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HemoPred: a web server for predicting the hemolytic activity of peptides

机译:升血:用于预测肽溶血活性的网络服务器

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Aim: Toxicity arising from hemolytic activity of peptides hinders its further progress as drug candidates. Materials & methods: This study describes a sequence-based predictor based on a random forest classifier using amino acid composition, dipeptide composition and physicochemical descriptors (named HemoPred). Results: This approach could outperform previously reported method and typical classification methods (e.g., support vector machine and decision tree) verified by fivefold cross-validation and external validation with accuracy and Matthews correlation coefficient in excess of 95% and 0.91, respectively. Results revealed the importance of hydrophobic and Cys residues on alpha-helix and beta-sheet, respectively, on the hemolytic activity. Conclusion: A sequence-based predictor which is publicly available as the web service of HemoPred, is proposed to predict and analyze the hemolytic activity of peptides.
机译:目的:肽溶血活性产生的毒性阻碍了其作为毒品候选者的进一步进展。 材料和方法:本研究描述了一种基于随机林分类器的基于序列的预测因子,所述氨基酸组合物,二肽组合物和物理化学描述符(名为咯咯的描述符)。 结果:这种方法可以优于先前报告的方法和典型的分类方法(例如,支持向量机和决策树),其由五倍交叉验证和外部验证验证,并分别具有超过95%和0.91的Matthews相关系数。 结果表明,疏水性和CYS残留物在α-螺旋和β-薄片上的重要性分别对溶血活性。 结论:提出了一种被公开可用作血流工的网服务的基于序列的预测因子,以预测和分析肽的溶血活性。

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