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化学进展 2011, Vol. 23 Issue (6): 1224-1236 前一篇   后一篇

• 综述与评论 •

漆酶的生物电化学研究

赵丹1,3, 王炎2, 赵敏1*   

  1. 1. 东北林业大学生命科学学院 哈尔滨 150040;
    2. 哈尔滨工业大学理学中心 哈尔滨 150001;
    3. 黑龙江大学生命科学学院 微生物省高校重点实验室 哈尔滨 150080
  • 收稿日期:2010-10-01 修回日期:2011-01-01 出版日期:2011-06-24 发布日期:2011-05-29
  • 作者简介:e-mail: 82191513@163.com
  • 基金资助:

    世界自然基金项目(No.WWF, CN0078.01)、国家自然科学基金项目(No.30170775, 30671702)和国家支撑项目(No.2008BADA1B01)资助

Bioelectrochemistry of Laccase

Zhao Dan1,3, Wang Yan2, Zhao Min1*   

  1. 1. Department of Microbiology, College of Life Science, Northeast Forestry University, Harbin 150040, China;
    2. Science Research Center, Harbin Institute of Technology, Harbin 150001, China;
    3. Key Laboratory of Microbiology, Life Science Department, Heilongjiang University, Harbin 150080, China
  • Received:2010-10-01 Revised:2011-01-01 Online:2011-06-24 Published:2011-05-29

漆酶属于蓝多铜氧化酶家族,在自然界尤其是真菌中广泛存在。漆酶在催化多种底物氧化的同时,伴随氧一步四电子直接还原生成水,铜离子活性中心作为辅助基团,参与电子传递过程。漆酶这一良好的电化学特性使其成为生物阴极的理想催化剂。本文综述了漆酶作为具有生物活性的氧化还原蛋白质在电化学领域的研究情况,从漆酶的结构及来源、生物电催化反应机制(氧分子的还原和漆酶反应中间体的生成、铜离子活性中心的氧化还原电势、直接和介体参与的电子传递、影响漆酶电化学活性的因素)、漆酶修饰电极的材料和固定化技术及漆酶在电化学领域的应用等方面介绍了相关的研究进展。提出了漆酶电化学基础理论和实践应用中尚待解决的问题,展望了漆酶在电化学领域应用的发展方向。

Laccases belonging to multicopper oxidases are widely existed in nature especially fungi. Laccases catalyze oxidation of a wide variety of substrates with the reduction of dioxygen to water through a four electron mechanism. Copper-active center participates the process as a prosthetic group. The perfect electrochemical characteristic of laccase makes it an ideal catalyst in biocathode. The paper reviews the latest developments of laccase as a redox-protein in the field of electrochemistry. The structure, source, bioelectrocatalysis mechanism (reduction of dioxygen and formation of reaction intermediate, potential of copper-active center, DET and MET, factors affected electrocatalytic activity of laccase), the materials and immobilization of electrode modified with laccases, applications in electrochemistry are summarized. The main problems and prospects of laccases in electrochemistry are presented.

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[1] Yoshida H. J. Chem. Soc., 1883, 43: 472-486
[2] Lafayette P, Eriksson K, Dean J. Plant Molecular Biology, 1999, 40(1):23-35
[3] Gavnholt B, Larsen K, Rasmussen S. Plant Science, 2002, 162(6):873-885
[4] Caparros-Ruiz D, Fornale S, Civardi L, Puigdom Nech P, Rigau J. Plant Science, 2006, 171(2):217-225
[5] Niladevi K N, Sukumaran R K, Jacob N, Anisha G S, Prema P. Microbiological Research, 2009, 164(1):105-113
[6] Eddowes M, Hill H. Journal of the Chemical Society, Chemical Communications, 1977, (21): 771-772
[7] Berezin I V, Bogdanovskaya V A, Varfolomeev S D, Tarasevich M R, Yaropolov A I. Doklady Akademii Nauk SSSR, 1978, 240:615-618
[8] Tarasevich M R. Journal of Electroanalytical Chemistry, 1979, 104:587-597
[9] Tarasevich M R, Yaropolov A I, Bogdanovskaya V A, Varfolomeev S D. Bioelectrochemistry, Bioenergetics, 1979, 6(3):393-403
[10] Bonk S, Lisdat F. Biosensors and Bioelectronics, 2009, 25:739-744
[11] Amadelli R, Molinari A, Vitali I, Samiolo L, Mura G, Maldotti A. Catalysis Today, 2005, 101(3/4):397-405
[12] Mano N, Mao F, Heller A. Journal of the American Chemical Society, 2003, 125(21):6588-6594
[13] 蔡称心(Cai C X), 陈静(Chen J). 化学学报(Acta Chimica Sinica), 2004, 62(3):335-340
[14] 万云洋(Wan Y Y), 杜予民(Du Y M). 化学通报(Chemistry), 2007, (9):662-670
[15] Rekuc A, Bryjak J, Szymanska K, Jarzebski A B. Bioresource Technology, 2010, 101(7):2076-2083
[16] Lesniewski A, Niedziolka-Jonsson J, Rizzi C, Gaillon L, Rogalski J, Opallo M. Electrochemistry Communications, 2010, 12(1):83-85
[17] Merle G, Brunel L, Tingry S, Cretin M, Roll M, Servat K, Jolivalt C, Innocent C, Seta P. Materials Science and Engineering: C, 2008, 28(5/6):932-938
[18] Zhou M, Deng L, Wen D, Shang L, Jin L, Dong S. Biosensors and Bioelectronics, 2009, 24(9):2904-2908
[19] Zhao H Y, Zhou H M, Zhang J X, Zheng W, Zheng Y F. Biosensors and Bioelectronics, 2009, 25(2):463-468
[20] Zebda A, Renaud L, Cretin M, Pichot F, Innocent C, Ferrigno R, Tingry S. Electrochemistry Communications, 2009, 11(3):592-595
[21] Liu J X, Zhou W J, Gong J L, Tang L, Zhang Y, Yu H Y, Wang B, Xu X M, Zeng G M. Bioresource Technology, 2008, 99(18):8748-8751
[22] Elkaoutit M, Naranjo-Rodriguez I, Temsamani K R, Dominguez M, de Cisneros J L H H. Talanta, 2008, 75(5):1348-1355
[23] Elkaoutit M, Naranjo-Rodriguez I, Temsamani K R, Hernandez-Artiga M P, Bellido-Milla D, de Cisneros J L H H. Food Chemistry, 2008, 110(4):1019-1024
[24] Xiang L, Lin Y, Yu P, Su L, Mao L. Electrochimica Acta, 2007, 52(12):4144-4152
[25] Ressine A, Vaz-Dominguez C, Fernandez V M, De Lacey A L, Laurell T, Ruzgas T, Shleev S. Biosensors and Bioelectronics, 2010, 25(5):1001-1007
[26] Giardina P, Faraco V, Pezzella C, Piscitelli A, Vanhulle S, Sannia G. Cellular and Molecular Life Sciences, 2010, 67(3):369-385
[27] Ducros V, Brzozowski A, Wilson K, Brown S, Stergaard P, Schneider P, Yaver D, Pedersen A, Davies G. Nature Structural & Molecular Biology, 1998, 5(4):310-316
[28] Piontek K, Antorini M, Choinowski T. Journal of Biological Chemistry, 2002, 277(40):37663-37671
[29] Ferraroni M, Myasoedova N, Schmatchenko V, Leontievsky A, Golovleva L, Scozzafava A, Briganti F. BMC Structural Biology, 2007, 7:60-72
[30] Garavaglia S, Teresa Cambria M, Miglio M, Ragusa S, Iacobazzi V, Palmieri F, D'ambrosio C, Scaloni A, Rizzi M. Journal of Molecular Biology, 2004, 342(5):1519-1531
[31] Enguita F, Martins L, Henriques A, Carrondo M. Journal of Biological Chemistry, 2003, 278(21):19416-19425
[32] Karhunen E, Niku-Paavola M, Viikari L, Haltia T, Van Der Meer R, Duine J. FEBS Letters, 1990, 267(1):6-8
[33] Palmieri G, Cennamo G, Faraco V, Amoresano A, Sannia G, Giardina P. Enzyme and Microbial Technology, 2003, 33(2/3):220-230
[34] Reinhammar B R M. Biochimica et Biophysica Acta (BBA) - Bioenergetics, 1972, 275(2):245-259
[35] Yaropolov A I, Kharybin A N, Emneus J, Marko-Varga G, Gorton L. Bioelectrochemistry and Bioenergetics, 1996, 40(1):49-57
[36] Lee J Y, Shin H Y, Kang S W, Park C, Kim S W. Journal of Power Sources, 2010, 195(3):750-755
[37] Tan Y, Deng W, Ge B, Xie Q, Huang J, Yao S. Biosensors and Bioelectronics, 2009, 24(7):2225-2231
[38] Xu X, Lu P, Zhou Y, Zhao Z, Guo M. Materials Science and Engineering: C, 2009, 29(7):2160-2164
[39] Miele A, Giardina P, Sannia G, Faraco V. Journal of applied microbiology, 2010, 108(3):998-1006
[40] Di Fusco M, Tortolini C, Deriu D, Mazzei F. Talanta, 2010, 81(1/2):235-240
[41] Cosnier S, Shan D, Ding S N. Electrochemistry Communications, 2010, 12(2):266-269
[42] Zheng W, Zhou H M, Zheng Y F, Wang N. Chemical Physics Letters, 2008, 457(4/6):381-385
[43] Hudak N S, Gallaway J W, Barton S C. Journal of Electroanalytical Chemistry, 2009, 629(1/2):57-62
[44] Gallaway J W, Calabrese Barton S A. Journal of Electroanalytical Chemistry, 2009, 626(1/2):149-155
[45] Vaz-Dominguez C, Campuzano S, Rudiger O, Pita M, Gorbacheva M, Shleev S, Fernandez V M, De Lacey A L. Biosensors and Bioelectronics, 2008, 24(4):531-537
[46] Smolander M, Boer H, Valkiainen M, Roozeman R, Bergelin M, Eriksson J E, Zhang X C, Koivula A, Viikari L. Enzyme and Microbial Technology, 2008, 43(2):93-102
[47] Jenkins P A, Boland S, Kavanagh P, Leech D. Bioelectrochemistry, 2009, 76(1/2):162-168
[48] Shleev S, Klis M, Wang Y, Rogalski J, Bilewicz R, Gorton L. Electroanalysis, 2007, 19(10):1039-1047
[49] Szot K, Nogala W, Niedziolka-Jonsson J, Jonsson-Niedziolka M, Marken F, Rogalski J, Kirchner C N, Wittstock G, Opallo M. Electrochimica Acta, 2009, 54(20):4620-4625
[50] Jonsson-Niedziolka M, Szot K, Rogalski J, Opallo M. Electrochemistry Communications, 2009, 11(5):1042-1044
[51] Szot K, Niedziolka J, Rogalski J, Marken F, Opallo M. Journal of Electroanalytical Chemistry, 2008, 612(1):1-8
[52] Szamocki R, Flexer V, Levin L, Forchiasin F, Calvo E J. Electrochimica Acta, 2009, 54(7):1970-1977
[53] Wang S C, Yang F, Silva M, Zarow A, Wang Y, Iqbal Z. Electrochemistry Communications, 2009, 11(1):34-37
[54] Arzola K G, Gimeno Y, Arevalo M C, Falcon M A, Creus A H. Bioelectrochemistry, 2010, 44(7):2211-2220
[55] Shleev S, Wang Y, Gorbacheva M, Christenson A, Haltrich D, Ludwig R, Ruzgas T, Gorton L. Electroanalysis, 2008, 20(9):963-969
[56] Hullo M F, Moszer I, Danchin A, Martin-Verstraete I. Journal of Bacteriology, 2001, 183(18):5426-5430
[57] 黄俊(Huang J),王行国(Wang X G). 化学与生物工程(Chemistry & Bioengineering), 2006, 23(3):31-34
[58] Ruijssenaars H, Hartmans S. Applied Microbiology and Biotechnology, 2004, 65(2):177-182
[59] Lee S, George S, Antholine W, Hedman B, Hodgson K, Solomon E. J. Am. Chem. Soc., 2002, 124(21):6180-6193
[60] Shin W, Sundaram U, Cole J, Zhang H, Hedman B, Hodgson K, Solomon E. J. Am. Chem. Soc., 1996, 118(13):3202-3215
[61] Christenson A, Dimcheva N, Ferapontova E, Gorton L, Ruzgas T, Stoica L, Shleev S, Yaropolov A, Haltrich D, Thorneley R. Electroanalysis, 2004, 16(13/14):1074-1092
[62] Solomon E, Chen P, Metz M, Lee S, Palmer A. Angewandte Chemie International Edition, 2001, 40(24):4570-4590
[63] Xu F, Kulis J, Duke K, Li K, Krikstopaitis K, Deussen H, Abbate E. Applied Environ. Microbiol., 2000, 66:2051-2058
[64] Pita M, Shleev S, Ruzgas T, Fernandez V M, Yaropolov A I, Gorton L. Electrochemistry Communications, 2006, 8(5):747-753
[65] Solomon E, Sundaram U and Machonkin T. Chem. Rev., 1996, 96(7):2563-2606
[66] Camarero S, Ibarra D, Martinez M, Martinez A. Applied and Environmental Microbiology, 2005, 71(4):1775-1784
[67] Xu F, Shin W, Brown S, Wahleithner J, Sundaram U, Solomon E. Biochimica et Biophysica Acta (BBA)-Protein Structure and Molecular Enzymology, 1996, 1292(2):303-311
[68] Klonowska A, Gaudin C, Fournel A, Asso M, Le Petit J, Giorgi M, Tron T. European Journal of Biochemistry, 2002, 269(24):6119-6125
[69] Schneider P, Caspersen M B, Mondorf K, Halkier T, Skov L K, OStergaard P R, Brown K M, Brown S H, Xu F. Enzyme and Microbial Technology, 1999, 25(6):502-508
[70] Reinhammar B, Vnngard T. European Journal of Biochemistry, 1971, 18(4):463-468
[71] Yaropolov A I, Skorobogat’ko O V, Vartanov S S, Varfolomeyev S D. Applied Biochemistry and Biotechnology, 1994, 49(3):257-280
[72] Lee C W, Gray H B, Anson F C, Malmstria B G. Journal of Electroanalytical Chemistry, 1984, 172(1/2):289-300
[73] Thuesen M, Farver O, Reinhammar B, Ulstrup J. Acta Chemica Scandinavica, 1998, 52(5):555-562
[74] Tarasevich M, Bogdanovskaya V, Kuznetsova L. Russian Journal of Electrochemistry, 2001, 37(8):833-837
[75] Shleev S, Zaitseva E, Gorshina E, Morozova O, Serezhenkov V, Burbaev D, Kuznetsov B, Yaropolov A. Moscow University Chemistry Buletin C/C of Vestnik-Moskovskii Universitet Khimiia, 2003, 58(1):45-50
[76] Santucci R, Ferri T, Morpurgo L, Savini I, Avigliano L. Biochemical Journal, 1998, 332(3):611-615
[77] Gelo-Pujic M, Kim H, Butlin N, Palmore G. Applied and Environmental Microbiology, 1999, 65(12):5515-5525
[78] Shleev S, Tkac J, Christenson A, Ruzgas T, Yaropolov A, Whittaker J, Gorton L. Biosensors and Bioelectronics, 2005, 20(12):2517-2554
[79] Shleev S, Christenson A, Serezhenkov V, Burbaev D, Yaropolov A, Gorton L, Ruzgas T. Biochemical Journal, 2005, 385(Pt 3):745-754
[80] Shleev S, Jarosz-Wilkolazka A, Khalunina A, Morozova O, Yaropolov A, Ruzgas T, Gorton L. Bioelectrochemistry, 2005, 67(1):115-124
[81] Tarasevich M R, Bogdanovskaya V A, Gavrilova E F, Orlov S B. Journal of Electroanalytical Chemistry, 1986, 206(1/2):217-227
[82] Fabbrini M, Galli C, Gentili P. Journal of Molecular Catalysis B: Enzymatic, 2002, 16(5/6):231-240
[83] Tayhas G, Palmore R, Kim H H. Journal of Electroanalytical Chemistry 1999, 464:110-117
[84] Marjasvaara A, Janis J, Vainiotalo P. Journal of Mass Spectrometry, 2008, 43(4):470-477
[85] Quan D, Kim Y, Shin W. Journal of Electroanalytical Chemistry, 2004, 561:181-189
[86] Nazaruk E, Smolinski S, Swatko-Ossor M, Ginalska G, Fiedurek J, Rogalski J, Bilewicz R. Journal of Power Sources, 2008, 183(2):533-538
[87] Ackermann Y, Guschin D, Eckhard K, Shleev S, Schuhmann W. Electrochemistry Communications, 2010, 12:640-643
[88] Nogala W, Szot K, Burchardt M, J Nsson-Niedziolka M, Rogalski J, Wittstock G, Opallo M. Bioelectrochemistry, 2010, 79:101-107
[89] Nogala W, Rozniecka E, Rogalski J, Opallo M. Journal of Electroanalytical Chemistry, 2007, 608(1):31-36
[90] 林丽萍(Lin L P), 赵敏(Zhao M). 东北林业大学学报(Journal of Northeast Forestry University), 2008, 36(9):76-78
[91] Naki A, Varfolomeyev S. Biokhimiia, 1981, 46: 1694-1702
[92] Xu F, Berka R, Wahleithner J, Nelson B, Shuster J, Brown S, Palmer A, Solomon E. Biochemical Journal, 1998, 334(1):63-70
[93] Spira-Solomon D, Allendorf M, Solomon E. Journal of the American Chemical Society, 1986, 108(17):5318-5328
[94] Mousty C, Vieille L, Cosnier S. Biosensors and Bioelectronics, 2007, 22(8):1733-1738
[95] Tagliazucchi M, Williams F, Calvo E. J. Phys. Chem. B, 2007, 111(28):8105-8113
[96] Tarasevich M R, Chirkov Y G, Bogdanovskaya V A, Kapustin A V. Electrochimica Acta, 2005, 51(3):418-426
[97] 马国仙(Ma G X). 复旦大学博士论文 (Doctoral Dissertation of Fudan University), 2008
[98] Kuznetsov B A, Byzova N A, Shumakovich G P. Journal of Electroanalytical Chemistry, 1994, 371(1/2):85-92
[99] Lisdat F, Wollenberger U, Makower A, Hortnagl H, Pfeiffer D, Scheller F W. Biosensors and Bioelectronics, 1997, 12(12):1199-1211
[100] Daigle F, Trudeau F, Robinson G, Smyth M R, Leech D. Biosensors and Bioelectronics, 1998, 13(3/4):417-425
[101] Kuznetsov B A, Shumakovich G P, Koroleva O V, Yaropolov A I. Biosensors and Bioelectronics, 2001, 16(1/2):73-84
[102] Stolarczyk K, Nazaruk E, Rogalski J, Bilewicz R. Electrochimica Acta, 2008, 53(11):3983-3990
[103] Borole A P, Labarge S, Spott B A. Journal of Power Sources, 2009, 188(2):421-426
[104] Tsujimura S, Kamitaka Y, Kano K. Fuel Cells, 2007, 7(6):463-469
[105] Gupta G, Rajendran V, Atanassov P. Electroanalysis, 2003, 15(20):1577-1583
[106] Klis M, Maicka E, Michota A, Bukowska J, Sek S, Rogalski J, Bilewicz R. Electrochimica Acta, 2007, 52(18):5591-5598
[107] 周波(Zhou B), 孙润光(Sun R G), 王丽华(Wang L H), 宋世平(Song S P), 樊春海(Fan C H). 化学进展(Progress in Chemistry), 2006, 18(7/8):1009-1013
[108] Farneth W, D'amore M. Journal of Electroanalytical Chemistry, 2005, 581(2):197-205
[109] Zawisza I, Rogalski J, Opallo M. Journal of Electroanalytical Chemistry, 2006, 588(2):244-252
[110] Georgieva S, Godjevargova T, Mita D, Diano N, Menale C, Nicolucci C, Carratelli C, Mita L, Golovinsky E. Journal of Molecular Catalysis B: Enzymatic, 2010, 66(1/2):210-218
[111] 孙冬梅(Sun D M), 蔡称心(Cai CH X), 刑巍(Xin W), 陆天虹(Lu T H). 南京师范大学学报(自然科学版)(Journal of Nanjing Normal University(Natural Science)), 2004, 27(4):52-54
[112] Abdullah J, Ahmad M, Heng L, Karuppiah N, Sidek H. Sensors, 2007, 7:2238-2250
[113] Lojou E, Bianco P. Journal of Electroanalytical Chemistry, 2003, 557:37-47
[114] Wang J, Wang F, Xu Z, Wang Y, Dong S. Talanta, 2007, 74(1):104-109
[115] Balkenhohl T, Adelt S, Dronov R, Lisdat F. Electrochemistry Communications, 2008, 10(6):914-917
[116] Portaccio M, Di Martino S, Maiuri P, Durante D, De Luca P, Lepore M, Bencivenga U, Rossi S, De Maio A, Mita D G. Journal of Molecular Catalysis B: Enzymatic, 2006, 41(3/4):97-102
[117] Montereali M R, Seta L D, Vastarella W, Pilloton R. Journal of Molecular Catalysis B: Enzymatic, 2010, 64(3/4):189-194
[118] Scheller F, Lisdat F, Wollenberger U. Bioelectronics-From Theory to Applications, Weinhelm: WILEY-VCH, 2005, 99-126
[119] Shleev S, Wetter J, Magnusson K, Ruzgas T. Biosensors and Bioelectronics, 2006, 22(2):213-219
[120] Timur S, Pazarlioglu N, Pilloton R, Telefoncu A. Sensors and Actuators B: Chemical, 2004, 97(1):132-136
[121] Kulys J, Vidziunaite R. Biosensors and Bioelectronics, 2003, 18(2/3):319-325
[122] Palmore G, Kim H. Journal of Electroanalytical Chemistry, 1999, 464(1):110-117
[123] Jarosz-Wilkolazka A, Ruzgas T, Gorton L. Enzyme and Microbial Technology, 2004, 35(2/3):238-241
[124] Jarosz-Wilkolazka A, Ruzgas T, Gorton L. Talanta, 2005, 66(5):1219-1224
[125] Vianello F, Cambria A, Ragusa S, Cambria M T, Zennaro L, Rigo A. Biosensors and Bioelectronics, 2004, 20(2):315-321
[126] Leite O, Lupetti K, Fatibello-Filho O, Vieira I, Barbosa A. Talanta, 2003, 59(5):889-896
[127] Coman V, Vaz-Domínguez C, Ludwig R, Harreither W, Haltrich D, Lacey A L D, Ruzgas T, Gorton L, Shleev S. Physical Chemistry Chemical Physics, 2008, 10(40):6093-6096
[128] Kamitaka Y, Tsujimura S, Setoyama N, Kajino T, Kano K. Physical Chemistry Chemical Physics, 2007, 9(15):1793-1801
[129] Service R. Science, 2002, 296(5571):1223-1223
[130] Soukharev V, Mano N, Heller A. J. Am. Chem. Soc, 2004, 126(27):8368-8369
[131] Zebda A, Renaud L, Cretin M, Innocent C, Pichot F, Ferrigno R, Tingry S. Journal of Power Sources, 2009, 193(2):602-606
[132] Li X, Zhou H, Yu P, Su L, Ohsaka T, Mao L. Electrochemistry Communications, 2008, 10(6):851-854
[133] Farneth W E, Diner B A, Gierke T D, D'amore M B. Journal of Electroanalytical Chemistry, 2005, 581(2):190-196
[134] Alessandrini A, Salerno M, Frabboni S, Facci P. Applied Physics Letters, 2005, 86(13):133902-133904
[135] Rinaldi R, Cingolani R. Physica E: Low-Dimensional Systems and Nanostructures, 2004, 21(1):45-60
[136] Shleev S, Ruzgas T. Angewandte Chemie International Edition, 2008, 47(38):7270-7274
[137] Prausnitz J M, Sherwood T K, Reid R C. The Properties of Gases and Liquids. New York: McGraw-Hill, 1977

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摘要

漆酶的生物电化学研究