Direct control of lysosomal catabolic activity by mTORC1 through regulation of V-ATPase assembly.

Ratto, Edoardo; Chowdhury, S Roy; Siefert, Nora S; Schneider, Martin; Wittmann, Marten; Helm, Dominic; Palm, Wilhelm · Nat Commun · 2022

basic_science · Level V

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Abstract

Mammalian cells can acquire exogenous amino acids through endocytosis and lysosomal catabolism of extracellular proteins. In amino acid-replete environments, nutritional utilization of extracellular proteins is suppressed by the amino acid sensor mechanistic target of rapamycin complex 1 (mTORC1) through an unknown process. Here, we show that mTORC1 blocks lysosomal degradation of extracellular proteins by suppressing V-ATPase-mediated acidification of lysosomes. When mTORC1 is active, peripheral V-ATPase V<sub>1</sub> domains reside in the cytosol where they are stabilized by association with the chaperonin TRiC. Consequently, most lysosomes display low catabolic activity. When mTORC1 activity declines, V-ATPase V<sub>1</sub> domains move to membrane-integral V-ATPase V<sub>o</sub> domains at lysosomes to assemble active proton pumps. The resulting drop in luminal pH increases protease activity and degradation of protein contents throughout the lysosomal population. These results uncover a principle by which cells rapidly respond to changes in their nutrient environment by mobilizing the latent catabolic capacity of lysosomes.

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