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Biology subjects

Kalsi, N.

Publications and source records attributed to Kalsi, N..

2 recordsLinked to original sources

Maize genetic diversity is largely unstructured by human ethnolinguistic diversity in its center of origin

Population structure and environmental features often capture major axes of genetic variation in many species. Yet the impacts of human activity often remain unquantified. For domesticated species that rely on human activity for survival and dispersal, human movements and cultural differences may play key roles patterning genetic diversity. Maize is a staple crop of enormous cultural importance to indigenous peoples of the Americas, but cannot survive or disperse without farmers. Using publicly available genotyping and passport data from almost 2,000 traditional maize varieties, more than 500 whole genome sequences of humans from Mexico, and indigenous linguistic maps, we quantify anthropogenic effects on maize genetic diversity in the Americas. Maize shows very little overall structure, highlighting the effectiveness of indigenous farmers in moving and mixing maize populations. While principal components of maize diversity show meaningful correlations to human genetic diversity, our linear modeling suggests little additional impact of human population structure beyond shared geography. Though differences in maize diversity are often patterned by language locally, we find only weak genome-wide effects at larger spatial scales. Despite the relatively weak global signal of anthropogenic effects, linguistic GWAS, outlier FST analyses, and selection scans identified loci associated with specific languages. Leveraging landscape-level sequencing data, we highlight how anthropogenic factors have shaped patterns of maize genetic diversity across Mesoamerica.

evolutionary biology↗

Population genomic analysis reveals high inbreeding in a Hawksbill turtle population nesting in Singapore

Seven species of marine turtles remain in a world currently threatened by anthropogenic activities and climate change, standing at the precipice of extinction. Urgent conservation endeavours are imperative to safeguard their survival and preserve the biodiversity of marine ecosystems. Yet, genetic studies on these turtles have leaned on restricted genetic markers, such as the mitochondrial control region. The markers could provide incomplete or biased estimations of genetic diversity and population structure, thereby limiting precise conservation strategies. Here, we have generated a de novo genome assembly and high-quality whole-genome population datasets from hawksbill turtles nesting and foraging in Singapore. This initiative aims to contribute to unbiased, fine-resolution genetic data on the species, conducting a comprehensive population genomic study. Our analysis results demonstrated a remarkable enhancement in genetic markers. While we identified five different haplotypes defined by five variants within 69 mitochondrial control region sequences, the analysis of 35 whole genome sequences uncovered approximately 12 million single nucleotide polymorphisms (SNPs). Within the Singapore hawksbill turtle population, our whole-genome analysis revealed a pronounced degree of inbreeding, with most samples sharing at least a first cousin relationship. Furthermore, within a multiple-paternity nest, we identified related parents. Additionally, our inference of demographic history underscored the impact of past climate change on the decreasing hawksbill turtle population. We believe this pioneering study will substantially enhance the field of conservation genetic study of marine turtles.

genomics↗