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通过多策略计算设计和跨区域优势突变提高D-阿洛酮糖3-差向异构酶的稳定性和催化活性

Enhancing Stability and Catalytic Activity of d-Allulose 3-Epimerase through Multistrategy Computational Design and Cross-Regional Advantageous Mutations.

作者信息

Wang Zhiqi, Feng Tingting, Zhao Longyan, Li Ning, Liu Jidong

机构信息

College of Light Industry and Food Engineering, Guangxi University, 100 Daxue Road, Nanning 530004, Guangxi, China.

Academy of Sugarcane and Sugar Industry, Guangxi University, 100 Daxue Road, Nanning 530004, Guangxi, China.

出版信息

J Agric Food Chem. 2025 Jan 8;73(1):635-645. doi: 10.1021/acs.jafc.4c07342. Epub 2024 Dec 27.

DOI:10.1021/acs.jafc.4c07342
PMID:39729028
Abstract

d-Allulose 3-epimerase (DAEase) derived from has excellent properties in the catalytic production of d-allulose, a rare sugar with unique biological functions. However, the industrial application of DAEase (Cb-DAEase) for d-allulose production is hindered by its low enzyme activity, poor long-term thermostability, and pH tolerance. In this study, we identified potential noncatalytic residues in Cb-DAEase using methods such as proline substitution, surface charge engineering, and surface residue prediction. The effects of these residues were experimentally validated, followed by structural analysis, which led to the generation of multisite mutants through cross-regional structural combinations. The obtained mutant Cb-R2P-E6P-D137C showed 155.6% of the enzyme activity of the wild type, and the / increased by 1.3-fold, an elevated half-life of 15.7 min, and an elevated value of 1.1 °C. The mutant Cb-R2P-E6P-A83D-D137C had 139.7% of the enzyme activity of the wild type, the / increased by 1.2-fold, with an elevated half-life of 12.3 min, an elevated value of 0.8 °C, and maintained 68% of the enzyme activity at pH 5.0. The findings outlined a feasible approach for the rational design of multiple preset functions of target enzymes simultaneously.

摘要

源自[具体来源未提及]的d-阿洛酮糖3-表异构酶(DAEase)在催化生产d-阿洛酮糖方面具有优异性能,d-阿洛酮糖是一种具有独特生物学功能的稀有糖。然而,用于生产d-阿洛酮糖的DAEase(Cb-DAEase)的工业应用受到其低酶活性、较差的长期热稳定性和pH耐受性的阻碍。在本研究中,我们使用脯氨酸取代、表面电荷工程和表面残基预测等方法鉴定了Cb-DAEase中潜在的非催化残基。通过实验验证了这些残基的作用,随后进行结构分析,通过跨区域结构组合产生多位点突变体。获得的突变体Cb-R2P-E6P-D137C的酶活性为野生型的155.6%,/提高了1.3倍,半衰期延长至15.7分钟,值升高了1.1℃。突变体Cb-R2P-E6P-A83D-D137C的酶活性为野生型的139.7%,/提高了1.2倍,半衰期延长至12.3分钟,值升高了0.8℃,并且在pH 5.0时保持68%的酶活性。这些发现概述了一种同时合理设计目标酶多种预设功能的可行方法。

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