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TORC1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan

Protein quality control mechanisms, required for normal cellular functioning, encompass multiple functions related to protein production and maintenance. However, the existence of communication between proteostasis and metabolic networks and its underlying mechanisms remain elusive. Here, we report...

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Autores principales: Perić, Matea, Lovrić, Anita, Šarić, Ana, Musa, Marina, Bou Dib, Peter, Rudan, Marina, Nikolić, Andrea, Sobočanec, Sandra, Mikecin, Ana‐Matea, Dennerlein, Sven, Milošević, Ira, Vlahoviček, Kristian, Raimundo, Nuno, Kriško, Anita
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5595670/
https://www.ncbi.nlm.nih.gov/pubmed/28613034
http://dx.doi.org/10.1111/acel.12623
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author Perić, Matea
Lovrić, Anita
Šarić, Ana
Musa, Marina
Bou Dib, Peter
Rudan, Marina
Nikolić, Andrea
Sobočanec, Sandra
Mikecin, Ana‐Matea
Dennerlein, Sven
Milošević, Ira
Vlahoviček, Kristian
Raimundo, Nuno
Kriško, Anita
author_facet Perić, Matea
Lovrić, Anita
Šarić, Ana
Musa, Marina
Bou Dib, Peter
Rudan, Marina
Nikolić, Andrea
Sobočanec, Sandra
Mikecin, Ana‐Matea
Dennerlein, Sven
Milošević, Ira
Vlahoviček, Kristian
Raimundo, Nuno
Kriško, Anita
author_sort Perić, Matea
collection PubMed
description Protein quality control mechanisms, required for normal cellular functioning, encompass multiple functions related to protein production and maintenance. However, the existence of communication between proteostasis and metabolic networks and its underlying mechanisms remain elusive. Here, we report that enhanced chaperone activity and consequent improved proteostasis are sensed by TORC1 via the activity of Hsp82. Chaperone enrichment decreases the level of Hsp82, which deactivates TORC1 and leads to activation of Snf1/AMPK, regardless of glucose availability. This mechanism culminates in the extension of yeast replicative lifespan (RLS) that is fully reliant on both TORC1 deactivation and Snf1/AMPK activation. Specifically, we identify oxygen consumption increase as the downstream effect of Snf1 activation responsible for the entire RLS extension. Our results set a novel paradigm for the role of proteostasis in aging: modulation of the misfolded protein level can affect cellular metabolic features as well as mitochondrial activity and consequently modify lifespan. The described mechanism is expected to open new avenues for research of aging and age‐related diseases.
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spelling pubmed-55956702017-10-01 TORC1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan Perić, Matea Lovrić, Anita Šarić, Ana Musa, Marina Bou Dib, Peter Rudan, Marina Nikolić, Andrea Sobočanec, Sandra Mikecin, Ana‐Matea Dennerlein, Sven Milošević, Ira Vlahoviček, Kristian Raimundo, Nuno Kriško, Anita Aging Cell Original Articles Protein quality control mechanisms, required for normal cellular functioning, encompass multiple functions related to protein production and maintenance. However, the existence of communication between proteostasis and metabolic networks and its underlying mechanisms remain elusive. Here, we report that enhanced chaperone activity and consequent improved proteostasis are sensed by TORC1 via the activity of Hsp82. Chaperone enrichment decreases the level of Hsp82, which deactivates TORC1 and leads to activation of Snf1/AMPK, regardless of glucose availability. This mechanism culminates in the extension of yeast replicative lifespan (RLS) that is fully reliant on both TORC1 deactivation and Snf1/AMPK activation. Specifically, we identify oxygen consumption increase as the downstream effect of Snf1 activation responsible for the entire RLS extension. Our results set a novel paradigm for the role of proteostasis in aging: modulation of the misfolded protein level can affect cellular metabolic features as well as mitochondrial activity and consequently modify lifespan. The described mechanism is expected to open new avenues for research of aging and age‐related diseases. John Wiley and Sons Inc. 2017-06-14 2017-10 /pmc/articles/PMC5595670/ /pubmed/28613034 http://dx.doi.org/10.1111/acel.12623 Text en © 2017 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 Creative Commons Attribution (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 Articles
Perić, Matea
Lovrić, Anita
Šarić, Ana
Musa, Marina
Bou Dib, Peter
Rudan, Marina
Nikolić, Andrea
Sobočanec, Sandra
Mikecin, Ana‐Matea
Dennerlein, Sven
Milošević, Ira
Vlahoviček, Kristian
Raimundo, Nuno
Kriško, Anita
TORC1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan
title TORC1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan
title_full TORC1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan
title_fullStr TORC1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan
title_full_unstemmed TORC1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan
title_short TORC1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan
title_sort torc1‐mediated sensing of chaperone activity alters glucose metabolism and extends lifespan
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5595670/
https://www.ncbi.nlm.nih.gov/pubmed/28613034
http://dx.doi.org/10.1111/acel.12623
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