Structural basis for Ccd1 auto-inhibition in the Wnt pathway through homomerization of the DIX domain

Shin-Ichi Terawaki1,2, Shohei Fujita3, Takuya Katsutani4

  • 1Graduate School of Science and Technology, Gunma University, 1-5-1 Tenjin-cho, Kiryu, Gunma, 376-8515, Japan. terawaki@gunma-u.ac.jp.

Scientific Reports
|August 12, 2017
PubMed

Insights

Mouse Coiled-coil-DIX1 (Ccd1) protein auto-inhibits Wnt signaling by forming a double-helical polymer. This structure prevents β-catenin activity, unlike the single helix formed by zebrafish Ccd1.

Area of Science:

  • Molecular Biology
  • Cell Signaling
  • Structural Biology

Background:

  • Wnt signaling is crucial for cell fate determination.
  • Proteins like Coiled-coil-DIX1 (Ccd1), Dishevelled (Dvl), and Axin regulate the canonical Wnt pathway.
  • These proteins interact via DIX domains, forming polymers that control β-catenin stability.

Purpose of the Study:

  • To investigate the structural basis for differences in Wnt signaling activity between mouse (m) Ccd1 and zebrafish (z) Ccd1.
  • To elucidate the mechanism of auto-inhibition by mCcd1.

Main Methods:

  • X-ray crystallography to determine the DIX domain structures of mCcd1 and zCcd1.
  • Polymerization assays to compare homopolymerization abilities.
  • Mutagenesis to alter mCcd1 structure and assess functional impact on Wnt signaling.

Main Results:

  • Mouse Ccd1 DIX domain exhibits weaker homopolymerization than zCcd1.
  • mCcd1 forms a unique double-helical filament via β1-β2 loop insertion, unlike the single-helical polymers of zCcd1, Dvl1, and Axin.
  • Mutating the mCcd1 interface disrupted the double helix, restoring Wnt transcriptional activity.

Conclusions:

  • Mouse Ccd1 auto-inhibits Wnt signaling through a novel double-helical polymerization mechanism.
  • The structural difference in polymerization explains the lower Wnt activity of mCcd1 compared to zCcd1.
  • Targeting Ccd1 polymerization offers a potential strategy for modulating Wnt signaling.

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