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A Metabolomics Workflow for Analyzing Complex Biological Samples Using a Combined Method of Untargeted and Target-List Based Approaches

机译:用于使用基于目标列出的方法的组合方法分析复杂生物样本的代谢组合工作流程

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摘要

In the highly dynamic field of metabolomics, we have developed a method for the analysis of hydrophilic metabolites in various biological samples. Therefore, we used hydrophilic interaction chromatography (HILIC) for separation, combined with a high-resolution mass spectrometer (MS) with the aim of separating and analyzing a wide range of compounds. We used 41 reference standards with different chemical properties to develop an optimal chromatographic separation. MS analysis was performed with a set of pooled biological samples human cerebrospinal fluid (CSF), and human plasma. The raw data was processed in a first step with Compound Discoverer 3.1 (CD), a software tool for untargeted metabolomics with the aim to create a list of unknown compounds. In a second step, we combined the results obtained with our internally analyzed reference standard list to process the data along with the Lipid Data Analyzer 2.6 (LDA), a software tool for a targeted approach. In order to demonstrate the advantages of this combined target-list based and untargeted approach, we not only compared the relative standard deviation (%RSD) of the technical replicas of pooled plasma samples (n = 5) and pooled CSF samples (n = 3) with the results from CD, but also with XCMS Online, a well-known software tool for untargeted metabolomics studies. As a result of this study we could demonstrate with our HILIC-MS method that all standards could be either separated by chromatography, including isobaric leucine and isoleucine or with MS by different mass. We also showed that this combined approach benefits from improved precision compared to well-known metabolomics software tools such as CD and XCMS online. Within the pooled plasma samples processed by LDA 68% of the detected compounds had a %RSD of less than 25%, compared to CD and XCMS online (57% and 55%). The improvements of precision in the pooled CSF samples were even more pronounced, 83% had a %RSD of less than 25% compared to CD and XCMS online (28% and 8% compounds detected). Particularly for low concentration samples, this method showed a more precise peak area integration with its 3D algorithm and with the benefits of the LDAs graphical user interface for fast and easy manual curation of peak integration. The here-described method has the advantage that manual curation for larger batch measurements remains minimal due to the target list containing the information obtained by an untargeted approach.
机译:在代谢组学的高度动态的领域,我们已经制定了各种生物样品中亲水性代谢物的分析方法。因此,我们使用用于分离的亲水性相互作用色谱(HILIC)中,用高分辨率质谱仪(MS)与分离和分析一个宽范围的化合物的目的相结合。我们使用具有不同化学性质41个参考标准来开发最佳的色谱分离。用一组汇集生物样品的人脑脊液(CSF)和人血浆进行MS分析。原始数据是在与化合物发现者3.1(CD),一个软件工具,用于与目的非靶向代谢物组学来创建未知化合物的列表中的第一步骤中处理。在第二个步骤中,我们结合我们的内部分析的参考标准列表与脂质数据分析仪2.6(LDA),进行有针对性的方法的软件工具以及处理数据得到的结果。为了证明根据本组合目标列表和非靶向的方法的优点,我们不仅相比汇集血浆样品的技术复本(N = 5)和汇集的CSF样品(n = 3的相对标准偏差(%RSD) )与CD的结果,也与网上。LCMS,对于非靶向代谢组学研究知名的软件工具。由于这项研究,我们可以用我们的HILIC-MS法,所有的标准可以通过色谱分离两种,包括亮氨酸等压和异亮氨酸或由不同质量MS证明的结果。我们还发现,从改进的精度这种组合方法的好处相比,著名的代谢组学软件工具,如CD和网上。LCMS。通过LDA处理汇集血浆样品内的所检测的化合物的68%具有小于25%的%RSD,相比于CD和在线。LCMS(57%和55%)。的精度汇集的CSF样品中的改进甚至更明显了,83%具有小于25%的%RSD相比CD和在线。LCMS(28%和8个%的化合物检测的)。特别是对于低浓度的样品,这种方法显示出与它的三维算法,并与LDAS图形用户界面的峰积分的快速和容易的人工管理的好处更精确的峰面积积分。的这里所描述的方法具有对于较大批次测量手册策由于含有由无目标的方法所获得的信息的目标列表保持最小的优点。

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