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Aspergillus nidulans α-galactosidase of glycoside hydrolase family 36 catalyses the formation of α-galacto-oligosaccharides by transglycosylation

机译:构巢曲霉的构巢曲霉α-半乳糖苷酶36通过转糖基作用催化α-半乳寡糖的形成

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摘要

The α-galactosidase from Aspergillus nidulans (AglC) belongs to a phylogenetic cluster containing eukaryotic α-galactosidases and α-galacto-oligosaccharide synthases of glycoside hydrolase family 36 (GH36). The recombinant AglC, produced in high yield (0.65 g·L−1 culture) as His-tag fusion in Escherichia coli, catalysed efficient transglycosylation with α-(1→6) regioselectivity from 40 mm 4-nitrophenol α-d-galactopyranoside, melibiose or raffinose, resulting in a 37–74% yield of 4-nitrophenol α-d-Galp-(1→6)-d-Galp, α-d-Galp-(1→6)-α-d-Galp-(1→6)-d-Glcp and α-d-Galp-(1→6)-α-d-Galp-(1→6)-d-Glcp-(α1→β2)-d-Fruf (stachyose), respectively. Furthermore, among 10 monosaccharide acceptor candidates (400 mm) and the donor 4-nitrophenol α-d-galactopyranoside (40 mm), α-(1→6) linked galactodisaccharides were also obtained with galactose, glucose and mannose in high yields of 39–58%. AglC did not transglycosylate monosaccharides without the 6-hydroxymethyl group, i.e. xylose, l-arabinose, l-fucose and l-rhamnose, or with axial 3-OH, i.e. gulose, allose, altrose and l-rhamnose. Structural modelling using Thermotoga maritima GH36 α-galactosidase as the template and superimposition of melibiose from the complex with human GH27 α-galactosidase supported that recognition at subsite +1 in AglC presumably requires a hydrogen bond between 3-OH and Trp358 and a hydrophobic environment around the C-6 hydroxymethyl group. In addition, successful transglycosylation of eight of 10 disaccharides (400 mm), except xylobiose and arabinobiose, indicated broad specificity for interaction with the +2 subsite. AglC thus transferred α-galactosyl to 6-OH of the terminal residue in the α-linked melibiose, maltose, trehalose, sucrose and turanose in 6–46% yield and the β-linked lactose, lactulose and cellobiose in 28–38% yield. The product structures were identified using NMR and ESI-MS and five of the 13 identified products were novel, i.e. α-d-Galp-(1→6)-d-Manp; α-d-Galp-(1→6)-β-d-Glcp-(1→4)-d-Glcp; α-d-Galp-(1→6)-β-d-Galp-(1→4)-d-Fruf; α-d-Galp-(1→6)-d-Glcp-(α1→α1)-d-Glcp; and α-d-Galp-(1→6)-α-d-Glcp-(1→3)-d-Fruf.
机译:来自构巢曲霉(AglC)的α-半乳糖苷酶属于系统发育簇,其包含糖苷水解酶家族36(GH36)的真核α-半乳糖苷酶和α-半乳糖寡糖合酶。以大肠杆菌中的His-tag融合物的高产量(0.65 g·L-1培养物)产生的重组AglC,从40 mm 4-硝基苯酚α-d-吡喃半乳糖苷催化α-(1→6)区域选择性的高效转糖基化, melibiose或棉子糖,可产生37-74%的4-硝基苯酚α-d-Galp-(1→6)-d-Galp,α-d-Galp-(1→6)-α-d-Galp- (1→6)-d-Glcp和α-d-Galp-(1→6)-α-d-Galp-(1→6)-d-Glcp-(α1→β2)-d-Fruf(水苏糖) , 分别。此外,在10个单糖受体候选物(400毫米)和供体4-硝基苯酚α-d-半乳糖吡喃糖苷(40毫米)中,还用半乳糖,葡萄糖和甘露糖获得了α-(1→6)连接的半乳​​糖,产率为39。 –58%。没有6-羟甲基基团的木糖,即木糖,1-阿拉伯糖,1-岩藻糖和1-鼠李糖,或具有轴向3-OH,即-果糖,阿洛糖,麦芽糖和1-鼠李糖,AglC不会对糖基进行糖基转移。使用海栖嗜热菌GH36α-半乳糖苷酶作为模板进行结构建模,并将半乳糖与人GH27α-半乳糖苷酶的复合物叠加,支持在AglC +1位的识别可能需要3-OH和Trp358之间存在氢键以及周围的疏水环境C-6羟甲基。此外,除木糖和阿拉伯糖以外的10种二糖(400毫米)中有8种成功地进行了糖基转移,表明与+2亚位点的相互作用具有广泛的特异性。因此,AglC可以将α-半乳糖基转移到α-连接的棉糖,麦芽糖,海藻糖,蔗糖和松二糖的末端残基的6-OH,产率为6-46%,β-连接的乳糖,乳果糖和纤维二糖的产率为28-38%。 。使用NMR和ESI-MS鉴定产物结构,鉴定出的13种产物中有5种是新颖的,即α-d-Galp-(1→6)-d-Manp。 α-d-Galp-(1→6)-β-d-Glcp-(1→4)-d-Glcp; α-d-Galp-(1→6)-β-d-Galp-(1→4)-d-Fruf; α-d-Galp-(1→6)-d-Glcp-(α1→α1)-d-Glcp;和α-d-Galp-(1→6)-α-d-Glcp-(1→3)-d-Fruf。

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