传感器在抗生素检测中的研究进展

江新泽, 常兴, 李原婷, 韩生. 传感器在抗生素检测中的研究进展[J]. 环境化学, 2016, 35(12): 2491-2500. doi: 10.7524/j.issn.0254-6108.2016.12.2016042502
引用本文: 江新泽, 常兴, 李原婷, 韩生. 传感器在抗生素检测中的研究进展[J]. 环境化学, 2016, 35(12): 2491-2500. doi: 10.7524/j.issn.0254-6108.2016.12.2016042502
JIANG Xinze, CHANG Xing, LI Yuanting, HAN Sheng. Research progress on sensors in detection of antibiotics[J]. Environmental Chemistry, 2016, 35(12): 2491-2500. doi: 10.7524/j.issn.0254-6108.2016.12.2016042502
Citation: JIANG Xinze, CHANG Xing, LI Yuanting, HAN Sheng. Research progress on sensors in detection of antibiotics[J]. Environmental Chemistry, 2016, 35(12): 2491-2500. doi: 10.7524/j.issn.0254-6108.2016.12.2016042502

传感器在抗生素检测中的研究进展

  • 基金项目:

    上海高校青年教师培养资助计划(ZZyy15097)和上海应用技术大学引进人才基金(YJ2015-10)资助.

Research progress on sensors in detection of antibiotics

  • Fund Project: Supported by Scientific Research Foundationof SMEC (ZZyy15097)and SIT (YJ2015-10).
  • 摘要: 抗生素滥用所造成的环境污染及食品安全问题日益受到关注.传感器具有灵敏度高、选择性好、易微型化和样品消耗少等优点,已被广泛用于抗生素的分析检测.本文介绍了抗生素的污染现状和主要检测方法,着重阐述了电化学传感器、光学传感器在抗生素检测中的最新研究成果,并对未来研究进行了展望.
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  • [1] 高立红,史亚利,厉文辉,等.抗生素环境行为及其环境效应研究进展[J].环境化学,2013,32(9):1619-1633.

    GAO L H,SHI Y L,LI W H,et al.Environmental behavior and impacts of antibiotics[J].Environmental Chemistry,2013,34(3):1619-1633(in Chinese).

    [2] 黄宏,李圆杏,杨红伟.水环境中抗生素的光降解研究进展[J].环境化学,2013,32(7):1335-1341.

    HUANG H,LI Y X,YANG H W.Research progress on photodegradation of antibiotics in aqueous solution[J].Environmental Chemistry,2013,32(7):1335-1341(in Chinese).

    [3] 章强,辛琦,朱静敏.中国主要水域抗生素污染现状及其生态环境效应研究进展[J].环境化学,2014,33(7):1075-1083.

    ZHANG Q,XIN Q,ZHU J M.The antibiotic contaminations in the main water bodies in China and the associated environmental and human health impacts[J].Environmental Chemistry,2014,33(7):1075-1083(in Chinese).

    [4] TAGHDISI S M,DANESH N M,NAMEGHI M A,et al.A label-free fluorescent aptasensor for selective and sensitive detection of streptomycin in milk and blood serum[J].Food Chemistry,2016,203:145-149.
    [5] CAMARA M,GALLEGO-PICO A,GARCINUNO R M,et al.An HPLC-DAD method for the simultaneous determination of nine β-lactam antibiotics in ewe milk[J].Food Chemistry,2013,141(2):829-834.
    [6] 李鹏,邱月明,蔡慧霞,等.气相色谱-质谱联用法测定动物组织中氯霉素、氟甲砜霉素和甲砜霉素的残留量[J].色谱,2006,24(1):14-18.

    LI P,QIU Y M,CAI H X,et al.Simultaneous determination of chloramphenicol,thiamphenicol,and florfenicol residues in animal tissues by gas chromatography/mass spectrometry[J].Chinese Journal of Chromatography,2006,24(1):14-18(in Chinese).

    [7] ROBERT C,GILLARD N,BRASSEUR P,et al.Rapid multiresidue and multi-class screening for antibiotics and benzimidazoles in feed by ultra high performance liquid chromatography coupled to tandem mass spectrometry[J].Food Control,2015,50:509-515.
    [8] 顿文涛,李勉,毕庆生,等.用于抗生素检测的生物传感器研究进展[J].生物技术通报,2013,6:70-74.DUN W T,LI M,BI Q S,et al.Research progress on biosensors for antibiotic detection[J].Biotechnology Bulletin,2013

    ,6:70-74(in Chinese).

    [9] 刘晓琴,唐洁.基于纳米界面电化学传感器的构建及其应用研究[J].应用化工,2013,42(4):731-733.

    LIU X Q,TANG J.Research on electrochemical sensors based onnano-interface and its application[J].Applied Chemical Industry,2013,42(4):731-733(in Chinese).

    [10] Bakker E.Electrochemical sensors[J].Analytical Chemistry,2004,76(12):3285-3298.
    [11] 陈桂芳,梁志强,李根喜.纳米材料用于构建新型电化学生物传感器的研究进展[J].生物物理学报,2010,26(8):711-725.

    CHEN G F,LIANG Z Q,LI G X.Progress of electrochemical biosensors fabricated with nanomaterials[J].Acta Biophysica Sinica,2010,26(8):711-725(in Chinese).

    [12] 张喜梅,陈玲,李琳,等.纳米材料制备研究现状及其发展方向[J].现代化工,2000,20(7):13-16.

    ZHANG X M,CHEN L,LI L,et al.Current research situation of nanomaterial preparation and its developing trend[J].Modern Chemical Industry,2000,20(7):13-16(in Chinese).

    [13] WANG Z,YU J,GUI R,et al.Carbon nanomaterials-based electrochemical aptasensors[J].Biosensors&Bioelectronics,2015,79:136-149.
    [14] MORAES F C,SILVA T A,CESARINO I,et al.Antibiotic detection in urine using electrochemical sensors based on vertically aligned carbon nanotubes[J].Electroanalysis,2013,25(9):2092-2099.
    [15] 刘皓楠,刘艳.碳纳米复合材料在电化学生物传感器中的研究进展[J].化学传感器,2014,34(3):22-31.

    LIU H N,LIU Y.Applications of carbon nanocomposites in electrochemical biosensors[J].Chemical Sensors,2014,34(3):22-31(in Chinese).

    [16] BOROWIEC J,WANG R,ZHU L,et al.Synthesis of nitrogen-doped grapheme nanosheets decorated with gold nanoparticles as an improved sensor for electrochemical determination of chloramphenicol[J].Electrochimica Acta,2013,99:138-144.
    [17] SAHA K,AGASTI S S,KIM C,et al.Gold nanoparticles in chemical and biological sensing[J].Chemical Reviews,2012,112(5):2739-2779.
    [18] ASADOLLAHI-BABOLI M,MANI-VARNOSFADERANI A.Rapid and simultaneous determination of tetracycline and cefixime antibiotics by mean of gold nanoparticles-screen printed gold electrode and chemometrics tools[J].Measurement,2014,47(1):145-149.
    [19] 李原婷,李大伟,宋伟,等.多壁碳纳米管修饰丝网印刷电极同时检测水中苯二酚异构体的研究[J].环境科学,2011,32(2):488-493.

    LI Y T,LI D W,SONG W,et al.Investigation on simultaneous determination of dihydroxybenzene isomers in water samples using multi-walled carbon nanotube modified screen-printed electrode[J].Chinese Journal of Environmental Science,2011,32(2):488-493(in Chinese).

    [20] WANG J.Nanoparticle-based electrochemical bioassays of proteins[J].Electroanalysis,2007,19(19):769-776.
    [21] ZHANG,J L,TAN X C,ZHAO D D,et al.Fe3O4magnetic nanoparticles modified electrode as a sensor for determination of nimesulide[J].Chemical Research in Chinese Universities,2011,27(4):566-569.
    [22] LI Y,ZHANG L,LI M,et al.Adisposable biosensor based on immobilization of laccase with silica spheres on the MWCNTs-doped screen-printed electrode[J].Chemistry Central Journal,2012,6(1):103.
    [23] 刘佳,殷立峰,代云容,等.电化学酶传感器在环境污染监测中的应用[J].化学进展,2012,24(1):131-143.

    LIU J,YIN L F,DAI Y R,et al.Application of electrochemical enzyme biosensor in environmental pollution monitoring[J].Progress in Chemistry,2012,24(1):131-143(in Chinese).

    [24] ISMAIL F,ADELOJU S B,MOLINE A N.Fabrication of a single layer and bilayer potentiometric biosensors for penicillin by galvanostatic entrapment of penicillinase into polypyrrolefilms[J].Electroanalysis,2014,26(12):2607-2618.
    [25] ISMAIL F,ADELOJU S B.The use of poly (vinyl alcohol) to cross-link penicillinase for the fabrication of a penicillin potentiometric biosensor[J].Electroanalysis,2014,26(12):2701-2709.
    [26] PRADO T M D,FOGUEL M V,GONCALVES L M,et al.β-Lactamase-based biosensor for the electrochemical determination of benzylpenicillin in milk[J].Sensors&Actuators B Chemical,2015,210(254):254-258.
    [27] WU Y,TANG L,HUANG L,et al.A low detection limit penicillin biosensor based on single grapheme nanosheets preadsorbed with hematein/ionic liquids/penicillinase[J].Materials Science&Engineering C,2014,39:92-99.
    [28] 汤琳,曾光明,黄国和,等.免疫传感器用于环境中痕量有害物质检测的研究进展[J].环境科学,2004,25(4):170-176.

    TANG L,ZENG G M,HUANG G H,et al.Study progress on determination of environmental trace toxicants by immunosensor[J].Chinese Journal of Environmental Science,2004,25(4):170-176(in Chinese).

    [29] WEI Q,ZHAO Y,DU B,et al.Ultrasensitive detection of kanamycin in animal derived foods by label-free electrochemical immunosensor[J].Food Chemistry,2012,134(3):1601-1606.
    [30] KIM B,LIM D,JIN H J,et al.Family-selective detection of antibiotics using antibody-functionalized carbon nanotube sensors[J].Sensors&Actuators B Chemical,2012,166(10):193-199.
    [31] WU X,KUANG H,HAO C,et al.Paper supported immunosensor for detection of antibiotics[J].Biosensors&Bioelectronics,2012,33(1):309-312.
    [32] KIM Y J,KIM Y S,NIAZI J H,et al.Electrochemical aptasensor for tetracycline detection[J].Bioprocess&Biosystems Engineering,2010,33(1):31-37.
    [33] ZHOU L,LI D,GAI L,et al.Electrochemical aptasensor for the detection of tetracycline with multi-walled carbon nanotubes amplification[J].Sensors&Actuators B Chemical,2012,162(1):201-208.
    [34] CHEN D,YAO D,XIE C,et al.Development of an aptasensor for electrochemical detection of tetracycline[J].Food Control,2014,42(3):109-115.
    [35] YADAV S K,AGRAWAL B,CHANDRA P,et al.In vitro chloramphenicol detection in a Haemophilus influenza model using an aptamer-polymer based electrochemical biosensor[J].Biosensors&Bioelectronics,2014,55(4):337-342.
    [36] SCHOUKROUN-BARNES L R,WAGAN S,WHITE R J,et al.Enhancing the analytical performance of eectrochemical RNA aptamer-based sensors for sensitive detection of aminoglycoside antibiotics[J].Analytical Chemistry,2014,86(2):1131-1137.
    [37] KAZUYPSHI K,KOJI S.Theoretical understanding of an absorption-based surface plasmon resonance sensor based on Kretchmann's theory[J].Analytical Chemistry,2002,74(3):696-701.
    [38] 刘瑾,王文,张婉洁,等.基于表面等离子体共振传感器信号放大的抗生素残留检测[J].分析试验室,2012,31(11):5-9.

    LIU J,WANG W,ZHANG W J,et al.Detection of antibiotic residues using signal amplification assay based on SPR sensors[J].Chinese Journal of Analysis Laboratory,2012,31(11):5-9(in Chinese).

    [39] FERNANDEZ F,HEGNEROVA K,PILIARIK M,et al.A label-free and portable multichannel surface plasmon resonance immunesensor for on site analysis of antibiotics in milk samples[J].Biosensors and Bioelectronics,2010,26(4):1231-1238.
    [40] WU S,ZHANG H,SHI Z,et al.Aptamer-based fluorescence biosensor for chloramphenicol determination using upconversion nanoparticles[J].Food Control,2015,50(4):597-604.
    [41] LI R Z,LIU Y,CHENG L,et al.Photoelectrochemical aptasensing of kanamycin using visible light-activated carbon nitride and grapheneoxide nanocomposites[J].Analytical Chemistry,2014,86(19):9372-9375.
    [42] CHEN A,JIANG X,ZHANG W,et al.High sensitive rapid visual detection of sulfadimethoxine by label-free aptasensor[J].Biosensors&Bioelectronics,2013,42(1):419-425.
    [43] WANG S,YONG W,LIU J,et al.Development of an indirect competitive assay-based aptasensor for highly sensitive detection of tetracycline residue in honey[J].Biosensors&Bioelectronics,2014,57(21):192-198.
    [44] KIM C H,LEE L P,MIN J R,et al.An indirect competitive assay-based aptasensor for detection of oxytetracycline in milk[J].Biosensors&Bioelectronics,2014,51(1):426-430.
    [45] 马君,孔德地,韩晓红,等.应用银溶胶膜探测水中抗生素的表面增强拉曼光谱研究[J].光谱学与光谱分析,2013,33(10):2688-2693.

    MA J,KONG D D,HAN X H,et al.Detection of antibiotics in water using silver colloid films as substrate of surface-enhanced Raman scattering[J].Spectroscopy and Spectral Analysis,2013,33(10):2688-2693(in Chinese).

    [46] LEE S,KUMAR P,HU Y,et al.Graphene laminated gold bipyramids as sensitivedetection platforms for antibiotic molecules[J].Chemical Communications,2015,51(85):15494-15497.
    [47] CHEN J,FENG S L,GAO F,et al.Fabrication of SERS-active substrates using silvernanofilm-coated porous anodic aluminum oxidefor detection of antibiotics[J].Journal of Food Science,2015,82(1):162.
    [48] LI Y T,QU L L,LI D W,et al.Rapid and sensitive in-situ detection of polar antibiotics in water using a disposable Ag-graphene sensor based on electrostatic preconcentration and surface-enhanced Raman spectroscopy[J].Biosensors and Bioelectronics,2013,43:94-100.
    [49] SUN M,DING B,LIN J,et al.Three-dimensional sensing membrane functionalized quartz crystal microbalance biosensor for chloramphenicol detection in real time[J].Sensors&Actuators B Chemical,2011,160(1):428-434.
    [50] HOU H,BAI X,XING C,et al.Aptamer-based cantilever array sensors for oxytetracycline detection[J].Analytical Chemistry,2013,85(4):2010-2014.
    [51] BAI X,HOU H,ZHANG B,et al.Label-free detection of kanamycin using aptamer-based cantilever array sensor[J].Biosensors&Bioelectronics,2014,56c (18):112-116.
    [52] MA X H,LI J P,WANG C,et al.A review on bio-macromolecular imprinted sensors and their applications[J].Chinese Journal of Analytical Chemistry,2016,44(1):152-159.
    [53] ZDUNEK J,BENITO-PENA E,LINARES A,et al.Surface-imprinted nanofilaments for europium-amplified luminescent detection of fluoroquinoloneantibiotics[J].Chemistry-A European Journal,2013,19(31):10209-10216.
    [54] KARA M,UZUN L,KOLAYLI S,et al.Combining molecular imprinted nanoparticles with surface plasmonresonance nanosensor for chloramphenicol detection in honey[J].Journal of Applied Polymer Science,2013,129(4):2273-2279.
    [55] GAO F,FENG S,CHEN Z,et al.Detection and quantification of chloramphenicol in milk and honey using molecularly imprinted polymers:Canadian penny-based SERS nano-biosensor[J].Journal of Food Science,2014,79(12):N2542-N2549.
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出版历程
  • 收稿日期:  2016-04-25
  • 刊出日期:  2016-12-15
江新泽, 常兴, 李原婷, 韩生. 传感器在抗生素检测中的研究进展[J]. 环境化学, 2016, 35(12): 2491-2500. doi: 10.7524/j.issn.0254-6108.2016.12.2016042502
引用本文: 江新泽, 常兴, 李原婷, 韩生. 传感器在抗生素检测中的研究进展[J]. 环境化学, 2016, 35(12): 2491-2500. doi: 10.7524/j.issn.0254-6108.2016.12.2016042502
JIANG Xinze, CHANG Xing, LI Yuanting, HAN Sheng. Research progress on sensors in detection of antibiotics[J]. Environmental Chemistry, 2016, 35(12): 2491-2500. doi: 10.7524/j.issn.0254-6108.2016.12.2016042502
Citation: JIANG Xinze, CHANG Xing, LI Yuanting, HAN Sheng. Research progress on sensors in detection of antibiotics[J]. Environmental Chemistry, 2016, 35(12): 2491-2500. doi: 10.7524/j.issn.0254-6108.2016.12.2016042502

传感器在抗生素检测中的研究进展

  • 1. 上海应用技术大学化学与环境工程学院, 上海, 201418
基金项目:

上海高校青年教师培养资助计划(ZZyy15097)和上海应用技术大学引进人才基金(YJ2015-10)资助.

摘要: 抗生素滥用所造成的环境污染及食品安全问题日益受到关注.传感器具有灵敏度高、选择性好、易微型化和样品消耗少等优点,已被广泛用于抗生素的分析检测.本文介绍了抗生素的污染现状和主要检测方法,着重阐述了电化学传感器、光学传感器在抗生素检测中的最新研究成果,并对未来研究进行了展望.

English Abstract

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