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Improving the Thermostability and Catalytic Efficiency of Bacillus deramificans Pullulanase by Site-Directed Mutagenesis

机译:通过定点诱变提高德拉姆芽孢杆菌支链淀粉酶的热稳定性和催化效率

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摘要

Pullulanase (EC 3.2.1.41) is a well-known starch-debranching enzyme. Its instability and low catalytic efficiency are the major factors preventing its widespread application. To address these issues, Asp437 and Asp503 of the pullulanase from Bacillus deramificans were selected in this study as targets for site-directed mutagenesis based on a structure-guided consensus approach. Four mutants (carrying the mutations D503F, D437H, D503Y, and D437H/D503Y) were generated and characterized in detail. The results showed that the D503F, D437H, and D503Y mutants had an optimum temperature of 55°C and a pH optimum of 4.5, similar to that of the wild-type enzyme. However, the half-lives of the mutants at 60°C were twice as long as that of the wild-type enzyme. In addition, the D437H/D503Y double mutant displayed a larger shift in thermostability, with an optimal temperature of 60°C and a half-life at 60°C of more than 4.3-fold that of the wild-type enzyme. Kinetic studies showed that the Km values for the D503F, D437H, D503Y, and D437H/D503Y mutants decreased by 7.1%, 11.4%, 41.4%, and 45.7% and the Kcat/Km values increased by 10%, 20%, 140%, and 100%, respectively, compared to those of the wild-type enzyme. Mechanisms that could account for these enhancements were explored. Moreover, in conjunction with the enzyme glucoamylase, the D503Y and D437H/D503Y mutants exhibited an improved reaction rate and glucose yield during starch hydrolysis compared to those of the wild-type enzyme, confirming the enhanced properties of the mutants. The mutants generated in this study have potential applications in the starch industry.
机译:支链淀粉酶(EC 3.2.1.41)是一种众所周知的淀粉脱支酶。其不稳定性和低催化效率是阻碍其广泛应用的主要因素。为了解决这些问题,在本研究中,基于结构指导的共有方法,选择了来自德拉姆芽孢杆菌的支链淀粉酶的Asp437和Asp503作为定点诱变的靶标。产生并详细表征了四个突变体(携带突变D503F,D437H,D503Y和D437H / D503Y)。结果表明,与野生型酶相似,D503F,D437H和D503Y突变体的最适温度为55°C,最适pH为4.5。但是,突变体在60°C的半衰期是野生型酶的半衰期的两倍。此外,D437H / D503Y双突变体表现出更大的热稳定性变化,最佳温度为60°C,在60°C时的半衰期是野生型酶的4.3倍以上。动力学研究表明,D503F,D437H,D503Y和D437H / D503Y突变体的Km值分别降低了7.1%,11.4%,41.4%和45.7%,Kcat / Km值分别提高了10%,20%,140%与野生型酶相比分别为100%和100%。探索了可以解释这些增强的机制。此外,与野生型酶相比,与葡糖淀粉酶结合,D503Y和D437H / D503Y突变体在淀粉水解过程中显示出更高的反应速率和葡萄糖产量,证实了这些突变体的特性得到增强。在这项研究中产生的突变体在淀粉工业中具有潜在的应用。

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