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Updated: Jan 19, 2026
Protooncogenes: Ras Gene and MAP Kinase pathway
Ras functional proximity proteomics establishes mTORC2 as new direct ras effector
Joanna R Kovalski1,2, Ronald L Shanderson1,2, Paul A Khavari1,2,3
1Program in Epithelial Biology, Stanford University, Stanford, CA 94305, USA.
Abstract:
Although oncogenic mutations in the three major Ras isoforms, KRAS, HRAS and NRAS, are present in nearly a third of human cancers, therapeutic targeting of Ras remains a challenge due to its structure and complex regulation. However, an in-depth examination of the protein interactome of oncogenic Ras may provide new insights into key regulators, effectors and other mediators of its tumorigenic functions. Previous proteomic analyses have been limited by experimental tools that fail to capture the dynamic, transient nature of Ras cellular interactions. Therefore, in a recent study, we integrated proximity-dependent biotin labeling (BioID) proteomics with CRISPR screening of identified proteins to identify Ras proximal proteins required for Ras-dependent cancer cell growth. Oncogenic Ras was proximal to proteins involved in unexpected biological processes, such as vesicular trafficking and solute transport. Critically, we identified a direct, bona fide interaction between active Ras and the mTOR Complex 2 (mTORC2) that stimulated mTORC2 kinase activity. The oncogenic Ras-mTORC2 interaction resulted in a downstream pro-proliferative transcriptional program and promoted Ras-dependent tumor growth in vivo. Here we provide additional insight into the Ras isoform-specific protein interactomes, highlighting new opportunities for unique tumor-type therapies. Finally, we discuss the active Ras-mTORC2 interaction in detail, providing a more complete understanding of the direct relationship between Ras and mTORC2. Collectively, our findings support a model wherein Ras integrates an expanded array of pro-oncogenic signals to drive tumorigenic processes, including action on mTORC2 as a direct effector of Ras-driven proliferative signals.
Insights
Targeting oncogenic Ras, a cancer driver, is difficult. New research reveals Ras directly interacts with mTORC2, promoting tumor growth and offering new therapeutic strategies.
Area of Science:
- Oncology
- Molecular Biology
- Proteomics
Background:
- Oncogenic mutations in KRAS, HRAS, and NRAS are prevalent in human cancers.
- Targeting Ras proteins therapeutically is challenging due to their complex structure and regulation.
- Previous proteomic studies lacked the ability to capture dynamic Ras interactions.
Purpose of the Study:
- To identify proteins proximal to oncogenic Ras using proximity-dependent biotin labeling (BioID) proteomics.
- To uncover Ras-dependent proteins essential for cancer cell growth via CRISPR screening.
- To elucidate the direct interaction between active Ras and mTOR Complex 2 (mTORC2).
Main Methods:
- Integration of BioID proteomics with CRISPR screening.
- Identification of Ras proximal proteins involved in cancer cell growth.
- Characterization of the direct interaction between active Ras and mTORC2.
Main Results:
- Oncogenic Ras interacts with proteins in vesicular trafficking and solute transport.
- A direct interaction between active Ras and mTORC2 was identified, stimulating mTORC2 kinase activity.
- The Ras-mTORC2 interaction promotes a pro-proliferative transcriptional program and Ras-dependent tumor growth in vivo.
Conclusions:
- Ras integrates multiple pro-oncogenic signals, including through mTORC2.
- The Ras-mTORC2 interaction represents a direct effector pathway for Ras-driven proliferation.
- Findings suggest new therapeutic opportunities targeting Ras isoform-specific interactomes and the Ras-mTORC2 axis.
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