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Predicting False Positives of Protein-Protein Interaction Data by Semantic Similarity Measures

机译:通过语义相似性测度预测蛋白质-蛋白质相互作用数据的假阳性

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摘要

Recent technical advances in identifying protein-protein interactions (PPIs) have generated the genomic-wide interaction data, collectively collectively referred to as the interactome. These interaction data give an insight into the underlying mechanisms of biological processes. However, the PPI data determined by experimental and computational methods include an extremely large number of false positives which are not confirmed to occur in vivo. Filtering PPI data is thus a critical preprocessing step to improve analysis accuracy. Integrating Gene Ontology (GO) data is proposed in this article to assess reliability of the PPIs. We evaluate the performance of various semantic similarity measures in terms of functional consistency. Protein pairs with high semantic similarity are considered highly likely to share common functions, and therefore, are more likely to interact. We also propose a combined method of semantic similarity to apply to predicting false positive PPIs. The experimental results show that the combined hybrid method has better performance than the individual semantic similarity classifiers. The proposed classifier predicted that 58.6% of the S. cerevisiae PPIs from the BioGRID database are false positives.
机译:在鉴定蛋白质-蛋白质相互作用(PPI)方面的最新技术进步已产生了全基因组相互作用数据,统称为相互作用组。这些相互作用数据使人们深入了解了生物过程的潜在机制。但是,通过实验和计算方法确定的PPI数据包括大量的假阳性,这些假阳性没有被证实在体内发生。因此,过滤PPI数据是提高分析准确性的关键预处理步骤。本文提出了整合基因本体论(GO)数据来评估PPI的可靠性。我们根据功能一致性评估各种语义相似性度量的性能。具有高度语义相似性的蛋白质对被认为极有可能共享共同的功能,因此更可能相互作用。我们还提出了一种语义相似度组合方法,适用于预测假阳性PPI。实验结果表明,组合混合方法比单个语义相似度分类器具有更好的性能。拟议的分类器预测,来自BioGRID数据库的酿酒酵母PPI中有58.6%是假阳性。

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