Department of Food Engineering, Faculty of Engineering and Architecture, Kafkas University, 36100, Kars, Turkey.
Department of Biomedical Engineering, Faculty of Engineering and Architecture, Kastamonu University, 37200, Kastamonu, Turkey.
Chem Biodivers. 2023 Nov;20(11):e202301063. doi: 10.1002/cbdv.202301063. Epub 2023 Oct 23.
Eleven new thiosemicarbazone derivatives (1-11) were designed from nine different biologically and pharmacologically important isothiocyanate derivatives containing functional groups such as fluorine, chlorine, methoxy, methyl, and nitro at various positions of the phenyl ring, in addition to the benzyl unit in the molecular skeletal structure. First, their substituted-thiosemicarbazide derivatives were synthesized from the treatment of isothiocyanate with hydrazine to synthesize the designed compounds. Through a one-step easy synthesis and an eco-friendly process, the designed compounds were synthesized with yields of up to 95 % from the treatment of the thiosemicarbazides with aldehyde derivatives having methoxy and hydroxy groups. The structures of the synthesized molecules were elucidated with elemental analysis and FT-IR, H-NMR, and C-NMR spectroscopic methods. The electronic and spectroscopic properties of the compounds were determined by the DFT calculations performed at the B3LYP/6-311++G(2d,2p) level of theory, and the experimental findings were supported. The effects of some global reactivity parameters and nucleophilic-electrophilic attack abilities of the compounds on the enzyme inhibition properties were also investigated. They exhibited a highly potent inhibition effect on acetylcholinesterase (AChE) and carbonic anhydrases (hCAs) (K values are in the range of 23.54±4.34 to 185.90±26.16 nM, 103.90±23.49 to 325.90±77.99 nM, and 86.15±18.58 to 287.70±43.09 nM for AChE, hCA I, and hCA II, respectively). Furthermore, molecular docking simulations were performed to explain each enzyme-ligand complex's interaction.
从分子骨架结构中的苄基单元以及苯环上的不同位置含氟、氯、甲氧基、甲基和硝基等功能基团的 9 种不同的生物和药理活性重要的异硫氰酸酯衍生物出发,设计了 11 种新的硫代缩氨基脲衍生物(1-11)。首先,通过用肼处理异硫氰酸酯来合成设计的化合物,合成了它们的取代硫代缩氨基脲衍生物。通过一步简便合成和环保工艺,用具有甲氧基和羟基的醛衍生物处理硫代缩氨基脲,以高达 95%的产率合成了设计的化合物。用元素分析和 FT-IR、H-NMR 和 C-NMR 光谱方法阐明了合成分子的结构。通过在 B3LYP/6-311++G(2d,2p)理论水平上进行的 DFT 计算确定了化合物的电子和光谱性质,并得到了实验结果的支持。还研究了一些全局反应性参数和化合物的亲核-亲电攻击能力对酶抑制特性的影响。它们对乙酰胆碱酯酶(AChE)和碳酸酐酶(hCAs)具有很强的抑制作用(K 值范围为 23.54±4.34 至 185.90±26.16 nM、103.90±23.49 至 325.90±77.99 nM 和 86.15±18.58 至 287.70±43.09 nM,分别为 AChE、hCA I 和 hCA II)。此外,还进行了分子对接模拟,以解释每个酶-配体复合物的相互作用。