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Retention-time prediction in comprehensive two-dimensional gas chromatography to aid identification of unknown contaminants

机译:综合二维气相色谱中的保留时间预测以帮助识别未知污染物

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摘要

Comprehensive two-dimensional (2D) gas chromatography (GC×GC) coupled to mass spectrometry (MS, GC×GC-MS), which enhances selectivity compared to GC-MS analysis, can be used for non-directed analysis (non-target screening) of environmental samples. Additional tools that aid in identifying unknown compounds are needed to handle the large amount of data generated. These tools include retention indices for characterizing relative retention of compounds and prediction of such. In this study, two quantitative structure–retention relationship (QSRR) approaches for prediction of retention times (1tR and 2tR) and indices (linear retention indices (LRIs) and a new polyethylene glycol–based retention index (PEG-2I)) in GC × GC were explored, and their predictive power compared. In the first method, molecular descriptors combined with partial least squares (PLS) analysis were used to predict times and indices. In the second method, the commercial software package ChromGenius (ACD/Labs), based on a “federation of local models,” was employed. Overall, the PLS approach exhibited better accuracy than the ChromGenius approach. Although average errors for the LRI prediction via ChromGenius were slightly lower, PLS was superior in all other cases. The average deviations between the predicted and the experimental value were 5% and 3% for the 1tR and LRI, and 5% and 12% for the 2tR and PEG-2I, respectively. These results are comparable to or better than those reported in previous studies. Finally, the developed model was successfully applied to an independent dataset and led to the discovery of 12 wrongly assigned compounds. The results of the present work represent the first-ever prediction of the PEG-2I. >Graphical abstract
机译:全面的二维(2D)气相色谱(GC×GC)结合质谱(MS,GC×GC-MS),与GC-MS分析相比具有更高的选择性,可用于非定向分析(非目标筛查)。需要使用其他有助于识别未知化合物的工具来处理生成的大量数据。这些工具包括保留指数,用于表征化合物的相对保留及其预测。在这项研究中,两种定量结构-保留关系(QSRR)方法可预测保留时间( 1 tR和 2 tR)和指标(线性保留指标(LRI)和在GC×GC中探索了一种新的基于聚乙二醇的保留指数(PEG- 2 I),并比较了它们的预测能力。在第一种方法中,将分子描述符与偏最小二乘(PLS)分析相结合来预测时间和指数。在第二种方法中,使用了基于“本地模型联盟”的商业软件包ChromGenius(ACD / Labs)。总体而言,PLS方法比ChromGenius方法具有更好的准确性。尽管通过ChromGenius预测LRI的平均误差略低,但在所有其他情况下PLS都比较好。 1 tR和LRI的预测值与实验值之间的平均偏差分别为5%和3%, 2 tR和PEG-的5%和12% 2 I。这些结果与以前的研究结果相当或更好。最后,将开发的模型成功应用于独立的数据集,并发现了12种错误分配的化合物。本工作的结果代表了PEG- 2 I的首次预测。 <!-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> >图形摘要<!- fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> <!-标题a7->ᅟ

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