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首页> 外文期刊>International journal of data mining and bioinformatics >Effective peak alignment for mass spectrometry data analysis using two-phase clustering approach
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Effective peak alignment for mass spectrometry data analysis using two-phase clustering approach

机译:使用两相聚类方法进行质谱数据分析的有效峰对齐

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摘要

In recent years, mass spectrometry data analysis has become an important protein identification technique. The mass spectrometry technologies emerge as useful tools for biomarker discovery through studying protein profiles in various biological specimens. In mining mass spectrometry datasets, peak alignment is a critical issue among the preprocessing steps that affect the quality of analysis results. However, the existing peak alignment methods are sensitive to noise peaks across various mass spectrometry samples. In this paper, we proposed a novel algorithm named Two-Phase Clustering for peak Alignment (TPC-Align) to align mass spectrometry peaks across samples in the pre-processing phase. The TPC-Align algorithm sequentially considers the distribution of intensity values and the locations of mass-to-charge ratio values of peaks between samples. Moreover, TPC-Align algorithm can also report a list of significantly differential peaks between samples, which serve as the candidate biomarkers for further biological study. The proposed peak alignment method was compared to the current peak alignment approach based on one-dimension hierarchical clustering through experimental evaluations and the results show that TPC-Align outperforms the traditional method on the real dataset.
机译:近年来,质谱数据分析已成为一种重要的蛋白质鉴定技术。通过研究各种生物样本中的蛋白质谱,质谱技术成为了发现生物标记的有用工具。在采矿质谱数据集中,峰对齐是影响分析结果质量的预处理步骤中的关键问题。但是,现有的峰对齐方法对各种质谱样品中的噪声峰敏感。在本文中,我们提出了一种新颖的名为“两相聚类”的峰对齐算法(TPC-Align),以在预处理阶段对齐样品中的质谱峰。 TPC-Align算法顺序考虑强度值的分布以及样品之间峰的质荷比值的位置。此外,TPC-Align算法还可以报告样品之间明显不同的峰的列表,这些峰将用作进一步生物学研究的候选生物标记。通过实验评估,将提出的峰对齐方法与基于一维层次聚类的当前峰对齐方法进行了比较,结果表明,TPC-Align在真实数据集上优于传统方法。

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