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首页> 外文期刊>Fortschritte der Physik >Coestimating Reticulate Phylogenies and Gene Trees from Multilocus Sequence Data
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Coestimating Reticulate Phylogenies and Gene Trees from Multilocus Sequence Data

机译:从多层序列数据结束网状系统和基因树

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The multispecies network coalescent (MSNC) is a stochastic process that captures how gene trees grow within the branches of a phylogenetic network. Coupling the MSNC with a stochastic mutational process that operates along the branches of the gene trees gives rise to a generative model of how multiple loci from within and across species evolve in the presence of both incomplete lineage sorting (ILS) and reticulation (e.g., hybridization). We report on a Bayesian method for sampling the parameters of this generative model, including the species phylogeny, gene trees, divergence times, and population sizes, from DNA sequences of multiple independent loci. We demonstrate the utility of our method by analyzing simulated data and reanalyzing an empirical data set. Our results demonstrate the significance of not only coestimating species phylogenies and gene trees, but also accounting for reticulation and ILS simultaneously. In particular, we show that when gene flow occurs, our method accurately estimates the evolutionary histories, coalescence times, and divergence times. Tree inference methods, on the other hand, underestimate divergence times and overestimate coalescence times when the evolutionary history is reticulate. While the MSNC corresponds to an abstract model of "intermixture," we study the performance of the model and method on simulated data generated under a gene flow model. We show that the method accurately infers the most recent time at which gene flowoccurs. Finally, we demonstrate the application of the new method to a 106-locus yeast data set.
机译:多数网络促进(MSNC)是一种随机过程,捕获基因树木如何在系统发育网络的分支内生长。用沿着基因树的分支操作的随机突变过程耦合MSNC,其产生了在存在不完全谱系分类(ILS)和网状物(例如,杂交)的情况下从内部和跨越物种的多个基因座的生成模型(例如,杂交)。我们报告了一种对多个独立基因座的DNA序列进行了对该生成模型的参数进行了对该生成模型的参数的方法,包括物种系统发育,基因树,分歧时间和种群尺寸。我们通过分析模拟数据并重新分析经验数据集来展示我们的方法的效用。我们的结果表明,不仅具有结缔组的物种和基因树的重要性,而且还占同时鉴定了网状物和ILS。特别是,我们表明,当基因流动发生时,我们的方法准确地估计进化历史,聚结时间和发散时间。另一方面,树引起的方法,在进化历史是特征时低估分歧时间和高估聚结时间。虽然MSNC对应于“混合器”的抽象模型,我们研究了模型和方法对基因流模型中产生的模拟数据的性能。我们表明该方法准确地推动了基因流通的最近时间。最后,我们展示了新方法将新方法应用于106轨卡酵母数据集。

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