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首页> 外文期刊>Molecular & cellular proteomics: MCP >Dynamic spectrum quality assessment and iterative computational analysis of shotgun proteomic data: toward more efficient identification of post-translational modifications, sequence polymorphisms, and novel peptides.
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Dynamic spectrum quality assessment and iterative computational analysis of shotgun proteomic data: toward more efficient identification of post-translational modifications, sequence polymorphisms, and novel peptides.

机译:shot弹枪蛋白质组学数据的动态频谱质量评估和迭代计算分析:更有效地识别翻译后修饰,序列多态性和新型肽。

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摘要

In mass spectrometry-based proteomics, frequently hundreds of thousands of MS/MS spectra are collected in a single experiment. Of these, a relatively small fraction is confidently assigned to peptide sequences, whereas the majority of the spectra are not further analyzed. Spectra are not assigned to peptides for diverse reasons. These include deficiencies of the scoring schemes implemented in the database search tools, sequence variations (e.g. single nucleotide polymorphisms) or omissions in the database searched, post-translational or chemical modifications of the peptide analyzed, or the observation of sequences that are not anticipated from the genomic sequence (e.g. splice forms, somatic rearrangement, and processed proteins). To increase the amount of information that can be extracted from proteomic MS/MS datasets we developed a robust method that detects high quality spectra within the fraction of spectra unassigned by conventional sequence database searching and computes a quality score for each spectrum. We also demonstrate that iterative search strategies applied to such detected unassigned high quality spectra significantly increase the number of spectra that can be assigned from datasets and that biologically interesting new insights can be gained from existing data.
机译:在基于质谱的蛋白质组学中,经常在单个实验中收集成千上万的MS / MS光谱。其中,相对较小的部分可以确定地分配给肽序列,而大多数光谱没有进一步分析。由于各种原因,光谱未分配给肽。这些包括数据库搜索工具中实施的计分方案的缺陷,所搜索数据库中序列的变异(例如单核苷酸多态性)或遗漏,所分析肽段的翻译后或化学修饰,或观察到的序列不符合预期基因组序列(例如剪接形式,体细胞重排和加工的蛋白质)。为了增加可以从蛋白质组MS / MS数据集中提取的信息量,我们开发了一种可靠的方法,该方法可以检测常规序列数据库搜索未指定的光谱范围内的高质量光谱,并计算每个光谱的质量得分。我们还证明了将迭代搜索策略应用于此类检测到的未分配的高质量光谱,可以显着增加可从数据集中分配的光谱数量,并且可以从现有数据中获得生物学上有趣的新见识。

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