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Biomarkers-based classification between green teas and decaffeinated green teas using gas chromatography mass spectrometer coupled with in-tube extraction (ITEX)

机译:气相色谱质谱仪结合管内萃取(ITEX)对绿茶和脱咖啡因的绿茶进行基于生物标记的分类

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摘要

For identifying discriminatory biomarkers between green tea (GT) and decaffeinated green tea (dGT), in-tube extraction (ITEX)-gas chromatograph-mass spectrometer (GC-MS) was optimized to determine volatile organic compounds (VOCs) from tea products. Biomarker selection between GT and dGT was then conducted by random forest (RF). Optimized ITEX parameters by central composite design were an incubation temperature of 92 degrees C, incubation time of 12 mins, and 36 for syringe strokes. A training group of 24 samples and testing group of 21 samples were used to RF classification of biomarkers identification. Results revealed that 2-hexenal, 2-ethyl furan, indole, and beta-ocimene were selected as discriminatory biomarkers between GT and dGT in the training group. Using these biomarkers with RF classification algorithms, prediction accuracy for dGT and GT were 88.9% and 100%, respectively, which was higher than for other classification algorithms. This implies that ITEX-GC-MS can be a promising tool for quality control of commercial tea products.
机译:为了鉴定绿茶(GT)和脱咖啡因的绿茶(dGT)之间的区别性生物标志物,对管内萃取(ITEX)-气相色谱-质谱仪(GC-MS)进行了优化,以确定茶叶产品中的挥发性有机化合物(VOC)。然后由随机森林(RF)进行GT和dGT之间的生物标记选择。通过中央复合材料设计优化的ITEX参数是:孵育温度为92摄氏度,孵育时间为12分钟,注射器行程为36次。 24个样本的训练组和21个样本的测试组用于对生物标志物进行RF分类。结果显示,在训练组中,选择了2-己烯醛,2-乙基呋喃,吲哚和β-烯丙二烯作为GT和dGT之间的区分性生物标志物。将这些生物标记物与RF分类算法结合使用,dGT和GT的预测准确性分别为88.9%和100%,高于其他分类算法。这意味着ITEX-GC-MS可以成为用于商业茶产品质量控制的有前途的工具。

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