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混合比例和二次接触带的空间推断。

Spatial inference of admixture proportions and secondary contact zones.

作者信息

Durand Eric, Jay Flora, Gaggiotti Oscar E, François Olivier

机构信息

Faculty of Medicine, Laboratoire des Techniques de 1'Ingénierie Médicale et de la Complexité, University Joseph Fourier, Grenoble IT, Group of Mathematical Biology, La Tronche, France.

出版信息

Mol Biol Evol. 2009 Sep;26(9):1963-73. doi: 10.1093/molbev/msp106. Epub 2009 May 21.

Abstract

Genetic admixture of distinct gene pools is the consequence of complex spatiotemporal processes that could have involved massive migration and local mating during the history of a species. However, current methods for estimating individual admixture proportions lack the incorporation of such a piece of information. Here, we extend Bayesian clustering algorithms by including global trend surfaces and spatial autocorrelation in the prior distribution on individual admixture coefficients. We test our algorithm by using spatially explicit and realistic coalescent simulations of colonization followed by secondary contact. By coupling our multiscale spatial analyses with a Bayesian evaluation of model complexity and fit, we show that the algorithm provides a correct description of smooth clinal variation, while still detecting zones of sharp variation when they are present in the data. We also apply our approach to understand the population structure of the killifish, Fundulus heteroclitus, for which the algorithm uncovers a presumed contact zone in the Atlantic coast of North America.

摘要

不同基因库的遗传混合是复杂时空过程的结果,这些过程可能在物种历史中涉及大规模迁移和本地交配。然而,当前估计个体混合比例的方法缺乏纳入此类信息。在这里,我们通过在个体混合系数的先验分布中纳入全局趋势面和空间自相关来扩展贝叶斯聚类算法。我们通过使用空间明确且现实的殖民化后二次接触的合并模拟来测试我们的算法。通过将我们的多尺度空间分析与模型复杂性和拟合的贝叶斯评估相结合,我们表明该算法提供了对平滑渐变变异的正确描述,同时在数据中存在急剧变异区域时仍能检测到它们。我们还应用我们的方法来理解鳉鱼(Fundulus heteroclitus)的种群结构,该算法揭示了北美大西洋沿岸一个假定的接触区。

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