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Spatial genetic structure and dispersal of giant pandas on a mountain-range scale

机译:大熊猫在山脉尺度上的空间遗传结构和散布

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摘要

Understanding the spatial genetic structure of populations can provide insight into the ecological or evolutionary processes of the species, and enable wise conservation decisions. We examined the spatial genetic structure of a giant panda (Ailuropoda melanoleuca) population in a heterogeneous mountainous landscape using noninvasive genetic sampling and 12 microsatellite loci. Nonrandom genetic structure was detected through spatial autocorrelation analysis, demonstrating a significantly positive autocorrelation over closer distances. Additional spatial analyses showed significantly positive genetic correlation among spatially-proximate males, and no correlation among females and among male–female pairs. These findings suggest a female-biased dispersal pattern and cryptic family grouping among giant pandas on a large mountain-range scale. The spatial extent of genetic structure occurred within 12.5 km, measured by a least-cost path distance model integrating information of habitat quality and habitat preferences of this species. Using the bearing analysis of PASSAGE, we found that directional genetic autocorrelations were in agreement with habitat structure, and habitat heterogeneity may affect the direction of giant panda dispersal. The characterization of spatial genetic structure can provide potentially valuable information for the conservation and management of giant pandas and their habitat.
机译:了解种群的空间遗传结构可以提供对该物种的生态或进化过程的洞察力,并可以做出明智的保护决定。我们使用非侵入式基因采样和12个微卫星基因座,研究了异构山区景观中大熊猫(大猫熊)种群的空间遗传结构。通过空间自相关分析检测到非随机的遗传结构,表明在更近的距离上存在显着的正自相关。进一步的空间分析表明,在空间上接近的雄性之间遗传显着正相关,而在雌性之间以及雄对雌对之间则没有相关性。这些发现表明,在大山脉范围内,大熊猫之间存在女性偏向的散布模式和隐秘的家庭分组。遗传结构的空间范围发生在12.5 km范围内,通过最小成本路径距离模型测得,该模型整合了该物种的栖息地质量和栖息地偏好信息。通过PASSAGE的方位分析,我们发现定向遗传自相关与栖息地结构一致,并且栖息地异质性可能影响大熊猫的扩散方向。空间遗传结构的表征可以为大熊猫及其栖息地的保护和管理提供潜在的有价值的信息。

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