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Protein-protein Interaction Network Prediction by Using Rigid-Body Docking Tools: Application to Bacterial Chemotaxis

机译:通过使用刚体对接工具进行蛋白质相互作用网络预测:在细菌趋化性中的应用

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摘要

Core elements of cell regulation are made up of protein-protein interaction (PPI) networks. However, many parts of the cell regulatory systems include unknown PPIs. To approach this problem, we have developed a computational method of high-throughput PPI network prediction based on all-to-all rigid-body docking of protein tertiary structures. The prediction system accepts a set of data comprising protein tertiary structures as input and generates a list of possible interacting pairs from all the combinations as output. A crucial advantage of this docking based method is in providing predictions of protein pairs that increases our understanding of biological pathways by analyzing the structures of candidate complex structures, which gives insight into novel interaction mechanisms. Although such exhaustive docking calculation requires massive computational resources, recent advancements in the computational sciences have made such large-scale calculations feasible. different rigid-body docking tools with different scoring models. We found that the predicted interactions were different between the results from the two tools. When the positive predictions from both of the docking tools were combined, all the core signaling interactions were correctly predicted with the exception of interactions activated by protein phosphorylation. Large-scale PPI prediction using tertiary structures is an effective approach that has a wide range of potential applications. This method is especially useful for identifying novel PPIs of new pathways that control cellular behavior.
机译:细胞调节的核心元素由蛋白质-蛋白质相互作用(PPI)网络组成。但是,细胞调节系统的许多部分都包含未知的PPI。为了解决这个问题,我们开发了一种基于蛋白质三级结构的全部到全部刚体对接的高通量PPI网络预测的计算方法。预测系统接受包含蛋白质三级结构的一组数据作为输入,并从所有组合生成可能的相互作用对的列表作为输出。这种基于对接的方法的一个关键优势在于,通过分析候选复杂结构的结构,可以提供蛋白质对的预测,从而增加我们对生物学途径的了解,从而深入了解新型的相互作用机制。尽管这种详尽的对接计算需要大量的计算资源,但是计算科学的最新进展使这种大规模计算成为可能。具有不同评分模型的不同刚体对接工具。我们发现,两种工具的结果之间的预测相互作用是不同的。当将两种对接工具的阳性预测相结合时,除蛋白磷酸化激活的相互作用外,所有核心信号相互作用均得到正确预测。使用三级结构的大规模PPI预测是一种有效的方法,具有广泛的潜在应用。此方法对于识别控制细胞行为的新途径的新PPI特别有用。

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