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CSS-Palm: palmitoylation site prediction with a clustering and scoring strategy (CSS)

机译:CSS-Palm:具有聚类和评分策略(CSS)的棕榈酰化位点预测

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Summ.: Palmitoylation is an important post-translational lipid modification of proteins. Unlike prenylation and myristoylation, palmitoylation is a reversible covalent modification, allowing for dynamic regulation of multiple complex cellular systems. However, in vivo or in vitro identification of palmitoylation sites is usually time-consuming and labor-intensive. So in silico predictions could help to narrow down the possible palmitoylation sites, which can be used to guide further experimental design. Previous studies suggested that there is no unique canonical motif for palmitoylation sites, so we hypothesize that the bona fide pattern might be compromised by heterogeneity of multiple structural determinants with different features. Based on this hypothesis, we partition the known palmitoylation sites into three clusters and score the similarity between the query peptide and the training ones based on BLOSUM62 matrix. We have implemented a computer program for palmitoylation site prediction, Clustering and Scoring Strategy for Palmitoylation Sites Prediction (CSS-Palm) system, and found that the program's prediction performance is encouraging with highly positive Jack-Knife validation results (sensitivity 82.16% and specificity 83.17% for cut-off score 2.6). Our analyses indicate that CSS-Palm could provide a powerful and effective tool to studies of palmitoylation sites.
机译:总结:棕榈酰化是蛋白质翻译后的重要脂质修饰。与异戊烯基化和肉豆蔻酰化不同,棕榈酰化是可逆的共价修饰,可以动态调节多个复杂的细胞系统。然而,体内或体外鉴定棕榈酰化位点通常是费时且费力的。因此,计算机模拟预测可以帮助缩小可能的棕榈酰化位点,从而可以用来指导进一步的实验设计。先前的研究表明,棕榈酰化位点没有独特的规范基序,因此我们假设,具有不同特征的多个结构决定簇的异质性可能会损害善意模式。基于此假设,我们将已知的棕榈酰化位点划分为三个簇,并基于BLOSUM62矩阵对查询肽和训练肽之间的相似性进行评分。我们已经实施了一个用于预测棕榈酰化位点的计算机程序,用于棕榈酰化位点预测的聚类和评分策略(CSS-Palm)系统,并发现该程序的预测性能令人鼓舞,其中Jack-Knife验证结果呈阳性(敏感性为82.16%,特异性为83.17) %为截止分数2.6)。我们的分析表明CSS-Palm可以为研究棕榈酰化位点提供强大而有效的工具。

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