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首页> 外文期刊>Applied and Environmental Microbiology >Improved Thermostability of Clostridium thermocellum Endoglucanase Cel8A by Using Consensus-Guided Mutagenesis
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Improved Thermostability of Clostridium thermocellum Endoglucanase Cel8A by Using Consensus-Guided Mutagenesis

机译:共识指导的诱变提高热纤梭菌内切葡聚糖酶Cel8A的热稳定性。

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The use of thermostable cellulases is advantageous for the breakdown of lignocellulosic biomass toward the commercial production of biofuels. Previously, we have demonstrated the engineering of an enhanced thermostable family 8 cellulosomal endoglucanase (EC 3.2.1.4), Cel8A, from Clostridium thermocellum, using random error-prone PCR and a combination of three beneficial mutations, dominated by an intriguing serine-to-glycine substitution (M. Anbar, R. Lamed, E. A. Bayer, ChemCatChem 2:997–1003, 2010). In the present study, we used a bioinformatics-based approach involving sequence alignment of homologous family 8 glycoside hydrolases to create a library of consensus mutations in which residues of the catalytic module are replaced at specific positions with the most prevalent amino acids in the family. One of the mutants (G283P) displayed a higher thermal stability than the wild-type enzyme. Introducing this mutation into the previously engineered Cel8A triple mutant resulted in an optimized enzyme, increasing the half-life of activity by 14-fold at 85°C. Remarkably, no loss of catalytic activity was observed compared to that of the wild-type endoglucanase. The structural changes were simulated by molecular dynamics analysis, and specific regions were identified that contributed to the observed thermostability. Intriguingly, most of the proteins used for sequence alignment in determining the consensus residues were derived from mesophilic bacteria, with optimal temperatures well below that of C. thermocellum Cel8A.
机译:使用热稳定的纤维素酶有利于木质纤维素生物质的分解,从而有助于生物燃料的商业生产。先前,我们已经证明了使用易错错误的PCR技术和三个有益突变的组合(来自一个有趣的丝氨酸-转基因),设计了一种增强的耐热稳定的8族纤维素内切葡聚糖酶(EC 3.2.1.4),Cel8A,来自热纤梭菌。甘氨酸取代(M. Anbar,R.Lamed,EA Bayer,ChemCatChem 2:997-1003,2010)。在本研究中,我们使用了基于生物信息学的方法,该方法涉及同源家族8糖苷水解酶的序列比对,以创建共有突变库,其中催化模块的残基在特定位置被家族中最普遍的氨基酸取代。突变体之一(G283P)显示出比野生型酶更高的热稳定性。将此突变引入先前工程改造的Cel8A三重突变体中可产生一种优化的酶,从而在85°C下将活性的半衰期延长14倍。显着地,与野生型内切葡聚糖酶相比没有观察到催化活性的损失。通过分子动力学分析模拟结构变化,并确定有助于观察到的热稳定性的特定区域。有趣的是,用于确定共有残基的序列比对的大多数蛋白质均来自嗜温细菌,其最佳温度远低于热纤梭菌Cel8A的温度。

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