ArticlePLoS genetics2019
Selective breeding modifies mef2ca mutant incomplete penetrance by tuning the opposing Notch pathway.
Article in PLoS genetics, 2019. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers.
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Who cites it
13 citing papers in PubMed.
- Early ultraviolet exposure disrupts late dorsal fin skeletal development in zebrafish.Developmental dynamics : an official publication of the American Association of Anatomists · 2026Article
- A quadratic paradigm describes the relationship between phenotype severity and variation.Nature communications · 2025Article
- A genetic modifier links integrin α5 to the phenotypic variation in fibronectin 1a mutant zebrafish.PLoS genetics · 2025Article
- The Gq/11 family of Gα subunits is necessary and sufficient for lower jaw development.Development (Cambridge, England) · 2025Article
- The sclerotome is the source of the dorsal and anal fin skeleton and its expansion is required for median fin development.Development (Cambridge, England) · 2024Article
- TFAP2 paralogs regulate midfacial development in part through a conserved ALX genetic pathway.Development (Cambridge, England) · 2024Article
- Cellular Competency during Development Alters Evolutionary Dynamics in an Artificial Embryogeny Model.Entropy (Basel, Switzerland) · 2023Article
- Article
- Distinct and redundant roles for zebrafishFrontiers in endocrinology · 2022Article
- Variation in phenotypes from a Bmp-Gata3 genetic pathway is modulated by Shh signaling.PLoS genetics · 2021Article
- Transgene-mediated skeletal phenotypic variation in zebrafish.Journal of fish biology · 2021Article
- The alx3 gene shapes the zebrafish neurocranium by regulating frontonasal neural crest cell differentiation timing.Development (Cambridge, England) · 2021Article
- Differences among families in craniofacial shape at early life-stages of Arctic charr (Salvelinus alpinus).BMC developmental biology · 2020Article
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Authors and funding
4 authors.
Funding
Abstract
Deleterious genetic mutations allow developmental biologists to understand how genes control development. However, not all loss of function genetic mutants develop phenotypic changes. Many deleterious mutations only produce a phenotype in a subset of mutant individuals, a phenomenon known as incomplete penetrance. Incomplete penetrance can confound analyses of gene function and our understanding of this widespread phenomenon remains inadequate. To better understand what controls penetrance, we capitalized on the zebrafish mef2ca mutant which produces craniofacial phenotypes with variable penetrance. Starting with a characterized mef2ca loss of function mutant allele, we used classical selective breeding methods to generate zebrafish strains in which mutant-associated phenotypes consistently appear with low or high penetrance. Strikingly, our selective breeding for low penetrance converted the mef2ca mutant allele behavior from homozygous lethal to homozygous viable. Meanwhile, selective breeding for high penetrance converted the mef2ca mutant allele from fully recessive to partially dominant. Comparing the selectively-bred low- and high-penetrance strains revealed that the strains initially respond similarly to the mutation, but then gene expression differences between strains emerge during development. Thus, altered temporal genetic circuitry can manifest through selective pressure to modify mutant penetrance. Specifically, we demonstrate differences in Notch signaling between strains, and further show that experimental manipulation of the Notch pathway phenocopies penetrance changes occurring through selective breeding. This study provides evidence that penetrance is inherited as a liability-threshold trait. Our finding that vertebrate animals can overcome a deleterious mutation by tuning genetic circuitry complements other reported mechanisms of overcoming deleterious mutations such as transcriptional adaptation of compensatory genes, alternative mRNA splicing, and maternal deposition of wild-type transcripts, which are not observed in our system. The selective breeding approach and the resultant genetic circuitry change we uncovered advances and expands our current understanding of genetic and developmental resilience.
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