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天蓝色链霉菌家族12内切葡聚糖酶:催化裂隙的构建、表达及1.75埃分辨率的X射线结构

The Streptomyces lividans family 12 endoglucanase: construction of the catalytic cre, expression, and X-ray structure at 1.75 A resolution.

作者信息

Sulzenbacher G, Shareck F, Morosoli R, Dupont C, Davies G J

机构信息

Department of Chemistry, University of York, Heslington, York YO1 5DD, England, UK.

出版信息

Biochemistry. 1997 Dec 23;36(51):16032-9. doi: 10.1021/bi972407v.

DOI:10.1021/bi972407v
PMID:9440876
Abstract

Cellulases are the glycoside hydrolases responsible for the enzymatic breakdown of the structural plant polymer cellulose. Together with xylanases they counteract the lmitless accumulation of plant biomass in nature and are of considerable fundamental and biotechnological interest. Endoglucanase CelB from Streptomyces lividans performs hydrolysis of the beta-1,4-glycosidic bonds of cellulose, with net retention of anomeric configuration. The enzyme is a member of glycoside hydrolase family 12 [Henrissat, B., and Bairoch, A. (1996) Biochem. J. 316, 695-696], which had previously eluded detailed structural analysis. A truncated, but cataytically competent form of CelB, locking the flexible linker region and cellulose-binding domain, has been constructed and overexpressed in a S. lividans expression system. The three-dimensional X-ray structure of the resulting catalytic domain, CelB2, has been solved by conventional multiple isomorphous replacement methods and refined to an R factor of 0.187 at 1.75 A resolution. The overall fold of the enzyme shows a remarkable similarity to that of family 11 xylanases, as previously predicted by hydrophobic clustering analysis [Törrönen, A., Kubicek, C.P., and Henrissat, B. (1993) FEBS Lett. 321, 135-139]. The 23 kDa protein presents a jelly-roll topology, built up mainly by antiparallel beta-sheets arranged in a sandwich-like manner. A deep substrate-binding cleft runs across the surface, as has been observed in other endoglucanase structures, and is potentially able to accommodate up to five binding subsites. The likely catalytic nucleophile and Brønsted acid/base, residues Glu 120 and Glue 203, respectively, have their carboxylate groups separated by a distance of approximately 7.0 A and are located approximately 15 A from one end of the cleft, implying a -3 to +2 active site.

摘要

纤维素酶是负责酶促分解植物结构聚合物纤维素的糖苷水解酶。它们与木聚糖酶一起,在自然界中抵消了植物生物质的无限制积累,具有相当大的基础研究和生物技术研究价值。来自淡紫链霉菌的内切葡聚糖酶CelB能水解纤维素的β-1,4-糖苷键,并净保留异头构型。该酶是糖苷水解酶家族12的成员[亨利萨特,B.,和白罗奇,A.(1996年)《生物化学杂志》316卷,695 - 696页],此前一直未得到详细的结构分析。一种截短但具有催化活性的CelB形式,锁定了柔性连接区和纤维素结合结构域,已在淡紫链霉菌表达系统中构建并过量表达。所得催化结构域CelB2的三维X射线结构已通过传统的多同晶置换法解析,并在1.75埃分辨率下精修至R因子为0.187。如先前通过疏水聚类分析所预测的那样[Törrönen, A., Kubicek, C.P., and Henrissat, B. (1993) FEBS Lett. 321, 135 - 139],该酶的整体折叠与家族11木聚糖酶具有显著相似性。这种23 kDa的蛋白质呈现出果冻卷拓扑结构,主要由以三明治样方式排列的反平行β-折叠片组成。正如在其他内切葡聚糖酶结构中所观察到的那样,一个深的底物结合裂隙贯穿表面,并且可能能够容纳多达五个结合亚位点。可能的催化亲核试剂和布朗斯特酸/碱,分别为Glu 120和Glu 203残基,它们的羧基基团相距约7.0埃,并且位于距裂隙一端约15埃处,这意味着是一个 -3到 +2的活性位点。

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