| Authors | عطیه کلوئی,حمید نجارزادکان,محمد براتی ,سعیده سرابادانی تفرشی,حمید رشیدی نوده |
| Journal | Scientific reports |
| IF | 3.9 |
| Paper Type | Full Paper |
| Published At | 2026-06-24 |
| Journal Grade | Scientific - research |
| Journal Type | Electronic |
| Journal Country | Iran, Islamic Republic Of |
| Journal Index | JCR ,SCOPUS |
| Keywords | Triketo compounds; Conformational analysis; Molecular docking; DFT; Computational modeling |
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Abstract
Linear polycarbonyl motifs constitute flexible chemical frameworks with relevance to conformational analysis, molecular stability, and interaction modeling. Here, we report a combined Density Functional Theory (DFT) and molecular docking study of the structural stability, conformational preferences, and interaction behavior of linear C₆ triketo and diketo scaffolds. Equilibrium geometries, intramolecular hydrogen-bonding patterns, and relative Gibbs free energies were evaluated at the B3LYP/6-311++G(d,p) level. Symmetric diketone isomers were identified as the most stable conformers, whereas arrangements containing adjacent carbonyl groups exhibited pronounced conformational flexibility accompanied by energetic destabilization of up to ~18 kcal mol⁻¹. Across the scaffold series, a consistent instability window of ~12–16 kcal mol⁻¹ was observed, associated with characteristic geometric distortions. To qualitatively probe interaction behavior, representative conformers spanning the stability range were subjected to molecular docking. Energetically favorable conformers displayed well-defined and reproducible interaction poses, while less stable structures showed increased orientational variability consistent with their flexible potential energy surfaces. The results establish a coherent structure–stability–interaction framework for linear polycarbonyl systems and provide a validated computational dataset applicable to conformational analysis and early-stage interaction modeling.