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A robust linear regression based algorithm for automated evaluation of peptide identifications from shotgun proteomics by use of reversed-phase liquid chromatography retention time

机译:一种基于线性回归的强大算法,可通过使用反相液相色谱保留时间自动评估shot弹枪蛋白质组学中的肽段鉴定

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Background Rejection of false positive peptide matches in database searches of shotgun proteomic experimental data is highly desirable. Several methods have been developed to use the peptide retention time as to refine and improve peptide identifications from database search algorithms. This report describes the implementation of an automated approach to reduce false positives and validate peptide matches. Results A robust linear regression based algorithm was developed to automate the evaluation of peptide identifications obtained from shotgun proteomic experiments. The algorithm scores peptides based on their predicted and observed reversed-phase liquid chromatography retention times. The robust algorithm does not require internal or external peptide standards to train or calibrate the linear regression model used for peptide retention time prediction. The algorithm is generic and can be incorporated into any database search program to perform automated evaluation of the candidate peptide matches based on their retention times. It provides a statistical score for each peptide match based on its retention time. Conclusion Analysis of peptide matches where the retention time score was included resulted in a significant reduction of false positive matches with little effect on the number of true positives. Overall higher sensitivities and specificities were achieved for database searches carried out with MassMatrix, Mascot and X!Tandem after implementation of the retention time based score algorithm.
机译:背景技术在散弹枪蛋白质组学实验数据的数据库搜索中,排除假阳性肽段匹配是非常需要的。已经开发了几种方法来使用肽保留时间来完善和改进数据库搜索算法中的肽鉴定。该报告描述了一种自动化方法的实施,该方法可减少假阳性并验证肽匹配。结果开发了基于鲁棒性线性回归的算法,以自动评估从shot弹枪蛋白质组学实验中获得的肽段鉴定。该算法根据预测和观察到的反相液相色谱保留时间对肽进行评分。健壮的算法不需要内部或外部肽标来训练或校准用于肽保留时间预测的线性回归模型。该算法是通用算法,可以合并到任何数据库搜索程序中,以根据候选肽的保留时间对其进行自动评估。它根据其保留时间为每个肽段匹配提供统计评分。结论分析了包含保留时间得分的肽段匹配,可以大大减少假阳性匹配,而对真正阳性数量的影响很小。在实施基于保留时间的得分算法后,使用MassMatrix,Mascot和X!Tandem进行数据库搜索可获得更高的总体敏感性和特异性。

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