The combination of genomic offset and niche modelling provides insights into climate change-driven vulnerability

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Yilin Chen
Zhiyong Jiang
Ping Fan
Per G. P. Ericson
Gang Song
Xu Luo
Fumin Lei
Yanhua Qu
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[1] Chinese Academy of Sciences,Key Laboratory of Zoological Systematics and Evolution, Institute of Zoology
[2] University of Chinese Academy of Sciences,College of Life Sciences
[3] Swedish Museum of Natural History,Department of Bioinformatics and Genetics
[4] Southwest Forestry University,Faculty of Biodiversity and Conservation
[5] Chinese Academy of Sciences,Center for Excellence in Animal Evolution and Genetics
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Global warming is increasingly exacerbating biodiversity loss. Populations locally adapted to spatially heterogeneous environments may respond differentially to climate change, but this intraspecific variation has only recently been considered when modelling vulnerability under climate change. Here, we incorporate intraspecific variation in genomic offset and ecological niche modelling to estimate climate change-driven vulnerability in two bird species in the Sino-Himalayan Mountains. We found that the cold-tolerant populations show higher genomic offset but risk less challenge for niche suitability decline under future climate than the warm-tolerant populations. Based on a genome-niche index estimated by combining genomic offset and niche suitability change, we identified the populations with the least genome-niche interruption as potential donors for evolutionary rescue, i.e., the populations tolerant to climate change. We evaluated potential rescue routes via a landscape genetic analysis. Overall, we demonstrate that the integration of genomic offset, niche suitability modelling, and landscape connectivity can improve climate change-driven vulnerability assessments and facilitate effective conservation management.
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