Multiresidue analysis of oestrogenic compounds in cow, goat, sheep and human milk using core-shell polydopamine coated magnetic nanoparticles as extraction sorbent in micro-dispersive solid-phase extraction followed by ultra-high-performance liquid chromatography tandem mass spectrometry

被引:32
|
作者
Socas-Rodriguez, Barbara [1 ]
Hernandez-Borges, Javier [1 ]
Herrera-Herrera, Antonio V. [2 ]
Angel Rodriguez-Delgado, Miguel [1 ]
机构
[1] Univ La Laguna, Fac Ciencias, Unidad Dept Quim Analit, Dept Quim, Avda Astrofis Fco Sanchez S-N, San Cristobal De Laguna 38206, Spain
[2] Univ La Laguna, Inst Univ Bioorgan Antonio Gonzalez, Avda Astrofis Fco Sanchez 2, San Cristobal De Laguna 38206, Spain
关键词
Oestrogenic compounds; Magnetic nanoparticles; Micro-dispersive solid-phase extraction; Milk; Ultra-high-performance liquid chromatography; Tandem mass spectrometry; WATER SAMPLES; DAIRY-PRODUCTS; BOVINE-MILK; YOGURT; FOOD; MYCOTOXINS; STRATEGIES; ENRICHMENT; MATRICES; HORMONES;
D O I
10.1007/s00216-018-0882-4
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
In this work, the suitability of Fe3O4 nanoparticles coated with polydopamine was evaluated as sorbent for the extraction of a group of 21 compounds with oestrogenic activity including seven phytoestrogens, six mycotoxins as well as four synthetic and four natural oestrogens from different types of milk, including sheep milk, in which the evaluation of oestrogenic compounds have never been developed before. Extraction was carried out using magnetic micro-dispersive solid-phase extraction after a previous deproteinisation step. Separation, determination and quantification of the target analytes were achieved by ultra-high-performance liquid chromatography coupled to triple quadrupole-tandem mass spectrometry. The methodology was validated for five milk samples using 17 beta-estradiol-2,4,16,16,17-d(5) as internal standard for natural and synthetic oestrogens, beta-zearalanol-10,10,11,12,12-d(5) for mycotoxins and prunetin for phytoestrogens. Recovery values ranged from 70 to 120% for the five types of matrices with relative standard deviation values lower than 18%. Limits of quantification of the method were in the range 0.55-11.8 mu g L-1 for all samples.
引用
收藏
页码:2031 / 2042
页数:12
相关论文
共 50 条
  • [1] Multiresidue analysis of oestrogenic compounds in cow, goat, sheep and human milk using core-shell polydopamine coated magnetic nanoparticles as extraction sorbent in micro-dispersive solid-phase extraction followed by ultra-high-performance liquid chromatography tandem mass spectrometry
    Bárbara Socas-Rodríguez
    Javier Hernández-Borges
    Antonio V. Herrera-Herrera
    Miguel Ángel Rodríguez-Delgado
    Analytical and Bioanalytical Chemistry, 2018, 410 : 2031 - 2042
  • [2] Reduced graphene oxide-coated magnetic-nanoparticles as sorbent for the determination of phthalates in environmental samples by micro-dispersive solid-phase extraction followed by ultra-high-performance liquid chromatography tandem mass spectrometry
    Santana-Mayor, Alvaro
    Socas-Rodriguez, Barbara
    del Mar Afonso, Maria
    Antonio Palenzuela-Lopez, Jose
    Angel Rodriguez-Delgado, Miguel
    JOURNAL OF CHROMATOGRAPHY A, 2018, 1565 : 36 - 47
  • [3] Core-shell polydopamine magnetic nanoparticles as sorbent in micro-dispersive solid-phase extraction for the determination of estrogenic compounds in water samples prior to high-performance liquid chromatography-mass spectrometry analysis
    Socas-Rodriguez, Barbara
    Hernandez-Borges, Javier
    Salazar, Pedro
    Martin, Miriam
    Angel Rodriguez-Delgado, Miguel
    JOURNAL OF CHROMATOGRAPHY A, 2015, 1397 : 1 - 10
  • [4] Mycoestrogen determination in cow milk: Magnetic solid-phase extraction followed by liquid chromatography and tandem mass spectrometry analysis
    Capriotti, Anna Laura
    Cavaliere, Chiara
    Foglia, Patrizia
    La Barbera, Giorgia
    Samperi, Roberto
    Ventura, Salvatore
    Lagana, Aldo
    JOURNAL OF SEPARATION SCIENCE, 2016, 39 (24) : 4794 - 4804
  • [5] Determination of DCPTA in Mung Bean by Dispersive Solid-Phase Extraction and Ultra-High-Performance Liquid Chromatography-Tandem Mass Spectrometry
    Gao, Yuling
    Li, WeiQing
    Li, Dongxue
    Yan, Rui
    Guo, Yongxia
    FOOD ANALYTICAL METHODS, 2020, 13 (08) : 1666 - 1672
  • [6] Fast determination of 14 mycotoxins in chestnut by dispersive solid-phase extraction coupled with ultra high performance liquid chromatography-tandem mass spectrometry
    Liang, Jingyun
    Dong, Yanjie
    Yuan, Xuexia
    Fan, Lixia
    Zhao, Shancang
    Wang, Lei
    JOURNAL OF SEPARATION SCIENCE, 2019, 42 (13) : 2191 - 2201
  • [7] Dispersive Solid-Phase Extraction of Polyphenols from Juice and Smoothie Samples Using Hybrid Mesostructured Silica Followed by Ultra-high-Performance Liquid Chromatography-Ion-Trap Tandem Mass Spectrometry
    Casado, Natalia
    Morante-Zarcero, Sonia
    Perez-Quintanilla, Damian
    Camara, Jose S.
    Sierra, Isabel
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2019, 67 (03) : 955 - 967
  • [8] Dispersive Liquid-Liquid Microextraction Followed by Magnetic Solid-Phase Extraction for Determination of Four Parabens in Beverage Samples by Ultra-performance Liquid Chromatography Tandem Mass Spectrometry
    Yin, Qinhong
    Zhu, Yanqin
    Yang, Yaling
    FOOD ANALYTICAL METHODS, 2018, 11 (03) : 797 - 807
  • [9] Analysis of alternariol and alternariol monomethyl ether in foodstuffs by molecularly imprinted solid-phase extraction and ultra-high-performance liquid chromatography tandem mass spectrometry
    Rico-Yuste, A.
    Walravens, J.
    Urraca, J. L.
    Abou-Hany, R. A. G.
    Descalzo, A. B.
    Orellana, G.
    Rychlik, M.
    De Saeger, S.
    Moreno-Bondi, M. C.
    FOOD CHEMISTRY, 2018, 243 : 357 - 364
  • [10] Using magnetic core-shell nanoparticles coated with an ionic liquid dispersion assisted by effervescence powder for the micro-solid-phase extraction of four beta blockers from human plasma by ultra high performance liquid chromatography with mass spectrometry detection
    Jamshidi, Sara
    Rofouei, Mohammad Kazem
    Thorsen, Gunnar
    JOURNAL OF SEPARATION SCIENCE, 2019, 42 (03) : 698 - 705