Chinese Journal of Magnetic Resonance ›› 2017, Vol. 34 ›› Issue (2): 245-256.doi: 10.11938/cjmr20170214
WANG Xiao-hua1,2, SUN Peng1, ZHANG Xu1, LIU Mai-li1
Received:
2016-03-09
Revised:
2017-04-18
Online:
2017-06-05
Published:
2017-06-05
CLC Number:
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.
[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. |
[1] | HU Kun, SUN Han-dong, PUNO Pema-tenzin. Application of Quantum Chemical Calculation of Nuclear Magnetic Resonance Parameters in the Structure Elucidation of Natural Products [J]. Chinese Journal of Magnetic Resonance, 2019, 36(3): 359-376. |
[2] | LIU Wen-qing, SONG Yan-hong, WANG Xue-lu, YAO Ye-feng. In Operando Nuclear Magnetic Resonance Spectroscopy Study on Photocatalytic Methanol Reforming [J]. Chinese Journal of Magnetic Resonance, 2019, 36(3): 298-308. |
[3] | YIN Tian-peng, WANG Ya-rong, WANG Min, SHI Wen-zhi, ZHANG Zheng-qian, HE Sha-sha. Complete Assignments of NMR Spectral Data of Three C19-Diterpenoid Alkaloids [J]. Chinese Journal of Magnetic Resonance, 2019, 36(3): 331-340. |
[4] | YANG Yun-han, DU Yao, YING Fei-xiang, YANG Jun-li, XIA Da-zhen, XIA Fu-ting, YANG Li-juan. Inclusion Behavior of Naringenin/β-Cyclodextrin Supramolecular Complex [J]. Chinese Journal of Magnetic Resonance, 2019, 36(3): 319-330. |
[5] | WANG Ya-lan, WANG Xiao-jing, WANG Zhi-wei. Spectral Analyses and Structural Elucidation of Azilsartan [J]. Chinese Journal of Magnetic Resonance, 2019, 36(3): 350-358. |
[6] | LIU Ji-hong, JIN Kun, WANG Ping, LUO Gen. An NMR Study on Esculetin and It's Derivatives [J]. Chinese Journal of Magnetic Resonance, 2019, 36(3): 341-349. |
[7] | WAN Zhi-bin, SONG Jian-hui, GUO Ming-ming. The Application of in Operando Liquid State NMR on Macromolecular Material Characterization [J]. Chinese Journal of Magnetic Resonance, 2019, 36(3): 408-424. |
[8] | WEI Guo-jing, YI Pei-wei, TAO Quan, FENG Yan-qiu. Comparisons of Different CEST Quantification Metrics Applied in Acute Parkinson's Disease Mouse Model [J]. Chinese Journal of Magnetic Resonance, 2019, 36(2): 195-207. |
[9] | TANG Ming-xue, SCHMIDT Claudia. Estimation of Nematic Order Parameters via Haller Analysis of 1H NMR Spectra of Liquid Crystals [J]. Chinese Journal of Magnetic Resonance, 2019, 36(2): 138-147. |
[10] | CAO Yuan, WU Yong-ping, CHEN Dong-jun. A Spectroscopic Study on Tautomerism of Selaginellins from Selaginella [J]. Chinese Journal of Magnetic Resonance, 2019, 36(2): 155-163. |
[11] | TANG Heng, Gilbert NSHOGOZA, LIU Ming-qing, LIU Ya-qian, RUAN Ke, MA Rong-sheng, GAO Jia. Identification of Novel Hits of the NSD1 SET Domain by NMR Fragment-Based Screening [J]. Chinese Journal of Magnetic Resonance, 2019, 36(2): 148-154. |
[12] | XU Xiao-jun, WANG Shen-lin. Probing Membrane Protein Interactions by 19F Solid-State NMR [J]. Chinese Journal of Magnetic Resonance, 2019, 36(2): 238-251. |
[13] | KOU Xin-hui, LIU Yi-xiang, LIU Xing-hong, LI Cong-gang, LIU Mai-li, JIANG Ling. Visualizing the Pre-Active Conformation of Response Regulator PhoBNF20D in Its apo State [J]. Chinese Journal of Magnetic Resonance, 2019, 36(2): 164-171. |
[14] | CHEN Xiao-ying, YU Gang-jin, MAO Shi-zhen, LIU Mai-li, DU You-ru. Mixing-Induced Decreases in Critical Micelle Concentration in Aqueous Solution of Surfactants:Probing into the Mechanisms with 1H NMR Spectroscopy [J]. Chinese Journal of Magnetic Resonance, 2019, 36(2): 219-224. |
[15] | XIAO Xiong-jie, HU Mary, ZHANG Xu, HU Jian-zhi. An NMR-Based Metabolomics Study of Kidneys from Mice Exposed to Ionizing Radiation [J]. Chinese Journal of Magnetic Resonance, 2019, 36(2): 172-181. |
Viewed | ||||||||||||||||||||||||||||||||||||||||||||||||||
Full text 374
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
Abstract 160
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||