Electrochemical detection of adenine and guanine using a self-assembled copper(II)-thiophenyl-azoimidazole complex monolayer modified gold electrode

被引:35
作者
Barman, Koushik [1 ]
Jasimuddin, Sk [1 ]
机构
[1] Assam Univ, Dept Chem, Silchar 788011, Assam, India
关键词
GLASSY-CARBON ELECTRODE; ELECTROCATALYTIC OXIDATION; COPPER(II) COMPLEX; COMPOSITE FILM; ASCORBIC-ACID; SENSOR; DNA; GRAPHENE; BEHAVIOR; PURINE;
D O I
10.1039/c4ra08568j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Electrochemical detection of adenine (A) and guanine (G) using the self-assembled monolayer of copper(II)-thiophenyl-azo-imidazole modified gold electrode (Cu2+-IATP-Au) is reported. The self-assembled momolayer of 4-(2'-imidazolylazo) thiophenol (IATP) on a gold electrode surface was prepared by covalent immobilization of imidazole onto a 4-aminothiophenol monolayer modified gold electrode by a diazotization-coupling reaction. The catalyst was formed by immobilizing Cu(II) ion on the IATP modified gold electrode. The modified gold electrode was characterised by Field emission scanning electron microscopy, Energy dispersive X-ray analysis, Infrared spectroscopy, Cyclic voltammetry and Electrochemical Impedance spectroscopic techniques. The Cu2+-IATP-Au electrode exhibits excellent electrocatalytic activity towards the oxidation of A and G. Without separation or pre-treatment, the modified electrode can detect A and G simultaneously in a mixture and DNA samples. In the presence of excess common interferents such as ascorbic acid, citric acid, cysteine, glucose, Na+, K+, Cl-, SO42- had no effect on the peak current of A and G. In differential pulse voltammetry measurement, the oxidation current response of A and G was increased linearly in the concentration range 10-60 mu M and the detection limit was found to be 0.06 mu M and 0.01 mu M (S/N = 3), respectively. The proposed method was applied to determine adenine and guanine in herring sperm DNA and the result was satisfactory.
引用
收藏
页码:49819 / 49826
页数:8
相关论文
共 53 条
[1]   Electrocatalytic oxidation of guanine and ss-DNA at a cobalt (II) phthalocyanine modified carbon paste electrode [J].
Abbaspour, A ;
Mehrgardi, MA ;
Kia, R .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2004, 568 (1-2) :261-266
[2]   Electrochemical studies on the oxidation of guanine and adenine at cyclodextrin modified electrodes [J].
Abbaspour, Abdolkarim ;
Noori, Abolhassan .
ANALYST, 2008, 133 (12) :1664-1672
[3]  
Barman K, 2013, INDIAN J CHEM A, V52, P217
[4]   Synergistic electrochemical and chemical modification of carbon paste electrodes for open-circuit preconcentration and voltammetric determination of trace adenine [J].
Cai, XH ;
Ogorevc, B ;
Kalcher, K .
ELECTROANALYSIS, 1995, 7 (12) :1126-1131
[5]   Characterization of alkanethiol-self-assembled monolayers-modified gold electrodes by electrochemical impedance spectroscopy [J].
Campuzano, S ;
Pedrero, M ;
Montemayor, C ;
Fatás, E ;
Pingarrón, JM .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2006, 586 (01) :112-121
[6]   Determination of Pyrimidine and Purine Bases by Reversed-Phase Capillary Liquid Chromatography with At-Line Surface-Enhanced Raman Spectroscopic Detection Employing a Novel SERS Substrate Based on ZnS/CdSe Silver-Quantum Dots [J].
Carrillo-Carrion, Carolina ;
Armenta, Sergio ;
Simonet, Bartolome M. ;
Valcarcel, Miguel ;
Lendl, Bernhard .
ANALYTICAL CHEMISTRY, 2011, 83 (24) :9391-9398
[7]   Identification of Single-Base Mismatches in Duplex DNA by EPR Spectroscopy [J].
Cekan, Pavol ;
Sigurdsson, Snorri Th. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (50) :18054-+
[8]  
Chen SM, 2012, INT J ELECTROCHEM SC, V7, P405
[9]   Electrocatalytic oxidation of nucleobases by TiO2 nanobelts [J].
Cui, Jingjie ;
Sun, Dehui ;
Zhou, Weijia ;
Liu, Hong ;
Hu, Peiguang ;
Ren, Na ;
Qin, Haiming ;
Huang, Zhen ;
Lin, Jianjian ;
Ma, Houyi .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2011, 13 (20) :9232-9237
[10]  
Dursun Z, 2003, TURK J CHEM, V27, P513