Single-Molecule Identification and Quantification of Steviol Glycosides with a Deep Learning-Powered Nanopore Sensor

甜菊醇 纳米孔 聚糖 化学 分子 纳米技术 生物系统 生物物理学 材料科学 生物 生物化学 甜菊苷 有机化学 糖蛋白 医学 病理 替代医学
作者
Minmin Li,Jing Wang,Chen Zhang,Xinjia Zhao,Yüting Xiong,Yuchen Cao,Dongdong Wang,Xiaonong Li,Xinmiao Liang,Guangyan Qing
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (36): 25155-25169 被引量:9
标识
DOI:10.1021/acsnano.4c07038
摘要

Steviol glycosides (SGs) are a class of high-potency noncalorie natural sweeteners made up of a common diterpenoid core and varying glycans. Thus, the diversity of glycans in composition, linkage, and isomerism results in the tremendous structural complexity of the SG family, which poses challenges for the precise identification and leads to the fact that SGs are frequently used in mixtures and their variances in biological activity remain largely unexplored. Here we show that a wild-type aerolysin nanopore can detect and discriminate diverse SG species through the modulable electro-osmotic flow effect at varied applied voltages. At low voltages, the neutral SG molecule was drawn and stuck in the pore entrance due to an energy barrier around R220 sites. The ensuing binding events enable the identification of the majority of SG species. Increasing the voltage can break the barrier and cause translocation events, allowing for the unambiguous identification of several pairs of SGs differing by only one hydroxyl group through recognition accumulation from multiple sensing regions and sites. Based on nanopore data of 15 SGs, a deep learning-based artificial intelligence (AI) model was created to process the individual blockage events, achieving the rapid, automated, and precise single-molecule identification and quantification of SGs in real samples. This work highlights the value of nanopore sensing for precise structural analysis of complex glycans-containing glycosides, as well as the potential for sensitive and rapid quality assurance analysis of glycoside products with the use of AI.
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