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PGC‐1a integrates a metabolism and growth network linked to caloric restriction

Deleterious changes in energy metabolism have been linked to aging and disease vulnerability, while activation of mitochondrial pathways has been linked to delayed aging by caloric restriction (CR). The basis for these associations is poorly understood, and the scope of impact of mitochondrial activ...

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Autores principales: Miller, Karl N., Clark, Josef P., Martin, Stephen A., Howell, Porsha R., Burhans, Maggie S., Haws, Spencer A., Johnson, Nathan B., Rhoads, Timothy W, Pavelec, Derek M., Eliceiri, Kevin W., Roopra, Avtar S., Ntambi, James M., Denu, John M., Parks, Brian W., Anderson, Rozalyn M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6718593/
https://www.ncbi.nlm.nih.gov/pubmed/31267675
http://dx.doi.org/10.1111/acel.12999
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author Miller, Karl N.
Clark, Josef P.
Martin, Stephen A.
Howell, Porsha R.
Burhans, Maggie S.
Haws, Spencer A.
Johnson, Nathan B.
Rhoads, Timothy W
Pavelec, Derek M.
Eliceiri, Kevin W.
Roopra, Avtar S.
Ntambi, James M.
Denu, John M.
Parks, Brian W.
Anderson, Rozalyn M.
author_facet Miller, Karl N.
Clark, Josef P.
Martin, Stephen A.
Howell, Porsha R.
Burhans, Maggie S.
Haws, Spencer A.
Johnson, Nathan B.
Rhoads, Timothy W
Pavelec, Derek M.
Eliceiri, Kevin W.
Roopra, Avtar S.
Ntambi, James M.
Denu, John M.
Parks, Brian W.
Anderson, Rozalyn M.
author_sort Miller, Karl N.
collection PubMed
description Deleterious changes in energy metabolism have been linked to aging and disease vulnerability, while activation of mitochondrial pathways has been linked to delayed aging by caloric restriction (CR). The basis for these associations is poorly understood, and the scope of impact of mitochondrial activation on cellular function has yet to be defined. Here, we show that mitochondrial regulator PGC‐1a is induced by CR in multiple tissues, and at the cellular level, CR‐like activation of PGC‐1a impacts a network that integrates mitochondrial status with metabolism and growth parameters. Transcriptional profiling reveals that diverse functions, including immune pathways, growth, structure, and macromolecule homeostasis, are responsive to PGC‐1a. Mechanistically, these changes in gene expression were linked to chromatin remodeling and RNA processing. Metabolic changes implicated in the transcriptional data were confirmed functionally including shifts in NAD metabolism, lipid metabolism, and membrane lipid composition. Delayed cellular proliferation, altered cytoskeleton, and attenuated growth signaling through post‐transcriptional and post‐translational mechanisms were also identified as outcomes of PGC‐1a‐directed mitochondrial activation. Furthermore, in vivo in tissues from a genetically heterogeneous mouse population, endogenous PGC‐1a expression was correlated with this same metabolism and growth network. These data show that small changes in metabolism have broad consequences that arguably would profoundly alter cell function. We suggest that this PGC‐1a sensitive network may be the basis for the association between mitochondrial function and aging where small deficiencies precipitate loss of function across a spectrum of cellular activities.
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spelling pubmed-67185932019-10-01 PGC‐1a integrates a metabolism and growth network linked to caloric restriction Miller, Karl N. Clark, Josef P. Martin, Stephen A. Howell, Porsha R. Burhans, Maggie S. Haws, Spencer A. Johnson, Nathan B. Rhoads, Timothy W Pavelec, Derek M. Eliceiri, Kevin W. Roopra, Avtar S. Ntambi, James M. Denu, John M. Parks, Brian W. Anderson, Rozalyn M. Aging Cell Original Paper Deleterious changes in energy metabolism have been linked to aging and disease vulnerability, while activation of mitochondrial pathways has been linked to delayed aging by caloric restriction (CR). The basis for these associations is poorly understood, and the scope of impact of mitochondrial activation on cellular function has yet to be defined. Here, we show that mitochondrial regulator PGC‐1a is induced by CR in multiple tissues, and at the cellular level, CR‐like activation of PGC‐1a impacts a network that integrates mitochondrial status with metabolism and growth parameters. Transcriptional profiling reveals that diverse functions, including immune pathways, growth, structure, and macromolecule homeostasis, are responsive to PGC‐1a. Mechanistically, these changes in gene expression were linked to chromatin remodeling and RNA processing. Metabolic changes implicated in the transcriptional data were confirmed functionally including shifts in NAD metabolism, lipid metabolism, and membrane lipid composition. Delayed cellular proliferation, altered cytoskeleton, and attenuated growth signaling through post‐transcriptional and post‐translational mechanisms were also identified as outcomes of PGC‐1a‐directed mitochondrial activation. Furthermore, in vivo in tissues from a genetically heterogeneous mouse population, endogenous PGC‐1a expression was correlated with this same metabolism and growth network. These data show that small changes in metabolism have broad consequences that arguably would profoundly alter cell function. We suggest that this PGC‐1a sensitive network may be the basis for the association between mitochondrial function and aging where small deficiencies precipitate loss of function across a spectrum of cellular activities. John Wiley and Sons Inc. 2019-07-03 2019-10 /pmc/articles/PMC6718593/ /pubmed/31267675 http://dx.doi.org/10.1111/acel.12999 Text en © 2019 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 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 Paper
Miller, Karl N.
Clark, Josef P.
Martin, Stephen A.
Howell, Porsha R.
Burhans, Maggie S.
Haws, Spencer A.
Johnson, Nathan B.
Rhoads, Timothy W
Pavelec, Derek M.
Eliceiri, Kevin W.
Roopra, Avtar S.
Ntambi, James M.
Denu, John M.
Parks, Brian W.
Anderson, Rozalyn M.
PGC‐1a integrates a metabolism and growth network linked to caloric restriction
title PGC‐1a integrates a metabolism and growth network linked to caloric restriction
title_full PGC‐1a integrates a metabolism and growth network linked to caloric restriction
title_fullStr PGC‐1a integrates a metabolism and growth network linked to caloric restriction
title_full_unstemmed PGC‐1a integrates a metabolism and growth network linked to caloric restriction
title_short PGC‐1a integrates a metabolism and growth network linked to caloric restriction
title_sort pgc‐1a integrates a metabolism and growth network linked to caloric restriction
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6718593/
https://www.ncbi.nlm.nih.gov/pubmed/31267675
http://dx.doi.org/10.1111/acel.12999
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