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Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Genetic analysis of Wnt/PCP genes in neural tube defects
Zhongzhong Chen1,2, Yunping Lei3, Xuanye Cao3
1Obstetrics and Gynecology Hospital, State Key Laboratory of Genetic Engineering at School of Life Sciences, Institute of Reproduction and Development, Fudan University, Shanghai, 200011, China.
Background:
Mouse homozygous mutants in Wnt/planar cell polarity (PCP) pathway genes have been shown to cause neural tube defects (NTDs) through the disruption of normal morphogenetic processes critical to neural tube closure (NTC). Knockout mice that are heterozygotes of single PCP genes likely fail to produce NTD phenotypes, yet damaging variants detected in human NTDs are almost always heterozygous, suggesting that other deleterious interacting variants are likely to be present. Nonetheless, the Wnt/PCP pathway remains a genetic hotspot. Addressing these issues is essential for understanding the genetic etiology of human NTDs.
Methods:
We performed targeted next-generation sequencing (NGS) on 30 NTD-predisposing Wnt/PCP pathway genes in 184 Chinese NTD cases. We subsequently replicated our findings for the CELSR1 gene in an independent cohort of 292 Caucasian NTD samples from the USA. Functional validations were confirmed using in vitro assays.
Results:
CELSR1, CELSR2 and CELSR3 genes were significantly clustered with rare driver coding mutations (q-value< 0.05) demonstrated by OncodriveCLUST. During the validation stage, the number of rare loss of function (LoF) variants in CELSR1 was significantly enriched in NTDs compared with the LoF counts in the ExAC database (p < 0.001). Functional studies indicated compound heterozygote variants of CELSR2 p.Thr2026Met and DVL3 p.Asp403Asn result in down regulation of PCP signals.
Conclusions:
These data indicate rare damaging variants of the CELSR genes, identified in ~ 14% of NTD cases, are expected to be driver genes in the Wnt/PCP pathway. Compound damaging variants of CELSR genes and other Wnt/PCP genes, which were observed in 3.3% of the studied NTD cohort, are also expected to amplify these effects at the pathway level.
Insights
Rare damaging variants in CELSR genes are linked to neural tube defects (NTDs). These findings highlight the Wnt/planar cell polarity (PCP) pathway
Area of Science:
- Genetics
- Developmental Biology
- Molecular Biology
Background:
- Neural tube defects (NTDs) are linked to disruptions in Wnt/planar cell polarity (PCP) pathway genes.
- While homozygous mutations cause defects in mice, human NTDs often involve heterozygous variants, suggesting complex genetic interactions.
- The Wnt/PCP pathway is a key area for understanding the genetic causes of NTDs.
Purpose of the Study:
- To investigate the role of Wnt/PCP pathway genes in the etiology of human NTDs.
- To identify specific genes and variants associated with NTD predisposition.
- To validate the functional impact of identified variants on PCP signaling.
Main Methods:
- Targeted next-generation sequencing (NGS) of 30 Wnt/PCP pathway genes in 184 Chinese NTD cases.
- Replication of findings for CELSR1 in an independent cohort of 292 Caucasian NTD samples.
- In vitro functional assays to validate the impact of variants.
Main Results:
- Significant clustering of rare driver coding mutations in CELSR1, CELSR2, and CELSR3 genes.
- Enrichment of rare loss-of-function (LoF) variants in CELSR1 in NTD cases compared to controls (p < 0.001).
- Functional studies demonstrated that compound heterozygous variants (CELSR2 p.Thr2026Met and DVL3 p.Asp403Asn) downregulate PCP signals.
Conclusions:
- Rare damaging variants in CELSR genes are implicated as driver genes in the Wnt/PCP pathway, found in approximately 14% of NTD cases.
- Compound damaging variants involving CELSR genes and other Wnt/PCP genes, present in 3.3% of cases, can amplify pathway-level effects.
- These findings are crucial for understanding the genetic basis of human NTDs and may inform diagnostic and therapeutic strategies.
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