Research progress on electrochemical detection of quinolone antibiotics in animal-derived food

  • ZHU Yiting ,
  • HAN Jing ,
  • ZHANG Yanan ,
  • ZENG Qiuyan ,
  • CHEN Shujuan
Expand
  • (College of Food Science, Sichuan Agricultural University, Ya′an 625014, China)

Received date: 2022-04-18

  Revised date: 2022-09-19

  Online published: 2023-09-12

Abstract

With the prosperity of the economy and the improvement of people′s living standards, the quality and safety of animal-derived food have attracted much attention. Fluoroquinolone antibiotics (FQs) are widely used in veterinary medicines and animal farming as synthetic drugs, but their residue in animals and humans can cause adverse effects and damage. Compared with the traditional method of detecting FQs residues, the electrochemical detection method has obvious advantages such as fast detection, easy miniaturization, and in-line detection. This paper reviewed the research progress of electrochemical sensors in FQs residue detection in recent years, analyzed the mechanism and advantages and disadvantages of different types of electrochemical sensors, focused on the application of electrochemical sensor detection technology in animal-derived foods (such as milk, livestock and poultry meat and aquatic products, etc.), and looked forward to the challenges and development prospects in this field, providing a reference for the prevention and control and detection of FQs in animal-derived foods in China.

Cite this article

ZHU Yiting , HAN Jing , ZHANG Yanan , ZENG Qiuyan , CHEN Shujuan . Research progress on electrochemical detection of quinolone antibiotics in animal-derived food[J]. Food and Fermentation Industries, 2023 , 49(16) : 340 -349 . DOI: 10.13995/j.cnki.11-1802/ts.031801

References

[1] PHAM T D M, ZIORA Z M, BLASKOVICH M A T. Quinolone antibiotics[J]. Medicinal Chemistry Communication, 2019, 10(10):1719-1739.
[2] MARIS A S, MODY P, BREWER D J, et al. The fluoroquinolones: An update for the clinical microbiologist[J]. Clinical Microbiology Newsletter, 2021, 43(12):97-107.
[3] VOUGA RIBEIRO N, GOUVEIA MELO R, GUERRA N C, et al. Fluoroquinolones are associated with increased risk of aortic aneurysm or dissection: Systematic review and meta-analysis[J]. Seminars in Thoracic and Cardiovascular Surgery, 2021, 33(4):907-918.
[4] 李倩, 王甲, 张玉洁, 等. 动物性食品中喹诺酮类药物残留检测方法研究进展[J]. 食品安全质量检测学报, 2021, 12(8):3016-3022.
LI Q, WANG J, ZHANG Y J, et al. Research progress on determination methods of quinolone residues in animal food[J]. Journal of Food Safety & Quality, 2021, 12(8):3016-3022.
[5] KANDA M, KUSANO T, KANAI S, et al. Rapid determination of fluoroquinolone residues in honey by a microbiological screening method and liquid chromatography[J]. Journal of Aoac International, 2010, 93(4):1331-1339.
[6] JEON M, PAENG I R. Quantitative detection of tetracycline residues in honey by a simple sensitive immunoassay[J]. Analytica Chimica Acta, 2008, 626(2):180-185.
[7] WENG R, SUN L S, JIANG L P, et al. Electrospun graphene oxide-doped nanofiber-based solid phase extraction followed by high-performance liquid chromatography for the determination of tetracycline antibiotic residues in food samples[J]. Food Analytical Methods, 2019, 12(7):1594-1603.
[8] ZOU W, WEN X K, XIE C H, et al. LC-Q-TOF-MS based plasma metabolomic profile of subclinical pelvic inflammatory disease: A pilot study[J]. Clinica Chimica Acta, 2018, 483:164-169.
[9] KIMMEL D W, LEBLANC G, MESCHIEVITZ M E, et al. Electrochemical sensors and biosensors[J]. Analytical Chemistry, 2012, 84(2):685-707.
[10] 饶钧玥, 吴任之, 曹芸榕, 等. 基于酶的电化学生物传感器在食品检测中应用的研究进展[J]. 食品与发酵工业, 2022, 48(18):337-344.
RAO J Y, WU R Z, CAO Y R, et al. Research progress on the application of enzyme-based electrochemical biosensors in food detection[J]. Food and Fermentation Industries, 2022, 48(18):337-344.
[11] YE C Z, CHEN X G, ZHANG D, et al. Study on the properties and reaction mechanism of polypyrrole@norfloxacin molecularly imprinted electrochemical sensor based on three-dimensional CoFe-MOFs/AuNPs[J]. Electrochimica Acta, 2021, 379:138174.
[12] ANTILÉN M, VALENCIA C, PERALTA E, et al. Enrofloxacin behavior in presence of soil extracted organic matter: An electrochemical approach[J]. Electrochimica Acta, 2017, 244:104-111.
[13] MA Z W, LIU H Q, LÜ Q F. Porous biochar derived from tea saponin for supercapacitor electrode: Effect of preparation technique[J]. Journal of Energy Storage, 2021, 40:102773.
[14] ROSE M, KORENBLIT Y, KOCKRICK E, et al. Hierarchical micro- and mesoporous carbide-derived carbon as a high-performance electrode material in supercapacitors[J]. Small, 2011, 7(8):1108-1117.
[15] MADHU R, VEERAMANI V, CHEN S M. Heteroatom-enriched and renewable banana-stem-derived porous carbon for the electrochemical determination of nitrite in various water samples[J]. Scientific Reports, 2014, 4:4679.
[16] PHAM V L, KIM D G, KO S O. Catalytic degradation of acetaminophen by Fe and N Co-doped multi-walled carbon nanotubes[J]. Environmental Research, 2021, 201:111535.
[17] 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.
[18] YILDIZ G, BOLTON-WARBERG M, AWAJA F. Graphene and graphene oxide for bio-sensing: General properties and the effects of graphene ripples[J]. Acta Biomaterialia, 2021, 131:62-79.
[19] FARIA L, PEREIRA J, AZEVEDO G, et al. Square-wave voltammetry determination of ciprofloxacin in pharmaceutical formulations and milk using a reduced graphene oxide sensor[J]. Journal of the Brazilian Chemical Society, 2019, 30(9): 1947-1954.
[20] SANT’ANNA M V S, CARVALHO S W M M, GEVAERD A, et al. Electrochemical sensor based on biochar and reduced graphene oxide nanocomposite for carbendazim determination[J]. Talanta, 2020, 220:121334.
[21] KAYA H O, CETIN A E, AZIMZADEH M, et al. Pathogen detection with electrochemical biosensors: Advantages, challenges and future perspectives[J]. Journal of Electroanalytical Chemistry, 2021, 882:114989.
[22] MONTEIRO T, ALMEIDA M G. Electrochemical enzyme biosensors revisited: Old solutions for new problems[J]. Critical Reviews in Analytical Chemistry, 2019, 49(1):44-66.
[23] 韩志钟, 吴月婷, 周莹, 等. 青霉素酶-氧化苏木精修饰Au/ZnO/石墨烯基青霉素电化学传感器的研制[J]. 分析化学, 2016, 44(3):377-384.
HAN Z Z, WU Y T, ZHOU Y, et al. A low detection limit penicillin electrochemical biosensor based on penicillinase-hematein Au/ZnO/single graphene nanosheets[J]. Chinese Journal of Analytical Chemistry, 2016, 44(3):377-384.
[24] CARDOSO A R, CARNEIRO L P T, CABRAL-MIRANDA G, et al. Employing bacteria machinery for antibiotic detection: Using DNA gyrase for ciprofloxacin detection[J]. Chemical Engineering Journal, 2021, 409:128135.
[25] PINACHO D, SÁNCHEZ-BAEZA F, PIVIDORI M I, et al. Electrochemical detection of fluoroquinolone antibiotics in milk using a magneto immunosensor[J]. Sensors, 2014, 14(9):15965-15980.
[26] HAO S A, SUN X X, ZHANG H, et al. Recent development of biofuel cell based self-powered biosensors[J]. Journal of Materials Chemistry B, 2020, 8(16):3393-3407.
[27] 姜晓瑜, 张旭志, 杨倩倩, 等. 微生物生长传感器药敏试验方法与微量肉汤稀释法的对比研究[J]. 渔业科学进展, 2021, 42(1):38-46.
JIANG X Y, ZHANG X Z, YANG Q Q, et al. A comparative study of microbial growth sensor and broth microdilution for antibiotic susceptibility testing[J]. Progress in Fishery Sciences, 2021, 42(1):38-46.
[28] PELLEGRINI G E, CARPICO G, CONI E. Electrochemical sensor for the detection and presumptive identification of quinolone and tetracycline residues in milk[J]. Analytica Chimica Acta, 2004, 520(1-2):13-18.
[29] SHEN J W, LI Y B, GU H S, et al. Recent development of sandwich assay based on the nanobiotechnologies for proteins, nucleic acids, small molecules, and ions[J]. Chemical Reviews, 2014, 114(15):7631-7677.
[30] LI F Q, YU Z G, HAN X D, et al. Electrochemical aptamer-based sensors for food and water analysis: A review[J]. Analytica Chimica Acta, 2019, 1051:1-23.
[31] SONG Y P, XU M R, LIU X, et al. A label-free enrofloxacin electrochemical aptasensor constructed by a semiconducting CoNi-based metal-organic framework (MOF)[J]. Electrochimica Acta, 2021, 368:137609.
[32] MA Y, LI J Y, WANG L S. Porous carbon derived from ZIF-8 modified molecularly imprinted electrochemical sensor for the detection of tert-butyl hydroquinone (TBHQ) in edible oil[J]. Food Chemistry, 2021, 365:130462.
[33] KARTHIKA P, SHANMUGANATHAN S, VISWANATHAN S, et al. Molecularly imprinted polymer-based electrochemical sensor for the determination of endocrine disruptor bisphenola in bovine milk[J]. Food Chemistry, 2021, 363:130287.
[34] YAN C L, ZHANG R X, CHEN Y J, et al. Electrochemical determination of enrofloxacin based on molecularly imprinted polymer via one-step electro-copolymerization of pyrrole and o-phenylenediamine[J]. Journal of Electroanalytical Chemistry, 2017, 806:130-135.
[35] 张建伟, 孟蕾, 吴志明, 等. 牛奶中兽药残留检测前处理技术研究进展[J]. 食品安全质量检测学报, 2021, 12(22):8745-8751.
ZHANG J W, MENG L, WU Z M, et al. Research progress of pretreatment technology for detection of veterinary drug residues in milk[J]. Journal of Food Safety & Quality, 2021, 12(22):8745-8751.
[36] FARIA L V, LISBOA T P, ALVES G F, et al. Electrochemical study of different sensors for simple and fast quantification of ciprofloxacin in pharmaceutical formulations and bovine milk[J]. Electroanalysis, 2020, 32(10):2266-2272.
[37] YUAN Y H, ZHANG F F, WANG H Y, et al. A sensor based on Au nanoparticles/carbon nitride/graphene composites for the detection of chloramphenicol and ciprofloxacin[J]. ECS Journal of Solid State Science and Technology, 2018, 7(12): M201-M208.
[38] GISSAWONG N, SRIJARANAI S, BOONCHIANGMA S, et al. An electrochemical sensor for voltammetric detection of ciprofloxacin using a glassy carbon electrode modified with activated carbon, gold nanoparticles and supramolecular solvent[J]. Microchimica Acta, 2021, 188(6):208.
[39] 孙玉奉. 纳米材料基电化学传感器的构建及其对抗生素的检测方法与机理研究[D]. 泰安: 山东农业大学, 2021.
SUN Y F. Studying on the construction of electrochemical sensors based on nanomaterial for antibiotics detection and mechanism[D]. Taian: Shandong Agricultural University, 2021.
[40] FARIA L V, FARIAS D M, LISBOA T P, et al. Batch injection analysis with amperometric detection for fluoroquinolone determination in urine, pharmaceutical formulations, and milk samples using a reduced graphene oxide-modified glassy carbon electrode[J]. Analytical and Bioanalytical Chemistry, 2022, 414(18):5309-5318.
[41] HUANG J Y, BAO T, HU T X, et al. Voltammetric determination of levofloxacin using a glassy carbon electrode modified with poly(o-aminophenol) and graphene quantum dots[J]. Microchimica Acta, 2017, 184(1):127-135.
[42] LU S Y, WANG S L, WU P, et al. A composite prepared from covalent organic framework and gold nanoparticles for the electrochemical determination of enrofloxacin[J]. Advanced Powder Technology, 2021, 32(6):2106-2115.
[43] LIU B, LI M, ZHAO Y S, et al. A sensitive electrochemical immunosensor based on PAMAM dendrimer-encapsulated Au for detection of norfloxacin in animal-derived foods[J]. Sensors, 2018, 18(6):1946.
[44] ABNOUS K, DANESH N M, ALIBOLANDI M, et al. A novel electrochemical aptasensor for ultrasensitive detection of fluoroquinolones based on single-stranded DNA-binding protein[J]. Sensors and Actuators B: Chemical, 2017, 240:100-106.
[45] HU X B, GOUD K Y, KUMAR V S, et al. Disposable electrochemical aptasensor based on carbon nanotubes-V2O5-chitosan nanocomposite for detection of ciprofloxacin[J]. Sensors and Actuators B: Chemical, 2018, 268:278-286.
[46] TAGHDISI HEIDARIAN S M, TAVANAEE SANI A, DANESH N M, et al. A novel electrochemical approach for the ultrasensitive detection of fluoroquinolones based on a double-labelled aptamer to surpass complementary strands of aptamer lying flat[J]. Sensors and Actuators B: Chemical, 2021, 334:129632.
[47] SURYA S G, KHATOON S, LAHCEN A A, et al. A chitosan gold nanoparticles molecularly imprinted polymer based ciprofloxacin sensor[J]. RSC Advances, 2020, 10(22):12823-12832.
[48] KUMAR S, KARFA P, MAJHI K C, et al. Photocatalytic, fluorescent BiPO4@Graphene oxide based magnetic molecularly imprinted polymer for detection, removal and degradation of ciprofloxacin[J]. Materials Science and Engineering: C, 2020, 111:110777.
[49] 陈萌, 刘艺静, 郭兴洲, 等. 超分子溶剂在样品前处理与检测技术中的应用研究进展[J]. 分析测试学报, 2022, 41(1):22-31.
CHEN M, LIU Y J, GUO X Z, et al. Advances on applications of supramolecular solvents in sample pretreatment and analytical techniques[J]. Journal of Instrumental Analysis, 2022, 41(1):22-31.
[50] 刘九生. 国际禽肉消费市场需求分析[J]. 中国畜牧业, 2020(10):42-44.
LIU J S. Analysis on international demand of poultry meat consumption market[J]. China Animal Industry, 2020(10):42-44.
[51] 胡玥, 王月, 吴可心, 等. 纳米氧化铜修饰电极的制备及对盐酸二氟沙星检测[J]. 分子科学学报, 2020, 36(5):412-416.
HU Y, WANG Y, WU K X, et al. Preparation of nano-copper oxide modified electrode and detection of difluoxacin hydrochloride[J]. Journal of Molecular Science, 2020, 36(5):412-416.
[52] 赖木深. 基于量子点的抗菌药电化学和荧光传感研究[D]. 广州: 广东药科大学, 2019.
LAI M S. Studies on electrochemical and fluorescence sensing of antibacterial agents based on quantum dots[D]. Guangzhou: Guangdong Pharmaceutical University, 2019.
[53] 何雅雯. 磁性纳米材料电化学转化方法在家禽产品抗生素残留检测的应用[D]. 杭州: 浙江大学, 2020.
HE Y W. Magnetic nanoparticle based electrochemical conversion method for detection of antibiotic residues in poultry products[D]. Hangzhou: Zhejiang University, 2020.
[54] 秦思楠, 唐录华, 高文惠. 恩诺沙星分子印迹电化学传感器的制备及其在食品快速检测中的应用[J]. 中国生物工程杂志, 2019, 39(3):65-74.
QIN S N, TANG L H, GAO W H. Preparation of enrofloxacin molecular imprinting electro-chemical sensor and its application to rapid detection of foods[J]. China Biotechnology, 2019, 39(3):65-74.
[55] 杨阿喜, 胡效亚. 鲫鱼体内恩诺沙星的伏安法测定[J]. 食品科技, 2011, 36(12):302-305; 309.
YANG A X, HU X Y. Determination of enrofloxacin in crucian samples by voltametry[J]. Food Science and Technology, 2011, 36(12):302-305; 309.
[56] 陈宏, 王悦, 张文婷, 等. 金属有机骨架材料构建环丙沙星电化学传感器的研究[J]. 化学通报, 2021, 84(2):167-171.
CHEN H, WANG Y, ZHANG W T, et al. Determination of ciprofloxacin by electrochemical sensor based on metal organic framework material[J]. Chemistry, 2021, 84(2):167-171.
[57] ZHU M F, LI R, LAI M S, et al. Copper nanoparticles incorporating a cationic surfactant-graphene modified carbon paste electrode for the simultaneous determination of gatifloxacin and pefloxacin[J]. Journal of Electroanalytical Chemistry, 2020, 857:113730.
[58] 王倩倩. 新型电化学适配体传感器的制备及其在食品安全检测中的应用研究[D]. 济南: 山东师范大学, 2019.
WANG Q Q. Preparation of novel electrochemical aptamer sensor and its application in food safety detection[D]. Jinan: Shandong Normal University, 2019.
[59] CHEN J L, TAN L J, QU K M, et al. Novel electrochemical sensor modified with molecularly imprinted polymers for determination of enrofloxacin in marine environment[J]. Microchimica Acta, 2022, 189(3):95.
[60] 张羽. 修饰电极电化学方法检测水产品中渔药残留[D]. 锦州: 渤海大学, 2017.
ZHANG Y. Determination of fishery drugs residues in aquatic products by modified electrode electrochemical method[D]. Jinzhou: Bohai University, 2017.
Outlines

/