Sensitive DNA impedance biosensor for detection of cancer, chronic lymphocytic leukemia, based on gold nanoparticles/gold modified electrode

被引:72
作者
Ensafi, Ali A. [1 ]
Taei, M. [1 ]
Rahmani, H. R. [2 ]
Khayamian, T. [1 ]
机构
[1] Isfahan Univ Technol, Dept Chem, Esfahan, Iran
[2] Isfahan Univ Technol, Dept Anim Sci, Esfahan 8415683111, Iran
关键词
DNA-sensor; Genosensing; DNA hybridization; Chronic lymphocytic leukemia recognition; Impedance spectroscopy; CHRONIC MYELOGENOUS LEUKEMIA; SURFACE-PLASMON RESONANCE; ELECTROCHEMICAL DETECTION; HYBRIDIZATION DETECTION; LABEL-FREE; ENHANCEMENT; DIAGNOSIS;
D O I
10.1016/j.electacta.2011.05.124
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
070208 [无线电物理];
摘要
A simple and sensitive DNA impedance sensor was prepared for the detection of chronic lymphocytic leukemia. The DNA electrochemical biosensor is worked based on the electrochemical impedance spectroscopic (EIS) detection of the sequence-specific DNA related to chronic lymphocytic leukemia. The ssDNA probe was immobilized on the surface of the gold nanoparticles. Compared to the bare gold electrode, the gold nanoparticles-modified electrode could improve the density of the probe DNA attachment and hence the sensitivity of the DNA sensor greatly. Cyclic voltammetry (CV) and electrochemical impedance spectroscopy were performed in a solution containing 1.0 mmol L-1 K-3[Fe(CN)(6)]/K-4[Fe(CN)(6)] and 50 mmol L-1 phosphate buffer saline pH 6.87 plus 50 mmol L-1 KCl. In the CV studied, the potential was cycled from 0.0 to +0.65 V with a scan rate of 50 mV s(-1). Using EIS, the difference of the electron transfer resistance (Delta R-et) was linear with the logarithm of the complementary oligonucleotides sequence concentrations in the range of 7.0 x 10(-12)-2.0 x 10(-7) mol L-1. with a detection limit of 1.0 x 10(-12) mol L-1. In addition, the DNA sensor showed a good reproducibility and stability during repeated regeneration and hybridization cycles. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:8176 / 8183
页数:8
相关论文
共 42 条
[1]
Fiber-optic evanescent wave biosensor for the detection of oligonucleotides [J].
Abel, AP ;
Weller, MG ;
Duveneck, GL ;
Ehrat, M ;
Widmer, HM .
ANALYTICAL CHEMISTRY, 1996, 68 (17) :2905-2912
[2]
Evaluation of three-dimensional microchannel glass biochips for multiplexed nucleic acid fluorescence hybridization assays [J].
Benoit, V ;
Steel, A ;
Torres, M ;
Lu, YY ;
Yang, HJ ;
Cooper, J .
ANALYTICAL CHEMISTRY, 2001, 73 (11) :2412-2420
[3]
Electrochemical sensing of DNA using gold nanoparticles [J].
Castaneda, M. T. ;
Alegret, S. ;
Merkoci, A. .
ELECTROANALYSIS, 2007, 19 (7-8) :743-753
[4]
Plasma polymerized epoxide functional surfaces for DNA probe immobilization [J].
Chu, Li-Qiang ;
Knoll, Wolfgang ;
Foerch, Renate .
BIOSENSORS & BIOELECTRONICS, 2008, 24 (01) :118-122
[5]
Label-free impedance biosensors: Opportunities and challenges [J].
Daniels, Jonathan S. ;
Pourmand, Nader .
ELECTROANALYSIS, 2007, 19 (12) :1239-1257
[6]
DNA microarrays: Experimental issues, data analysis, and application to bacterial systems [J].
Dharmadi, Y ;
Gonzalez, R .
BIOTECHNOLOGY PROGRESS, 2004, 20 (05) :1309-1324
[7]
Erukhimovitch V., 2006, VIB SPECTROSC, V40, P40, DOI DOI 10.1016/J.VIBSPEC.2005.06.004
[8]
Electrochemical detection of DNA hybridization by means of osmium tetroxide complexes and protective oligonucleotides [J].
Flechsig, Gerd-Uwe ;
Reske, Thomas .
ANALYTICAL CHEMISTRY, 2007, 79 (05) :2125-2130
[9]
Detection of heterozygous mutations in BRCA1 using high density oligonucleotide arrays and two-colour fluorescence analysis [J].
Hacia, JG ;
Brody, LC ;
Chee, MS ;
Fodor, SPA ;
Collins, FS .
NATURE GENETICS, 1996, 14 (04) :441-447
[10]
Femtomolar electrochemical detection of DNA targets using metal sulfide nanoparticles [J].
Hansen, JA ;
Mukhopadhyay, R ;
Hansen, JO ;
Gothelf, KV .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (12) :3860-3861