Taylor Edward J, Gloster Tracey M, Turkenburg Johan P, Vincent Florence, Brzozowski A Marek, Dupont Claude, Shareck François, Centeno Maria S J, Prates José A M, Puchart Vladimír, Ferreira Luís M A, Fontes Carlos M G A, Biely Peter, Davies Gideon J
Structural Biology Laboratory, Department of Chemistry, University of York, Heslington, York YO10 5YW, United Kingdom.
J Biol Chem. 2006 Apr 21;281(16):10968-75. doi: 10.1074/jbc.M513066200. Epub 2006 Jan 23.
The enzymatic degradation of plant cell wall xylan requires the concerted action of a diverse enzymatic syndicate. Among these enzymes are xylan esterases, which hydrolyze the O-acetyl substituents, primarily at the O-2 position of the xylan backbone. All acetylxylan esterase structures described previously display a alpha/beta hydrolase fold with a "Ser-His-Asp" catalytic triad. Here we report the structures of two distinct acetylxylan esterases, those from Streptomyces lividans and Clostridium thermocellum, in native and complex forms, with x-ray data to between 1.6 and 1.0 A resolution. We show, using a novel linked assay system with PNP-2-O-acetylxyloside and a beta-xylosidase, that the enzymes are sugar-specific and metal ion-dependent and possess a single metal center with a chemical preference for Co2+. Asp and His side chains complete the catalytic machinery. Different metal ion preferences for the two enzymes may reflect the surprising diversity with which the metal ion coordinates residues and ligands in the active center environment of the S. lividans and C. thermocellum enzymes. These "CE4" esterases involved in plant cell wall degradation are shown to be closely related to the de-N-acetylases involved in chitin and peptidoglycan degradation (Blair, D. E., Schuettelkopf, A. W., MacRae, J. I., and Aalten, D. M. (2005) Proc. Natl. Acad. Sci. U. S. A., 102, 15429-15434), which form the NodB deacetylase "superfamily."
植物细胞壁木聚糖的酶促降解需要多种酶协同作用。这些酶中包括木聚糖酯酶,它主要在木聚糖主链的O-2位水解O-乙酰基取代基。此前描述的所有乙酰木聚糖酯酶结构均呈现出具有“Ser-His-Asp”催化三联体的α/β水解酶折叠。在此,我们报告了两种不同的乙酰木聚糖酯酶(来自淡紫链霉菌和嗜热栖热菌)的天然形式和复合物形式的结构,X射线数据分辨率达到1.6至1.0埃。我们使用一种新型的与PNP-2-O-乙酰木糖苷和β-木糖苷酶联用的检测系统表明,这些酶具有糖特异性且依赖金属离子,拥有一个对Co2+有化学偏好的单一金属中心。天冬氨酸和组氨酸侧链构成了催化机制。这两种酶不同的金属离子偏好可能反映出淡紫链霉菌和嗜热栖热菌酶的活性中心环境中金属离子配位残基和配体的惊人多样性。这些参与植物细胞壁降解的“CE4”酯酶被证明与参与几丁质和肽聚糖降解的脱N-乙酰酶密切相关(布莱尔,D.E.,舒特尔科普夫,A.W.,麦克雷,J.I.,和阿尔滕,D.M.(2005年)《美国国家科学院院刊》,102,15429 - 15434),它们构成了NodB脱乙酰酶“超家族”。