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Adaptive Discriminant Function Analysis and Re-ranking of MS/MS Database Search Results for Improved Peptide Identification in Shotgun Proteomics

机译:MS / MS数据库搜索结果的自适应判别功能分析和重新排序以改进Shot弹枪蛋白质组学中的肽段鉴定

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摘要

Robust statistical validation of peptide identifications obtained by tandem mass spectrometry and sequence database searching is an important task in shotgun proteomics. PeptideProphet is a commonly used computational tool that computes confidence measures for peptide identifications. In this paper, we investigate several limitations of the PeptideProphet modeling approach, including the use of fixed coefficients in computing the discriminant search score and selection of the top scoring peptide assignment per spectrum only. To address these limitations, we describe an adaptive method in which a new discriminant function is learned from the data in an iterative fashion. We extend the modeling framework to go beyond the top scoring peptide assignment per spectrum. We also investigate the effect of clustering the spectra according to their spectrum quality score followed by cluster-specific mixture modeling. The analysis is carried out using data acquired from a mixture of purified proteins on four different types of mass spectrometers, as well as using a complex human serum dataset. A special emphasis is placed on the analysis of data generated on high mass accuracy instruments.
机译:通过串联质谱和序列数据库搜索获得的肽段鉴定的可靠统计验证是shot弹枪蛋白质组学中的重要任务。 PeptideProphet是一种常用的计算工具,可计算用于肽鉴定的置信度。在本文中,我们研究了PeptideProphet建模方法的一些局限性,包括在计算判别式搜索得分时仅使用固定系数,以及仅选择每个光谱中得分最高的肽分配。为了解决这些限制,我们描述了一种自适应方法,其中以迭代方式从数据中学习新的判别函数。我们扩展了建模框架,使其超出了每个光谱中得分最高的肽分配。我们还根据光谱质量得分对光谱进行聚类,然后进行特定于聚类的混合建模研究。使用从四种不同类型的质谱仪上的纯化蛋白混合物获得的数据以及复杂的人血清数据集进行分析。特别强调分析在高质量仪器上产生的数据。

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