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指纹图谱与化学计量分析方法相结合鉴定青藏高原菜籽油的地理来源

Combination of fingerprint and chemometric analytical approaches to identify the geographical origin of Qinghai-Tibet plateau rapeseed oil.

作者信息

Ye Ziqin, Wang Jinying, Gan Shengrui, Dong Guoxin, Yang Furong

机构信息

College of Agriculture and Animal Husbandry, Qinghai University, Xining, 810016, PR China.

State Key Laboratory of Plateau Ecology and Agriculture, Qinghai University, Xining, 810016, PR China.

出版信息

Heliyon. 2024 Feb 27;10(5):e27167. doi: 10.1016/j.heliyon.2024.e27167. eCollection 2024 Mar 15.

Abstract

Verification of the geographical origin of rapeseed oil is essential to protect consumers from fraudulent products. A prospective study was conducted on 45 samples from three rapeseed oil-producing areas in Qinghai Province, which were analyzed by GC-FID and GC-MS. To assess the accuracy of the prediction of origin, classification models were developed using PCA, OPLS-DA, and LDA. It was found that multivariate analysis combined with PCA separate 96% of the samples, and the correct sample discrimination rate based on the OPLS-DA model was over 98%. The predictive index of the model was Q = 0.841, indicating that the model had good predictive ability. The LDA results showed highly accurate classification (100%) and cross-validation (100%) rates for the rapeseed oil samples, demonstrating that the model had strong predictive capacity. These findings will serve as a foundation for the implementation and advancement of origin traceability using the combination of fatty acid, phytosterol and tocopherol fingerprints.

摘要

验证菜籽油的地理来源对于保护消费者免受欺诈产品的侵害至关重要。对青海省三个菜籽油产区的45个样本进行了一项前瞻性研究,这些样本通过气相色谱 - 火焰离子化检测器(GC - FID)和气相色谱 - 质谱联用仪(GC - MS)进行分析。为了评估产地预测的准确性,使用主成分分析(PCA)、正交投影判别分析(OPLS - DA)和线性判别分析(LDA)建立了分类模型。结果发现,多元分析结合PCA可分离96%的样本,基于OPLS - DA模型的正确样本判别率超过98%。该模型的预测指标Q = 0.841,表明该模型具有良好的预测能力。LDA结果显示菜籽油样本的分类准确率(100%)和交叉验证率(100%)都很高,表明该模型具有很强的预测能力。这些发现将为利用脂肪酸、植物甾醇和生育酚指纹图谱相结合的方法实施和推进产地溯源奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a84/10912685/e6107fe5bdb1/gr1.jpg

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