Hussein Ahmed M, Gomha Sobhi M, El-Ghany Nahed A Abd, Zaki Magdi E A, Farag Basant, Al-Hussain Sami A, Sayed Abdelwahed R, Zaki Yasser H, Mohamed Nadia A
Chemistry Department, Faculty of Science, Beni-Suef University, Beni-Suef 62511, Egypt.
Chemistry Department, College of Science and Humanities-Al Quwaiiyah, Shaqra University, Shaqra 11911, Saudi Arabia.
ACS Omega. 2024 Mar 12;9(12):13666-13679. doi: 10.1021/acsomega.3c07785. eCollection 2024 Mar 26.
The catalytic activity of chitosan (Cs) and grafted Cs led to the preparation of terephthalohydrazide Cs Schiff's base hydrogel (TCsSB), which was then investigated as an eco-friendly biocatalyst for synthesizing novel thiazole derivatives. TCsSB exhibited greater surface area and higher thermal stability compared to Cs, making it a promising eco-friendly biocatalyst. We synthesized two novel series of thiazoles via the reaction of 2-(2-oxo-1,2-diphenylethylidene) hydrazine-1-carbothioamide with various hydrazonoyl chlorides and 2-bromo-1-arylethan-1-ones, employing ultrasonic irradiation and using TCsSB as a catalyst. A comparative study between Cs and TCsSB revealed higher yields than TCsSB. The methodology offered advantages such as mild reaction conditions, quick reaction times, and high yields. TCsSB could be reused multiple times without a significant loss of potency. The chemical structures of the newly synthesized compounds were verified through IR, H NMR, C NMR, and MS analyses. Six synthesized compounds were assessed for their in vitro antibacterial effectiveness by establishing the minimum inhibitory concentration against four distinct bacterial strains. The docking analyses revealed favorable binding scores against several amino acids within the selected protein (PDB Code-1MBT) for these compounds, with compound exhibiting particularly noteworthy binding properties. Additionally, the in silico ADME parameter estimation for all compounds indicated favorable pharmacological properties for these compounds.
壳聚糖(Cs)及其接枝产物的催化活性促使了对苯二甲酰肼壳聚糖席夫碱水凝胶(TCsSB)的制备,随后将其作为一种环保型生物催化剂用于合成新型噻唑衍生物进行了研究。与Cs相比,TCsSB表现出更大的表面积和更高的热稳定性,使其成为一种有前景的环保型生物催化剂。我们通过2-(2-氧代-1,2-二苯基亚乙基)肼-1-碳硫酰胺与各种肼基酰氯和2-溴-1-芳基乙酮的反应,采用超声辐射并以TCsSB作为催化剂,合成了两个新型系列的噻唑。Cs和TCsSB之间的比较研究表明,前者的产率高于TCsSB。该方法具有反应条件温和、反应时间短和产率高的优点。TCsSB可以多次重复使用而不会显著损失活性。通过红外光谱(IR)、氢核磁共振(H NMR)、碳核磁共振(C NMR)和质谱(MS)分析对新合成化合物的化学结构进行了验证。通过确定对四种不同细菌菌株的最低抑菌浓度,对六种合成化合物的体外抗菌效果进行了评估。对接分析显示这些化合物与所选蛋白质(PDB代码-1MBT)中的几个氨基酸具有良好的结合分数,化合物表现出特别值得注意的结合特性。此外,对所有化合物的计算机辅助药物代谢动力学(ADME)参数估计表明这些化合物具有良好的药理性质。