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A Bayesian Approach for Fast and Accurate Gene Tree Reconstruction

机译:快速准确地重建基因树的贝叶斯方法

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摘要

Recent sequencing and computing advances have enabled phylogenetic analyses to expand to both entire genomes and large clades, thus requiring more efficient and accurate methods designed specifically for the phylogenomic context. Here, we present SPIMAP, an efficient Bayesian method for reconstructing gene trees in the presence of a known species tree. We observe many improvements in reconstruction accuracy, achieved by modeling multiple aspects of evolution, including gene duplication and loss (DL) rates, speciation times, and correlated substitution rate variation across both species and loci. We have implemented and applied this method on two clades of fully sequenced species, 12 Drosophila and 16 fungal genomes as well as simulated phylogenies and find dramatic improvements in reconstruction accuracy as compared with the most popular existing methods, including those that take the species tree into account. We find that reconstruction inaccuracies of traditional phylogenetic methods overestimate the number of DL events by as much as 2–3-fold, whereas our method achieves significantly higher accuracy. We feel that the results and methods presented here will have many important implications for future investigations of gene evolution.
机译:最近的测序和计算进展使系统发育分析能够扩展到整个基因组和大型进化枝,因此需要专为系统生物学背景设计的更高效,准确的方法。在这里,我们介绍了SPIMAP,这是一种在已知物种树存在下用于重建基因树的有效贝叶斯方法。通过对进化的多个方面进行建模,我们观察到了重建精度的许多提高,包括基因复制和丢失(DL)速率,物种形成时间以及物种和基因座之间相关的替代速率变化。我们已经将该方法应用于两个完全测序物种的进化枝,12个果蝇和16个真菌基因组以及模拟系统发生学,并将其应用到该方法中,与最流行的现有方法(包括将树种引入植物中的方法)相比,发现重建精度有了显着提高。帐户。我们发现,传统的系统发育方法的重建误差使DL事件的数量高估了2-3倍,而我们的方法却获得了更高的准确性。我们认为,本文介绍的结果和方法将对未来的基因进化研究产生许多重要影响。

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