Chemical Industry and Engineering Progree ›› 2016, Vol. 35 ›› Issue (12): 3991-4000.DOI: 10.16085/j.issn.1000-6613.2016.12.036
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ZHANG Haochun, LÜ Jia, ZHANG Bing, GAO Wenchao, LI Xing, CHANG Honghong, WEI Wenlong
Received:
2016-05-19
Revised:
2016-07-24
Online:
2016-12-05
Published:
2016-12-05
张浩春, 吕佳, 张冰, 高文超, 李兴, 常宏宏, 魏文珑
通讯作者:
常宏宏,副教授,硕士生导师,主要研究领域为功能纳米研究开发。E-mail:changhonghong@tyut.edu.cn。
作者简介:
张浩春(1991-),女,硕士研究生,研究方向为电化学传感器的构建及应用。
基金资助:
CLC Number:
ZHANG Haochun, LÜ Jia, ZHANG Bing, GAO Wenchao, LI Xing, CHANG Honghong, WEI Wenlong. Electrochemical immunosensors for the detection of tumor markers[J]. Chemical Industry and Engineering Progree, 2016, 35(12): 3991-4000.
张浩春, 吕佳, 张冰, 高文超, 李兴, 常宏宏, 魏文珑. 电化学免疫传感器在肿瘤标志物检测中的应用[J]. 化工进展, 2016, 35(12): 3991-4000.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2016.12.036
[1] CHEN W Q,ZHENG R S,BAADE P D,et al.Cancer statistics in China,2015[J].CA Cancer J.Clin.,2016,66:115-132. [2] MAJKIC-SINGH N.What is a biomarker? From its discovery to clinical application[J].Med.J.Biochem.,2011,30:186-192. [3] PERFEZOU M,TURNER A,MERKOCI A.Cancer detection using nanoparticle-based sensors[J].Chem.Soc.Rev.,2012,41:2606-2622. [4] WON B Y,CHOI H G,KIM K H,et al.Bioelectrocatalytic signaling from immunosensors with back-filling immobilization of glucose oxidase on biorecognition surfaces[J].Biotechnol.Bioeng.,2005,89:815-821. [5] MOROZOV V N,MOROZOVA T Y.Electrophoresis-assisted active immunoassay[J].Anal.Chem.,2003,75:6813-6819. [6] WAN Y,QI P,ZHANG D,et al.Manganese oxide nanowire-mediated enzyme-linked immunosorbent assay[J].Biosens.Bioelectron.,2012,33:69-74. [7] JIA C P,ZHONG X Q,HUA B,et al.Nano-ELISA for highly sensitive protein detection[J].Biosens.Bioelectron.,2009,24:2836-2841. [8] ZHANG A M,XIANG H K,ZHANG X,et al.A novel sandwich electrochemiluminescence immunosensor for ultrasensitive detection of carbohydrate antigen 19-9 based on immobilizing luminol on Ag@BSA core/shell microspheres[J].Biosens.Bioelectron.,2016,75:206-212. [9] XU S J,LIU Y,WANG T H,et al.Positive potential operation of a cathodic electrogenerated chemiluminescence immunosensor based on luminol and graphene for cancer biomarker detection[J].Anal.Chem.,2011,83(10):3817-3823. [10] XIE Q F,WENG X H,LU L J,et al.A sensitive fluorescent sensor for quantification of alpha-fetoprotein based on immunosorbent assay and click chemistry[J].Biosens.Bioelectron.,2015,77:46-50. [11] HUA W H,LIU Y S,YANG H B,et al.ZnO nanorods-enhanced fluorescence for sensitive microarray detection of cancers in serum without additional reporter-amplification[J].Biosens.Bioelectron.,2011,26:3683-3687. [12] BAHADIR E B,SEZGINTURK M K.Applications of electrochemical immunosensors for early clinical diagnostics[J].Talanta.,2015,132:162-174. [13] CHIKKAVEERAIAH B V,BHIRDE A,MORGAN N Y,et al.Electrochemical immunosensors for detection of cancer protein biomarkers[J].ACS Nano,2012,6:6546-6561. [14] LIM S A,AHMED M U,Electrochemical immunosensors and their recentnanomaterial-based signal amplification strategies:a review[J].RSC Adv.,2016,6:24995-25014. [15] LIN D,WU J,JU H,et al.Nanogold/mesoporous carbon foam-mediated silver enhancement for graphene-enhanced electrochemical immunosensing of carcinoembryonic antigen[J].Biosens.Bioelectron.,2014,52:153-158. [16] XIA N,DENG D,ZHANG L,et al.Sandwich-type electrochemical biosensor for glycoproteins detection based on dual-amplification of boronic acid-gold nanoparticles and dopamine-gold nanoparticles[J].Biosens.Bioelectron.,2013,43:155-159. [17] KAVOSI B,HALLAJ R,TEYMOURIAN H,et al.Au nanoparticles/PAMAM dendrimer functionalized wired ethyleneamine-viologen as highly efficient interface for ultra-sensitive α-fetoprotein electrochemical immunosensor[J].Biosens.Bioelectron.,2014,59:389-396. [18] SHMIDC G.Nanoparticles:From theory to application[M].Weinheim,Germany:Wiley-VCH,2011. [19] DOLATABADI J E N,de la GUARDIA M.Nanomaterial-based electrochemical immunosensors as advanced diagnostic tools[J].Anal.Methods.,2014,6:3891-3900. [20] DIXIT C K,KADIMISETTY K,OTIENO B A,et al.Electrochemistry-based approaches to low cost,high sensitivity,automated,multiplexed protein immunoassays for cancer diagnostics[J].Analyst,2016,141(2):536-547. [21] RUSLING J F.Nanomaterials-based electrochemical immunosensors for proteins[J].Chem.Rec.,2012,12:164-176. [22] OMIDFAR K,KHORSAND F,AZIZI M D.New analytical application of gold nanopartical as lable in antibody based sensors[J].Biosens.Bioelectron.,2013,43:336-347. [23] WANG Y,ZHANG Y,SU Y,et al.Ultrasensitive non-mediator electrochemical immunosensors using Au/Ag/Au core/double shell nanoparticles as enzyme mimetic labels[J].Talanta.,2014,124:60-66. [24] CHIKKAVEERAIAH B V,BHIRDE A,MORGAN N Y,et al.Electrochemical immunosensors for detection of cancer protein biomarkers[J].ACS Nano,2012,6:6546-6561. [25] QURESHI A,GURBUZ Y,NIAZI J H.Biosensors for cardiac biomarkers detection:a review[J].Sens.Actuators B,2012,171/172:62-76. [26] GUO A,WU D,MA H,et al.An ultrasensitive enzyme-free electrochemical immunosensor for CA125 using Au@Pd core-shell nanoparticles as labels and platforms for signal amplification[J].J.Mater.Chem.B,2013,1:4052-4058. [27] YANG L,ZHAO H,FAN S,et al.Label-free electrochemical immunosensor based on gold-silicon carbide nanocomposites for sensitive detection of human chorionic gonadotrophin[J].Biosens.Bioelectron.,2014,57:199-206. [28] ZHANG L,LI C,ZHAO D,et al.An electrochemical immunosensor for the tumor marker a-fetoprotein using a glassy carbon electrode modified with a poly(5-formylindole),single-wall carbon nanotubes,and coated with gold nanoparticles and antibody[J].Microchim.Acta.,2014,181(13):1601. [29] MALHOTRA R,PAPADIMTRAKOPOULOS F,RUSLING J F.Sequential layer analysis of protein immunosensors based on single wall carbon nanotube forests[J].Langmuir,2010,26(18):15050-15056. [30] MALHOTRA R,PATEL V,VAQUE J P,et al.Ultrasensitive electrochemical immunosensor for oral cancer biomarker IL-6 using carbon nanotube forest electrodes and multilabel amplification[J].Anal.Chem.,2010,82(8):3118-3123. [31] CHIKKAVEERAIAH B V,BHIRDE A,MALHOTRA R,et al.Single-wall carbon nanotube forest arrays for immunoelectrochemical measurement of four protein biomarkers for prostate cancer[J].Anal.Chem.,2009,81(21):9129-9134. [32] RUSLING J F,SOTZING G,PAPADIMTRAKOPOULOS F.Designing nanomaterial-enhanced electrochemical immunosensors for cancer biomarker proteins[J].Bioelectro.Chem.,2009,1/2:189-194. [33] MUNGE B S,KRAUSE C E,MALHOTRA R,et al.Electrochemical immunosensors for interleukin-6.comparison of carbon nanotube forest and gold nanoparticle platforms[J].Electrochem.Commun.,2009,11:1009-1012. [34] JENSEN G C,YU X,GONG J D,et al.Characterization of multienzyme-antibody-carbon nanotube bioconjugates for immunosensors[J].Nanosci.Nanotechnol.,2009,9(1):249-255. [35] SARDESAI N P,BARRON J C,RUSLING J F.Carbon nanotube microwell array for sensitive electrochemiluminescent detection of cancer biomarker proteins[J].Anal.Chem.,2011,83:6698-6703. [36] AKTER R,RAHMAN M A,RHEE C K.Amplified electrochemical detection of a cancer biomarker by enhanced precipitation using horseradish peroxidase attached on carbon nanotubes[J].Anal.Chem.,2012,84:6407-6415. [37] YANG J,WEN W,ZHANG X H,et al.Electrochemical immunosensor for the prostate specific antigen detection based on carbon nanotube and gold nanoparticle amplification strategy[J].Microchim Acta,2015,182:1855-1861. [38] CHEN A,CHATTERJEE S.Nanomaterials based electrochemical sensors for biomedical applications[J].Chem.Soc.Rev.,2013,42:5425-5438. [39] KERMAN K,SAITO M,TAMIYA E,et al.Nanomaterial-based electrochemical biosensors for medical applications[J].Trends Anal.Chem.,2008,27:585-592. [40] KIM J P,LEE B Y,HONG S,et al.Ultrasensitive carbon nanotube-based biosensors using antibody-binding fragments[J].Anal.Biochem.,2008,381:193-198. [41] PUERTAS S,de GRACIA VILLA M,MENDOZA E,et al.Improving immunosensor performance through oriented immobilization of antibodies on carbon nanotube composite surfaces[J].Biosens.Bioelectron.,2013,43:274-280. [42] YANG F,CHAI Y,YUAN R,et al.Ultrasensitive electrochemical immunosensors for clinical immunoassay using gold nanoparticle coated multi-walled carbon nanotubes as labels and horseradish peroxidase as an enhancer[J].Anal.Methods.,2013,5:5279-5285. [43] OKUNO J,MAEHASHI K,KERMAN K,et al.Label-free immunosensor for prostate-specific antigen based on single-walled carbon nanotube array-modified microelectrodes[J].Biosens.Bioelectron.,2007,22:2377-2381. [44] RONKANEN N J,OKON S L.Nanomaterial-based electrochemical immunosensors for clinically significant biomarkers[J].Materials,2014,7:4669-4709. [45] LAI G,ZHANG H,YONG J,YU A.In situ deposition of gold nanoparticles on polydopamine functionalized silica nanosphere for ultrasensitive nonenzymatic electrochemical immunoassay[J].Biosens.Bioelectron.,2013,47:178-183. [46] CHOI A,JEONG H,KIM S,et al.Electrocatalytic reduction of dioxygen by cobalt porphyrin-modified glassy carbon electrode with single-walled carbon nanotubes and nafion in aqueous solutions[J].Electrochim Acta,2008,53:2579-2584. [47] LI Y,ZHONG Z Y,CHAI Y Q,et al.Simultaneous electrochemical immunoassay of three liver cancer biomarkers using distinguishable redox probes as signal tags and gold nanoparticles coated carbon nanotubes as signal enhancers[J].Chem.Commun.,2012,48:537-539. [48] YU X,MUNGE B,PATEL V,et al.Paper carbon nanotube amplification strategies for highly sensitive immunodetection of cancer biomarkers[J].J.Am.Chem.Soc.,2006,128:11199-11205. [49] MALHOTRA R,PATEL V,VAQUE J P,et al.Ultrasensitive electrochemical immunosensor for oral cancer biomarker IL-6 using carbon nanotube forest electrodes and multilabel amplification[J].Anal.Chem.,2010,82:3118-3123. [50] WU S,HE Q,TAN C.Graphene-based electrochemical sensors[J].Small,2013,9(8):1160-1172. [51] CHEN D,FENG H,LI J.Graphene oxide:preparation,functionalization,and electrochemical applications[J].Chem.Rev.,2012,112(11):6027-6053. [52] YAN M,ZANG D,GE S.A disposable electrochemical immunosensor based on carbon screen-printed electrodes for the detection of prostate specific antigen[J].Boisens.Bioelectron.,2012,38:355-361. [53] SAMANMAN S,NUMNUAM A,LIMBUT W,et al.Highly-sensitive label-free electrochemical carcinoembryonic antigen immunosensor based on a novel Au nanoparticles-graphene-chitosan nanocomposite cryogel electrode[J].Anal.Chim.Acta,2015,853:521-532. [54] LIU Z G,WANG Y X,GUO Y J,et al.Label-free electrochemical aptasensor for carcino-embryonic antigen based on ternary nanocomposite of gold nanoparticles,hemin and graphene[J].Electroanalysis,2015,28:1023-1028. [55] XI F N,ZHAO D J,WANG X W,et al.Non-enzymatic detection of hydrogen peroxide using a functionalized three-dimensional graphene electrode[J].Electrochem.Commun.,2013,26:81-84. [56] LIU Y,DONG X C,CHEN,P.Biological and chemical sensors based on graphene materials[J].Chem.Soc.Rev.,2012,41:2283-2307. [57] LIU J Y,WANG J,WANG T S,et al.Three-dimensional electrochemical immunosensor for sensitive detection of carcinoembryonic antigen based on monolithic and macroporous graphene foam[J].Biosens.Bioelectron.,2015,65:281-286. [58] CHEN X,JIA X L,HAN J M,et al.Electrochemical immunosensor for simultaneous detection of multiplex cancer biomarkers based on graphene nanocomposites[J].Biosens.Bioelectron.,2013,50:356-361. [59] PUMERA M.Graphene-based nanomaterials and their electrochemistry[J].Chem.Soc.Rev.,2010,39:4146-4157. [60] GAO Q,LIU N,MA Z F.Prussian blue-gold nanoparticles-ionic liquid functionalized reduced graphene oxide nanocomposite as label for ultrasensitive electrochemical immunoassay of alpha-fetoprotein[J].Anal.Chim.Acta.,2014,829:15-21. [61] SAHA K,AGASTI S S,KIM C,et al.Gold nanoparticles in chemical and biological sensing[J].Chem.Rev.,2012,12:2739-2779. [62] LU F,DOANE T,ZHU J J,et al.Gold nanop articles for diagnostic sensing and therapy[J].Inorg.Chim.Acta,2012,393:142-153. [63] RAVALLI A,MARRAZZA G Gold and magnetic nanoparticles-based electrochemical biosensors for cancer biomarker determination[J].J.Nanosci.Nanotechnol.,2015,15:3307-3319. [64] AKTER R,RAHMAN M A,RHEE C K.Amplified electrochemical detection of a cancer biomarker by enhanced precipitation using horseradish peroxidase attached on carbon nanotubes[J].Anal.Chem.,2012,84:6407-6415. [65] RAVALLI A,dos SANTOS G P,FERRONI M,et al.New label free CA125 detection based on gold nanostructured screen-printed electrode Sens[J].Sens.Actuators B,2013,179:194-200. [66] GUO J J,HAN X W,WANG J C,et al.Horseradish peroxidase functionalized gold nanorods as a label for sensitive electrochemical detection of alpha-fetoprotein antigen[J].Anal Biochem.,2015,491:58-64. [67] CHEN K J,PILLAI K C,RICK J,et al.Bimetallic PtM (M=Pd,Ir) nanoparticle decorated multi-walled carbon nanotube enzyme-free,mediator-less amperometric sensor for H2O2[J].Biosens.Bioelectron.,2012,33:120-127. [68] GHOLIVAND M B,AZADBAKHT A,PASHABADI A.An electrochemical sensor based on carbon nanotube bimetallic Au-Pt inorganic-organic nanofiber hybrid nanocomposite electrode applied for detection of guaifenesin[J].Electroanal.,2011,23:2771-2779. [69] MAYORGA C,GUIX M,MADRID R E,et al.Bimetallic nanowires as electrocatalysts for nonenzymatic real-time impedancimetric detection of glucose[J].Chem.Commun.,2012,48:1686-1688. [70] CAO X,WANG N,JIA S,et al.Bimetallic AuPt nanochains:synthesis and their application in electrochemical immunosensor for the detection of carcinoembryonic antigen[J].Biosens.Bioelectron.,2013,39:226-230. [71] SUN G Q,DING Y N,MA C,et al.Paper-based electrochemical immunosensor for carcinoembryonic antigen based on three dimensional flower-like gold electrode and gold-silver bimetallic nanoparticles[J].Electrochim.Acta,2014,147:650-656. [72] WANG Z F,LIU N,MA Z F.Platinum porous nanoparticles hybrid with metal ions as probes for simultaneous detection of multiplex cancer biomarkers[J].Biosens.Bioelectron.,2014,53:324-329. [73] HASANZADEH M,SHADJOU N,de la GUARDIA M.Iron and iron-oxide magnetic nanoparticles as signal-amplification elements in electrochemical biosensing[J].TrAC Trends Anal.Chem.,2015,72:1-9. [74] LI H,WEI Q,HE J,et al.Electrochemical immunosensors for cancer biomarker with signal amplification based on ferrocene functionalized iron oxide nanoparticles[J].Biosens.Bioelectron.,2011,26:3590-3595. [75] YANG Z H,CHAI Y Q,YUAN R,et al.Hollow platinum decorated Fe3O4 nanoparticles as peroxidase mimetic couple with glucose oxidase for pseudo bienzyme electrochemical Immunosensor[J].Sens.Actuators B,2014,193:461. [76] JUAN P,ZHU Y D,LI X H,et al.Electrochemical immunoassay for the prostate specific antigen using ceria mesoporous nanospheres[J].Microchim Acta,2014,181:1505-1512. [77] WEI Y C,LI Y,LI N,et al.Sandwich-type electrochemical immunosensor for the detection of AFP based on Pd octahedral and APTES-M-CeO2-GS as signal labels[J].Biosens.Bioelectron.,2016,79:482-487. [78] WANG H,ZHANG Y,YU H,et al.Label-free electrochemical immunosensor for prostate-specific antigen based on silver hybridized mesoporous silica nanoparticles[J].Anal.Biochem.,2013,434:123-127. [79] ZHANG S,MA H M,YAN L G,et al.Copper-doped titanium dioxide nanoparticles as dual-functional labels for fabrication of electrochemical immunosensors[J].Biosens.Bioelectron.,2014,59:335-341. [80] HOWARTH M,LIU W,PUTHENVEETIL S,et al.Monovalent, reduced-size quantum dots for imaging receptors on living cells[J].Nat.Methods.,2008,5:397-399. [81] KONG F Y,XU B Y,XU J J,et al.A piezoelectric immunosensor for specific capture and enrichment of viable pathogens by quartz crystal microbalance sensor,followed by detection with antibody-functionalized gold nanoparticles[J].Biosens.Bioelectron.,2013,39:177-183. [82] HO J A,LIN Y C,WANG L S,et al.Carbon nanoparticle-enhanced immunoelectrochemical detection for protein tumor marker with cadmium sulfide biotracers[J].Anal.Chem.,2009,81(4):1340-1346. [83] DING C,ZHANG Q,ZHANG S.An electrochemical immunoassay for protein based on bio bar code method[J].Biosens.Bioelectron.,2009,24:2434-2440. [84] LIU G D,LIN Y Y,WANG J,et al.Disposable electrochemical immunosensor diagnosis device based on nanoparticle probe and immunochromatographic strip[J].Anal.Chem.,2007,79:7644-7653. [85] LI S H,LUO J H,YANG X F,et al.A novel immunosensor for squamous cell carcinoma antigen determination based on CdTe@Carbon dots nanocomposite electrochemiluminescence resonance energy transfer[J].Sens.Actuators B,2014,197:43-49. [86] LIU K K,ZHANG J R,LIU Q,et al.Electrochemical immunosensor for alpha-fetoprotein determination based on ZnSe quantum dots/Azure I/gold nanoparticles/poly (3,4-ethylenedioxythiophene) modified Pt electrode[J].Electrochim Acta,2013,114:448-454. |
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