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一种新型糖苷水解酶家族 97 酶:拟杆菌属的双歧杆菌β-l-阿拉伯呋喃糖苷酶/α-半乳糖苷酶。

A novel glycoside hydrolase family 97 enzyme: Bifunctional β-l-arabinopyranosidase/α-galactosidase from Bacteroides thetaiotaomicron.

机构信息

Research Faculty of Agriculture, Hokkaido University, Kita-9 Nishi-9, Kita-ku, Sapporo, 060-8589, Japan.

Research Faculty of Agriculture, Hokkaido University, Kita-9 Nishi-9, Kita-ku, Sapporo, 060-8589, Japan.

出版信息

Biochimie. 2017 Nov;142:41-50. doi: 10.1016/j.biochi.2017.08.003. Epub 2017 Aug 10.

Abstract

Glycoside hydrolase family 97 (GH97) is one of the most interesting glycosidase families, which contains inverting and retaining glycosidases. Currently, only two enzyme types, α-glucoside hydrolase and α-galactosidase, are registered in the carbohydrate active enzyme database as GH97 function-known proteins. To explore new specificities, BT3661 and BT3664, which have distinct amino acid sequences when compared with that of GH97 α-glucoside hydrolase and α-galactosidase, were characterized in this study. BT3664 was identified to be an α-galactosidase, whereas BT3661 exhibits hydrolytic activity toward both β-l-arabinopyranoside and α-d-galactopyranoside, and thus we designate BT3661 as a β-l-arabinopyranosidase/α-d-galactosidase. Since this is the first dual substrate specificity enzyme in GH97, we investigated the substrate recognition mechanism of BT3661 by determining its three-dimensional structure and based on this structural data generated a number of mutants to probe the enzymatic mechanism. Structural comparison shows that the active-site pocket of BT3661 is similar to GH97 α-galactosidase BT1871, but the environment around the hydroxymethyl group of the galactopyranoside is different. While BT1871 bears Glu361 to stabilize the hydroxy group of C6 through a hydrogen bond with its carboxy group, BT3661 has Asn338 at the equivalent position. Amino acid mutation analysis indicates that the length of the side chain at Asn338 is important for defining specificity of BT3661. The k/K value for the hydrolysis of p-nitrophenyl α-galactoside decreases when Asn338 is substituted with Glu, whereas an increase is observed when the mutation is Ala. Interestingly, mutation of Asn338 to Ala reduces the k/K value for hydrolysis of p-nitrophenyl β-l-arabinopyranoside.

摘要

糖苷水解酶家族 97(GH97)是最有趣的糖苷酶家族之一,其中包含反转和保留糖苷酶。目前,碳水化合物活性酶数据库中仅注册了两种酶类型,即α-葡萄糖苷水解酶和α-半乳糖苷酶,作为 GH97 功能已知蛋白。为了探索新的特异性,本研究对 BT3661 和 BT3664 进行了表征,它们的氨基酸序列与 GH97 α-葡萄糖苷水解酶和 α-半乳糖苷酶明显不同。BT3664 被鉴定为α-半乳糖苷酶,而 BT3661 对β-l-阿拉伯吡喃糖苷和α-d-半乳糖吡喃糖苷都具有水解活性,因此我们将 BT3661 命名为β-l-阿拉伯吡喃糖苷酶/α-d-半乳糖苷酶。由于这是 GH97 中第一个双底物特异性酶,我们通过测定其三维结构并基于此结构数据生成了一些突变体来研究 BT3661 的底物识别机制,从而研究了 BT3661 的底物识别机制。结构比较表明,BT3661 的活性口袋与 GH97 α-半乳糖苷酶 BT1871 相似,但半乳糖吡喃糖苷的羟甲基周围环境不同。虽然 BT1871 带有 Glu361 通过与羧基形成氢键来稳定 C6 的羟基,但 BT3661 在等效位置带有 Asn338。氨基酸突变分析表明,Asn338 侧链的长度对于 BT3661 的特异性很重要。当 Asn338 被 Glu 取代时,对硝基苯-α-半乳糖苷水解的 k/K 值降低,而当突变为 Ala 时,k/K 值增加。有趣的是,将 Asn338 突变为 Ala 会降低对硝基苯-β-l-阿拉伯吡喃糖苷水解的 k/K 值。

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