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Autophagy termination and lysosome reformation regulated by mTOR

Autophagy is an evolutionarily conserved process to catabolize cytoplasmic proteins and organelles1, 2. During starvation, the target of rapamycin (TOR), a nutrient-responsive kinase, is inhibited, thereby inducing autophagy. In autophagy, double-membrane autophagosomes envelop and sequester intrace...

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Autores principales: Yu, Li, McPhee, Christina K., Zheng, Lixin, Mardones, Gonzalo A., Rong, Yueguang, Peng, Junya, Mi, Na, Zhao, Ying, Liu, Zhihua, Wan, Fengyi, Hailey, Dale W., Oorschot, Viola, Klumperman, Judith, Baehrecke, Eric H., Lenardo, Michael J.
Formato: Texto
Lenguaje:English
Publicado: 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2920749/
https://www.ncbi.nlm.nih.gov/pubmed/20526321
http://dx.doi.org/10.1038/nature09076
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author Yu, Li
McPhee, Christina K.
Zheng, Lixin
Mardones, Gonzalo A.
Rong, Yueguang
Peng, Junya
Mi, Na
Zhao, Ying
Liu, Zhihua
Wan, Fengyi
Hailey, Dale W.
Oorschot, Viola
Klumperman, Judith
Baehrecke, Eric H.
Lenardo, Michael J.
author_facet Yu, Li
McPhee, Christina K.
Zheng, Lixin
Mardones, Gonzalo A.
Rong, Yueguang
Peng, Junya
Mi, Na
Zhao, Ying
Liu, Zhihua
Wan, Fengyi
Hailey, Dale W.
Oorschot, Viola
Klumperman, Judith
Baehrecke, Eric H.
Lenardo, Michael J.
author_sort Yu, Li
collection PubMed
description Autophagy is an evolutionarily conserved process to catabolize cytoplasmic proteins and organelles1, 2. During starvation, the target of rapamycin (TOR), a nutrient-responsive kinase, is inhibited, thereby inducing autophagy. In autophagy, double-membrane autophagosomes envelop and sequester intracellular components and then fuse with lysosomes to form autolysosomes which degrade their contents to regenerate nutrients. Current models of autophagy terminate with the degradation of autophagosome cargo in autolysosomes3-5, but the regulation of autophagy in response to nutrients and the subsequent fate of the autolysosome are poorly defined. Here we show that mTOR signaling is inhibited during autophagy initiation, but reactivated with prolonged starvation. mTOR reactivation is autophagy-dependent, and requires the degradation of autolysosomal products. Increased mTOR activity attenuates autophagy and generates proto-lysosomal tubules and vesicles that extrude from autolysosomes and ultimately mature into functional lysosomes, thereby restoring the full complement of lysosomes in the cell – a process we identify in multiple animal species. Thus, an evolutionarily-conserved cycle in autophagy governs nutrient sensing and lysosome homeostasis during starvation.
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spelling pubmed-29207492010-12-01 Autophagy termination and lysosome reformation regulated by mTOR Yu, Li McPhee, Christina K. Zheng, Lixin Mardones, Gonzalo A. Rong, Yueguang Peng, Junya Mi, Na Zhao, Ying Liu, Zhihua Wan, Fengyi Hailey, Dale W. Oorschot, Viola Klumperman, Judith Baehrecke, Eric H. Lenardo, Michael J. Nature Article Autophagy is an evolutionarily conserved process to catabolize cytoplasmic proteins and organelles1, 2. During starvation, the target of rapamycin (TOR), a nutrient-responsive kinase, is inhibited, thereby inducing autophagy. In autophagy, double-membrane autophagosomes envelop and sequester intracellular components and then fuse with lysosomes to form autolysosomes which degrade their contents to regenerate nutrients. Current models of autophagy terminate with the degradation of autophagosome cargo in autolysosomes3-5, but the regulation of autophagy in response to nutrients and the subsequent fate of the autolysosome are poorly defined. Here we show that mTOR signaling is inhibited during autophagy initiation, but reactivated with prolonged starvation. mTOR reactivation is autophagy-dependent, and requires the degradation of autolysosomal products. Increased mTOR activity attenuates autophagy and generates proto-lysosomal tubules and vesicles that extrude from autolysosomes and ultimately mature into functional lysosomes, thereby restoring the full complement of lysosomes in the cell – a process we identify in multiple animal species. Thus, an evolutionarily-conserved cycle in autophagy governs nutrient sensing and lysosome homeostasis during starvation. 2010-06-06 2010-06-17 /pmc/articles/PMC2920749/ /pubmed/20526321 http://dx.doi.org/10.1038/nature09076 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Yu, Li
McPhee, Christina K.
Zheng, Lixin
Mardones, Gonzalo A.
Rong, Yueguang
Peng, Junya
Mi, Na
Zhao, Ying
Liu, Zhihua
Wan, Fengyi
Hailey, Dale W.
Oorschot, Viola
Klumperman, Judith
Baehrecke, Eric H.
Lenardo, Michael J.
Autophagy termination and lysosome reformation regulated by mTOR
title Autophagy termination and lysosome reformation regulated by mTOR
title_full Autophagy termination and lysosome reformation regulated by mTOR
title_fullStr Autophagy termination and lysosome reformation regulated by mTOR
title_full_unstemmed Autophagy termination and lysosome reformation regulated by mTOR
title_short Autophagy termination and lysosome reformation regulated by mTOR
title_sort autophagy termination and lysosome reformation regulated by mtor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2920749/
https://www.ncbi.nlm.nih.gov/pubmed/20526321
http://dx.doi.org/10.1038/nature09076
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