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一种用于蛋白质相互作用网络成对局部比对的高效算法。

An efficient algorithm for pairwise local alignment of protein interaction networks.

作者信息

Chen Wenbin, Schmidt Matthew, Tian Wenhong, Samatova Nagiza F, Zhang Shaohong

机构信息

Department of Computer Science, Guangzhou University, 230 Wai Huan Xi Road, Guangzhou Higher Education Mega Center, Guangzhou, 510006, P. R. China , Shanghai Key Laboratory of Intelligent Information Processing, Fudan University, 220 Handan Road, Yangpu District, Shanghai, 200433, P. R. China , State Key Laboratory for Novel Software Technology, Nanjing University, 22 Hankou Road, Nanjing, Jiangsu, 210093, P. R. China.

出版信息

J Bioinform Comput Biol. 2015 Apr;13(2):1550003. doi: 10.1142/S0219720015500031. Epub 2014 Dec 5.

Abstract

Recently, researchers seeking to understand, modify, and create beneficial traits in organisms have looked for evolutionarily conserved patterns of protein interactions. Their conservation likely means that the proteins of these conserved functional modules are important to the trait's expression. In this paper, we formulate the problem of identifying these conserved patterns as a graph optimization problem, and develop a fast heuristic algorithm for this problem. We compare the performance of our network alignment algorithm to that of the MaWISh algorithm [Koyutürk M, Kim Y, Topkara U, Subramaniam S, Szpankowski W, Grama A, Pairwise alignment of protein interaction networks, J Comput Biol13(2):182-199, 2006.], which bases its search algorithm on a related decision problem formulation. We find that our algorithm discovers conserved modules with a larger number of proteins in an order of magnitude less time. The protein sets found by our algorithm correspond to known conserved functional modules at comparable precision and recall rates as those produced by the MaWISh algorithm.

摘要

最近,试图理解、修改并创造生物体有益性状的研究人员一直在寻找蛋白质相互作用的进化保守模式。它们的保守性可能意味着这些保守功能模块的蛋白质对性状的表达很重要。在本文中,我们将识别这些保守模式的问题表述为一个图优化问题,并针对此问题开发了一种快速启发式算法。我们将我们的网络比对算法的性能与MaWISh算法[Koyutürk M, Kim Y, Topkara U, Subramaniam S, Szpankowski W, Grama A, 蛋白质相互作用网络的成对比对,《计算生物学杂志》13(2):182 - 199, 2006年。]的性能进行比较,MaWISh算法的搜索算法基于一个相关的决策问题表述。我们发现我们的算法能在数量级更少的时间内发现包含更多蛋白质的保守模块。我们的算法找到的蛋白质集与已知保守功能模块相对应,其精度和召回率与MaWISh算法产生的结果相当。

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