Literature DB >> 33070669

Mammalian Atg8-family proteins are upstream regulators of the lysosomalsystem by controlling MTOR and TFEB.

Suresh Kumar1,2, Ashish Jain3, Seong Won Choi1,2, Gustavo Peixoto Duarte da Silva1,2,4, Lee Allers1,2, Michal H Mudd1,2, Ryan Scott Peters1,2, Jan Haug Anonsen5, Tor-Erik Rusten3, Michael Lazarou6, Vojo Deretic1,2.   

Abstract

Macroautophagy/autophagy delivers cytoplasmic cargo to lysosomes for degradation. In yeast, the single Atg8 protein plays a role in the formation of autophagosomes whereas in mammalian cells there are five to seven paralogs, referred to as mammalian Atg8s (mAtg8s: GABARAP, GABARAPL1, GABARAPL2, LC3A, LC3B, LC3B2 and LC3C) with incompletely defined functions. Here we show that a subset of mAtg8s directly control lysosomal biogenesis. This occurs at the level of TFEB, the principal regulator of the lysosomal transcriptional program. mAtg8s promote TFEB's nuclear translocation in response to stimuli such as starvation. GABARAP interacts directly with TFEB, whereas RNA-Seq analyses reveal that knockout of six genes encoding mAtg8s, or a triple knockout of the genes encoding all GABARAPs, diminishes the TFEB transcriptional program. We furthermore show that GABARAPs in cooperation with other proteins, IRGM, a factor implicated in tuberculosis and Crohn disease, and STX17, are required during starvation for optimal inhibition of MTOR, an upstream kinase of TFEB, and activation of the PPP3/calcineurin phosphatase that dephosphorylates TFEB, thus promoting its nuclear translocation. In conclusion, mAtg8s, IRGM and STX17 control lysosomal biogenesis by their combined or individual effects on MTOR, TFEB, and PPP3/calcineurin, independently of their roles in the formation of autophagosomal membranes. Abbreviations: AMPK: AMP-activated protein kinase; IRGM: immunity related GTPase M; mAtg8s: mammalian Atg8 proteins; MTOR: mechanistic target of rapamycin kinase; PPP3CB: protein phosphatase 3 catalytic subunit beta; RRAGA: Ras related GTP binding A.; STX17: syntaxin 17; ULK1: unc-51 like autophagy activating kinase 1.

Entities:  

Keywords:  Crohn’s disease; GABARAP; HIV; LC3; Lysosome; MTOR; TFEB; autophagy; metabolism; mycobacterium tuberculosis

Year:  2020        PMID: 33070669     DOI: 10.1080/15548627.2020.1837423

Source DB:  PubMed          Journal:  Autophagy        ISSN: 1554-8627            Impact factor:   16.016


  5 in total

Review 1.  The evolutionary and functional divergence of the Atg8 autophagy protein superfamily.

Authors:  Virginia B Varga; Fanni Keresztes; Tímea Sigmond; Tibor Vellai; Tibor Kovács
Journal:  Biol Futur       Date:  2022-06-22

2.  Activating Parkin-dependent mitophagy alleviates oxidative stress, apoptosis, and promotes random-pattern skin flaps survival.

Authors:  Zhengtai Chen; Hongqiang Wu; Jianxin Yang; Baolong Li; Jian Ding; Sheng Cheng; Nageeb Bsoul; Chenxi Zhang; Jiaorong Li; Haixiao Liu; Damu Lin; Weiyang Gao
Journal:  Commun Biol       Date:  2022-06-22

Review 3.  The multifaceted role of autophagy in cancer.

Authors:  Ryan C Russell; Kun-Liang Guan
Journal:  EMBO J       Date:  2022-05-10       Impact factor: 14.012

4.  Caffeine Inhibits Activation of the NLRP3 Inflammasome via Autophagy to Attenuate Microglia-Mediated Neuroinflammation in Experimental Autoimmune Encephalomyelitis.

Authors:  Hui-Qi Wang; Kai-Yi Song; Jin-Zhou Feng; Si-Yuan Huang; Xiu-Ming Guo; Lei Zhang; Gang Zhang; Ying-Chao Huo; Rong-Rong Zhang; Yue Ma; Qing-Zhe Hu; Xin-Yue Qin
Journal:  J Mol Neurosci       Date:  2021-09-03       Impact factor: 3.444

5.  Whole-Blood 3-Gene Signature as a Decision Aid for Rifapentine-based Tuberculosis Preventive Therapy.

Authors:  Hung Ling Huang; Jung Yu Lee; Yu Shu Lo; I Hsin Liu; Sing Han Huang; Yu Wei Huang; Meng Rui Lee; Chih Hsin Lee; Meng Hsuan Cheng; Po Liang Lu; Jann Yuan Wang; Jinn Moon Yang; Inn Wen Chong
Journal:  Clin Infect Dis       Date:  2022-09-14       Impact factor: 20.999

  5 in total

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