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Substrate Specificity Engineering of β-Mannosidase and β-Glucosidase from Pyrococcus by Exchange of Unique Active Site Residues

霍里科希热球菌 火球菌属 活动站点 化学 立体化学 裂褶菌公社 生物化学 糖苷水解酶 酶动力学 残留物(化学) 水解 结合位点 基因 古细菌
作者
Thijs Kaper,Hester H. van Heusden,Bert van Loo,Andrea Vasella,John van der Oost,Willem M. de Vos
出处
期刊:Biochemistry [American Chemical Society]
卷期号:41 (12): 4147-4155 被引量:38
标识
DOI:10.1021/bi011935a
摘要

A β-mannosidase gene (PH0501) was identified in the Pyrococcus horikoshii genome and cloned and expressed in E. coli. The purified enzyme (BglB) was most specific for the hydrolysis of p-nitrophenyl-β-d-mannopyranoside (pNP-Man) (Km: 0.44 mM) with a low turnover rate (kcat: 4.3 s-1). The β-mannosidase has been classified as a member of family 1 of glycoside hydrolases. Sequence alignments and homology modeling showed an apparent conservation of its active site region with, remarkably, two unique active site residues, Gln77 and Asp206. These residues are an arginine and asparagine residue in all other known family 1 enzymes, which interact with the catalytic nucleophile and equatorial C2-hydroxyl group of substrates, respectively. The unique residues of P. horikoshii BglB were introduced in the highly active β-glucosidase CelB of Pyrococcus furiosus and vice versa, yielding two single and one double mutant for each enzyme. In CelB, both substitutions R77Q and N206D increased the specificity for mannosides and reduced hydrolysis rates 10-fold. In contrast, BglB D206N showed 10-fold increased hydrolysis rates and 35-fold increased affinity for the hydrolysis of glucosides. In combination with inhibitor studies, it was concluded that the substituted residues participate in the ground-state binding of substrates with an equatorial C2-hydroxyl group, but contribute most to transition-state stabilization. The unique activity profile of BglB seems to be caused by an altered interaction between the enzyme and C2-hydroxyl of the substrate and a specifically increased affinity for mannose that results from Asp206.
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