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An approach for metabonomics data analysis applied on the plasma of RAC water extract administered reserpine induced spleen deficiency rats

机译:施用Rac水提取物血浆血浆血浆诱导脾虚大鼠的血液缺乏大鼠等血浆中施用的代谢族数据分析方法

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Data sets in metabonomics or metabolic profiling experiments are becoming increasingly complex, which is hard to analyze without appropriate methods. The use of chemometric tools, such as orthogonal signal correction (OSC), principal component analysis (PCA), partial least squares discriminant analysis (PLS-DA), (orthogonal partial least squares discriminant analysis (OPLS-DA) make the data dimension and interpretation much easier. Here a system method based on PCA, OSC-PLS-DA for metabonomic data analysis was showed; Furthermore, U-plot, as a visualized tool was used for the biomarkers discovery. As an example, dataset from RAC water extract administrated spleen deficiency rats plasma collected by LC/MS/MS was used to demonstrate this method. As a result, PCA was an useful tool for metabonomic dataset dimension reduction, OSC is an powerful data filter, U-plot based on OSC-PLS-DA was proved to be an effective, time saving tool for data interpretation and biomarkers discovery. In conclusion, the a system method shown by this paper is suitable for the matabonomic study.
机译:代谢型或代谢分析实验中的数据集变得越来越复杂,这难以在没有适当方法的情况下分析。使用化学工具,例如正交信号校正(OSC),主成分分析(PCA),部分最小二乘判别分析(PLS-DA),(正交偏最小二乘判别分析(OPLS-DA)使得数据尺寸和更容易解释。这里显示了一种基于PCA的系统方法,用于代谢编织数据分析的OSC-PLS-DA;此外,U形图,作为可视化工具用于生物标志物发现。作为示例,来自RAC水提取物的数据集通过LC / MS / MS收集的脾脏缺乏大鼠等离子体用于证明这种方法。结果,PCA是代谢组族数据集尺寸减少的有用工具,OSC是一个强大的数据滤波器,基于OSC-PLS - DA被证明是数据解释和生物标志物发现的有效,时间省工具。总之,本文所示的系统方法适用于Matabonomic研究。

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