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首页> 外文期刊>Metabolites >A Comprehensive Workflow of Mass Spectrometry-Based Untargeted Metabolomics in Cancer Metabolic Biomarker Discovery Using Human Plasma and Urine
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A Comprehensive Workflow of Mass Spectrometry-Based Untargeted Metabolomics in Cancer Metabolic Biomarker Discovery Using Human Plasma and Urine

机译:基于质谱的基于人血浆和尿液的癌症代谢生物标志物发现中非靶向代谢组学的全面工作流程

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Current available biomarkers lack sensitivity and/or specificity for early detection of cancer. To address this challenge, a robust and complete workflow for metabolic profiling and data mining is described in details. Three independent and complementary analytical techniques for metabolic profiling are applied: hydrophilic interaction liquid chromatography (HILIC–LC), reversed-phase liquid chromatography (RP–LC), and gas chromatography (GC). All three techniques are coupled to a mass spectrometer (MS) in the full scan acquisition mode, and both unsupervised and supervised methods are used for data mining. The univariate and multivariate feature selection are used to determine subsets of potentially discriminative predictors. These predictors are further identified by obtaining accurate masses and isotopic ratios using selected ion monitoring (SIM) and data-dependent MS/MS and/or accurate mass MSn ion tree scans utilizing high resolution MS. A list combining all of the identified potential biomarkers generated from different platforms and algorithms is used for pathway analysis. Such a workflow combining comprehensive metabolic profiling and advanced data mining techniques may provide a powerful approach for metabolic pathway analysis and biomarker discovery in cancer research. Two case studies with previous published data are adapted and included in the context to elucidate the application of the workflow.
机译:当前可用的生物标志物缺乏对癌症的早期检测的敏感性和/或特异性。为了应对这一挑战,将详细描述健壮且完整的代谢谱和数据挖掘工作流程。应用了三种独立且互补的代谢谱分析技术:亲水相互作用液相色谱(HILIC–LC),反相液相色谱(RP–LC)和气相色谱(GC)。所有这三种技术都以全扫描采集模式耦合到质谱仪(MS),并且无监督方法和有监督方法都用于数据挖掘。单变量和多变量特征选择用于确定潜在区分性预测变量的子集。通过使用选定的离子监测(SIM)和依赖数据的MS / MS获得准确的质量和同位素比和/或利用高分辨率MS进行精确的质量MS n 离子树扫描,可以进一步识别这些预测因子。结合了从不同平台和算法生成的所有已识别的潜在生物标记物的列表用于路径分析。结合了全面的代谢分析和先进的数据挖掘技术的这种工作流程可以为癌症研究中的代谢途径分析和生物标志物发现提供强大的方法。修改了两个具有先前已发布数据的案例研究,并将其包含在上下文中以阐明工作流的应用。

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