Related Experiment Video
Updated: Sep 16, 2025

Author Spotlight: Innovative Approaches to Understanding Plant Structure-Function Relationships for Climate-Resilient Crops
Published on: July 12, 2024
Haploblocks contribute to parallel climate adaptation following global invasion of a cosmopolitan plant
Paul Battlay1, Brandon T Hendrickson2, Jonas I Mendez-Reneau2
1Monash University, Melbourne, Victoria, Australia. paul.battlay@monash.edu.
Abstract:
The role of rapid adaptation during species invasions has historically been minimized with the assumption that introductions consist of few colonists and limited genetic diversity. While overwhelming evidence suggests that rapid adaptation is more prevalent than originally assumed, the demographic and adaptive processes underlying successful invasions remain unresolved. Here we leverage a large whole-genome sequence dataset to investigate the relative roles of colonization history and adaptation during the worldwide invasion of the forage crop, Trifolium repens (Fabaceae). We show that introduced populations encompass high levels of genetic variation with little evidence of bottlenecks. Independent colonization histories on different continents are evident from genome-wide population structure. Five haploblocks-large haplotypes with limited recombination-on three chromosomes exist as standing genetic variation within the native and introduced ranges and exhibit strong signatures of parallel climate-associated adaptation across continents. Field experiments in the native and introduced ranges demonstrate that three of the haploblocks strongly affect fitness and exhibit patterns of selection consistent with local adaptation across each range. Our results provide strong evidence that large-effect structural variants contribute substantially to rapid and parallel adaptation of an introduced species throughout the world.
Related Concept Videos
Adaptations that Reduce Water Loss
Introduction to Plant Diversity
Responses to Heat and Cold Stress
What is Climate?
Global Climate Change
Responses to Drought and Flooding

