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首页> 外文期刊>EPL >Polymerase chain reaction in natural convection systems: A convection-diffusion-reaction model
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Polymerase chain reaction in natural convection systems: A convection-diffusion-reaction model

机译:自然对流系统中的聚合酶链式反应:对流-扩散-反应模型

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We present a rational scheme for modeling natural convection-driven polymerase chain reaction (PCR), where many copies of a DNA template are made by cycling between hot and cold regions via a circulatory, buoyancy-driven flow. This process is described here in the framework of multiple-species formulation, using evolution equations which govern the concentrations of the various DNA species in the carrying solution. In the intermediate asymptotic limit, where a stationary amplication rate is achieved, these equations provide an eigenvalue problem for computing the exponential amplification rate of double-stranded DNA. The scheme is demonstrated using a simplified model of a Rayleigh-Benard cell. In contrast to what may have been anticipated, diffusion tends to enhance the growth rate. The present model, intended to be used as a template for more device-specific analyses, provides a starting point for understanding the effects of the competing mechanisms ( reaction, convection and diffusion) upon the amplication efficiency.
机译:我们提出了一种自然对流驱动的聚合酶链反应(PCR)建模的合理方案,其中通过循环,浮力驱动的流动在热区和冷区之间循环来制作许多DNA模板副本。在此,在多种物种配方的框架中描述了此过程,使用进化方程式来控制携带溶液中各种DNA物质的浓度。在达到渐进速率稳定的中间渐近极限中,这些方程式为计算双链DNA的指数扩增率提供了一个特征值问题。该方案通过使用Rayleigh-Benard小区的简化模型进行了演示。与可以预期的相反,扩散趋于提高生长速率。本模型旨在用作更多设备特定分析的模板,为理解竞争机制(反应,对流和扩散)对扩增效率的影响提供了一个起点。

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