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T-Coffee:一种用于快速准确的多序列比对的新方法。

T-Coffee: A novel method for fast and accurate multiple sequence alignment.

作者信息

Notredame C, Higgins D G, Heringa J

机构信息

National Institute for Medical Research, The Ridgeway, London, NW7 1AA, UK.

出版信息

J Mol Biol. 2000 Sep 8;302(1):205-17. doi: 10.1006/jmbi.2000.4042.

Abstract

We describe a new method (T-Coffee) for multiple sequence alignment that provides a dramatic improvement in accuracy with a modest sacrifice in speed as compared to the most commonly used alternatives. The method is broadly based on the popular progressive approach to multiple alignment but avoids the most serious pitfalls caused by the greedy nature of this algorithm. With T-Coffee we pre-process a data set of all pair-wise alignments between the sequences. This provides us with a library of alignment information that can be used to guide the progressive alignment. Intermediate alignments are then based not only on the sequences to be aligned next but also on how all of the sequences align with each other. This alignment information can be derived from heterogeneous sources such as a mixture of alignment programs and/or structure superposition. Here, we illustrate the power of the approach by using a combination of local and global pair-wise alignments to generate the library. The resulting alignments are significantly more reliable, as determined by comparison with a set of 141 test cases, than any of the popular alternatives that we tried. The improvement, especially clear with the more difficult test cases, is always visible, regardless of the phylogenetic spread of the sequences in the tests.

摘要

我们描述了一种用于多序列比对的新方法(T-Coffee),与最常用的其他方法相比,该方法在准确性上有显著提高,而在速度上仅略有牺牲。该方法大致基于流行的多序列比对渐进法,但避免了该算法的贪婪性所导致的最严重缺陷。使用T-Coffee时,我们会对序列之间所有两两比对的数据集进行预处理。这为我们提供了一个比对信息库,可用于指导渐进比对。然后,中间比对不仅基于接下来要比对的序列,还基于所有序列彼此之间的比对方式。这种比对信息可以来自多种不同的来源,例如比对程序的组合和/或结构叠加。在这里,我们通过使用局部和全局两两比对的组合来生成该库,展示了该方法的强大功能。与一组141个测试案例进行比较后发现,所得比对结果比我们尝试过的任何一种常用方法都可靠得多。无论测试中序列的系统发育分布如何,这种改进在更困难的测试案例中尤为明显,并且始终可见。

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