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Joint Analysis of Dependent Features within Compound Spectra Can Improve Detection of Differential Features

机译:化合物光谱中相关特征的联合分析可以改善对差异特征的检测

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摘要

Mass spectrometry is an important analytical technology in metabolomics. After the initial feature detection and alignment steps, the raw data processing results in a high-dimensional data matrix of mass spectral features, which is then subjected to further statistical analysis. Univariate tests like Student’s t-test and Analysis of Variances (ANOVA) are hypothesis tests, which aim to detect differences between two or more sample classes, e.g., wildtype-mutant or between different doses of treatments. In both cases, one of the underlying assumptions is the independence between metabolic features. However, in mass spectrometry, a single metabolite usually gives rise to several mass spectral features, which are observed together and show a common behavior. This paper suggests to group the related features of metabolites with CAMERA into compound spectra, and then to use a multivariate statistical method to test whether a compound spectrum (and thus the actual metabolite) is differential between two sample classes. The multivariate method is first demonstrated with an analysis between wild-type and an over-expression line of the model plant Arabidopsis thaliana. For a quantitative evaluation data sets with a simulated known effect between two sample classes were analyzed. The spectra-wise analysis showed better detection results for all simulated effects.
机译:质谱分析是代谢组学中的重要分析技术。在初始特征检测和对齐步骤之后,原始数据处理将生成具有质谱特征的高维数据矩阵,然后对该矩阵进行进一步的统计分析。假设检验是学生检验的t检验和方差分析(ANOVA)等单变量检验,旨在检测两个或多个样本类别之间的差异,例如野生型突变体或不同剂量的治疗之间的差异。在这两种情况下,基本假设之一是代谢特征之间的独立性。但是,在质谱法中,单个代谢物通常会产生几个质谱特征,将它们一起观察并显示出共同的行为。本文建议将具有CAMERA的代谢物的相关特征归类为复合光谱,然后使用多元统计方法来测试复合光谱(从而实际的代谢物)在两个样品类别之间是否存在差异。首先通过模型植物拟南芥的野生型和过表达系之间的分析证明了多元方法。为了进行定量评估,分析了两个样本类别之间具有模拟已知效果的数据集。光谱分析表明,所有模拟效果的检测结果更好。

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