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OLAV: towards high-throughput tandem mass spectrometry data identification.

机译:OLAV:迈向高通量串联质谱数据识别。

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摘要

Mass spectrometry combined with database searching has become the preferred method for identifying proteins in proteomics projects. Proteins are digested by one or several enzymes to obtain peptides, which are analyzed by mass spectrometry. We introduce a new family of scoring schemes, named OLAV, aimed at identifying peptides in a database from their tandem mass spectra. OLAV scoring schemes are based on signal detection theory, and exploit mass spectrometry information more extensively than previously existing schemes. We also introduce a new concept of structural matching that uses pattern detection methods to better separate true from false positives. We show the superiority of OLAV scoring schemes compared to MASCOT, a widely used identification program. We believe that this work introduces a new way of designing scoring schemes that are especially adapted to high-throughput projects such as GeneProt large-scale human plasma project, where it is impractical to check all identifications manually.
机译:质谱结合数据库搜索已成为鉴定蛋白质组学项目中蛋白质的首选方法。用一种或几种酶消化蛋白质以获得肽,然后通过质谱分析。我们引入了一个新的计分方案系列,称为OLAV,旨在从串联质谱中识别数据库中的肽。 OLAV计分方案基于信号检测理论,并且比以前的现有方案更广泛地利用质谱信息。我们还介绍了一种结构匹配的新概念,该概念使用模式检测方法更好地将真假阳性分开。与MASCOT(一种广泛使用的识别程序)相比,我们展示了OLAV评分方案的优越性。我们相信这项工作引入了一种设计计分方案的新方法,该计分方案特别适合于诸如GeneProt大规模人体血浆项目等高通量项目,在这种情况下,手动检查所有标识是不切实际的。

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