Adjissi Lilia, Chafai Nadjib, Benbouguerra Khalissa, Kirouani Imene, Hellal Abdelkader, Layaida Houdheifa, Elkolli Meriem, Bensouici Chawki, Chafaa Salah
Laboratory of Electrochemistry of Molecular Materials and Complex (LEMMC). Department of Process Engineering, Faculty of Technology, University of Ferhat ABBAS Setif-1, El-Mabouda campus, 19000 Sétif, Algeria.
Laboratory of applied microbiology, Faculty of Natural and Life Sciences, University of Setif 1, Algeria.
J Mol Struct. 2022 Dec 15;1270:134005. doi: 10.1016/j.molstruc.2022.134005. Epub 2022 Aug 23.
Three hydrazone derivatives have been synthesized using condensation reaction of 4-hydrazinylbenzoic acid with three aromatic aldehydes namely: thiophene-2-carbaldehyde, thiophene-3-carbaldehyde and 2-furaldehyde in ethanol at 78 °C reflux. The synthesized molecules have been characterized using spectroscopic and physicochemical methods including UV-Vis, IR, H NMR, C NMR, N NMR and melting point determination. Optimized molecular structures, UV-Vis and IR spectra modeling, the reactivity, the stability and some quantum chemical parameters of the synthesized molecules were modeled utilizing density functional theory (DFT). The obtained theoretical results were found in good agreement with the experimental results. On the other hand, the antioxidant and antibacterial activities of the molecules under study were evaluated to better understand the associated mechanisms of action specifically. Also, predicted ADME-T and pharmacokinetic parameters indicated that these compounds showed good oral bioavailability. Finally, molecular docking has been used to predict the inhibitory activity of the studied hydrazone derivatives on the SARS-CoV-2 main protease (Mpro).
通过4-肼基苯甲酸与三种芳香醛(即噻吩-2-甲醛、噻吩-3-甲醛和2-糠醛)在78°C乙醇回流条件下发生缩合反应,合成了三种腙衍生物。使用包括紫外可见光谱、红外光谱、氢核磁共振、碳核磁共振、氮核磁共振和熔点测定在内的光谱和物理化学方法对合成的分子进行了表征。利用密度泛函理论(DFT)对合成分子的优化分子结构、紫外可见光谱和红外光谱建模、反应性、稳定性和一些量子化学参数进行了模拟。发现获得的理论结果与实验结果吻合良好。另一方面,对所研究分子的抗氧化和抗菌活性进行了评估,以更好地具体了解相关作用机制。此外,预测的ADME-T和药代动力学参数表明这些化合物具有良好的口服生物利用度。最后,分子对接已被用于预测所研究的腙衍生物对严重急性呼吸综合征冠状病毒2型主要蛋白酶(Mpro)的抑制活性。