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◆ Industrial Crops and Products2026-04-25· In vivo

Acetylcholinesterase-inhibiting flavonoids from Eupatorium adenophorum: structure–activity relationship, binding mechanisms, and in vivo insecticidal evaluation

Zhaokuan Guo, Zhengrui Xiang, Maoting Yue, Yongkun Gu, Yina Wang, Shengchao Yang, 郝小江, Xiao Ding, Guoxing Wu

原始摘要(原文)
The increasing risks associated with pesticide toxicity, resistance, and ecological disruption underscore the urgent need for sustainable, multi-target insecticides. In this study, 18 flavonoids were isolated from Eupatorium adenophorum Spreng and evaluated for their acetylcholinesterase (AChE) inhibition and insecticidal activity. Compounds 8 , 9 , 12 , and 14 strongly inhibited AChE, with compound 12 demonstrating the highest potency (IC₅₀ = 10.13 ± 0.45 μ g/mL for Caenorhabditis elegans and 5.61 ± 0.14 μ g/mL for Myzus persicae ). Molecular docking studies confirmed the stable binding of compound 12 with AChE, whereas enzyme kinetics revealed competitive, mixed, and noncompetitive inhibition modes for compounds 1 , 9 , and 12 , respectively. Fluorescence quenching and thermodynamic analyses indicated that static, spontaneous binding was driven by hydrogen bonding and hydrophobic interactions. In vivo assays revealed LC₅₀ values of compound 12 are 134.3 μ g/mL for C. elegans and 162.9 μ g/mL for M. persicae . Structure–activity relationship analysis suggested that hydroxylation, glycosylation, and acylation patterns significantly influenced AChE inhibition. These findings provide a mechanistic basis for the development of environmentally friendly pesticides derived from invasive plants. • Eighteen flavonoids from Eupatorium adenophorum were systematically isolated and characterized. • Caffeoylated flavonol glycosides showed strong AChE inhibition and in vivo insecticidal activity. • Kinetic, thermodynamic, and docking analyses revealed distinct mechanisms of AChE inhibition. • The 6″- O -caffeoylation of the A-ring was identified as a key structural determinant of potency. • This study provides a molecular-to-organism basis for developing insecticidal leads from invasive plants.
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Acetylcholinesterase-inhibiting flavonoids from Eupatorium adenophorum: structure–activity relationship, binding mechanisms, and in vivo insecticidal evaluation — 科研速览 Science Skim