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肽鉴定的得分正则化。

Score regularization for peptide identification.

机构信息

School of Software, Dalian University of Technology, Dalian, China.

出版信息

BMC Bioinformatics. 2011 Feb 15;12 Suppl 1(Suppl 1):S2. doi: 10.1186/1471-2105-12-S1-S2.

Abstract

BACKGROUND

Peptide identification from tandem mass spectrometry (MS/MS) data is one of the most important problems in computational proteomics. This technique relies heavily on the accurate assessment of the quality of peptide-spectrum matches (PSMs). However, current MS technology and PSM scoring algorithm are far from perfect, leading to the generation of incorrect peptide-spectrum pairs. Thus, it is critical to develop new post-processing techniques that can distinguish true identifications from false identifications effectively.

RESULTS

In this paper, we present a consistency-based PSM re-ranking method to improve the initial identification results. This method uses one additional assumption that two peptides belonging to the same protein should be correlated to each other. We formulate an optimization problem that embraces two objectives through regularization: the smoothing consistency among scores of correlated peptides and the fitting consistency between new scores and initial scores. This optimization problem can be solved analytically. The experimental study on several real MS/MS data sets shows that this re-ranking method improves the identification performance.

CONCLUSIONS

The score regularization method can be used as a general post-processing step for improving peptide identifications. Source codes and data sets are available at: http://bioinformatics.ust.hk/SRPI.rar.

摘要

背景

从串联质谱(MS/MS)数据中鉴定肽是计算蛋白质组学中最重要的问题之一。该技术严重依赖于对肽谱匹配(PSM)质量的准确评估。然而,目前的 MS 技术和 PSM 评分算法远非完美,导致产生不正确的肽谱对。因此,开发能够有效区分真实鉴定和虚假鉴定的新技术至关重要。

结果

在本文中,我们提出了一种基于一致性的 PSM 重新排序方法,以提高初始鉴定结果。该方法使用了一个额外的假设,即属于同一蛋白质的两个肽应该相互关联。我们通过正则化来制定一个优化问题,该问题通过两个目标来拥抱:相关肽的评分之间的平滑一致性以及新评分与初始评分之间的拟合一致性。这个优化问题可以通过解析来解决。对几个真实 MS/MS 数据集的实验研究表明,这种重新排序方法可以提高鉴定性能。

结论

评分正则化方法可以作为改进肽鉴定的一般后处理步骤。源代码和数据集可在以下网址获取:http://bioinformatics.ust.hk/SRPI.rar。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f49/3044274/42d4ab0e681e/1471-2105-12-S1-S2-1.jpg

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