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水稻β-葡萄糖苷酶1对寡糖水解和转糖基化作用的结构解析

Structural insights into rice BGlu1 beta-glucosidase oligosaccharide hydrolysis and transglycosylation.

作者信息

Chuenchor Watchalee, Pengthaisong Salila, Robinson Robert C, Yuvaniyama Jirundon, Oonanant Worrapoj, Bevan David R, Esen Asim, Chen Chun-Jung, Opassiri Rodjana, Svasti Jisnuson, Cairns James R Ketudat

机构信息

Schools of Biochemistry & Chemistry, Institute of Science, Suranaree University of Technology, Nakhon Ratchasima 30000, Thailand.

出版信息

J Mol Biol. 2008 Apr 4;377(4):1200-15. doi: 10.1016/j.jmb.2008.01.076. Epub 2008 Feb 4.

Abstract

The structures of rice BGlu1 beta-glucosidase, a plant beta-glucosidase active in hydrolyzing cell wall-derived oligosaccharides, and its covalent intermediate with 2-deoxy-2-fluoroglucoside have been solved at 2.2 A and 1.55 A resolution, respectively. The structures were similar to the known structures of other glycosyl hydrolase family 1 (GH1) beta-glucosidases, but showed several differences in the loops around the active site, which lead to an open active site with a narrow slot at the bottom, compatible with the hydrolysis of long beta-1,4-linked oligosaccharides. Though this active site structure is somewhat similar to that of the Paenibacillus polymyxa beta-glucosidase B, which hydrolyzes similar oligosaccharides, molecular docking studies indicate that the residues interacting with the substrate beyond the conserved -1 site are completely different, reflecting the independent evolution of plant and microbial GH1 exo-beta-glucanase/beta-glucosidases. The complex with the 2-fluoroglucoside included a glycerol molecule, which appears to be in a position to make a nucleophilic attack on the anomeric carbon in a transglycosylation reaction. The coordination of the hydroxyl groups suggests that sugars are positioned as acceptors for transglycosylation by their interactions with E176, the catalytic acid/base, and Y131, which is conserved in barley BGQ60/beta-II beta-glucosidase, that has oligosaccharide hydrolysis and transglycosylation activity similar to rice BGlu1. As the rice and barley enzymes have different preferences for cellobiose and cellotriose, residues that appeared to interact with docked oligosaccharides were mutated to those of the barley enzyme to see if the relative activities of rice BGlu1 toward these substrates could be changed to those of BGQ60. Although no single residue appeared to be responsible for these differences, I179, N190 and N245 did appear to interact with the substrates.

摘要

水稻β-葡萄糖苷酶(BGlu1)是一种在水解细胞壁衍生寡糖方面具有活性的植物β-葡萄糖苷酶,其结构以及与2-脱氧-2-氟葡萄糖苷形成的共价中间体结构分别已在2.2 Å和1.55 Å分辨率下得到解析。这些结构与其他糖基水解酶家族1(GH1)β-葡萄糖苷酶的已知结构相似,但在活性位点周围的环上显示出一些差异,这些差异导致活性位点开放,底部有一个狭窄的缝隙,这与长链β-1,4-连接寡糖的水解相适应。尽管这种活性位点结构与多粘芽孢杆菌β-葡萄糖苷酶B的活性位点结构有些相似,后者也水解类似的寡糖,但分子对接研究表明,与保守的-1位点之外的底物相互作用的残基完全不同,这反映了植物和微生物GH1外切β-葡聚糖酶/β-葡萄糖苷酶的独立进化。与2-氟葡萄糖苷形成的复合物包含一个甘油分子,该甘油分子似乎能够在转糖基化反应中对异头碳进行亲核攻击。羟基的配位表明,糖类通过与催化酸/碱E176以及在大麦BGQ60/β-IIβ-葡萄糖苷酶中保守的Y131相互作用,从而作为转糖基化的受体,大麦BGQ60/β-IIβ-葡萄糖苷酶具有与水稻BGlu1相似的寡糖水解和转糖基化活性。由于水稻和大麦酶对纤维二糖和纤维三糖有不同的偏好,因此将那些似乎与对接的寡糖相互作用的残基突变为大麦酶的残基,以观察水稻BGlu1对这些底物的相对活性是否可以改变为BGQ60的相对活性。尽管似乎没有单个残基对这些差异负责,但I179、N190和N245确实似乎与底物相互作用。

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