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基于精确质量信息的毛细管电泳-质谱数据集的对齐。

Alignment of capillary electrophoresis-mass spectrometry datasets using accurate mass information.

机构信息

Biomolecular Mass Spectrometry Unit, Department of Parasitology, Leiden University Medical Center, 2300 RC, Leiden, Netherlands.

出版信息

Anal Bioanal Chem. 2009 Dec;395(8):2527-33. doi: 10.1007/s00216-009-3166-1. Epub 2009 Oct 14.

Abstract

Capillary electrophoresis-mass spectrometry (CE-MS) is a powerful technique for the analysis of small soluble compounds in biological fluids. A major drawback of CE is the poor migration time reproducibility, which makes it difficult to combine data from different experiments and correctly assign compounds. A number of alignment algorithms have been developed but not all of them can cope with large and irregular time shifts between CE-MS runs. Here we present a genetic algorithm designed for alignment of CE-MS data using accurate mass information. The utility of the algorithm was demonstrated on real data, and the results were compared with one of the existing packages. The new algorithm showed a significant reduction of elution time variation in the aligned datasets. The importance of mass accuracy for the performance of the algorithm was also demonstrated by comparing alignments of datasets from a standard time-of-flight (TOF) instrument with those from the new ultrahigh resolution TOF maXis (Bruker Daltonics).

摘要

毛细管电泳-质谱联用(CE-MS)是分析生物体液中小可溶性化合物的强大技术。CE 的主要缺点是迁移时间重现性差,这使得难以结合来自不同实验的数据并正确分配化合物。已经开发了许多对齐算法,但并非所有算法都能够处理 CE-MS 运行之间的大而不规则的时间偏移。在这里,我们提出了一种使用精确质量信息设计的遗传算法,用于 CE-MS 数据的对齐。该算法的实用性在真实数据上得到了验证,并与现有的一个软件包进行了比较。新算法在对齐数据集方面显示出洗脱时间变化的显著减少。通过比较来自标准飞行时间(TOF)仪器和新的超高分辨率 TOF maXis(布鲁克·道尔顿)数据集的对齐,还证明了质量精度对算法性能的重要性。

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