One-chip electronic detection of DNA hybridization using precision impedance-based CMOS array sensor

被引:34
作者
Lee, Kang-Ho [1 ]
Lee, Jeong-Oen [1 ]
Sohn, Mi-Jin [2 ]
Lee, Byunghun [1 ]
Choi, Suk-Hwan [1 ]
Kim, Sang Kyu [3 ]
Yoon, Jun-Bo [1 ]
Cho, Gyu-Hyeong [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Sch EECS, Taejon 305701, South Korea
[2] Korea Res Inst Biosci & Biotechnol, Taejon 305806, South Korea
[3] Samsung Adv Inst Technol, Yongin 446712, Gyeonggi Do, South Korea
关键词
DNA detection; DNA hybridization; PNA; Capacitance; Resistance; Biosensor; CAPACITIVE BIOSENSOR; ELECTRICAL DETECTION; IMMOBILIZATION;
D O I
10.1016/j.bios.2010.07.055
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
This paper describes a label-free and fully electronic detection method of DNA hybridization, which is achieved through the use of a 16 x 8 microarray sensor in conjunction with a new type of impedance spectroscopy constructed with standard complementary metal-oxide-semiconductor (CMOS) technology. The impedance-based method is based on changes in the reactive capacitance and the charge-transfer resistance after hybridization with complementary DNA targets. In previously published label-free techniques, the measured capacitance presented unstable capacitive properties due to the parallel resistance that is not infinite and can cause a leakage by discharging the charge on the capacitor. This paper presents an impedance extraction method that uses excitation by triangular wave voltage, which enables a reliable measurement of both C and R producing a highly sensitive sensor with a stable operation independent of external variables. The system was fabricated in an industrial 0.35-mu m 4-metal 2-poly CMOS process, integrating working electrodes and readout electronics into one chip. The integrated readout, which uses a parasitic insensitive integrator, achieves an enlarged detection range and improved noise performance. The maximum average relative variations of C and R are 31.5% and 68.6%, respectively, after hybridization with a 1 mu M target DNA. The proposed sensor allows quantitative evaluation of the molecule densities on the chip with distinguishable variation in the impedance. This fully electronic microsystem has great potential for use with bioanalytical tools and point-of-care diagnosis. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:1373 / 1379
页数:7
相关论文
共 31 条
[1]  
[Anonymous], 1992, INTERMOLECULAR SURFA
[2]  
Berggren C, 1999, ELECTROANAL, V11, P156, DOI 10.1002/(SICI)1521-4109(199903)11:3<156::AID-ELAN156>3.0.CO
[3]  
2-O
[4]  
BERGGREN C, 1999, ELECTROANAL, V3, P74
[5]  
BERGGREN C, 1998, ANAL CHIM ACTA, V378, P235
[6]   Novel synthetic phytochelatin-based capacitive biosensor for heavy metal ion detection [J].
Bontidean, I ;
Ahlqvist, J ;
Mulchandani, A ;
Chen, W ;
Bae, W ;
Mehra, RK ;
Mortari, A ;
Csöregi, E .
BIOSENSORS & BIOELECTRONICS, 2003, 18 (5-6) :547-553
[7]   Polymeric cantilever arrays for biosensing applications [J].
Calleja, M ;
Tamayo, J ;
Johansson, A ;
Rasmussen, P ;
Lechuga, LM ;
Boisen, A .
SENSOR LETTERS, 2003, 1 (01) :20-24
[8]  
CARRARA S, 2010, MICROELECTRONICS J
[9]  
Carrara S., 2007, SENSORS TRANSDUCERS, V76, P969
[10]   Quartz crystal microbalance study of DNA immobilization and hybridization for nucleic acid sensor development [J].
Caruso, F ;
Rodda, E ;
Furlong, DF ;
Niikura, K ;
Okahata, Y .
ANALYTICAL CHEMISTRY, 1997, 69 (11) :2043-2049