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Discrimination of outer membrane proteins using support vector machines

机译:使用支持向量机区分外膜蛋白

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Motivation: Discriminating outer membrane proteins from other folding types of globular and membrane proteins is an important task both for dissecting outer membrane proteins (OMPs) from genomic sequences and for the successful prediction of their secondary and tertiary structures. Results: We have developed a method based on support vector machines using amino acid composition and residue pair information. Our approach with amino acid composition has correctly predicted the OMPs with a cross-validated accuracy of 94% in a set of 208 proteins. Further, this method has successfully excluded 633 of 673 globular proteins and 191 of 206 α-helical membrane proteins. We obtained an overall accuracy of 92% for correctly picking up the OMPs from a dataset of 1087 proteins belonging to all different types of globular and membrane proteins. Furthermore, residue pair information improved the accuracy from 92 to 94%. This accuracy of discriminating OMPs is higher than that of other methods in the literature, which could be used for dissecting OMPs from genomic sequences.
机译:动机:将外膜蛋白与其他折叠类型的球状和膜蛋白区分开是一项重要任务,既要从基因组序列中分离外膜蛋白(OMP),又要成功预测其二级和三级结构。结果:我们开发了一种基于支持向量机的方法,该方法使用氨基酸组成和残基对信息。我们采用氨基酸组成的方法正确地预测了OMPs,它们在一组208种蛋白质中的交叉验证准确性为94%。此外,该方法已成功排除了673个球状蛋白中的633个和206个α螺旋膜蛋白中的191个。我们从1087种属于所有不同类型的球蛋白和膜蛋白的蛋白质数据集中正确提取OMP的总体准确率达到92%。此外,残基对信息将准确性从92%提高到94%。区分OMP的这种准确性高于文献中其他方法的准确性,该方法可用于从基因组序列中解剖OMP。

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