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一种甘露聚糖特异性35家族碳水化合物结合模块的结构:配体结合后显著构象变化的证据。

Structure of a mannan-specific family 35 carbohydrate-binding module: evidence for significant conformational changes upon ligand binding.

作者信息

Tunnicliffe Richard B, Bolam David N, Pell Gavin, Gilbert Harry J, Williamson Mike P

机构信息

Department of Molecular Biology and Biotechnology, University of Sheffield, Western Bank, Sheffield S10 2TN, UK.

出版信息

J Mol Biol. 2005 Mar 25;347(2):287-96. doi: 10.1016/j.jmb.2005.01.038.

DOI:10.1016/j.jmb.2005.01.038
PMID:15740741
Abstract

Enzymes that digest plant cell wall polysaccharides generally contain non-catalytic, carbohydrate-binding modules (CBMs) that function by attaching the enzyme to the substrate, potentiating catalytic activity. Here, we present the first structure of a family 35 CBM, derived from the Cellvibrio japonicus beta-1,4-mannanase Man5C. The NMR structure has been determined for both the free protein and the protein bound to mannopentaose. The data show that the protein displays a typical beta-jelly-roll fold. Ligand binding is not located on the concave surface of the protein, as occurs in many CBMs that display the jelly-roll fold, but is formed by the loops that link the two beta-sheets of the protein, similar to family 6 CBMs. In contrast to the majority of CBMs, which are generally rigid proteins, CBM35 undergoes significant conformational change upon ligand binding. The curvature of the binding site and the narrow binding cleft are likely to be the main determinants of binding specificity. The predicted solvent exposure of O6 at several subsites provides an explanation for the observed accommodation of decorated mannans. Two of the key aromatic residues in Man5C-CBM35 that interact with mannopentaose are conserved in mannanase-derived CBM35s, which will guide specificity predictions based on the primary sequence of proteins in this CBM family.

摘要

消化植物细胞壁多糖的酶通常含有非催化性的碳水化合物结合模块(CBMs),这些模块通过将酶附着于底物来发挥作用,从而增强催化活性。在此,我们展示了源自日本纤维弧菌β-1,4-甘露聚糖酶Man5C的35家族CBM的首个结构。已通过核磁共振确定了游离蛋白以及与甘露五糖结合的蛋白的结构。数据表明该蛋白呈现典型的β-果冻卷折叠结构。配体结合并非像许多具有果冻卷折叠结构的CBM那样位于蛋白的凹面,而是由连接蛋白两个β-折叠片的环形成,这与6家族CBM相似。与大多数通常为刚性蛋白的CBM不同,CBM35在配体结合时会发生显著的构象变化。结合位点的曲率和狭窄的结合裂隙可能是结合特异性的主要决定因素。在几个亚位点处预测的O6溶剂暴露情况为观察到的修饰甘露聚糖的容纳现象提供了解释。Man5C-CBM35中与甘露五糖相互作用的两个关键芳香族残基在源自甘露聚糖酶的CBM35中是保守的,这将基于该CBM家族中蛋白质的一级序列来指导特异性预测。

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