The identification of antinociceptive compounds often relies on animal models such as zebrafish, in which TRPA1 activation induces hyperlocomotion. This study presents the first evaluation of the anti-inflammatory and antinociceptive properties of the europium complex Eu(dbm)3.LAP, derived from Lapachol, and investigates its possible interaction with the TRPA1 channel in adult zebrafish. The complex was administered intramuscularly, and its effects were compared with camphor and morphine controls. In vivo findings were integrated with in silico docking, molecular dynamics simulations, and predictive pharmacokinetic analysis. Eu(dbm)3.LAP (40 mg/kg, oral) was effective specifically in the inflammatory phase, and its effect was blocked by camphor, indicating TRPA1 modulation. The compound also reduced carrageenan-induced inflammation and attenuated oxidative stress in nerve and liver tissues. In silico predictions indicated high intestinal absorption (∼100%), good blood-brain permeability (LogBB = 0.62), and low cardiotoxicity (pKihERG = 7.73). Docking revealed a binding energy of -8.1 kcal·mol- 1 with stable interactions involving LYS1046, TYR1049, and LYS1052. Molecular dynamics confirmed stability over 100 ns and preservation of key hydrogen bonds, supporting the modulatory potential observed in vivo.
Borges et al. (Sun,) studied this question.