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bioRxiv · 10.1101/472241

A spatially regulated GTPase cycle of Rheb controls growth factor signaling to mTORC1

Abstract

Growth factors initiate anabolism by activating mechanistic target of rapamycin complex 1 (mTORC1) via the small GTPase Rheb. We show that the GTPase cycle of Rheb is spatially regulated by the interaction with its GDI-like solubilizing factor (GSF) - PDE{delta}. Arl2-GTP mediated localized release of cytosolic Rheb-GTP from PDE{delta} deposits it onto perinuclear membranes where it forms a complex with mTORC1. The membrane associated GTPase activating protein (GAP) TSC2 hydrolyzes Rheb-GTP, weakening the interaction with mTOR. Rheb-GDP is readily released into the cytosol where it is maintained soluble by interaction with PDE{delta}. This solubilized Rheb is re-activated by nucleotide exchange to be re-deposited by Arl2-mediated release onto perinuclear membranes. This spatial GTPase cycle thereby enables mTORC1 activation to be solely controlled by growth factor induced inactivation of TSC2. The coupling between mTOR activation and spatially regulated Rheb nucleotide exchange makes growth factor induced proliferation critically dependent on PDE{delta} expression.

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BibTeXRIS

Kovacevic, M., Klein, C. H., Rossmannek, L., Konitsiotis, A. D., Stanoev, A., Kraemer, A. U., Bastiaens, P.. 2018-11-16. A spatially regulated GTPase cycle of Rheb controls growth factor signaling to mTORC1. https://doi.org/10.1101/472241

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