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个人信息Personal Information
教授
博士生导师
硕士生导师
主要任职:大连理工大学莱斯特国际学院副院长
性别:男
毕业院校:波鸿大学
学位:博士
所在单位:化工学院
学科:应用化学. 精细化工
办公地点:大连理工大学西部校区精细化工国家重点实验室E段521
联系方式:+86-411-84986487
电子邮箱:jinxuan.liu@dlut.edu.cn
Biomimetic nanochannels for the discrimination of sialylated glycans via a tug-of-war between glycan binding and polymer shrinkage
点击次数:364
论文类型:期刊论文
发表时间:2020-01-21
发表刊物:CHEMICAL SCIENCE
收录刊物:EI、SCIE
卷号:11
期号:3
页面范围:748-756
ISSN号:2041-6520
摘要:Sialylated glycans that are attached to cell surface mediate diverse cellular processes such as immune responses, pathogen binding, and cancer progression. Precise determination of sialylated glycans, particularly their linkage isomers that can trigger distinct biological events and are indicative of different cancer types, remains a challenge, due to their complicated composition and limited structural differences. Here, we present a biomimetic nanochannels system integrated with the responsive polymer polyethyleneimine-g-glucopyranoside (Glc-PEI) to solve this problem. By using a dramatic "OFF-ON" change in ion flux, the nanochannels system achieves specific recognition for N-acetylneuraminic acid (Neu5Ac, the predominant form of sialic acid) from various monosaccharides and sialic acid species. Importantly, different "OFF-ON" ratios of the conical nanochannels system allows the precise and sensitive discrimination of sialylated glycan linkage isomers, alpha 2-3 and alpha 2-6 linkage (the corresponding ion conductance increase ratios are 96.2% and 264%, respectively). Analyses revealed an unusual tug-of-war mechanism between polymer-glycan binding and polymer shrinkage. The low binding affinity of Glc-PEI for the alpha 2-6-linked glycan caused considerable shrinkage of Glc-PEI layer, but the high affinity for the alpha 2-3-linked glycan resulted in only a slight shrinkage. This competition mechanism provides a simple and versatile materials design principle for recognition or sensing systems that involve negatively charged target biomolecules. Furthermore, this work broadens the application of nanochannel systems in bioanalysis and biosensing, and opens a new route to glycan analysis that could help to uncover the mysterious and wonderful glycoworld.