Spatial and functional separation of mTORC1 signalling in response to different amino acid sources

mTORC1型 信号 细胞生物学 氨基酸 化学 生物 生物化学 计算生物学 信号转导 PI3K/AKT/mTOR通路
作者
Stephanie Fernandes,Danai-Dimitra Angelidaki,Julian Nüchel,Jiyoung Pan,Peter Gollwitzer,Yoav Elkis,Filippo Artoni,Sabine Wilhelm,Marija Kovacevic-Sarmiento,Constantinos Demetriades
出处
期刊:Nature Cell Biology [Nature Portfolio]
卷期号:26 (11): 1918-1933 被引量:9
标识
DOI:10.1038/s41556-024-01523-7
摘要

Abstract Amino acid (AA) availability is a robust determinant of cell growth through controlling mechanistic/mammalian target of rapamycin complex 1 (mTORC1) activity. According to the predominant model in the field, AA sufficiency drives the recruitment and activation of mTORC1 on the lysosomal surface by the heterodimeric Rag GTPases, from where it coordinates the majority of cellular processes. Importantly, however, the teleonomy of the proposed lysosomal regulation of mTORC1 and where mTORC1 acts on its effector proteins remain enigmatic. Here, by using multiple pharmacological and genetic means to perturb the lysosomal AA-sensing and protein recycling machineries, we describe the spatial separation of mTORC1 regulation and downstream functions in mammalian cells, with lysosomal and non-lysosomal mTORC1 phosphorylating distinct substrates in response to different AA sources. Moreover, we reveal that a fraction of mTOR localizes at lysosomes owing to basal lysosomal proteolysis that locally supplies new AAs, even in cells grown in the presence of extracellular nutrients, whereas cytoplasmic mTORC1 is regulated by exogenous AAs. Overall, our study substantially expands our knowledge about the topology of mTORC1 regulation by AAs and hints at the existence of distinct, Rag- and lysosome-independent mechanisms that control its activity at other subcellular locations. Given the importance of mTORC1 signalling and AA sensing for human ageing and disease, our findings will probably pave the way towards the identification of function-specific mTORC1 regulators and thus highlight more effective targets for drug discovery against conditions with dysregulated mTORC1 activity in the future.
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