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评估一个未知的进化过程:通过增加分类单元来提高位点特异性知识的效果。

Assessing an unknown evolutionary process: effect of increasing site-specific knowledge through taxon addition.

作者信息

Pollock D D, Bruno W J

机构信息

Theoretical Biology and Biophysics, Los Alamos National Laboratory, Los Alamos, New Mexico, USA.

出版信息

Mol Biol Evol. 2000 Dec;17(12):1854-8. doi: 10.1093/oxfordjournals.molbev.a026286.

Abstract

Assessment of the evolutionary process is crucial for understanding the effect of protein structure and function on sequence evolution and for many other analyses in molecular evolution. Here, we used simulations to study how taxon sampling affects accuracy of parameter estimation and topological inference in the absence of branch length asymmetry. With maximum-likelihood analysis, we find that adding taxa dramatically improves both support for the evolutionary model and accurate assessment of its parameters when compared with increasing the sequence length. Using a method we call "doppelgänger trees," we distinguish the contributions of two sources of improved topological inference: greater knowledge about internal nodes and greater knowledge of site-specific rate parameters. Surprisingly, highly significant support for the correct general model does not lead directly to improved topological inference. Instead, substantial improvement occurs only with accurate assessment of the evolutionary process at individual sites. Although these results are based on a simplified model of the evolutionary process, they indicate that in general, assuming processes are not independent and identically distributed among sites, more extensive sampling of taxonomic biodiversity will greatly improve analytical results in many current sequence data sets with moderate sequence lengths.

摘要

评估进化过程对于理解蛋白质结构和功能对序列进化的影响以及分子进化中的许多其他分析至关重要。在这里,我们使用模拟来研究在不存在分支长度不对称的情况下分类群抽样如何影响参数估计的准确性和拓扑推断。通过最大似然分析,我们发现与增加序列长度相比,增加分类群会显著提高对进化模型的支持以及对其参数的准确评估。使用一种我们称为“分身树”的方法,我们区分了改进拓扑推断的两个来源的贡献:对内部节点的更多了解和对位点特异性速率参数的更多了解。令人惊讶的是,对正确的一般模型的高度显著支持并不会直接导致改进的拓扑推断。相反,只有在准确评估各个位点的进化过程时才会有实质性的改进。尽管这些结果是基于进化过程的简化模型,但它们表明,一般来说,假设位点之间的过程不是独立同分布的,对分类生物多样性进行更广泛的抽样将大大改善许多当前中等序列长度的序列数据集中的分析结果。

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