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用于有效将 DNA 转运入纳米通道的菱形梯度纳米柱阵列的流体动力学。

Hydrodynamics of diamond-shaped gradient nanopillar arrays for effective DNA translocation into nanochannels.

机构信息

IBM T. J. Watson Research Center , Yorktown Heights, New York 10598, United States.

出版信息

ACS Nano. 2015 Feb 24;9(2):1206-18. doi: 10.1021/nn507350e. Epub 2015 Jan 29.

Abstract

Effective DNA translocation into nanochannels is critical for advancing genome mapping and future single-molecule DNA sequencing technologies. We present the design and hydrodynamic study of a diamond-shaped gradient pillar array connected to nanochannels for enhancing the success of DNA translocation events. Single-molecule fluorescence imaging is utilized to interrogate the hydrodynamic interactions of the DNA with this unique structure, evaluate key DNA translocation parameters, including speed, extension, and translocation time, and provide a detailed mapping of the translocation events in nanopillar arrays coupled with 10 and 50 μm long channels. Our analysis reveals the important roles of diamond-shaped nanopillars in guiding DNA into as small as 30 nm channels with minimized clogging, stretching DNA to nearly 100% of their dyed contour length, inducing location-specific straddling of DNA at nanopillar interfaces, and modulating DNA speeds by pillar geometries. Importantly, all critical features down to 30 nm wide nanochannels are defined using standard photolithography and fabrication processes, a feat aligned with the requirement of high-volume, low-cost production.

摘要

有效将 DNA 转位进入纳米通道对于推进基因组图谱绘制和未来的单分子 DNA 测序技术至关重要。我们设计并研究了一种连接纳米通道的菱形梯度柱状阵列,以提高 DNA 转位事件的成功率。利用单分子荧光成像技术研究了 DNA 与这种独特结构的流体动力学相互作用,评估了关键的 DNA 转位参数,包括速度、延伸和转位时间,并对与 10 和 50 μm 长通道结合的纳米柱阵列中的转位事件进行了详细的映射。我们的分析揭示了菱形纳米柱在引导 DNA 进入最小 30nm 通道、最小化堵塞、将 DNA 拉伸至接近其染色轮廓长度的 100%、诱导 DNA 在纳米柱界面处的位置特异性跨越以及通过柱几何形状调节 DNA 速度方面的重要作用。重要的是,所有关键特征(低至 30nm 宽的纳米通道)都使用标准光刻和制造工艺定义,这一壮举符合大规模、低成本生产的要求。

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