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首页> 外文期刊>Metabolites >Validated and Predictive Processing of Gas Chromatography-Mass Spectrometry Based Metabolomics Data for Large Scale Screening Studies, Diagnostics and Metabolite Pattern Verification
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Validated and Predictive Processing of Gas Chromatography-Mass Spectrometry Based Metabolomics Data for Large Scale Screening Studies, Diagnostics and Metabolite Pattern Verification

机译:基于气相色谱-质谱的代谢组学数据的验证和预测处理,用于大规模筛选研究,诊断和代谢物模式验证

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The suggested approach makes it feasible to screen large metabolomics data, sample sets with retained data quality or to retrieve significant metabolic information from small sample sets that can be verified over multiple studies. Hierarchical multivariate curve resolution (H-MCR), followed by orthogonal partial least squares discriminant analysis (OPLS-DA) was used for processing and classification of gas chromatography/time of flight mass spectrometry (GC/TOFMS) data characterizing human serum samples collected in a study of strenuous physical exercise. The efficiency of predictive H-MCR processing of representative sample subsets, selected by chemometric approaches, for generating high quality data was proven. Extensive model validation by means of cross-validation and external predictions verified the robustness of the extracted metabolite patterns in the data. Comparisons of extracted metabolite patterns between models emphasized the reliability of the methodology in a biological information context. Furthermore, the high predictive power in longitudinal data provided proof for the potential use in clinical diagnosis. Finally, the predictive metabolite pattern was interpreted physiologically, highlighting the biological relevance of the diagnostic pattern.
机译:所建议的方法使得筛选大型代谢组学数据,具有保留数据质量的样本集或从小样本集中检索重要的代谢信息成为可能,这些信息可以通过多次研究进行验证。分层多元曲线分辨率(H-MCR),然后进行正交偏最小二乘判别分析(OPLS-DA),用于气相色谱/飞行时间质谱(GC / TOFMS)数据的处理和分类,该数据表征了收集的人血清样品剧烈运动的研究。证明了通过化学计量学方法选择的代表性样本子集的预测H-MCR处理产生高质量数据的效率。通过交叉验证和外部预测进行的广泛模型验证,验证了数据中提取的代谢物模式的鲁棒性。模型之间提取的代谢物模式的比较强调了该方法在生物信息环境中的可靠性。此外,纵向数据的高预测能力为临床诊断中的潜在用途提供了证据。最后,从生理学角度解释了预测性代谢物模式,突出了诊断模式的生物学意义。

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