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首页> 外文期刊>ACS nano >Electrically Tunable Quenching of DNA Fluctuations in Biased Solid-State Nanopores
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Electrically Tunable Quenching of DNA Fluctuations in Biased Solid-State Nanopores

机译:偏置固态纳米孔中DNA波动的电可调淬火。

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摘要

Nanopores offer sensors for a broad range of nanoscale materials, in particular ones of biological origin such as single- and double-stranded DNA or DNA protein complexes. In order to increase single-molecule sensitivity, it is desirable to control biomolecule motion inside nanopores. In the present study, we investigate how in the case of a double-stranded DNA the single-molecule sensitivity can be improved through bias voltages. For this purpose we carry out molecular dynamics simulations of the DNA inside nanopores in an electrically biased metallic membrane. Stabilization of DNA, namely, a reduction in thermal fluctuations, is observed under positive bias voltages, while negative voltages bring about only negligible stabilization. For positive biases the stabilization arises from electrostatic attraction between the negatively charged DNA backbone and the positively charged pore surface. Simulations on a teardrop-shaped pore show a transverse shift of DNA position toward the sharp end of the pore under positive bias voltages, suggesting the possibility to control DNA alignment inside nanopores through geometry shaping. The present findings open a feasible and efficient route to reduce thermal noise and, in turn, enhance the signal-to-noise ratio in single-molecule nanopore sensing.
机译:纳米孔为广泛的纳米级材料提供了传感器,特别是生物来源的传感器,例如单链和双链DNA或DNA蛋白复合物。为了增加单分子敏感性,期望控制纳米孔内部的生物分子运动。在本研究中,我们研究在双链DNA情况下如何通过偏置电压提高单分子敏感性。为此,我们对电偏压金属膜中纳米孔内的DNA进行了分子动力学模拟。在正偏压下可以观察到DNA的稳定化,即热波动的减少,而负电压只能带来微不足道的稳定作用。对于正偏压,稳定来自于带负电荷的DNA主链与带正电荷的孔表面之间的静电吸引。对水滴状孔的模拟显示,在正偏压下,DNA位置朝着孔的尖端横向移动,这表明可以通过几何形状控制纳米孔内部的DNA排列。本发现为减少热噪声,进而提高单分子纳米孔传感中的信噪比开辟了一条可行且有效的途径。

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