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A Mammalian Target of Rapamycin-Perilipin 3 (mTORC1-Plin3) Pathway is essential to Activate Lipophagy and Protects Against Hepatosteatosis

Authors :
Newcastle University
Ministerio de Ciencia, Innovación y Universidades (España)
Agencia Estatal de Investigación (España)
Instituto de Salud Carlos III
Junta de Castilla y León
Fundación BBVA
Fundación Ramón Areces
Biotechnology and Biological Sciences Research Council (UK)
García-Macia, Marina
Santos-Ledo, Adrián
Leslie, Jack
Paish, Hannah L.
Collins, Amy L.
Scott, Rebecca S.
Watson, Abigail
Burgoyne, Rachel A.
White, Steven A.
French, Jeremy
Hammond, John
Borthwick, Lee A.
Mann, Jelena
Bolaños, Juan P.
Korolchuk, Viktor I.
Oakley, Fiona
Mann, Derek A.
Newcastle University
Ministerio de Ciencia, Innovación y Universidades (España)
Agencia Estatal de Investigación (España)
Instituto de Salud Carlos III
Junta de Castilla y León
Fundación BBVA
Fundación Ramón Areces
Biotechnology and Biological Sciences Research Council (UK)
García-Macia, Marina
Santos-Ledo, Adrián
Leslie, Jack
Paish, Hannah L.
Collins, Amy L.
Scott, Rebecca S.
Watson, Abigail
Burgoyne, Rachel A.
White, Steven A.
French, Jeremy
Hammond, John
Borthwick, Lee A.
Mann, Jelena
Bolaños, Juan P.
Korolchuk, Viktor I.
Oakley, Fiona
Mann, Derek A.
Publication Year :
2021

Abstract

[Background and Aims] NAFLD is the most common hepatic pathology in western countries and no treatment is currently available. NAFLD is characterized by the aberrant hepatocellular accumulation of fatty acids in the form of lipid droplets (LDs). Recently, it was shown that liver LD degradation occurs through a process termed lipophagy, a form of autophagy. However, the molecular mechanisms governing liver lipophagy are elusive. Here, we aimed to ascertain the key molecular players that regulate hepatic lipophagy and their importance in NAFLD.<br />[Approach and Results] We analyzed the formation and degradation of LD in vitro (fibroblasts and primary mouse hepatocytes), in vivo and ex vivo (mouse and human liver slices) and focused on the role of the autophagy master regulator mammalian target of rapamycin complex (mTORC) 1 and the LD coating protein perilipin (Plin) 3 in these processes. We show that the autophagy machinery is recruited to the LD on hepatic overload of oleic acid in all experimental settings. This led to activation of lipophagy, a process that was abolished by Plin3 knockdown using RNA interference. Furthermore, Plin3 directly interacted with the autophagy proteins focal adhesion interaction protein 200 KDa and autophagy-related 16L, suggesting that Plin3 functions as a docking protein or is involved in autophagosome formation to activate lipophagy. Finally, we show that mTORC1 phosphorylated Plin3 to promote LD degradation.<br />[Conclusions] These results reveal that mTORC1 regulates liver lipophagy through a mechanism dependent on Plin3 phosphorylation. We propose that stimulating this pathway can enhance lipophagy in hepatocytes to help protect the liver from lipid-mediated toxicity, thus offering a therapeutic strategy in NAFLD.

Details

Database :
OAIster
Publication Type :
Electronic Resource
Accession number :
edsoai.on1333180979
Document Type :
Electronic Resource