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使用蛋白质纳米孔对糖胺聚糖透明质酸寡糖和解聚酶活性进行单分子检测。

Single molecule detection of glycosaminoglycan hyaluronic acid oligosaccharides and depolymerization enzyme activity using a protein nanopore.

机构信息

CNRS UMR 8587, Laboratoire Analyse et Modélisation pour la Biologie et l'Environnement, Université d'Evry Val d'Essonne, Bd François Mitterrand, 91025 Evry Cedex, France.

出版信息

ACS Nano. 2012 Nov 27;6(11):9672-8. doi: 10.1021/nn3031047. Epub 2012 Oct 17.

Abstract

Glycosaminoglycans are biologically active anionic carbohydrates that are among the most challenging biopolymers with regards to their structural analysis and functional assessment. The potential of newly introduced biosensors using protein nanopores that have been mainly described for nucleic acids and protein analysis to date, has been here applied to this polysaccharide-based third class of bioactive biopolymer. This nanopore approach has been harnessed in this study to analyze the hyaluronic acid glycosamiglycan and its depolymerization-derived oligosaccharides. The translocation of a glycosaminoglycan is reported using aerolysin protein nanopore. Nanopore translocation of hyaluronic acid oligosaccharides was evidenced by the direct detection of translocated molecules accumulated into the arrival compartment using high-resolution mass spectrometry. Anionic oligosaccharides of various polymerization degrees were discriminated through measurement of the dwelling time and translocation frequency. This molecular sizing capability of the protein nanopore device allowed the real-time recording of the enzymatic cleavage of hyaluronic acid polysaccharide. The time-resolved detection of enzymatically produced oligosaccharides was carried out to monitor the depolymerization enzyme reaction at the single-molecule level.

摘要

糖胺聚糖是具有生物活性的阴离子碳水化合物,就其结构分析和功能评估而言,它们是最具挑战性的生物聚合物之一。迄今为止,主要用于核酸和蛋白质分析的新型蛋白质纳米孔生物传感器在该研究中被应用于基于多糖的第三类生物活性生物聚合物。本研究利用该纳米孔方法分析了透明质酸糖胺聚糖及其解聚衍生的寡糖。使用 Aerolysin 蛋白纳米孔报告了糖胺聚糖的易位。通过使用高分辨率质谱法直接检测累积到到达隔室中的移位分子,证实了透明质酸寡糖的纳米孔易位。通过测量停留时间和易位频率,区分了不同聚合度的阴离子寡糖。该蛋白质纳米孔装置的分子尺寸测定能力允许实时记录透明质酸多糖的酶切。进行时分辨检测酶促产生的寡糖,以在单分子水平监测解聚酶反应。

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