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一种用于蛋白质比较的片段比对方法。

A segment alignment approach to protein comparison.

作者信息

Ye Yuzhen, Jaroszewski Lukasz, Li Weizhong, Godzik Adam

机构信息

The Burnham Institute, La Jolla, CA 92037, USA.

出版信息

Bioinformatics. 2003 Apr 12;19(6):742-9. doi: 10.1093/bioinformatics/btg073.

Abstract

MOTIVATION

Local structure segments (LSSs) are small structural units shared by unrelated proteins. They are extensively used in protein structure comparison, and predicted LSSs (PLSSs) are used very successfully in ab initio folding simulations. However, predicted or real LSSs are rarely exploited by protein sequence comparison programs that are based on position-by-position alignments.

RESULTS

We developed a SEgment Alignment algorithm (SEA) to compare proteins described as a collection of predicted local structure segments (PLSSs), which is equivalent to an unweighted graph (network). Any specific structure, real or predicted corresponds to a specific path in this network. SEA then uses a network matching approach to find two most similar paths in networks representing two proteins. SEA explores the uncertainty and diversity of predicted local structure information to search for a globally optimal solution. It simultaneously solves two related problems: the alignment of two proteins and the local structure prediction for each of them. On a benchmark of protein pairs with low sequence similarity, we show that application of the SEA algorithm improves alignment quality as compared to FFAS profile-profile alignment, and in some cases SEA alignments can match the structural alignments, a feat previously impossible for any sequence based alignment methods.

摘要

动机

局部结构片段(LSSs)是不相关蛋白质共享的小结构单元。它们在蛋白质结构比较中被广泛使用,并且预测的局部结构片段(PLSSs)在从头折叠模拟中非常成功地得到应用。然而,基于逐个位置比对的蛋白质序列比较程序很少利用预测的或真实的局部结构片段。

结果

我们开发了一种片段比对算法(SEA),用于比较被描述为预测局部结构片段(PLSSs)集合的蛋白质,这等同于一个无加权图(网络)。任何特定的结构,无论是真实的还是预测的,都对应于该网络中的一条特定路径。然后,SEA使用网络匹配方法在表示两种蛋白质的网络中找到两条最相似的路径。SEA探索预测局部结构信息的不确定性和多样性,以寻找全局最优解。它同时解决两个相关问题:两种蛋白质的比对以及每种蛋白质的局部结构预测。在具有低序列相似性的蛋白质对基准测试中,我们表明与FFAS profile-profile比对相比,SEA算法的应用提高了比对质量,并且在某些情况下,SEA比对可以与结构比对相匹配,这是以前任何基于序列的比对方法都无法实现的壮举。

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