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Genetically diverse populations hold the keys to climatic adaptation in the Western barn owl (Tyto alba).

Abstract

Although local adaptation influences species distributions, its role in driving evolutionary resilience under climate change remains unclear. Current predictive models focus on genetic adaptation to present climates, providing limited insight into future adaptive capacity. We hypothesise that historical responses to climatic shifts can reveal candidate loci for local adaptation in the future. Combining ecological niche modelling and genomic analyses, we investigate spatiotemporal patterns and mechanisms of local adaptation of the Western Palearctic barn owl (Tyto alba). Ecological modelling reveals that barn owls now occupy a broader climatic niche than during the Last Glacial Maximum. Genomic analyses indicate ongoing adaptation, with regions under selection linked to environmental factors across all populations. We find that local adaptation drives evolutionary changes across populations, enabling colonisation of new habitats and shaping responses to climate change in resident populations. We show that standing genetic diversity plays a crucial role in adaptation to past, present, and future environmental shifts.

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BibTeXRIS

Hugo Corval, Tristan Cumer, Alexandros Topaloudis, Flavien Collart, Antoine Guisan, Alexandre Roulin, Jérôme Goudet. 2026-06-03. Genetically diverse populations hold the keys to climatic adaptation in the Western barn owl (Tyto alba).. https://doi.org/10.1038/s42003-026-10385-8

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