Identification of Oligosaccharide Isomers Using Electrostatically Asymmetric OmpF Nanopore

Fan Gao, Jia-Hong Wang, Hui Ma, Prof. Bingqing Xia, Prof. Liuqing Wen, Prof. Yi-Tao Long, Prof. Yi-Lun Ying
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Abstract

Glycans, unlike uniformly charged DNA and compositionally diverse peptides, are typically uncharged and possess rich stereoisomeric diversity in the glycosidic bonds between two monosaccharide units. These unique features, including charge heterogeneity and structural complexity, pose significant challenges for accurate analysis. Herein, we developed a novel single-molecule oligosaccharide sensor, OmpF nanopore. The natural electroosmotic flow within OmpF generates a robust driving force for unlabeled neutral oligosaccharides, enabling detection at a concentration as low as 6.4 μM. Furthermore, the asymmetric constriction zone of OmpF was employed to construct a stereoselective recognition site, enabling sensitive identification of glycosidic bond differences in cell lysate samples. With the assistance of machine learning algorithms, the OmpF nanopore achieved a recognition accuracy of 99.9 % for tetrasaccharides differing in only one glycosidic bond was achieved. This nanopore sensor provides a highly sensitive analytical tool with a broad dynamic range. It enables chiral recognition of oligosaccharides at low concentrations and is suitable for analysing both low-abundance and practical samples.

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利用静电不对称纳米孔鉴定寡糖异构体
与均匀带电的DNA和组成多样的肽不同,聚糖通常不带电,并且在两个单糖单元之间的糖苷键中具有丰富的立体异构体多样性。这些独特的特征,包括电荷的非均质性和结构的复杂性,对精确分析提出了重大挑战。在此,我们开发了一种新的单分子寡糖传感器,OmpF纳米孔。OmpF内部的自然电渗透流对未标记的中性寡糖产生强大的驱动力,可以在低至6.4 μM的浓度下进行检测。此外,利用OmpF的不对称收缩区构建立体选择性识别位点,可以灵敏地识别细胞裂解液样品中的糖苷键差异。在机器学习算法的帮助下,OmpF纳米孔对只有一个糖苷键不同的四糖的识别准确率达到99.9%。这种纳米孔传感器提供了一个高灵敏度的分析工具,具有广泛的动态范围。它能在低浓度下对低聚糖进行手性识别,适用于分析低丰度和实际样品。
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来源期刊
Angewandte Chemie
Angewandte Chemie 化学科学, 有机化学, 有机合成
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