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Role of glycosylation in structure and stability of Erythrina corallodendron lectin (EcorL): A molecular dynamics study

机译:糖基化在赤藓珊瑚凝集素(EcorL)的结构和稳定性中的作用:分子动力学研究

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摘要

The effect of glycosylation on structure and stability of glycoproteins has been a topic of considerable interest. In this work, we have investigated the solution conformation of the oligosaccharide and its effect on the structure and stability of the glycoprotein by carrying out a series of long Molecular dynamics (MD) simulations on glycosylated Erythrina corallodendron lectin (EcorL) and nonglycosylated recombinant Erythrina corallodendron lectin (rEcorL). Our results indicate that, despite the similarity in overall three dimensional structures, glycosylated EcorL has lesser nonpolar solvent accessible surface area compared to nonglycosylated EcorL. This might explain the experimental observation of higher thermodynamic stability for glycosylated EcorL compared to nonglycosylated EcorL. Analysis of the simulation results indicates that, dynamic view of interactions between protein residues and oligosaccharide is entirely different from the static picture seen in the crystal structure. The oligosaccharide moiety had dynamically stable interactions with Lys 55 and Tyr 53, both of which are separated in sequence from the site of glycosylation, Asn 17. It is possible that glycosylation helps in forming long-range contacts between amino acids, which are separated in sequence and thus provides a folding nucleus. Thus our simulations not only reveal the conformations sampled by the oligosaccharide, but also provide novel insights into possible molecular mechanisms by which glycosylation can help in folding of the glycoprotein by formation of folding nucleus involving specific contacts with the oligosaccharide moiety.
机译:糖基化对糖蛋白的结构和稳定性的影响已经引起人们极大的兴趣。在这项工作中,我们通过对糖基化的刺桐珊瑚凝集素(EcorL)和非糖基化的重组刺桐珊瑚进行一系列长分子动力学(MD)模拟,研究了寡糖的溶液构象及其对糖蛋白结构和稳定性的影响凝集素(rEcorL)。我们的结果表明,尽管总体三维结构相似,但是与未糖基化的EcorL相比,糖基化的EcorL具有更少的非极性溶剂可及表面积。这也许可以解释实验观察到的糖基化EcorL相比非糖基化EcorL具有更高的热力学稳定性。对模拟结果的分析表明,蛋白质残基和寡糖之间相互作用的动态视图与晶体结构中看到的静态图片完全不同。寡糖部分与Lys 55和Tyr 53具有动态稳定的相互作用,二者在序列上均与糖基化位点Asn 17分开。糖基化可能有助于在氨基酸之间形成长距离接触,而氨基酸在序列,从而提供折叠核。因此,我们的模拟不仅揭示了寡糖采样的构象,而且还提供了对可能的分子机制的新颖见解,通过这种机制,糖基化可以通过形成涉及与寡糖部分进行特定接触的折叠核来帮助糖蛋白折叠。

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