Rapid Analysis of Deoxynivalenol in Durum Wheat by FT-NIR Spectroscopy

被引:46
作者
De Girolamo, Annalisa [1 ]
Cervellieri, Salvatore [1 ]
Visconti, Angelo [1 ]
Pascale, Michelangelo [1 ]
机构
[1] Natl Res Council Italy ISPA CNR, Inst Sci Food Prod, I-70126 Bari, Italy
关键词
deoxynivalenol; FT-NIR; rapid method; wheat; LDA; PLS; NEAR-INFRARED SPECTROSCOPY; REFLECTANCE SPECTROSCOPY; FUSARIUM MYCOTOXINS; FUNGAL; MAIZE; IDENTIFICATION; CONTAMINATION; BARLEY; DON;
D O I
10.3390/toxins6113129
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Fourier-transform-near infrared (FT-NIR) spectroscopy has been used to develop quantitative and classification models for the prediction of deoxynivalenol (DON) levels in durum wheat samples. Partial least-squares (PLS) regression analysis was used to determine DON in wheat samples in the range of <50-16,000 mu g/kg DON. The model displayed a large root mean square error of prediction value (1,977 mu g/kg) as compared to the EU maximum limit for DON in unprocessed durum wheat (i.e., 1,750 mu g/kg), thus making the PLS approach unsuitable for quantitative prediction of DON in durum wheat. Linear discriminant analysis (LDA) was successfully used to differentiate wheat samples based on their DON content. A first approach used LDA to group wheat samples into three classes: A (DON <= 1,000 mu g/kg), B (1,000 < DON <= 2,500 mu g/kg), and C (DON > 2,500 mu g/kg) (LDA I). A second approach was used to discriminate highly contaminated wheat samples based on three different cut-off limits, namely 1,000 (LDA II), 1,200 (LDA III) and 1,400 mu g/kg DON (LDA IV). The overall classification and false compliant rates for the three models were 75%-90% and 3%-7%, respectively, with model LDA IV using a cut-off of 1,400 mu g/kg fulfilling the requirement of the European official guidelines for screening methods. These findings confirmed the suitability of FT-NIR to screen a large number of wheat samples for DON contamination and to verify the compliance with EU regulation.
引用
收藏
页码:3129 / 3143
页数:15
相关论文
共 42 条
[31]   Near infrared spectroscopy for determination of mycotoxins in cereals [J].
Pettersson, H ;
Aberg, L .
FOOD CONTROL, 2003, 14 (04) :229-232
[32]   Effect of Deoxynivalenol and Other Type B Trichothecenes on the Intestine: A Review [J].
Pinton, Philippe ;
Oswald, Isabelle P. .
TOXINS, 2014, 6 (05) :1615-1643
[33]   Determination of deoxynivalenol (DON) and its derivatives: Current status of analytical methods [J].
Ran, Ran ;
Wang, Canhua ;
Han, Zheng ;
Wu, Aibo ;
Zhang, Dabing ;
Shi, Jianxin .
FOOD CONTROL, 2013, 34 (01) :138-148
[34]  
Ruan R, 2002, APPL ENG AGRIC, V18, P549
[35]   Fourier transform infrared as a powerful technique for the identification and characterization of filamentous fungi and yeasts [J].
Santos, Cledir ;
Fraga, Marcelo E. ;
Kozakiewicz, Zofia ;
Lima, Nelson .
RESEARCH IN MICROBIOLOGY, 2010, 161 (02) :168-175
[36]   SMOOTHING + DIFFERENTIATION OF DATA BY SIMPLIFIED LEAST SQUARES PROCEDURES [J].
SAVITZKY, A ;
GOLAY, MJE .
ANALYTICAL CHEMISTRY, 1964, 36 (08) :1627-&
[37]  
Shephard Gordon S., 2011, Plant Breeding and Seed Science, V64, P113, DOI 10.2478/v10129-011-0034-x
[38]   Application of near infrared spectroscopy to detect aflatoxigenic fungal contamination in rice [J].
Sirisomboon, C. Dachoupakan ;
Putthang, R. ;
Sirisomboon, P. .
FOOD CONTROL, 2013, 33 (01) :207-214
[39]   A Modified Approach to Evaluation of DON Content in Scab-Damaged Ground Wheat by Use of Diffuse Reflectance Spectroscopy [J].
Siuda, Ryszard ;
Balcerowska, Graiyna ;
Kupcewicz, Bogumila ;
Lenc, Leszek .
FOOD ANALYTICAL METHODS, 2008, 1 (04) :283-292
[40]   Estimating Deoxynivalenol Content of Ground Oats Using VIS-NIR Spectroscopy [J].
Tekle, Selamawit ;
Bjornstad, Asmund ;
Skinnes, Helge ;
Dong, Yanhong ;
Segtnan, Vegard H. .
CEREAL CHEMISTRY, 2013, 90 (03) :181-185