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化学计量学策略用于多维色谱中的峰检测和剖析。

Chemometric Strategies for Peak Detection and Profiling from Multidimensional Chromatography.

机构信息

Department of Environmental Chemistry, Institute of Environmental Assessment and Water Research (IDAEA) - Spanish National Research Council (CSIC), Jordi Girona 18-34, E08034, Barcelona, Spain.

出版信息

Proteomics. 2018 Sep;18(18):e1700327. doi: 10.1002/pmic.201700327. Epub 2018 May 15.

Abstract

The increasing complexity of omics research has encouraged the development of new instrumental technologies able to deal with these challenging samples. In this way, the rise of multidimensional separations should be highlighted due to the massive amounts of information that provide with an enhanced analyte determination. Both proteomics and metabolomics benefit from this higher separation capacity achieved when different chromatographic dimensions are combined, either in LC or GC. However, this vast quantity of experimental information requires the application of chemometric data analysis strategies to retrieve this hidden knowledge, especially in the case of nontargeted studies. In this work, the most common chemometric tools and approaches for the analysis of this multidimensional chromatographic data are reviewed. First, different options for data preprocessing and enhancement of the instrumental signal are introduced. Next, the most used chemometric methods for the detection of chromatographic peaks and the resolution of chromatographic and spectral contributions (profiling) are presented. The description of these data analysis approaches is complemented with enlightening examples from omics fields that demonstrate the exceptional potential of the combination of multidimensional separation techniques and chemometric tools of data analysis.

摘要

随着组学研究的日益复杂,人们鼓励开发新的仪器技术,以处理这些具有挑战性的样本。在这方面,多维分离的兴起应该得到强调,因为它提供了大量的信息,从而增强了对分析物的测定。无论是在 LC 还是 GC 中,当不同的色谱维度结合使用时,蛋白质组学和代谢组学都受益于这种更高的分离能力。然而,如此大量的实验信息需要应用化学计量数据分析策略来挖掘这些隐藏的知识,特别是在非靶向研究的情况下。在这项工作中,综述了用于分析这种多维色谱数据的最常见的化学计量学工具和方法。首先,介绍了不同的数据预处理选项和增强仪器信号的方法。接下来,介绍了最常用的用于检测色谱峰和解析色谱和光谱贡献(剖析)的化学计量学方法。通过来自组学领域的有启发性的示例来补充对这些数据分析方法的描述,这些示例展示了多维分离技术和数据分析的化学计量工具相结合的特殊潜力。

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