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Proteasomes, Sir2, and Hxk2 Form an Interconnected Aging Network That Impinges on the AMPK/Snf1-Regulated Transcriptional Repressor Mig1

Elevated proteasome activity extends lifespan in model organisms such as yeast, worms and flies. This pro-longevity effect might be mediated by improved protein homeostasis, as this protease is an integral module of the protein homeostasis network. Proteasomes also regulate cellular processes throug...

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Autores principales: Yao, Yanhua, Tsuchiyama, Scott, Yang, Ciyu, Bulteau, Anne Laure, He, Chong, Robison, Brett, Tsuchiya, Mitsuhiro, Miller, Delana, Briones, Valeria, Tar, Krisztina, Potrero, Anahi, Friguet, Bertrand, Kennedy, Brian K., Schmidt, Marion
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4309596/
https://www.ncbi.nlm.nih.gov/pubmed/25629410
http://dx.doi.org/10.1371/journal.pgen.1004968
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author Yao, Yanhua
Tsuchiyama, Scott
Yang, Ciyu
Bulteau, Anne Laure
He, Chong
Robison, Brett
Tsuchiya, Mitsuhiro
Miller, Delana
Briones, Valeria
Tar, Krisztina
Potrero, Anahi
Friguet, Bertrand
Kennedy, Brian K.
Schmidt, Marion
author_facet Yao, Yanhua
Tsuchiyama, Scott
Yang, Ciyu
Bulteau, Anne Laure
He, Chong
Robison, Brett
Tsuchiya, Mitsuhiro
Miller, Delana
Briones, Valeria
Tar, Krisztina
Potrero, Anahi
Friguet, Bertrand
Kennedy, Brian K.
Schmidt, Marion
author_sort Yao, Yanhua
collection PubMed
description Elevated proteasome activity extends lifespan in model organisms such as yeast, worms and flies. This pro-longevity effect might be mediated by improved protein homeostasis, as this protease is an integral module of the protein homeostasis network. Proteasomes also regulate cellular processes through temporal and spatial degradation of signaling pathway components. Here we demonstrate that the regulatory function of the proteasome plays an essential role in aging cells and that the beneficial impact of elevated proteasome capacity on lifespan partially originates from deregulation of the AMPK signaling pathway. Proteasome-mediated lifespan extension activity was carbon-source dependent and cells with enhancement proteasome function exhibited increased respiratory activity and oxidative stress response. These findings suggested that the pro-aging impact of proteasome upregulation might be related to changes in the metabolic state through a premature induction of respiration. Deletion of yeast AMPK, SNF1, or its activator SNF4 abrogated proteasome-mediated lifespan extension, supporting this hypothesis as the AMPK pathway regulates metabolism. We found that the premature induction of respiration in cells with increased proteasome activity originates from enhanced turnover of Mig1, an AMPK/Snf1 regulated transcriptional repressor that prevents the induction of genes required for respiration. Increasing proteasome activity also resulted in partial relocation of Mig1 from the nucleus to the mitochondria. Collectively, the results argue for a model in which elevated proteasome activity leads to the uncoupling of Snf1-mediated Mig1 regulation, resulting in a premature activation of respiration and thus the induction of a mitohormetic response, beneficial to lifespan. In addition, we observed incorrect Mig1 localization in two other long-lived yeast aging models: cells that overexpress SIR2 or deleted for the Mig1-regulator HXK2. Finally, compromised proteasome function blocks lifespan extension in both strains. Thus, our findings suggest that proteasomes, Sir2, Snf1 and Hxk2 form an interconnected aging network that controls metabolism through coordinated regulation of Mig1.
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spelling pubmed-43095962015-02-06 Proteasomes, Sir2, and Hxk2 Form an Interconnected Aging Network That Impinges on the AMPK/Snf1-Regulated Transcriptional Repressor Mig1 Yao, Yanhua Tsuchiyama, Scott Yang, Ciyu Bulteau, Anne Laure He, Chong Robison, Brett Tsuchiya, Mitsuhiro Miller, Delana Briones, Valeria Tar, Krisztina Potrero, Anahi Friguet, Bertrand Kennedy, Brian K. Schmidt, Marion PLoS Genet Research Article Elevated proteasome activity extends lifespan in model organisms such as yeast, worms and flies. This pro-longevity effect might be mediated by improved protein homeostasis, as this protease is an integral module of the protein homeostasis network. Proteasomes also regulate cellular processes through temporal and spatial degradation of signaling pathway components. Here we demonstrate that the regulatory function of the proteasome plays an essential role in aging cells and that the beneficial impact of elevated proteasome capacity on lifespan partially originates from deregulation of the AMPK signaling pathway. Proteasome-mediated lifespan extension activity was carbon-source dependent and cells with enhancement proteasome function exhibited increased respiratory activity and oxidative stress response. These findings suggested that the pro-aging impact of proteasome upregulation might be related to changes in the metabolic state through a premature induction of respiration. Deletion of yeast AMPK, SNF1, or its activator SNF4 abrogated proteasome-mediated lifespan extension, supporting this hypothesis as the AMPK pathway regulates metabolism. We found that the premature induction of respiration in cells with increased proteasome activity originates from enhanced turnover of Mig1, an AMPK/Snf1 regulated transcriptional repressor that prevents the induction of genes required for respiration. Increasing proteasome activity also resulted in partial relocation of Mig1 from the nucleus to the mitochondria. Collectively, the results argue for a model in which elevated proteasome activity leads to the uncoupling of Snf1-mediated Mig1 regulation, resulting in a premature activation of respiration and thus the induction of a mitohormetic response, beneficial to lifespan. In addition, we observed incorrect Mig1 localization in two other long-lived yeast aging models: cells that overexpress SIR2 or deleted for the Mig1-regulator HXK2. Finally, compromised proteasome function blocks lifespan extension in both strains. Thus, our findings suggest that proteasomes, Sir2, Snf1 and Hxk2 form an interconnected aging network that controls metabolism through coordinated regulation of Mig1. Public Library of Science 2015-01-28 /pmc/articles/PMC4309596/ /pubmed/25629410 http://dx.doi.org/10.1371/journal.pgen.1004968 Text en © 2015 Yao 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
Yao, Yanhua
Tsuchiyama, Scott
Yang, Ciyu
Bulteau, Anne Laure
He, Chong
Robison, Brett
Tsuchiya, Mitsuhiro
Miller, Delana
Briones, Valeria
Tar, Krisztina
Potrero, Anahi
Friguet, Bertrand
Kennedy, Brian K.
Schmidt, Marion
Proteasomes, Sir2, and Hxk2 Form an Interconnected Aging Network That Impinges on the AMPK/Snf1-Regulated Transcriptional Repressor Mig1
title Proteasomes, Sir2, and Hxk2 Form an Interconnected Aging Network That Impinges on the AMPK/Snf1-Regulated Transcriptional Repressor Mig1
title_full Proteasomes, Sir2, and Hxk2 Form an Interconnected Aging Network That Impinges on the AMPK/Snf1-Regulated Transcriptional Repressor Mig1
title_fullStr Proteasomes, Sir2, and Hxk2 Form an Interconnected Aging Network That Impinges on the AMPK/Snf1-Regulated Transcriptional Repressor Mig1
title_full_unstemmed Proteasomes, Sir2, and Hxk2 Form an Interconnected Aging Network That Impinges on the AMPK/Snf1-Regulated Transcriptional Repressor Mig1
title_short Proteasomes, Sir2, and Hxk2 Form an Interconnected Aging Network That Impinges on the AMPK/Snf1-Regulated Transcriptional Repressor Mig1
title_sort proteasomes, sir2, and hxk2 form an interconnected aging network that impinges on the ampk/snf1-regulated transcriptional repressor mig1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4309596/
https://www.ncbi.nlm.nih.gov/pubmed/25629410
http://dx.doi.org/10.1371/journal.pgen.1004968
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