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Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics

Exercise is a nonpharmacological intervention that improves health during aging and a valuable tool in the diagnostics of aging-related diseases. In muscle, exercise transiently alters mitochondrial functionality and metabolism. Mitochondrial fission and fusion are critical effectors of mitochondria...

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Autores principales: Campos, Juliane Cruz, Marchesi Bozi, Luiz Henrique, Krum, Barbara, Grassmann Bechara, Luiz Roberto, Ferreira, Nikolas Dresch, Arini, Gabriel Santos, Albuquerque, Rudá Prestes, Traa, Annika, Ogawa, Takafumi, van der Bliek, Alexander M., Beheshti, Afshin, Chouchani, Edward T., Van Raamsdonk, Jeremy M., Blackwell, T. Keith, Ferreira, Julio Cesar Batista
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9926278/
https://www.ncbi.nlm.nih.gov/pubmed/36595699
http://dx.doi.org/10.1073/pnas.2204750120
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author Campos, Juliane Cruz
Marchesi Bozi, Luiz Henrique
Krum, Barbara
Grassmann Bechara, Luiz Roberto
Ferreira, Nikolas Dresch
Arini, Gabriel Santos
Albuquerque, Rudá Prestes
Traa, Annika
Ogawa, Takafumi
van der Bliek, Alexander M.
Beheshti, Afshin
Chouchani, Edward T.
Van Raamsdonk, Jeremy M.
Blackwell, T. Keith
Ferreira, Julio Cesar Batista
author_facet Campos, Juliane Cruz
Marchesi Bozi, Luiz Henrique
Krum, Barbara
Grassmann Bechara, Luiz Roberto
Ferreira, Nikolas Dresch
Arini, Gabriel Santos
Albuquerque, Rudá Prestes
Traa, Annika
Ogawa, Takafumi
van der Bliek, Alexander M.
Beheshti, Afshin
Chouchani, Edward T.
Van Raamsdonk, Jeremy M.
Blackwell, T. Keith
Ferreira, Julio Cesar Batista
author_sort Campos, Juliane Cruz
collection PubMed
description Exercise is a nonpharmacological intervention that improves health during aging and a valuable tool in the diagnostics of aging-related diseases. In muscle, exercise transiently alters mitochondrial functionality and metabolism. Mitochondrial fission and fusion are critical effectors of mitochondrial plasticity, which allows a fine-tuned regulation of organelle connectiveness, size, and function. Here we have investigated the role of mitochondrial dynamics during exercise in the model organism Caenorhabditis elegans. We show that in body-wall muscle, a single exercise session induces a cycle of mitochondrial fragmentation followed by fusion after a recovery period, and that daily exercise sessions delay the mitochondrial fragmentation and physical fitness decline that occur with aging. Maintenance of proper mitochondrial dynamics is essential for physical fitness, its enhancement by exercise training, and exercise-induced remodeling of the proteome. Surprisingly, among the long-lived genotypes we analyzed (isp-1,nuo-6, daf-2, eat-2, and CA-AAK-2), constitutive activation of AMP-activated protein kinase (AMPK) uniquely preserves physical fitness during aging, a benefit that is abolished by impairment of mitochondrial fission or fusion. AMPK is also required for physical fitness to be enhanced by exercise, with our findings together suggesting that exercise may enhance muscle function through AMPK regulation of mitochondrial dynamics. Our results indicate that mitochondrial connectivity and the mitochondrial dynamics cycle are essential for maintaining physical fitness and exercise responsiveness during aging and suggest that AMPK activation may recapitulate some exercise benefits. Targeting mechanisms to optimize mitochondrial fission and fusion, as well as AMPK activation, may represent promising strategies for promoting muscle function during aging.
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spelling pubmed-99262782023-07-03 Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics Campos, Juliane Cruz Marchesi Bozi, Luiz Henrique Krum, Barbara Grassmann Bechara, Luiz Roberto Ferreira, Nikolas Dresch Arini, Gabriel Santos Albuquerque, Rudá Prestes Traa, Annika Ogawa, Takafumi van der Bliek, Alexander M. Beheshti, Afshin Chouchani, Edward T. Van Raamsdonk, Jeremy M. Blackwell, T. Keith Ferreira, Julio Cesar Batista Proc Natl Acad Sci U S A Biological Sciences Exercise is a nonpharmacological intervention that improves health during aging and a valuable tool in the diagnostics of aging-related diseases. In muscle, exercise transiently alters mitochondrial functionality and metabolism. Mitochondrial fission and fusion are critical effectors of mitochondrial plasticity, which allows a fine-tuned regulation of organelle connectiveness, size, and function. Here we have investigated the role of mitochondrial dynamics during exercise in the model organism Caenorhabditis elegans. We show that in body-wall muscle, a single exercise session induces a cycle of mitochondrial fragmentation followed by fusion after a recovery period, and that daily exercise sessions delay the mitochondrial fragmentation and physical fitness decline that occur with aging. Maintenance of proper mitochondrial dynamics is essential for physical fitness, its enhancement by exercise training, and exercise-induced remodeling of the proteome. Surprisingly, among the long-lived genotypes we analyzed (isp-1,nuo-6, daf-2, eat-2, and CA-AAK-2), constitutive activation of AMP-activated protein kinase (AMPK) uniquely preserves physical fitness during aging, a benefit that is abolished by impairment of mitochondrial fission or fusion. AMPK is also required for physical fitness to be enhanced by exercise, with our findings together suggesting that exercise may enhance muscle function through AMPK regulation of mitochondrial dynamics. Our results indicate that mitochondrial connectivity and the mitochondrial dynamics cycle are essential for maintaining physical fitness and exercise responsiveness during aging and suggest that AMPK activation may recapitulate some exercise benefits. Targeting mechanisms to optimize mitochondrial fission and fusion, as well as AMPK activation, may represent promising strategies for promoting muscle function during aging. National Academy of Sciences 2023-01-03 2023-01-10 /pmc/articles/PMC9926278/ /pubmed/36595699 http://dx.doi.org/10.1073/pnas.2204750120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Campos, Juliane Cruz
Marchesi Bozi, Luiz Henrique
Krum, Barbara
Grassmann Bechara, Luiz Roberto
Ferreira, Nikolas Dresch
Arini, Gabriel Santos
Albuquerque, Rudá Prestes
Traa, Annika
Ogawa, Takafumi
van der Bliek, Alexander M.
Beheshti, Afshin
Chouchani, Edward T.
Van Raamsdonk, Jeremy M.
Blackwell, T. Keith
Ferreira, Julio Cesar Batista
Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics
title Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics
title_full Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics
title_fullStr Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics
title_full_unstemmed Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics
title_short Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics
title_sort exercise preserves physical fitness during aging through ampk and mitochondrial dynamics
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9926278/
https://www.ncbi.nlm.nih.gov/pubmed/36595699
http://dx.doi.org/10.1073/pnas.2204750120
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