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用于DNA读出的功能化纳米间隙:核苷酸旋转与电流-电压曲线

Functionalized Nanogap for DNA Read-Out: Nucleotide Rotation and Current-Voltage Curves.

作者信息

Maier Frank C, Fyta Maria

机构信息

Institute for Computational Physics, Universität Stuttgart, Allmandring 3, 70569, Stuttgart, Germany.

出版信息

Chemphyschem. 2020 Sep 15;21(18):2068-2074. doi: 10.1002/cphc.202000391. Epub 2020 Aug 20.

Abstract

Functionalized nanogaps embedded in nanopores show a strong potential for enhancing the detection of biomolecules, their length, type, and sequence. This detection is strongly dependent on the features of the target biomolecules, as well as the characteristics of the sensing device. In this work, through quantum-mechanical calculations, we elaborate on representative such aspects for the specific case of DNA detection and read-out. These aspects include the influence of single DNA nucleotide rotation within the nanogap and the current-voltage (I-V) characteristics of the nanogap. The results unveil a distinct variation in the electronic current across the functionalized device for the four natural DNA nucleotides with the applied voltage. These also underline the asymmetric response of the rotating nucleotides on this applied voltage and the respective variation in the rectification ratio of the device. The electronic tunneling current across the nanogap can be further enhanced through the proper choice of an applied bias voltage. We were able to correlate the enhancement of this current to the nucleotide rotation dynamics and a shift of the electronic transmission peaks towards the Fermi level. This nucleotide specific shift further reveals the sensitivity of the device in reading-out the identity of the DNA nucleotides for all different configurations in the nanogap. We underline the important information that can be obtained from both the I-V curves and the rectification characteristics of the nanogap device in view of accurately reading-out the DNA information. We show that tuning the applied bias can enhance this detection and discuss the implications in view of novel functionalized nanopore sequencers.

摘要

嵌入纳米孔中的功能化纳米间隙在增强生物分子检测、确定其长度、类型和序列方面显示出巨大潜力。这种检测很大程度上取决于目标生物分子的特征以及传感装置的特性。在这项工作中,我们通过量子力学计算,详细阐述了DNA检测和读出这一特定情况下的代表性方面。这些方面包括纳米间隙内单个DNA核苷酸旋转的影响以及纳米间隙的电流 - 电压(I - V)特性。结果揭示了随着施加电压,四种天然DNA核苷酸在功能化装置上的电子电流存在明显差异。这些结果还强调了旋转核苷酸对施加电压的不对称响应以及装置整流比的相应变化。通过适当选择施加的偏置电压,可以进一步增强纳米间隙上的电子隧穿电流。我们能够将这种电流的增强与核苷酸旋转动力学以及电子传输峰向费米能级的移动相关联。这种核苷酸特异性的移动进一步揭示了该装置在读出纳米间隙中所有不同构型的DNA核苷酸身份方面的灵敏度。鉴于准确读出DNA信息,我们强调了可以从纳米间隙装置的I - V曲线和整流特性中获得的重要信息。我们表明,调节施加的偏置可以增强这种检测,并讨论了其对新型功能化纳米孔测序仪的意义。

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