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首页> 外文期刊>Food analytical methods >Global Mid-Infrared Prediction Models Facilitate Simultaneous Analysis of Juice Composition from Berries of Actinidia, Ribes, Rubus and Vaccinium Species
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Global Mid-Infrared Prediction Models Facilitate Simultaneous Analysis of Juice Composition from Berries of Actinidia, Ribes, Rubus and Vaccinium Species

机译:全球中红外预测模型有助于同时分析猕猴,肋骨,毛细血管和疫苗物种的浆果果汁组合物

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摘要

Introduction of Fourier-transform infrared (FTIR) spectroscopy would enable breeders to screen phenotypic variability in multiple fruit from large numbers of progeny. Thus far, however, there has been no comprehensive attempt to develop chemometric models for determination of quality attributes of small berry species by this approach. FTIR spectra (1800-900cm(-1)) of juice from breeding populations of four genera (Actinidia, specifically red kiwifruit, Ribes, Rubus and Vaccinium) were analysed by partial least squares regression to determine the possibility of measuring soluble solids (SS), titratable acidity (TA) and total anthocyanin (ACY) concentration simultaneously using global prediction models. SS, TA and ACY concentrations across all berry juices ranged between 4.1 and 22.4 degrees Brix, 0.1-5.5% citric acid and 2-4697ppm, respectively. R-2 (coefficient of determination in cross-validation) and SECV (standard error of cross-validation) statistics for global models were 0.996 (0.22 degrees Brix), 0.996 (0.08% citric acid) and 0.893 (280ppm). Analysis of data sets for individual berry types separately demonstrated that it was possible to develop models with superior prediction statistics for each attribute. However, these were not necessarily robust when validated against data from different seasons, locations or breeding selections. These global models represent an advance for researchers wishing to screen substantial fruit populations more rapidly.
机译:傅里叶变换红外(FTIR)光谱的引入将使育种者能够从大量后代筛选多种水果中的筛选表型变异性。然而,到目前为止,没有全面的尝试开发化学计量模型,以通过这种方法确定小浆果种类的质量属性。通过部分最小二乘回归分析来自四属(Actinidia,特异性红色猕猴桃,肋,橡钩,橡钩,橡钩,橡钩,橡钩,橡胶和醋酸血管)的果汁的FTIR光谱(1800-900cm(-1)),以确定测量可溶性固体(SS)的可能性使用全局预测模型同时滴定酸度(TA)和总花青素(ACY)浓度。所有浆果汁的SS,TA和ACY浓度范围间距4.1和22.4度BRIX,0.1-5.5%柠檬酸和2-4697ppm。 R-2(交叉验证中的测定系数)和全球模型的SECV(交叉验证的标准误差)为0.996(0.22度Brix),0.996(0.08%柠檬酸)和0.893(280ppm)。分别分析各个浆果类型的数据集,分别表明,可以为每个属性进行具有卓越预测统计数据的模型。然而,当验证来自不同季节,位置或繁殖选择的数据时,这些并不一定是强劲的。这些全球模式代表了希望更快地筛选大量水果种群的研究人员的进步。

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