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Proteomic analysis of dietary restriction in yeast reveals a role for Hsp26 in replicative lifespan extension

Dietary restriction (DR) has been shown to increase lifespan in organisms ranging from yeast to mammals. This suggests that the underlying mechanisms may be evolutionarily conserved. Indeed, upstream signalling pathways, such as TOR, are strongly linked to DR-induced longevity in various organisms....

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Autores principales: Campion, Richard, Bloxam, Leanne, Burrow, Kimberley, Brownridge, Philip J., Pentland, Daniel R., Thomas, Patricia, Gourlay, Campbell W., Eyers, Claire E., Barclay, Jeff W., Morgan, Alan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8786290/
https://www.ncbi.nlm.nih.gov/pubmed/34661239
http://dx.doi.org/10.1042/BCJ20210432
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author Campion, Richard
Bloxam, Leanne
Burrow, Kimberley
Brownridge, Philip J.
Pentland, Daniel R.
Thomas, Patricia
Gourlay, Campbell W.
Eyers, Claire E.
Barclay, Jeff W.
Morgan, Alan
author_facet Campion, Richard
Bloxam, Leanne
Burrow, Kimberley
Brownridge, Philip J.
Pentland, Daniel R.
Thomas, Patricia
Gourlay, Campbell W.
Eyers, Claire E.
Barclay, Jeff W.
Morgan, Alan
author_sort Campion, Richard
collection PubMed
description Dietary restriction (DR) has been shown to increase lifespan in organisms ranging from yeast to mammals. This suggests that the underlying mechanisms may be evolutionarily conserved. Indeed, upstream signalling pathways, such as TOR, are strongly linked to DR-induced longevity in various organisms. However, the downstream effector proteins that ultimately mediate lifespan extension are less clear. To shed light on this, we used a proteomic approach on budding yeast. Our reasoning was that analysis of proteome-wide changes in response to DR might enable the identification of proteins that mediate its physiological effects, including replicative lifespan extension. Of over 2500 proteins we identified by liquid chromatography–mass spectrometry, 183 were significantly altered in expression by at least 3-fold in response to DR. Most of these proteins were mitochondrial and/or had clear links to respiration and metabolism. Indeed, direct analysis of oxygen consumption confirmed that mitochondrial respiration was increased several-fold in response to DR. In addition, several key proteins involved in mating, including Ste2 and Ste6, were down-regulated by DR. Consistent with this, shmoo formation in response to α-factor pheromone was reduced by DR, thus confirming the inhibitory effect of DR on yeast mating. Finally, we found that Hsp26, a member of the conserved small heat shock protein (sHSP) family, was up-regulated by DR and that overexpression of Hsp26 extended yeast replicative lifespan. As overexpression of sHSPs in Caenorhabditis elegans and Drosophila has previously been shown to extend lifespan, our data on yeast Hsp26 suggest that sHSPs may be universally conserved effectors of longevity.
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spelling pubmed-87862902022-02-01 Proteomic analysis of dietary restriction in yeast reveals a role for Hsp26 in replicative lifespan extension Campion, Richard Bloxam, Leanne Burrow, Kimberley Brownridge, Philip J. Pentland, Daniel R. Thomas, Patricia Gourlay, Campbell W. Eyers, Claire E. Barclay, Jeff W. Morgan, Alan Biochem J Aging Dietary restriction (DR) has been shown to increase lifespan in organisms ranging from yeast to mammals. This suggests that the underlying mechanisms may be evolutionarily conserved. Indeed, upstream signalling pathways, such as TOR, are strongly linked to DR-induced longevity in various organisms. However, the downstream effector proteins that ultimately mediate lifespan extension are less clear. To shed light on this, we used a proteomic approach on budding yeast. Our reasoning was that analysis of proteome-wide changes in response to DR might enable the identification of proteins that mediate its physiological effects, including replicative lifespan extension. Of over 2500 proteins we identified by liquid chromatography–mass spectrometry, 183 were significantly altered in expression by at least 3-fold in response to DR. Most of these proteins were mitochondrial and/or had clear links to respiration and metabolism. Indeed, direct analysis of oxygen consumption confirmed that mitochondrial respiration was increased several-fold in response to DR. In addition, several key proteins involved in mating, including Ste2 and Ste6, were down-regulated by DR. Consistent with this, shmoo formation in response to α-factor pheromone was reduced by DR, thus confirming the inhibitory effect of DR on yeast mating. Finally, we found that Hsp26, a member of the conserved small heat shock protein (sHSP) family, was up-regulated by DR and that overexpression of Hsp26 extended yeast replicative lifespan. As overexpression of sHSPs in Caenorhabditis elegans and Drosophila has previously been shown to extend lifespan, our data on yeast Hsp26 suggest that sHSPs may be universally conserved effectors of longevity. Portland Press Ltd. 2021-12-22 2021-12-16 /pmc/articles/PMC8786290/ /pubmed/34661239 http://dx.doi.org/10.1042/BCJ20210432 Text en © 2021 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article published by Portland Press Limited on behalf of the Biochemical Society and distributed under the Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) . Open access for this article was enabled by the participation of University of Liverpool in an all-inclusive Read & Publish pilot with Portland Press and the Biochemical Society under a transformative agreement with JISC.
spellingShingle Aging
Campion, Richard
Bloxam, Leanne
Burrow, Kimberley
Brownridge, Philip J.
Pentland, Daniel R.
Thomas, Patricia
Gourlay, Campbell W.
Eyers, Claire E.
Barclay, Jeff W.
Morgan, Alan
Proteomic analysis of dietary restriction in yeast reveals a role for Hsp26 in replicative lifespan extension
title Proteomic analysis of dietary restriction in yeast reveals a role for Hsp26 in replicative lifespan extension
title_full Proteomic analysis of dietary restriction in yeast reveals a role for Hsp26 in replicative lifespan extension
title_fullStr Proteomic analysis of dietary restriction in yeast reveals a role for Hsp26 in replicative lifespan extension
title_full_unstemmed Proteomic analysis of dietary restriction in yeast reveals a role for Hsp26 in replicative lifespan extension
title_short Proteomic analysis of dietary restriction in yeast reveals a role for Hsp26 in replicative lifespan extension
title_sort proteomic analysis of dietary restriction in yeast reveals a role for hsp26 in replicative lifespan extension
topic Aging
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8786290/
https://www.ncbi.nlm.nih.gov/pubmed/34661239
http://dx.doi.org/10.1042/BCJ20210432
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