Related Experiment Videos
RHO-associated protein kinase alpha potentiates insulin-induced MAP kinase activation in Xenopus oocytes
1Loeb Health Research Institute, Ottawa Hospital, Department of Biochemistry, Microbiology & Immunology, University of Ottawa, Ottawa, K1Y 4E9, Canada.
Abstract:
We recently identified Xenopus Rho-associated protein kinase alpha (xROKalpha) as a Xenopus insulin receptor substrate-1 binding protein and demonstrated that the non-catalytic carboxyl terminus of xROKalpha binds Xenopus insulin receptor substrate-1 and blocks insulin-induced MAP kinase activation and germinal vesicle breakdown in Xenopus oocytes. In the current study we further examined the role of xROKalpha in insulin signal transduction in Xenopus oocytes. We demonstrate that injection of mRNA encoding the xROKalpha kinase domain or full length xROKalpha enhanced insulin-induced MAP kinase activation and germinal vesicle breakdown. In contrast, injection of a kinase-dead mutant of xROKalpha or pre-incubation of oocytes with an xROKalpha inhibitor significantly reduced insulin-induced MAP kinase activation. To further dissect the mechanism by which xROKalpha may participate in insulin signalling, we explored a potential function of xROKalpha in regulating cellular Ras function, since insulin-induced MAP kinase activation and germinal vesicle breakdown is known to be a Ras-dependent process. We demonstrate that whereas injection of mRNA encoding c-H-Ras alone induced xMAP kinase activation and GVBD in a very low percentage (about 10%) of injected oocytes, co-injection of mRNA encoding xROKalpha and c-H-Ras induced xMAP kinase activation and germinal vesicle breakdown in a significantly higher percentage (50-60%) of injected oocytes. These results suggest a novel function for xROKalpha in insulin signal transduction upstream of cellular Ras function.
Insights
Xenopus Rho-associated protein kinase alpha (xROKalpha) plays a dual role in insulin signaling. It can block or enhance insulin-induced pathways, suggesting a novel function upstream of Ras in Xenopus oocytes.
Area of Science:
- Cellular signaling
- Molecular biology
- Developmental biology
Background:
- Xenopus Rho-associated protein kinase alpha (xROKalpha) was previously identified as a binding protein for Xenopus insulin receptor substrate-1.
- The non-catalytic carboxyl terminus of xROKalpha inhibits insulin-induced MAP kinase activation and germinal vesicle breakdown in Xenopus oocytes.
Purpose of the Study:
- To further investigate the role of xROKalpha in insulin signal transduction in Xenopus oocytes.
- To elucidate the mechanism by which xROKalpha influences insulin signaling, particularly its potential regulation of Ras function.
Main Methods:
- Injection of mRNA encoding different forms of xROKalpha (kinase domain, full-length, kinase-dead mutant) into Xenopus oocytes.
- Treatment of oocytes with an xROKalpha inhibitor.
- Assessment of insulin-induced MAP kinase activation and germinal vesicle breakdown (GVBD).
- Co-injection of mRNA for xROKalpha and c-H-Ras to study their interaction.
Main Results:
- Expression of xROKalpha kinase domain or full-length xROKalpha enhanced insulin-induced MAP kinase activation and GVBD.
- A kinase-dead xROKalpha mutant or xROKalpha inhibition significantly reduced insulin signaling.
- xROKalpha co-expression with c-H-Ras markedly increased Ras-dependent MAP kinase activation and GVBD compared to c-H-Ras alone.
Conclusions:
- xROKalpha exhibits a complex regulatory role in insulin signal transduction in Xenopus oocytes.
- Results suggest a novel function for xROKalpha acting upstream of cellular Ras in the insulin signaling pathway.