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Genome‐environment association methods comparison supports omnigenic adaptation to ecological niche in malaria vector mosquitoes

Devon A. DeRaad; Marlon E. Cobos; Abdelghafar Alkishe; Uzma Ashraf; Koffi Mensah Ahadji‐Dabla; Claudia Nuñez‐Penichet; A. Townsend Peterson
Molecular Ecology · Vol. 30, Issue 23 · pp. 6468-6485 · 2021

Abstract

The concept of a fundamental ecological niche is central to questions of geographic distribution, population demography, species conservation, and evolutionary potential. However, robust inference of genomic regions associated with evolutionary adaptation to particular environmental conditions remains difficult due to the myriad of potential confounding processes that can generate heterogeneous patterns of variation across the genome. Here, we interrogate the potential role of genome environment association (GEA) testing as an initial step in building an understanding of the genetic basis of ecological niche. We leverage publicly available genomic data from the Anopheles gambiae 1000 Genomes (Ag1000g) Consortium to test the ability of multiple analytically unique GEA methods to handle confounding patterns of genetic variation, control false positive rates, and discern associations with broadly relevant climate variables from random allele frequency patterns throughout the genome. We found evidence supporting the ability of commonly implemented GEA methods to account for confounding patterns of spatial and genetic variation, and control false positive rates. However, we fail to find evidence supporting the ability of GEA tests to reject signals of adaptation to randomly simulated environmental variables, indicating that discerning between true signals of genome environment adaptation and genome environment correlations resulting from alternative evolutionary processes, remains challenging. Because signals of environmental adaptation are so diffuse and confounded throughout the genome, we argue that genomic adaptation to ecological niche is likely best understood under an omnigenic model wherein highly interconnected, genome‐wide gene regulatory networks shape genomic adaptation to key environmental conditions.

Bibliographic Information

JournalMolecular Ecology
PublisherWiley
Publication Date2021-12-01
Publication Year2021
Volume30
Issue23
Pages6468-6485
Document TypeJournal Article
Print ISSN0962-1083
eISSN1365-294X
DOI10.1111/mec.16094
SubjectEcology & Organismal Biology

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NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/1365294X
Publisher PageOpen Publisher Page
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