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Predicting protein-protein interactions from protein sequences using meta predictor

机译:使用meta预测子从蛋白质序列预测蛋白质间的相互作用

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摘要

A novel method is proposed for predicting protein-protein interactions (PPIs) based on the meta approach, which predicts PPIs using support vector machine that combines results by six independent state-of-the-art predictors. Significant improvement in prediction performance is observed, when performed on Saccharo-myces cerevisiae and Helicobacter pylori datasets. In addition, we used the final prediction model trained on the PPIs dataset of S. cerevisiae to predict interactions in other species. The results reveal that our meta model is also capable of performing cross-species predictions. The source code and the datasets are available at http://home. ustc.edu.cn/ ~ jfxia/Meta_PPI.html.
机译:提出了一种基于元方法的蛋白质-蛋白质相互作用(PPI)预测新方法,该方法使用支持向量机预测PPI,该支持向量机将六个独立的最新预测因子的结果相结合。当对啤酒糖酵母和幽门螺杆菌数据集进行预测时,观察到预测性能的显着改善。此外,我们使用在酿酒酵母的PPI数据集上训练的最终预测模型来预测其他物种中的相互作用。结果表明,我们的元模型还能够执行跨物种预测。源代码和数据集可从http:// home获得。 ustc.edu.cn/〜jfxia / Meta_PPI.html。

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