Stephane E. Castel, Furahini D. Tluway, Anne-Katrin Emde, Natalie Smyth, Mohd Karim, Dhriti Sengupta, Olivia A. Gray, Melissa Hendershott, Sarah LeBaron von Baeyer, Erin E. Burke, Sarah Kaewert, Khanh-Dung H. Nguyen, Solomon S. R. Choma, Reneilwe G. Mashaba, Lisa K. Micklesfield, Chodziwadziwa Kabudula, Kathleen Kahn, F. Xavier Gomez-Olive, Stephen Tollman, Ananyo Choudhury, Phelelani T. Mpangase, Scott Hazelhurst, Kaja A. Wasik, Laura Yerges-Armstrong, Michèle Ramsay
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引用次数: 0
Abstract
Functional genomics resources are critical for interpreting human genetic studies, but currently they are predominantly from European-ancestry individuals. Here we present the South African Blood Regulatory (SABR) resource, a map of blood regulatory variation that includes three South Eastern Bantu-speaking groups. Using paired whole-genome and blood transcriptome data from over 600 individuals, we map the genetic architecture of 40 blood cell traits derived from deconvolution analysis, as well as expression, splice and cell-type interaction quantitative trait loci. We comprehensively compare SABR to the Genotype Tissue Expression Project and characterize thousands of regulatory variants only observed in African-ancestry individuals. Finally, we demonstrate the increased utility of SABR for interpreting African-ancestry association studies by identifying putatively causal genes and molecular mechanisms through colocalization analysis of blood-relevant traits from the Pan-UK Biobank. Importantly, we make full SABR summary statistics publicly available to support the African genomics community.
期刊介绍:
Nature Genetics publishes the very highest quality research in genetics. It encompasses genetic and functional genomic studies on human and plant traits and on other model organisms. Current emphasis is on the genetic basis for common and complex diseases and on the functional mechanism, architecture and evolution of gene networks, studied by experimental perturbation.
Integrative genetic topics comprise, but are not limited to:
-Genes in the pathology of human disease
-Molecular analysis of simple and complex genetic traits
-Cancer genetics
-Agricultural genomics
-Developmental genetics
-Regulatory variation in gene expression
-Strategies and technologies for extracting function from genomic data
-Pharmacological genomics
-Genome evolution