通过多策略计算方法提高NADH氧化酶的催化效率和热稳定性
Taisong Shen1, Yujiao Li1, Hongling Shi1
1Henan Key Laboratory of Insect Biology, Henan Province Engineering Research Center of Insect Bioreactor, China-UK International Joint Laboratory for Insect Biology of Henan Province, Nanyang Normal University, 1638 Wolong Road, Nanyang, 473061, Henan, People's Republic of China.
World journal of microbiology & biotechnology
|September 25, 2025
概括
来自Enterococcus faecium的工程化NADH氧化酶 (NOX) 显示了改善的热稳定性和催化效率. 这种双重突变物增强了工业应用的酶性能,特别是在高温环境中.
科学领域:
- 生物化学 生物化学
- 酶工程是指酶工程的工程.
背景情况:
- NADH氧化酶 (NOX) 催化 NADH 转化为 NAD+,对于生物传感器,新陈代谢和污染物降解至关重要.
- 野生型Enterococcus faecium NOX (EfNOX) 的热稳定性和催化效率有限,阻碍了工业使用.
研究的目的:
- 为了提高EfNOX的热稳定性和催化效率,用于更广泛的工业应用.
主要方法:
- 合理的设计策略被用来创建一个双重突变的EfNOX (N211M/Q293L).
- 进行了酶活性和稳定性测试,以比较突变与野生类型.
主要成果:
- 在50°C下,N211M/Q293L突变体的半衰期为27分钟.
- 双重突变的特异活性为24.9U/mg,比野生类型的EfNOX增加2.08倍.
- 在突变体中观察到,催化效率提高了1.87倍.
结论:
- 改造的EfNOX突变体显示了显著改善的性能特征.
- 这种增强的NOX在高温工业环境中应用的潜力更大.
- 该研究提出了通过蛋白质工程改善工业酶的可行策略.
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