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Aug 2026

Discovery of Pyrazole-Benzimidazolin-2-One Derivatives as 4-Hydroxyphenylpyruvate Dioxygenase Inhibitors.

4-Hydroxyphenylpyruvate dioxygenase (HPPD) has become an attractive target for herbicide development owing to the slow development and low risk of resistance to its inhibitors. However, most available HPPD inhibitors exhibit limited crop selectivity and poor efficacy against grasses. Therefore, the exploration of novel molecular scaffolds is of great research value. In this study, we adopted a ring-fusion strategy to enhance π-π stacking interactions and developed a structurally novel pyrazole-4-chloro-benzimidazolin-2-one scaffold. Through systematic structural optimization, compound II-19 showed the strongest enzyme inhibitory activity, with an IC50 of 52 nM, about 6-fold higher potency than the positive control, mesotrione. The crystal structure of AtHPPD-II-19 revealed that the inhibitor engages in characteristic chelation and π-π stacking interactions within the active site, and the 3-NO2-benzyl group contributes additional hydrophobic interactions and a possible weak water-mediated interaction involving Gln293. Additionally, I-5 showed excellent broad-spectrum weed control and good safety toward peanut at 30 g a.i./ha. These results indicate that compound I-5 is a promising candidate for the development of new HPPD inhibitors for weed control in peanut fields.

Biao Li, Rui-Ning Ying, Xian-Quan Wang et al. · 0 citations
Aug 2026

Discovery of Triketone-Quinazolinone Hybrids as Novel 4-Hydroxyphenylpyruvate Dioxygenase Inhibitors.

4-Hydroxyphenylpyruvate dioxygenase (HPPD, EC 1.13.11.27) is a promising target for new herbicide research. To develop new HPPD-inhibiting herbicides, we used a scaffold-hopping strategy by introducing a quinazolinone ring and combining it with the classic triketone pharmacophore, designing and synthesizing a series of novel HPPD inhibitors with a fused-ring architecture. The results showed that II-series of compounds exhibited excellent inhibitory activity against Arabidopsis thaliana (At) HPPD, with IC50 values 0.5- to 2.5-fold lower than those of mesotrione. Moreover, we obtained the crystal structure of AtHPPD-II-36 complex at a resolution of 1.8 Å. Importantly, II-36 exhibited high safety to wheat and outstanding herbicidal efficacy against Echinochloa crus-galli, Digitaria sanguinalis, and Bromus japonicus at a dosage of 30 g ai/ha. Our study provides a valuable example for designing novel HPPD inhibitors with enhanced herbicidal activity and improved crop selectivity.

Wan-Jie Zhang, Yu-Jun Dong, Shao-Meng Zhou et al. · 0 citations