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Geography and Environment Shape Landscape Genetics of Mediterranean Alpine Species Silene ciliata Poiret. (Caryophyllaceae)

机译:地中海高山物种Silene ciliata Poiret的地理和环境形态景观遗传学。 (石竹科)

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摘要

The study of the drivers that shape spatial genetic structure across heterogeneous landscapes is one of the main approaches used to understand population dynamics and responses in changing environments. While the Isolation-by-Distance model (IBD) assumes that genetic differentiation increases among populations with geographical distance, the Isolation-by-Resistance model (IBR) also considers geographical barriers and other landscape features that impede gene flow. On the other hand, the Isolation-by-Environment model (IBE) explains genetic differentiation through environmental differences between populations. Although spatial genetic studies have increased significantly in recent years, plants from alpine ecosystems are highly underrepresented, even though they are great suitable systems to disentangle the role of the different factors that structure genetic variation across environmental gradients. Here, we studied the spatial genetic structure of the Mediterranean alpine specialist Silene ciliata across its southernmost distribution limit. We sampled three populations across an altitudinal gradient from 1850 to 2400 m, and we replicated this sample over three mountain ranges aligned across an E-W axis in the central part of the Iberian Peninsula. We genotyped 20 individuals per population based on eight microsatellite markers and used different landscape genetic tools to infer the role of topographic and environmental factors in shaping observed patterns along the altitudinal gradient. We found a significant genetic structure among the studied Silene ciliata populations which was related to the orography and E-W configuration of the mountain ranges. IBD pattern arose as the main factor shaping population genetic differentiation. Geographical barriers between mountain ranges also affected the spatial genetic structure (IBR pattern). Although environmental variables had a significant effect on population genetic diversity parameters, no IBE pattern was found on genetic structure. Our study reveals that IBD was the driver that best explained the genetic structure, whereas environmental factors also played a role in determining genetic diversity values of this dominant plant of Mediterranean alpine environments.
机译:对影响跨异质景观空间遗传结构的驱动因素的研究是用于了解人口动态和变化环境中响应的主要方法之一。虽然按距离隔离模型(IBD)假设具有地理距离的人群之间的遗传分化增加,但按距离隔离模型(IBR)也考虑了阻碍基因流动的地理障碍和其他景观特征。另一方面,按环境隔离模型(IBE)通过种群之间的环境差异解释了遗传分化。尽管近年来,空间遗传学研究显着增加,但高山生态系统中的植物却很少被使用,尽管它们非常适合用来区分构成跨环境梯度遗传变异的不同因素的作用。在这里,我们研究了地中海高山专家Silene ciliata在其最南端的分布范围内的空间遗传结构。我们在1850至2400 m的高度梯度上对三个种群进行了采样,并在伊比利亚半岛中部沿E-W轴对齐的三个山脉上复制了该样本。我们基于八个微卫星标记对每个人群进行了20个基因分型,并使用了不同的景观遗传工具来推断地形和环境因素在沿垂直梯度塑造观测模式中的作用。我们在所研究的纤毛纤毛虫种群中发现了重要的遗传结构,这与山脉的地形和E-W构造有关。 IBD模式是影响群体遗传分化的主要因素。山脉之间的地理障碍也影响了空间遗传结构(IBR模式)。尽管环境变量对种群遗传多样性参数有显着影响,但在遗传结构上未发现IBE模式。我们的研究表明,IBD是最能解释遗传结构的驱动力,而环境因素在确定地中海高山环境这种优势植物的遗传多样性值方面也发挥了作用。

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