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Metabolic Profiling of Glucuronides in Human Urine by LC-MS/MS and Partial Least-Squares Discriminant Analysis for Classification and Prediction of Gender

机译:通过LC-MS / MS和偏最小二乘判别分析对人尿中葡萄糖醛酸的代谢谱进行性别分类和预测

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Mass spectrometry (MS) is increasingly being used for metabolic profiling, but detection modes such as constant neutral loss or multiple reaction monitoring have not often been reported. These modes allow focusing on structurally related compounds, which could be advantageous for situations in which the trait under investigation is associated with a particular class of metabolites. In this study, we analyzed endogenous glucuronides excreted in human urine by monitoring characteristic transitions of putative steroid glucuronides by LC-MS/MS for discrimination of females from males. Two methods for data extraction were used: (i) a manual procedure based on visual inspection of the chromatograms and selection of 23 peaks and (ii) a software-supported method (MarkerView) set to extract 100 peaks. Data from 10 female and 10 male students were analyzed by principal component analysis (PCA) and partial least-squares discriminant analysis (PLS-DA) using software SIMCA. With PCA, only the manual peak selection resulted in clustering males and females. With PLS-DA, the manual method provided full separation on the basis of one single discriminant; the software-supported approach required a two-component model for complete separation. Loading plots were analyzed for their ability to reveal peaks with high discriminating power, that is, potential biomarkers. The PLS-DA models were validated with urine samples collected from five new females and five new males. Gender was correctly assigned for all. Our results indicate that inclusion of biological criteria for variable selection coupled to class-specific MS analysis and data extraction by appropriate software may constitute a valuable addition to the methods available for metabolomics.
机译:质谱(MS)越来越多地用于代谢谱分析,但是经常没有报道检测模式,例如恒定的中性损失或多反应监测。这些模式允许专注于结构相关的化合物,这对于其中研究的性状与特定类别的代谢物相关的情况可能是有利的。在这项研究中,我们通过LC-MS / MS监测假定的类固醇葡糖醛酸苷的特征性转变来分析人尿中分泌的内源性葡糖醛酸苷,以区分男性和女性。使用了两种数据提取方法:(i)基于目视检查色谱图和选择23个峰的手动程序,以及(ii)设置为提取100个峰的软件支持方法(MarkerView)。使用软件SIMCA通过主成分分析(PCA)和偏最小二乘判别分析(PLS-DA)分析来自10名女学生和10名男学生的数据。使用PCA,只有手动选择峰才能使雄性和雌性聚集。使用PLS-DA时,手动方法可以基于一个判别项提供完全分离;软件支持的方法需要两部分模型才能完全分离。分析加载图的能力,以揭示具有高区分能力的峰,即潜在的生物标记。 PLS-DA模型通过从五位新女性和五位新男性收集的尿液样本进行了验证。为所有人正确分配了性别。我们的结果表明,通过适当的软件将生物选择标准与特定类别的MS分析和数据提取相结合,可能构成了代谢组学方法的宝贵补充。

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