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A Consensus Tree Approach for Reconstructing Human Evolutionary History and Detecting Population Substructure

机译:重建人类进化史和检测种群亚结构的共识树方法

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The random accumulation of variations in the human genome over time implicitly encodes a history of how human populations have arisen, dispersed, and intermixed since we emerged as a species. Reconstructing that history is a challenging computational and statistical problem but has important applications both to basic research and to the discovery of genotype-phenotype correlations. We present a novel approach to inferring human evolutionary history from genetic variation data. We use the idea of consensus trees, a technique generally used to reconcile species trees from divergent gene trees, adapting it to the problem of finding robust relationships within a set of intraspecies phylogenies derived from local regions of the genome. Validation on both simulated and real data shows the method to be effective in recapitulating known true structure of the data closely matching our best current understanding of human evolutionary history. Additional comparison with results of leading methods for the problem of population substructure assignment verifies that our method provides comparable accuracy in identifying meaningful population subgroups in addition to inferring relationships among them. The consensus tree approach thus provides a promising new model for the robust inference of substructure and ancestry from large-scale genetic variation data.
机译:人类基因组中随时间变化的随机积累隐式编码了自我们作为一个物种出现以来人类种群如何出现,分散和混杂的历史。重建历史是一个具有挑战性的计算和统计问题,但在基础研究和基因型-表型相关性的发现中都有重要的应用。我们提出了一种从遗传变异数据推断人类进化历史的新方法。我们使用共识树的想法,这是一种通常用于调和发散基因树中的树种的技术,使它适应于在一组源自基因组局部区域的种内系统发育中发现牢固关系的问题。对模拟数据和真实数据的验证表明,该方法可以有效地概括已知数据的真实结构,与我们目前对人类进化历史的最新理解非常接近。对于人口子结构分配问题,与领先方法的结果进行了进一步比较,验证了我们的方法除了可以推断出有意义的人口子组之间的关系之外,还提供了相当的准确性。因此,共识树方法为从大规模遗传变异数据中可靠地推断出亚结构和祖先提供了一种有希望的新模型。

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