Key Laboratory of Industrial Fermentation Microbiology, Ministry of Education, Tianjin Key Laboratory of Industrial Microbiology, College of Biotechnology, Tianjin University of Science and Technology, Tianjin, 300457, PR China.
School of Life Sciences, Tianjin University, Tianjin, 300072, PR China.
Biochem Biophys Res Commun. 2024 Nov 12;733:150575. doi: 10.1016/j.bbrc.2024.150575. Epub 2024 Aug 21.
Flavin monooxygenases (FMOs) have been widely used in the biosynthesis of natural compounds due to their excellent stereoselectivity, regioselectivity and chemoselectivity. Stenotrophomonas maltophilia flavin monooxygenase (SmFMO) has been reported to catalyze the oxidation of various thiols to corresponding sulfoxides, but its activity is relatively low. Herein, we obtained a mutant SmFMO which showed 4.35-fold increase in k/K (4.96 mMs) and 6.84-fold increase in enzyme activity (81.76 U/g) compared to the SmFMO (1.14 mMs and 11.95 U/g) through semi-rational design guided by structural analysis and catalytic mechanism combined with high-throughput screening. By forming hydrogen bond with O4 atom of FAD isoalloxazine ring and reducing steric hindrance, the conformation of FAD isoalloxazine ring in SmFMO is more stable, and NADPH and substrate are closer to FAD isoalloxazine ring, shortening the distances of hydrogen transfer and substrate oxygenation, thereby increasing the rate of reduction and oxidation reactions and enhancing enzyme activity. Additionally, the overall structural stability and substrate binding capacity of the SmFMO have significant improved than that of SmFMO. The strategy used in this study to improve the enzyme activity of FMOs may have generality, providing important references for the rational and semi-rational engineering of FMOs.
黄素单加氧酶(FMOs)因其出色的立体选择性、区域选择性和化学选择性,已被广泛应用于天然化合物的生物合成。嗜麦芽寡养单胞菌黄素单加氧酶(SmFMO)已被报道可催化各种硫醇氧化为相应的亚砜,但活性相对较低。在此,我们通过结构分析和催化机制指导的半理性设计以及高通量筛选,获得了一种突变体 SmFMO,与 SmFMO(1.14 mMs 和 11.95 U/g)相比,其 k/K 值提高了 4.35 倍(4.96 mMs),酶活提高了 6.84 倍(81.76 U/g)。通过与 FAD 异咯嗪环的 O4 原子形成氢键并降低空间位阻,SmFMO 中 FAD 异咯嗪环的构象更加稳定,NADPH 和底物更接近 FAD 异咯嗪环,缩短了氢转移和底物氧化的距离,从而提高了还原和氧化反应的速率,增强了酶活性。此外,SmFMO 的整体结构稳定性和底物结合能力均显著提高。本研究中用于提高 FMO 酶活性的策略可能具有普遍性,为 FMO 的合理和半理性工程提供了重要参考。