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Harencar, J. G.

Publications and source records attributed to Harencar, J. G..

2 recordsLinked to original sources

Divergent habitat selection across many loci maintains species boundaries during introgression

Evidence of introgression between well-defined species is abundant, begging the question, how are species boundaries maintained during introgression? Work on this question has largely focused on systems where divergence is controlled by a few large effect genetic loci. However, adaptive divergence is often highly polygenic, especially between young species that remain capable of gene exchange. Here, we use phylogeny based introgression statistics and local ancestry inference to characterize the genomic, spatial, and historical extent of introgression between two recently diverged Neotropical plant species. We then use QTL analysis to investigate the genetic basis of traits under divergent abiotic and biotic selection that are involved in habitat isolation. Finally, we combine these top-down and bottom-up approaches to clarify how species with polygenic reproductive isolation maintain cohesion in the face of gene flow. We find clear evidence of both recent and ancient introgression between Costus villosissimus and C. allenii, but overall genomic divergence remains relatively high (Fst:[~] 0.27) in part due to strong divergent habitat selection. Traits involved in divergent habitat adaptation are polygenic, such that strong habitat selection is spread across many loci rather than concentrated on a few loci of large effect. In contrast to the islands of divergence seen around large effect loci in other hybridizing species pairs, we see genomically widespread and moderate peaks of both differentiation and introgression. Our results indicate that strong selection spread across many loci contributing to reproductive isolation can maintain species differentiation despite introgression. Significance StatementGene flow between species (introgression) reduces genetic differentiation. And yet, introgression between well-defined species is common. How do species remain distinct in the face of introgression? Previous work focuses on differentiation maintained by elevated divergence in a few genomic regions (loci) with large effects. However, many loci with small effects commonly control differences between species. To clarify how species with abundant differentiating loci can remain distinct during introgression, we described patterns of introgression between two Neotropical plants and characterized the genetic basis of their divergent habitat adaptation. We found that isolation by divergent habitat adaptation is likely controlled by numerous small-effect and genomically widespread loci, and that habitat selection across multiple traits is sufficient to maintain differentiation despite ongoing introgression.

evolutionary biology↗

Soil composition structures genetic variation across small spatial scales in a rare serpentine endemic plant

Studies of population genetic structure are typically conducted at the scale of species distributions and encompass large distances and substantial environmental variation. However, population genetic structure could also be present in species with highly restricted global distributions, such as habitat specialists with threatened or vulnerable conservation status. For these organisms, low dispersal distances coupled with fine-scale environmental heterogeneity could influence population genetic composition, potentially creating spatial genetic structure and genotype by environment associations. Here we use the serpentine endemic plant Calochortus tiburonensis, with a global distribution of 160 ha, to evaluate whether fine-scale structure in soil composition and low seed dispersal distances result in the development of population genetic structure. We paired soil elemental analysis with a RAD-seq SNP dataset for 24 C. tiburonensis individuals. Although no population structure was detected between C. tiburonensis sampling locations, multiple analyses identified associations between soil composition and genetic distance between individuals. This included associations with nickel and magnesium, two elements that were expected a priori to impact plant fitness in serpentine landscapes. However, redundancy analyses and a generalized dissimilarity model both suggest that total soil variation better explains differences in genetic composition between individuals, implying that selection from the holistic soil environment has a role in matching plant genotypes to the microenvironment. Our results indicate that fine-scale environmental heterogeneity could influence genetic differences between individuals in plant populations, even in the absence of population genetic structure. Additionally, these associations between genetic composition and fine-scale environmental heterogeneity implicate extremely fine-scale environmental heterogeneity as an essential mechanism for preserving genetic variation, particularly within range-limited species.

ecology↗