Related Experiment Videos
Activation of the Wnt signaling pathway: a molecular mechanism for lithium action
C M Hedgepeth1, L J Conrad, J Zhang
1Cell and Molecular Biology Graduate Group, University of Pennsylvania School of Medicine, Philadelphia 19104-6148, USA.
Abstract:
Glycogen synthase kinase-3 beta (GSK-3 beta/zeste-white-3/shaggy) is a negative regulator of the wnt signaling pathway which plays a central role in the development of invertebrates and vertebrates; loss of function and dominant negative mutations in GSK-3 beta lead to activation of the wnt pathway in Drosophila and Xenopus. We now provide evidence that lithium activates downstream components of the wnt signaling pathway in vivo, leading to accumulation of beta-catenin protein. Our data indicate that this activation of the wnt pathway is a consequence of inhibition of GSK-3 beta by lithium. Using a novel assay for GSK-3 beta in oocytes, we show that lithium inhibits GSK-3 beta from species as diverse as Dictyostelium discoideum and Xenopus laevis, providing a biochemical mechanism for the action of lithium on the development of these organisms. Lithium treatment also leads to activation of an AP-1-luciferase reporter in Xenopus embryos, consistent with previous observations that GSK-3 beta inhibits c-jun activity. Activation of the wnt pathway with a dominant negative form of GSK-3 beta is inhibited by myo-inositol, similar to the previously described effect of coinjecting myo-inositol with lithium. The mechanism by which myo-inositol inhibits both dominant negative GSK-3 beta and lithium remains uncertain.
Insights
Lithium inhibits glycogen synthase kinase-3 beta (GSK-3 beta), activating the wnt signaling pathway and leading to beta-catenin accumulation. This provides a biochemical mechanism for lithium
Area of Science:
- Developmental Biology
- Molecular Biology
- Biochemistry
Background:
- Glycogen synthase kinase-3 beta (GSK-3 beta) is a key negative regulator of the wnt signaling pathway.
- Dysregulation of GSK-3 beta and wnt signaling is implicated in developmental processes across species.
Purpose of the Study:
- To investigate the mechanism by which lithium affects the wnt signaling pathway.
- To determine if lithium's effects are mediated through GSK-3 beta inhibition.
Main Methods:
- In vivo studies using Drosophila and Xenopus models.
- Novel GSK-3 beta activity assay in oocytes.
- AP-1-luciferase reporter assay in Xenopus embryos.
Main Results:
- Lithium treatment leads to downstream wnt pathway activation and beta-catenin accumulation in vivo.
- Lithium directly inhibits GSK-3 beta activity across diverse species.
- Lithium activates an AP-1-luciferase reporter, consistent with GSK-3 beta's role in inhibiting c-jun.
Conclusions:
- Lithium activates the wnt signaling pathway through direct inhibition of GSK-3 beta.
- This provides a biochemical basis for lithium's developmental effects.
- Myo-inositol's inhibitory effect on GSK-3 beta and lithium action warrants further investigation.