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Estimation of the percentage of transgenic Bt maize in maize flour mixtures using perfusion and monolithic reversed-phase high-performance liquid chromatography and chemometric tools

机译:使用灌注和整体反相高效液相色谱法和化学计量工具估算玉米面粉混合物中转基因Bt玉米的百分比

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The estimation of the percentage of transgenic Bt maize in maize flour mixtures has been achieved in this work by high-performance liquid chromatography using perfusion and monolithic columns and chemometric analysis. Principal component analysis allowed a preliminary study of the data structure. Then, linear discriminant analysis was used to develop decision rules to classify samples in the established categories (percentages of transgenic Bt maize). Finally, linear regression (LR) and multivariate regression models (namely, principal component analysis regression (PCR), partial least squares regression (PLS-1), and multiple linear regression (MLR)) were assayed for the prediction of the percentages of transgenic Bt maize present in a maize flour mixture. Using the relative areas of the protein peaks, MLR provided the best models and was able to predict the percentage of transgenic Bt maize in flour mixtures with an error of ±5.3%, ±2.3%, and ±3.8% in the predictions of Aristis Bt, DKC6575, and PR33P67, respectively.
机译:在这项工作中,通过使用灌注和整体柱的高效液相色谱法和化学计量学分析,已经估算出玉米粉混合物中转基因Bt玉米的百分比。主成分分析允许对数据结构进行初步研究。然后,使用线性判别分析来制定决策规则,以将样品分类为既定类别(转基因Bt玉米的百分比)。最后,使用线性回归(LR)和多元回归模型(即主成分分析回归(PCR),偏最小二乘回归(PLS-1)和多元线性回归(MLR))来预测转基因的百分比Bt玉米存在于玉米面粉混合物中。使用蛋白质峰的相对面积,MLR提供了最好的模型,并且能够预测面粉混合物中转基因Bt玉米的百分比,在Aristis Bt的预测中的误差为±5.3%,±2.3%和±3.8% ,DKC6575和PR33P67。

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