School of Life Science and Technology, Wuhan Polytechnic University, Wuhan, 430023, People's Republic of China.
State Key Laboratory of Biocatalysis and Enzyme Engineering, College of Life Science, Hubei University, Wuhan, 430062, People's Republic of China.
Appl Microbiol Biotechnol. 2024 Sep 5;108(1):460. doi: 10.1007/s00253-024-13291-3.
BsCotA laccase is a promising candidate for industrial application due to its excellent thermal stability. In this research, our objective was to enhance the catalytic efficiency of BsCotA by modifying the active site pocket. We utilized a strategy combining the diversity design of the active site pocket with molecular docking screening, which resulted in selecting five variants for characterization. All five variants proved functional, with four demonstrating improved turnover rates. The most effective variants exhibited a remarkable 7.7-fold increase in catalytic efficiency, evolved from 1.54 × 10 M s to 1.18 × 10 M s, without any stability loss. To investigate the underlying molecular mechanisms, we conducted a comprehensive structural analysis of our variants. The analysis suggested that substituting Leu386 with aromatic residues could enhance BsCotA's ability to accommodate the 2,2'-azino-di-(3-ethylbenzothiazoline)-6-sulfonate (ABTS) substrate. However, the inclusion of charged residues, G323D and G417H, into the active site pocket reduced k. Ultimately, our research contributes to a deeper understanding of the role played by residues in the laccases' active site pocket, while successfully demonstrating a method to lift the catalytic efficiency of BsCotA. KEY POINTS: • Active site pocket design that enhanced BsCotA laccase efficiency • 7.7-fold improved in catalytic rate • All tested variants retain thermal stability.
BsCotA 漆酶由于其出色的热稳定性,是一种有前途的工业应用候选酶。在这项研究中,我们的目标是通过修饰活性口袋来提高 BsCotA 的催化效率。我们采用了一种将活性口袋多样性设计与分子对接筛选相结合的策略,从中选择了五个变体进行表征。所有五个变体均被证明具有功能,其中四个变体的周转率提高。最有效的变体的催化效率显著提高了 7.7 倍,从 1.54×10-3 M s-1 提高到 1.18×10-3 M s-1,而没有任何稳定性损失。为了研究潜在的分子机制,我们对我们的变体进行了全面的结构分析。分析表明,用芳香族残基取代 Leu386 可以增强 BsCotA 容纳 2,2'-联氮-二(3-乙基苯并噻唑啉-6-磺酸)(ABTS)底物的能力。然而,将带电荷的残基 G323D 和 G417H 引入活性口袋会降低 k。最终,我们的研究深入了解了残基在漆酶活性口袋中的作用,同时成功展示了提高 BsCotA 催化效率的方法。要点: • 设计活性口袋以提高 BsCotA 漆酶效率 • 催化速率提高 7.7 倍 • 所有测试的变体均保持热稳定性。