Application of Magnetic Resonance Technique to Quality and Safety Evaluation of Food

  • WANG Xiao-hua ,
  • SUN Peng ,
  • ZHANG Xu ,
  • LIU Mai-li
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  • 1. State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, National Center for Magnetic Resonance in Wuhan(Wuhan Institute of Physics and Mathematics, Chinese Academy of Sciences), Wuhan 430071, China;
    2. University of Chinese Academy of Sciences, Beijing 100049, China

Received date: 2016-03-09

  Revised date: 2017-04-18

  Online published: 2017-06-05

Abstract

Food quality and safety evaluation is essential for public health. NMR and MRI techniques have been applied for food quality and safety evaluation, attracting more and more attention. Both NMR and MRI are well-known to be non-destructive and non-invasive, and they are capable of detecting multiple components in the food simultaneously in real time, and providing both chemical and structural information. In order to promote their further applications in food science, the applications of NMR/MRI techniques in food quality and safety evaluation are summarized here.

Key words: MRI; quality and safety; NMR; food

Cite this article

WANG Xiao-hua , SUN Peng , ZHANG Xu , LIU Mai-li . Application of Magnetic Resonance Technique to Quality and Safety Evaluation of Food[J]. Chinese Journal of Magnetic Resonance, 2017 , 34(2) : 245 -256 . DOI: 10.11938/cjmr20170214

References

[1] HORWITZ W, LATIMER G. Official methods of analysis of AOAC international[M]. 18th ed. Gaithersburg:AOAC Int, 2009.
[2] GRUNERT K G. Food quality and safety:Consumer perception and demand[J]. Eur Rev Agric Econ, 2005, 32(3):369-391.
[3] HANNE CHRISTINE B, ANNETTE S, KATJA R, et al. Physical changes of significance for early post mortem water distribution in porcine M. longissimus[J]. Meat Sci, 2004, 66(4):915-924.
[4] HINRICHS R, GÖTZ J, NOLL M, et al. Characterisation of the water-holding capacity of fresh cheese samples by means of low resolution nuclear magnetic resonance[J]. Food Res Int, 2004, 37(7):667-676.
[5] CHALAND B, MARIETTE F, MARCHAL P, et al. 1H nuclear magnetic resonance relaxometric characterization of fat and water states in soft and hard cheese[J]. J Dairy Res, 2000, 67(4):609-618.
[6] GOMI Y I, FUKUOKA M, MIHORI T, et al. Therate of starch gelatinization as observed by PFG-NMR measurement of water diffusivity in rice starch/water mixtures[J]. J Food Eng, 1998, 36(4):359-369.
[7] RITOTA M, GIANFERRI R, BUCCI R, et al. Proton NMR relaxation study of swelling and gelatinisation process in rice starch-water samples[J]. Food Chem, 2008, 110(1):14-22.
[8] LI S, DICKINSON L C, CHINACHOTI P. Mobility of "unfreezable" and "freezable" water in waxy corn starch by 2H and 1H NMR[J]. J Agric Food Chem, 1998, 46(1):62-71.
[9] BUTZ P, HOFMANN C, TAUSCHER B. Recent developments in noninvasive techniques for fresh fruit and vegetable internal quality analysis[J]. J Food Sci, 2005, 70(9):131-141.
[10] WANG X B, LI L Y, DING G L, et al. The study of kiwi using magnetic resonance imaging and localized NMR spectroscopy[J]. Chinese J Magn Reson, 1998, 15(3):261-266. 王新兵, 李丽云, 丁广良, 等. 猕猴桃的磁共振成象及核磁共振定域波谱研究[J]. 波谱学杂志, 1998, 15(3):261-266.
[11] CIAMPA A, DELL'ABATE M T, MASETTI O, et al. Seasonal chemical-physical changes of PGI Pachino cherry tomatoes detected by magnetic resonance imaging (MRI)[J]. Food Chem, 2010, 122(4):1253-1260.
[12] OTERO L, PRÉSTAMO G. Effects of pressure processing on strawberry studied by nuclear magnetic resonance[J]. Innov Food Sci Emerg Technol, 2009, 10(4):434-440.
[13] PEARCE K, KATJA R, ANDERSEN H J, et al. Water distribution and mobility in meat during the conversion of muscle to meat and ageing and the impacts on fresh meat quality attributes-a review[J]. Meat Sci, 2011, 89(2):111-124.
[14] SEQUI P, DELL'ABATE M T, VALENTINI M. Identification of cherry tomatoes growth origin by means of magnetic resonance imaging[J]. J Sci Food Agric, 2007, 87(1):127-132.
[15] HU F Y, FURIHATA K, KATO Y, et al. Nondestructive quantification of organic compounds in whole milk without pretreatment by two-dimensional NMR spectroscopy[J]. J Agric Food Chem, 2007, 55(11):4307-4311.
[16] IGARASHI T, AURSAND M, SACCHI R, et al. Determination of docosahexaenoic acid and n-3 fatty acids in refined fish oils by 1H-NMR spectroscopy:IUPAC interlaboratory study[J]. J AOAC Int, 2002, 85(6):1341-1354.
[17] KEETON J T, HAFLEY B S, EDDY S M, et al. Rapid determination of moisture and fat in meats by microwave and nuclear magnetic resonance analysis[J]. J AOAC Int, 2003, 86(10):1193-1202.
[18] SORLAND G H, LARSEN P M, LUNDBY F, et al. Magnetic resonance in food science:The multivariate challenge[M]. UK:RSC Publishing, 2005:20-27.
[19] CAMPOS R, OLLIVON M, MARANGONI A G. Molecular composition dynamics and structure of cocoa butter[J]. Cryst Growth Des, 2009, 10(1):205-217.
[20] FIRESTONE D. Official methods and recommended practices of the American Oil Chemists Society[M]. 6th ed. USA:America Oil Chemists' Society, 2004.
[21] NARINE S S, HUMPHREY K L. Extending the capability of pulsed NMR instruments to measure solid fat content as a function of both time and temperature[J]. J AOCS, 2004, 81(1):101-102.
[22] TIMMS R E. Confectionery fats handbook:Properties, production and application[M]. UK:The Oily Press, 2003.
[23] VEREECKEN J, FOUBERT I, SMITH K W, et al. Crystallization of model fat blends containing symmetric and asymmetric monounsaturated triacylglycerols[J]. Eur J Lipid Sci Technol, 2010, 112(2):233-245.
[24] CONSONNI R, CAGLIANI L R, GUANTIERI V, et al. Identification of metabolic content of selected Amarone wine[J]. Food Chem, 2011, 129(2):693-699.
[25] ALEXANDRESCU A T, EVANS P A, PITKEATHLY M, et al. Structure and dynamics of the acid-denatured molten globule state of α-lactalbumin:A two-dimensional NMR study[J]. Biochem, 1993, 32(7):1707-1718.
[26] BELTON P S, DELGADILLO I, HOLMES E, et al. Use of high-field 1H NMR spectroscopy for the analysis of liquid foods[J]. J Agric Food Chem, 1996, 44(6):1483-1487.
[27] CALIGIANI A, ACQUOTTI D, PALLA G, et al. Identification and quantification of the main organic components of vinegars by high resolution 1H NMR spectroscopy[J]. Anal Chim Acta, 2007, 585(1):110-119.
[28] CONSONNI R, CAGLIANI L R, BENEVELLI F, et al. NMR and chemometric methods:A powerful combination for characterization of balsamic and traditional balsamic vinegar of modena[J]. Anal Chim Acta, 2008, 611(1):31-40.
[29] CONSONNI R, CAGLIANI L R, RINALDINI S, et al. Analytical method for authentication of traditional balsamic vinegar of modena[J]. Talanta, 2008, 75(3):765-769.
[30] DE OLIVEIRA C R, CARNEIRO R L, FERREIRA A G. Tracking the degradation of fresh orange juice and discrimination of orange varieties:An example of NMR in coordination with chemometrics analyses[J]. Food Chem, 2014, 164:446-453.
[31] KODA M, FURIHATA K, WEI F, et al. Metabolic discrimination of mango juice from various cultivars by band-selective NMR spectroscopy[J]. J Agric Food Chem, 2012, 60(5):1158-1166.
[32] LÓPEZ-RITUERTO E, SAVORANI F, AVENOZA A, et al. Investigations of La Rioja terroir for wine production using 1H NMR metabolomics[J]. J Agric Food Chem, 2012, 60(13):3452-3461.
[33] YANG S O, KIM M S, LIU K H, et al. Classification of fermented soybean paste during fermentation by 1H nuclear magnetic resonance spectroscopy and principal component analysis[J]. Biosci Biotechnol Biochem, 2009, 73(3):502-507.
[34] CHEN B, KANG H N, HAN C, et al. Applications of NMR spectroscopy and pattern recognition in food analysis[J]. Chinese J Magn Reson, 2006, 23(3):397-407. 陈波, 康海宁, 韩超, 等. NMR指纹图谱与模式识别方法在食物分析中的应用[J]. 波谱学杂志, 2006, 23(3):397-407.
[35] CHEN B, ZHANG W, KANG H N, et al. Fingerpringting tea by 1H NMR[J]. Chinese J Magn Reson, 2006, 23(2):169-180. 陈波, 张巍, 康海宁, 等. 茶叶的1H NMR指纹图谱研究[J]. 波谱学杂志, 2006, 23(2):169-180.
[36] ANASTASIADI M, ZIRA A, MAGIATIS P, et al. 1H NMR-based metabonomics for the classification of Greek wines according to variety, region, and vintage. Comparison with HPLC data[J]. J Agric Food Chem, 2009, 57(23):11067-11074.
[37] YANG S O, KIM M S, LIU K H, et al. Classification of fermented soybean paste during fermentation by 1H nuclear magnetic resonance spectroscopy and principal component analysis[J]. Biosci Biotechnol Biochem, 2009, 73(3):502-507.
[38] CONSONNI R, CAGLIANI L R. NMR relaxation data for quality characterization of balsamic vinegar of modena[J]. Talanta, 2007, 73(2):332-339.
[39] CAER V, TRIERWEILER M, MARTIN G J, et al. Determination of site-specific carbon isotope ratios at natural abundance by carbon-13 nuclear magnetic resonance spectroscopy[J]. Anal Chem, 1991, 63(20):2306-2313.
[40] ZHANG B L, BUDDRUS S, TRIERWEILER M, et al. Characterization of glycerol from different origins by 2H-and 13C-NMR studies of site-specific natural isotope fractionation[J]. J Agric Food Chem, 1998, 46(4):1374-1380.
[41] THOMAS F, RANDET C, GILBERT A, et al. Improved characterization of the botanical origin of sugar by carbon-13 SNIF-NMR applied to Ethanol[J]. J Agric Food Chem, 2010, 58(22):11580-11585.
[42] KO W C, CHENG J Y, CHEN P Y, et al. Optimized extraction method of acetic acid in vinegar and its effect on SNIF-NMR analysis to control the authenticity of vinegar[J]. Food Bioprocess Tech, 2012, 6(8):2202-2206.
[43] HSIEH C W, LI P H, CHENG J Y, et al. Using SNIF-NMR method to identify the adulteration of molasses spirit vinegar by synthetic acetic acid in rice vinegar[J]. Ind Crops Products, 2013, 50(10):904-908.
[44] REMAUD G S, MARTIN Y L, MARTIN G G, et al. Authentication of mustard oils by combined stable isotope analysis (SNIF-NMR and IRMS)[J]. J Agric Food Chem, 1997, 45(5):1844-1848.
[45] ZHANG B L, TRIERWEILER M, JOUITTEAU C, et al. Consistency of NMR and mass spectrometry determinations of natural-abundance site-specific carbon isotope ratios. The case of glycerol[J]. Anal Chem, 1999, 71(13):2301-2306.
[46] HALL L D, EVANS S D, NOTT K P. Measurement of textural changes of food by MRI relaxometry[J]. Magn Reson Imaging, 1998, 16(5, 6):485-492.
[47] DUARTE I F, IVONNE D, GIL A M. Study of natural mango juice spoilage and microbial contamination with penicillium expansum by high resolution 1H NMR spectroscopy[J]. Food Chem, 2006, 96(2):313-324.
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