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Articles

Development of an immunochromatographic strip assay for ractopamine detection using an ultrasensitive monoclonal antibody

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Pages 471-483 | Received 11 Sep 2015, Accepted 28 Nov 2015, Published online: 30 Dec 2015

References

  • Amelin, V., Korolev, D., & Tret'yakov, A. (2015). QuEChERS sample preparation in the simultaneous determination of diethylstilbestrol and ractopamine in food by gas-liquid chromatography. Journal of Analytical Chemistry, 70(4), 419–423. doi: 10.1134/S1061934815040024
  • Anurukvorakun, O., Buchberger, W., Himmelsbach, M., Klampel, C. W., & Suntornsuk, L. (2010). A sensitive non-aqueous capillary electrophoresis-mass spectrometric method for multiresidue analyses of β-agonists in pork. Biomedical Chromatography, 24(6), 588–599.
  • Cao, B., He, G., Yang, H., Chang, H., Li, S., & Deng, A. (2013). Development of a highly sensitive and specific enzyme-linked immunosorbent assay (ELISA) for the detection of phenylethanolamine A in tissue and feed samples and confirmed by liquid chromatography tandem mass spectrometry (LC–MS/MS). Talanta, 115(17), 624–630. doi: 10.1016/j.talanta.2013.06.026
  • Deng, X., Liu, L., Ma, W., Xu, C., Wang, L., & Kuang, H. (2012). Development and validation of a sandwich ELISA for quantification of peanut agglutinin (PNA) in foods. Food & Agricultural Immunology, 23(3), 265–272. doi: 10.1080/09540105.2011.617358
  • Dong, J. X. (2012). Development of a single-chain variable fragment-alkaline phosphatase fusion protein and a sensitive direct competitive chemiluminescent enzyme immunoassay for detection of ractopamine in pork. Analytica chimica Acta, 736(14), 85–91. doi: 10.1016/j.aca.2012.05.033
  • Dong, Y., Xi, X., Xia, W., Ding, S., Li, X., Zhang, S., … Feng, Z. (2011). Validation of an ultra-performance liquid chromatography-tandem mass spectrometry method for determination of ractopamine: Application to residue depletion study in swine. Food Chemistry, 127(1), 327–332. doi: 10.1016/j.foodchem.2010.12.138
  • Fang, G., Lu, J., Pan, M., Li, W., Ren, L., & Wang, S. (2011). Substitution of antibody with molecularly imprinted film in enzyme-linked immunosorbent assay for determination of trace ractopamine in urine and pork Samples. Food Analytical Methods, 4(4), 590–597. doi: 10.1007/s12161-011-9206-4
  • Gao, H., Jing, H., Yang, S., Wang, Z., Lin, W., & Fu, Z. (2014). Highly sensitive multianalyte immunochromatographic test strip for rapid chemiluminescent detection of ractopamine and salbutamol. Analytica chimica acta, 839, 91–96. doi: 10.1016/j.aca.2014.05.024
  • Guan, D., Guo, L., Liu, L., & Kong, N. (2015). Development of an ELISA for nitrazepam based on a monoclonal antibody. Food & Agricultural Immunology, 26, 611–621. doi: 10.1080/09540105.2014.998637
  • Guo, J., Liu, L., Xue, F., Xing, C., Song, S., Kuang, H., & Xu, C. (2015). Development of a monoclonal antibody-based immunochromatographic strip for cephalexin. Food & Agricultural Immunology, 26, 282–292. doi: 10.1080/09540105.2014.907242
  • Guo, L., Song, S., Liu, L., Peng, J., Kuang, H., & Xu, C. (2015). Comparsion of an immunochromatographic strip with ELISA for simultaneous detection of thiamphenicol, florfenicol and chloramphenicol in food samples. Biomedical Chromatography, 29, 1432–1439. doi: 10.1002/bmc.3442
  • Hu, Y., Liu, R., Li, Y., & Li, G. (2010). Investigation of ractopamine-imprinted polymer for dispersive solid-phase extraction of trace β-agonists in pig tissues. Journal of Separation Science, 33(13), 2017–2025. doi: 10.1002/jssc.201000063
  • Jiang, X. F., Zhu, Y. H., & Liu, X. Y. (2014). Identification of ractopamine glucuronides and determination of bioactive ractopamine residues and its metabolites in food animal urine by ELISA, LC-MS/MS and GC-MS. Food Additives and Contaminants – Part A Chemistry, Analysis, Control, Exposure and Risk Assessment, 31(1), 29–38.
  • Jing, Z., Xintian, S., Jingli, Y., Donghui, L., & Zhenhua, C. (2014). Preparation of ractopamine-tetraphenylborate complexed nanoparticles used as sensors to rapidly determine ractopamine residues in pork. Nanoscale Research Letters, 9(1), 639. doi: 10.1186/1556-276X-9-588
  • Jing-Kai, H., Teh-Ia, H., Lie-Chwen, L., & Tung-Hu, T. (2014). Pharmacokinetics of ractopamine and its organ distribution in rats. Journal of Agricultural & Food Chemistry, 62(38), 9273–9278. doi: 10.1021/jf5026168
  • Li, X., Zhang, G., Deng, R., Yang, Y., Liu, Q., Xiao, Z., … Cai, S. (2010). Development of rapid immunoassays for the detection of ractopamine in swine urine. Food Additives & Contaminants Part A Chemistry Analysis Control Exposure & Risk Assessment, 27(8), 1096–1103.
  • Li, Y., Ji, B., Chen, W., Liu, L., Xu, C., Peng, C., & Wang, L. (2008). Production of new class-specific polyclonal antibody for determination of fluoroquinolones antibiotics by indirect competitive ELISA. Food & Agricultural Immunology, 19(4), 251–264. doi: 10.1080/09540100802471538
  • Liu, G., Chen, H., Peng, H., Song, S., Gao, J., Lu, J., … Zou, Z. (2011). A carbon nanotube-based high-sensitivity electrochemical immunosensor for rapid and portable detection of clenbuterol. Biosensors & Bioelectronics, 28(1), 308–313. doi: 10.1016/j.bios.2011.07.037
  • Liu, L., Kuang, H., Peng, C., Wang, L., & Xu, C. (2013). Fragment-based hapten design and screening of a highly sensitive and specific monoclonal antibody for ractopamine. Analytical Methods, 6(1), 229–234. doi: 10.1039/C3AY41827H
  • Liu, L., Yan, H., & Zhang, X. (2014). Development of an anti-chlorothalonil monoclonal antibody based on a novel designed hapten. Food & Agricultural Immunology, 26, 410–419. doi: 10.1080/09540105.2014.938319
  • Liu, M., Ning, B., Qu, L., Peng, Y., Dong, J., Gao, N., … Gao, Z. (2012). Development of indirect competitive immunoassay for highly sensitive determination of ractopamine in pork liver samples based on surface plasmon resonance sensor. Sensors & Actuators B Chemical, 161(1), 124–130. doi: 10.1016/j.snb.2011.09.078
  • Liu, S., Lin, Q., Zhang, X., He, X., Xing, X., Lian, W., & Huang, J. (2011). Electrochemical immunosensor for salbutamol detection based on CS-Fe 3O 4-PAMAM-GNPs nanocomposites and HRP-MWCNTs-Ab bioconjugates for signal amplification. Sensors & Actuators B Chemical, 156(1), 71–78. doi: 10.1016/j.snb.2011.03.074
  • Mei, L. R., Xue, L. C., Chao, H. L., Bo, X. U., Wen, J. L., Heng Yi, X. U., & Yong, H. X. (2014). Lateral flow immunoassay for quantitative detection of ractopamine in swine urine. Biomedical & Environmental Sciences, 27(2), 134–137.
  • Radu, D., Aciu, F., Constantin, C., Leauta, I., Dermengiu, D., Hostiuc, S.,  … Curca, G. C. (2012). Study regarding drugs in blood with ELISA and chemiluminiscence versus ELISA with spectrophotometric detection. Romanian Journal of Legal Medicine, 20, 61–64. doi: 10.4323/rjlm.2012.61
  • Rajkumar, M., Li, Y. S., & Chen, S. M. (2013). Electrochemical detection of toxic ractopamine and salbutamol in pig meat and human urine samples by using poly taurine/zirconia nanoparticles modified electrodes. Colloids & Surfaces B Biointerfaces, 110c(10), 242–247. doi: 10.1016/j.colsurfb.2013.03.038
  • Sairi, M., & Arrigan, D. W. M. (2015). Electrochemical detection of ractopamine at arrays of micro-liquid | liquid interfaces. Talanta, 132(132), 205–214. doi: 10.1016/j.talanta.2014.08.060
  • Sun, F., Liu, L., Ma, W., Xu, C., Wang, L., & Kuang, H. (2012). Rapid on-site determination of melamine in raw milk by an immunochromatographic strip. International Journal of Food Science & Technology, 47(7), 1505–1510. doi: 10.1111/j.1365-2621.2012.02998.x
  • Suryoprabowo, S., Liu, L., Peng, J., Kuang, H., & Xu, C. (2014). Antibody for the development of specific immunoassays to detect nadifloxacin in chicken muscles. Food & Agricultural Immunology, 26(3), 317–324. doi: 10.1080/09540105.2014.914469
  • Wang, H., Yong, Z., He, L., Du, B., Ma, H., Dan, W., & Qin, W. (2013). A silver-palladium alloy nanoparticle-based electrochemical biosensor for simultaneous detection of ractopamine, clenbuterol and salbutamol. Biosensors & Bioelectronics, 49(10), 14–19. doi: 10.1016/j.bios.2013.04.041
  • Wang, Z., Liu, M., Shi, W., Li, C., Zhang, S., & Shen, J. (2015). New haptens and antibodies for ractopamine. Food Chemistry, 183, 111–114. doi: 10.1016/j.foodchem.2015.03.043
  • Wei, D., Gang, Z., Qiang, F., Min, S., Zhou, H., & Chang, C. (2014). Combined microextraction by packed sorbent and high-performance liquid chromatography-ultraviolet detection for rapid analysis of ractopamine in porcine muscle and urine samples. Food Chemistry, 145(7), 789–795.
  • Xing, C. & Kuang, H. (2013). A highly sensitive enzyme-linked immunosorbent assay for copper(II) determination in drinking water. Food & Agricultural Immunology, 25(3), 432–442. doi: 10.1080/09540105.2013.821600
  • Yue, N., Wu, L., Li, L., & Xu, C. (2009). Multi-residue detection of benzodiazepines by ELISA based on class selective antibodies. Food and Agricultural Immunology, 20(4), 281–293. doi: 10.1080/09540100903199475
  • Zhang, L., Gong, Y., Zhang, M., Xi, X., Li, M., Chen, Z., Yu, X., & Zhou, Y. (2014). Development of a monoclonal antibody-based direct competitive enzyme-linked immunosorbent assay for a new β-adrenergic agonist phenylethanolamine A. Analytical Methods, 6, 5942–5950. doi: 10.1039/C4AY00682H

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