Assessment and improvement of the thermal performance of a polycarbonate micro continuous flow polymerase chain reactor (CFPCR)

被引:0
|
作者
Chen, Pin-Chuan [1 ]
Mitchell, Michael W. [1 ]
Nikitopoulos, Dimitris E. [1 ]
Soper, Steven A.
Murphy, Michael C. [1 ]
机构
[1] Louisiana State Univ, Dept Mech Engn, Baton Rouge, LA 70803 USA
关键词
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
BioMEMS are compact devices that use microfabrication to miniaturize benchtop instrumentation. Due to the requirement for uniform temperature distributions over restricted areas, thermal isolation, and faster heating and cooling rates in a limited space, thermal management is a key to ensuring successful performance of BioMEMS devices. The continuous flow polymerase chain reactor (CFPCR) is a compact BioMEMS device that is used to amplify target DNA fragments using repeated thermal cycling. The temperature distribution on the backside of a micro CFPCR was measured using thermochromic liquid crystals and an infrared camera. In the liquid crystal experiment, the performance of a 5 mm thick polycarbonate micro CFPCR with thin film heaters attached directly to the bottom polycarbonate surface over each temperature zone was studied. Natural convection was used as a cooling mechanism. The temperature distribution in the renaturation zone was dependent on the positions of the feedback thermocouples in each zone. Three different thermocouple configurations were assessed and the liquid crystal images showed that a best case 3.86 degrees C temperature difference across the zone, leading to a 20% amplification efficiency compared to a commercial thermal cycler [5]. The device was modified to improve the temperature distribution: a thinner substrate, 2 trim, reduced the thermal capacitance; grooves were micro-milled in the backside to isolate each temperature zone; and three separate copper heating stages, combining the thin film heaters with copper plates, applied uniform temperatures to each zone [10]. Infrared camera images showed that the temperature distributions were distinct and uniform with a +/- 0.3 degrees C variations in each temperature zone, improving amplification efficiency to 72%. Good thermal management for PCR amplification can't only increase its reliability and yield efficiency, but also accelerate the entire analytical process.
引用
收藏
页码:129 / 135
页数:7
相关论文
共 50 条
  • [1] A THERMAL SYSTEM FOR A HIGH THROUGHPUT CONTINUOUS FLOW POLYMERASE CHAIN REACTION DEVICE (CFPCR)
    Chen, P. -C.
    Park, D. S.
    You, B. H.
    Kim, N.
    Park, T.
    Desta, Y.
    Park, S.
    Nikitopoulos, D. E.
    Soper, S. A.
    Murphy, M. C.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, VOL 13, PTS A AND B, 2009, : 313 - 317
  • [2] 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
  • [3] A continuous flow polymerase chain reactor for DNA expression analysis
    Sirr, Noel
    Ciobanu, Doina
    Grimes, Ronan
    Davies, Mark
    Proceedings of the 4th International Conference on Nanochannels, Microchannnels, and Minichannels, Pts A and B, 2006, : 823 - 828
  • [4] Modeling and validation of a molded polycarbonate continuous flow polymerase chain reaction device
    Mitchell, MW
    Liu, XZ
    Bejat, Y
    Nikitopoulos, DE
    Soper, S
    Murphy, MC
    MICROFLUIDICS, BIOMEMS, AND MEDICAL MICROSYSTEMS, 2003, 4982 : 83 - 98
  • [5] A novel contamination free two temperature continuous flow polymerase chain reactor
    Sayers, Michael B.
    Dalton, Tara M.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION 2007, VOL 2: BIOMEDICAL AND BIOTECHNOLOGY ENGINEERING, 2008, : 55 - 62
  • [6] A real-time continuous flow polymerase chain reactor for DNA expression quantification
    Sayers, Michael B.
    Dalton, Tara M.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION 2007, VOL 2: BIOMEDICAL AND BIOTECHNOLOGY ENGINEERING, 2008, : 63 - 69
  • [7] Thermal analysis of a novel continuous flow multi layered polymerase chain reaction device
    Barrett, Brian
    Davies, Mark
    Morris, Angela
    PROCEEDINGS OF THE ASME/JSME THERMAL ENGINEERING SUMMER HEAT TRANSFER CONFERENCE 2007, VOL 3, 2007, : 401 - 411
  • [8] Cylindrical compact thermal-cycling device for continuous-flow polymerase chain reaction
    Park, N
    Kim, S
    Hahn, JH
    ANALYTICAL CHEMISTRY, 2003, 75 (21) : 6029 - 6033
  • [9] On the optimal synthesis of micro polymerase chain reactor systems for DNA analysis
    Zhelev, T
    EUROPEAN SYMPOSIUM ON COMPUTER-AIDED PROCESS ENGINEERING-15, 20A AND 20B, 2005, 20a-20b : 1579 - 1584
  • [10] THERMAL MODELING FOR DESIGN OPTIMIZATION OF A MICROFLUIDIC DEVICE FOR CONTINUOUS FLOW POLYMERASE CHAIN REACTION (PCR)
    Kumar, Sumeet
    Thorsen, Todd
    Das, Sarit Kumar
    HT2008: PROCEEDING OF THE ASME SUMMER HEAT TRANSFER CONFERENCE, VOL 3, 2009, : 323 - 330