首页> 外文期刊>Journal of Agricultural and Food Chemistry >Food Fingerprinting: Metabolomic Approaches for Geographical Origin Discrimination of Hazelnuts (Corylus avellana) by UPLC-QTOF-MS
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Food Fingerprinting: Metabolomic Approaches for Geographical Origin Discrimination of Hazelnuts (Corylus avellana) by UPLC-QTOF-MS

机译:食品指纹图谱:UPLC-QTOF-MS对榛子(榛子)进行地理起源区分的代谢组学方法

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摘要

Ultraperformance liquid chromatography quadrupole time-of-flight mass spectrometry (UPLC-QTOF-MS) was used for geographical origin discrimination of hazelnuts (Corylus avellana L.). Four different LC -MS methods for polar and nonpolar metabolites were evaluated with regard to best discrimination abilities. The most suitable method was used for analysis of 196 authentic samples from harvest years 2014 and 2015 (Germany, France, Italy, Turkey, Georgia), selecting and identifying 20 key metabolites with significant differences in abundancy (5 phosphatidylcholines, 3 phosphatidylethanolamines, 4 diacylglycerols, 7 triacylglycerols, and gamma-tocopherol). Classification models using soft independent modeling of class analogy (SIMCA), linear discriminant analysis based on principal component analysis (PCA-LDA), support vector machine classification (SVM), and a customized statistical model based on confidence intervals of selected metabolite levels were created, yielding 99.5% training accuracy at its best by combining SVM and SIMCA. Forty nonauthentic hazelnut samples were subsequently used to estimate as realistically as possible the prediction capacity of the models.
机译:使用超高效液相色谱四极杆飞行时间质谱(UPLC-QTOF-MS)进行榛子(Corylus avellana L.)的地理起源判别。关于极性和非极性代谢物的四种不同LC-MS方法,就最佳区分能力进行了评估。最合适的方法用于分析2014年和2015年收成的196个真实样品(德国,法国,意大利,土耳其,格鲁吉亚),选择和鉴定丰度差异显着的20种主要代谢物(5种磷脂酰胆碱,3种磷脂酰乙醇胺,4种二酰基甘油) ,7种三酰基甘油和γ-生育酚)。使用类比软独立建模(SIMCA),基于主成分分析的线性判别分析(PCA-LDA),支持向量机分类(SVM)和基于所选代谢物水平的置信区间的定制统计模型,创建了分类模型通过将SVM和SIMCA结合在一起,可以达到99.5%的最佳训练精度。随后使用40个非真实的榛子样本尽可能实际地估计模型的预测能力。

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