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Normalizing and Integrating Metabolomics Data

机译:标准化和整合代谢组学数据

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Metabolomics research often requires the use of multiple analytical platforms, batches of samples, and laboratories, any of which can introduce a component of unwanted variation. In addition, every experiment is subject to within-platform and other experimental variation, which often includes unwanted biological variation. Such variation must be removed in order to focus on the biological information of interest. We present a broadly applicable method for the removal of unwanted variation arising from various sources for the identification of differentially abundant metabolites and, hence, for the systematic integration of data on the same quantities from different sources. We illustrate the versatility and the performance of the approach in four applications, and we show that it has several advantages over the existing normalization methods.
机译:代谢组学研究通常需要使用多个分析平台,一批样品和实验室,其中任何一个都会引入不必要的变异。此外,每个实验都受到平台内和其他实验变异的影响,这些变异通常包括不需要的生物学变异。为了专注于感兴趣的生物学信息,必须消除这种变异。我们提出了一种广泛适用的方法,用于消除由各种来源引起的不必要的变异,以鉴定差异丰富的代谢物,从而系统地整合来自不同来源的相同数量的数据。我们说明了该方法在四个应用程序中的多功能性和性能,并且表明与现有的规范化方法相比,它具有一些优点。

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