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Impact of the Partitioning Scheme on Divergence Times Inferred from Mammalian Genomic Data Sets

机译:分区方案对从哺乳动物基因组数据集推断的发散时间的影响

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摘要

Data partitioning has long been regarded as an important parameter for phylogenetic inference. The division of heterogeneous multigene data sets into partitions with similar substitution patterns is known to increase the performance of probabilistic phylogenetic methods. However, the effect of the partitioning scheme on divergence time estimates has generally been ignored. To investigate the impact of data partitioning on the estimation of divergence times, we have constructed two genomic data sets. The first one with 15 nuclear genes comprising 50,928 bp were selected from the OrthoMam database; the second set was composed of complete mitochondrial genomes. We studied two partitioning schemes: concatenated supermatrices and partitioned gene analysis. We have also measured the impact of taxonomic sampling on the estimates. After drawing divergence time inferences using the uncorrelated relaxed clock in BEAST, we have compared the age estimates between the partitioning schemes. Our results show that, in general, both schemes resulted in similar chronological estimates, however the concatenated data sets were more efficient than the partitioned ones in attaining suitable effective sample sizes.
机译:长期以来,数据分区一直被视为系统发育推断的重要参数。已知将异构多基因数据集划分为具有相似替换模式的分区可以提高概率系统发生方法的性能。但是,划分方案对发散时间估计的影响通常被忽略。为了研究数据分区对发散时间估计的影响,我们构建了两个基因组数据集。从OrthoMam数据库中选择第一个具有15个核基因(包含50928 bp)的基因;第二组由完整的线粒体基因组组成。我们研究了两种分区方案:级联超级矩阵和分区基因分析。我们还测量了分类抽样对估计值的影响。在使用BEAST中不相关的松散时钟得出发散时间推断之后,我们比较了分区方案之间的年龄估计。我们的结果表明,总体而言,两种方案都产生了类似的时间顺序估算,但是,在获得合适的有效样本量方面,级联数据集比分区数据集更有效。

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