Novel Application of Near-infrared Spectroscopy and Chemometrics Approach for Detection of Lime Juice Adulteration

被引:29
作者
Jahani, Reza [1 ,2 ]
Yazdanpanah, Hassan [1 ,2 ]
van Ruth, Saskia M. [3 ,4 ]
Kobarfard, Farzad [2 ,5 ]
Alewijn, Martin [2 ,3 ]
Mahboubi, Arash [2 ,6 ]
Faizi, Mehrdad [1 ]
AliAbadi, Mohammad Hossein Shojaee [7 ]
Salamzadeh, Jamshid [2 ,8 ]
机构
[1] Shahid Beheshti Univ Med Sci, Sch Pharm, Dept Toxicol & Pharmacol, Tehran, Iran
[2] Shahid Beheshti Univ Med Sci, Food Safety Res Ctr, Tehran, Iran
[3] Wageningen Univ & Res, Wageningen Food Safety Res, Akkermaalsbos 2, NL-6708 WB Wageningen, Netherlands
[4] Wageningen Univ & Res, Food Qual & Design Grp, Bornse Weilanden 9, NL-6708 WG Wageningen, Netherlands
[5] Shahid Beheshti Univ Med Sci, Sch Pharm, Dept Med Chem, Tehran, Iran
[6] Shahid Beheshti Univ Med Sci, Sch Pharm, Dept Pharmaceut, Tehran, Iran
[7] Faroogh Life Sci Res Lab, Tehran, Iran
[8] Shahid Beheshti Univ Med Sci, Sch Pharm, Dept Clin Pharm, Tehran, Iran
来源
IRANIAN JOURNAL OF PHARMACEUTICAL RESEARCH | 2020年 / 19卷 / 02期
关键词
Lime juice; Portable NIR; Chemometrics; Food fraud; PLS-DA; k-NN; LEMON JUICE; HPLC; AUTHENTICITY; MILK;
D O I
10.22037/ijpr.2019.112328.13686
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The aim of this study is to investigate the novel application of a left-to-right markhandheld near infra-red spectrophotometer coupled with classification methodologies as a screening approach in detection of adulterated lime juices. For this purpose, a miniaturized near infra-red spectrophotometer (Tellspec (R)) in the spectral range of 900-1700 nm was used. Three diffuse reflectance spectra of 31 pure lime juices were collected from Jahrom, Iran and 25 adulterated juices were acquired. Principal component analysis was almost able to generate two clusters. Partial least square discriminant analysis and k-nearest neighbors algorithms with different spectral preprocessing techniques were applied as predictive models. In the partial least squares discriminant analysis, the most accurate prediction was obtained with SNV transforming. The generated model was able to classify juices with an accuracy of 88% and the Matthew's correlation left-to-right markcoefficient left-to-right markvalue of 0.75 in the external validation set. In the k-NN model, the highest accuracy and Matthew's correlation left-to-right markcoefficient in the test set (88% and 0.76, respectively) was obtained with multiplicative signal correction followed by 2nd-order derivative and 5th nearest neighbor. The results of this preliminary study provided promising evidence of the potential of the handheld near infra-red spectrometer and machine learning methods for rapid detection of lime juice adulteration. Since a limited number of the samples were used in the current study, more lime juice samples from a wider range of variability need to be analyzed in order to increase the robustness of the generated models and to confirm the promising results achieved in this study.
引用
收藏
页码:34 / 44
页数:11
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