Structural analysis of the α-glucosidase HaG provides new insights into substrate specificity and catalytic mechanism

双糖 麦芽糖 糖苷水解酶 化学 水解酶 糖苷键 立体化学 水解 基质(水族馆) 位阻效应 生物化学 生物 生态学
作者
Xing Shen,Wataru Saburi,Zuoqi Gai,Koji Kato,Teruyo Ojima‐Kato,Jian Yu,Keisuke Komoda,Yusuke Kido,Hirokazu Matsui,Haruhide Mori,Min Yao
出处
期刊:Acta Crystallographica Section D-biological Crystallography [Wiley]
卷期号:71 (6): 1382-1391 被引量:99
标识
DOI:10.1107/s139900471500721x
摘要

α-Glucosidases, which catalyze the hydrolysis of the α-glucosidic linkage at the nonreducing end of the substrate, are important for the metabolism of α-glucosides. Halomonas sp. H11 α-glucosidase (HaG), belonging to glycoside hydrolase family 13 (GH13), only has high hydrolytic activity towards the α-(1 → 4)-linked disaccharide maltose among naturally occurring substrates. Although several three-dimensional structures of GH13 members have been solved, the disaccharide specificity and α-(1 → 4) recognition mechanism of α-glucosidase are unclear owing to a lack of corresponding substrate-bound structures. In this study, four crystal structures of HaG were solved: the apo form, the glucosyl-enzyme intermediate complex, the E271Q mutant in complex with its natural substrate maltose and a complex of the D202N mutant with D-glucose and glycerol. These structures explicitly provide insights into the substrate specificity and catalytic mechanism of HaG. A peculiar long β → α loop 4 which exists in α-glucosidase is responsible for the strict recognition of disaccharides owing to steric hindrance. Two residues, Thr203 and Phe297, assisted with Gly228, were found to determine the glycosidic linkage specificity of the substrate at subsite +1. Furthermore, an explanation of the α-glucosidase reaction mechanism is proposed based on the glucosyl-enzyme intermediate structure.
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