蛋白质工程
限制
化学
分子动力学
催化效率
酶
催化作用
热稳定性
ATP合酶
合理设计
组合化学
立体化学
计算化学
材料科学
生物化学
纳米技术
有机化学
工程类
机械工程
作者
Shuang Du,Nan Zheng,Zehua Zhang,Chenhao Zhang,Huimin Zhou,Yu Deng,Jian Yin,Yongchao Cai,Xiaole Xia
标识
DOI:10.1021/acs.jafc.4c07294
摘要
5-Aminolevulinic acid synthase (ALAS) is the key rate-limiting enzyme in the synthesis of the vital biosynthetic intermediate 5-aminolevulinic acid (ALA). However, its catalytic efficiency is compromised due to its low activity and poor stability. Here, we obtained the mutant I325M/V390Y/H391I (T6), which exhibited a 7.0-fold increase in specific activity (2.53 U/mg) compared to the wild type through the application of isothermal compressibility (βT) perturbation engineering in conjunction with two thermal stability prediction algorithms. Moreover, molecular dynamics simulations indicate that positive changes in intermolecular interactions, the substrate channel, and the binding pocket account for the improved catalytic activity of T6. Furthermore, T6 was immobilized on magnetic chitosan nanoparticles, maintaining 73.5% of its original activity after 10 reaction cycles. Overall, combination approaches were employed to construct a superior ALAS variant, providing a novel concept for the synthesis of ALA and a valuable benchmark for optimizing industrial enzymes in related fields.
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