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Aglycone specificity of Thermotoga neapolitana beta-glucosidase 1A modified by mutagenesis, leading to increased catalytic efficiency in quercetin-3-glucoside hydrolysis

机译:通过诱变修饰的Thermotoganeapolitanaβ-葡萄糖苷酶1a的糖苷配基特异性,导致槲皮素-3-葡萄糖苷水解的催化效率提高

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摘要

Background: The thermostable beta-glucosidase (TnBgl1A) from Thermotoga neapolitana is a promising biocatalyst for hydrolysis of glucosylated flavonoids and can be coupled to extraction methods using pressurized hot water. Hydrolysis has however been shown to be dependent on the position of the glucosylation on the flavonoid, and e. g. quercetin-3-glucoside (Q3) was hydrolysed slowly. A set of mutants of TnBgl1A were thus created to analyse the influence on the kinetic parameters using the model substrate para-nitrophenyl-beta-D-glucopyranoside (pNPGlc), and screened for hydrolysis of Q3. Results: Structural analysis pinpointed an area in the active site pocket with non-conserved residues between specificity groups in glycoside hydrolase family 1 (GH1). Three residues in this area located on beta-strand 5 (F219, N221, and G222) close to sugar binding sub-site +2 were selected for mutagenesis and amplified in a protocol that introduced a few spontaneous mutations. Eight mutants (four triple: F219L/P165L/M278I, N221S/P165L/M278I, G222Q/P165L/M278I, G222Q/V203M/K214R, two double: F219L/K214R, N221S/P342L and two single: G222M and N221S) were produced in E. coli, and purified to apparent homogeneity. Thermostability, measured as T-m by differential scanning calorimetry (101.9 degrees C for wt), was kept in the mutated variants and significant decrease (Delta T of 5 -10 degrees C) was only observed for the triple mutants. The exchanged residue(s) in the respective mutant resulted in variations in K-M and turnover. The K-M-value was only changed in variants mutated at position 221 (N221S) and was in all cases monitored as a 2-3 x increase for pNPGlc, while the K-M decreased a corresponding extent for Q3. Turnover was only significantly changed using pNPGlc, and was decreased 2-3 x in variants mutated at position 222, while the single, double and triple mutated variants carrying a mutation at position 221 (N221S) increased turnover up to 3.5 x compared to the wild type. Modelling showed that the mutation at position 221, may alter the position of N291 resulting in increased hydrogen bonding of Q3 (at a position corresponding to the +1 subsite) which may explain the decrease in K-M for this substrate. Conclusion: These results show that residues at the +2 subsite are interesting targets for mutagenesis and mutations at these positions can directly or indirectly affect both K-M and turnover. An affinity change, leading to a decreased K-M, can be explained by an altered position of N291, while the changes in turnover are more difficult to explain and may be the result of smaller conformational changes in the active site.
机译:背景:得自Theratoga neapolitana的热稳定β-葡萄糖苷酶(TnBgl1A)是用于糖基化类黄酮水解的有前途的生物催化剂,可以与使用加压热水的提取方法结合使用。然而,已经显示水解取决于类黄酮上的糖基化的位置,并且e。 G。槲皮素-3-葡萄糖苷(Q3)缓慢水解。因此,创建了一组TnBgl1A突变体,以使用模型底物对硝基苯基-β-D-吡喃葡萄糖苷(pNPGlc)分析动力学参数的影响,并筛选Q3的水解。结果:结构分析精确定位了活性位点口袋中糖苷水解酶家族1(GH1)特异性基团之间的非保守残基区域。选择此区域中位于糖链亚位点+2附近的β链5(F219,N221和G222)上的三个残基进行诱变,并按照引入了一些自发突变的方案进行扩增。产生了八个突变体(四个三联体:F219L / P165L / M278I,N221S / P165L / M278I,G222Q / P165L / M278I,G222Q / V203M / K214R,两个双胞胎:F219L / K214R,N221S / P342L和两个单胞菌:G222M和N221S)在大肠杆菌中纯化,并具有明显的同质性。通过差示扫描量热法(以wt计为101.9℃)以T-m为单位测量的热稳定性保持在突变的变体中,并且仅对于三重突变体观察到显着降低(ΔT为5 -10℃)。各个突变体中交换的残基导致K-M和周转率的变化。 K-M值仅在位置221(N221S)突变的变体中发生了变化,在所有情况下,pNPGlc的监测值均增加2-3倍,而K-M值在Q3时相应降低。使用pNPGlc仅会大大改变周转率,在222位突变的变体中,周转率降低2-3倍,而在221位突变的单,双和三突变体(N221S)与野生动物相比,周转率提高至3.5倍类型。模拟表明,在221位的突变可能会改变N291的位置,从而导致Q3的氢键增加(在与+1个亚位点相对应的位置),这可能解释了该底物的K-M降低。结论:这些结果表明,+ 2亚位点的残基是诱变的有趣靶标,这些位置的突变可直接或间接影响K-M和周转率。亲和力变化导致K-M降低,可以通过改变N291的位置来解释,而营业额的变化则更难以解释,并且可能是活性位点构象变化较小的结果。

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