溶氧素
纳米孔
突变体
聚糖
纳米技术
多细胞生物
糖组学
生物物理学
半乳糖凝集素
纳米孔测序
材料科学
计算生物学
化学
DNA
生物
生物化学
DNA测序
糖蛋白
基因
毒力
作者
Wenqi Lu,Xinjia Zhao,Minmin Li,Yuting Li,Chen Zhang,Yüting Xiong,Jiaqi Li,Han Zhou,Xianlong Ye,Xiaonong Li,Xinyi Wang,Xinmiao Liang,Guangyan Qing
出处
期刊:ACS Nano
[American Chemical Society]
日期:2024-05-02
卷期号:18 (19): 12412-12426
被引量:20
标识
DOI:10.1021/acsnano.4c01571
摘要
Glycans play vital roles in nearly all life processes of multicellular organisms, and understanding these activities is inseparable from elucidating the biological significance of glycans. However, glycan research has lagged behind that of DNA and protein due to the challenges posed by structural heterogeneity and isomerism (i.e., structures with equal molecular weights) the lack of high-efficiency structural analysis techniques. Nanopore technology has emerged as a sensitive single-molecule biosensor, shining a light on glycan analysis. However, a significant number of glycans are small and uncharged, making it challenging to elicit identifiable nanopore signals. Here we introduce a R-binaphthyl tag into glycans, which enhances the cation-π interaction between the derivatized glycan molecules and the nanopore interface, enabling the detection of neutral glycans with an aerolysin nanopore. This approach allows for the distinction of di-, tri-, and tetrasaccharides with monosaccharide resolution and has the potential for group discrimination, the monitoring of enzymatic transglycosylation reactions. Notably, the aerolysin mutant T240R achieves unambiguous identification of six disaccharide isomers, trisaccharide and tetrasaccharide linkage isomers. Molecular docking simulations reveal that multiple noncovalent interactions occur between residues R282, K238, and R240 and the glycans and R-binaphthyl tag, significantly slowing down their translocation across the nanopore. Importantly, we provide a demonstration of the kinetic translocation process of neutral glycan isomers, establishing a solid theoretical foundation for glycan nanopore analysis. The development of our technology could promote the analysis of glycan structural isomers and has the potential for nanopore-based glycan structural determination and sequencing.
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