Cargando…

Phosphate Restriction Promotes Longevity via Activation of Autophagy and the Multivesicular Body Pathway

Nutrient limitation results in an activation of autophagy in organisms ranging from yeast, nematodes and flies to mammals. Several evolutionary conserved nutrient-sensing kinases are critical for efficient adaptation of yeast cells to glucose, nitrogen or phosphate depletion, subsequent cell-cycle e...

Descripción completa

Detalles Bibliográficos
Autores principales: Ebrahimi, Mahsa, Habernig, Lukas, Broeskamp, Filomena, Aufschnaiter, Andreas, Diessl, Jutta, Atienza, Isabel, Matz, Steffen, Ruiz, Felix A., Büttner, Sabrina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8620443/
https://www.ncbi.nlm.nih.gov/pubmed/34831384
http://dx.doi.org/10.3390/cells10113161
_version_ 1784605221364695040
author Ebrahimi, Mahsa
Habernig, Lukas
Broeskamp, Filomena
Aufschnaiter, Andreas
Diessl, Jutta
Atienza, Isabel
Matz, Steffen
Ruiz, Felix A.
Büttner, Sabrina
author_facet Ebrahimi, Mahsa
Habernig, Lukas
Broeskamp, Filomena
Aufschnaiter, Andreas
Diessl, Jutta
Atienza, Isabel
Matz, Steffen
Ruiz, Felix A.
Büttner, Sabrina
author_sort Ebrahimi, Mahsa
collection PubMed
description Nutrient limitation results in an activation of autophagy in organisms ranging from yeast, nematodes and flies to mammals. Several evolutionary conserved nutrient-sensing kinases are critical for efficient adaptation of yeast cells to glucose, nitrogen or phosphate depletion, subsequent cell-cycle exit and the regulation of autophagy. Here, we demonstrate that phosphate restriction results in a prominent extension of yeast lifespan that requires the coordinated activity of autophagy and the multivesicular body pathway, enabling efficient turnover of cytoplasmic and plasma membrane cargo. While the multivesicular body pathway was essential during the early days of aging, autophagy contributed to long-term survival at later days. The cyclin-dependent kinase Pho85 was critical for phosphate restriction-induced autophagy and full lifespan extension. In contrast, when cell-cycle exit was triggered by exhaustion of glucose instead of phosphate, Pho85 and its cyclin, Pho80, functioned as negative regulators of autophagy and lifespan. The storage of phosphate in form of polyphosphate was completely dispensable to in sustaining viability under phosphate restriction. Collectively, our results identify the multifunctional, nutrient-sensing kinase Pho85 as critical modulator of longevity that differentially coordinates the autophagic response to distinct kinds of starvation.
format Online
Article
Text
id pubmed-8620443
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-86204432021-11-27 Phosphate Restriction Promotes Longevity via Activation of Autophagy and the Multivesicular Body Pathway Ebrahimi, Mahsa Habernig, Lukas Broeskamp, Filomena Aufschnaiter, Andreas Diessl, Jutta Atienza, Isabel Matz, Steffen Ruiz, Felix A. Büttner, Sabrina Cells Article Nutrient limitation results in an activation of autophagy in organisms ranging from yeast, nematodes and flies to mammals. Several evolutionary conserved nutrient-sensing kinases are critical for efficient adaptation of yeast cells to glucose, nitrogen or phosphate depletion, subsequent cell-cycle exit and the regulation of autophagy. Here, we demonstrate that phosphate restriction results in a prominent extension of yeast lifespan that requires the coordinated activity of autophagy and the multivesicular body pathway, enabling efficient turnover of cytoplasmic and plasma membrane cargo. While the multivesicular body pathway was essential during the early days of aging, autophagy contributed to long-term survival at later days. The cyclin-dependent kinase Pho85 was critical for phosphate restriction-induced autophagy and full lifespan extension. In contrast, when cell-cycle exit was triggered by exhaustion of glucose instead of phosphate, Pho85 and its cyclin, Pho80, functioned as negative regulators of autophagy and lifespan. The storage of phosphate in form of polyphosphate was completely dispensable to in sustaining viability under phosphate restriction. Collectively, our results identify the multifunctional, nutrient-sensing kinase Pho85 as critical modulator of longevity that differentially coordinates the autophagic response to distinct kinds of starvation. MDPI 2021-11-13 /pmc/articles/PMC8620443/ /pubmed/34831384 http://dx.doi.org/10.3390/cells10113161 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ebrahimi, Mahsa
Habernig, Lukas
Broeskamp, Filomena
Aufschnaiter, Andreas
Diessl, Jutta
Atienza, Isabel
Matz, Steffen
Ruiz, Felix A.
Büttner, Sabrina
Phosphate Restriction Promotes Longevity via Activation of Autophagy and the Multivesicular Body Pathway
title Phosphate Restriction Promotes Longevity via Activation of Autophagy and the Multivesicular Body Pathway
title_full Phosphate Restriction Promotes Longevity via Activation of Autophagy and the Multivesicular Body Pathway
title_fullStr Phosphate Restriction Promotes Longevity via Activation of Autophagy and the Multivesicular Body Pathway
title_full_unstemmed Phosphate Restriction Promotes Longevity via Activation of Autophagy and the Multivesicular Body Pathway
title_short Phosphate Restriction Promotes Longevity via Activation of Autophagy and the Multivesicular Body Pathway
title_sort phosphate restriction promotes longevity via activation of autophagy and the multivesicular body pathway
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8620443/
https://www.ncbi.nlm.nih.gov/pubmed/34831384
http://dx.doi.org/10.3390/cells10113161
work_keys_str_mv AT ebrahimimahsa phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway
AT haberniglukas phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway
AT broeskampfilomena phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway
AT aufschnaiterandreas phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway
AT diessljutta phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway
AT atienzaisabel phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway
AT matzsteffen phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway
AT ruizfelixa phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway
AT buttnersabrina phosphaterestrictionpromoteslongevityviaactivationofautophagyandthemultivesicularbodypathway