Strain-specific structural variant landscapes shape mutation retention following mutagenesis in Caenorhabditis elegans

Classical mutational theories centered on single nucleotide polymorphisms suggest that outcrossing enhances the purging of deleterious mutations by promoting recombination. However, larger structural variants, such as insertions, deletions, and inversions, can suppress recombination and create linkage blocks. Using experimental evolution and whole-genome long- and short-read sequencing, we characterized structural and nucleotide mutation landscapes in three Caenorhabditis elegans strains following repeated mutagen exposure and recovery. We found substantial strain-specific differences in structural variant accumulation and mutation retention. The strain with the highest outcrossing propensity exhibited the greatest structural variant burden and a higher fraction of single nucleotide polymorphisms within structural variant intervals. Consistent with this pattern, our population genetic simulations showed that structural variants can persist more readily under higher outcrossing rates. Together, these results indicate that structural variant architecture may influence mutation retention dynamics and highlight strain-specific constraints on purging following mutagenesis in C. elegans .

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Publication Details

Journal
Communications Biology
Published
2026-09-12
DOI
https://doi.org/10.1038/s42003-026-10910-9
Primary Topic
Evolution and Genetic Dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Strain-specific structural variant landscapes shape mutation retention following mutagenesis in Caenorhabditis elegans

С. Сабер, Rohit Kapila, Janna L. Fierst, G. Blanco et al.
Communications Biology
Evolution and Genetic Dynamics
article

Strain-specific structural variant landscapes shape mutation retention following mutagenesis in Caenorhabditis elegans

С. Сабер, Rohit Kapila, Janna L. Fierst, G. Blanco, V. K. Eggers, R. K. Verma
article en

Abstract

Classical mutational theories centered on single nucleotide polymorphisms suggest that outcrossing enhances the purging of deleterious mutations by promoting recombination. However, larger structural variants, such as insertions, deletions, and inversions, can suppress recombination and create linkage blocks. Using experimental evolution and whole-genome long- and short-read sequencing, we characterized structural and nucleotide mutation landscapes in three Caenorhabditis elegans strains following repeated mutagen exposure and recovery. We found substantial strain-specific differences in structural variant accumulation and mutation retention. The strain with the highest outcrossing propensity exhibited the greatest structural variant burden and a higher fraction of single nucleotide polymorphisms within structural variant intervals. Consistent with this pattern, our population genetic simulations showed that structural variants can persist more readily under higher outcrossing rates. Together, these results indicate that structural variant architecture may influence mutation retention dynamics and highlight strain-specific constraints on purging following mutagenesis in C. elegans .

Communications Biology
Florida International University (US), Amity University (AE)
National Science Foundation, National Institute of General Medical Sciences
Openalex Percentile: Top 11%
Evolution and Genetic Dynamics
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Strain-specific structural variant landscapes shape mutation retention following mutagenesis in Caenorhabditis elegans — С. Сабер, Rohit Kapila, et al. · Communications Biology (2026) | TGRS Research Map | TGRS