1.广东省食品质量安全重点实验室,华南农业大学 食品学院,广东 广州 510640
2.中国生物兰州生物制品研究有限责任公司,甘肃 兰州 730046
3.福建省东山海关综合技术服务中心,福建 漳州 363400
徐振林,博士,教授,研究方向:食品及环境中小分子化学有害物检测,E-mail:jallent@163.com
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张译丰,郭城钎,柳彬等.基于生物素化纳米抗体检测拟除虫菊酯代谢物3-苯氧基苯甲酸的研究[J].分析测试学报,2021,40(10):1425-1431.
ZHANG Yi-feng,GUO Cheng-qian,LIU Bin,et al.Detection of a Pyrethroid Metabolite 3-Phenoxybenzoic Acid Based on a Biotinylated 3-Phenoxybenzoic Acid Nanobody Immunoassay[J].Journal of Instrumental Analysis,2021,40(10):1425-1431.
张译丰,郭城钎,柳彬等.基于生物素化纳米抗体检测拟除虫菊酯代谢物3-苯氧基苯甲酸的研究[J].分析测试学报,2021,40(10):1425-1431. DOI: 10.19969/j.fxcsxb.21022701.
ZHANG Yi-feng,GUO Cheng-qian,LIU Bin,et al.Detection of a Pyrethroid Metabolite 3-Phenoxybenzoic Acid Based on a Biotinylated 3-Phenoxybenzoic Acid Nanobody Immunoassay[J].Journal of Instrumental Analysis,2021,40(10):1425-1431. DOI: 10.19969/j.fxcsxb.21022701.
该研究在前期已制备获得的拟除虫菊酯代谢物3-苯氧基苯甲酸(3-PBA)纳米抗体(Nb)基础上,将其进行生物素化,并利用多聚辣根过氧化物酶标记的链霉亲和素(polyHRP-SA)进行信号扩增,建立了基于生物素-亲和素系统高灵敏间接竞争ELISA检测3-PBA残留的分析方法。对抗原抗体工作浓度、缓冲液条件(pH值、离子浓度、吐温-20浓度)及polyHRP-SA浓度进行优化后,所建方法对3-PBA的半抑制浓度(IC,50,)为1.7 ng/mL,线性范围为0.37~7.4 ng/mL,检出限(LOD)为0.15 ng/mL。将该方法用于人尿样品(高温酸水解后固相萃取净化)和环境水样品(简单过滤)中3-PBA的检测,加标回收率分别为87.0%~127%和78.0%~113%,相对标准偏差(RSD)不大于10%。该方法具有灵敏度高、操作简便,适用于生物与环境样本中3-PBA的快速筛查。
3-Phenoxybenzoic acid(3-PBA),as the most common metabolite of pyrethroid pesticides,is typically employed as the risk indicator for pyrethroid pesticides exposure. Antibody-based immunoassay has the advantages of rapidity,high sensitivity and easy operation,which is considered as a promising tool for the risk exposure assessment on hazardous chemicals in environment,food stuffs and human body fluid samples. Nanobody(Nbs) is the variable domain of heavy chain-only antibody(VHH) derived from heavy chain antibodies(HCAbs) of camelidae or new antigen receptor(NAR) of shark,which are naturally lack of light chain. Unlike conventional antibodies,Nbs have high binding affinity with only a single domain,avoiding the complex combination of heavy and light chains during recombinant expression,which would sometime lead to the low solubility and stability of genetically engineered antibody fragments. Therefore,Nbs are easily expressed in soluble form,and have similar affinity with its natural structure. And Nbs have been reported to have excellent thermostability and organic solvent tolerance,which is benefit to simplify the pretreatment step. Thus,Nbs are considered as an ideal tool for developing rapid immunoassays. In this work,with the aim to develop a sensitive immunoassay for monitoring the metabolite of pyrethroid pesticides 3-PBA in water and human urine samples,the biotinylated 3-PBA Nbs using biotin N-hydroxysuccinimide ester(biotin-NHS) were prepared. To further amplify the signal of immunoassay,a polymeric horseradishperoxidase conjugated streptavidin(polyHRP-SA) was also introduced to develop a biotin-avidin system based indirect competitive enzyme-linked immunosorbent assay(icELISA). The assay conditions were carefully optimized as follows:the coating antigen concentration was 125 ng/mL,the dilution ratio of biotinylated 3-PBA to Nbs was 1∶2 000,PBST with an ion concentration of 40 mmol/L,a pH 6.4 and a Tween-20 concentration of 0.005% (by volume) was optimal working buffer system,the dilution ratio of polyHRP-SA was 1∶4 000. The developed icELISA showed a half maximal inhibitory concentration(IC,50,) of 1.7 ng/mL,a linear range of 0.37-7.4 ng/mL and a limit of detection(LOD) of 0.15 ng/mL. The proposed Nbs-based icELISA was applied in the detection of 3-PBA in water and human urine samples. For water samples such as lake water, reservoir water,tap water and drinking water,the matrix effects could be easily eliminated by simply filtering and then used for icELISA without further dilution,while for the human urine samples,high temperature acid hydrolysis and solid phase extraction(SPE) purification are benefit to reduce the matrix effects. The spiked recoveries for human urine and water samples were in the range of 87.0%-127% and 78.0%-113%,respectively,with relative standard deviations(RSD) not more than 10%. Results indicated that the proposed method was sensitive and easy to operate,which could be used as an ideal tool for screening 3-PBA residues in environmental and biological samples.
3-苯氧基苯甲酸(3-PBA)拟除虫菊酯纳米抗体(Nb)生物素化信号放大
3-phenoxybenzoic acid(3-PBA)pyrethroid pesticidesnanobody(Nb)biotinylationsignal amplification
Xu R,Wei N,Huang H,Cui J Y,Li F T.Environ. Pollut. Control(徐冉,魏宁,黄虹,崔婧媛,李风亭.环境污染与防治), 2019,41(9):1114-1119.
Demicco A,Cooper K R,Richardson J R,White L A.Toxicol. Sci.,2010,113(1):177-186.
Li B X,Wang A.Asian J. Ecotoxicol. (李蓓茜,王安.生态毒理学报),2015,10(6):29-34.
Song J Y,Liu J.Environ. Sci. Technol. (宋静苡,刘璟.环境科学与技术),2020,43(9):102-110.
Wang X,Gao X L,He B N,Fu Z W.Chin. J. Pestic. Sci. (汪霞,郜兴利,何炳楠,傅正伟.农药学学报), 2017,19(1):1-8.
Ratelle M,Côté J,Bouchard M.Toxicol. Lett., 2015,232(2):369-375.
Mckelvey W,Jacobson J B,Kass D,Barr D B,Davis M,Calafat A M,Aldous K M.Environ. Health Perspect.,2013,121(11/12):1349-1356.
Barr D B,Olsson A O,Wong L Y,Udunka S,Baker S E,Whitehead R D,Magsumbol M S,Williams B L,Needham L L.Environ. Health Perspect.,2010,118(6):742-748.
Morgan M K.Int. J. Hyg. Environ. Health,2015,218(5):479-488.
Ti Q Q,Nie Z G,Yang F C,Yan D Y.Environ. Sci. Technol. (提清清,聂兆广,杨凡昌,颜冬云.环境科学与技术),2017,40(12):240-248.
Deng W Q,Liu S L,Yao K.Acta Microbiol. Sin. (邓维琴,刘书亮,姚开.微生物学报),2015,55(9): 1081-1088.
Aylward L L,Irwin K,St-Amand A,Nong A,Hays S M.Regul. Toxicol. Pharm.,2018,92:29-38.
Bartosz W,Marcin W,Wojciech C.Biomed. Chromatogr.,2014,28(5):708-716.
Li Z F,Su L Q,Wang L,Liu Z G,Gu Z B,Chen J,Wu J.Process Biochem.,2014,49(4):599-603.
Behniwal P K,She J W.Int. J. Environ. Anal. Chem.,2017,97(6):548-562.
Radford S A,Panuwet P,Hunter R E,Barr D B,Ryan P B.J. Agric. Food Chem.,2014,62(29):7085-7091.
Yoshida T.J. Chromatogr. Sci.,2017,55(9):873-881.
Kavvalakis M P,Tzatzarakis M N,Alegakis A K,Vynias D,Tsakalof A K,Tsatsakis A M.Drug Test. Anal.,2014,6(S1):9-16.
Chuang J C,Van Emon J M,Trejo R M,Durnford J.Talanta,2011,83(5):1317-1323.
Wang J P,Yu G C,Sheng W,Shi M,Guo B X,Wang S.J. Agric. Food Chem.,2011,59(7):2997-3003.
Kim H J,Mccoy M R,Majkova Z,Dechant J E,Gee S J,Tabares-Da R S,Gonzalez-Sapienza G G,Hammock B D.Anal. Chem.,2012,84(2):1165-1171.
Liu Y,Wu A H,Hu J,Lin M M,Wen M T,Zhang X,Xu C X,Hu X D,Zhong J F,Jiao L X,Xie Y J,Zhang C Z,Yu X Y,Liang Y,Liu X J.Anal. Biochem.,2015,483:7-11.
Guo T,Zhang Y H,Ma L.Food Sci. (郭婷,张宇昊,马良.食品科学),2013,34(3):294-297.
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