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Estimating Parameters of Speciation Models Based on Refined Summaries of the Joint Site-Frequency Spectrum

机译:基于联合站点频率频谱细化摘要的形态模型参数估计

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摘要

Understanding the processes and conditions under which populations diverge to give rise to distinct species is a central question in evolutionary biology. Since recently diverged populations have high levels of shared polymorphisms, it is challenging to distinguish between recent divergence with no (or very low) inter-population gene flow and older splitting events with subsequent gene flow. Recently published methods to infer speciation parameters under the isolation-migration framework are based on summarizing polymorphism data at multiple loci in two species using the joint site-frequency spectrum (JSFS). We have developed two improvements of these methods based on a more extensive use of the JSFS classes of polymorphisms for species with high intra-locus recombination rates. First, using a likelihood based method, we demonstrate that taking into account low-frequency polymorphisms shared between species significantly improves the joint estimation of the divergence time and gene flow between species. Second, we introduce a local linear regression algorithm that considerably reduces the computational time and allows for the estimation of unequal rates of gene flow between species. We also investigate which summary statistics from the JSFS allow the greatest estimation accuracy for divergence time and migration rates for low (around 10) and high (around 100) numbers of loci. Focusing on cases with low numbers of loci and high intra-locus recombination rates we show that our methods for the estimation of divergence time and migration rates are more precise than existing approaches.
机译:了解种群分化产生不同物种的过程和条件是进化生物学的中心问题。由于最近分化的种群具有高水平的共有多态性,因此很难区分没有(或非常低)种群间基因流的最近分化与随后的基因流的较早分裂事件。最近发布的在隔离迁移框架下推断形态参数的方法是基于使用联合位点频谱(JSFS)对两个物种中多个基因座的多态性数据进行汇总的。基于对位点内重组率高的物种更广泛地使用JSFS类多态性,我们对这些方法进行了两次改进。首先,使用基于似然的方法,我们证明考虑物种之间共享的低频多态性可以显着改善物种之间发散时间和基因流的联合估计。其次,我们引入了一种局部线性回归算法,该算法大大减少了计算时间,并允许估计物种之间基因流的不相等比率。我们还调查了JSFS的哪些摘要统计信息可为低数量(约10个)和高数量(约100个)的基因座提供最大的散布时间和迁移率估计精度。着眼于基因座数量少和位点内重组率高的案例,我们证明了我们估计发散时间和迁移率的方法比现有方法更为精确。

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