采用分光光度法、Clark型氧电极以及循环伏安法结合旋转圆盘电极技术,分别测定了游离多铜氧化酶在扩散型电子中介体存在时,催化氧还原循环中每一个组成步骤的速率并进行了比较,试图确定这个催化反应的决速步骤.实验结果表明,漆酶分子内部的电子迁移速率(103/s)最高,酶催化氧气化学还原的速率次之(91/s),酶催化中介体氧化产物在电极上电化学还原的速率再次之(0.19/s或7.8×10ˉ3 cm/s),底物O2气以及氧化态/还原态电子中介体2,2'-连氮-双-(3-乙基苯并噻唑啉-6-磺酸)二铵盐(ABTS)的传质系数分别为1.7×10ˉ3、4.4 ×10ˉ4和6.3×10ˉ4 cm/s,相应地酶催化中介体氧化的化学反应速率为0.047/s,酶催化中介体氧化的化学反应步骤以及中介体的传质步骤是影响催化反应速率的关键.在此基础上,通过系统改变体系中酶的种类、活力以及浓度、中介体种类及浓度、溶液温度及pH值等参数,研究了酶电催化氧还原活力与这些参数之间的依赖关系,进一步确证了前述的结论.
参考文献
[1] | Barriere F,Ferry Y,Rochefort D,et al.Targetting Redox Polymers as Mediators for Laccase Oxygen Reduction in a Membrane-less Biofuel Cell[J].Electrochem Commun,2004,6:237-241. |
[2] | Soukharev V,Mano N,Heller A.A Four-Electron O2-Electroreduction Biocatalyst Superior to Platinum and a Biofuel Cell Operating at 0.88 V[J].J Am Chem Soc,2004,126:8368-8369. |
[3] | Mano N,Kim H H,Zhang Y C,et al.An Oxygen Cathode Operating in a Physiological Solution[J].JAm Chem Soc,2002,124(22):6480-6486. |
[4] | Mano N,Mao F,Heller A.A Miniature Biofuel Cell Operating in A Physiological Buffer[J].J Am Chem Soc,2002,124:12962-12963. |
[5] | Gupta G,Rajendran V,Atanassov P.Bioelectrocatalysis of Oxygen Reduction Reaction by Laccase on Gold Electrodes[J].Electroanalysis,2008,16(13/14):1182-1185. |
[6] | Ivnitski D M,Khripin C,Luckarift H R,et al.Surface Characterization and Direct Bioelectrocatalysis of Multi-copper Oxidases[J].Electrochim Acta,2010,55:7385-7393. |
[7] | Blanford C F,Foster C E,Heath R E,et al.Efficient Electrocatalytic Oxygen Reduction by the ' Blue' Copper Oxidase,Laccase,Directly Attached to Chemically Modified Carbons[J].Faraday Discuss,2008,140:319-335. |
[8] | Wang X J,Latonen R M,Sjoberg-Eerola P,et al.Direct Electron Transfer of Trametes Hirsuta Laccase in a Dual-Layer Architecture of Poly(3,4-ethylenedioxythiophene) Films[J].J Phys Chem C,2011,115:5919-5929. |
[9] | Ramasamy R P,Luckarift H R,Ivnitski D M,et al.High Electrocatalytic Activity of Tethered Multicopper Oxidase-carbon Nanotube Conjugates[J].Chem Commun,2010,46:604 5-604 7. |
[10] | Sosna M,Chretien J M,Kilburn J D,et al.Monolayer Anthracene and Anthraquinone Modified Electrodes as Platforms for Trametes Hirsuta Laccase Immobilisation[J].Phys Chem Chem Phys,2010,12:10018-10026. |
[11] | Martinez-Ortz J,Flores R,Vazquez-Duhalt R,et al.Molecular Design of Laccase Cathode for Direct Electron Transfer in a Biofuel Cell[J].Biosens Bioelectron,2011,26:2626-2631. |
[12] | Kano K,Ohgaru T,Nakase H,et al.Electrochemical Evaluation of Redox Enzyme Reaction Kinetics Based on Mediated Bioelectrocatalysis in Solution[J].Chem Lett,1996:439-440. |
[13] | Gallaway J W,Barton S A C.Kinetics of Redox Polymer-Mediated Enzyme Electrodes[J].Chem Lett,2008,130:8527-8536. |
[14] | Trudeau F,Daigle F,Leech D.Reagentless Mediated Laccase Electrode for the Detection of Enzyme Modulators[J].Anal Chem,1997,69:882-886. |
[15] | Ogino Y,Takagi K,Kano K,et al.Reactions Between Diaphorase and Quinone Compounds in Bioelectrocatalytic Redox Reactions of NADH and NAD+[J].J Electroanal Chem,1995,396:517-524. |
[16] | Kano K,Ikeda T.Fundamentals and Practices of Mediated Bioelectrocatalysis[J].AnalSci,2000,16 (10):1013-1021. |
[17] | Zeng H,Tang Z Q,Liao L W,et al.Electrochemistry of ABTS at Glassy Carbon Electrodes[J].Chinese J Chem Phys,2011,12(36):10888-10895. |
[18] | Palmore G T R,Kim H H.Electro-enzymatic Reduction of Dioxygen to Water in the Cathode Compartment of a Biofuel Cell[J].J Electroanal Chem,1999,464:110-117. |
[19] | Farneth W E,Diner B A,Gierke T D,et al.Current Densities from Electrocatalytic Oxygen Reduction in Laccase/ABTS Solutions[J].J Electroanal Chem,2005,581:190-196. |
[20] | Tsujimura S,Tatsumi H,Ogawa J,et al.Bioelectrocatalytic Reduction of Dioxygen to Water at Neutral pH Using Bilirubin Oxidase as an Enzyme and 2,2'-Azinobis (3-ethylbenzothiazolin-6-sulfonate) as an Electron Transfer Mediator[J].J Electroanal Chem,2001,496:69-75. |
[21] | Nazaruk E,Sadowska K,Madrak K,et al.Composite Bioelectrodes Based on Lipidic Cubic Phase with Carbon Nanotube Network[J].Electroanalysis,2009,21 (3/5):507-511. |
[22] | Karnicka K,Miecznikowski K,Kowalewska B,et al.ABTS-Modified Multi-walled Carbon Nanotubes as an Effective Mediating System for Bioelectro-catalytic Reduction of Oxygen[J].Anal Chem,2008,80(19):7643-7648. |
[23] | Farneth W E,D'Amore M B.Encapsulated Laccase Electrodes for Fuel Cell Cathodes[J].J Electroanal Chem,2005,581:197-205. |
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