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DNA 在通过固态纳米孔时的迁移速度。

Velocity of DNA during translocation through a solid-state nanopore.

机构信息

Department of Bionanoscience, Kavli Institute of Nanoscience, Delft University of Technology , Lorentzweg 1, 2628 CJ Delft, The Netherlands.

出版信息

Nano Lett. 2015 Jan 14;15(1):732-7. doi: 10.1021/nl504375c. Epub 2014 Dec 17.

Abstract

While understanding translocation of DNA through a solid-state nanopore is vital for exploiting its potential for sensing and sequencing at the single-molecule level, surprisingly little is known about the dynamics of the propagation of DNA through the nanopore. Here we use linear double-stranded DNA molecules, assembled by the DNA origami technique, with markers at known positions in order to determine for the first time the local velocity of different segments along the length of the molecule. We observe large intramolecular velocity fluctuations, likely related to changes in the drag force as the DNA blob unfolds. Furthermore, we observe an increase in the local translocation velocity toward the end of the translocation process, consistent with a speeding up due to unfolding of the last part of the DNA blob. We use the velocity profile to estimate the uncertainty in determining the position of a feature along the DNA given its temporal location and demonstrate the error introduced by assuming a constant translocation velocity.

摘要

虽然理解 DNA 通过固态纳米孔的转位对于利用其在单分子水平上进行传感和测序的潜力至关重要,但令人惊讶的是,对于 DNA 通过纳米孔的传播动力学知之甚少。在这里,我们使用线性双链 DNA 分子,通过 DNA 折纸技术组装,在已知位置标记,以便首次确定分子长度上不同片段的局部速度。我们观察到较大的分子内速度波动,可能与 DNA 球状物展开时阻力变化有关。此外,我们观察到在转位过程接近尾声时局部转位速度增加,这与由于 DNA 球状物最后一部分展开而导致的加速一致。我们使用速度分布来估计给定 DNA 时空位置的特征位置的不确定性,并演示了假设恒定转位速度所引入的误差。

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