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Dynamics and control of DNA sequence amplification

机译:DNA序列扩增的动力学和控制

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摘要

DNA amplification is the process of replication of a specified DNA sequence in vitro through time-dependent manipulation of its external environment. A theoretical framework for determination of the optimal dynamic operating conditions of DNA amplification reactions, for any specified amplification objective, is presented based on first-principles biophysical modeling and control theory. Amplification of DNA is formulated as a problem in control theory with optimal solutions that can differ considerably from strategies typically used in practice. Using the Polymerase Chain Reaction as an example, sequence-dependent biophysical models for DNA amplification are cast as control systems, wherein the dynamics of the reaction are controlled by a manipulated input variable. Using these control systems, we demonstrate that there exists an optimal temperature cycling strategy for geometric amplification of any DNA sequence and formulate optimal control problems that can be used to derive the optimal temperature profile. Strategies for the optimal synthesis of the DNA amplification control trajectory are proposed. Analogous methods can be used to formulate control problems for more advanced amplification objectives corresponding to the design of new types of DNA amplification reactions. (c) 2014 AIP Publishing LLC.
机译:DNA扩增是通过外部环境的时间依赖性操作在体外复制特定DNA序列的过程。基于第一性原理生物物理建模和控制理论,为确定任何特定的扩增目的,提供了确定DNA扩增反应的最佳动态操作条件的理论框架。 DNA的扩增被认为是控制理论中的一个问题,其最佳解决方案可能与实际中通常使用的策略大不相同。以聚合酶链反应为例,将用于DNA扩增的依赖序列的生物物理模型构建为控制系统,其中反应的动力学由受控的输入变量控制。使用这些控制系统,我们证明了存在用于任何DNA序列几何扩增的最佳温度循环策略,并制定了可用于得出最佳温度曲线的最佳控制问题。提出了DNA扩增控制轨迹的最佳合成策略。可以使用类似的方法来为与新型DNA扩增反应的设计相对应的更高级的扩增目标制定控制问题。 (c)2014 AIP Publishing LLC。

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