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XLSearch: a Probabilistic Database Search Algorithm for Identifying Cross-Linked Peptides

机译:XLSearch:用于识别交叉链接的肽的概率数据库搜索算法

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摘要

Chemical cross-linking combined with mass spectrometric analysis has become an important technique for probing protein three-dimensional structure and protein–protein interactions. A key step in this process is the accurate identification and validation of cross-linked peptides from tandem mass spectra. The identification of cross-linked peptides, however, presents challenges related to the expanded nature of the search space (all pairs of peptides in a sequence database) and the fact that some peptide-spectrum matches (PSMs) contain one correct and one incorrect peptide but often receive scores that are comparable to those in which both peptides are correctly identified. To address these problems and improve detection of cross-linked peptides, we propose a new database search algorithm, XLSearch, for identifying cross-linked peptides. Our approach is based on a data-driven scoring scheme that independently estimates the probability of correctly identifying each individual peptide in the cross-link given knowledge of the correct or incorrect identification of the other peptide. These conditional probabilities are subsequently used to estimate the joint posterior probability that both peptides are correctly identified. Using the data from two previous cross-link studies, we show the effectiveness of this scoring scheme, particularly in distinguishing between true identifications and those containing one incorrect peptide. We also provide evidence that XLSearch achieves more identifications than two alternative methods at the same false discovery rate (availability: ).
机译:化学交联结合质谱分析已成为探测蛋白质三维结构和蛋白质-蛋白质相互作用的重要技术。此过程中的关键步骤是从串联质谱图中准确鉴定和验证交联肽。然而,交联肽的鉴定提出了与搜索空间的扩展性质(序列数据库中的所有肽对)以及某些肽谱匹配(PSM)包含一个正确和一个错误肽有关的挑战。但通常会获得与正确识别两种肽的分数相当的分数。为了解决这些问题并改善对交联肽段的检测,我们提出了一种新的数据库搜索算法XLSearch,用于识别交联肽段。我们的方法基于数​​据驱动的评分方案,该方案独立估计在已知其他肽段正确或不正确识别的情况下,正确识别交联中每个单独肽段的可能性。这些条件概率随后用于估计正确识别两种肽的联合后验概率。使用来自之前两个交叉链接研究的数据,我们证明了这种评分方案的有效性,特别是在区分真实识别和包含一种错误肽段的识别时。我们还提供了证据,表明XLSearch在相同的错误发现率下比两种替代方法可实现更多的识别(可用性:)。

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