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SimpleTrPPI: A simple method for transferring knowledge between interaction networks for PPI prediction

机译:simpleetrppi:一种简单的方法,用于在交互网络之间传输PPI预测之间的知识

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Maps of protein-protein interactions (PPIs) are essential to uncover cellular processes and metabolic processes in a cell. However, various high-throughput biological experiments are time-consuming and labor-intensive, resulting in interactions of high false positive and false negative rates. The fact that most interaction networks remain sparse and incomplete motivates scientists to develop computational methods to predict protein-protein interactions accurately and automatically. However, state-of-the-art prediction algorithms cannot make satisfactory predictions. In this paper, we propose a simple yet effective approach SimpleTrPPI, to improve the accuracy of predicting protein-protein interactions in the target PPI network with the aid of another source PPI network. We attempt to transfer and borrow useful knowledge from the source PPI network using similarities of protein nodes between two protein interaction networks. Similarities are computed taking both protein sequence similarities and topological structures of protein networks into account. Two protein-protein interaction networks, Helicobacter pylori (target network) and Human (source network), are used to verify the feasibility of our proposed method. Our experimental results show that SimpleTrPPI can achieve more than 5% accuracy improvement compared to the baseline methods.
机译:蛋白质 - 蛋白质相互作用(PPI)的地图对于揭示细胞过程和细胞中的代谢过程至关重要。然而,各种高通量的生物实验是耗时和劳动密集型,导致高误呈阳性和假负率的相互作用。大多数相互作用网络依然稀少和不完全能够激励科学家的事实制定的计算方法,准确和自动预测蛋白质 - 蛋白质相互作用。然而,最先进的预测算法不能令人满意的预测。在本文中,我们提出了一种简单但有效的方法SimpleetRPPI,提高了借助于另一个源PPI网络预测目标PPI网络中蛋白质 - 蛋白质相互作用的准确性。我们尝试使用两种蛋白质互动网络之间的蛋白质节点的相似性转移和借用来自源PPI网络的有用知识。考虑了蛋白质网络的蛋白质序列相似性和拓扑结构计算的相似之处。两种蛋白质蛋白质相互作用网络,幽门螺杆菌(目标网络)和人(源网络)用于验证我们所提出的方法的可行性。我们的实验结果表明,与基线方法相比,SimpleTroppi可以达到5%的精度改善。

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