesis in Cardiac Muscle with Age
title_fullStr Physical Exercise Regulates p53 Activity Targeting SCO2 and Increases Mitochondrial COX Biogenesis in Cardiac Muscle with Age
title_full_unstemmed Physical Exercise Regulates p53 Activity Targeting SCO2 and Increases Mitochondrial COX Biogenesis in Cardiac Muscle with Age
title_short Physical Exercise Regulates p53 Activity Targeting SCO2 and Increases Mitochondrial COX Biogenesis in Cardiac Muscle with Age
title_sort physical exercise regulates p53 activity targeting sco2 and increases mitochondrial cox biogenesis in cardiac muscle with age
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3131270/
https://www.ncbi.nlm.nih.gov/pubmed/21750704
http://dx.doi.org/10.1371/journal.pone.0021140
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