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Updated: Feb 24, 2026

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Modeling of RAS complexes supports roles in cancer for less studied partners
H Billur Engin1, Daniel Carlin1, Dexter Pratt1
1Division of Medical Genetics, Department of Medicine, Universsity of California, San Diego, 9500 Gilman Dr., La Jolla, CA 92093 USA.
Background:
RAS protein interactions have predominantly been studied in the context of the RAF and PI3kinase oncogenic pathways. Structural modeling and X-ray crystallography have demonstrated that RAS isoforms bind to canonical downstream effector proteins in these pathways using the highly conserved switch I and II regions. Other non-canonical RAS protein interactions have been experimentally identified, however it is not clear whether these proteins also interact with RAS via the switch regions.
Results:
To address this question we constructed a RAS isoform-specific protein-protein interaction network and predicted 3D complexes involving RAS isoforms and interaction partners to identify the most probable interaction interfaces. The resulting models correctly captured the binding interfaces for well-studied effectors, and additionally implicated residues in the allosteric and hyper-variable regions of RAS proteins as the predominant binding site for non-canonical effectors. Several partners binding to this new interface (SRC, LGALS1, RABGEF1, CALM and RARRES3) have been implicated as important regulators of oncogenic RAS signaling. We further used these models to investigate competitive binding and multi-protein complexes compatible with RAS surface occupancy and the putative effects of somatic mutations on RAS protein interactions.
Conclusions:
We discuss our findings in the context of RAS localization to the plasma membrane versus within the cytoplasm and provide a list of RAS protein interactions with possible cancer-related consequences, which could help guide future therapeutic strategies to target RAS proteins.
Insights
RAS proteins interact with non-canonical partners via novel regions, not just switch regions. This discovery reveals new cancer targets and therapeutic strategies for RAS signaling pathways.
Area of Science:
- Molecular Biology
- Structural Biology
- Oncology
Background:
- RAS protein interactions are primarily studied via canonical RAF and PI3K pathways using switch regions.
- Non-canonical RAS interactions exist, but their binding interfaces remain unclear.
- Understanding these interactions is crucial for deciphering RAS signaling.
Purpose of the Study:
- To construct a RAS isoform-specific protein-protein interaction network.
- To predict 3D complexes and identify novel RAS interaction interfaces.
- To investigate the functional implications of these interactions in oncogenic signaling.
Main Methods:
- Developed a RAS isoform-specific protein-protein interaction network.
- Utilized 3D complex prediction to identify interaction interfaces.
- Analyzed binding sites in canonical and non-canonical RAS interactions.
Main Results:
- Validated known RAS-effector binding interfaces using structural models.
- Identified allosteric and hyper-variable regions as predominant binding sites for non-canonical effectors.
- Discovered novel RAS partners (SRC, LGALS1, RABGEF1, CALM, RARRES3) implicated in oncogenic RAS signaling.
Conclusions:
- RAS interactions extend beyond switch regions, involving novel interfaces.
- Findings provide insights into RAS localization and its role in cancer.
- Identified potential therapeutic targets for RAS-driven cancers.
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