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通过工程化的α-溶血素纳米孔对聚糖上的乙酰氨基和羧基进行作图。

Mapping the Acetylamino and Carboxyl Groups on Glycans by Engineered α-Hemolysin Nanopores.

机构信息

State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China.

University of Chinese Academy of Sciences, 19A Yuquan Road, Beijing 100049, China.

出版信息

J Am Chem Soc. 2023 Aug 30;145(34):18812-18824. doi: 10.1021/jacs.3c03563. Epub 2023 Aug 1.

Abstract

Glycan is a crucial class of biological macromolecules with important biological functions. Functional groups determine the chemical properties of glycans, which further affect their biological activities. However, the structural complexity of glycans has set a technical hurdle for their direct identification. Nanopores have emerged as highly sensitive biosensors that are capable of detecting and characterizing various analytes. Here, we identified the functional groups on glycans with a designed α-hemolysin nanopore containing arginine mutations (M113R), which is specifically sensitive to glycans with acetamido and carboxyl groups. Molecular dynamics simulations indicated that the acetamido and carboxyl groups of the glycans produce unique electrical signatures by forming polar and electrostatic interactions with the M113R nanopores. Using these electrical features as the fingerprints, we mapped the length of the glycans containing acetamido and carboxyl groups at the monosaccharide, disaccharide, and trisaccharide levels. This proof-of-concept study provides a promising foundation for developing single-molecule glycan fingerprinting libraries and demonstrates the capability of biological nanopores in glycan sequencing.

摘要

聚糖是一类具有重要生物学功能的生物大分子。功能基团决定了聚糖的化学性质,进而影响其生物学活性。然而,聚糖的结构复杂性给其直接鉴定带来了技术障碍。纳米孔作为一种高灵敏度的生物传感器,可以检测和表征各种分析物。在这里,我们使用含有精氨酸突变(M113R)的设计的α-溶血素纳米孔来鉴定聚糖上的功能基团,该纳米孔对具有乙酰氨基和羧基的聚糖具有特异性敏感性。分子动力学模拟表明,通过与 M113R 纳米孔形成极性和静电相互作用,聚糖的乙酰氨基和羧基产生独特的电信号。利用这些电特征作为指纹,我们在单糖、二糖和三糖水平上绘制了含有乙酰氨基和羧基的聚糖的长度。这项概念验证研究为开发单分子聚糖指纹图谱库提供了有前景的基础,并展示了生物纳米孔在聚糖测序中的能力。

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