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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.
Abstract:
Wnt signaling plays an important role in governing cell fate decisions. Coiled-coil-DIX1 (Ccd1), Dishevelled (Dvl), and Axin are signaling proteins that regulate the canonical pathway by controlling the stability of a key signal transducer β-catenin. These proteins contain the DIX domain with a ubiquitin-like fold, which mediates their interaction in the β-catenin destruction complex through dynamic head-to-tail polymerization. Despite high sequence similarities, mammalian Ccd1 shows weaker stimulation of β-catenin transcriptional activity compared with zebrafish (z) Ccd1 in cultured cells. Here, we show that the mouse (m) Ccd1 DIX domain displays weaker ability for homopolymerization than that of zCcd1. Furthermore, X-ray crystallographic analysis of mCcd1 and zCcd1 DIX domains revealed that mCcd1 was assembled into a double-helical filament by the insertion of the β1-β2 loop into the head-to-tail interface, whereas zCcd1 formed a typical single-helical polymer similar to Dvl1 and Axin. The mutation in the contact interface of mCcd1 double-helical polymer changed the hydrodynamic properties of mCcd1 so that it acquired the ability to induce Wnt-specific transcriptional activity similar to zCcd1. These findings suggest a novel regulatory mechanism by which mCcd1 modulates Wnt signaling through auto-inhibition of dynamic head-to-tail homopolymerization.
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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