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Landscape characteristics influencing the genetic structure of greater sage-grouse within the stronghold of their range: a holistic modeling approach

机译:在其据点范围内影响较大鼠尾草遗传结构的景观特征:整体建模方法

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摘要

Given the significance of animal dispersal to population dynamics and geographic variability, understanding how dispersal is impacted by landscape patterns has major ecological and conservation importance. Speaking to the importance of dispersal, the use of linear mixed models to compare genetic differentiation with pairwise resistance derived from landscape resistance surfaces has presented new opportunities to disentangle the menagerie of factors behind effective dispersal across a given landscape. Here, we combine these approaches with novel resistance surface parameterization to determine how the distribution of high- and low-quality seasonal habitat and individual landscape components shape patterns of gene flow for the greater sage-grouse (Centrocercus urophasianus) across Wyoming. We found that pairwise resistance derived from the distribution of low-quality nesting and winter, but not summer, seasonal habitat had the strongest correlation with genetic differentiation. Although the patterns were not as strong as with habitat distribution, multivariate models with sagebrush cover and landscape ruggedness or forest cover and ruggedness similarly had a much stronger fit with genetic differentiation than an undifferentiated landscape. In most cases, landscape resistance surfaces transformed with 17.33-km-diameter moving windows were preferred, suggesting small-scale differences in habitat were unimportant at this large spatial extent. Despite the emergence of these overall patterns, there were differences in the selection of top models depending on the model selection criteria, suggesting research into the most appropriate criteria for landscape genetics is required. Overall, our results highlight the importance of differences in seasonal habitat preferences to patterns of gene flow and suggest the combination of habitat suitability modeling and linear mixed models with our resistance parameterization is a powerful approach to discerning the effects of landscape on gene flow.
机译:鉴于动物传播对种群动态和地理变异的重要性,了解景观格局如何影响传播对生态和保护具有重要意义。说到传播的重要性,使用线性混合模型将遗传分化与从景观抗性表面衍生的成对抗性进行比较,提供了新的机会来解散在给定景观中有效分散背后的因素。在这里,我们将这些方法与新颖的阻力表面参数化相结合,以确定高品质和低品质的季节性栖息地的分布以及各个景观成分如何塑造怀俄明州更大的鼠尾草(Centrocercus urophasianus)的基因流模式。我们发现成对的抗性源自劣质巢的分布和冬季,而不是夏季,季节性生境与遗传分化之间的相关性最强。尽管模式不像栖息地分布那样强,但是具有鼠尾草覆盖和景观坚固性或森林覆盖和坚固性的多元模型与未分化景观相比,具有更强的遗传分化适应性。在大多数情况下,最好使用直径为17.33公里的移动窗口转换的景观阻力表面,这表明在较大的空间范围内,栖息地的小规模差异并不重要。尽管出现了这些总体模式,但根据模型选择标准在顶级模型的选择上仍存在差异,这表明需要研究最合适的景观遗传学标准。总体而言,我们的结果强调了季节性生境偏好对基因流模式差异的重要性,并建议将生境适应性模型和线性混合模型与我们的抗性参数化方法相结合,是辨别景观对基因流影响的有力方法。

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