Yan Xueyuan, Xiao Han, Song Jinshuai, Li Chunsen
College of Chemistry & Chemical and Environmental Engineering, Weifang University, Weifang 261061, China.
State Key Laboratory of Structure of Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, China.
Molecules. 2023 Aug 25;28(17):6238. doi: 10.3390/molecules28176238.
Quercetin 2,4-dioxygenase (QueD) with various transition metal ion co-factors shows great differences, but the internal reasons have not been illustrated in detail. In order to explore the effects of metal ion centers on the catalytic reactivity of QueD, we calculated and compared the minimum energy crossing point (MECP) of dioxygen from the relatively stable triplet state to the active singlet state under different conditions by using the DFT method. It was found that the metal ions play a more important role in the activation of dioxygen compared with the substrate and the protein environment. Simultaneously, the catalytic reactions of the bacterial QueDs containing six different transition metal ions were studied by the QM/MM approach, and we finally obtained the reactivity sequence of metal ions, Ni > Co > Zn > Mn > Fe > Cu, which is basically consistent with the previous experimental results. Our calculation results indicate that metal ions act as Lewis acids in the reaction to stabilize the substrate anion and the subsequent superoxo and peroxo species in the reaction, and promote the proton coupled electron transfer (PCET) process. Furthermore, the coordination tendencies of transition metal ion centers also have important effects on the catalytic cycle. These findings have general implications on metalloenzymes, which can expand our understanding on how various metal ions play their key role in modulating catalytic reactivity.
具有各种过渡金属离子辅助因子的槲皮素2,4 - 双加氧酶(QueD)表现出很大差异,但内在原因尚未详细阐明。为了探究金属离子中心对QueD催化反应活性的影响,我们使用密度泛函理论(DFT)方法计算并比较了在不同条件下双原子氧从相对稳定的三重态到活性单重态的最小能量交叉点(MECP)。结果发现,与底物和蛋白质环境相比,金属离子在双原子氧的活化中起着更重要的作用。同时,采用量子力学/分子力学(QM/MM)方法研究了含有六种不同过渡金属离子的细菌QueD的催化反应,最终得到金属离子的反应活性顺序为Ni > Co > Zn > Mn > Fe > Cu,这与先前的实验结果基本一致。我们的计算结果表明,金属离子在反应中作为路易斯酸,稳定底物阴离子以及反应过程中随后生成的超氧和过氧物种,并促进质子耦合电子转移(PCET)过程。此外,过渡金属离子中心的配位倾向对催化循环也有重要影响。这些发现对金属酶具有普遍意义,能够拓展我们对各种金属离子如何在调节催化反应活性中发挥关键作用的理解。