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Improvements in Glucose Sensitivity and Stability of Trichoderma reesei β-Glucosidase Using Site-Directed Mutagenesis

机译:利用定点诱变提高里氏木霉β-葡萄糖苷酶的葡萄糖敏感性和稳定性

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摘要

Glucose sensitivity and pH and thermal stabilities of Trichoderma reesei Cel1A (Bgl II) were improved by site-directed mutagenesis of only two amino acid residues (L167W or P172L) at the entrance of the active site. The Cel1A mutant showed high glucose tolerance (50% of inhibitory concentration = 650 mM), glucose stimulation (2.0 fold at 50 mM glucose), and enhanced specific activity (2.4-fold) compared with those of the wild-type Cel1A. Furthermore, the mutant enzyme showed stability at a wide pH range of 4.5–9.0 and possessed high thermal stability up to 50°C with 80% of the residual activities compared with the stability seen at the pH range of 6.5–7.0 and temperatures of up to 40°C in the wild-type Cel1A. Kinetic studies for hydrolysis revealed that the Cel1A mutant was competitively inhibited by glucose at similar levels as the wild-type enzyme. Additionally, the mutant enzyme exhibited substrate inhibition, which gradually disappeared with an increasing glucose concentration. These data suggest that the glucose stimulation was caused by relieve the substrate inhibition in the presence of glucose. To conclude, all the properties improved by the mutagenesis would be great advantages in degradation of cellulosic biomass together with cellulases.
机译:里氏木霉Cel1A(Bgl II)的葡萄糖敏感性,pH值和热稳定性通过在活性位点入口处仅两个氨基酸残基(L167W或P172L)的定点诱变而得到改善。与野生型Cel1A相比,Cel1A突变体显示出较高的葡萄糖耐量(抑制浓度的50%= 650 mM),葡萄糖刺激(在50 mM葡萄糖下为2.0倍)和增强的比活性(2.4倍)。此外,突变酶在4.5-9.0的宽pH范围内表现出稳定性,并且在高达50°C的温度下具有很高的热稳定性,而80%的残留活性则与在6.5-7.0的pH范围和温度升高时的稳定性相当野生型Cel1A的温度降至40°C。水解的动力学研究表明,Cel1A突变体在与野生型酶相似的水平上被葡萄糖竞争性抑制。另外,突变酶表现出底物抑制,其随着葡萄糖浓度增加而逐渐消失。这些数据表明,葡萄糖刺激是由于在葡萄糖存在下解除底物抑制而引起的。总而言之,通过诱变改善的所有特性将在纤维素生物质与纤维素酶一起降解中具有巨大优势。

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