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Published on: November 10, 2023
Genetic interactions between planar cell polarity genes cause diverse neural tube defects in mice
Jennifer N Murdoch1, Christine Damrau2, Anju Paudyal2
1Centre for Biomedical Sciences, School of Biological Sciences, Royal Holloway University of London, Egham, TW20 0RD, UK. MRC Harwell, Harwell Science and Innovation Campus, Oxfordshire, OX11 0RD, UK. Jenny.Murdoch@rhul.ac.uk.
Abstract:
Neural tube defects (NTDs) are among the commonest and most severe forms of developmental defect, characterized by disruption of the early embryonic events of central nervous system formation. NTDs have long been known to exhibit a strong genetic dependence, yet the identity of the genetic determinants remains largely undiscovered. Initiation of neural tube closure is disrupted in mice homozygous for mutations in planar cell polarity (PCP) pathway genes, providing a strong link between NTDs and PCP signaling. Recently, missense gene variants have been identified in PCP genes in humans with NTDs, although the range of phenotypes is greater than in the mouse mutants. In addition, the sequence variants detected in affected humans are heterozygous, and can often be detected in unaffected individuals. It has been suggested that interactions between multiple heterozygous gene mutations cause the NTDs in humans. To determine the phenotypes produced in double heterozygotes, we bred mice with all three pairwise combinations of Vangl2(Lp), Scrib(Crc) and Celsr1(Crsh) mutations, the most intensively studied PCP mutants. The majority of double-mutant embryos had open NTDs, with the range of phenotypes including anencephaly and spina bifida, therefore reflecting the defects observed in humans. Strikingly, even on a uniform genetic background, variability in the penetrance and severity of the mutant phenotypes was observed between the different double-heterozygote combinations. Phenotypically, Celsr1(Crsh);Vangl2(Lp);Scrib(Crc) triply heterozygous mutants were no more severe than doubly heterozygous or singly homozygous mutants. We propose that some of the variation between double-mutant phenotypes could be attributed to the nature of the protein disruption in each allele: whereas Scrib(Crc) is a null mutant and produces no Scrib protein, Celsr1(Crsh) and Vangl2(Lp) homozygotes both express mutant proteins, consistent with dominant effects. The variable outcomes of these genetic interactions are of direct relevance to human patients and emphasize the importance of performing comprehensive genetic screens in humans.
Insights
Genetic interactions between planar cell polarity pathway genes contribute to neural tube defects (NTDs). Mouse models reveal that combinations of heterozygous mutations can cause NTDs, mirroring human conditions and highlighting genetic variability.
Area of Science:
- Developmental Biology
- Genetics
- Neuroscience
Background:
- Neural tube defects (NTDs) are severe congenital abnormalities affecting central nervous system development.
- While NTDs have a known genetic basis, specific causative genes remain largely unidentified.
- Planar cell polarity (PCP) pathway genes are implicated in neural tube closure, with mutations linked to NTDs.
Purpose of the Study:
- To investigate the role of genetic interactions in NTDs by examining double heterozygotes of PCP pathway genes.
- To model human NTD phenotypes in mice by studying combinations of Vangl2, Scrib, and Celsr1 mutations.
Main Methods:
- Generation of mice with pairwise combinations of Vangl2(Lp), Scrib(Crc), and Celsr1(Crsh) mutations.
- Phenotypic analysis of double and triple heterozygous embryos to assess NTD occurrence and severity.
- Comparison of phenotypes across different genetic combinations and with homozygous mutants.
Main Results:
- The majority of double-mutant embryos exhibited open NTDs, including anencephaly and spina bifida, similar to human defects.
- Significant variability in phenotype penetrance and severity was observed among different double-heterozygote combinations, even on a uniform genetic background.
- Triple heterozygotes did not display more severe phenotypes than double heterozygotes or single homozygotes.
Conclusions:
- Interactions between heterozygous mutations in PCP pathway genes can cause NTDs, providing a potential explanation for human genetic variability in these conditions.
- Variability in NTD phenotypes may be influenced by the nature of protein disruption caused by specific alleles (null vs. dominant effects).
- These findings underscore the importance of comprehensive genetic screening in human patients with NTDs to identify complex genetic interactions.
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