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AliGROOVE – visualization of heterogeneous sequence divergence within multiple sequence alignments and detection of inflated branch support

机译:AliGROOVE –可视化多个序列比对中的异质序列分歧,以及检测膨胀的支链

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摘要

Background Masking of multiple sequence alignment blocks has become a powerful method to enhance the tree-likeness of the underlying data. However, existing masking approaches are insensitive to heterogeneous sequence divergence which can mislead tree reconstructions. We present AliGROOVE, a new method based on a sliding window and a Monte Carlo resampling approach, that visualizes heterogeneous sequence divergence or alignment ambiguity related to single taxa or subsets of taxa within a multiple sequence alignment and tags suspicious branches on a given tree. Results We used simulated multiple sequence alignments to show that the extent of alignment ambiguity in pairwise sequence comparison is correlated with the frequency of misplaced taxa in tree reconstructions. The approach implemented in AliGROOVE allows to detect nodes within a tree that are supported despite the absence of phylogenetic signal in the underlying multiple sequence alignment. We show that AliGROOVE equally well detects heterogeneous sequence divergence in a case study based on an empirical data set of mitochondrial DNA sequences of chelicerates. Conclusions The AliGROOVE approach has the potential to identify single taxa or subsets of taxa which show predominantly randomized sequence similarity in comparison with other taxa in a multiple sequence alignment. It further allows to evaluate the reliability of node support in a novel way.
机译:多个序列比对块的背景屏蔽已成为增强基础数据的树状性的有效方法。但是,现有的掩蔽方法对异构序列分歧不敏感,这会误导树的重建。我们提出了AliGROOVE,这是一种基于滑动窗口和蒙特卡洛重采样方法的新方法,它可以可视化与多序列比对中单个分类单元或分类单元子集相关的异类序列差异或比对歧义,并标记给定树上的可疑分支。结果我们使用模拟的多序列比对结果表明,成对序列比较中比对歧义的程度与树木重建中错位分类单元的频率相关。 AliGROOVE中实现的方法允许检测树中受支持的节点,尽管基础多重序列比对中不存在系统发育信号。我们显示,AliGROOVE在基于螯合物线粒体DNA序列的经验数据集的案例研究中,同样可以很好地检测异质序列差异。结论AliGROOVE方法具有识别单个分类单元或分类单元子集的潜力,这些分类单元与多分类序列中的其他分类单元相比,显示出随机的序列相似性。它还允许以新颖的方式评估节点支持的可靠性。

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