Whelan Simon, Morrison David A
Department of Ecology and Genetics, Uppsala University, Uppsala, Sweden.
Department of Organism Biology, Uppsala University, Uppsala, Sweden.
Methods Mol Biol. 2017;1525:349-377. doi: 10.1007/978-1-4939-6622-6_14.
Molecular evolution can reveal the relationship between sets of homologous sequences and the patterns of change that occur during their evolution. An important aspect of these studies is the inference of a phylogenetic tree, which explicitly describes evolutionary relationships between homologous sequences. This chapter provides an introduction to evolutionary trees and how to infer them from sequence data using some commonly used inferential methodology. It focuses on statistical methods for inferring trees and how to assess the confidence one should have in any resulting tree, with a particular emphasis on the underlying assumptions of the methods and how they might affect the tree estimate. There is also some discussion of the underlying algorithms used to perform tree search and recommendations regarding the performance of different algorithms. Finally, there are a few practical guidelines, including how to combine multiple software packages to improve inference, and a comparison between Bayesian and Maximum likelihood phylogenetics.
分子进化能够揭示同源序列集之间的关系以及它们在进化过程中发生的变化模式。这些研究的一个重要方面是系统发育树的推断,它明确描述了同源序列之间的进化关系。本章介绍进化树以及如何使用一些常用的推断方法从序列数据中推断进化树。它重点介绍用于推断树的统计方法以及如何评估对任何所得树应具有的置信度,特别强调这些方法的潜在假设以及它们可能如何影响树的估计。还讨论了用于执行树搜索的底层算法以及关于不同算法性能的建议。最后,给出了一些实用指南,包括如何组合多个软件包以改进推断,以及贝叶斯系统发育学和最大似然系统发育学之间的比较。