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连续流动热梯度聚合酶链式反应

Continuous-flow thermal gradient PCR.

作者信息

Crews Niel, Wittwer Carl, Gale Bruce

机构信息

Department of Mechanical Engineering, University of Utah, Salt Lake City, UT 84112, USA.

出版信息

Biomed Microdevices. 2008 Apr;10(2):187-95. doi: 10.1007/s10544-007-9124-9.

Abstract

Continuous-flow thermal gradient PCR is a new DNA amplification technique that is characterized by periodic temperature ramping with no cyclic hold times. The device reported in this article represents the first demonstration of hold-less thermocycling within continuous-flow PCR microfluidics. This is also the first design in which continuous-flow PCR is performed within a single steady-state temperature zone. This allows for straightforward miniaturization of the channel footprint, shown in this device which has a cycle length of just 2.1 cm. With a linear thermal gradient established across the glass device, the heating and cooling ramp rates are dictated by the fluid velocity relative to the temperature gradient. Local channel orientation and cross-sectional area regulate this velocity. Thus, rapid thermocycling occurs while the PCR chip is maintained at steady state temperatures and flow rates. Glass PCR chips (25 x 75 x 2 mm) of both 30 and 40 serpentine cycles have been fabricated, and were used to amplify a variety of targets, including a 181-bp segment of a viral phage DNA (PhiX174) and a 108-bp segment of the Y-chromosome, amplified from human genomic DNA. With this unique combination of hold-less cycling and gradient temperature ramping, a 40-cycle PCR requires less than 9 min, with the resulting amplicon having high yield and specificity.

摘要

连续流动热梯度聚合酶链反应(PCR)是一种新的DNA扩增技术,其特点是温度周期性上升且无循环保持时间。本文报道的装置是连续流动PCR微流控技术中首次无保持热循环的演示。这也是首次在单一稳态温度区内进行连续流动PCR的设计。这使得通道占地面积能够直接小型化,在该装置中通道长度仅为2.1厘米。在玻璃装置上建立线性热梯度后,加热和冷却速率由相对于温度梯度的流体速度决定。局部通道方向和横截面积调节该速度。因此,在PCR芯片保持稳态温度和流速的同时会发生快速热循环。已经制作了30个和40个蛇形循环的玻璃PCR芯片(25×75×2毫米),并用于扩增多种靶标,包括从人类基因组DNA中扩增的病毒噬菌体DNA(PhiX174)的181碱基片段和Y染色体的108碱基片段。通过这种无保持循环和梯度温度上升的独特组合,40个循环的PCR所需时间不到9分钟,产生的扩增子具有高产量和特异性。

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