Fus-SMO: Kinetics, Biochemical Characterisation and In Silico Modelling of a Chimeric Styrene Monooxygenase Demonstrating Quantitative Coupling Efficiency

CHEMBIOCHEM(2024)

引用 0|浏览1
暂无评分
摘要
The styrene monooxygenase, a two-component enzymatic system for styrene epoxidation, was characterised through the study of Fus-SMO - a chimera resulting from the fusion of StyA and StyB using a flexible linker. Notably, it remains debated whether the transfer of FADH2 from StyB to StyA occurs through diffusion, channeling, or a combination of both. Fus-SMO was identified as a trimer with one bound FAD molecule. In silico modelling revealed a well-distanced arrangement (45-50 angstrom) facilitated by the flexible linker's loopy structure. Pre-steady-state kinetics elucidated the FADox reduction intricacies (kred=110 s-1 for bound FADox), identifying free FADox binding as the rate-determining step. The aerobic oxidation of FADH2 (kox=90 s-1) and subsequent decomposition to FADox and H2O2 demonstrated StyA ' s protective effect on the bound hydroperoxoflavin (kdec=0.2 s-1) compared to free cofactor (kdec=1.8 s-1). At varied styrene concentrations, kox for FADH2 ranged from 80 to 120 s-1. Studies on NADH consumption vs. styrene epoxidation revealed Fus-SMO ' s ability to achieve quantitative coupling efficiency in solution, surpassing natural two-component SMOs. The results suggest that Fus-SMO exhibits enhanced FADH2 channelling between subunits. This work contributes to comprehending FADH2 transfer mechanisms in SMO and illustrates how protein fusion can elevate catalytic efficiency for biocatalytic applications. Fus-SMO, a chimera of StyA and StyB in styrene monooxygenase, has a trimeric structure with one bound flavin. In silico modelling indicated a well-distanced arrangement due to the flexible linker. Pre-steady-state kinetics highlighted the intricacies of FADox reduction and aerobic FADH2 oxidation. NADH consumption vs. styrene epoxidation revealed quantitative coupling efficiency. These findings advance our understanding of FADH2 transfer mechanisms in SMO and underscore protein fusion's role in enhancing biocatalysis. image
更多
查看译文
关键词
styrene monooxygenase,flavin-dependent enzymes,cofactor channeling,fusion enzymes,biocatalysis
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要