纳米孔
纳米技术
纳米孔测序
DNA
材料科学
鉴定(生物学)
分辨率(逻辑)
高分辨率
DNA测序
计算机科学
生物
遗传学
遥感
植物
人工智能
地质学
作者
Rui Hu,Zhen Zhang,Lifeng Tian,Guanghao Wei,Zhan Wang,Meni Wanunu,Wei Si,Qing Zhao
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-03-12
标识
DOI:10.1021/acsnano.5c00823
摘要
The solid-state nanopore technique holds the potential to develop mechanically stable and miniaturized DNA sequencing devices. However, the limited temporal resolution due to the high electric field inside the nanopore and the lack of an effective speed control strategy have hindered the realization of sequencing. Here, we reported a quad-array (four nanopores milled with ∼30 nm interpore spacing as a detection unit) that induced a redistribution of the electric field inside and outside the nanopore array and offered high-resolution discrimination of four ssDNA homopolymer types. We demonstrated that the quad-nanopore array well resolved the translocation events of polyA25 and had a length resolution of 20 nt. The molecular dynamic simulation confirmed the slowed-down translocations and superior performance of a quad-nanopore array. We found that the nanopore array configuration induced a direct reduction of the electric field inside the nanopore as well as an increase in the electrical field outside the nanopore due to electric field crosstalk. This dual benefit not only reduced the large driving force on DNA but also facilitated molecule capture through nanopores, therefore decreasing the voltage thresholds. Finally, the successful discrimination of four ssDNA homopolymer types (polyA25, polyT25, polyC25, and polyG10) was achieved using a voltage as low as 30 mV with a translocation speed of 8 μs/nt. These findings provide insights into nanopore arrays for discriminating short single-stranded nucleotides with high resolution and demonstrate promising potential for developing DNA sequencers that utilize nanopore arrays as sensing units.
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