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RHO-associated protein kinase alpha potentiates insulin-induced MAP kinase activation in Xenopus oocytes

N Ohan1, Y Agazie, C Cummings

  • 1Loeb Health Research Institute, Ottawa Hospital, Department of Biochemistry, Microbiology & Immunology, University of Ottawa, Ottawa, K1Y 4E9, Canada.

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.

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