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纳米尺度预限制下纳米孔中的 DNA 转位。

DNA Translocations through Nanopores under Nanoscale Preconfinement.

机构信息

Department of Physics, University of Ottawa , Ottawa, Ontario K1N 6N5, Canada.

Department of Biomedical Engineering, University of Rochester , Rochester, New York 14627, United States.

出版信息

Nano Lett. 2018 Feb 14;18(2):660-668. doi: 10.1021/acs.nanolett.7b03987. Epub 2017 Dec 6.

Abstract

To reduce unwanted variation in the passage speed of DNA through solid-state nanopores, we demonstrate nanoscale preconfinement of translocating molecules using an ultrathin nanoporous silicon nitride membrane separated from a single sensing nanopore by a nanoscale cavity. We present comprehensive experimental and simulation results demonstrating that the presence of an integrated nanofilter within nanoscale distances of the sensing pore eliminates the dependence of molecular passage time distributions on pore size, revealing a global minimum in the coefficient of variation of the passage time. These results provide experimental verification that the inter- and intramolecular passage time variation depends on the conformational entropy of each molecule prior to translocation. Furthermore, we show that the observed consistently narrower passage time distributions enables a more reliable DNA length separation independent of pore size and stability. We also demonstrate that the composite nanofilter/nanopore devices can be configured to suppress the frequency of folded translocations, ensuring single-file passage of captured DNA molecules. By greatly increasing the rate at which usable data can be collected, these unique attributes will offer significant practical advantages to many solid-state nanopore-based sensing schemes, including sequencing, genomic mapping, and barcoded target detection.

摘要

为了减少 DNA 通过固态纳米孔时的不必要的速度变化,我们展示了使用超薄氮化硅纳米多孔膜通过纳米级腔从单个传感纳米孔分离来对迁移分子进行纳米级预限制的方法。我们提出了全面的实验和模拟结果,证明在传感孔的纳米级距离内存在集成的纳米滤器可以消除分子通过时间分布对孔径的依赖性,揭示通过时间变化系数的全局最小值。这些结果提供了实验验证,表明分子通过的跨内和跨间时间变化取决于每个分子在易位之前的构象熵。此外,我们表明,观察到的一致更窄的通过时间分布能够实现更可靠的 DNA 长度分离,而与孔径和稳定性无关。我们还证明,复合纳米滤器/纳米孔器件可以配置为抑制折叠易位的频率,确保捕获的 DNA 分子的单分子通过。通过大大提高可以收集有用数据的速率,这些独特的属性将为许多基于固态纳米孔的传感方案(包括测序、基因组图谱和带条码目标检测)带来显著的实际优势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b8a0/5814347/5f17f6a7e024/nihms928590f1.jpg

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