Search bioRxiv⌕ Search

Biology subjects

Longman, E. K.

Publications and source records attributed to Longman, E. K..

2 recordsLinked to original sources

Revealing the abiotic and biotic drivers of past and future local adaptation in a coastal dogwhelk

Predicting whether populations can persist under rapid environmental change requires identifying the ecological drivers of local adaptation, uncovering their genetic bases, and understanding how adaptive variation will respond to future selection. Here, we combine landscape genomics, environmental data, and evolutionary simulations to identify the selective forces shaping adaptation across 1,500 km of the west coast of North America in the low-dispersing coastal dogwhelk Nucella canaliculata, determine their genomic bases, and forecast future evolutionary responses. We found strong associations of genome-wide variation with both abiotic (i.e., mean pH) and biotic variation (i.e., cross-sectional shell thickness of the mussel prey species, Mytilus californianus). These patterns are underlain by two large-effect loci, including a biomineralization gene associated with pH tolerance and a locus near a thiamine transporter associated with prey shell thickness. Genomic offset analyses and population genetic simulations further predict that ongoing ocean acidification will disrupt existing adaptive patterns and generate maladaptation in high latitude populations, with evolutionary outcomes strongly influenced by gene flow, which determines the rate at which adaptive alleles spread across the species range. Together, these findings reveal how biotic and abiotic selective pressures shape adaptive genomic variation and provide a framework for forecasting evolutionary responses to future global change.

evolutionary biology↗

Geographic Divergence in Population Genomics and Shell Morphology Reveal History of Glacial Refugia in a Coastal Dogwhelk

Studying contemporaneous spatial patterns of genomic diversity can yield important insights into the evolutionary processes that structure populations and shape patterns of adaptation. In contrast to the large number of marine species with planktonic larvae, populations of marine taxa with low dispersal and deep evolutionary divergences offer an opportunity to reveal the phylogeographic histories of marine ecosystems. Here, we constructed a draft genome assembly for the low-dispersing marine dogwhelk, Nucella canaliculata, and studied patterns of genomic diversity and shell morphometrics in 19 populations distributed along [~]1,500 km of the west coast of North America. We observed significant population structure with a strong phylogeographic break at Monterey Bay, which was matched with divergence in shell morphology. Genomic patterns, concomitant with computer simulations, suggest that there were at least two refugial populations during the last glacial maximum that subsequently experienced post-glacial expansion and admixture. Lastly, linking genotype to phenotype, we identified candidate loci underlying variation in shell morphology. These findings demonstrate how high-resolution genomic data reveal the roles of demography, selection, and historical events in shaping the spatial distribution of genetic variation, offering key insights into the processes that structure modern coastal populations and their potential to respond to future climatic changes.

evolutionary biology↗