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Updated: Jul 14, 2026

Spatio-Temporal Manipulation of Small GTPase Activity at Subcellular Level and on Timescale of Seconds in Living Cells
Published on: March 9, 2012
P-Rex1 links mammalian target of rapamycin signaling to Rac activation and cell migration
Ivette Hernández-Negrete1, Jorge Carretero-Ortega, Hans Rosenfeldt
1Department of Pharmacology, CINVESTAV-IPN, Apartado Postal 14-740, México DF, 07000 Mexico.
Abstract:
Polarized cell migration results from the transduction of extra-cellular cues promoting the activation of Rho GTPases with the intervention of multidomain proteins, including guanine exchange factors. P-Rex1 and P-Rex2 are Rac GEFs connecting Gbetagamma and phosphatidylinositol 3-kinase signaling to Rac activation. Their complex architecture suggests their regulation by protein-protein interactions. Novel mechanisms of activation of Rho GTPases are associated with mammalian target of rapamycin (mTOR), a serine/threonine kinase known as a central regulator of cell growth and proliferation. Recently, two independent multiprotein complexes containing mTOR have been described. mTORC1 links to the classical rapamycin-sensitive pathways relevant for protein synthesis; mTORC2 links to the activation of Rho GTPases and cytoskeletal events via undefined mechanisms. Here we demonstrate that P-Rex1 and P-Rex2 establish, through their tandem DEP domains, interactions with mTOR, suggesting their potential as effectors in the signaling of mTOR to Rac activation and cell migration. This possibility was consistent with the effect of dominant-negative constructs and short hairpin RNA-mediated knockdown of P-Rex1, which decreased mTOR-dependent leucine-induced activation of Rac and cell migration. Rapamycin, a widely used inhibitor of mTOR signaling, did not inhibit Rac activity and cell migration induced by leucine, indicating that P-Rex1, which we found associated to both mTOR complexes, is only active when in the mTORC2 complex. mTORC2 has been described as the catalytic complex that phosphorylates AKT/PKB at Ser-473 and elicits activation of Rho GTPases and cytoskeletal reorganization. Thus, P-Rex1 links mTOR signaling to Rac activation and cell migration.
Insights
P-Rex1 and P-Rex2 proteins interact with mTOR signaling complexes, linking them to Rac activation and cell migration. This discovery reveals a novel pathway for regulating cell movement through the mTORC2 complex.
Area of Science:
- Cell Biology
- Molecular Signaling
- Biochemistry
Background:
- Polarized cell migration is regulated by Rho GTPases and guanine nucleotide exchange factors (GEFs).
- Mammalian target of rapamycin (mTOR) is a key regulator of cell growth and proliferation, with two distinct complexes (mTORC1 and mTORC2) involved in different cellular processes.
- mTORC2 is known to regulate Rho GTPases and cytoskeletal dynamics through undefined mechanisms.
Purpose of the Study:
- To investigate the interaction between P-Rex1/P-Rex2 and mTOR signaling.
- To elucidate the role of P-Rex1 in mediating mTOR signaling to Rac activation and cell migration.
- To determine which mTOR complex is involved in P-Rex1-mediated signaling.
Main Methods:
- Co-immunoprecipitation to detect protein-protein interactions.
- Dominant-negative constructs and short hairpin RNA (shRNA) knockdown to assess protein function.
- Assessment of Rac activation and cell migration assays.
- Treatment with rapamycin to inhibit mTOR signaling.
Main Results:
- P-Rex1 and P-Rex2 interact with mTOR via their DEP domains.
- Knockdown of P-Rex1 reduced leucine-induced Rac activation and cell migration dependent on mTOR.
- Rapamycin did not inhibit leucine-induced Rac activity and cell migration, indicating P-Rex1 functions within the mTORC2 complex.
- P-Rex1 associates with both mTORC1 and mTORC2, but is only active in mTORC2.
Conclusions:
- P-Rex1 acts as an effector linking mTOR signaling to Rac activation and cell migration.
- The interaction with mTORC2 is crucial for P-Rex1's role in regulating cytoskeletal events and cell movement.
- This study uncovers a novel signaling pathway involving P-Rex1 and mTORC2 in the regulation of cell migration.
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