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Polymorphism-Aware Species Trees with Advanced Mutation Models, Bootstrap, and Rate Heterogeneity

机译:具有高级突变模型、Bootstrap 和率异质性的多态性感知物种树

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摘要

Molecular phylogenetics has neglected polymorphisms within present and ancestral populations for a long time. Recently, multispecies coalescent based methods have increased in popularity, however, their application is limited to a small number of species and individuals. We introduced a polymorphism-aware phylogenetic model (PoMo), which overcomes this limitation and scales well with the increasing amount of sequence data whereas accounting for present and ancestral polymorphisms. PoMo circumvents handling of gene trees and directly infers species trees from allele frequency data. Here, we extend the PoMo implementation in IQ-TREE and integrate search for the statistically best-fit mutation model, the ability to infer mutation rate variation across sites, and assessment of branch support values. We exemplify an analysis of a hundred species with ten haploid individuals each, showing that PoMo can perform inference on large data sets. While PoMo is more accurate than standard substitution models applied to concatenated alignments, it is almost as fast. We also provide bmm-simulate, a software package that allows simulation of sequences evolving under PoMo. The new options consolidate the value of PoMo for phylogenetic analyses with population data.
机译:长期以来,分子系统发育学一直忽视了当前和祖先种群中的多态性。近年来,基于多物种聚结的方法越来越受欢迎,然而,它们的应用仅限于少数物种和个体。我们引入了一种多态性感知系统发育模型(PoMo),该模型克服了这一局限性,并随着序列数据的增加而很好地扩展,同时考虑了当前和祖先的多态性。PoMo 规避了对基因树的处理,并直接从等位基因频率数据中推断物种树。在这里,我们扩展了IQ-TREE中的PoMo实现,并整合了对统计学上最拟合突变模型的搜索,推断跨位点突变率变化的能力以及分支支持值的评估。我们举例分析了一百个物种,每个物种有十个单倍体个体,表明PoMo可以对大型数据集进行推理。虽然 PoMo 比应用于串联对齐的标准替换模型更准确,但它几乎同样快。我们还提供 bmm-simulate,这是一个软件包,可以模拟在 PoMo 下演变的序列。新选项巩固了 PoMo 在种群数据进行系统发育分析方面的价值。

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