Abstract
Inflammatory diseases pose ongoing clinical challenges due to the limitations of current treatments such as NSAIDs. Targeting soluble epoxide hydrolase (sEH), which deactivates anti-inflammatory epoxyeicosatrienoic acids (EETs), represents a promising therapeutic strategy. In this study, we developed an optimized dual-feature ensemble directed message passing neural network (ODFE-DMPNN) framework to model sEH inhibitory activity using a small dataset of 138 compounds. By integrating d-MPNN-derived molecular graph representations with RDKit physicochemical descriptors and Morgan fingerprints, ODFE-DMPNN achieved a mean R² of 0.492 and an MSE of 0.026 in stratified 10-fold cross-validation. Guided by this model, we designed and synthesized two novel inhibitors, DJ-22 and LSM-36, with IC₅₀ values of 11.1 nM and 1.17 nM, respectively, demonstrating significantly higher activity than TPPU (IC50 = 43.8 ± 1.65 nM). Structural analysis revealed that urea moieties mediate key hydrogen bonds, while flanking hydrophobic groups contribute to π-interactions with critical residues, consistent with pharmacophore features. Cellular assays confirmed significant anti-inflammatory effects via IL-1β suppression. This work demonstrates a powerful AI-guided strategy for pharmacophore-based drug discovery, accelerating the development of next-generation sEH inhibitors.
| Original language | English |
|---|---|
| Article number | 147320 |
| Journal | Journal of Molecular Structure |
| Volume | 1379 |
| DOIs | |
| Publication status | Published - 1 Jan 2026 |
| Externally published | Yes |
Keywords
- Anti-inflammatory drug
- Arylacylpyridine
- Directed message passing neural network (D-MPNN)
- Pharmacophore modeling
- Soluble epoxide hydrolase (sEH)
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