TAN Li, MENG Fanlei, FAN Hong, et al. Determination of 9 Kinds of Mycotoxins in Maize by Ultra Performance Liquid Chromatography-tandem Mass Spectrometry[J]. Science and Technology of Food Industry, 2021, 42(7): 240−245. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2020050057.
Citation: TAN Li, MENG Fanlei, FAN Hong, et al. Determination of 9 Kinds of Mycotoxins in Maize by Ultra Performance Liquid Chromatography-tandem Mass Spectrometry[J]. Science and Technology of Food Industry, 2021, 42(7): 240−245. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2020050057.

Determination of 9 Kinds of Mycotoxins in Maize by Ultra Performance Liquid Chromatography-tandem Mass Spectrometry

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  • Received Date: May 07, 2020
  • Available Online: January 27, 2021
  • In order to effectively detect the biological toxins in maize, 80% acetonitrile -0.1% formic acid aqueous solution extraction, QuEChERS purification, methanol −0.1% formic acid +5 mmol/L ammonium formate aqueous solution using C18 column and gradient elution separation, electrospray positive and negative ions simultaneous scanning, and multiple reaction monitoring mode synthesis method of gathering data were applied to simultaneously determine nine mycotoxins including aflatoxin B1, aflatoxin B2, fumonisin B1, fumonisin B2, fumonisin B3, vomitoxin, 3-acetyl-deoxynivalenol, 15-acetyl-deoxynivalenol and zearalenone. Results showed that, the linear relationship of 9 kinds of mycotoxins were good in the concentration range of 0.25~250 μg/L, the correlation coefficient was above 0.9999, the detection limit was 0.079~1.8 μg/kg, the quantitative limit was 0.26~6.0 μg/kg, the recovery rate was 80.2%~113.8%, the relative standard deviation ≤ 7.7%. Nine mycotoxins were detected in 240 maize samples in Jilin province by this method, in which the aflatoxin B1, B2 were not detected, but the other seven toxins were detected. The detection rate of zearalenone was the lowest (14.6%) and FB2 was the highest (98.3%). This method is simple, sensitive, reproducible and accurate. It is suitable for the simultaneous determination of mycotoxins in maize.
  • [1]
    孟繁磊, 牛红红, 何智勇, 等. 基于UPLC-MS-MS技术定量确证小麦中10种真菌毒素[J]. 食品工业,2018,39(1):149−153.
    [2]
    胡琳, 师真, 赵丽, 等. 液相色谱-串联质谱法同时测定普洱茶中16种真菌毒素[J]. 浙江农业学报,2019,31(10):1700−1708. doi: 10.3969/j.issn.1004-1524.2019.10.16
    [3]
    税丕容. 食品中真菌毒素的污染与检测研究进展[J]. 现代食品,2018(13):130−131, 136.
    [4]
    Junior A, Giovanni V, Giuliana M, et al. Fungal contamination and aflatoxin content of maize, moringa and peanut foods from rural subsistence farms in South Haiti[J]. Journal of Stored Products Research,2020,85(1):1−8.
    [5]
    马腾达, 王慧玲, 周凤霞, 等. 检测食品中伏马菌素的研究新进展[J]. 吉林农业,2019(12):78.
    [6]
    Liu J, Sun L H, Zhang J C, et al. Aflatoxin B1, zearalenone and deoxynivalenol in feed ingredients and complete feed from central China[J]. Food Additives & Contaminants: Part B: Surveillance,2016,9(2):91−97.
    [7]
    Luo L J, Liu X H, Ma S, et al. Quantification of zearalenone in mildewing cereal crops using an innovative photoelectrochemical aptamer sensing strategy based on ZnO-NGQDs composites[J]. Food Chemistry,2020:322(4).
    [8]
    兰静, 赵琳, 孙向东, 等. 我国玉米生物毒素污染现状及预防措施[J]. 安徽农业科学,2019,47(19):183−185, 189. doi: 10.3969/j.issn.0517-6611.2019.19.053
    [9]
    百奥明. 2017百奥明原料与饲料霉菌毒素检测报告[R]. 2018.
    [10]
    谢刚. 粮食污染主要真菌毒素的研究[D]. 成都: 四川大学, 2005.
    [11]
    吴亚凉. 免疫亲和层析净化高效液相色谱法和胶体金快速定量法测定小麦中呕吐毒素含量的比较[J]. 粮食与饲料工业,2018(6):54−57.
    [12]
    王韦岗, 强敏, 端礼钦. 复合免疫亲和柱-高效液相色谱法同时测定谷物及其制品中9种真菌毒素[J]. 色谱,2018,36(12):1330−1336.
    [13]
    王坤, 侯玉泽, 胡骁飞, 等. 时间分辨荧光免疫分析技术在真菌毒素检测的应用[J]. 中国免疫学杂志,2013,29(2):197−201. doi: 10.3969/j.issn.1000-484X.2013.02.018
    [14]
    Sobia Niazi. 基于适配体功能化时间分辨荧光纳米探针的真菌毒素检测方法研究[D]. 无锡: 江南大学, 2019.
    [15]
    戚红卷. 酶联免疫吸附法测定粮食中真菌毒素[C]//中国毒理学会、广东省疾病预防控制中心. 中国毒理学会第六届全国毒理学大会论文摘要. 中国毒理学会、广东省疾病预防控制中心: 中国毒理学会, 2013: 141−142.
    [16]
    于金辉, 陈碧聪, 成莲, 等. 测定花生油中黄曲霉毒素B1前处理方法的优化[J]. 食品安全质量检测学报,2019,10(23):8076−8080.
    [17]
    张鹏, 赵卫东, 张艺兵. 高效薄层色谱法测定黄曲霉毒素B1、B2、G1、G2[J]. 分析化学,2000(3):392. doi: 10.3321/j.issn:0253-3820.2000.03.037
    [18]
    Marijjana S, Borka S. Survey of trichothecene mycotoxins in grains and animal feed in Croatia by thin layer chromatography[J]. Food Control,2006,17(9):733−740. doi: 10.1016/j.foodcont.2005.05.001
    [19]
    王可, 陈龙星, 田会方, 等. 高效液相色谱-串联质谱法测定凉拌菜中4种植物毒素[J]. 食品工业科技,2019,40(24):190−193.
    [20]
    曾羲, 林子豪, 雷芬芬, 等. 同位素内标高效液相色谱-串联质谱法测定粮食及其制品中赭曲霉毒素A、B和C[J]. 食品工业科技,2019,40(21):239−244.
    [21]
    Commission Regulation (EU) No 519/2014, Amending Eegulation (EC) No 401/ 2006 as regards methods of sampling of large lots, spices and food supplements, performance criteria for T-2, HT-2 toxin and citrinin and screening methods of analysis[R]. OJ, 2016: 337−365.
    [22]
    GB 5009.240-2016 食品安全国家标准 食品中伏马毒素的测定[S]. 北京: 中国标准出版社, 2016.
    [23]
    GB 5009.22-2016 食品安全国家标准 食品中黄曲霉毒素B族和G族的测定[S]. 北京: 中国标准出版社, 2016.
    [24]
    GB 5009.209-2016 食品安全国家标准 食品中玉米赤霉烯酮的测定[S]. 北京: 中国标准出版社, 2016.
    [25]
    GB 5009.111-2016 食品安全国家标准 食品中脱氧雪腐镰刀菌烯醇及其乙酰化衍生物的测定[S]. 北京: 中国标准出版社, 2016.
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