A structural role for glycosylation: lessons from the hp model

Daniel Hoffmann , Holger Flörke
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引用次数: 23

Abstract

Background: Protein glycosylation, the covalent attachment of carbohydrates, is very common, but in many cases the biological function of glycosylation is not well understood. Recently, fluorescence energy transfer experiments have shown that glycosylation can strongly change the global conformational distributions of peptides. We intend to show the physical mechanism behind this structural effect using a theoretical model.

Results: The framework of the hp model of Dill and coworkers is used to describe peptides and their glycosylated counterparts. Conformations are completely enumerated and exact results are obtained for the effect of glycosylation. On glycosylation, the model peptides experience conformational changes similar to those seen in experiments. This effect is highly specific for the sequence of amino acids and also depends on the size of the glycan. Experimentally testable predictions are made for related peptides.

Conclusions:Glycans can, by means of entropic contributions, modulate the free energy landscape of polypeptides and thereby specifically stabilize polypeptide conformations. With respect to glycoproteins, the results suggest that the loss of chain entropy during protein folding is partly balanced by an increase in carbohydrate entropy.

糖基化的结构作用:来自hp模型的教训
背景:蛋白质糖基化,碳水化合物的共价附着,是非常常见的,但在许多情况下,糖基化的生物学功能尚不清楚。最近,荧光能量转移实验表明,糖基化可以强烈地改变肽的整体构象分布。我们打算用一个理论模型来展示这种结构效应背后的物理机制。结果:Dill及其同事的hp模型框架被用于描述肽及其糖基化对应物。完整地列举了构象,得到了糖基化作用的精确结果。在糖基化过程中,模型肽经历了与实验中相似的构象变化。这种效应对氨基酸序列具有高度特异性,也取决于聚糖的大小。对相关肽进行了实验可验证的预测。结论:聚糖可以通过熵贡献调节多肽的自由能格局,从而特异性地稳定多肽的构象。对于糖蛋白,结果表明,蛋白质折叠过程中链熵的损失部分被碳水化合物熵的增加所平衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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