Application progress of bionic imprinting sensor in the rapid detection of food safety

  • YU Jianghan ,
  • LI Zhaozhou ,
  • CHEN Xiujin ,
  • WANG Yao ,
  • LI Fang ,
  • LI Peiyan ,
  • GAO Hongli ,
  • NIU Huawei ,
  • YU Huichun ,
  • YUAN Yunxia ,
  • YIN Yong ,
  • LI Daomin ,
  • LYU Pu
Expand
  • 1(College of Food and Bioengineering, Henan University of Science and Technology, Luoyang 471000, China)
    2(National Demonstration Center for Experimental Food Processing and Safety Education, Luoyang 471000, China)
    3(Henan International Joint Laboratory of Food Green Processing and Quality Safety Control, Luoyang 471000, China)

Received date: 2022-01-12

  Revised date: 2022-03-03

  Online published: 2023-01-06

Abstract

Food safety is an important strategic issue concerning the national economy and people′s livelihood. In order to ensure food safety, it is of great significance to establish highly efficient analysis methods to identify hazardous substances. Molecular imprinting is a biomimetic technology that simulates the specific recognition of biological macromolecules. The biomimetic imprinted sensor, which is based on molecular imprinting and high-sensitivity sensing detection method, has the advantages of fast response, strong tolerance, good specificity and low cost, and has become a research hotspot in the field of rapid food safety detection. Biomimetic imprinted sensors have been widely used in qualitative and quantitative monitoring of hazardous substances in meat, eggs, dairy, fruits, vegetables, and drinking water. This paper introduced the construction methods of bionic imprinting sensors, including coating, in-situ polymerization, sol-gel, electropolymerization, and surface imprinting methods. Moreover, it summarized the applications of electrochemical, optical, quality, and nanoenzyme biomimetic imprinting sensors in the monitoring of pesticide and veterinary drug residues, prohibited additives, heavy metals, microorganisms, and toxins. It investigated the effects of different samples on the detection performance of biomimetic imprinting sensors and proposes the development direction of biomimetic imprinting sensors. As a kind of affinity bionic recognition technology, bionic imprinting sensor integrates many disciplines and fields and has broad prospects. The research and progress in this field will enrich the basic theory of rapid food safety detection and expand its practical application value.

Cite this article

YU Jianghan , LI Zhaozhou , CHEN Xiujin , WANG Yao , LI Fang , LI Peiyan , GAO Hongli , NIU Huawei , YU Huichun , YUAN Yunxia , YIN Yong , LI Daomin , LYU Pu . Application progress of bionic imprinting sensor in the rapid detection of food safety[J]. Food and Fermentation Industries, 2022 , 48(24) : 327 -336 . DOI: 10.13995/j.cnki.11-1802/ts.030784

References

[1] ELFADIL D, LAMAOUI A, DELLA PELLE F, et al.Molecularly imprinted polymers combined with electrochemical sensors for food contaminants analysis[J].Molecules(Basel,Switzerland), 2021, 26(15):4 607.
[2] YANG H, LIU H B, TANG Z S, et al.Synthesis, performance, and application of molecularly imprinted membranes:A review[J].Journal of Environmental Chemical Engineering, 2021, 9(6):106352.
[3] 杜晓芳, 李兆周, 陈秀金, 等.喹诺酮类药物印迹仿生抗体的研制及应用进展[J].化工进展, 2020, 39(4):1 447-1 457.
DU X F, LI Z Z, CHEN X J, et al.Development and application progress of quinolone imprinted biomimetic antibody[J].Chemical Industry and Engineering Progress, 2020, 39(4):1 447-1 457.
[4] 李欣培, 王秀君, 徐斐, 等.组胺表面分子印迹聚合物的制备及其在酸奶中的应用[J].食品与发酵工业, 2021, 47(11):1-7.
LI X P, WANG X J, XU F, et al.Preparation of histamine surface molecularly imprinted polymer and its application in yoghurt[J].Food and Fermentation Industries, 2021, 47(11):1-7.
[5] 杨红, 刘晓艳, 白卫东, 等.分子印迹技术在食品安全检测中的应用进展[J].食品科学, 2022,43(1):362-371.
YANG H, LIU X Y, BAI W D, et al.Progress in application of molecular imprinting technology in food safety detection[J].Food Science, 2022,43(1):362-371.
[6] CRAPNELL R D, HUDSON A, FOSTER C W, et al.Recent advances in electrosynthesized molecularly imprinted polymer sensing platforms for bioanalyte detection[J].Sensors(Basel,Switzerland), 2019, 19(5):1 204-1 232.
[7] EKMEN E, BILICI M, TURAN E, et al.Surface molecularly-imprinted magnetic nanoparticles coupled with SERS sensing platform for selective detection of malachite green[J].Sensors and Actuators B:Chemical, 2020, 325:128787.
[8] MAHMOUDPOUR M, TORBATI M, MOUSAVI M M, et al.Nanomaterial-based molecularly imprinted polymers for pesticides detection:Recent trends and future prospects[J].TrAC Trends in Analytical Chemistry, 2020, 129:115943.
[9] LIU Z P, JIN M L, LU H, et al.Molecularly imprinted polymer decorated 3D-framework of functionalized multi-walled carbon nanotubes for ultrasensitive electrochemical sensing of norfloxacin in pharmaceutical formulations and rat plasma[J].Sensors and Actuators B:Chemical, 2019, 288:363-372.
[10] 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.
[11] GUI R J, JIN H, GUO H J, et al.Recent advances and future prospects in molecularly imprinted polymers-based electrochemical biosensors[J].Biosensors and Bioelectronics, 2018, 100:56-70.
[12] CHAI R, KAN X W.Au-polythionine nanocomposites:A novel mediator for bisphenol A dual-signal assay based on imprinted electrochemical sensor[J].Analytical and Bioanalytical Chemistry, 2019, 411(17):3 839-3 847.
[13] MOEIN M M.Advancements of chiral molecularly imprinted polymers in separation and sensor fields:A review of the last decade[J].Talanta, 2021, 224:121794.
[14] LIU G Y, HUANG X D, LI L Y, et al.Recent advances and perspectives of molecularly imprinted polymer-based fluorescent sensors in food and environment analysis[J].Nanomaterials(Basel,Switzerland), 2019, 9(7):1 030-1 049.
[15] ZHOU J R, LI B W, QI A J, et al.ZnSe quantum dot based ion imprinting technology for fluorescence detecting cadmium and lead ions on a three-dimensional rotary paper-based microfluidic chip[J].Sensors and Actuators B:Chemical, 2020, 305:127462.
[16] 马嘉欣, 连子如, 何橙, 等.新型量子点基分子印迹荧光传感器在快速检测中的应用[J].色谱, 2021, 39(8):775-780.
MA J X, LIAN Z R, HE C, et al.Application of novel quantum dot-based molecularly imprinted fluorescence sensor in rapid detection[J].Chinese Journal of Chromatography, 2021, 39(8):775-780.
[17] WANG J X, DAI J D, XU Y Q, et al.Molecularly imprinted fluorescent test strip for direct, rapid, and visual dopamine detection in tiny amount of biofluid[J].Small(Weinheim an Der Bergstrasse,Germany), 2019, 15(1):e1803913.
[18] AKGÖNÜLLÜ S, ARMUTCU C, DENIZLI A.Molecularly imprinted polymer film based plasmonic sensors for detection of ochratoxin A in dried fig[J].Polymer Bulletin, 2022,79(6):4 049-4 067.
[19] CHEN C, WANG X M, WATERHOUSE G I N, et al.A surface-imprinted surface-enhanced Raman scattering sensor for histamine detection based on dual semiconductors and Ag nanoparticles[J].Food Chemistry, 2022, 369:130971.
[20] CAPOFERRI D, ÁLVAREZ-DIDUK R, DEL CARLO M, et al.Electrochromic molecular imprinting sensor for visual and smartphone-based detections[J].Analytical Chemistry, 2018, 90(9):5 850-5 856.
[21] CAKIR O, BAKHSHPOUR M, YILMAZ F, et al.Novel QCM and SPR sensors based on molecular imprinting for highly sensitive and selective detection of 2,4-dichlorophenoxyacetic acid in apple samples[J].Materials Science and Engineering:C, 2019, 102:483-491.
[22] LI R F, FENG Y H, PAN G Q, et al.Advances in molecularly imprinting technology for bioanalytical applications[J].Sensors(Basel,Switzerland), 2019, 19(1):177-211.
[23] YUN Y G, PAN M F, FANG G Z, et al.An electrodeposited molecularly imprinted quartz crystal microbalance sensor sensitized with AuNPs and rGO material for highly selective and sensitive detection of amantadine[J].RSC Advances, 2018, 8(12):6 600-6 607.
[24] WANG X F, SONG X Q, SI L, et al.A novel biomimetic immunoassay method based on Pt nanozyme and molecularly imprinted polymer for the detection of histamine in foods[J].Food and Agricultural Immunology, 2020, 31(1):1 036-1 050.
[25] LI S H, MA X H, PANG C H, et al.Novel chloramphenicol sensor based on aggregation-induced electrochemiluminescence and nanozyme amplification[J].Biosensors and Bioelectronics, 2021, 176:112944.
[26] ZHAO X J, ZHANG Q M, CHEN H G, et al.Highly sensitive molecularly imprinted sensor based on platinum thin-film microelectrode for detection of chloramphenicol in food samples[J].Electroanalysis, 2017, 29(8):1 918-1 924.
[27] KLANGPRAPAN S, CHOKE-ARPORNCHAI B, LIEBERZEIT P A, et al.Sensing the classical swine fever virus with molecularly imprinted polymer on quartz crystal microbalance[J].Heliyon, 2020, 6(6):e04137.
[28] ZHANG Z P, LIU Y, HUANG P C, et al.Polydopamine molecularly imprinted polymer coated on a biomimetic iron-based metal-organic framework for highly selective fluorescence detection of metronidazole[J].Talanta, 2021, 232:122411.
[29] EMIR-DILTEMIZ S, KEÇILI R, ERSÖZ A, et al.Molecular imprinting technology in quartz crystal microbalance (QCM) sensors[J].Sensors(Basel,Switerland), 2017, 17(3):454-473.
[30] CAO Y R, FENG T Y, XU J, et al.Recent advances of molecularly imprinted polymer-based sensors in the detection of food safety hazard factors[J].Biosensors and Bioelectronics, 2019, 141:111447.
[31] 赵玲钰, 秦思楠, 高林, 等.磺胺嘧啶分子印迹电化学传感器的制备及其快速检测食品中磺胺嘧啶药物残留[J].食品科学, 2018, 39(22):319-327.
ZHAO L Y, QIN S N, GAO L, et al.Preparation and application of molecularly imprinted electrochemical sensor for rapid detection of sulfadiazine residues in foods[J].Food Science, 2018, 39(22):319-327.
[32] HAJRULAI-MUSLIU Z, UZUNOV R, JOVANOV S, et al.A new LC-MS/MS method for multiple residues/contaminants in bovine meat[J].BMC Chemistry, 2021, 15(1):62.
[33] ZHANG D W, LIU H L, GENG W T, et al.A dual-function molecularly imprinted optopolymer based on quantum dots-grafted covalent-organic frameworks for the sensitive detection of tyramine in fermented meat products[J].Food Chemistry, 2019, 277:639-645.
[34] YUN Y G, PAN M F, FANG G Z, et al.Molecularly imprinted electrodeposition o-aminothiophenol sensor for selective and sensitive determination of amantadine in animal-derived foods[J].Sensors and Actuators B:Chemical, 2017, 238:32-39.
[35] PAN M F, LI R, XU L L, et al.Reproducible molecularly imprinted piezoelectric sensor for accurate and sensitive detection of ractopamine in swine and feed products[J].Sensors(Basel,Switzerland), 2018, 18(6):1 870-1 882.
[36] 田景升, 李东东, 赵玲钰, 等.喹乙醇印迹传感器的制备及其在喹噁啉类药物残留快检中的应用[J].食品科学, 2021, 42(6):316-324.
TIAN J S, LI D D, ZHAO L Y, et al.Preparation and application of molecularly imprinted electrochemical sensor for rapid detection of quinoxaline drug residues[J].Food Science, 2021, 42(6):316-324.
[37] 张连明, 张东友, 曾英, 等.DNA辅助识别的西马特罗分子印迹传感器[J].分析化学, 2019, 46(11):1 770-1 777.
ZHANG L M, ZHANG D Y, ZENG Y, et al.A cimaterol molecularly imprinted sensor based on DNA-assisted recognition[J].Chinese Journal of Analytical Chemistry, 2018, 46(11):1 770-1 777.
[38] HASSAN A H A, SAPPIA L, MOURA S L, et al.Biomimetic magnetic sensor for electrochemical determination of scombrotoxin in fish[J].Talanta, 2018, 194:997-1 004.
[39] PENG D P, LI Z Z, WANG Y L, et al.Enzyme-linked immunoassay based on imprinted microspheres for the detection of sulfamethazine residue[J].Journal of Chromatography A, 2017, 1506:9-17.
[40] HE T, WANG G N, LIU J X, et al.Dummy molecularly imprinted polymer based microplate chemiluminescence sensor for one-step detection of Sudan dyes in egg[J].Food Chemistry, 2019, 288:347-353.
[41] 唐录华, 秦思楠, 高林, 等.基于对巯基苯胺膜的高灵敏己烯雌酚印迹传感器的制备及应用[J].化工进展, 2019, 38(11):5 074-5 083.
TANG L H, QIN S N, GAO L, et al.Preparation and application of sensitive diethylstilbestrol imprinting sensor based on p-aminothiophenol film[J].Chemical Industry and Engineering Progress, 2019, 38(11):5 074-5 083.
[42] YAN H Y, WANG H, QIAO J D, et al.Molecularly imprinted matrix solid-phase dispersion combined with dispersive liquid-liquid microextraction for the determination of four Sudan dyes in egg yolk[J].Journal of Chromatography A, 2011, 1218(16):2 182-2 188.
[43] HUANG X J, WEI S L, YAO S, et al.Development of molecularly imprinted electrochemical sensor with reduced graphene oxide and titanium dioxide enhanced performance for the detection of toltrazuril in chicken muscle and egg[J].Journal of Pharmaceutical and Biomedical Analysis, 2019, 164:607-614.
[44] ALI M R, BACCHU M S, DAIZY M, et al.A highly sensitive poly-arginine based MIP as an electrochemical sensor for selective detection of dimetridazole[J].Analytica Chimica Acta, 2020, 1121:11-16.
[45] WU P, DU Q Z, SUN Y Y, et al.MIP-coated Eu(BTC) for the fluorometric determination of lincomycin in eggs[J].Analytical Methods, 2019, 11(35):4 501-4 510.
[46] AKYILDIRIM O, KARDA? F, BEYTUR M, et al.Palladium nanoparticles functionalized graphene quantum dots with molecularly imprinted polymer for electrochemical analysis of citrinin[J].Journal of Molecular Liquids, 2017, 243:677-681.
[47] ROUSHANI M, RAHMATI Z, HOSEINI S J, et al.Impedimetric ultrasensitive detection of chloramphenicol based on aptamer MIP using a glassy carbon electrode modified by 3-ampy-RGO and silver nanoparticle[J].Colloids and Surfaces B:Biointerfaces, 2019, 183:110451.
[48] LI Y, HSIEH C H, LAI C W, et al.Tyramine detection using PEDOT:PSS/AuNPs/1-methyl-4-mercaptopyridine modified screen-printed carbon electrode with molecularly imprinted polymer solid phase extraction[J].Biosensors and Bioelectronics, 2017, 87:142-149.
[49] SHRIVASTAV A M, USHA S P, GUPTA B D.Highly sensitive and selective erythromycin nanosensor employing fiber optic SPR/ERY imprinted nanostructure:Application in milk and honey[J].Biosensors and Bioelectronics, 2017, 90:516-524.
[50] ZHAO W R, KANG T F, LU L P, et al.A novel electrochemical sensor based on gold nanoparticles and molecularly imprinted polymer with binary functional monomers for sensitive detection of bisphenol A[J].Journal of Electroanalytical Chemistry, 2017, 786:102-111.
[51] 张丽丽, 李洁, 陈长宝, 等.三聚氰胺分子印迹表面等离子体共振传感器的制备及分析应用[J].分析化学, 2018, 46 (1):88-93.
ZHANG L L, LI J, CHEN C B, et al.Preparation of melamine molecularly imprinted surface plasmon resonance sensor and its analytical application[J].Chinese Journal of Analytical Chemistry, 2018, 46 (1):88-93.
[52] NAGABOOSHANAM S, ROY S, DESHMUKH S, et al.Microfluidic affinity sensor based on a molecularly imprinted polymer for ultrasensitive detection of chlorpyrifos[J].ACS Omega, 2020, 5(49):31 765-31 773.
[53] 林涛, 陈兴连, 刘兴勇, 等.QuEChERS-三重四极杆串联质谱测定柑橘中农药基质效应的方法研究[J].果树学报, 2021, 38(4):613-622.
LIN T, CHEN X L, LIU X Y, et al.A study on matrix effect of QuEChERS-triple quadrupole tandem mass spectrometry in determination of pesticides in citrus[J].Journal of Fruit Science, 2021, 38(4):613-622.
[54] MIAO J N, LIU A R, WU L N, et al.Magnetic ferroferric oxide and polydopamine molecularly imprinted polymer nanocomposites based electrochemical impedance sensor for the selective separation and sensitive determination of dichlorodiphenyltrichloroethane (DDT)[J].Analytica Chimica Acta, 2020, 1095(C):82-92.
[55] 秦思楠, 唐录华, 高文惠.三氟氯氰菊酯分子印迹电化学传感器的制备及性能研究与应用[J].应用化学, 2019, 36(8):958-967.
QIN S N, TANG L H, GAO W H.Cyhalothrin molecularly imprinted electrochemical sensor:Preparation, performance and application[J].Chinese Journal of Applied Chemistry, 2019, 36(8):958-967.
[56] HUANG Q W, ZHAO Z H, NIE D X, et al.Molecularly imprinted poly(thionine)-based electrochemical sensing platform for fast and selective ultratrace determination of patulin[J].Analytical Chemistry, 2019, 91(6):4 116-4 123.
[57] LI Y G, LIU J, ZHANG Y, et al.A robust electrochemical sensing platform using carbon paste electrode modified with molecularly imprinted microsphere and its application on methyl parathion detection[J].Biosensors and Bioelectronics, 2018, 106:71-77.
[58] LI S H, PANG C H, MA X H, et al.A gold nanoparticle-loaded molecularly imprinted switch sensor with high sensitivity to ethephon[J].Microchemical Journal, 2020, 157:105025.
[59] IDIL N, HEDSTRÖM M, DENIZLI A, et al.Whole cell based microcontact imprinted capacitive biosensor for the detection of Escherichia coli[J].Biosensors and Bioelectronics, 2017, 87:807-815.
[60] RAZIQ A, KIDAKOVA A, BOROZNJAK R, et al.Development of a portable MIP-based electrochemical sensor for detection of SARS-CoV-2 antigen[J].Biosensors and Bioelectronics, 2021, 178:113029.
[61] SERGEYEVA T,YARYNKA D, DUBEY L, et al.Sensor based on molecularly imprinted polymer membranes and smartphone for detection of fusarium contamination in cereals[J].Sensors(Basel,Switzerland), 2020, 20(15):4 304-4 324.
[62] PERÇIN I, IDIL N, BAKHSHPOUR M, et al.Microcontact imprinted plasmonic nanosensors:Powerful tools in the detection of Salmonella paratyphi[J].Sensors(Basel,Switzerland), 2017, 17(6):1 375-1 392.
[63] AKGÖNÜLLÜ S, YAVUZ H, DENIZLI A.SPR nanosensor based on molecularly imprinted polymer film with gold nanoparticles for sensitive detection of aflatoxin B1[J].Talanta, 2020, 219:121219.
[64] LI W Q, DIAO K S, QIU D Y, et al.A highly-sensitive and selective antibody-like sensor based on molecularly imprinted poly(L-arginine) on COOH-MWCNTs for electrochemical recognition and detection of deoxynivalenol[J].Food Chemistry, 2021, 350:129229.
Outlines

/