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A Real-Time Continuous Flow Polymerase Chain Reactor for DNA Expression Quantification

机译:用于DNA表达定量的实时连续流动聚合酶链反应器

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Real-time quantitative Polymerase Chain Reaction (PCR) is an extremely sensitive and reliable method for quantifying gene expression, allowing subtle shifts in gene expression to be easily monitored. Currently, stationary real-time PCR is readily achieved using fluorescent labels which increase in fluorescence as the DNA is exponentially amplified. Quantitative PCR is used in a myriad of applications. However currently most commercial real-time PCR devices are batch process stationary well based systems, limiting their throughput. Continuous flow microfluidic PCR devices have allowed for advancement in terms of improved PCR throughput and reduced reagent usage. As part of an overall total analysis system a device integrating all the functional steps of continuous flow realtime quantitative PCR has been designed and fabricated. Initially the PCR reaction mixture is segmented into nano-litre PCR reactors which are then thermally cycled on a two temperature fifty cycle flow-through PCR device, which allows laser induced fluorescent imaging of the nanoreactors. Previous studies into continuous flow PCR have demonstrated endpoint fluorescent measurements, however this research allows PCR nanoreactors to be fluorescently monitored after every PCR thermal cycle. Fluorescent optical monitoring is achieved through laser excitation of the nanoreactors while a Charged Coupled Device (CCD) camera is used to record the fluorescent emissions from the nanoreactors. Intensity analysis of the recorded images is then preformed using MATLAB to accurately determine the fluorescence intensity level, thereby allowing real-time quantitative amplification curves to be generated. This has major advantages over existing continuous flow PCR devices which use endpoint fluorescence and capillary electrophoresis, as the amplification curves allow far more information to be gleaned and allow the initial DNA template concentration to be accurately determined.
机译:实时定量聚合酶链反应(PCR)是量化基因表达的极为灵敏和可靠的方法,可轻松监控基因表达的细微变化。目前,使用荧光标记可轻松实现固定实时PCR,荧光标记随着DNA的指数扩增而增加荧光。定量PCR有许多应用。但是,当前大多数商用实时PCR设备是基于批处理固定井的系统,从而限制了其通量。连续流微流体PCR装置在提高PCR产量和减少试剂使用方面取得了进步。作为整体总分析系统的一部分,已设计并制造出一种设备,该设备集成了连续流实时定量PCR的所有功能步骤。最初,PCR反应混合物被分成纳米升的PCR反应器,然后在两个温度五十个循环的流通式PCR装置上进行热循环,该装置可对纳米反应器进行激光诱导的荧光成像。先前对连续流PCR的研究已经证明了终点荧光测量,但是该研究允许在每个PCR热循环后对PCR纳米反应器进行荧光监测。通过使用纳米反应器的激光激发来实现荧光光学监控,同时使用电荷耦合器件(CCD)摄像机记录纳米反应器的荧光发射。然后使用MATLAB对记录的图像进行强度分析,以准确确定荧光强度水平,从而生成实时定量扩增曲线。与现有的使用终点荧光和毛细管电泳的连续流PCR装置相比,这具有主要优势,因为扩增曲线可以收集更多的信息,并可以准确确定初始DNA模板的浓度。

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