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Lysosomal Two-pore Channel Subtype 2 (TPC2) Regulates Skeletal Muscle Autophagic Signaling

Postnatal skeletal muscle mass is regulated by the balance between anabolic protein synthesis and catabolic protein degradation, and muscle atrophy occurs when protein homeostasis is disrupted. Autophagy has emerged as critical in clearing dysfunctional organelles and thus in regulating protein turn...

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Autores principales: Lin, Pei-Hui, Duann, Pu, Komazaki, Shinji, Park, Ki Ho, Li, Haichang, Sun, Mingzhai, Sermersheim, Mathew, Gumpper, Kristyn, Parrington, John, Galione, Antony, Evans, A. Mark, Zhu, Michael X., Ma, Jianjie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2015
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4319008/
https://www.ncbi.nlm.nih.gov/pubmed/25480788
http://dx.doi.org/10.1074/jbc.M114.608471
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author Lin, Pei-Hui
Duann, Pu
Komazaki, Shinji
Park, Ki Ho
Li, Haichang
Sun, Mingzhai
Sermersheim, Mathew
Gumpper, Kristyn
Parrington, John
Galione, Antony
Evans, A. Mark
Zhu, Michael X.
Ma, Jianjie
author_facet Lin, Pei-Hui
Duann, Pu
Komazaki, Shinji
Park, Ki Ho
Li, Haichang
Sun, Mingzhai
Sermersheim, Mathew
Gumpper, Kristyn
Parrington, John
Galione, Antony
Evans, A. Mark
Zhu, Michael X.
Ma, Jianjie
author_sort Lin, Pei-Hui
collection PubMed
description Postnatal skeletal muscle mass is regulated by the balance between anabolic protein synthesis and catabolic protein degradation, and muscle atrophy occurs when protein homeostasis is disrupted. Autophagy has emerged as critical in clearing dysfunctional organelles and thus in regulating protein turnover. Here we show that endolysosomal two-pore channel subtype 2 (TPC2) contributes to autophagy signaling and protein homeostasis in skeletal muscle. Muscles derived from Tpcn2(−/−) mice exhibit an atrophic phenotype with exacerbated autophagy under starvation. Compared with wild types, animals lacking TPC2 demonstrated an enhanced autophagy flux characterized by increased accumulation of autophagosomes upon combined stress induction by starvation and colchicine treatment. In addition, deletion of TPC2 in muscle caused aberrant lysosomal pH homeostasis and reduced lysosomal protease activity. Association between mammalian target of rapamycin and TPC2 was detected in skeletal muscle, allowing for appropriate adjustments to cellular metabolic states and subsequent execution of autophagy. TPC2 therefore impacts mammalian target of rapamycin reactivation during the process of autophagy and contributes to maintenance of muscle homeostasis.
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spelling pubmed-43190082015-02-13 Lysosomal Two-pore Channel Subtype 2 (TPC2) Regulates Skeletal Muscle Autophagic Signaling Lin, Pei-Hui Duann, Pu Komazaki, Shinji Park, Ki Ho Li, Haichang Sun, Mingzhai Sermersheim, Mathew Gumpper, Kristyn Parrington, John Galione, Antony Evans, A. Mark Zhu, Michael X. Ma, Jianjie J Biol Chem Cell Biology Postnatal skeletal muscle mass is regulated by the balance between anabolic protein synthesis and catabolic protein degradation, and muscle atrophy occurs when protein homeostasis is disrupted. Autophagy has emerged as critical in clearing dysfunctional organelles and thus in regulating protein turnover. Here we show that endolysosomal two-pore channel subtype 2 (TPC2) contributes to autophagy signaling and protein homeostasis in skeletal muscle. Muscles derived from Tpcn2(−/−) mice exhibit an atrophic phenotype with exacerbated autophagy under starvation. Compared with wild types, animals lacking TPC2 demonstrated an enhanced autophagy flux characterized by increased accumulation of autophagosomes upon combined stress induction by starvation and colchicine treatment. In addition, deletion of TPC2 in muscle caused aberrant lysosomal pH homeostasis and reduced lysosomal protease activity. Association between mammalian target of rapamycin and TPC2 was detected in skeletal muscle, allowing for appropriate adjustments to cellular metabolic states and subsequent execution of autophagy. TPC2 therefore impacts mammalian target of rapamycin reactivation during the process of autophagy and contributes to maintenance of muscle homeostasis. American Society for Biochemistry and Molecular Biology 2015-02-06 2014-12-05 /pmc/articles/PMC4319008/ /pubmed/25480788 http://dx.doi.org/10.1074/jbc.M114.608471 Text en © 2015 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/) applies to Author Choice Articles
spellingShingle Cell Biology
Lin, Pei-Hui
Duann, Pu
Komazaki, Shinji
Park, Ki Ho
Li, Haichang
Sun, Mingzhai
Sermersheim, Mathew
Gumpper, Kristyn
Parrington, John
Galione, Antony
Evans, A. Mark
Zhu, Michael X.
Ma, Jianjie
Lysosomal Two-pore Channel Subtype 2 (TPC2) Regulates Skeletal Muscle Autophagic Signaling
title Lysosomal Two-pore Channel Subtype 2 (TPC2) Regulates Skeletal Muscle Autophagic Signaling
title_full Lysosomal Two-pore Channel Subtype 2 (TPC2) Regulates Skeletal Muscle Autophagic Signaling
title_fullStr Lysosomal Two-pore Channel Subtype 2 (TPC2) Regulates Skeletal Muscle Autophagic Signaling
title_full_unstemmed Lysosomal Two-pore Channel Subtype 2 (TPC2) Regulates Skeletal Muscle Autophagic Signaling
title_short Lysosomal Two-pore Channel Subtype 2 (TPC2) Regulates Skeletal Muscle Autophagic Signaling
title_sort lysosomal two-pore channel subtype 2 (tpc2) regulates skeletal muscle autophagic signaling
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4319008/
https://www.ncbi.nlm.nih.gov/pubmed/25480788
http://dx.doi.org/10.1074/jbc.M114.608471
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