2026/04/24 by Antoine Perrier, Olivia Keenan, Jeremiah W. Busch +1 · 2 voices
Environmental Science · #Climate Change and Health Impacts
paper · doi:10.1093/evlett/qrag020
Abstract Improving forecasts of species’ responses to climate change has become a central challenge in ecology and evolution as species distributions are increasingly disrupted by ongoing climate warming. Insight into this challenge may be gained through a better understanding of evolutionary responses to past climate change. The rear edges of species’ distributions are typically relict populations persisting in former glacial refugia at warmer range limits. As such, they form natural laboratories to study the evolutionary outcomes of past climate warming. We test three hypotheses of possible outcomes to past climate warming at the rear edge of the North American herb Campanula americana, including maintenance of high diversity due to long-term persistence, strong genetic drift following habitat decline, and strong local adaptation allowing persistence despite environmental change. Empirical studies rarely explicitly test these hypotheses limiting our understanding of evolutionary responses to warming climates. We tested the three hypotheses, by assessing genetic variation in a genome-wide population genetic study, drift load in a controlled crossing study, and local adaptation in a transplant study. Rear-edge populations exhibited reduced genetic diversity within populations and high differentiation among populations, typically interpreted as evidence of genetic drift, yet showed limited drift load. Instead, these populations expressed strong local adaptation, thriving in rear-edge habitats that were unsuitably warm for populations from the expanded range. Warm-edge populations, therefore, may persist under warming climates by gradually adapting, even in the face of genetic erosion. Our findings highlight the importance of explicitly testing distinct evolutionary trajectories, particularly going beyond measures of genetic variation when inferring evolutionary history. More broadly, these findings identify rear-edge populations not as relics of decline, but as underappreciated models for studying successful adaptation under long-term climate change.