Incorporating asymmetric PCR and microarray hybridization protocols onto an integrated microfluidic device, screening for the Escherichia coli ssrA gene

被引:11
作者
Brennan, Des [1 ]
Glynn, Barry [2 ]
Keegan, Gemma [4 ]
McDonagh, Colette [4 ]
Barry, Thomas [3 ]
Galvin, Paul [1 ]
机构
[1] Univ Coll Cork, Tyndall Natl Inst, Life Sci Interface Grp, Lee Maltings, Prospect Row Co, Ireland
[2] Natl Univ Ireland, Mol Diagnost Res Grp, Galway, Ireland
[3] Natl Univ Ireland, Sch Nat Sci, Microbiol, Nucle Acid Diagnost Res Lab, Galway, Ireland
[4] Dublin City Univ, Biomed Diagnost Inst, Dublin, Ireland
关键词
PCR; Hybridisation; Microfluidics; Fluorescence detection; REAL-TIME PCR; DNA AMPLIFICATION; ANALYSIS SYSTEM; GENOMIC DNA; WHOLE-BLOOD; SAMPLE; VALVES; MICROVALVE; PUMPS; CHIP;
D O I
10.1016/j.snb.2018.01.148
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
We present a microfluidic cartridge system capable of implementing Nucleic Acid (NA) in-vitro amplification followed by microarray fluorescence detection. System functionality was verified by implementing Polymerase Chain Reaction (PCR), followed by hybridization, targeting the Escherichia coli ssrA gene. The denaturation temperature was reduced from 95 C to 85 C and incorporated a modified primer ratio (10:1,forward:reverse). This two-step asymmetric PCR protocol addressed microfluidic evaporation, bubble formation and amplicon re-annealing prior to hybridisation. The PCR extension step was removed, shortening the overall amplification time. The cartridge control system implemented sample heating, fluorescence detection and fluidic actuation. The microarray incorporated silver nanoparticles for enhanced fluorescence detection by localised surface plasmon resonance (LSPR), demonstrating a 0.2 nM target DNA detection limit. The cartridge manufacture process incorporated elastomeric "pinch" valves eliminating the need for flexible membrane layers. The valves were robust to thermo-pneumatic pressure generated during thermocycling, with a leak pressure of 340 kPa. (C) 2018 Elsevier B.V. All rights reserved.
引用
收藏
页码:325 / 334
页数:10
相关论文
共 60 条
[1]   Single-layer membrane valves for elastomeric microfluidic devices [J].
Abate, A. R. ;
Weitz, D. A. .
APPLIED PHYSICS LETTERS, 2008, 92 (24)
[2]   Infrared controlled waxes for liquid handling and storage on a CD-microfluidic platform [J].
Abi-Samra, Kameel ;
Hanson, Ryan ;
Madou, Marc ;
Gorkin, Robert A., III .
LAB ON A CHIP, 2011, 11 (04) :723-726
[3]   Scattering and absorption effects in the determination of glucose in whole blood by near-infrared spectroscopy [J].
Amerov, AK ;
Chen, J ;
Small, GW ;
Arnold, MA .
ANALYTICAL CHEMISTRY, 2005, 77 (14) :4587-4594
[4]   A pneumatically controllable flexible and polymeric microfluidic valve fabricated via in situ development [J].
Baek, JY ;
Park, JY ;
Ju, JI ;
Lee, TS ;
Lee, SH .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2005, 15 (05) :1015-1020
[5]  
Brennan D., 2017, SENS ACTUATORS B, V239
[6]   A hybrid approach to device integration on a genetic analysis platform [J].
Brennan, Des ;
Jary, Dorothee ;
Kurg, Ants ;
Berik, Evgeny ;
Justice, John ;
Aherne, Margaret ;
Macek, Milan ;
Galvin, Paul .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2012, 23 (10)
[7]   EFFECTIVE AMPLIFICATION OF LONG TARGETS FROM CLONED INSERTS AND HUMAN GENOMIC DNA [J].
CHENG, S ;
FOCKLER, C ;
BARNES, WM ;
HIGUCHI, R .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (12) :5695-5699
[8]   One-step pathogen specific DNA extraction from whole blood on a centrifugal microfluidic device [J].
Cho, Yoon-Kyoung ;
Lee, Jeong-Gun ;
Park, Jong-Myeon ;
Lee, Beom-Seok ;
Lee, Youngsun ;
Ko, Christopher .
LAB ON A CHIP, 2007, 7 (05) :565-573
[9]   Microfluidic chip for high efficiency DNA extraction [J].
Chung, YC ;
Jan, MS ;
Lin, YC ;
Lin, JH ;
Cheng, WC ;
Fan, CY .
LAB ON A CHIP, 2004, 4 (02) :141-147
[10]  
Citartan M., 2012, Songklanakarin Journal of Science and Technology, V34, P125