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PalmPred: An SVM Based Palmitoylation Prediction Method Using Sequence Profile Information

机译:PalmPred:基于SVM的使用序列配置文件信息的棕榈酰化预测方法

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摘要

Protein palmitoylation is the covalent attachment of the 16-carbon fatty acid palmitate to a cysteine residue. It is the most common acylation of protein and occurs only in eukaryotes. Palmitoylation plays an important role in the regulation of protein subcellular localization, stability, translocation to lipid rafts and many other protein functions. Hence, the accurate prediction of palmitoylation site(s) can help in understanding the molecular mechanism of palmitoylation and also in designing various related experiments. Here we present a novel in silico predictor called ‘PalmPred’ to identify palmitoylation sites from protein sequence information using a support vector machine model. The best performance of PalmPred was obtained by incorporating sequence conservation features of peptide of window size 11 using a leave-one-out approach. It helped in achieving an accuracy of 91.98%, sensitivity of 79.23%, specificity of 94.30%, and Matthews Correlation Coefficient of 0.71. PalmPred outperformed existing palmitoylation site prediction methods – IFS-Palm and WAP-Palm on an independent dataset. Based on these measures it can be anticipated that PalmPred will be helpful in identifying candidate palmitoylation sites. All the source datasets, standalone and web-server are available at .
机译:蛋白质棕榈酰化是16碳脂肪酸棕榈酸酯与半胱氨酸残基的共价结合。它是最常见的蛋白质酰化反应,仅在真核生物中发生。棕榈酰化在调节蛋白亚细胞定位,稳定性,向脂筏的转运以及许多其他蛋白功能中起着重要作用。因此,对棕榈酰化位点的准确预测可以帮助理解棕榈酰化的分子机制,并有助于设计各种相关实验。在这里,我们介绍了一种新型的计算机预测因子,称为“ PalmPred”,可以使用支持向量机模型从蛋白质序列信息中识别棕榈酰化位点。 PalmPred的最佳性能是使用留一法并入窗口大小为11的肽的序列保守特征而获得的。它有助于实现91.98%的准确度,79.23%的灵敏度,94.30%的特异性以及0.71的Matthews相关系数。 PalmPred在独立数据集上的表现优于现有的棕榈酰化位点预测方法-IFS-Palm和WAP-Palm。基于这些措施,可以预料PalmPred将有助于识别候选的棕榈酰化位点。所有源数据集(独立的和网络服务器的)都可以在上找到。

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