Related Experiment Video
Updated: May 12, 2026

Membrane Transport Processes Analyzed by a Highly Parallel Nanopore Chip System at Single Protein Resolution
Published on: August 16, 2016
Reconfigurable Multichannel Glass Nanopores Speed up DNA and MicroRNA Detection
Zhongfei Liu1, Yufei Li1, Yaxian Liu1
1School of Nanoscience and Engineering, School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing 101408, China.
Abstract:
Nanopore sensing is a promising platform for single-molecule analysis. However, the intrinsically low capture rate of individual nanopores constrains its utility, resulting in prolonged time-to-result for low-concentration biomarkers. We address this challenge by implementing reconfigurable parallel measurements across glass nanopore arrays using a single high-bandwidth amplifier. Our results demonstrate that the capture rate scales linearly with the nanopore count, accelerating subpicomolar DNA detection and enabling sufficient events for statistical analysis within a 15 min measurement. We also elucidate the correlation between noise level and nanopore count. To validate the platform's diagnostic potential, we employed DNA carriers for low-abundance miRNA analysis, achieving detection of 2 pM targets in a 10 μL sample and shortening the detection time to ∼45 min, compared with the ∼12 h required for single glass nanopore measurements at ∼50 pM. These results highlight the potential of glass nanopore arrays as a promising platform for next-generation early disease diagnostics.

