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Updated: Dec 9, 2025

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
DVL mutations identified from human neural tube defects and Dandy-Walker malformation obstruct the Wnt signaling
Lingling Liu1, Weiqi Liu1, Yan Shi2
1Obstetrics and Gynecology Hospital, State Key Laboratory of Genetic Engineering at School of Life Sciences, Fudan University, Shanghai, 200011, China; NHC Key Lab of Reproduction (Shanghai Institute of Planned Parenthood Research), Institute of Reproduction and Development, Fudan University, Shanghai, 200032, China.
Abstract:
Wnt signaling pathways, including the canonical Wnt/β-catenin pathway, planar cell polarity pathway, and Wnt/Ca2+ signaling pathway, play important roles in neural development during embryonic stages. The DVL genes encode the hub proteins for Wnt signaling pathways. The mutations in DVL2 and DVL3 were identified from patients with neural tube defects (NTDs), but their functions in the pathogenesis of human neural diseases remain elusive. Here, we sequenced the coding regions of three DVL genes in 176 stillborn or miscarried fetuses with NTDs or Dandy-Walker malformation (DWM) and 480 adult controls from a Han Chinese population. Four rare mutations were identified: DVL1 p.R558H, DVL1 p.R606C, DVL2 p.R633W, and DVL3 p.R222Q. To assess the effect of these mutations on NTDs and DWM, various functional analyses such as luciferase reporter assay, stress fiber formation, and in vivo teratogenic assay were performed. The results showed that the DVL2 p.R633W mutation destabilized DVL2 protein and upregulated activities for all three Wnt signalings (Wnt/β-catenin signaling, Wnt/planar cell polarity signaling, and Wnt/Ca2+ signaling) in mammalian cells. In contrast, DVL1 mutants (DVL1 p.R558H and DVL1 p.R606C) decreased canonical Wnt/β-catenin signaling but increased the activity of Wnt/Ca2+ signaling, and DVL3 p.R222Q only decreased the activity of Wnt/Ca2+ signaling. We also found that only the DVL2 p.R633W mutant displayed more severe teratogenicity in zebrafish embryos than wild-type DVL2. Our study demonstrates that these four rare DVL mutations, especially DVL2 p.R633W, may contribute to human neural diseases such as NTDs and DWM by obstructing Wnt signaling pathways.
Insights
Rare mutations in DVL genes, particularly DVL2 p.R633W, may cause neural tube defects (NTDs) and Dandy-Walker malformation (DWM) by disrupting Wnt signaling pathways critical for embryonic development.
Area of Science:
- Genetics and Developmental Biology
- Molecular Biology
- Neuroscience
Background:
- Wnt signaling pathways are crucial for embryonic neural development.
- Mutations in DVL genes (DVL1, DVL2, DVL3) have been linked to neural tube defects (NTDs), but their precise roles are unclear.
- DVL genes encode key proteins regulating Wnt signaling.
Purpose of the Study:
- To investigate the role of rare DVL gene mutations in the pathogenesis of human neural diseases, specifically NTDs and Dandy-Walker malformation (DWM).
- To analyze the functional impact of identified DVL mutations on Wnt signaling pathways.
Main Methods:
- Sequencing of DVL1, DVL2, and DVL3 coding regions in fetuses with NTDs/DWM and adult controls.
- Functional analyses including luciferase reporter assays, stress fiber formation assays, and in vivo teratogenic assays in zebrafish.
- Assessment of protein stability and Wnt signaling pathway activities.
Main Results:
- Four rare mutations (DVL1 p.R558H, DVL1 p.R606C, DVL2 p.R633W, DVL3 p.R222Q) were identified.
- The DVL2 p.R633W mutation destabilized DVL2 protein and dysregulated all three Wnt signaling pathways (canonical Wnt/β-catenin, Wnt/planar cell polarity, Wnt/Ca2+).
- DVL1 mutants differentially affected Wnt signaling pathways, while DVL3 p.R222Q primarily impacted Wnt/Ca2+ signaling.
- DVL2 p.R633W exhibited enhanced teratogenicity in zebrafish embryos.
Conclusions:
- These identified rare DVL mutations, especially DVL2 p.R633W, are potential contributors to human neural diseases like NTDs and DWM.
- Disruption of Wnt signaling pathways by these DVL mutations underlies their pathogenic role in neural development.
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