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Incomplete lineage sorting impacts the inference of macroevolutionary regimes from molecular phylogenies when concatenation is employed: An analysis based on Cetacea

机译:当使用级联时,不完整的谱系排序会影响从分子系统发生的宏观进化机制的推论:基于鲸类动物的分析

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Interest in methods that estimate speciation and extinction rates from molecular phylogenies has increased over the last decade. The application of such methods requires reliable estimates of tree topology and node ages, which are frequently obtained using standard phylogenetic inference combining concatenated loci and molecular dating. However, this practice disregards population‐level processes that generate gene tree/species tree discordance. We evaluated the impact of employing concatenation and coalescent‐based phylogeny inference in recovering the correct macroevolutionary regime using simulated data based on the well‐established diversification rate shift of delphinids in Cetacea. We found that under scenarios of strong incomplete lineage sorting, macroevolutionary analysis of phylogenies inferred by concatenating loci failed to recover the delphinid diversification shift, while the coalescent‐based tree consistently retrieved the correct rate regime. We suggest that ignoring microevolutionary processes reduces the power of methods that estimate macroevolutionary regimes from molecular data.
机译:在过去的十年中,人们对通过分子系统发育来估计物种形成和灭绝速度的方法的兴趣有所增加。此类方法的应用需要对树形拓扑结构和节点年龄进行可靠的估计,而这些估计通常是使用标准的系统发生推断(结合级联基因座和分子测年法)获得的。但是,此做法忽略了产生基因树/物种树不一致的种群级过程。我们使用基于建立在鲸类中确立的翠鸟种类多样化速率变化的模拟数据,评估了采用级联和基于聚类的系统进化论推断对正确的宏观进化机制的恢复的影响。我们发现,在强烈的不完整谱系排序的情况下,通过级联位点推断出的系统发育的宏观进化分析无法恢复出飞燕草的多样化转变,而基于聚结的树则始终检索到正确的速率机制。我们建议忽略微进化过程会降低从分子数据估计宏观进化机制的方法的能力。

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