综述与专题评论

纳米材料增敏的电化学检测技术在食品双酚类物质检测中的应用进展

  • 张灵丽 ,
  • 吴巧灵 ,
  • 刘丰 ,
  • 吴远根 ,
  • 邱树毅 ,
  • 陶菡
展开
  • 1(贵州大学 酿酒与食品工程学院,贵州 贵阳,550025)
    2(贵州省发酵工程与生物制药重点实验室,贵州 贵阳,550025)
硕士研究生(陶菡副教授为通讯作者,E-mail:taohanedu@126.com)

收稿日期: 2020-12-27

  修回日期: 2021-01-18

  网络出版日期: 2021-11-04

基金资助

贵州省科技计划项目(黔科合LH 字[2017]7294号);国家自然科学基金(31760486);贵州省科技计划项目(黔科合支撑[2019]2382号);贵州大学2017年度学术新苗培养及创新探索专项(黔科合平台人才[2017]5788)

Application progress of nano-materials sensitized electrochemical sensors in the detection of food bisphenols

  • ZHANG Lingli ,
  • WU Qiaoling ,
  • LIU Feng ,
  • WU Yuangen ,
  • QIU Shuyi ,
  • TAO Han
Expand
  • 1(School of Liquor and Food Engineering,Guizhou University,Guiyang 550025,China)
    2(Guizhou Key Lab of Fermentation Engineering and Biological Pharmacy,Guizhou university,Guiyang 550025,China)

Received date: 2020-12-27

  Revised date: 2021-01-18

  Online published: 2021-11-04

摘要

双酚类物质(bisphenols,BPs)是食品包装及容器材料聚碳酸酯的重要生产原料之一。研究发现,双酚类物质也是危害人体的内分泌干扰物之一,可通过食品接触材料迁移到食品或者饮料中,引起人体内分泌紊乱。为了解决该问题,已经提出了由多种材料(碳纳米、贵金属纳米、金属-有机骨架和其他复合材料)组成的纳米结构电化学平台,以检测双酚类物质残留。尽管此类研究取得了重大进展,但仍需开发借助多功能纳米材料的先进电化学传感器,并确保此类传感器的有效便携性。文章对现有的电化学分析技术进行了总结,以强调基于纳米材料的电化学传感技术对食品及食品包装中双酚类物质检测的重要性,综述了电化学传感技术在食品双酚类物质检测中的最新研究进展,并对其发展趋势进行了展望。

本文引用格式

张灵丽 , 吴巧灵 , 刘丰 , 吴远根 , 邱树毅 , 陶菡 . 纳米材料增敏的电化学检测技术在食品双酚类物质检测中的应用进展[J]. 食品与发酵工业, 2021 , 47(19) : 314 -322 . DOI: 10.13995/j.cnki.11-1802/ts.026569

Abstract

Bisphenols (BPs) are one of the important raw materials for the production of food packaging and container materials polycarbonate. Studies have shown that bisphenols are also one of the endocrine disruptors that harm the human body and can migrate to food or drink through food contact materials, and it will cause the human body secretion disorder. To solve this problem, a nanostructured electrochemical platform composed of a variety of materials (for example, carbon nanomaterials, precious metal nanomaterials, metal-organic frameworks and other composite materials) has been proposed. Although significant progress has been made in this field, further efforts are still needed to develop advanced electrochemical sensors with the help of multifunctional nanomaterials and ensure the effective portability of the sensor. Then the existing electrochemical analysis technology was summarized to emphasize the importance of electrochemical sensing technology based on nanomaterials for the detection of bisphenols in food and food packaging. This article reviewed the latest progress of electrochemical sensing technology in the detection of food bisphenols and looks forward to its development trend.

参考文献

[1] 井长勤, 穆灵敏,张光谋.环境内分泌干扰物研究进展[J].新乡医学院学报,2005,22(6):627-629.
JING C Q,MU L M,ZHANG G M.Progress in research of environmental endocrine disruptors[J].Journal of Xinxiang Medical College,2005,22(6):627-629.
[2] 邱月,李根容,龙梅,等.超高效合相色谱法同时检测塑料食品接触材料中11种双酚类化合物[J].分析化学,2020,48(2):255-261.
QIU Y,LI G R,LONG M,et al.Determination of 11 kinds of bisphenols in plastic food contact materials by ultra-performance convergence chromatography[J].Chinese Journal of Analytical Chemistry,2020,48(2):255-261.
[3] 李君君,李力军,徐惠诚,等.双酚A的健康影响以及各国对其在塑料制品中的限量要求[J].环境与健康杂志,2012,29(4):379-382.
LI J J,LI L J,XU H C,et al.Health effects of bisphenol a and their limits in plastics products abroad[J].Journal of Environment and Health,2012,29(4):379-382.
[4] 张雨佳, 凌云,张元,等.食品及环境样品中双酚类物质的前处理及检测方法研究进展[J].色谱,2019,37(12):1 268-1 274.
ZHANG Y J,LING Y,ZHANG Y,et al.Research progress on pretreatment and detection of bisphenols in food and environmental samples[J].Chinese Journal of Chromatography,2019,37(12):1 268-1 274.
[5] 郭永梅.双酚A的危害及相关限制法规[J].现代食品科技,2012,28(5):549-551.
GUO Y M.Analysis of health hazards,legal restrictions and regulations for BPA[J].Modern Food Science and Technology,2012,28(5):549-551.
[6] MACCZAK A,CYRKLER M,BUKOWSKA B,et al.Bisphenol A,bisphenol S,bisphenol F and bisphenol AF induce different oxidative stress and damage in human red blood cells (in vitro study)[J].Toxicology in Vitro,2017,31(41):143-149.
[7] VARMIRA K,SAED-MOCHESHI M,JALALVAND A R.Electrochemical sensing and bio-sensing of bisphenol A and detection of its damage to DNA:A comprehensive review[J].Sensing and Bio-Sensing Research,2017,15:17-33.
[8] SIFAKIS S,ANDROUTSOPOULOS V P,TSATSAKIS A M,et al.Human exposure to endocrine disrupting chemicals:Effects on the male and female reproductive systems[J].Environmental Toxicology and Pharmacology,2017,51:56-70.
[9] MICHAŁOWICZ J,MOKRA K,BA,K A.Bisphenol A and its analogs induce morphological and biochemical alterations in human peripheral blood mononuclear cells (in vitro study)[J].Toxicology in Vitro,2015,29(7):1 464-1 472.
[10] MOKRA K,KUZ′MIN′SKA-SUROWANIEC A,WOZ′NIAK K,et al.Evaluation of DNA-damaging potential of bisphenol A and its selected analogs in human peripheral blood mononuclear cells (in vitro study)[J].Food and Chemical Toxicology,2017,100:62-69.
[11] 国家卫生和计划生育委员会. 食品安全国家标准 食品接触用塑料树脂:GB 4806.6—2016[S].北京:中国标准出版社,2017.
National Health and Family Planning Commission.GB 4806.6—2016 National food safety standard-plastic resin for food contact[S].Beijing:Standards Press of China,2017.
[12] 国家卫生和计划生育委员会.食品安全国家标准 食品接触材料及制品用添加剂使用标准:GB 9685—2016[S].北京:中国标准出版社,2017.
National Health and Family Planning Commission.GB 9 685—2016.Standard for the use of additives for food contact materials and products[S].Beijing:Standards Press of China,2017.
[13] 左莹,吕庆,王永香,等.双酚S检测方法的研究进展[J].理化检验-化学分册,2019,55(8):984-992.
ZUO Y,LYU Q,WANG Y X,et al.Recent advances of rsearches on detection methods of bisphenol S[J].Physical Testing and Chemical Analysis (Part B:Chemical Analysis),2019,55(8):984-992.
[14] SANTOVITO A,CANNARSA E,SCHLEICHEROVA D,et al.Clastogenic effects of bisphenol A on human cultured lymphocytes[J].Human & Experimental Toxicology,2018,37(1):69-77.
[15] 郭丽敏. 关于含双酚A奶瓶欧盟遭禁的探讨[J].塑料助剂,2011(2):7-9.
GUO L M.Discuss on the EU prohibition for the feeding bottle contained BPA[J].Plastics Additives,2011(2):7-9.
[16] 张虹.韩国拟修订食品容器和包装标准规范[J].中国标准导报,2015(2):19.
ZHANG H.South Korea intends to revise food container and packaging standards[J].China Standard Guide,2015(2):19.
[17] European Food Safety Agency.(EU) No 10/2011 of 14 January on plastic materials and articles intended to come into contact with food[S],2011.
[18] RIJK R,VERAART R.Rules on food contact materials and articles in Japan[M].Wiley-VCH Verlag GmbH & Co.KGaA,2010:291-317.
[19] CHEN C L,YANG C F,AGARWAL V,et al.SS-DNA-decorated Single-Walled Carbon Nanotubes integrated on CMOS circuitry for high sensitivity gas sensing[C]//TRANSDUCERS 2009-2009 International Solid-State Sensors,Actuators and Microsystems Conference.IEEE,2009:1 477-1 480.
[20] HU L L,LI C Q,LI L,et al.Amino-functionalized carbon nanotubes decorated with MoS2 nanoparticles:A highly active non-noble metal nanohybrid electrocatalyst for efficient hydrogen evolution[J].Journal of Nanoence & Nanotechnology,2017,17(12):9 343-9 346.
[21] BAGHAYERI M,ANSARI R,NODEHI M,et al.Label-free electrochemical bisphenol A aptasensor based on designing and fabrication of a magnetic gold nanocomposite[J].Electroanalysis,2018,30(9):2 160-2 166.
[22] VILIAN A T E,GIRIBABU K,CHOE S R,et al.A spick-and-span approach to the immobilization of horseradish peroxidase on Au nanospheres incorporated with a methionine/graphene biomatrix for the determination of endocrine disruptor bisphenol A[J].Sensors and Actuators B:Chemical,2017,251:804-812.
[23] MANASA G,MASCARENHAS R J,SATPATI A K,et al.An electrochemical Bisphenol F sensor based on ZnO/G nano composite and CTAB surface modified carbon paste electrode architecture[J].Colloids and Surfaces B:Biointerfaces,2018,170:144-151.
[24] LAWRYWIANIEC M,SMAJDOR J,PACZOSA-BATOR B,et al.High sensitive method for determination of the toxic bisphenol A in food/beverage packaging and thermal paper using glassy carbon electrode modified with carbon black nanoparticles[J].Food Analytical Methods,2017,10(12):3 825-3 835.
[25] DEIMINIAT B,ROUNAGHI G H,ARBAB-ZAVAR M H,et al.A novel electrochemical aptasensor based on f-MWCNTs/AuNPs nanocomposite for label-free detection of bisphenol A[J].Sensors and Actuators B:Chemical,2017,242:158-166.
[26] MO F Y,XIE J W,WU T T,et al.A sensitive electrochemical sensor for bisphenol A on the basis of the AuPd incorporated carboxylic multi-walled carbon nanotubes[J].Food Chemistry,2019,292:253-259.
[27] ZOU J,YUAN M M,HUANG Z N,et al.Highly-sensitive and selective determination of bisphenol A in milk samples based on self-assembled graphene nanoplatelets-multiwalled carbon nanotube-chitosan nanostructure[J].Materials Science and Engineering:C,2019,103:109 848.
[28] BAIZHAO Z.A novel bisphenol A electrochemical sensor based on molecularly imprinted polymer/carbon nanotubes-Au nanoparticles/boron-doped ordered mesoporous carbon composite[J].Analytical Methods,2018,10(37):4 543-4 548.
[29] SHI R G,LIANG J,ZHAO Z S,et al.In situ determination of bisphenol A in beverage using a molybdenum selenide/reduced graphene oxide nanoparticle composite modified glassy carbon electrode[J].Sensors,2018,18(5):1 660.
[30] WANG M X,SHI Y F,ZHANG Y B,et al.Sensitive electrochemical detection of bisphenol A using molybdenum disulfide/Au nanorod composites modified glassy carbon electrode[J].Electroanalysis,2017,29(11):2 620-2 627.
[31] 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.
[32] ENSAFI A A,AMINI M,REZAEI B.Molecularly imprinted electrochemical aptasensor for the attomolar detection of bisphenol A[J].Microchimica Acta,2018,185(5):1-7.
[33] ZHANG R Y,ZHANG Y,DENG X L,et al.A novel dual-signal electrochemical sensor for bisphenol A determination by coupling nanoporous gold leaf and self-assembled cyclodextrin[J].Electrochimica Acta,2018,271:417-424.
[34] 陈国珍, 赵锴,张玉娟,等.二维金属有机框架的制备及其在生物传感器领域的研究进展[J].应用化工,2020,49(8):2 045-2 049.
CHEN G Z,ZHAO K,ZHANG Y J,et al.Preparation of 2D MOF-based composite materials and its applications in biosensors[J].Applied Chemical Industry,2020,49(8):2 045-2 049.
[35] DA SILVA C T P,VEREGUE F R,AGUIAR L W,et al.AuNp@MOF composite as electrochemical material for determination of bisphenol A and its oxidation behavior study[J].New Journal of Chemistry,2016,40(10):8 872-8 877.
[36] HUANG X Z,HUANG D H,CHEN J Y,et al.Fabrication of novel electrochemical sensor based on bimetallic Ce-Ni-MOF for sensitive detection of bisphenol A[J].Analytical and Bioanalytical Chemistry,2020,412(4):849-860.
[37] ZHAN T R,SONG Y,TAN Z W,et al.Electrochemical bisphenol A sensor based on exfoliated Ni2Al-layered double hydroxide nanosheets modified electrode[J].Sensors and Actuators B:Chemical,2017,238:962-971.
[38] VIEIRA JODAR L,ORZARI L O,STORTI ORTOLANI T,et al.Electrochemical sensor based on casein and carbon black for bisphenol A detection[J].Electroanalysis,2019,31(11):2 162-2 170.
[39] ABNOUS K,DANESH N M,RAMEZANI M,et al.A novel electrochemical sensor for bisphenol A detection based on nontarget-induced extension of aptamer length and formation of a physical barrier[J].Biosensors and Bioelectronics,2018,119:204-208.
[40] BOLAT G,YAMAN Y T,ABACI S.Highly sensitive electrochemical assay for Bisphenol A detection based on poly (CTAB)/MWCNTs modified pencil graphite electrodes[J].Sensors and Actuators B:Chemical,2018,255:140-148.
[41] HU Y,LIU Z,ZHAN H,et al.A novel electrochemiluminescence sensor for bisphenol A determination based on graphene-palladium nanoparticles/polyvinyl alcohol hybrids[J].Analytical Methods,2017,9(25):3 870-3 875.
[42] ZAINUL R,ABD AZIS N,ISA I M,et al.Zinc/Aluminium-Quinclorac layered nanocomposite modified multi-walled carbon nanotube paste electrode for electrochemical determination of bisphenol A[J].Sensors,2019,19(4):1-15.
[43] THAMILSELVAN A,RAJAGOPAL V,SURYANARAYANAN V.Highly sensitive and selective amperometric determination of BPA on carbon black/f-MWCNT composite modified GCE[J].Journal of Alloys and Compounds,2019,786:698-706.
[44] COSIO M S,PELLICANÓ A,BRUNETTI B,et al.A simple hydroxylated multi-walled carbon nanotubes modified glassy carbon electrode for rapid amperometric detection of bisphenol A[J].Sensors and Actuators B:Chemical,2017,246:673-679.
[45] ANIRUDHAN T S,ATHIRA V S,CHITHRA SEKHAR V.Electrochemical sensing and nano molar level detection of Bisphenol-A with molecularly imprinted polymer tailored on multiwalled carbon nanotubes[J].Polymer,2018,146:312-320.
[46] KANAGAVALLI P,SENTHIL KUMAR S.Stable and sensitive amperometric determination of endocrine disruptor bisphenol a at residual metal impurities within SWCNT[J].Electroanalysis,2018,30(3):445-452.
[47] GHOLIVAND M B,AKBARI A.A novel and high sensitive MWCNTs-nickel carbide/hollow fiber-pencil graphite modified electrode for in situ ultra-trace analysis of bisphenol A[J].Journal of Electroanalytical Chemistry,2018,817:9-17.
[48] QIN J Y,SHEN J,XU X Y,et al.A glassy carbon electrode modified with nitrogen-doped reduced graphene oxide and melamine for ultra-sensitive voltammetric determination of bisphenol A[J].Microchimica Acta,2018,185(10):1-8.
[49] ULUBAY KARABIBEROĞLU Ş.Sensitive voltammetric determination of bisphenol A based on a glassy carbon electrode modified with copper oxide-zinc oxide decorated on graphene oxide[J].Electroanalysis,2019,31(1):91-102.
[50] SU B Y,SHAO H L,LI N,et al.A sensitive bisphenol A voltammetric sensor relying on AuPd nanoparticles/graphene composites modified glassy carbon electrode[J].Talanta,2017,166:126-132.
[51] HE S G,MA Y,ZHOU J Y,et al.A direct “touch” approach for gold nanoflowers decoration on graphene/ionic liquid composite modified electrode with good properties for sensing bisphenol A[J].Talanta,2019,191:400-408.
[52] MAHMOUDI E,HAJIAN A,REZAEI M,et al.A novel platform based on graphene nanoribbons/protein capped Au-Cu bimetallic nanoclusters:Application to the sensitive electrochemical determination of bisphenol A[J].Microchemical Journal,2019,145:242-251.
[53] ZHANG J,XU X J,CHEN L.An ultrasensitive electrochemical bisphenol A sensor based on hierarchical Ce-metal-organic framework modified with cetyltrimethylammonium bromide[J].Sensors and Actuators B:Chemical,2018,261:425-433.
[54] WANG X,SHI Y R,SHAN J J,et al.Electrochemical sensor for determination of bisphenol A based on MOF-reduced graphene oxide composites coupled with cetyltrimethylammonium bromide signal amplification[J].Ionics,2020,26(6):3 135-3 146.
[55] XU C X,LIU L B,WU C,et al.Unique 3D heterostructures assembled by quasi-2D Ni-MOF and CNTs for ultrasensitive electrochemical sensing of bisphenol A[J].Sensors and Actuators B:Chemical,2020,310:127885.
[56] PANG Y H,HUANG Y Y,WANG L,et al.Determination of bisphenol A and bisphenol S by a covalent organic framework electrochemical sensor[J].Environmental Pollution,2020,263:114616.
[57] WANG X,LU X B,WU L D,et al.3D metal-organic framework as highly efficient biosensing platform for ultrasensitive and rapid detection of bisphenol A[J].Biosensors and Bioelectronics,2015,65:295-301.
[58] HANG J Y,ZHANG Q,THI OANH N,et al.Biomimetic prepared polyaniline/molybdenum disulfide nanosheet based electrochemical detection of bisphenol A[J].Desalination and Water Treatment,2019,139:326.
[59] EZOJI H,RAHIMNEJAD M,NAJAFPOUR-DARZI G.Advanced sensing platform for electrochemical monitoring of the environmental toxin;bisphenol A[J].Ecotoxicology and Environmental Safety,2020,190:110088
[60] 花小霞, 郑香丽,刘珊,等.双酚A在离子液体修饰碳糊电极上的电化学行为及测定[J].食品科学,2015,36(22):152-155.
HUA X X,ZHENG X L,LIU S,et al.Electrochemical behavior and determination of bisphenol A at carbon paste electrode modified with ionic liquid[J].Food Science,2015,36(22):152-155.
文章导航

/