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.

Plos One
|September 8, 2012
PubMed

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.

Related Concept Videos

Non-Canonical Wnt Signaling Pathways01:41

Non-Canonical Wnt Signaling Pathways

Wnt is a zygotic effect gene that is expressed during very early embryonic development. It regulates various processes in animals starting from early development through the adult stage, such as organogenesis in the embryo and maintenance of neuronal and blood stem cells. Wnt proteins can induce a wide variety of intracellular pathways depending upon the specific abilities of different Wnt ligands to form a complex with shared and cognate receptors in the presence of different co-receptors. The...
Non-Canonical Wnt Signaling Pathways01:41

Non-Canonical Wnt Signaling Pathways

Wnt is a zygotic effect gene that is expressed during very early embryonic development. It regulates various processes in animals starting from early development through the adult stage, such as organogenesis in the embryo and maintenance of neuronal and blood stem cells. Wnt proteins can induce a wide variety of intracellular pathways depending upon the specific abilities of different Wnt ligands to form a complex with shared and cognate receptors in the presence of different co-receptors. The...
Canonical Wnt Signaling Pathway02:54

Canonical Wnt Signaling Pathway

The gene encoding the main signaling molecules of the Wnt signaling pathways (the Wnt proteins) was discovered almost four decades ago by Nüsslein-Volhard and Wieschaus. They identified and originally named the gene "wingless" (wg) after a phenotype discovered during their landmark genetic screen in Drosophila for body pattern defects. At around the same time, another researcher named Harold Varmus found that a murine tumor virus activates the mammalian wg homolog, Int-1, which results in tumor...
Canonical Wnt Signaling Pathway02:54

Canonical Wnt Signaling Pathway

The gene encoding the main signaling molecules of the Wnt signaling pathways (the Wnt proteins) was discovered almost four decades ago by Nüsslein-Volhard and Wieschaus. They identified and originally named the gene "wingless" (wg) after a phenotype discovered during their landmark genetic screen in Drosophila for body pattern defects. At around the same time, another researcher named Harold Varmus found that a murine tumor virus activates the mammalian wg homolog, Int-1, which results in tumor...
Role of Ephrin-Eph Signalling in Intestinal Stem Cell Renewal01:22

Role of Ephrin-Eph Signalling in Intestinal Stem Cell Renewal

Erythropoietin-producing hepatocellular carcinoma receptor (Eph) and its ligand, Eph receptor-interacting protein (Ephrin) were first discovered in the human carcinoma cell line, hence the name. Ephrin-Eph interaction guides cells to reach their appropriate location in adult tissues. They also play an essential role in the immune system by helping in immune cell migration, adhesion, and activation. Based on their structure and function, Eph is divided into two classes — EphA and EphB.
Role Of Notch Signalling In Intestinal Stem Cell Renewal01:12

Role Of Notch Signalling In Intestinal Stem Cell Renewal

Notch signaling was first discovered in Drosophila melanogaster, where it is involved in cell lineage differentiation. Notch signaling regulates the maintenance and differentiation of intestinal stem cells or ISCs by controlling the expression of atonal homolog 1 or Atoh1. Atoh1 directs cells to differentiate into secretory cells.
Direct cell-to-cell contact is needed for the activation of Notch signaling. The signal is initiated when a notch ligand binds to a receptor on an adjacent cell, also...