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Directly Observing the Motion of DNA Molecules near Solid-State Nanopores

机译:直接观察DNA分子在固态纳米孔附近的运动

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摘要

We investigate the diffusion and the drift motion of λ DNA molecules near solid-state nanopores prior to their translocation though the nanopores using fluorescence microscopy. The radial dependence of the electric field near a nanopore generated by an applied voltage in ionic solution can be estimated quantitatively in 3D by analyzing the motion of negatively charged DNA molecules. We find that the electric field is approximately spherically symmetric around the nanopore under the conditions investigated. In addition, DNA clogging at the nanopore was directly observed. Surprisingly, the probability of the clogging event increases with increasing external bias voltage. We also find that DNA molecules clogging the nanopore reduce the electric field amplitude at the nanopore membrane surface. To better understand these experimental results, analytical method with Ohm’s law and computer simulation with Poisson and Nernst-Planck (PNP) equations are used to calculate the electric field near the nanopore. These results are of great interest in both experimental and theoretical considerations of the motion of DNA molecules near voltage-biased nanopores. These findings will also contribute to the development of solid-state nanopore based DNA sensing devices.
机译:我们使用荧光显微镜研究了在固态纳米孔附近的λDNA分子通过纳米孔易位之前的扩散和漂移运动。通过分析带负电荷的DNA分子的运动,可以在3D中定量估算由离子溶液中施加的电压所产生的纳米孔附近电场的径向依赖性。我们发现,在所研究的条件下,电场在纳米孔周围近似球形对称。另外,直接观察到纳米孔处的DNA堵塞。令人惊讶的是,堵塞事件的可能性随着外部偏置电压的增加而增加。我们还发现,堵塞纳米孔的DNA分子降低了纳米孔膜表面的电场幅度。为了更好地理解这些实验结果,使用了基于欧姆定律的分析方法以及具有Poisson和Nernst-Planck(PNP)方程的计算机模拟来计算纳米孔附近的电场。这些结果对于在电压偏置的纳米孔附近的DNA分子运动的实验和理论考虑都引起了极大的兴趣。这些发现还将有助于基于固态纳米孔的DNA传感设备的开发。

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