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Reconstitution Of β-catenin Degradation In Xenopus Egg Extract
Published on: June 17, 2014
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.
Background:
In the absence of Wnt stimulation, the transcriptional cofactor beta-catenin is destabilized via phosphorylation by protein kinase GSK3beta in complex with Axin family members. In the "canonical" Wnt signaling pathway, Disheveled (Dvl) is required to functionally inhibit the activity of the GSK3beta/Axin complex and thereby stabilize beta-catenin. Yet, the mechanisms that underlie Wnt regulation of GSK3 and stabilization of beta-catenin are still not fully appreciated.
Results:
Here, we examine time-dependent changes in protein-protein interactions that occur in response to Wnt treatment. We show that GSK3beta/Axin complexes are rapidly (t1/2 < 3 min) disrupted upon Wnt stimulation and that changes in GSK3beta/Axin association substantially precede both beta-catenin stabilization and Axin degradation. We further demonstrate that depletion of Galpha(o) or Galpha(q) will inhibit, respectively, the Wnt-induced disruption of GSK3beta/Axin2 and GSK3beta/Axin complexes and diminish Wnt stabilization of beta-catenin. We also show that direct activation of G proteins in vivo with GTPgammaS in the absence of exogenous Wnt will disrupt GSK3beta/Axin2 complexes and stabilize beta-catenin. Finally, we demonstrate an association of Galpha(o) with Fz that is also very rapidly (t1/2 < 1 min) perturbed upon Wnt-3a stimulation and that the Wnt-dependent effects on both GSK3beta/Axin2 and Galpha(o)/Fz are pertussis-toxin sensitive. Collectively, these data implicate a role for G proteins in the regulation of Wnt-mediated protein-protein interactions and signaling to beta-catenin.
Conclusions:
We conclude that rapid disruption of GSK3beta/Axin interactions in response to Wnt leads to the initial stabilization of beta-catenin and that Galpha(o) and Galpha(q) signaling contributes to Wnt-mediated GSK3beta/Axin disruption and the ultimate stabilization of beta-catenin.
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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