首页> 外文会议>4th International Conference on Nanochannels, Microchannels and Minichannels 2006(ICNMM2006) pt.B >Real-Time Fluorescence Monitoring of the Polymerase Chain Reaction in a Novel Continuous Flow Reactor for Accurate DNA Quantification
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Real-Time Fluorescence Monitoring of the Polymerase Chain Reaction in a Novel Continuous Flow Reactor for Accurate DNA Quantification

机译:实时荧光监测聚合酶链反应的新型连续流反应器中的DNA精确定量

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Real-time Polymerase Chain Reaction (PCR) is the preferred method for quantification of gene expression levels due to its extreme sensitivity. Fluorescence based real-time PCR is commonly used for the quantification of the initial amount of a specific sequence of DNA. Real-time quantification may be achieved using fluorescent dyes, by optically monitoring the product formation as the PCR cycles progress. Stationary well based real-time quantification is quite common, however continuous flow real-time PCR which is the aim of this work is still in its infancy. A compact, high throughput continuous flow thermal cycler has been developed which allows for real-time fluorescent measurements to be obtained. The principle of operation of this device is that the three thermal zones required for a polymerase chain reactor are maintained on both sides of an aluminium block and bio-compatible FEP Teflon capillary tubing is then wrapped around these constant temperature blocks. The capillary tubing is wrapped around the device fifteen times which provides thirty PCR thermal cycles. The device has been designed and optimised to accurately monitor the product expression level using the double stranded DNA binding dye SYBR green I. Initially the PCR mixture is segmented into small nanoreactors, separated by an immiscible carrier fluid to eliminate cross contamination and reduce the likelihood of sample degradation due to contact with the capillary wall. These PCR nanoreactors are then cycled through the tubing and the DNA amplified. Fluorescent optical monitoring of these nanoreactors takes place where a water glycerine mixture, which is refractive index matched to the tubing, allows for improved fluorescent measurements of the nano-volume reactors to be obtained. Plasmid DNA, 240 base pairs long, has been successfully amplified using this device and the temperatures for the denaturation, annealing and extension phases have been accurately measured. Real-time fluorescence images of the flowing nano-volumes were recorded every second cycle using a CCD camera and from these images amplification curves have been successfully generated. Samples with various initial concentrations of DNA have been thermally cycled on the continuous flow reactor. The measured increase in fluorescence intensity from the flowing nano-volume reactors as they progressed through the thermal cycler demonstrated the effect of initial DNA template concentration.
机译:实时聚合酶链反应(PCR)由于具有极高的敏感性,是定量表达基因水平的首选方法。基于荧光的实时PCR通常用于定量DNA特定序列的初始量。通过在PCR循环进行过程中光学监控产物的形成,可以使用荧光染料实现实时定量。基于固定井的实时定量是相当普遍的,但是连续流实时PCR是这项工作的目标,目前仍处于起步阶段。已经开发出一种紧凑的,高通量的连续流热循环仪,其允许获得实时荧光测量。该设备的工作原理是,聚合酶链式反应器所需的三个热区均保持在铝块的两侧,然后将生物相容性FEP铁氟龙毛细管包裹在这些恒温块周围。毛细管缠绕在设备周围十五次,可提供三十个PCR热循环。该设备经过设计和优化,可使用双链DNA结合染料SYBR green I准确监测产物表达水平。最初,将PCR混合物分段成小的纳米反应器,并用不混溶的载液分开,以消除交叉污染并降低样品由于与毛细管壁接触而降解。然后将这些PCR纳米反应器循环通过管道,并扩增DNA。这些纳米反应器的荧光光学监视发生在折射率与管匹配的甘油水混合物允许改进纳米体积反应器的荧光测量的地方。使用该装置已成功扩增了240个碱基对的质粒DNA,并已精确测量了变性,退火和延伸阶段的温度。使用CCD摄像机每两个周期记录一次流动的纳米体积的实时荧光图像,并已从这些图像成功生成了放大曲线。具有各种初始浓度DNA的样品已在连续流反应器中热循环。当流动的纳米体积反应器通过热循环仪时,测量到的荧光强度增加表明了初始DNA模板浓度的影响。

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