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Updated: Jul 16, 2026

Spatio-Temporal Manipulation of Small GTPase Activity at Subcellular Level and on Timescale of Seconds in Living Cells
Published on: March 9, 2012
RhoB facilitates c-Myc turnover by supporting efficient nuclear accumulation of GSK-3
M Huang1, U Kamasani, G C Prendergast
1Lankenau Institute for Medical Research, Wynnewood, PA 19096, USA.
Abstract:
The small GTPase RhoB suppresses cancer in part by limiting cell proliferation. However, the mechanisms it uses to achieve this are poorly understood. Recent studies link RhoB to trafficking of Akt, which through its regulation of glycogen synthase kinase-3 (GSK-3) has an important role in controlling the stability of the c-Myc oncoprotein. c-Myc stabilization may be a root feature of human tumorigenesis as it phenocopies an essential contribution of SV40 small T antigen in human cell transformation. In this study we show that RhoB directs efficient turnover of c-Myc in established or transformed mouse fibroblasts and that the attenuation of RhoB which occurs commonly in human cancer is a sufficient cause to elevate c-Myc levels. Increased levels of c-Myc elicited by RhoB deletion increased the proliferation of nullizygous cells, whereas restoring RhoB in null cells decreased the stability of c-Myc and restrained cell proliferation. Mechanistic analyses indicated that RhoB facilitated nuclear accumulation of GSK-3 and GSK-3-mediated phosphorylation of c-Myc T58, the critical site for ubiquitination and degradation of c-Myc. RhoB deletion restricted nuclear localization of GSK-3, reduced T58 phosphorylation, and stabilized c-Myc. These effects were not associated with changes in phosphorylation or localization of Akt, however, differences were observed in phosphorylation and localization of the GSK-3 regulatory Akt-related kinase, serum- and glucocorticoid-inducible protein kinase (SGK). The ability of RhoB to support GSK-3-dependent turnover of c-Myc offers a mechanism by which RhoB acts to limit the proliferation of neoplastically transformed cells.
Insights
The small GTPase RhoB limits cancer by controlling c-Myc protein levels. Loss of RhoB increases c-Myc, promoting cell proliferation, while RhoB restores its degradation.
Area of Science:
- Oncology
- Cell Biology
- Molecular Mechanisms
Background:
- The small GTPase RhoB is known to suppress cancer by limiting cell proliferation.
- RhoB's precise mechanisms, particularly its role in regulating oncoproteins like c-Myc, are not fully understood.
- c-Myc stabilization is a key event in human tumorigenesis, mimicking effects of SV40 small T antigen.
Purpose of the Study:
- To investigate the role of RhoB in regulating c-Myc stability and its impact on cell proliferation.
- To elucidate the molecular mechanisms by which RhoB controls c-Myc turnover.
- To determine if RhoB attenuation in human cancers contributes to elevated c-Myc levels.
Main Methods:
- Utilized mouse fibroblasts (established and transformed) to study RhoB's effect on c-Myc.
- Assessed c-Myc levels and cell proliferation in RhoB-deficient and RhoB-restored cells.
- Performed mechanistic analyses involving GSK-3 nuclear localization and c-Myc phosphorylation at T58.
Main Results:
- RhoB facilitates efficient turnover of c-Myc, with RhoB attenuation leading to increased c-Myc levels.
- Loss of RhoB enhanced proliferation in nullizygous cells; restoring RhoB decreased c-Myc stability and proliferation.
- RhoB promotes GSK-3 nuclear accumulation and T58 phosphorylation of c-Myc, crucial for its degradation.
Conclusions:
- RhoB's ability to promote GSK-3-dependent c-Myc turnover provides a mechanism for limiting neoplastic cell proliferation.
- Reduced RhoB function, common in human cancers, can drive tumorigenesis by stabilizing c-Myc.
- RhoB acts upstream of GSK-3 to regulate c-Myc stability, independent of direct Akt pathway alterations but involving SGK.
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