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Human protein-protein interaction prediction by a novel sequence-based co-evolution method: co-evolutionary divergence

机译:基于新型基于序列的协同进化方法的人类蛋白质相互作用预测:协同进化散度

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Motivation: Protein-protein interaction (PPI) plays an important role in understanding gene functions, and many computational PPI prediction methods have been proposed in recent years. Despite the extensive efforts, PPI prediction still has much room to improve. Sequence-based co-evolution methods include the substitution rate method and the mirror tree method, which compare sequence substitution rates and topological similarity of phylogenetic trees, respectively. Although they have been used to predict PPI in species with small genomes like Escherichia coli, such methods have not been tested in large scale proteome like Homo sapiens. Result: In this study, we propose a novel sequence-based co-evolution method, co-evolutionary divergence (CD), for human PPI prediction. Built on the basic assumption that protein pairs with similar substitution rates are likely to interact with each other, the CD method converts the evolutionary information from 14 species of vertebrates into likelihood ratios and combined them together to infer PPI. We showed that the CD method outperformed the mirror tree method in three independent human PPI datasets by a large margin. With the arrival of more species genome information generated by next generation sequencing, the performance of the CD method can be further improved.
机译:动机:蛋白质间相互作用(PPI)在理解基因功能中起着重要作用,并且近年来提出了许多计算性PPI预测方法。尽管付出了巨大的努力,PPI预测仍有很大的改进空间。基于序列的协同进化方法包括置换率方法和镜像树方法,它们分别比较了系统进化树的序列置换率和拓扑相似性。尽管已将它们用于预测具有小基因组(如大肠杆菌)的物种中的PPI,但尚未在大规模蛋白质组(如智人)中测试过这种方法。结果:在这项研究中,我们提出了一种新的基于序列的协同进化方法,即协同进化散度(CD),用于人类PPI预测。 CD方法基于具有相似替代率的蛋白质对之间可能相互作用的基本假设,CD方法将来自14种脊椎动物的进化信息转换为似然比,并将它们组合在一起以推断PPI。我们显示,在三个独立的人类PPI数据集中,CD方法的性能优于镜像树方法。随着下一代测序产生的更多物种基因组信息的到来,CD方法的性能可以得到进一步提高。

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