Cheng Qianyi, DeYonker Nathan J
Department of Chemistry, University of Memphis, Memphis, Tennessee 38152, United States.
J Phys Chem B. 2021 Apr 8;125(13):3296-3306. doi: 10.1021/acs.jpcb.0c10761. Epub 2021 Mar 30.
The key step of the O-demethylation of guaiacol by GcoA of the cytochrome P450-reductase pair was studied with DFT using two 10-residue and three 15-residue QM-cluster models. For each model, two reaction pathways were examined, beginning with a different guaiacol orientation. Based on this study, His354, Phe349, Glu249, and Pro250 residues were found to be important for keeping the heme in a planar geometry throughout the reaction. Val241 and Gly245 residues were needed in the QM-cluster models to provide the hydrophobic pocket for an appropriate guaiacol pose in the reaction. The aromatic triad Phe75, Phe169, and Phe395 may be necessary to facilitate guaiacol migrating into the enzyme active site, but it does not qualitatively affect kinetics and thermodynamics of the proposed mechanism. All QM-cluster models created by agree very well with previous experimental work. This study provides details for better understanding enzymatic O-demethylation of lignins to form catechol derivatives by GcoA.
利用密度泛函理论(DFT),采用两个10残基和三个15残基的量子力学簇模型,研究了细胞色素P450还原酶对中GcoA催化愈创木酚O-去甲基化的关键步骤。对于每个模型,研究了两条反应途径,起始于不同的愈创木酚取向。基于该研究,发现His354、Phe349、Glu249和Pro250残基对于在整个反应过程中保持血红素处于平面几何结构很重要。在量子力学簇模型中需要Val241和Gly245残基来为反应中合适的愈创木酚构象提供疏水口袋。芳香三联体Phe75、Phe169和Phe395可能有助于愈创木酚迁移到酶活性位点,但它对所提出机制的动力学和热力学没有定性影响。所创建的所有量子力学簇模型与先前的实验工作非常吻合。该研究为更好地理解GcoA将木质素酶促O-去甲基化形成儿茶酚衍生物提供了详细信息。