Wang Lan, Zhang Mengting, Teng Haidong, Wang Zhe, Wang Shulin, Li Pengcheng, Wu Jianping, Yang Lirong, Xu Gang
Institute of Bioengineering, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310027, Zhejiang, China.
Huadong Medicine Co., Ltd, Hangzhou, 310011, Zhejiang, China.
Bioresour Bioprocess. 2024 Feb 29;11(1):26. doi: 10.1186/s40643-024-00744-w.
The use of enzymes to catalyze Henry reaction has advantages of mild reaction conditions and low contamination, but low enzyme activity of promiscuous catalysis limits its application. Here, rational design was first performed to identify the key amino acid residues in Henry reaction catalyzed by Lactococcal multidrug resistance Regulator (LmrR). Further, non-canonical amino acids were introduced into LmrR, successfully obtaining variants that enhanced the catalytic activity of LmrR. The best variant, V15CNF, showed a 184% increase in enzyme activity compared to the wild type, and was 1.92 times more effective than the optimal natural amino acid variant, V15F. Additionally, this variant had a broad substrate spectrum, capable of catalyzing reactions between various aromatic aldehydes and nitromethane, with product yielded ranging from 55 to 99%. This study improved enzymatic catalytic activity by enhancing affinity between the enzyme and substrates, while breaking limited types of natural amino acid residues by introducing non-canonical amino acids into the enzyme, providing strategies for molecular modifications.
使用酶催化亨利反应具有反应条件温和、污染低的优点,但混杂催化的低酶活性限制了其应用。在此,首先进行了合理设计,以确定乳酸乳球菌多药耐药调节因子(LmrR)催化亨利反应中的关键氨基酸残基。此外,将非天然氨基酸引入LmrR,成功获得了增强LmrR催化活性的变体。最佳变体V15CNF的酶活性比野生型提高了184%,比最佳天然氨基酸变体V15F有效1.92倍。此外,该变体具有广泛的底物谱,能够催化各种芳香醛与硝基甲烷之间的反应,产物产率在55%至99%之间。本研究通过增强酶与底物之间的亲和力提高了酶催化活性,同时通过将非天然氨基酸引入酶中突破了天然氨基酸残基类型的限制,为分子修饰提供了策略。