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一种通过使用串联质谱数据搜索蛋白质序列数据库来鉴定肽段的新型评分模式。

A novel scoring schema for peptide identification by searching protein sequence databases using tandem mass spectrometry data.

作者信息

Zhang Zhuo, Sun Shiwei, Zhu Xiaopeng, Chang Suhua, Liu Xiaofei, Yu Chungong, Bu Dongbo, Chen Runsheng

机构信息

Institute of Biophysics, Chinese Academy of Sciences, Beijing, PR China.

出版信息

BMC Bioinformatics. 2006 Apr 26;7:222. doi: 10.1186/1471-2105-7-222.

Abstract

BACKGROUND

Tandem mass spectrometry (MS/MS) is a powerful tool for protein identification. Although great efforts have been made in scoring the correlation between tandem mass spectra and an amino acid sequence database, improvements could be made in three aspects, including characterization ofpeaks in spectra, adoption of effective scoring functions and access to thereliability of matching between peptides and spectra.

RESULTS

A novel scoring function is presented, along with criteria to estimate the performance confidence of the function. Through learning the typesof product ions and the probability of generating them, a hypothetic spectrum was generated for each candidate peptide. Then relative entropy was introduced to measure the similarity between the hypothetic and the observed spectra. Based on the extreme value distribution (EVD) theory, a threshold was chosen to distinguish a true peptide assignment from a random one. Tests on a public MS/MS dataset demonstrated that this method performs better than the well-known SEQUEST.

CONCLUSION

A reliable identification of proteins from the spectra promises a more efficient application of tandem mass spectrometry to proteomes with high complexity.

摘要

背景

串联质谱(MS/MS)是蛋白质鉴定的强大工具。尽管在对串联质谱与氨基酸序列数据库之间的相关性进行评分方面已付出巨大努力,但仍可在三个方面加以改进,包括谱图中峰的表征、采用有效的评分函数以及确定肽段与谱图匹配的可靠性。

结果

提出了一种新型评分函数以及估计该函数性能置信度的标准。通过了解产物离子的类型及其生成概率,为每个候选肽生成一个假设谱图。然后引入相对熵来衡量假设谱图与实测谱图之间的相似性。基于极值分布(EVD)理论,选择一个阈值以区分真实的肽段匹配与随机匹配。在一个公共MS/MS数据集上的测试表明,该方法比著名的SEQUEST方法表现更好。

结论

从谱图中可靠地鉴定蛋白质有望更有效地将串联质谱应用于高复杂性蛋白质组。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b56/1463009/cfe6ca2c01a3/1471-2105-7-222-1.jpg

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