Kazan Institute of Biochemistry and Biophysics, FRC Kazan Scientific Center of RAS, 420111, Lobachevsky str. 2/31, Kazan, Russian Federation.
Kazan Institute of Biochemistry and Biophysics, FRC Kazan Scientific Center of RAS, 420111, Lobachevsky str. 2/31, Kazan, Russian Federation.
Carbohydr Polym. 2021 Jan 1;251:117038. doi: 10.1016/j.carbpol.2020.117038. Epub 2020 Sep 6.
Being biocompatible and biodegradable polymers, polysaccharides present a perspective material for drug delivery systems. This study aimed at unraveling the molecular details of interactions between rhamnogalacturonan I, brunched with galactan side chains, and RNase from Bacillus Intermedius, binase. FTIR- and NMR-spectroscopic analyses showed that binase interacts with side chains of the polysaccharide. In complexes with polysaccharide, the protein retains its native structure. The 2D-NMR techniques revealed eight protein residues responsive to polysaccharide binding. Further, computer simulations were carried out to provide the atomistic details of binase-polysaccharide complexes. Both blind and knowledge-based docking procedures elucidate the existence of epitopes on the binase surface with the preferential binding of galactan fragments. The refinement of these complexes by molecular dynamics simulations confirmed stable protein-polysaccharide interactions. The results of this study strengthen the knowledge on non-specific protein-carbohydrate interactions and outline the rhamnogalacturonan I as a possible matrix material for protein delivery systems.
多糖作为生物相容性和可生物降解的聚合物,为药物传递系统提供了一种有前景的材料。本研究旨在揭示半乳糖醛酸 I 与中间芽孢杆菌 RNase(binase)之间相互作用的分子细节,后者带有半乳糖侧链。傅里叶变换红外和核磁共振波谱分析表明,binase 与多糖的侧链相互作用。在与多糖形成的复合物中,蛋白质保留其天然结构。二维核磁共振技术揭示了 8 个对多糖结合有响应的蛋白质残基。此外,还进行了计算机模拟,以提供 binase-多糖复合物的原子细节。盲目和基于知识的对接程序都阐明了 binase 表面上存在表位,并且优先结合半乳糖片段。通过分子动力学模拟对这些复合物进行细化,证实了蛋白质-多糖相互作用的稳定性。本研究的结果增强了对非特异性蛋白质-碳水化合物相互作用的认识,并概述了半乳糖醛酸 I 作为蛋白质传递系统的可能基质材料。