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Comparison of Protein-Protein Interaction Confidence Assignment Schemes

机译:蛋白质-蛋白质相互作用置信度分配方案的比较

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Recent technological advances have enabled high-throughput measurements of protein-protein interactions in the cell, producing protein interaction networks for various species at an ever increasing pace. However, common technologies like yeast two-hybrid can experience high rates of false positive detection. To combat these errors, many methods have been developed which associate confidence scores with each interaction. Here we perform the first comparative analysis and performance assessment among these different methods using the fact that interacting proteins have similar biological attributes such as function, expression, and evolutionary conservation. We also introduce a new measure, the signal to noise ratio of protein complexes embedded in each network, to assess the quality of the different methods. We observe that utilizing any probability scheme is always more beneficial than assuming all observed interactions to be real. Also, schemes that assign probabilities to individual interactions generally perform better than those assessing the reliability of a set of interactions obtained from an experiment or a database.
机译:最近的技术进步使得能够高通量地测量细胞中蛋白质之间的相互作用,从而以越来越快的速度为各种物种产生蛋白质相互作用网络。但是,常见的技术(如酵母双杂交)可能会出现较高的假阳性检测率。为了克服这些错误,已经开发了许多方法来将置信度得分与每次交互相关联。在这里,我们使用相互作用蛋白具有相似生物学特性(例如功能,表达和进化保守性)的事实对这些不同方法进行了首次比较分析和性能评估。我们还介绍了一种新方法,即嵌入每个网络的蛋白质复合物的信噪比,以评估不同方法的质量。我们观察到,使用任何概率方案总是比假设所有观察到的相互作用都是真实的更为有益。同样,将概率分配给各个交互的方案通常比评估从实验或数据库获得的一组交互的可靠性的方案表现更好。

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