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UV-Vis spectral fingerprinting and chemometric method applied to the evaluation of Camellia sinensis leaves from different harvests

机译:紫外-可见光谱指纹图谱和化学计量学方法用于不同收成的山茶叶片评价

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摘要

UV-Vis spectral fingerprinting was used to discriminate Camellia sinensis leaves of two different harvests and multivariate data analysis was applied to determine the relevant metabolites for separation. First statistical mixture designs of pure ethanol, ethyl acetate, dichloromethane and chloroform solvents as well as their binary, ternary and quaternary mixtures extracted larger varieties and amounts of C. sinensis leaf metabolites than would be obtained from classical solvent extractions. UV-Vis spectral fingerprints of crude extracts were subjected to Orthogonal Signal Correction and Partial Least Squares-Discrimination Analysis (OSC-PLS-DA) for classification. The spectra were all correctly identified and classified, showing that the OSC-PLS-DA model possesses a good predictive ability to separate spectral fingerprints of different harvests. VIP score values showed that bands at 272, 410 and 663 nm were responsible for separation. These metabolites were identified by HPLC-DAD as caffeine and pheophytin a. According to the mixture model, the maximum values of relative abundances of both caffeine and pheophytin a can be extracted with pure dichloromethane.
机译:紫外-可见光谱指纹图谱可用来区分两种不同收成的茶树叶片,并通过多变量数据分析确定相关的代谢物进行分离。对纯乙醇,乙酸乙酯,二氯甲烷和氯仿溶剂以及它们的二元,三元和四元混合物进行的第一个统计混合物设计提取了比传统溶剂提取更大种类和更多量的中华樟脑叶代谢产物。对粗提取物的UV-Vis光谱指纹进行正交信号校正和偏最小二乘判别分析(OSC-PLS-DA)进行分类。光谱均已正确识别和分类,表明OSC-PLS-DA模型具有良好的预测能力,可以区分不同收获物的光谱指纹。 VIP得分值表明,在272、410和663 nm处的条带负责分离。通过HPLC-DAD将这些代谢物鉴定为咖啡因和脱镁叶绿素a。根据混合模型,可以用纯二氯甲烷提取咖啡因和脱镁叶绿素a的相对丰度最大值。

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