Fluorescence-based temperature control for polymerase chain reaction

被引:3
作者
Sanford, Lindsay N. [1 ]
Wittwer, Carl T. [2 ]
机构
[1] Univ Utah, Dept Bioengn, Salt Lake City, UT 84112 USA
[2] Univ Utah, Hlth Sci Ctr, Dept Pathol, Salt Lake City, UT 84112 USA
关键词
Polymerase chain reaction (PCR); Fluorescence; Temperature monitoring; High-resolution melting; LASER-INDUCED FLUORESCENCE; REAL-TIME PCR; VELOCITY-MEASUREMENTS; MELTING ANALYSIS; VELOCIMETRY; RESOLUTION; SYSTEM;
D O I
10.1016/j.ab.2013.11.027
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The ability to accurately monitor solution temperature is important for the polymerase chain reaction (PCR). Robust amplification during PCR is contingent on the solution reaching denaturation and annealing temperatures. By correlating temperature to the fluorescence of a passive dye, noninvasive monitoring of solution temperatures is possible. The temperature sensitivity of 22 fluorescent dyes was assessed. Emission spectra were monitored and the change in fluorescence between 45 and 95 degrees C was quantified. Seven dyes decreased in intensity as the temperature increased, and 15 were variable depending on the excitation wavelength. Sulforhodamine B (monosodium salt) exhibited a fold change in fluorescence of 2.85. Faster PCR minimizes cycling times and improves turnaround time, throughput, and specificity. If temperature measurements are accurate, no holding period is required even at rapid speeds. A custom instrument using fluorescence-based temperature monitoring with dynamic feedback control for temperature cycling amplified a fragment surrounding rs917118 from genomic DNA in 3 min and 45 s using 35 cycles, allowing subsequent genotyping by high-resolution melting analysis. Gold-standard thermocouple readings and fluorescence-based temperature differences were 0.29 +/- 0.17 and 0.96 +/- 0.26 degrees C at annealing and denaturation, respectively. This new method for temperature cycling may allow faster speeds for PCR than currently considered possible. (C) 2013 Elsevier Inc. All rights reserved.
引用
收藏
页码:75 / 81
页数:7
相关论文
共 50 条
  • [1] Analysis of glycoprotein Ia, Ib, IIb and IV RNA in platelets: Quantitative determination using fluorescence-based polymerase chain reaction
    Seidl, C
    Siehl, J
    Kirchmaier, CM
    Seifried, E
    HAEMOSTASIS, 1997, 27 (03) : 131 - 139
  • [2] Compact Fluorescence Detection System for Polymerase Chain Reaction Chips
    Lee, Deuk-Ju
    Hwang, Ji-Soo
    Park, Ji-Seong
    Park, Chan-Young
    Song, Hye-Jeong
    Kim, Yu-Seop
    Kim, Jong-Dae
    SENSORS AND MATERIALS, 2019, 31 (05) : 1635 - 1646
  • [3] Temperature control algorithm for polymerase chain reaction (PCR) instrumentation based upon improved hybrid fuzzy proportional integral derivative (PID) control
    Liu, Haoran
    Fang, Yile
    Su, Xiangyi
    Wang, Yue
    Ji, Minjie
    Xing, Hongbing
    Gao, Yue
    Zhang, Yuanying
    He, Nongyue
    INSTRUMENTATION SCIENCE & TECHNOLOGY, 2023, 51 (02) : 109 - 131
  • [4] quantitative fluorescence-based steady-state assay of DNA polymerase
    Driscoll, Max D.
    Rentergent, Julius
    Hay, Sam
    FEBS JOURNAL, 2014, 281 (08) : 2042 - 2050
  • [5] A novel fluorescence quantification method for polymerase chain reaction system
    Chien, Jui Hung
    Lee, Da Sheng
    Cheng, Yi Ting
    Yeh, Shou Huei
    Chou, Wen Ping
    Chen, Ping Hei
    OPTICS COMMUNICATIONS, 2006, 266 (02) : 744 - 750
  • [6] Fast and reliable detection of carbapenemase genes in various Gram negatives using a new commercially available fluorescence-based real-time polymerase chain reaction platform
    Sadek, Mustafa
    Demord, Anthony
    Poirel, Laurent
    Nordmann, Patrice
    DIAGNOSTIC MICROBIOLOGY AND INFECTIOUS DISEASE, 2020, 98 (03)
  • [7] Sensitivity Improvement in Fluorescence-Based Particle Detection
    Kettlitz, Siegfried W.
    Moosmann, Carola
    Valouch, Sebastian
    Lemmer, Uli
    CYTOMETRY PART A, 2014, 85A (09) : 746 - 755
  • [8] A noncontact temperature measurement method in polymerase chain reaction reactors
    Sochivko, D. G.
    Varlamov, D. A.
    Fedorov, A. A.
    Kurochkin, V. E.
    TECHNICAL PHYSICS LETTERS, 2016, 42 (04) : 362 - 364
  • [9] Nanomaterials in fluorescence-based biosensing
    Zhong, Wenwan
    ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2009, 394 (01) : 47 - 59
  • [10] Fluorescence-based glucose sensors
    Pickup, JC
    Hussain, F
    Evans, ND
    Rolinski, OJ
    Birch, DJS
    BIOSENSORS & BIOELECTRONICS, 2005, 20 (12) : 2555 - 2565