State Key Laboratory Breeding Base of Green Pesticide and Agricultural Bioengineering, Key Laboratory of Green Pesticide and Agricultural Bioengineering, Ministry of Education, Guizhou University, Guiyang, China.
Key Laboratory of Agri-Food Safety of Anhui Province, School of Resources and Environment, Anhui Agricultural University, Hefei, China.
Pest Manag Sci. 2024 Mar;80(3):1654-1662. doi: 10.1002/ps.7897. Epub 2023 Dec 5.
Nowadays, the diamondback moth has ascended to become one of the most formidable pests plaguing cruciferous vegetables. Consequently, the exigency for the development of efficacious pesticide candidates for crop protection has never been more paramount. In response to this pressing need, this study presents a compendium of novel isoxazoline derivatives, incorporating acylhydrazone moieties, synthesized with the express purpose of serving as potential insecticides.
The structures of these derivatives were confirmed using Proton nuclear magnetic resonance ( H NMR), Carbon-13 nuclear magnetic resonance ( C NMR), and high-resolution mass spectrometry (HR-MS). Most of these derivatives demonstrated effective insecticidal activities against Plutella xylostella. Notably, compound E3 exhibited exceptional insecticidal activity against Plutella xylostella (LC = 0.19 mg L ), surpassing the effectiveness of ethiprole (LC = 3.28 mg L ), and comparable to that of fluxametamide (LC = 0.22 mg L ). Interestingly, compound E3 also displayed potent insecticidal activity against Pyrausta nubilalis (LC = 0.182 mg L ) and Chilo suppressalis (LC = 0.64 mg L ), and the LC values of fluxametamide were 0.23 mg L (P. nubilalis) and 2.26 mg L (C. suppressalis), respectively. The molecular docking results revealed that the compound E3 can form a hydrogen bond and two Pi-Pi bonds with the active sites of GABA receptors. In addition, the DFT calculations were also performed to study the relationship between insecticidal activities. The structure-activity relationships suggested that the identity of the R substituent was crucial for their pesticidal activities.
The results of the present study suggest that isoxazoline acylhydrazone derivatives could be promising candidates against P. xylostella and other Lepidopteran pests. © 2023 Society of Chemical Industry.
如今,小菜蛾已成为危害十字花科蔬菜的最严重害虫之一。因此,开发有效的作物保护农药候选物的紧迫性从未如此重要。针对这一紧迫需求,本研究提供了一系列新的异恶唑啉衍生物,其中包含酰腙部分,这些衍生物是专门作为潜在杀虫剂而合成的。
这些衍生物的结构通过质子核磁共振( 1 H NMR)、碳-13 核磁共振( 13 C NMR)和高分辨率质谱(HR-MS)得到确认。这些衍生物中的大多数对小菜蛾表现出有效的杀虫活性。值得注意的是,化合物 E3 对小菜蛾表现出优异的杀虫活性(LC = 0.19 mg L ),超过了乙虫腈(LC = 3.28 mg L )的效果,与氟虫酰胺相当(LC = 0.22 mg L )。有趣的是,化合物 E3 对斜纹夜蛾(LC = 0.182 mg L )和黏虫(LC = 0.64 mg L )也表现出强大的杀虫活性,氟虫酰胺对斜纹夜蛾和黏虫的 LC 值分别为 0.23 mg L (P. nubilalis)和 2.26 mg L (C. suppressalis)。分子对接结果表明,化合物 E3 可以与 GABA 受体的活性位点形成氢键和两个π-π键。此外,还进行了 DFT 计算以研究杀虫活性之间的关系。构效关系表明,R 取代基的性质对其杀虫活性至关重要。
本研究结果表明,异恶唑啉酰腙衍生物可能是防治小菜蛾和其他鳞翅目害虫的有前途的候选物。 © 2023 化学工业协会。