Department of Chemistry, Faculty of Sciences, Sakarya University, 54050, Sakarya, Turkiye.
Department of Chemistry, Faculty of Art and Sciences, Düzce University, 81100, Düzce, Turkiye.
Arch Biochem Biophys. 2024 Nov;761:110171. doi: 10.1016/j.abb.2024.110171. Epub 2024 Oct 2.
Chalcones bearing tetralone, indanone and benzothiazole cores were synthesized successfully using a general Claisen-Schmidt condensation protocol. The prepared compounds were purified and structurally analyzed by H, C NMR, and FT-IR techniques. A multi-faceted theoretical approach, combining Density Functional Theory (DFT), molecular docking, and ADME predictions, was employed to evaluate their therapeutic potential. DFT calculations at the B3LYP/def2-TZVP level revealed key electronic properties, with TD3 compound demonstrating the highest chemical reactivity. Molecular Electrostatic Potential (MEP) and Reduced Density Gradient (RDG) analyses provided insights into the compounds' non-covalent interactions and charge distributions. Molecular docking studies against the NS5 protein (PDB: 6KR2) showed superior binding affinities for all three compounds compared to the control ligand SAH, with TD3 exhibiting the lowest binding energy (-8.41 kcal/mol) and theoretical inhibition constant (689.31 nM). ADME predictions indicated favorable drug-like properties with concerns regarding aqueous solubility and potential P-glycoprotein interactions. Toxicity evaluations highlighted challenges, particularly in hepatotoxicity and carcinogenicity. The study identified TD3 as a promising lead compound for Dengue Virus NS5 inhibition, while also emphasizing the need for targeted modifications to address toxicity concerns. This research not only contributes to anti-dengue drug discovery efforts but also provides a robust methodological framework for the theoretical evaluation of similar small compounds in future investigations.
使用一般的 Claisen-Schmidt 缩合反应方案成功合成了具有四氢萘酮、茚满酮和苯并噻唑核心的查耳酮。通过 H、C NMR 和 FT-IR 技术对制备的化合物进行了纯化和结构分析。采用多种理论方法,结合密度泛函理论(DFT)、分子对接和 ADME 预测,评估了它们的治疗潜力。在 B3LYP/def2-TZVP 水平下进行的 DFT 计算揭示了关键的电子性质,其中 TD3 化合物表现出最高的化学反应性。分子静电势(MEP)和简化密度梯度(RDG)分析提供了对化合物非共价相互作用和电荷分布的深入了解。针对 NS5 蛋白(PDB:6KR2)的分子对接研究表明,与对照配体 SAH 相比,所有三种化合物都具有更好的结合亲和力,其中 TD3 表现出最低的结合能(-8.41 kcal/mol)和理论抑制常数(689.31 nM)。ADME 预测表明具有良好的类药性,但需要关注水溶解度和潜在的 P-糖蛋白相互作用。毒性评估突出了一些挑战,特别是在肝毒性和致癌性方面。该研究确定 TD3 是一种有前途的登革热病毒 NS5 抑制剂先导化合物,同时也强调需要进行有针对性的修饰以解决毒性问题。这项研究不仅为抗登革热药物发现做出了贡献,还为未来类似小分子的理论评估提供了一个强大的方法框架。