Plastic microfluidic chip for continuous-flow polymerase chain reaction: Simulations and experiments

被引:25
|
作者
Cao, QingQing [2 ]
Kim, Min-Cheol [1 ]
Klapperich, Catherine M. [1 ]
机构
[1] Boston Univ, Dept Biomed Engn, Boston, MA 02215 USA
[2] Boston Univ, Dept Mech Engn, Boston, MA 02215 USA
基金
美国国家卫生研究院;
关键词
Analytical biotechnology; Microfluidics; Micro total analysis; PCR; Thermofluidic modeling; REAL-TIME PCR; DNA AMPLIFICATION; MICROCHIP; DEVICE; EXTRACTION; LASER;
D O I
10.1002/biot.201000100
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
A continuous flow polymerase chain reaction (CF-PCR) device comprises a single fluidic channel that is heated differentially to create spatial temperature variations such that a sample flowing through it experiences the thermal cycling required to induce amplification. This type of device can provide an effective means to detect the presence of a small amount of nucleic acid in very small sample volumes. CF-PCR is attractive for global health applications due to its less stringent requirements for temperature control than for other designs. For mass production of inexpensive CF-PCR devices, fabrication via thermoplastic molding will likely be necessary. Here we study the optimization of a PCR assay in a polymeric CF-PCR device. Three channel designs, with varying residence time ratios for the three PCR steps (denaturation, annealing, and extension), were modeled, built, and tested. A standardized assay was run on the three different chips, and the PCR yields were compared. The temperature gradient profiles of the three designs and the residence times of simulated DNA molecules flowing through each temperature zone were predicted using computational methods. PCR performance predicted by simulation corresponded to experimental results. The effects of DNA template size and cycle time on PCR yield were also studied. The experiments and simulations presented here guided the CF-PCR chip design and provide a model for predicting the performance of new CF-PCR designs prior to actual chip manufacture, resulting in faster turn around time for new device and assay design. Taken together, this framework of combined simulation and experimental development has greatly reduced assay development time for CF-PCR in our lab.
引用
收藏
页码:177 / 184
页数:8
相关论文
共 50 条
  • [41] Development of a continuous-flow polymerase chain reaction device utilizing a polymer disk with a spiral microchannel of gradually varying width
    Chung, Kwang Hyo
    Choi, Yo Han
    Park, Seho
    SENSORS AND ACTUATORS B-CHEMICAL, 2014, 191 : 75 - 85
  • [42] Ultrasound-assisted production and optimization of mini-emulsions in a microfluidic chip in continuous-flow
    Nieves, Erick
    Vite, Giselle
    Kozina, Anna
    Olguin, Luis F.
    ULTRASONICS SONOCHEMISTRY, 2021, 74
  • [43] Continuous-Flow ATP amplification system on a chip
    Satoh, Tetsuya
    Shinoda, Yasuharu
    Tokonami, Shiho
    Hirota, Ryuichi
    Noda, Kenichi
    Kuroda, Akio
    Murakami, Yuji
    SENSORS AND ACTUATORS B-CHEMICAL, 2009, 142 (01) : 118 - 122
  • [44] Enzyme synthesis of cephalexin in continuous-flow microfluidic device in ATPS environment
    Vobecka, Lucie
    Ticha, Linda
    Atanasova, Aleksandra
    Slouka, Zdenek
    Hasal, Pavel
    Pribyl, Michal
    CHEMICAL ENGINEERING JOURNAL, 2020, 396 (396)
  • [45] Advances in continuous-flow based microfluidic PCR devices-a review
    Kulkarni, Madhusudan B.
    Goel, Sanket
    ENGINEERING RESEARCH EXPRESS, 2020, 2 (04):
  • [46] A microfluidic device integrated with multichamber polymerase chain reaction and multichannel separation for genetic analysis
    Pan, Xiaoyan
    Jiang, Lei
    Liu, Kaiying
    Lin, Bingcheng
    Qin, Jianhua
    ANALYTICA CHIMICA ACTA, 2010, 674 (01) : 110 - 115
  • [47] Battery Powered Portable Thermal Cycler for Continuous-Flow Polymerase Chain Reaction Diagnosis by Single Thermostatic Thermoelectric Cooler and Open-Loop Controller
    Wu, Di
    Wu, Wenming
    SENSORS, 2019, 19 (07):
  • [48] Study of the Effect of Material of Microfluid Chip on the Polymerase Chain Reaction
    Tupik, A. N.
    Rudnitskaya, G. E.
    Lukashenko, T. A.
    Evstrapov, A. A.
    TECHNICAL PHYSICS, 2020, 65 (09) : 1510 - 1515
  • [49] Polymerase chain reaction chip with microchannel of glass capillaries embedded
    Guo, Z. X.
    Wu, Xiaosheng
    Chen, Wenyuan
    Cui, Feng
    Zhang, Weiping
    Liu, Wu
    ELECTRONICS LETTERS, 2015, 51 (22) : 1748 - 1749
  • [50] Fabrication of Polymerase Chain Reaction Plastic Lab-on-a-Chip Device for Rapid Molecular Diagnoses
    Trinh, Kieu The Loan
    Zhang, Hainan
    Kang, Dong-Jin
    Kahng, Sung-Hyun
    Tall, Ben D.
    Lee, Nae Yoon
    INTERNATIONAL NEUROUROLOGY JOURNAL, 2016, 20 : S38 - S48