CAS Key Laboratory of Separation Science for Analytical Chemistry, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, 116023, China.
Jiangxi Province Key Laboratory of Polymer Micro/Nano Manufacturing and Devices, School of Chemistry, Biology and Materials Science, East China University of Technology, Nanchang, 330013, China.
Nat Commun. 2023 Mar 28;14(1):1737. doi: 10.1038/s41467-023-37348-5.
Structural complexity of glycans derived from the diversities in composition, linage, configuration, and branching considerably complicates structural analysis. Nanopore-based single-molecule sensing offers the potential to elucidate glycan structure and even sequence glycan. However, the small molecular size and low charge density of glycans have restricted direct nanopore detection of glycan. Here we show that glycan sensing can be achieved using a wild-type aerolysin nanopore by introducing a facile glycan derivatization strategy. The glycan molecule can induce impressive current blockages when moving through the nanopore after being connected with an aromatic group-containing tag (plus a carrier group for the neutral glycan). The obtained nanopore data permit the identification of glycan regio- and stereoisomers, glycans with variable monosaccharide numbers, and distinct branched glycans, either independently or with the use of machine learning methods. The presented nanopore sensing strategy for glycans paves the way towards nanopore glycan profiling and potentially sequencing.
糖链结构的复杂性源于组成、谱系、构型和分支的多样性,这使得结构分析变得相当复杂。基于纳米孔的单分子传感技术有可能阐明聚糖结构,甚至是序列聚糖。然而,糖链的小分子尺寸和低电荷密度限制了其在纳米孔中的直接检测。在这里,我们展示了通过引入一种简单的糖衍生化策略,可以使用野生型 Aerolysin 纳米孔进行糖感测。当连接有含芳基基团的标记物(加上中性糖的载体基团)的糖分子通过纳米孔移动时,会引起显著的电流阻断。所获得的纳米孔数据允许识别糖的区域和立体异构体、具有可变单糖数的聚糖以及不同的分支聚糖,无论是独立使用还是使用机器学习方法。该糖纳米孔传感策略为纳米孔聚糖分析和潜在的测序铺平了道路。