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对一种新型内切糖神经酰胺酶 I 的广泛底物特异性的结构见解,该酶属于 GH5 糖苷酶新亚家族。

Structural Insights into the Broad Substrate Specificity of a Novel Endoglycoceramidase I Belonging to a New Subfamily of GH5 Glycosidases.

作者信息

Han Yun-Bin, Chen Liu-Qing, Li Zhuo, Tan Yu-Meng, Feng Yan, Yang Guang-Yu

机构信息

From the State Key Laboratory of Microbial Metabolism, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai 200240, China.

the Shanghai Institute for Advanced Immunological Studies, ShanghaiTech University, Shanghai 200031, China, and.

出版信息

J Biol Chem. 2017 Mar 24;292(12):4789-4800. doi: 10.1074/jbc.M116.763821. Epub 2017 Feb 8.

Abstract

Endoglycoceramidases (EGCases) specifically hydrolyze the glycosidic linkage between the oligosaccharide and the ceramide moieties of various glycosphingolipids, and they have received substantial attention in the emerging field of glycosphingolipidology. However, the mechanism regulating the strict substrate specificity of these GH5 glycosidases has not been identified. In this study, we report a novel EGCase I from 103S (103S_EGCase I) with remarkably broad substrate specificity. Based on phylogenetic analyses, the enzyme may represent a new subfamily of GH5 glycosidases. The X-ray crystal structures of 103S_EGCase I alone and in complex with its substrates monosialodihexosylganglioside (GM3) and monosialotetrahexosylganglioside (GM1) enabled us to identify several structural features that may account for its broad specificity. Compared with EGCase II from sp. M-777 (M777_EGCase II), which possesses strict substrate specificity, 103S_EGCase I possesses a longer α7-helix and a shorter loop 4, which forms a larger substrate-binding pocket that could accommodate more extended oligosaccharides. In addition, loop 2 and loop 8 of the enzyme adopt a more open conformation, which also enlarges the oligosaccharide-binding cavity. Based on this knowledge, a rationally designed experiment was performed to examine the substrate specificity of EGCase II. The truncation of loop 4 in M777_EGCase II increased its activity toward GM1 (163%). Remarkably, the S63G mutant of M777_EGCase II showed a broader substrate spectra and significantly increased activity toward bulky substrates (up to >1370-fold for fucosyl-GM1). Collectively, the results presented here reveal the exquisite substrate recognition mechanism of EGCases and provide an opportunity for further engineering of these enzymes.

摘要

内切糖神经酰胺酶(EGCases)可特异性水解各种糖鞘脂中寡糖与神经酰胺部分之间的糖苷键,在新兴的糖鞘脂学领域受到了广泛关注。然而,尚未明确调节这些GH5糖苷酶严格底物特异性的机制。在本研究中,我们报道了一种来自103S的新型EGCase I(103S_EGCase I),其具有非常广泛的底物特异性。基于系统发育分析,该酶可能代表GH5糖苷酶的一个新亚家族。103S_EGCase I单独以及与其底物单唾液酸二己糖神经节苷脂(GM3)和单唾液酸四己糖神经节苷脂(GM1)形成复合物的X射线晶体结构,使我们能够确定一些可能解释其广泛特异性的结构特征。与具有严格底物特异性的来自sp. M - 777的EGCase II(M777_EGCase II)相比,103S_EGCase I具有更长的α7螺旋和更短的环4,形成了一个更大的底物结合口袋,可以容纳更长的寡糖。此外,该酶的环2和环8采用更开放的构象,这也扩大了寡糖结合腔。基于这些认识,进行了一项合理设计的实验来研究EGCase II的底物特异性。M777_EGCase II中环4的截断增加了其对GM1的活性(163%)。值得注意的是,M777_EGCase II的S63G突变体显示出更广泛的底物谱,并且对大分子底物的活性显著增加(对岩藻糖基 - GM1高达>1370倍)。总体而言,此处呈现的结果揭示了EGCases精细的底物识别机制,并为这些酶进一步的工程改造提供了机会。

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