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Thermal stability engineering of Glomerella cingulata cutinase

机译:扣球菌角质酶的热稳定性工程

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摘要

Cutinase has been ascertained as a biocatalyst for biotechnological and industrial bioprocesses. The Glomerella cingulata cutinase was genetically modified to enhance its enzymatic performance to fulfill industrial requirements. Two sites were selected for mutagenesis with the aim of altering the surface electrostatics as well as removing a potentially deamidation-prone asparagine residue. The N177D cutinase variant was affirmed to be more resilient to temperature increase with a 2.7-fold increase in half-life at 50°C as compared with wild-type enzyme, while, the activity at 25°C is not compromised. Furthermore, the increase in thermal tolerance of this variant is accompanied by an increase in optimal temperature. Another variant, the L172K, however, exhibited higher enzymatic performance towards phenyl ester substrates of longer carbon chain length, yet its thermal stability is inversely affected. In order to restore the thermal stability of L172K, we constructed a L172K/N177D double variant and showed that these two mutations yield an improved variant with enhanced activity towards phenyl ester substrates and enhanced thermal stability. Taken together, our study may provide valuable information for enhancing catalytic performance and thermal stability in future engineering endeavors.
机译:角质酶已被确定为生物技术和工业生物过程的生物催化剂。格氏小球菌角质酶经过基因修饰以增强其酶促性能以满足工业需求。选择了两个位点进行诱变,目的是改变表面静电以及去除潜在的易于脱酰胺的天冬酰胺残基。与野生型酶相比,N177D角质酶变异体在50°C时的半衰期增加了2.7倍,因此对温度升高具有更强的抵抗力,而在25°C时的活性没有受到损害。此外,该变型的热耐受性的增加伴随着最佳温度的增加。然而,另一个变体L172K对较长碳链长度的苯基酯底物表现出较高的酶促性能,但其热稳定性受到相反的影响。为了恢复L172K的热稳定性,我们构建了L172K / N177D双变体,并显示这两个突变产生了改进的变体,对苯酯底物的活性增强,热稳定性增强。两者合计,我们的研究可能会提供有价值的信息,以提高未来的工程工作中的催化性能和热稳定性。

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