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Aryn P Wilder

Publications and source records attributed to Aryn P Wilder.

3 recordsLinked to original sources

Past genomes guide future conservation: insights from extinct populations of the endangered Pacific pocket mouse.

Efforts to recover endangered species often rely on restoring populations to their historical range, yet reestablishing lost genetic variation is challenging when the ancestral genetic landscape is poorly understood. The Pacific pocket mouse (Perognathus longimembris pacificus), a federally endangered heteromyid rodent, has been extirpated from most of its range in coastal southern California. Recovery efforts call for establishing new populations in their historic range through translocation, but the extent to which historical patterns of genetic variation can be recapitulated is unknown. To inform conservation planning, we sequenced whole genomes of historical samples, including individuals from populations that went extinct in the mid-1900s. Phylogenetic analyses revealed that mice from the southernmost extirpated population form a clade with a different subspecies, while populations to the north form a sister clade. These findings support morphological evidence calling for a taxonomic revision, which would modify the definition of the historic range and complicate the interpretation of suitable reintroduction sites. Despite this divergence, D-statistics and demographic models indicate historical gene flow among coastal populations, suggesting that alleles reintroduced to the southern coast may echo ancestral connectivity. Thus, management efforts should consider potential receiver sites that contain suitable habitat within this range as viable for population creation. These results highlight the value of historical genomics in guiding conservation decisions, particularly when taxonomic uncertainty, extirpation, and limited genetic diversity constrain modern management. Although historical baselines often cannot be restored, conservation strategies can leverage genomic insights to enhance future adaptive potential and long-term resilience of threatened species.

Endangered Species↗

Genetic Differentiation is Constrained to Chromosomal Inversions and Putative Centromeres in Locally Adapted Populations With Higher Gene Flow.

The impact of genome structure on adaptation is a growing focus in evolutionary biology, revealing an important role for structural variation and recombination landscapes in shaping genetic diversity across genomes and among populations. This is particularly relevant when local adaptation occurs despite gene flow, where clustering of differentiated loci can maintain locally adapted variants by reducing recombination between them. However, the limited genomic resources for nonmodel species, including reference genomes and recombination maps, have constrained our understanding of these patterns. In this study, we leverage the Atlantic silverside-a nonmodel fish with extensive local adaptation across a steep latitudinal gradient-as an ideal system to explore how genome structure influences adaptation under varying levels of gene flow, using a newly available reference genome and multiple recombination maps. Analyzing 168 genomes from four populations, we found a continuum of genome-wide differentiation increasing from south to north, reflecting higher connectivity among southern populations and reduced gene flow at northern latitudes. With increasing gene flow, the number and clustering of FST outlier loci also increased, with differentiated loci found exclusively within large haploblocks harboring inversions and smaller peaks overlapping putative centromeric regions. Notably, sequence divergence was only evident in inversions, supporting their role in adaptive divergence with gene flow, whereas centromeric regions appeared differentiated because of low recombination and diversity, with no indication of elevated divergence. Our results support the hypothesis that clustered genomic architectures evolve with high gene flow and enhance our understanding of how inversions and centromeres are linked to different evolutionary processes.

Gene Flow↗

Early-phase transmission of Yersinia pestis by unblocked fleas as a mechanism explaining rapidly spreading plague epizootics.

Plague is a highly virulent disease believed to have killed millions during three historic human pandemics. Worldwide, it remains a threat to humans and is a potential agent of bioterrorism. Dissemination of Yersinia pestis, the etiological agent of plague, by blocked fleas has been the accepted paradigm for flea-borne transmission. However, this mechanism, which requires a lengthy extrinsic incubation period before a short infectious window often followed by death of the flea, cannot sufficiently explain the rapid rate of spread that typifies plague epidemics and epizootics. Inconsistencies between the expected rate of spread by blocked rat fleas and that observed during the Black Death has even caused speculation that plague was not the cause of this medieval pandemic. We used the primary vector to humans in North America, Oropsylla montana, which rarely becomes blocked, as a model for studying alternative flea-borne transmission mechanisms. Our data revealed that, in contrast to the classical blocked flea model, O. montana is immediately infectious, transmits efficiently for at least 4 d postinfection (early phase) and may remain infectious for a long time because the fleas do not suffer block-induced mortality. These factors match the criteria required to drive plague epizootics as defined by recently published mathematical models. The scenario of efficient early-phase transmission by unblocked fleas described in our study calls for a paradigm shift in concepts of how Y. pestis is transmitted during rapidly spreading epizootics and epidemics, including, perhaps, the Black Death.

Animals↗