化学
生物系统
生化工程
计算模型
计算化学
计算机科学
合理设计
数学模型
数量结构-活动关系
模型验证
计算生物学
模拟生物系统
作者
YJ Li,Д. Б. Рубинов,V. G. Zinovich,Fei Ye,Tatyana S. Khlebnicova,Alexander V. Baranovsky,Ф. А. Лахвич,Ying Fu
标识
DOI:10.1021/acs.jafc.6c05053
摘要
4-Hydroxyphenylpyruvate dioxygenase (HPPD; EC 1.13.11.27) is regarded as a critical target enzyme in herbicide discovery and rational design. In this study, a series of 3-aroylpyridine-2,4(1 H,3 H )-diones were designed as potential HPPD inhibitors by combining active-substructure splicing with the bioisosterism strategy. A total of 48 triketones ( III-1 – III-48 ) were synthesized by a one-pot procedure that included O/C-isomerization of enol acylates II-1 – II-48, obtained in situ by O-acylation of pyridine-2,4(1 H,3 H )-diones Ia – Ii . Some triketones displayed good in vitro Arabidopsis thaliana HPPD ( At HPPD) inhibitory activity. Compound III-22 exhibited a potent inhibitory activity against At HPPD (IC 50 = 0.210 μM), which was higher than that of reference compound mesotrione (IC 50 = 0.670 μM). Bioassay results revealed that compound III-22 exhibited herbicidal activity exceeding 90% against all examined weed species at a dosage of 200 g a.i./ha; meanwhile, no significant phytotoxicity was observed in wheat, corn, soybean, and peanut fields even when applied at 300 g a.i./ha. Molecular docking revealed that compound III-22 established a bidentate chelating interaction with Co 2+ while forming π–π stacking interactions with residues Phe381 and Phe424. Molecular dynamics simulations further confirmed that compound III-22 could stably bind to the target protein At HPPD. Density functional theory (DFT) calculations elucidated the structure–activity relationships and the greater electronic stability of compound III-22 . The present work indicated that aroyl-substituted pyridinones can be used as promising HPPD-targeting inhibitors and herbicide candidates for sustainable weed management in the field.
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