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Differential role of Axin RGS domain function in Wnt signaling during anteroposterior patterning and maternal axis
Patricia N Schneider1, Diane C Slusarski, Douglas W Houston
1Interdisciplinary Graduate Program in Genetics, Department of Biology, University of Iowa, Iowa City, Iowa, United States of America.
Abstract:
Axin is a critical component of the β-catenin destruction complex and is also necessary for Wnt signaling initiation at the level of co-receptor activation. Axin contains an RGS domain, which is similar to that of proteins that accelerate the GTPase activity of heterotrimeric Gα/Gna proteins and thereby limit the duration of active G-protein signaling. Although G-proteins are increasingly recognized as essential components of Wnt signaling, it has been unclear whether this domain of Axin might function in G-protein regulation. This study was performed to test the hypothesis that Axin RGS-Gna interactions would be required to attenuate Wnt signaling. We tested these ideas using an axin1 genetic mutant (masterblind) and antisense oligo knockdowns in developing zebrafish and Xenopus embryos. We generated a point mutation that is predicted to reduce Axin-Gna interaction and tested for the ability of the mutant forms to rescue Axin loss-of-function function. This Axin point mutation was deficient in binding to Gna proteins in vitro, and was unable to relocalize to the plasma membrane upon Gna overexpression. We found that the Axin point mutant construct failed to rescue normal anteroposterior neural patterning in masterblind mutant zebrafish, suggesting a requirement for G-protein interactions in this context. We also found that the same mutant was able to rescue deficiencies in maternal axin1 loss-of-function in Xenopus. These data suggest that maternal and zygotic Wnt signaling may differ in the extent of Axin regulation of G-protein signaling. We further report that expression of a membrane-localized Axin construct is sufficient to inhibit Wnt/β-catenin signaling and to promote Axin protein turnover.
Insights
Axin
Area of Science:
- Developmental Biology
- Cell Signaling
- Molecular Biology
Background:
- Axin is crucial for beta-catenin destruction and Wnt signaling initiation.
- Axin's RGS domain resembles proteins that regulate G-protein signaling duration.
- The role of Axin's RGS domain in G-protein regulation within Wnt signaling is unclear.
Purpose of the Study:
- To investigate if Axin's interaction with G-proteins (Gna) is necessary for attenuating Wnt signaling.
- To determine the functional significance of Axin-Gna interactions in embryonic development.
Main Methods:
- Utilized axin1 mutant zebrafish (masterblind) and Xenopus embryos.
- Created a point mutation in Axin predicted to disrupt Gna binding.
- Assessed the ability of wild-type and mutant Axin to rescue Axin loss-of-function phenotypes.
- Performed in vitro binding assays and observed subcellular localization upon Gna overexpression.
Main Results:
- The Axin point mutant showed reduced binding to Gna proteins in vitro.
- The mutant Axin failed to rescue neural patterning defects in zebrafish, indicating a role for G-protein interaction.
- The same mutant successfully rescued maternal axin1 loss-of-function in Xenopus.
- Membrane-localized Axin inhibited Wnt/beta-catenin signaling and increased Axin protein turnover.
Conclusions:
- Axin's interaction with G-proteins is essential for its function in zebrafish neural patterning.
- Maternal and zygotic Wnt signaling pathways may exhibit differential regulation by Axin's G-protein interactions.
- Axin's localization to the membrane can inhibit Wnt signaling and promote its own degradation.
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