Genotype–environment associations to reveal the molecular basis of environmental adaptation

Author:

Lasky Jesse R1ORCID,Josephs Emily B2,Morris Geoffrey P3ORCID

Affiliation:

1. Department of Biology, Pennsylvania State University , University Park, Pennsylvania 16802, USA

2. Department of Plant Biology; Ecology, Evolution, and Behavior Program, Michigan State University , East Lansing, Michigan 48824, USA

3. Department of Soil and Crop Sciences; Cell and Molecular Biology Program, Colorado State University , Fort Collins, Colorado 80526, USA

Abstract

Abstract A fundamental goal in plant biology is to identify and understand the variation underlying plants’ adaptation to their environment. Climate change has given new urgency to this goal, as society aims to accelerate adaptation of ecologically important plant species, endangered plant species, and crops to hotter, less predictable climates. In the pre-genomic era, identifying adaptive alleles was painstaking work, leveraging genetics, molecular biology, physiology, and ecology. Now, the rise of genomics and new computational approaches may facilitate this research. Genotype–environment associations (GEAs) use statistical associations between allele frequency and environment of origin to test the hypothesis that allelic variation at a given gene is adapted to local environments. Researchers may scan the genome for GEAs to generate hypotheses on adaptive genetic variants (environmental genome-wide association studies). Despite the rapid adoption of these methods, many important questions remain about the interpretation of GEA findings, which arise from fundamental unanswered questions on the genetic architecture of adaptation and limitations inherent to association-based analyses. We outline strategies to ground GEAs in the underlying hypotheses of genetic architecture and better test GEA-generated hypotheses using genetics and ecophysiology. We provide recommendations for new users who seek to learn about the molecular basis of adaptation. When combined with a rigorous hypothesis testing framework, GEAs may facilitate our understanding of the molecular basis of climate adaptation for plant improvement.

Funder

National Institutes of Health

NIH

United States Agency for International Development

American People provided to the Feed the Future Innovation Lab for Collaborative Research on Sorghum & Millet and the Innovation Lab for Crop Improvement through the USAID

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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