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Restricted gene flow and local adaptation highlight the vulnerability of high-latitude reefs to rapid environmental change

机译:受限的基因流动和局部适应凸显了高纬度珊瑚礁对快速环境变化的脆弱性

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Global climate change poses a serious threat to the future health of coral reef ecosystems. This calls for management strategies that are focused on maximizing the evolutionary potential of coral reefs. Fundamental to this is an accurate understanding of the spatial genetic structure in dominant reef-building coral species. In this study, we apply a genotyping- by-sequencing approach to investigate genome-wide patterns of genetic diversity, gene flow, and local adaptation in a reef-building coral, Pocillopora damicornis, across 10 degrees of latitude and a transition from temperate to tropical waters. We identified strong patterns of differentiation and reduced genetic diversity in high-latitude populations. In addition, genome-wide scans for selection identified a number of outlier loci putatively under directional selection with homology to proteins previously known to be involved in heat tolerance in corals and associated with processes such as photoprotection, protein degradation, and immunity. This study provides genomic evidence for both restricted gene flow and local adaptation in a widely distributed coral species, and highlights the potential vulnerability of leading-edge populations to rapid environmental change as they are locally adapted, reproductively isolated, and have reduced levels of genetic diversity.
机译:全球气候变化对珊瑚礁生态系统的未来健康构成严重威胁。这就要求制定管理战略,重点是最大限度地发挥珊瑚礁的进化潜力。其基础是准确了解主要造礁珊瑚物种的空间遗传结构。在这项研究中,我们应用基因分型测序方法来研究造礁珊瑚 Pocillopora damicornis 的遗传多样性、基因流动和局部适应的全基因组模式,跨越 10 度纬度和从温带到热带水域的过渡。我们确定了高纬度种群的强烈分化模式和减少的遗传多样性。此外,用于选择的全基因组扫描确定了许多定向选择下的异常位点,这些位点与以前已知的蛋白质具有同源性,这些蛋白质与珊瑚的耐热性有关,并与光保护、蛋白质降解和免疫等过程有关。这项研究为广泛分布的珊瑚物种的基因流动受限和局部适应提供了基因组证据,并强调了前沿种群对快速环境变化的潜在脆弱性,因为它们在当地适应,生殖隔离,并且遗传多样性水平降低。

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