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Discrimination of citrus fruits using FT-IR fingerprinting by quantitative prediction of bioactive compounds

机译:FT-IR指纹图谱通过生物活性化合物的定量预测区分柑橘类水果

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摘要

High throughput screening of citrus samples containing elevated concentrations of total carotenoids, flavonoids, and phenolic compounds was accomplished using ultraviolet–visible spectroscopy and Fourier transform infrared (FT-IR) spectroscopy, combined with multivariate analysis. Principal component analysis and partial least squares discriminant analysis using FT-IR spectra were able to differentiate seven citrus fruit groups into three distinct clusters corresponding to their taxonomic relationship. Quantitative prediction modeling of total carotenoids, flavonoids, and phenolic compounds in citrus fruit was established using a partial least squares regression algorithm from the FT-IR spectra. The regression coefficients (R 2) of predicted and estimated values of total carotenoids, flavonoids, and phenolic compounds were all 0.99. The results indicated that accurate quantitative predictions of total carotenoids, flavonoids, and phenolic compounds were possible from citrus fruit FT-IR spectra, and that the resulting quantitative prediction model might be useful as a rapid selection tool for citrus fruits containing elevated carotenoids, flavonoids, and phenolic compounds.
机译:使用紫外可见光谱和傅立叶变换红外光谱(FT-IR)结合多变量分析,可以完成对含有高浓度总类胡萝卜素,类黄酮和酚类化合物的柑橘样品的高通量筛选。使用FT-IR光谱的主成分分析和偏最小二乘判别分析能够将七个柑桔类水果分为三个不同的簇,这与它们的分类关系相对应。利用FT-IR光谱的偏最小二乘回归算法,建立了柑橘类水果中总类胡萝卜素,类黄酮和酚类化合物的定量预测模型。总类胡萝卜素,类黄酮和酚类化合物的预测值和估计值的回归系数(R 2 )均为0.99。结果表明,从柑橘类水果FT-IR光谱中可以准确地定量预测总类胡萝卜素,类黄酮和酚类化合物,并且所得的定量预测模型可能用作含有较高类胡萝卜素,类黄酮,和酚类化合物。

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