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Transverse electric field dragging of DNA in a nanochannel

机译:纳米通道中DNA的横向电场拖曳

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摘要

Nanopore analysis is an emerging single-molecule strategy for non-optical and high-throughput DNA sequencing, the principle of which is based on identification of each constituent nucleobase by measuring trans-membrane ionic current blockade or transverse tunnelling current as it moves through the pore. A crucial issue for nanopore sequencing is the fact that DNA translocates a nanopore too fast for addressing sequence with a single base resolution. Here we report that a transverse electric field can be used to slow down the translocation. We find 400-fold decrease in the DNA translocation speed by adding a transverse field of 10 mVm in a gold-electrode-embedded silicon dioxide channel. The retarded flow allowed us to map the local folding pattern in individual DNA from trans-pore ionic current profiles. This field dragging approach may provide a new way to control the polynucleotide translocation kinetics.
机译:纳米孔分析是一种用于非光学和高通量DNA测序的新兴单分子策略,其原理是基于通过测量跨膜离子电流阻滞或横向隧穿电流在穿过孔中时的每个组成核碱基的鉴定。纳米孔测序的一个关键问题是DNA迁移纳米孔的速度过快,以至于无法以单一碱基分辨率寻址序列。在这里,我们报告横向电场可用于减慢易位。通过在嵌入金电极的二氧化硅通道中添加10 addingmV / nm的横向电场,我们发现DNA转运速度降低了400倍。延迟的流动使我们能够从跨孔离子流图谱中绘制单个DNA中的局部折叠模式。这种田间拖动方法可以提供控制多核苷酸易位动力学的新方法。

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