Simulation and experimental verification of micro polymerase chain reaction chips

被引:0
|
作者
Lin, YC [1 ]
Yang, CC [1 ]
Hwang, MY [1 ]
Chang, YT [1 ]
机构
[1] Natl Cheng Kung Univ, Dept Engn Sci, Tainan 701, Taiwan
来源
2000 INTERNATIONAL CONFERENCE ON MODELING AND SIMULATION OF MICROSYSTEMS, TECHNICAL PROCEEDINGS | 2000年
关键词
PCR; DNA; FEA;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This study used finite element analysis to simulate the temperature characteristics of a micro polymerase chain reaction (PCR) chip. The micro-PCR chip was fabricated on a silicon wafer and Pyrex glass using photolithography, wet etching, and anodic bonding methods. The main goal of this study was to analyze the temperature uniformity and distribution of the micro-PCR chip, the temperature distribution of the DNA sample, and the transient temperature difference between the heater and DNA sample. The finite element analysis results were also confirmed by one-dimensional theoretic analysis. The simulation results were used to improve the thermal cycling time of a rapid micro-PCR system, consisting of a rapid thermal cycling system and a micro-PCR chip. The improved thermal cycles of the rapid muPCR system were verified using serum samples from patients with chronic hepatitis C. The hepatitis C virus (HCV) amplicon of the rapid muPCR system was analyzed by slab gel electrophoresis with DNA marker separation in parallel.
引用
收藏
页码:648 / 651
页数:4
相关论文
共 50 条
  • [21] Detection of genetically modified soybeans in miso by polymerase chain reaction and nested polymerase chain reaction
    Pan, TM
    Shih, TW
    JOURNAL OF FOOD AND DRUG ANALYSIS, 2003, 11 (02) : 154 - 158
  • [22] Computational thermal analysis of a continuous flow micro Polymerase Chain Reaction (PCR) chip
    Sugumar, D.
    Ashraf, Muhammad A.
    Kong, L. X.
    MICRO- AND NANOTECHNOLOGY: MATERIALS, PROCESSES, PACKAGING, AND SYSTEMS III, 2007, 6415
  • [23] A rapid micro-polymerase chain reaction system for hepatitis C virus amplification
    Lin, YC
    Huang, MY
    Young, KC
    Chang, TT
    Wu, CY
    SENSORS AND ACTUATORS B-CHEMICAL, 2000, 71 (1-2) : 2 - 8
  • [24] Effects of Superparamagnetic Nanoparticle Clusters on the Polymerase Chain Reaction
    Higashi, Toshiaki
    Minegishi, Hiroaki
    Nagaoka, Yutaka
    Fukuda, Takahiro
    Echigo, Akinobu
    Usami, Ron
    Maekawa, Toru
    Hanajiri, Tatsuro
    APPLIED SCIENCES-BASEL, 2012, 2 (02): : 303 - 314
  • [25] Identification and differentiation of human schistosomes by polymerase chain reaction
    Kato-Hayashi, Naoko
    Kirinoki, Masashi
    Iwamura, Yukio
    Kanazawa, Tamotsu
    Kitikoon, Viroj
    Matsuda, Hajime
    Chigusa, Yuichi
    EXPERIMENTAL PARASITOLOGY, 2010, 124 (03) : 325 - 329
  • [26] Electrochemical real-time polymerase chain reaction
    Yeung, Stephen S. W.
    Lee, Thomas M. H.
    Hsing, I-Ming
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (41) : 13374 - 13375
  • [27] Spatiotemporal Regulation of Metal Ions in the Polymerase Chain Reaction
    Zhang, Xianjing
    Guo, Jun
    Song, Bo
    Zhang, Feng
    ACS OMEGA, 2022, : 33530 - 33536
  • [28] Multifunctional Polyurethane Sponge for Polymerase Chain Reaction Enhancement
    Seok, Seunghwan
    Shin, Sujeong
    Lee, Tae Jae
    Jeong, Jae-Min
    Yang, MinHo
    Kim, Do Hyun
    Park, Jung Youn
    Lee, Seok Jae
    Choi, Bong Gill
    Lee, Kyoung G.
    ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (08) : 4699 - 4705
  • [29] Thermal study of polymerase chain reaction with capillary tubes
    Abid, Hassan Ali
    Ong, Jian Wern
    Song, Zhixiong
    Lin, Eric Shen
    Liew, Oi Wah
    Ng, Tuck Wah
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2021, 176
  • [30] Electrical detection of dsDNA and polymerase chain reaction amplification
    Eric Salm
    Yi-Shao Liu
    Daniel Marchwiany
    Dallas Morisette
    Yiping He
    Arun K. Bhunia
    Rashid Bashir
    Biomedical Microdevices, 2011, 13 : 973 - 982