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Vollmer, N. L.

Publications and source records attributed to Vollmer, N. L..

2 recordsLinked to original sources

Long-term isolation and introgression shape the genomic distinctiveness of Rice's Whale

Species complex demographic history, including population size changes, isolation and gene flow, shapes patterns of genetic variation and deleterious load. In small and declining populations, understanding these processes is critical for predicting inbreeding depression and extinction risk. The Rices whale (Balaenoptera ricei) is a newly described baleen whale species resident to the heavily industrialized Gulf of Mexico, with a current abundance estimate of 51 (95 % CI: 20-130) individuals, making it one of the most endangered baleen whales globally. Using whole-genome sequences from 25 individuals, we reconstructed the evolutionary and demographic history of Rices whale and assessed its genomic health. Our analyses reinforce its distinctiveness from Brydes whales, and suggest that Rices whale has persisted as a small and isolated population in the Gulf of Mexico for tens of thousands of years. Despite its long-term small effective population size, genomes show modest impacts of inbreeding, including few long runs of homozygosity. We detected a distinct pulse of introgression [~]350 years ago from a Brydes whale-like lineage that resulted in windows of elevated heterozygosity in Rices whale, though it did not alter the burden of deleterious variation. Forward simulations indicate that a recent population collapse to [~]100 breeding individuals places the species at high risk of future inbreeding and genomic erosion unless population growth occurs. These findings highlight that while gene flow can increase genetic diversity, demographic recovery is essential to mitigate long-term genomic risks, underscoring the importance of management actions that promote sustained population growth.

genomics↗

Mitochondrial structure despite nuclear panmixia: sex-specific dispersal dictates population structure in sperm whales

Marine mammals have high potential for dispersal, yet behavioral or environmental constraints can limit gene flow. This is true for the endangered sperm whale, Physeter macrocephalus, which has a global distribution and long-distance migrations. While previous studies revealed mitochondrial population structure with weak nuclear structure globally, genomic approaches examining this pattern have been limited. Understanding connectivity is critical for the management of this species due to population declines relative to pre-whaling, recent impacts from the Deepwater Horizon oil spill, and ongoing threats from anthropogenic sound. We investigated the connectivity between two regions, the U.S. Gulf of America (Mexico) and western North Atlantic Ocean, using reduced representation genomics and mitochondrial control region sequencing of 73 sperm whales. We found that relatedness decreased with geographic distance, likely due to the presence of familial structure. Nuclear markers showed no population structure (FST = 0.001-0.008), while mitochondrial structure was high (FST = 0.36-0.65), consistent with male-biased dispersal and female philopatry. Across all samples, genetic diversity (nuclear: 0.0014; mitochondrial: 0.0017) and effective population size (Ne=460) were low. Given this low diversity and evidence for the partitioning of genetic variation, we recommend managers treat these two regions as distinct in order to preserve existing variation and promote resilience of this species. These results show that despite the increased power of a genomic approach, it is essential to consider the biology of the species at hand and leverage both mitochondrial and nuclear markers to understand the genetic structure of threatened species.

evolutionary biology↗