Related Experiment Video
Updated: Jan 3, 2026

RhoC GTPase Activation Assay
Published on: August 22, 2010
Gain-of-Function RHOA Mutations Promote Focal Adhesion Kinase Activation and Dependency in Diffuse Gastric Cancer
Haisheng Zhang1,2, Antje Schaefer3,4, Yichen Wang2
1Department of General Surgery, Nanfang Hospital, Southern Medical University, Guangzhou, China.
Abstract:
Diffuse gastric cancer (DGC) is a lethal malignancy lacking effective systemic therapy. Among the most provocative recent results in DGC has been that of highly recurrent missense mutations in the GTPase RHOA. The function of these mutations has remained unresolved. We demonstrate that RHOAY42C, the most common RHOA mutation in DGC, is a gain-of-function oncogenic mutant, and that expression of RHOAY42C with inactivation of the canonical tumor suppressor Cdh1 induces metastatic DGC in a mouse model. Biochemically, RHOAY42C exhibits impaired GTP hydrolysis and enhances interaction with its effector ROCK. RHOA Y42C mutation and Cdh1 loss induce actin/cytoskeletal rearrangements and activity of focal adhesion kinase (FAK), which activates YAP-TAZ, PI3K-AKT, and β-catenin. RHOAY42C murine models were sensitive to FAK inhibition and to combined YAP and PI3K pathway blockade. These results, coupled with sensitivity to FAK inhibition in patient-derived DGC cell lines, nominate FAK as a novel target for these cancers. SIGNIFICANCE: The functional significance of recurrent RHOA mutations in DGC has remained unresolved. Through biochemical studies and mouse modeling of the hotspot RHOAY42C mutation, we establish that these mutations are activating, detail their effects upon cell signaling, and define how RHOA-mediated FAK activation imparts sensitivity to pharmacologic FAK inhibitors.See related commentary by Benton and Chernoff, p. 182.This article is highlighted in the In This Issue feature, p. 161.
Insights
Gain-of-function RHOA mutations drive diffuse gastric cancer (DGC) by activating FAK signaling. Targeting FAK shows promise for treating this lethal malignancy, offering new therapeutic avenues for DGC patients.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Diffuse gastric cancer (DGC) is an aggressive malignancy with limited therapeutic options.
- Recurrent missense mutations in the GTPase RHOA are frequently observed in DGC, but their functional impact remains unclear.
Purpose of the Study:
- To elucidate the function of RHOA mutations in DGC.
- To investigate the downstream signaling pathways affected by RHOA mutations.
- To identify potential therapeutic targets for RHOA-mutated DGC.
Main Methods:
- Biochemical characterization of RHOA mutations.
- Development of a mouse model expressing RHOAY42C and Cdh1 inactivation.
- Analysis of downstream signaling pathways including FAK, YAP-TAZ, PI3K-AKT, and β-catenin.
- Assessment of therapeutic sensitivity in murine models and patient-derived cell lines.
Main Results:
- The RHOAY42C mutation confers gain-of-function oncogenic activity.
- RHOAY42C expression with Cdh1 loss induces metastatic DGC in mice.
- RHOAY42C impairs GTP hydrolysis, enhances ROCK interaction, and promotes cytoskeletal rearrangements.
- Activated FAK, YAP-TAZ, PI3K-AKT, and β-catenin pathways were observed.
- RHOAY42C-driven DGC models showed sensitivity to FAK inhibition and combined pathway blockade.
Conclusions:
- RHOAY42C is an activating oncogenic mutation driving DGC.
- RHOA-mediated FAK activation is a key mechanism in DGC pathogenesis.
- FAK inhibition represents a promising therapeutic strategy for DGC with RHOA mutations.
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