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纳米过滤器阵列中的高通量DNA分离

High-throughput DNA separation in nanofilter arrays.

作者信息

Choi Sungup, Kim Ju Min, Ahn Kyung Hyun, Lee Seung Jong

机构信息

School of Chemical and Biological Engineering, Institute of Chemical Process, Seoul National University, Seoul, Republic of Korea.

出版信息

Electrophoresis. 2014 Aug;35(15):2068-77. doi: 10.1002/elps.201400168. Epub 2014 Jul 14.

Abstract

We numerically investigated the dynamics of short double-stranded DNA molecules moving through a deep-shallow alternating nanofilter, by utilizing Brownian dynamics simulation. We propose a novel mechanism for high-throughput DNA separation with a high electric field, which was originally predicted by Laachi et al. [Phys. Rev. Lett. 2007, 98, 098106]. In this work, we show that DNA molecules deterministically move along different electrophoretic streamlines according to their length, owing to geometric constraint at the exit of the shallow region. Consequently, it is more probable that long DNA molecules pass over a deep well region without significant lateral migration toward the bottom of the deep well, which is in contrast to the long dwelling time for short DNA molecules. We investigated the dynamics of DNA passage through a nanofilter facilitating electrophoretic field kinematics. The statistical distribution of the DNA molecules according to their size clearly corroborates our assumption. On the other hand, it was also found that the tapering angle between the shallow and deep regions significantly affects the DNA separation performance. The current results show that the nonuniform field effect combined with geometric constraint plays a key role in nanofilter-based DNA separation. We expect that our results will be helpful in designing and operating nanofluidics-based DNA separation devices and in understanding the polymer dynamics in confined geometries.

摘要

我们利用布朗动力学模拟,对短双链DNA分子通过深浅交替纳米过滤器的动力学进行了数值研究。我们提出了一种利用高电场进行高通量DNA分离的新机制,这一机制最初由拉阿奇等人预测[《物理评论快报》,2007年,第98卷,098106]。在这项工作中,我们表明,由于浅区域出口处的几何约束,DNA分子根据其长度沿不同的电泳流线确定性地移动。因此,长DNA分子更有可能越过深阱区域,而不会显著横向迁移至深阱底部,这与短DNA分子的长时间停留形成对比。我们研究了DNA通过促进电泳场运动学的纳米过滤器的动力学。DNA分子按大小的统计分布清楚地证实了我们的假设。另一方面,还发现浅区域和深区域之间的锥角对DNA分离性能有显著影响。目前的结果表明,非均匀场效应与几何约束相结合在基于纳米过滤器的DNA分离中起关键作用。我们期望我们的结果将有助于设计和操作基于纳米流体的DNA分离装置,并有助于理解受限几何形状中的聚合物动力学。

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High-throughput DNA separation in nanofilter arrays.纳米过滤器阵列中的高通量DNA分离
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