首页> 外文会议>FUZZ-IEEE 2013 >Incorporating Fuzzy Semantic Similarity Measure in Detecting Human Protein Complexes in PPI Network: A Multiobjective Approach
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Incorporating Fuzzy Semantic Similarity Measure in Detecting Human Protein Complexes in PPI Network: A Multiobjective Approach

机译:在PPI网络中检测人蛋白复合物中的模糊语义相似度测量:多目标方法

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摘要

Detection of protein complexes within protein-protein interaction networks (PPIN) is a valuable step toward the analysis of biological processes and pathways. Several high-throughput experimental techniques produce large number of PPIs that can be extensively utilized for constructing PPI network of a species. Decomposition of the whole PPI network into smaller and manageable modules is an ongoing challenge. Here we have developed a multi-objective algorithm for detecting human protein complexes by partitioning large human PPI network into clusters which serve as protein complexes. Some graphical properties like density, centrality etc., are utilized for building the objectives. Besides the graphical properties we have also exploited a fuzzy measure based semantic similarity approach to construct similarity based objective. The proposed technique is demonstrated in the human PPI network and the resulting complexes are analyzed in context of Gene Ontology (GO) and pathway enrichment. We have also compared our results with that of some state-of-the-art algorithms in context of different performance metrics. The biological relevance of our predicted complexes are also established here by linking them with 22 key disease classes.
机译:检测蛋白质 - 蛋白质相互作用网络(PPIN)内的蛋白质复合物是朝向生物过程和途径分析的有价值的步骤。几种高通量实验技术产生了大量的PPI,可以广泛用于构建物种的PPI网络。将整个PPI网络分解成较小和可管理的模块是一个持续的挑战。在这里,我们开发了一种用于通过将大型人PPI网络分配成簇作为蛋白质复合物的簇来检测人蛋白复合物的多目标算法。一些图形属性,如密度,中心,等等,用于构建目标。除了图形属性之外,我们还利用了基于模糊测量的语义相似性方法来构建基于相似性的目标。在人PPI网络中证明了所提出的技术,并在基因本体(GO)和途径富集的背景下分析所得复合物。我们还将结果与不同性能指标的背景中的某些最先进的算法进行了比较。通过将它们与22个关键疾病课程联系起来,还在这里建立了我们预测复合物的生物学相关性。

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