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Theoretical Study of the Transpore Velocity Control of Single-Stranded DNA

机译:单链DNA的孔速控制的理论研究

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摘要

The electrokinetic transport dynamics of deoxyribonucleic acid (DNA) molecules have recently attracted significant attention in various fields of research. Our group is interested in the detailed examination of the behavior of DNA when confined in microanofluidic channels. In the present study, the translocation mechanism of a DNA-like polymer chain in a nanofluidic channel was investigated using Langevin dynamics simulations. A coarse-grained bead-spring model was developed to simulate the dynamics of a long polymer chain passing through a rectangular cross-section nanopore embedded in a nanochannel, under the influence of a nonuniform electric field. Varying the cross-sectional area of the nanopore was found to allow optimization of the translocation process through modification of the electric field in the flow channel, since a drastic drop in the electric potential at the nanopore was induced by changing the cross-section. Furthermore, the configuration of the polymer chain in the nanopore was observed to determine its translocation velocity. The competition between the strength of the electric field and confinement in the small pore produces various transport mechanisms and the results of this study thus represent a means of optimizing the design of nanofluidic devices for single molecule detection.
机译:脱氧核糖核酸(DNA)分子的电动迁移动力学最近已在各个研究领域引起了广泛的关注。我们的小组对在微/纳米流体通道中限制DNA行为的详细检查感兴趣。在本研究中,使用Langevin动力学模拟研究了类似DNA的聚合物链在纳米流体通道中的转运机制。建立了粗粒珠-弹簧模型,以模拟在不均匀电场的作用下,长聚合物链穿过嵌入纳米通道的矩形截面纳米孔的动力学。发现改变纳米孔的横截面积允许通过改变流动通道中的电场来优化转运过程,因为通过改变横截面引起纳米孔处的电势急剧下降。此外,观察到纳米孔中聚合物链的构型以确定其易位速度。电场强度与小孔内约束之间的竞争产生了各种传输机制,因此,本研究结果代表了一种优化用于单分子检测的纳米流体装置设计的方法。

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