Zhuo-Mei Cai,Rui-Ning Ying,Xian-Quan Wang,Ren-Yu Bai,Ao Sun,Wishwajith Kandegama,Hong-Yan Lin,Da-Wei Wang,Guang-Fu Yang
{"title":"新型HPPD抑制除草剂三酮-喹啉-2-酮的设计、合成及生物活性研究。","authors":"Zhuo-Mei Cai,Rui-Ning Ying,Xian-Quan Wang,Ren-Yu Bai,Ao Sun,Wishwajith Kandegama,Hong-Yan Lin,Da-Wei Wang,Guang-Fu Yang","doi":"10.1021/acs.jafc.5c08188","DOIUrl":null,"url":null,"abstract":"4-Hydroxyphenylpyruvate dioxygenase (HPPD) is recognized as one of the most promising herbicide targets for sustainable weed control in modern agricultural practices. To address agricultural demands, we designed and synthesized a novel series of triketone-quinoxalin-2-ones as potent HPPD inhibitors. In vitro evaluation revealed that the newly synthesized compounds demonstrated remarkable Arabidopsis thaliana HPPD (AtHPPD) inhibitory activity. Significantly, compound 23, 3-(4-chloro-2-fluorophenyl)-6-(2-hydroxy-6-oxocyclohex-1-ene-1-carbonyl)-1,5-dimethylquinoxalin-2(1H)-one, showed the strongest AtHPPD inhibition with an IC50 value of 0.034 μM, 10-fold more potent than mesotrione (IC50 = 0.350 μM). Furthermore, the postemergence herbicidal activity evaluation showed that compound 35 exhibited 100% inhibition of Digitaria sanguinalis, Amaranthus retroflexus, Chenopodium serotinum, and Abutilon theophrasti at 150 g ai/ha, and 90% inhibition of Setaria viridis, showing enhanced activity compared to mesotrione. The crystal structure of the AtHPPD-35 complex demonstrated that compound 35 engaged in a key bidentate chelating interaction with the metal ion in the catalytic active site and a π-π interaction with Phe381 and Phe424. Moreover, 35 established hydrophobic interactions with Leu427, Leu368, and Met335. These results indicate that the triketone-quinoxalin-2-one hybrid is a promising scaffold and 35 can be considered a viable lead compound for the development of HPPD inhibitors.","PeriodicalId":41,"journal":{"name":"Journal of Agricultural and Food Chemistry","volume":"34 1","pages":""},"PeriodicalIF":6.2000,"publicationDate":"2025-10-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Design, Synthesis, and Bioactivity of Triketone-quinoxalin-2-ones as a Novel HPPD Inhibition Herbicide.\",\"authors\":\"Zhuo-Mei Cai,Rui-Ning Ying,Xian-Quan Wang,Ren-Yu Bai,Ao Sun,Wishwajith Kandegama,Hong-Yan Lin,Da-Wei Wang,Guang-Fu Yang\",\"doi\":\"10.1021/acs.jafc.5c08188\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"4-Hydroxyphenylpyruvate dioxygenase (HPPD) is recognized as one of the most promising herbicide targets for sustainable weed control in modern agricultural practices. To address agricultural demands, we designed and synthesized a novel series of triketone-quinoxalin-2-ones as potent HPPD inhibitors. In vitro evaluation revealed that the newly synthesized compounds demonstrated remarkable Arabidopsis thaliana HPPD (AtHPPD) inhibitory activity. Significantly, compound 23, 3-(4-chloro-2-fluorophenyl)-6-(2-hydroxy-6-oxocyclohex-1-ene-1-carbonyl)-1,5-dimethylquinoxalin-2(1H)-one, showed the strongest AtHPPD inhibition with an IC50 value of 0.034 μM, 10-fold more potent than mesotrione (IC50 = 0.350 μM). Furthermore, the postemergence herbicidal activity evaluation showed that compound 35 exhibited 100% inhibition of Digitaria sanguinalis, Amaranthus retroflexus, Chenopodium serotinum, and Abutilon theophrasti at 150 g ai/ha, and 90% inhibition of Setaria viridis, showing enhanced activity compared to mesotrione. The crystal structure of the AtHPPD-35 complex demonstrated that compound 35 engaged in a key bidentate chelating interaction with the metal ion in the catalytic active site and a π-π interaction with Phe381 and Phe424. Moreover, 35 established hydrophobic interactions with Leu427, Leu368, and Met335. 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Design, Synthesis, and Bioactivity of Triketone-quinoxalin-2-ones as a Novel HPPD Inhibition Herbicide.
4-Hydroxyphenylpyruvate dioxygenase (HPPD) is recognized as one of the most promising herbicide targets for sustainable weed control in modern agricultural practices. To address agricultural demands, we designed and synthesized a novel series of triketone-quinoxalin-2-ones as potent HPPD inhibitors. In vitro evaluation revealed that the newly synthesized compounds demonstrated remarkable Arabidopsis thaliana HPPD (AtHPPD) inhibitory activity. Significantly, compound 23, 3-(4-chloro-2-fluorophenyl)-6-(2-hydroxy-6-oxocyclohex-1-ene-1-carbonyl)-1,5-dimethylquinoxalin-2(1H)-one, showed the strongest AtHPPD inhibition with an IC50 value of 0.034 μM, 10-fold more potent than mesotrione (IC50 = 0.350 μM). Furthermore, the postemergence herbicidal activity evaluation showed that compound 35 exhibited 100% inhibition of Digitaria sanguinalis, Amaranthus retroflexus, Chenopodium serotinum, and Abutilon theophrasti at 150 g ai/ha, and 90% inhibition of Setaria viridis, showing enhanced activity compared to mesotrione. The crystal structure of the AtHPPD-35 complex demonstrated that compound 35 engaged in a key bidentate chelating interaction with the metal ion in the catalytic active site and a π-π interaction with Phe381 and Phe424. Moreover, 35 established hydrophobic interactions with Leu427, Leu368, and Met335. These results indicate that the triketone-quinoxalin-2-one hybrid is a promising scaffold and 35 can be considered a viable lead compound for the development of HPPD inhibitors.
期刊介绍:
The Journal of Agricultural and Food Chemistry publishes high-quality, cutting edge original research representing complete studies and research advances dealing with the chemistry and biochemistry of agriculture and food. The Journal also encourages papers with chemistry and/or biochemistry as a major component combined with biological/sensory/nutritional/toxicological evaluation related to agriculture and/or food.