中文
Announcement
More
Progress in Chemistry 2012, Vol. 24 Issue (01): 131-143 Previous Articles   Next Articles

• Review •

Application of Electrochemical Enzyme Biosensor in Environmental Pollution Monitoring

Liu Jia, Yin Lifeng, Dai Yunrong, Jiang Fan, Niu Junfeng*   

  1. The State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing 100875, China
  • Received: Revised: Online: Published:
PDF ( 1588 ) Cited
Export

EndNote

Ris

BibTeX

Electrochemical enzyme biosensor is a kind of widely used biosensor which combines the specificity of interaction of enzyme and its substrate with the strong function of electrochemical analysis and is well-suited for real-time, on-site detection and analysis in the field with high sensitivity, selectivity, rapid response time and easy operation. Electrochemical enzyme biosensors have a wide range of application in the areas of pharmaceutical studies, clinical diagnostics, food quality control, agriculture industries as well as environmental monitoring. The effective immobilization of enzymes on the electrode is the critical step to construct an electrochemical enzyme biosensor. The selection of appropriate immobilization methods for constructing of electrochemical enzyme biosensor governs the efficiency of the biosensor in terms of electron transfer kinetics, mass transport, operational stability, repeatability and reproducibility. On the basis of briefly clarifying the working principle of electrochemical enzyme biosensor, this review summarizes enzyme immobilization methods used in constructing of an electrochemical enzyme biosensor. The advantages and disadvantages of different immobilization methods are also discussed. In addition, the applications of electrochemical enzyme biosensor in environmental pollution monitoring including organic pollutants, inorganic pollutants and heavy metal are highlighted and the prospects of electrochemical enzyme biosensor used in environmental monitoring are also presented.

Contents
1 Introduction
2 Construction of electrochemical enzyme biosensor
3 Environmental applications
3.1 Organic pollutants
3.2 Inorganic pollutants
3.3 Heavy metals
4 Conclusions and outlook

CLC Number: 

[1] Tothill I E. Comput. Electron. Agr., 2001, 30: 205-218
[2] Lowe C R. Trends Biotechnol., 1984, 2: 59-65
[3] Yang S, Jia W Z, Qian Q Y, Zhou Y G, Xia X H. Anal. Chem., 2009, 81: 3478-3484
[4] Kang X H, Wang J, Wu H, Aksay I A, Liu J, Lin Y H. Biosens. Bioelectron., 2009, 25: 901-905
[5] Lu X B, Zhou J H, Lu W, Liu Q, Li J H. Biosens. Bioelectron., 2008, 23: 1236-1243
[6] Rodriguez-Mozaz S, Lopez de Alda M, Barceló D. Anal. Bioanal. Chem., 2006, 386: 1025-1041
[7] Sun X, Wang X. Biosens. Bioelectron., 2010, 25: 2611-2614
[8] Clark L C, Lyons C. Ann. NY. Acad. Sci., 1962, 102: 29-45
[9] Updike S J, Hicks G P. Nature, 1967, 214: 986-988
[10] Wanekaya A K, Chen W, Mulchandani A. J. Environ. Monitor., 2008, 10: 703-712
[11] Kamtekar S D, Pande R, Ayyagari M S, Marx K A, Kaplan D L, Kumar J, Tripathy S. Anal. Chem., 1996, 68: 216-220
[12] Bontidean I, Lloyd J R, Hobman J L, Wilson J R, Csöregi E, Mattiasson B, Brown N L. J. Inorg. Biochem., 2000, 79: 225-229
[13] Rogers K R, Williams L R. TrAC Trends Anal. Chem., 1995, 14: 89-294
[14] Atanassov P, Apblett C, Banta S, Brozik S, Barton S C, Cooney M, Liaw B Y, Mukerjee S, Minteer S D. The Electrochemical Society Interface, 2007, 16: 28-31
[15] Yu Z M, Zhao G H, Liu M C, Lei Y Z, Li M F. Environ. Sci. Technol., 2010, 44: 7878-7883
[16] Ruzgas T, Csoregi E, Emneus J, Gorton L, MarkoVarga G. Anal. Chim. Acta, 1996, 330: 123-138
[17] Topcu S M, Erhan E, Keskinler B. Appl. Biochem. Biotech., 2010, 160: 856-867
[18] Munteanu F D, Cavaco-Paulo A. Anal. Lett., 2010, 43: 1126-1131
[19] Pohanka M, Dobes P, Drtinova L, Ku?a K. Electroanal., 2009, 21: 1177-1182
[20] Chen D, Wang G, Li J H. J. Phys. Chem. C, 2007, 111: 2351-2367
[21] 鞠熀先(Ju H X). 电分析化学与生物传感技术(Electroanalysis Chemistry and Biological Sensing Technology). 北京: 科学出版社(Beijing: Science Press), 2006. 187-197
[22] Brady D, Jordaan J. Biotechnol. Lett., 2009, 31: 1639-1650
[23] Hanefeld U, Gardossi L, Magner E. Chem. Soc. Rev., 2009, 38: 453-468
[24] Farré M, Kantiani L, Pérez S, Barceló D. TrAC Trends Anal. Chem., 2009, 28: 170-185
[25] Xu S J, Liu Y, Wang T H, Li J H. Anal. Chem., 2010, 82: 9566-9572
[26] Wang J. Analytical Electrochemistry. Hoboken, New Jersey, USA: John Wiley & Sons VCH, 2006
[27] Ronkainen N J, Halsall H B, Heineman W R. Chem. Soc. Rev., 2010, 39: 1747-1763
[28] Eggins B R. Chemical Sensors and Biosensors. West Sussex, England: John Wiley & Sons, 2002
[29] Keusgen M. Naturwissenschaften, 2002, 89: 433-444
[30] Sheldon R A. Adv. Synth. Catal., 2007, 349: 1289-1307
[31] Arya S K, Datta M, Malhotra B D. Biosens. Bioelectron., 2008, 23: 1083-1100
[32] Chaki N K, Vijayamohanan K. Biosens. Bioelectron., 2002, 17: 1-12
[33] Chen D, Li J H. Surf. Sci. Rep., 2006, 61: 445-464
[34] Pierre A C. Biocatal. Biotransfor., 2004, 22: 145-170
[35] Braun S, Rappoport S, Zusman R, Avnir D, Ottolenghi M. Mater. Lett., 1990, 10: 1-5
[36] Cao L Q. Unconventional Enzyme Immobilization. Carrier-bound Immobilized Enzymes. Wiley-VCH Verlag GmbH & Co. KGaA, 2006. 449-549
[37] 代云容(Dai Y R),牛军峰(Niu J F),殷立峰(Yin L F),刘佳(Liu J),蒋国翔(Jiang G X). 化学进展(Progress in Chemistry), 2010, 22(9): 1808-1818
[38] Badihi-Mossberg M, Buchner V, Rishpon J. Electroanal., 2007, 19: 2015-2028
[39] Guo D J, Lakshmikantham V. Non-Linear Problems in Abstract Cones. Boston: Academic Press, 1988
[40] Mita D G, Attanasio A, Arduini F, Diano N, Grano V, Bencivenga U, Rossi S, Amine A, Moscone D. Biosens. Bioelectron., 2007, 23: 60-65
[41] Alarcón G, Guix M, Ambrosi A, Ramirez Silva M T, Palomar Pardave M E, Merkoçi A. Nanotechnology, 2010, 21: art. no. 245502
[42] Tan Y M, Deng W F, Ge B, Xie Q J, Huang J H, Yao S Z. Biosens. Bioelectron., 2009, 24: 2225-2231
[43] Korkut S, Keskinler B, Erhan E. Talanta, 2008, 76: 1147-1152
[44] Yaropolov A I, Kharybin A N, Emnéus J, Marko-Varga G, Gorton L. Anal. Chim. Acta, 1995, 308: 137-144
[45] Freire R S, Durán N, Kubota L T. Talanta, 2001, 54: 681-686
[46] Haghighi B, Gorton L, Ruzgas T, Jönsson L J. Anal. Chim. Acta, 2003, 487: 3-14
[47] Jarosz-Wilkolazka A, Janusz G, Ruzgas T, Gorton L, Malarczyk E, Leonowicz A. Anal. Lett., 2004, 37: 1497-1513
[48] Wang Y, Hasebe Y. Talanta, 2009, 79: 1135-1141
[49] Dzyadevych S V, Soldatkin A P, Arkhypova V N, Elskaya A V, Chovelon J M, Georgiou C A, Martelet C, Jaffrezic-Renault N. Sens. Actuators B, 2005, 105: 81-87
[50] Zhao W, Ge P Y, Xu J J, Chen H Y. Environ. Sci. Technol., 2009, 43: 6724-6729
[51] Sole S, Merkoci A, Alegret S. Crit. Rev. Anal. Chem., 2003, 33: 89-96
[52] Rekha K, Gouda M D, Thakur M S, Karanth N G. Biosens. Bioelectron., 2000, 15: 499-502
[53] Du D, Ye X X, Cai J, Liu J, Zhang A D. Biosens. Bioelectron., 2010, 25: 2503-2508
[54] Chen D, Tang L H, Li J H. Chem. Soc. Rev., 2010, 39: 3157-3180
[55] Wang Y, Zhang S, Du D, Shao Y Y, Li Z H, Wang J, Engelhard M H, Li J H, Lin Y H. J. Mater. Chem., 2011, 21: 5319-5325
[56] Vidal J C, Bonel L, Castillo J R. Electroanal., 2008, 20: 865-873
[57] Tanimoto de Albuquerque Y D, Ferreira L F. Anal. Chim. Acta, 2007, 596: 210-221
[58] Vidal J C, Esteban S, Gil J, Castillo J R. Talanta, 2006, 68: 791-799
[59] Wang Y, Lu J, Tang L H, Chang H X, Li J H. Anal. Chem., 2009, 81: 9710-9715
[60] Zhang Y L, Wang Y, Wang H B, Jiang J H, Shen G L, Yu R Q, Li J H. Anal. Chem., 2009, 81: 1982-1987
[61] Munnecke D M. Biotechnol. Bioeng., 1979, 21: 2247-2261
[62] Russell R J, Pishko M V, Simonian A L, Wild J R. Anal. Chem., 1999, 71: 4909-4912
[63] Du D, Chen W J, Zhang W Y, Liu D L, Li H B, Lin Y H. Biosens. Bioelectron., 2010, 25: 1370-1375
[64] Laothanachareon T, Champreda V, Sritongkham P, Somasundrum M, Surareungchai W. World J. Microbiol. Biotechnol., 2008, 24: 3049-3055
[65] Qu Y H, Sun Q, Xiao F, Shi G Y, Jin L T. Bioelectrochemistry, 2010, 77: 139-144
[66] Kim G Y, Shim J, Kang M S, Moon S H. J. Environ. Monitor., 2008, 10: 632-637
[67] Choi J W, Kim Y K, Song S Y, Lee I H, Lee W H. Biosens. Bioelectron., 2003, 18: 1461-1466
[68] Morales M D, Morante S, Escarpa A, González M C, Reviejo A J, Pingarrón J M. Talanta, 2002, 57: 1189-1198
[69] Sohail M, Adeloju S B. Sensor. Actuat. B-Chem., 2008, 133: 333-339
[70] Bendikov T A, Kim J, Harmon T C. Sensor. Actuat. B-Chem., 2005, 106: 512-517
[71] Narayana B, Sunil K. Eurasian J. Anal. Chem., 2009, 4: 204-214
[72] Klosin'ska T, Radomski A, Zielenkiewicz T, Kowalczyk S. Annals of Warsaw University of Life Sciences-SGGW, Forestry Wood Technol., 2009, 68: 367-374
[73] Davenport R J, Johnson D C. Anal. Chem., 1973, 45: 1979-1980
[74] Albanese D, di Matteo M, Alessio C. Computer Aided Chemical Engineering, 2010, 28: 283-288
[75] Sohail M, Adeloju S. Electroanal., 2009, 21: 1411-1418
[76] Cosnier S, da Silva S, Shan D, Gorgy K. Bioelectrochemistry, 2008, 74: 47-51
[77] Kamyabi M A, Aghajanloo F. J. Electroanal. Chem., 2008, 614: 157-165
[78] Gieseke A, Tarre S, Green M, de Beer D. Appl. Environ. Microbiol., 2006, 72: 4283-4292
[79] Isoda N, Yokoyama H, Nojiri M, Suzuki S, Yamaguchi K. Bioelectrochemistry, 2010, 77: 82-88
[80] Zhang Z Q, Xia S Q, Leonard D, Jaffrezic-Renault N, Zhang J, Bessueille F, Goepfert Y, Wang X J, Chen L, Zhu Z L, Zhao J F, Almeida M G, Silveira C M. Biosens. Bioelectron., 2009, 24: 1574-1579
[81] Silveira C M, Gomes S P, Araújo A N, Montenegro M C B S M, Todorovic S, Viana A S, Silva R J C, Moura J J G, Almeida M G. Biosens. Bioelectron., 2010, 25: 2026-2032
[82] Chen Q P, Ai S Y, Zhu X B, Yin H S, Ma Q, Qiu Y Y. Biosens. Bioelectron., 2009, 24: 2991-2996
[83] Chen H, Mousty C, Chen L, Cosnier S. Mater. Sci. Eng. C, 2008, 28: 726-730
[84] Zazoua A, Hnaien M, Cosnier S, Jaffrezic-Renault N, Kherrat R. Mater. Sci. Eng. C, 2009, 29: 1919-1922
[85] Salimi A, Noorbakhsh A, Ghadermarzi M. Sens. Actuators B, 2007, 123: 530-537
[86] EPA new: EPA Sets Reference Dose for Perchlorate, (2005).[2011-04-30]. http: //www. epa. gov/fedfac/documents/perchlorate_links. htm#pgepadocs
[87] CDHS, Perchlorate Drinking Water Action Level and Regulation, D. O. H. Services, Ed. Sacramento, CA. 2004
[88] Okeke B C, Ma G Y, Cheng Q, Losi M E, Frankenberger W T. J. Microbiol. Meth., 2007, 68: 69-75
[89] Yin C X, Su J, Huo F J, Yang P. Health, 2009, 1: 76-82
[90] Tsoulfanidis I A, Tsogas G Z, Giokas D L, Vlessidis A G. Microchim. Acta, 2008, 160: 461-469
[91] Kulys J, Higgins I J, Bannister J V. Biosens. Bioelectron., 1992, 7: 187-191
[92] Parellada J, Narváez A, López M A, Domínguez E, Fernández J J, Pavlov V, Katakis I. Anal. Chim. Acta, 1998, 362: 47-57
[93] Bontidean I, Lloyd J R, Hobman J L, Brown N L, Mattiasson B, Csöregi E. American Chemical Society, 2000, 102-112
[94] Ghica M E, Brett C M A. Microchim. Acta, 2008, 163: 185-193
[95] Bontidean I, Berggren C, Johansson G, Csöregi E, Mattiasson B, Lloyd J R, Jakeman K J, Brown N L. Anal. Chem., 1998, 70: 4162-4169
[96] Berezhetskyy A L, Sosovska O F, Durrieu C, Chovelon J M, Dzyadevych S V, Tran-Minh C. IRBM, 2008, 29: 136-140
[97] Domínguez-Renedo O, Alonso-Lomillo M A, Ferreira-Gonalves L, Arcos-Martínez M J. Talanta, 2009, 79: 1306-1310
[98] Bagal-Kestwal D, Karve M S, Kakade B, Pillai V K. Biosens. Bioelectron., 2008, 24: 657-664
[99] Tsai H C, Doong R A. Biosens. Bioelectron., 2007, 23: 66-73
[100] Fiorentino D, Gallone A, Fiocco D, Palazzo G, Mallardi A. Biosens. Bioelectron., 2010, 25: 2033-2037
[101] Adamski J, Nowak P, Kochana J. Electrochim. Acta, 2010, 55: 2363-2367
[102] Kushwah B S, Bhadauria S. J. Appl. Polym. Sci., 2010, 115: 1358-1365
[103] Wang P, Liu M, Kan J. Sens. Actuators B, 2009, 140: 577-584
[104] Kochana J, Gala A, Parczewski A, Adamski J. Anal. Bioanal. Chem., 2008, 391: 1275-1281
[105] Fan Q, Shan D, Xue H G, He Y Y, Cosnier S. Biosens. Bioelectron., 2007, 22: 816-821
[106] ElKaoutit M, Naranjo-Rodriguez L, Temsamani K R, de la Vega M D, de Cisneros J L H H. J. Agr. Food Chem., 2007, 55: 8011-8018
[107] Dempsey E, Diamond D, Collier A. Biosens. Bioelectron., 2004, 20: 367-377
[108] Moccelini S K, Vieira I C, de Lima F, Lucca B G, Barbosa A M J, Ferreira V S. Talanta, 2010, 82: 164-170
[109] Ion A C, Ion I, Culetu A, Gherase D, Moldovan C A, Iosub R, Dinescu A. Mater. Sci. Eng. C, 2010, 30: 817-821
[110] Kim G Y, Shim J, Kang M S, Moon S H. J. Environ. Monitor., 2008, 10: 632-637
[111] Orbulescu J, Constantine C A, Rastogi V K, Shah S S, DeFrank J J, Leblanc R M. Anal. Chem., 2006, 78: 7016-7021
[112] Campanella L, Dragone R, Lelo D, Martini E, Tomassetti M. Anal. Bioanal. Chem., 2006, 384: 915-921
[113] Hmmerle M, Hilgert K, Achmann S, Moos R. Biosens. Bioelectron., 2010, 25: 1521-1525
[114] Demkiv O, Smutok O, Paryzhak S, Gayda G, Sultanov Y, Guschin D, Shkil H, Schuhmann W, Gonchar M. Talanta, 2008, 76: 837-846
[115] Achmann S, Hämmerle M, Moos R. Electroanal., 2008, 20: 410-417
[116] Khadro B, Namour P, Bessueille F, Leonard D, Jaffrezic-Renault N. Sensor. Mater., 2008, 20: 267-279
[117] Wang X J, Dzyadevych S V, Chovelon J M, Renault N J, Chen L, Xia S Q, Zhao J F. Talanta, 2006, 69: 450-455
[118] Kuralay F,Özyörük H, YildIz A. Enzyme Microb. Tech., 2007, 40: 1156-1159
[57] Tanimoto de Albuquerque Y D, Ferreira L F. Anal. Chim. Acta, 2007, 596: 210-221

[58] Vidal J C, Esteban S, Gil J, Castillo J R. Talanta, 2006, 68: 791-799

[59] Wang Y, Lu J, Tang L H, Chang H X, Li J H. Anal. Chem., 2009, 81: 9710-9715

[60] Zhang Y L, Wang Y, Wang H B, Jiang J H, Shen G L, Yu R Q, Li J H. Anal. Chem., 2009, 81: 1982-1987

[61] Munnecke D M. Biotechnol. Bioeng., 1979, 21: 2247-2261

[62] Russell R J, Pishko M V, Simonian A L, Wild J R. Anal. Chem., 1999, 71: 4909-4912

[63] Du D, Chen W J, Zhang W Y, Liu D L, Li H B, Lin Y H. Biosens. Bioelectron., 2010, 25: 1370-1375

[64] Laothanachareon T, Champreda V, Sritongkham P, Somasundrum M, Surareungchai W. World J. Microbiol. Biotechnol., 2008, 24: 3049-3055

[65] Qu Y H, Sun Q, Xiao F, Shi G Y, Jin L T. Bioelectrochemistry, 2010, 77: 139-144

[66] Kim G Y, Shim J, Kang M S, Moon S H. J. Environ. Monitor., 2008, 10: 632-637

[67] Choi J W, Kim Y K, Song S Y, Lee I H, Lee W H. Biosens. Bioelectron., 2003, 18: 1461-1466

[68] Morales M D, Morante S, Escarpa A, González M C, Reviejo A J, Pingarrón J M. Talanta, 2002, 57: 1189-1198

[69] Sohail M, Adeloju S B. Sensor. Actuat. B-Chem., 2008, 133: 333-339

[70] Bendikov T A, Kim J, Harmon T C. Sensor. Actuat. B-Chem., 2005, 106: 512-517

[71] Narayana B, Sunil K. Eurasian J. Anal. Chem., 2009, 4: 204-214

[72] Klosin'ska T, Radomski A, Zielenkiewicz T, Kowalczyk S. Annals of Warsaw University of Life Sciences-SGGW, Forestry Wood Technol., 2009, 68: 367-374

[73] Davenport R J, Johnson D C. Anal. Chem., 1973, 45: 1979-1980

[74] Albanese D, Di Matteo M, Alessio C. Computer Aided Chemical Engineering, 2010, 28: 283-288

[75] Sohail M, Adeloju S. Electroanal., 2009, 21: 1411-1418

[76] Cosnier S, Da Silva S, Shan D, Gorgy K. Bioelectrochemistry, 2008, 74: 47-51

[77] Kamyabi M A, Aghajanloo F. J. Electroanal. Chem., 2008, 614: 157-165

[78] Gieseke A, Tarre S, Green M, de Beer D. Appl. Environ. Microbiol., 2006, 72: 4283-4292

[79] Isoda N, Yokoyama H, Nojiri M, Suzuki S, Yamaguchi K. Bioelectrochemistry, 2010, 77: 82-88

[80] Zhang Z Q, Xia S Q, Leonard D, Jaffrezic-Renault N, Zhang J, Bessueille F, Goepfert Y, Wang X J, Chen L, Zhu Z L, Zhao J F, Almeida M G, Silveira C M. Biosens. Bioelectron., 2009, 24: 1574-1579

[81] Silveira C M, Gomes S P, Araújo A N, Montenegro M C B S M, Todorovic S, Viana A S, Silva R J C, Moura J J G, Almeida M G. Biosens. Bioelectron., 2010, 25: 2026-2032

[82] Chen Q P, Ai S Y, Zhu X B, Yin H S, Ma Q, Qiu Y Y. Biosens. Bioelectron., 2009, 24: 2991-2996

[83] Chen H, Mousty C, Chen L, Cosnier S. Mater. Sci. Eng, C, 2008, 28: 726-730

[84] Zazoua A, Hnaien M, Cosnier S, Jaffrezic-Renault N, Kherrat R. Mater. Sci. Eng, C, 2009, 29: 1919-1922

[85] Salimi A, Noorbakhsh A, Ghadermarzi M. Sens. Actuators, B, 2007, 123: 530-537

[86] EPA new: EPA Sets Reference Dose for Perchlorate, 2005. http: //www. epa. gov/fedfac/documents/perchlorate_links. htm#pgepadocs

[87] CDHS, Perchlorate Drinking Water Action Level and Regulation, D. o. H. Services, Editor. 2004: Sacramento, CA

[88] Okeke B C, Ma G Y, Cheng Q, Losi M E, Frankenberger Jr W T. J. Microbiol. Meth., 2007, 68: 69-75

[89] Yin C X, Su J, Huo F J, Yang P. Health, 2009, 1: 76-82

[90] Tsoulfanidis I A, Tsogas G Z, Giokas D L, Vlessidis, A G. Microchim. Acta, 2008, 160: 461-469

[91] Kulys J, Higgins I J, Bannister J V. Biosens. Bioelectron., 1992, 7: 187-191

[92] Parellada J, Narváez A, López M A, Domínguez E, Fernández J J, Pavlov V, Katakis I. Anal. Chim. Acta, 1998, 362: 47-57

[93] Bontidean I, Lloyd J R, Hobman J L, Brown N L, Mattiasson B, Csöregi E. American Chemical Society, 2000. 102-112

[94] Ghica M E, Brett C M A. Microchim. Acta, 2008, 163: 185-193

[95] Bontidean I, Berggren C, Johansson G, Csöregi E, Mattiasson B, Lloyd J R, Jakeman K J, Brown N L. Anal. Chem., 1998, 70: 4162-4169

[96] Berezhetskyy A L, Sosovska O F, Durrieu C, Chovelon J M, Dzyadevych S V, Tran-Minh C. IRBM, 2008, 29: 136-140

[97] Domínguez-Renedo O, Alonso-Lomillo M A, Ferreira-Gonalves L, Arcos-Martínez M J. Talanta, 2009, 79: 1306-1310

[98] Bagal-Kestwal D, Karve M S, Kakade B, Pillai V K. Biosens. Bioelectron., 2008, 24: 657-664

[99] Tsai H-c, Doong R-a. Biosens. Bioelectron., 2007, 23: 66-73

[100] Fiorentino D, Gallone A, Fiocco D, Palazzo G, Mallardi A. Biosens. Bioelectron., 2010, 25: 2033-2037

[101] Adamski J, Nowak P, Kochana J. Electrochim. Acta, 2010, 55: 2363-2367

[102] Kushwah B S, Bhadauria S. J. Appl. Polym. Sci., 2010, 115: 1358-1365

[103] Wang P, Liu M, Kan J. Sens. Actuators B, 2009, 140: 577-584

[104] Kochana J, Gala A, Parczewski A, Adamski J. Anal. Bioanal. Chem., 2008, 391: 1275-1281

[105] Fan Q, Shan D, Xue H G, He Y Y, Cosnier S. Biosens. Bioelectron., 2007, 22: 816-821

[106] ElKaoutit M, Naranjo-Rodriguez L, Temsamani K R, de la Vega M D, de Cisneros J L H H. J. Agr. Food Chem., 2007, 55: 8011-8018

[107] Dempsey E, Diamond D, Collier A. Biosens. Bioelectron., 2004, 20: 367-377

[108] Moccelini S K, Vieira I C, de Lima F, Lucca B G, Barbosa A M J, Ferreira V S. Talanta, 2010, 82: 164-170

[109] Ion A C, Ion I, Culetu A, Gherase D, Moldovan C A, Iosub R, Dinescu A. Mater. Sci. Eng, C., 2010, 30: 817-821

[110] Kim G Y, Shim J, Kang M S, Moon S H. J. Environ. Monitor., 2008, 10: 632-637

[111] Orbulescu J, Constantine C A, Rastogi V K, Shah S S, DeFrank J J, Leblanc R M. Anal. Chem., 2006, 78: 7016-7021

[112] Campanella L, Dragone R, Lelo D, Martini E, Tomassetti M. Anal. Bioanal. Chem., 2006, 384: 915-921

[113] Hmmerle M, Hilgert K, Achmann S, Moos R. Biosens. Bioelectron., 2010, 25: 1521-1525

[114] Demkiv O, Smutok O, Paryzhak S, Gayda G, Sultanov Y, Guschin D, Shkil H, Schuhmann W, Gonchar M. Talanta, 2008, 76: 837-846

[115] Achmann S, Hmmerle M, Moos R. Electroanal., 2008, 20: 410-417

[116] Khadro B, Namour P, Bessueille F, Leonard D, Jaffrezic-Renault N. Sensor. Mater., 2008, 20: 267-279

[117] Wang X J, Dzyadevych S V, Chovelon J M, Renault N J, Chen L, Xia S Q, Zhao J F. Talanta, 2006, 69: 450-455

[118] Kuralay F, zyörük H, YildIz A. Enzyme Microb. Tech., 2007, 40: 1156-1159

[1] Kelong Fan, Lizeng Gao, Hui Wei, Bing Jiang, Daji Wang, Ruofei Zhang, Jiuyang He, Xiangqin Meng, Zhuoran Wang, Huizhen Fan, Tao Wen, Demin Duan, Lei Chen, Wei Jiang, Yu Lu, Bing Jiang, Yonghua Wei, Wei Li, Ye Yuan, Haijiao Dong, Lu Zhang, Chaoyi Hong, Zixia Zhang, Miaomiao Cheng, Xin Geng, Tongyang Hou, Yaxin Hou, Jianru Li, Guoheng Tang, Yue Zhao, Hanqing Zhao, Shuai Zhang, Jiaying Xie, Zijun Zhou, Jinsong Ren, Xinglu Huang, Xingfa Gao, Minmin Liang, Yu Zhang, Haiyan Xu, Xiaogang Qu, Xiyun Yan. Nanozymes [J]. Progress in Chemistry, 2023, 35(1): 1-87.
[2] Huiyue Wang, Xin Hu, Yujing Hu, Ning Zhu, Kai Guo. Enzyme-Catalyzed Atom Transfer Radical Polymerization [J]. Progress in Chemistry, 2022, 34(8): 1796-1808.
[3] Lijun Bao, Junwu Wei, Yangyang Qian, Yujia Wang, Wenjie Song, Yunmei Bi. Synthesis, Properties and Applications of Enzyme-Responsive Linear-Dendritic Block Copolymers [J]. Progress in Chemistry, 2022, 34(8): 1723-1733.
[4] Yaqi Wang, Qiang Wu, Junling Chen, Feng Liang. Diels-Alder Reaction Catalyst [J]. Progress in Chemistry, 2022, 34(2): 474-486.
[5] Gang Lin, Yuanyuan Zhang, Jian Liu. Bioinspired Photo/(Electro)-Catalytic NADH Regeneration [J]. Progress in Chemistry, 2022, 34(11): 2351-2360.
[6] Zitong Zhao, Zhenzhen Zhang, Zhihong Liang. The Activity Origin, Catalytic Mechanism and Future Application of Peptide-Based Artificial Hydrolase [J]. Progress in Chemistry, 2022, 34(11): 2386-2404.
[7] Yong Xie, Mingjie Han, Yuhao Xu, Chenyu Xiong, Ri Wang, Shanhong Xia. Inner Filter Effect for Environmental Monitoring [J]. Progress in Chemistry, 2021, 33(8): 1450-1460.
[8] Chen Hou, Wenqiang Chen, Linhui Fu, Sufeng Zhang, Chen Liang. Covalent Organic Frameworks(COFs) Materials in Enzyme Immobilization and Mimic Enzymes [J]. Progress in Chemistry, 2020, 32(7): 895-905.
[9] Hua Guo, Lei Zhang, Xu Dong, Gangyi Shen, Junfa Yin. Immobilized Multi-Enzyme Cascade Reactor [J]. Progress in Chemistry, 2020, 32(4): 392-405.
[10] Danbi Tian, Shengnan Wu, Hao Zhang, Ling Jiang, Fengwei Huo. Application of Inner Filter Effect Technology in Biological Detection and Disease Markers [J]. Progress in Chemistry, 2019, 31(2/3): 413-421.
[11] Jiqian Wang*, Hongyu Yan, Jie Li, Liyan Zhang, Yurong Zhao, Hai Xu*. Artificial Metalloenzymes Based on Peptide Self-Assembly [J]. Progress in Chemistry, 2018, 30(8): 1121-1132.
[12] Chenxi Liang, Lixin Cao*, Yuejuan Zhang, Peisheng Yan. Electrochemical Biosensors for Marine Toxins Analysis [J]. Progress in Chemistry, 2018, 30(7): 1028-1034.
[13] Yingwu Lin. Rational Design of Artificial Metalloenzymes: Case Studies in Myoglobin [J]. Progress in Chemistry, 2018, 30(10): 1464-1474.
[14] Zhao Yanan, Wang Mengfan, Qi Wei, Su Rongxin, He Zhimin. Supramolecular Artificial Enzyme Based on Assembling Peptide Gel [J]. Progress in Chemistry, 2016, 28(11): 1664-1671.
[15] Wan Xiaomei, Zhang Chuan, Yu Dinghua, Huang He, Hu Yi. Enzyme Immobilized on Carbon Nanotubes [J]. Progress in Chemistry, 2015, 27(9): 1251-1259.