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首页> 外文期刊>Biotechnology for Biofuels >Improvement of the catalytic activity and thermostability of a hyperthermostable endoglucanase by optimizing N-glycosylation sites
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Improvement of the catalytic activity and thermostability of a hyperthermostable endoglucanase by optimizing N-glycosylation sites

机译:通过优化N-糖基化位点,改善超嗜热内葡聚糖酶的催化活性和热稳定性

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Background: Endoglucanase has been extensively employed in industrial processes as a key biocatalyst for lignocellulosic biomass degradation. Thermostable endoglucanases with high catalytic activity at elevated temperatures are preferred in industrial use. To improve the activity and thermostability, site-directed mutagenesis was conducted to modify the N-glycosylation sites of the thermostable β-1,4-endoglucanase CTendo45 from Chaetomium thermophilum. Results: In this study, structure-based rational design was performed based on the modifcation of N-glycosylation sites in CTendo45. Eight single mutants and one double mutant were constructed and successfully expressed in Pichia pastoris. When the unique N-glycosylation site of N88 was eliminated, a T90A variant was active, and its specifc activity towards CMC-Na and β-d-glucan was increased 1.85- and 1.64-fold, respectively. The mutant R67S with an additional N-glycosylation site of N65 showed a distinct enhancement in catalytic efciency. Moreover, T90A and R67S were endowed with extraordinary heat endurance after 200 min of incubation at diferent temperatures ranging from 30 to 90 °C. Likewise, the half-lives (t1/2) indicated that T90A and R67S exhibited improved enzyme thermostability at 80 °C and 90 °C. Notably, the double-mutant T90A/R67S possessed better hydrolysis activity and thermal stability than its single-mutant counterparts and the wild type. Conclusions: This study provides initial insight into the biochemical function of N-glycosylation in thermostable endoglucanases. Moreover, the design approach to the optimization of N-glycosylation sites presents an efective and feasible strategy to improve enzymatic activity and thermostability.
机译:背景:Endoglucanase在工业过程中被广泛使用,作为木质纤维素生物质降解的关键生物催化剂。在升高温度下具有高催化活性的热稳态内葡聚糖酶在工业用途中是优选的。为了改善活性和热稳定性,进行部位定向诱变以改变热稳定β-1,4-内葡聚糖酶CTENDO45的N-糖基化位点。结果:在本研究中,基于CTENDO45中的N-糖基化位点的修饰进行了基于结构的合理设计。构建八个单突变体和一种双突变体,并在Pichia Pastoris中成功地表达。当消除N88的独特N-糖基化位点时,T90A变体是活性的,并且其朝向CMC-NA和β-D-葡聚糖的特征活性分别增加1.85-1.64倍。具有额外的N-糖基化位点的突变体R67S的N65显示出催化效能的显着增强。此外,在从30至90℃的不同温度下孵育200分钟后,T90A和R67s赋予了非凡的热耐久性。同样,半衰期(T1 / 2)表明T90A和R67S在80℃和90℃下表现出改善的酶热稳定性。值得注意的是,双突变体T90A / R67S具有比其单突变对应物和野生型更好的水解活性和热稳定性。结论:本研究提供了初步了解热稳态内切葡聚糖酶中N-糖基化的生物化学功能。此外,优化N-糖基化位点的设计方法呈现了改善酶活性和热稳定性的热敏性和可行的策略。

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