Rapid, Wnt-induced changes in GSK3beta associations that regulate beta-catenin stabilization are mediated by Galpha

Xunxian Liu1, Jeffrey S Rubin, Alan R Kimmel

  • 1Laboratory of Cellular and Developmental Biology, NIDDK, National Institutes of Health, Bethesda, Maryland 20892, USA.

Current Biology : CB
|November 24, 2005
PubMed
Abstract

Insights

Wnt signaling rapidly disrupts GSK3beta/Axin complexes, stabilizing beta-catenin. G protein signaling, specifically Galpha(o) and Galpha(q), is crucial for this Wnt-mediated disruption and subsequent beta-catenin stabilization.

Area of Science:

  • Cellular signaling pathways
  • Molecular biology
  • Biochemistry

Background:

  • Beta-catenin is destabilized by GSK3beta/Axin complexes without Wnt stimulation.
  • Disheveled (Dvl) inhibits GSK3beta/Axin to stabilize beta-catenin in the canonical Wnt pathway.
  • Mechanisms of Wnt regulation of GSK3 and beta-catenin stabilization are not fully understood.

Purpose of the Study:

  • To investigate the time-dependent protein-protein interactions in response to Wnt.
  • To elucidate the role of G proteins in Wnt signaling and beta-catenin stabilization.

Main Methods:

  • Analysis of protein-protein interactions upon Wnt stimulation.
  • Depletion of Galpha(o) or Galpha(q) to assess their role.
  • In vivo G protein activation using GTPgammaS.
  • Assessment of Galpha(o) association with Fz.
  • Pertussis toxin sensitivity assays.

Main Results:

  • Wnt stimulation rapidly (t1/2 < 3 min) disrupts GSK3beta/Axin complexes.
  • GSK3beta/Axin disruption precedes beta-catenin stabilization and Axin degradation.
  • Galpha(o) or Galpha(q) depletion inhibits Wnt-induced GSK3beta/Axin disruption and beta-catenin stabilization.
  • G protein activation alone disrupts GSK3beta/Axin2 and stabilizes beta-catenin.
  • Galpha(o) associates with Fz, rapidly perturbed by Wnt-3a.
  • Wnt effects on GSK3beta/Axin2 and Galpha(o)/Fz are pertussis-toxin sensitive.

Conclusions:

  • Rapid disruption of GSK3beta/Axin interactions initiates beta-catenin stabilization.
  • Galpha(o) and Galpha(q) signaling contribute to Wnt-mediated GSK3beta/Axin disruption.
  • G protein signaling is implicated in Wnt-mediated protein-protein interactions and beta-catenin signaling.

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