Identifying Recent Adaptations in Large-Scale Genomic Data

Although several hundred regions of the human genome harbor signals of positive natural selection, few of the relevant adaptive traits and variants have been elucidated. Using full-genome sequence variation from the 1000 Genomes (1000G) Project and the composite of multiple signals (CMS) test, we in...

Full description

Bibliographic Details
Main Authors: Andersen, Kristian G., Tabrizi, Shervin, Winnicki, Sarah, Yen, Angela, Park, Daniel J., Griesemer, Dustin, Karlsson, Elinor K., Wong, Sunny H., Cabili, Moran N., Adegbola, Richard A., Bamezai, Rameshwar N.K., Hill, Adrian V. S., Vannberg, Fredrik O., Rinn, John L., Schaffner, Stephen F., Sabeti, Pardis C., Grossman, Sharon Rachel, Shlyakhter, Ilya, 1975-, Lander, Eric Steven
Other Authors: Whitaker College of Health Sciences and Technology
Format: Article
Language:en_US
Published: Elsevier 2014
Online Access:http://hdl.handle.net/1721.1/85567
https://orcid.org/0000-0001-5410-7274
https://orcid.org/0000-0001-5951-9358
Description
Summary:Although several hundred regions of the human genome harbor signals of positive natural selection, few of the relevant adaptive traits and variants have been elucidated. Using full-genome sequence variation from the 1000 Genomes (1000G) Project and the composite of multiple signals (CMS) test, we investigated 412 candidate signals and leveraged functional annotation, protein structure modeling, epigenetics, and association studies to identify and extensively annotate candidate causal variants. The resulting catalog provides a tractable list for experimental follow-up; it includes 35 high-scoring nonsynonymous variants, 59 variants associated with expression levels of a nearby coding gene or lincRNA, and numerous variants associated with susceptibility to infectious disease and other phenotypes. We experimentally characterized one candidate nonsynonymous variant in Toll-like receptor 5 (TLR5) and show that it leads to altered NF-κB signaling in response to bacterial flagellin.