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Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis

机译:定向进化以提高枯草芽孢杆菌尿酸氧化酶的催化效率

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摘要

Urate oxidase is a key enzyme in purine metabolism and catalyzes the oxidation of uric acid to allantoin. It is used to treat hyperuricemia and gout, and also in a diagnostic kit. In this study, error-prone polymerase chain reaction and staggered extension process was used to generate a mutant urate oxidase with improved enzyme activity from Bacillus subtilis. After several rounds of mutagenesis and screening, two mutants 6E9 and 8E279 were obtained which exhibited 2.99 and 3.43 times higher catalytic efficiency, respectively. They also exhibited lower optimal reaction temperature and higher thermo-stability. D44V, Q268R and K285Q were identified as the three most beneficial amino acid substitutions introduced by site-directed mutagenesis. D44V/Q268R, which was obtained through random combination of the three mutants, displayed the highest catalytic activity. The Km, kcat/Km and enzyme activity of D44V/Q268R increased by 68%, 83% and 129% respectively, compared with that of wild-type urate oxidase. Structural modeling indicated that mutations far from the active site can have significant effects on activity. For many of them, the underlying mechanisms are still difficult to explain from the static structural model. We also compared the effects of the same set of single point mutations on the wild type and on the final mutant. The results indicate strong effects of epistasis, which may imply that the mutations affect catalysis through influences on protein dynamics besides equilibrium structures.
机译:尿酸盐氧化酶是嘌呤代谢中的关键酶,可催化尿酸氧化成尿囊素。它用于治疗高尿酸血症和痛风,也用于诊断试剂盒。在这项研究中,容易出错的聚合酶链反应和交错的延伸过程被用来产生枯草芽孢杆菌具有改善的酶活性的突变型尿酸盐氧化酶。经过几轮诱变和筛选后,获得了两个突变体6E9和8E279,它们的催化效率分别高出2.99和3.43倍。它们还表现出较低的最佳反应温度和较高的热稳定性。 D44V,Q268R和K285Q被确定为定点诱变引入的三个最有益的氨基酸替代。通过三个突变体的随机组合获得的D44V / Q268R表现出最高的催化活性。与野生型尿酸盐氧化酶相比,D44V / Q268R的Km,kcat / Km和酶活性分别提高了68%,83%和129%。结构建模表明,远离活性位点的突变可对活性产生重大影响。对于它们中的许多而言,仍然很难从静态结构模型中解释其基本机制。我们还比较了同一组单点突变对野生型和最终突变体的影响。结果表明上位性的强大作用,这可能意味着这些突变除了影响平衡结构外,还通过影响蛋白质动力学来影响催化作用。

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