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 PMID:28619945  

Transcriptional activation of RagD GTPase controls mTORC1 and promotes cancer growth.

Chiara Di Malta | Diletta Siciliano | Alessia Calcagni | Jlenia Monfregola | Simona Punzi | Nunzia Pastore | Andrea N Eastes | Oliver Davis | Rossella De Cegli | Angela Zampelli | Luca G Di Giovannantonio | Edoardo Nusco | Nick Platt | Alessandro Guida | Margret Helga Ogmundsdottir | Luisa Lanfrancone | Rushika M Perera | Roberto Zoncu | Pier Giuseppe Pelicci | Carmine Settembre | Andrea Ballabio
Science (New York, N.Y.) | 2017

The mechanistic target of rapamycin complex 1 (mTORC1) is recruited to the lysosome by Rag guanosine triphosphatases (GTPases) and regulates anabolic pathways in response to nutrients. We found that MiT/TFE transcription factors-master regulators of lysosomal and melanosomal biogenesis and autophagy-control mTORC1 lysosomal recruitment and activity by directly regulating the expression of RagD. In mice, this mechanism mediated adaptation to food availability after starvation and physical exercise and played an important role in cancer growth. Up-regulation of MiT/TFE genes in cells and tissues from patients and murine models of renal cell carcinoma, pancreatic ductal adenocarcinoma, and melanoma triggered RagD-mediated mTORC1 induction, resulting in cell hyperproliferation and cancer growth. Thus, this transcriptional regulatory mechanism enables cellular adaptation to nutrient availability and supports the energy-demanding metabolism of cancer cells.

Pubmed ID: 28619945

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Associated grants

  • Agency: NINDS NIH HHS, United States
    Id: R01 NS078072
  • Agency: European Research Council, International
    Id: 250154
  • Agency: NCI NIH HHS, United States
    Id: DP2 CA195761
  • Agency: European Research Council, International
    Id: 341131
  • Agency: NIGMS NIH HHS, United States
    Id: T32 GM008568

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International Mouse Phenotyping Consortium (IMPC) (tool)

RRID:SCR_006158

Center that produces knockout mice and carries out high-throughput phenotyping of each line in order to determine function of every gene in mouse genome. These mice will be preserved in repositories and made available to scientific community representing valuable resource for basic scientific research as well as generating new models for human diseases.

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