Direct electron transfer-type bioelectrocatalytic interconversion of carbon dioxide/formate and NAD+/NADH redox couples with tungsten-containing formate dehydrogenase

被引:37
作者
Sakai, Kento [1 ]
Sugimoto, Yu [1 ]
Kitazumi, Yuki [1 ]
Shirai, Osamu [1 ]
Takagi, Kazuyoshi [2 ]
Kano, Kenji [1 ]
机构
[1] Kyoto Univ, Grad Sch Agr, Div Appl Life Sci, Sakyo Ku, Kyoto 6068502, Japan
[2] Ritsumeikan Univ, Dept Appl Chem, Coll Life Sci, Noji Higashi 1-1-1, Kusatsu, Shiga 5258577, Japan
基金
日本科学技术振兴机构; 日本学术振兴会;
关键词
formate dehydrogenase; direct electron transfer; mesoporous electrode; bioelectrocatalysis; flavin mononucleotide; DEPENDENT GLUCOSE-DEHYDROGENASE; METHYLOBACTERIUM-EXTORQUENS AM1; NADH-UBIQUINONE OXIDOREDUCTASE; COLI SUCCINATE-DEHYDROGENASE; LAYER-BY-LAYER; DIRECT ELECTROCHEMISTRY; FRUCTOSE DEHYDROGENASE; ESCHERICHIA-COLI; BIOFUEL CELLS; CELLOBIOSE DEHYDROGENASE;
D O I
10.1016/j.electacta.2017.01.112
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Tungsten-containing formate dehydrogenase (FoDH1) with a molecular mass of 170 kDa from Methylobacteriurn extorquens AM1 catalyzes the oxidation of formate (HCOO-) to carbon dioxide (CO2) with NAD(+) as a natural electron acceptor in solution. FoDH1 does not produce any direct electron transfer (DET)-type bioelectrocatalytic wave at planar electrodes, but can adsorb on and communicate with mesoporous carbon electrodes. The curvature effect of mesoporous structures seems to increase the number of enzymes with orientations suitable for electrochemical communication. However, adsorption proceeds slowly on Ketjen Black-modified electrode and the catalytic current density remains low. Most probably, the size of the mesopores is too small to effectively trap FoDH1. The adsorbed FoDH1 catalyzes DET-type bioelectrocatalytic interconversion of the CO2/HCOO- and NAD(+)/NADH redox couples. Most probably, one of the iron-sulfur clusters located near the enzyme surface communicates with mesoporous electrodes. When the communication proceeds effectively, FoDH1 behaves as a novel bidirectional catalyst for the substrates, since FoDH1 can realize fast uphill intramolecular electron transfer. The non-covarently bound flavin mononucleotide (FMN) cofactor in FoDH1 is dissociated from some FoDH1 molecules and adsorbs on the mesopofous electrode to give a symmetrical surface-confined redox wave. Although adsorbed FMN cannot participate in mediated electron transfer (MET)-type bioelectrocatalysis, dissociated FMN in solution works as a mediator for MET-type bioelectrdcatalysis of the HCOO- oxidation at planar electrodes. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:537 / 544
页数:8
相关论文
共 100 条
[1]   PRINCIPLES AND APPLICATIONS OF ELECTROCHEMICAL AND OPTICAL BIOSENSORS [J].
AIZAWA, M .
ANALYTICA CHIMICA ACTA, 1991, 250 (01) :249-256
[2]   Effect of chemical structure of bipyridinium salts as electron carrier on the visible-light induced conversion of CO2 to formic acid with the system consisting of water-soluble zinc porphyrin and formate dehydrogenase [J].
Amao, Yutaka ;
Abe, Ryutaro ;
Shiotani, Sachina .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 2015, 313 :149-153
[3]   EFFECT OF FERROUS-IONS, TUNGSTATE AND SELENITE ON LEVEL OF FORMATE DEHYDROGENASE IN CLOSTRIDIUM-FORMICOACETICUM AND FORMATE SYNTHESIS FROM CO2 DURING PYRUVATE FERMENTATION [J].
ANDREESEN, JR ;
ELGHAZZA.E ;
GOTTSCHALK, G .
ARCHIVES OF MICROBIOLOGY, 1974, 96 (02) :103-118
[4]   The flavoprotein subcomplex of complex I (NADH: ubiquinone oxidoreductase) from bovine heart mitochondria:: Insights into the mechanisms of NADH oxidation and NAD+ reduction from protein film voltammetry [J].
Barker, Cherise D. ;
Reda, Torsten ;
Hirst, Judy .
BIOCHEMISTRY, 2007, 46 (11) :3454-3464
[5]   Enzymatic biofuel cells for Implantable and microscale devices [J].
Barton, SC ;
Gallaway, J ;
Atanassov, P .
CHEMICAL REVIEWS, 2004, 104 (10) :4867-4886
[6]   Reversible lnterconversion of CO2 and Formate by a Molybdenum-Containing Formate Dehydrogenase [J].
Bassegoda, Arnau ;
Madden, Christopher ;
Wakerley, David W. ;
Reisner, Erwin ;
Hirst, Judy .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2014, 136 (44) :15473-15476
[7]   An electrochemical study of the photolysis of adsorbed flavins [J].
Birss, VI ;
GuhaThakurta, S ;
McGarvey, CE ;
Quach, S ;
Vanysek, P .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1997, 423 (1-2) :13-21
[8]   The iron-sulfur clusters in Escherichia coli succinate dehydrogenase direct electron flow [J].
Cheng, Victor W. T. ;
Ma, Elysia ;
Zhao, Zhongwei ;
Rothery, Richard A. ;
Weiner, Joel H. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (37) :27662-27668
[9]   Redox State of Flavin Adenine Dinucleotide Drives Substrate Binding and Product Release in Escherichia coli Succinate Dehydrogenase [J].
Cheng, Victor W. T. ;
Piragasam, Ramanaguru Siva ;
Rothery, Richard A. ;
Maklashina, Elena ;
Cecchini, Gary ;
Weiner, Joel H. .
BIOCHEMISTRY, 2015, 54 (04) :1043-1052
[10]   DIRECT ELECTROCHEMISTRY AND SURFACE CHARACTERIZATION OF GLUCOSE-OXIDASE ADSORBED ON ANODIZED CARBON ELECTRODES [J].
CHI, QJ ;
ZHANG, JD ;
DONG, SJ ;
WANG, EK .
ELECTROCHIMICA ACTA, 1994, 39 (16) :2431-2438