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Dapper, A. L.

Publications and source records attributed to Dapper, A. L..

2 recordsLinked to original sources

Long-term population decline and recombination heterogeneity shape genomic diversity in the American alligator

The loss of genetic diversity caused by population bottlenecks can significantly impact the ability of a species to adapt to disease, natural disasters, and changing environments. Over the last 175, years, American alligator (A. mississippiensis) populations underwent a decline due to habitat destruction and exploitation followed by a rebound resulting from dedicated conservation efforts. Despite a current census population of millions, microsatellite data indicates a significant paucity of genetic variation within alligators. Using whole genome sequences from 19 individuals sampled from the species geographic range, we quantified nucleotide diversity, heterozygosity, inbreeding, demographic history, and fine-scale recombination rates. We find that American alligator genomes exhibit low nucleotide diversity and elevated homozygosity relative to many vertebrates, but these patterns are dominated by numerous short runs of homozygosity (ROHs), rather than long tracts indicative of recent inbreeding. Demographic history reconstruction based on site-frequency-spectrum analyses support a prolonged decline in effective population size beginning in the last glacial period, indicating that this reduced genetic diversity largely predates intensive human exploitation. Additionally, we uncover a highly structured recombination landscape, with recombination consistently elevated at distal chromosomal regions and suppressed across large central segments. This heterogeneity is associated with genomic spatial variation in nucleotide diversity, suggesting that the recombination landscape contributes to the persistence of homozygosity following population expansion. Together, our results highlight that demographic recovery does not necessarily equate to genetic recovery and show how long-term population history and genomic architecture continue to shape diversity in a "recovered" species.

genomics↗

Inter-strain variation in intra-chromosomal rates of recombination in Caenorhabditis elegans

Meiotic recombination, the exchange of genetic material between homologous chromosomes, is a critical cellular process and a fundamental evolutionary parameter. Importantly, its rate varies dramatically across scales, from whole-genomes to kilobases. Although, the role of PRDM9 in intra-chromosomal variation in crossovers is well studied, our broader understanding of cellular and evolutionary dynamics driving intra-chromosomal patterns of recombination rate remains limited, in part due to the complexity of the landscape and the intrinsic difficulty of measuring this phenotype. Research on recombination rate variation in Caenorhabditis elegans is relatively sparse, but prior work suggests that this species provides a tractable system for studying intra-chromosomal recombination without many common confounding factors. Here, we measure variation in intra-chromosomal patterns of recombination rates in two genetically distinct populations (N2 and CB4856) of C. elegans. We find statistically significant, domain-specific differences in recombination rate between the two strains. Specifically, on chromosome IV, recombination is higher in the gene-rich central domain in N2, but higher in the gene-poor distal domain in CB4856. We detect no evidence of sex differences in recombination rate (heterochiasmy). Together, our findings demonstrate divergence in intra-chromosomal patterns of recombination between two widely utilized strains in a model system with an otherwise highly conserved recombination landscape.

evolutionary biology↗