Dragomir Isabela S, Asandei Alina, Schiopu Irina, Bucataru Ioana C, Mereuta Loredana, Luchian Tudor
Sciences Department, Interdisciplinary Research Institute, Alexandru I. Cuza University, 700506 Iasi, Romania.
Department of Physics, Alexandru I. Cuza University, 700506 Iasi, Romania.
Polymers (Basel). 2021 Apr 9;13(8):1210. doi: 10.3390/polym13081210.
The implication of nanopores as versatile components in dedicated biosensors, nanoreactors, or miniaturized sequencers has considerably advanced single-molecule investigative science in a wide range of disciplines, ranging from molecular medicine and nanoscale chemistry to biophysics and ecology. Here, we employed the nanopore tweezing technique to capture amino acid-functionalized peptide nucleic acids (PNAs) with α-hemolysin-based nanopores and correlated the ensuing stochastic fluctuations of the ionic current through the nanopore with the composition and order of bases in the PNAs primary structure. We demonstrated that while the system enables the detection of distinct bases on homopolymeric PNA or triplet bases on heteropolymeric strands, it also reveals rich insights into the conformational dynamics of the entrapped PNA within the nanopore, relevant for perfecting the recognition capability of single-molecule sequencing.
纳米孔作为专用生物传感器、纳米反应器或小型测序仪中的通用组件,极大地推动了从分子医学、纳米化学到生物物理和生态学等广泛学科领域的单分子研究科学发展。在此,我们采用纳米孔钳技术,利用基于α-溶血素的纳米孔捕获氨基酸功能化的肽核酸(PNA),并将通过纳米孔的离子电流随后的随机波动与PNA一级结构中碱基的组成和顺序相关联。我们证明,该系统不仅能够检测同聚PNA上的不同碱基或杂聚链上的三联体碱基,还能深入了解纳米孔内捕获的PNA的构象动力学,这对于完善单分子测序的识别能力具有重要意义。