NADH oxidation using modified electrodes based on lactate and glucose dehydrogenase entrapped between an electrocatalyst film and redox catalyst-modified polymers

被引:22
作者
Al-Jawadi, Eman [2 ]
Poeller, Sascha
Haddad, Raoudha
Schuhmann, Wolfgang [1 ]
机构
[1] Ruhr Univ Bochum, CES, D-44780 Bochum, Germany
[2] Univ Mosul, Coll Sci, Dept Chem, Mosul, Iraq
关键词
NADH oxidation; Redox polymers; Dehydrogenase; Biosensor; Electrodeposition polymer;
D O I
10.1007/s00604-012-0797-2
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Electrocatalytic NADH oxidation was investigated at an electrode architecture involving an electropolymerized layer of poly(methylene blue) (pMB) or poly(methylene green) (pMG) in combination with specifically designed toluidine blue or nile blue modified methacrylate-based electrodeposition polymers. Either NAD(+)-dependent lactate dehydrogenase or NAD(+)-dependent glucose dehydrogenase were entrapped between the primary electropolymerized layer of pMB or pMG and the methacrylate-based redox polymer. The composition of the polymer backbone and the polymer-bound redox dye was evaluated and it could be demonstrated that the combination of the electropolymerized pMB or pMG layer together with the dye modified methacrylate-based redox polymer shows superior properties as compared with either of the components alone. NADH was oxidized at an applied potential of 0 mV vs Ag/AgCl/KCl 3 M and current densities of 17 mu A center dot cm(-2) and 28 mu A center dot cm(-2) were obtained for modified electrodes based on lactate dehydrogenase and glucose dehydrogenase, respectively, at substrate saturation.
引用
收藏
页码:405 / 410
页数:6
相关论文
共 17 条
[1]  
[Anonymous], 2002, Encyclopedia of electrochemistry: thermodynamics and electrified interfaces
[2]   ENZYMATIC AMPLIFICATION FOR SPECTROPHOTOMETRIC AND ELECTROCHEMICAL ASSAYS OF NAD+ AND NADH [J].
BERGEL, A ;
SOUPPE, J ;
COMTAT, M .
ANALYTICAL BIOCHEMISTRY, 1989, 179 (02) :382-388
[3]   OXIDATION OF NADH INVOLVING RATE-LIMITING ONE-ELECTRON TRANSFER [J].
CARLSON, BW ;
MILLER, LL ;
NETA, P ;
GRODKOWSKI, J .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1984, 106 (23) :7233-7239
[4]   Reactivity of poly(anilineboronic acid) with NAD+ and NADH [J].
Deore, LA ;
Freund, MS .
CHEMISTRY OF MATERIALS, 2005, 17 (11) :2918-2923
[5]  
ELVING PJ, 1982, BIOELECTROCH BIOENER, V9, P365, DOI 10.1016/0302-4598(82)80026-3
[6]   Redox polymer-based reagentless horseradish peroxidase biosensors Influence of the molecular structure of the polymer [J].
Guschin, Dmitrii A. ;
Sultanov, Yusif M. ;
Sharif-Zade, Nigar F. ;
Aliyev, Elchin H. ;
Efendiev, Ayaz A. ;
Schuhmann, Wolfgang .
ELECTROCHIMICA ACTA, 2006, 51 (24) :5137-5142
[7]   Redox polymers for electrocatalytic oxidation of NADH - Cationic styrene and ethylenimine polymers [J].
Huan, ZW ;
Persson, B ;
Gorton, L ;
Sahni, S ;
Skotheim, T ;
Bartlett, P .
ELECTROANALYSIS, 1996, 8 (06) :575-581
[8]  
Karyakin AA, 1999, ELECTROANAL, V11, P553, DOI 10.1002/(SICI)1521-4109(199906)11:8<553::AID-ELAN553>3.0.CO
[9]  
2-6
[10]   Electroanalysis of NADH using conducting and redox active polymer/carbon nanotubes modified electrodes - A review [J].
Kumar, S. Ashok ;
Chen, Shen-Ming .
SENSORS, 2008, 8 (02) :739-766