Anhui Province Key Laboratory of Pollutant Sensitive Materials and Environmental Remediation, College of Life Sciences, Huaibei Normal University, Huaibei 235000, China.
Institute of Biomedicine, Jinan University, Guangzhou 510632, China.
Int J Mol Sci. 2024 Sep 15;25(18):9964. doi: 10.3390/ijms25189964.
The enantioselective mechanism of the esterase QeH against the two enantiomers of quizalofop-ethyl (QE) has been primitively studied using computational and experimental approaches. However, it is still unclear how the esterase QeH adjusts its conformation to adapt to substrate binding and promote enzymrate interactions and catalytic dynamics were reproduced by performing independent molecular dynamics (MD) runs on the QeH-()/()-QE complexes with a newly developed residue-specific force field (RSFF2C). Our results indicated that the benzene ring of the ()-QE structure can simultaneously form anion-π and cation-π interactions with the side-chain group of Glu328 and Arg384 in the binding cavity of the QeH-()-QE complex, resulting in ()-QE being closer to its catalytic triplet system (Ser78-Lys81-Tyr189) with the distances measured for the hydroxyl oxygen atom of the catalytic Ser78 of QeH and the carbonyl carbon atom of ()-QE of 7.39 Å, compared to the 8.87 Å for (S)-QE, whereas the ()-QE structure can only form an anion-π interaction with the side chain of Glu328 in the QeH-()-QE complex, being less close to its catalytic site. The computational alanine scanning mutation (CAS) calculations further demonstrated that the π-π stacking interaction between the indole ring of Trp351 and the benzene ring of ()/()-QE contributed a lot to the binding stability of the enzyme-substrate (QeH-()/()-QE). These results facilitate the understanding of their catalytic processes and provide new theoretical guidance for the directional design of other key enzymes for the initial degradation of aryloxyphenoxypropionate (AOPP) herbicides with higher catalytic efficiencies.
采用计算和实验方法初步研究了酯酶 QeH 对两种外消旋体喹禾灵乙酯(QE)的对映选择性机制。然而,酯酶 QeH 如何调整其构象以适应底物结合并促进酶反应相互作用和催化动力学仍然不清楚。通过对使用新开发的残基特异性力场(RSFF2C)在 QeH-()/()-QE 复合物上进行的独立分子动力学(MD)运行,重现了催化动力学。我们的结果表明,()-QE 结构的苯环可以同时与 Glu328 和 Arg384 侧链基团形成阴离子-π和阳离子-π相互作用,使()-QE 更接近其催化三联体系统(Ser78-Lys81-Tyr189),测得 QeH 催化 Ser78 的羟基氧原子与()-QE 的羰基碳原子之间的距离为 7.39 Å,而 (S)-QE 为 8.87 Å,而()-QE 结构只能在 QeH-()/()-QE 复合物中与 Glu328 的侧链形成阴离子-π相互作用,与催化位点的距离较近。计算丙氨酸扫描突变(CAS)计算进一步表明,Trp351 的吲哚环与 ()/()-QE 的苯环之间的 π-π 堆积相互作用对酶-底物(QeH-()/()-QE)的结合稳定性有很大贡献。这些结果有助于理解它们的催化过程,并为设计具有更高催化效率的芳氧苯氧基丙酸酯(AOPP)类除草剂初始降解的其他关键酶提供新的理论指导。