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A hierarchical link clustering based approach for identifying protein complexes by incorporating core-attachment structure

机译:通过结合核心连接结构识别蛋白质复合物的基于层次链接聚类的方法

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Determining how to identify protein complexes automatically and effectively from experimental datasets is a challenging and meaningful work in proteomics and bioinfor-matics. In this paper, we propose a simple but effective method, called HLC-CA, to predict protein complexes by making full use of the inherent core-attachment structure of complexes. First, HLC-CA obtains candidate clusters by employing an appropriate hierarchical link clustering algorithm. Secondly, it filters the clusters to identify complex cores by adopting simple criteria. Thirdly, it recruits attachments for each core by using a topological feature. Finally, it composes the cores and attachments to form protein complexes. Extensive experimental results show that HLC-CA significantly outperforms the state-of-the-art methods.
机译:在蛋白质组学和生物信息学领域,确定如何从实验数据集中自动有效地识别蛋白质复合物是一项具有挑战性和意义的工作。在本文中,我们提出了一种简单而有效的方法,称为HLC-CA,它可以通过充分利用复合物的固有核心连接结构来预测蛋白质复合物。首先,HLC-CA通过采用适当的层次链接聚类算法来获取候选聚类。其次,它通过采用简单的标准对集群进行过滤,以识别复杂的核心。第三,它通过使用拓扑功能为每个核心募集附件。最后,它组成核心和附件以形成蛋白质复合物。大量的实验结果表明,HLC-CA明显优于最新方法。

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