Bondock Samir, Albarqi Tallah, Abboud Mohamed, Nasr Tamer, Mohamed Nada M, Abdou Moaz M
Chemistry Department, Faculty of Science, King Khalid University 9004 Abha Saudi Arabia
Pharmaceutical Chemistry Department, Faculty of Pharmacy, Helwan University 11795 Helwan Cairo Egypt.
RSC Adv. 2023 Aug 10;13(34):24003-24022. doi: 10.1039/d3ra02528d. eCollection 2023 Aug 4.
A novel series of 2,4,5- and 2,3,4-trisubstituted thiazole hybrids with 1,3,4-thiadiazolylbenzenesulfonamide was designed following the tail approach as possible hCAIX inhibitors. The key intermediate 1 was condensed with thiosemicarbazide 2a to give 1,3,4-thiadiazolylthiosemicarbazone 3, which upon hetero-cyclization with substituted α-haloketones and esters afforded 2,4,5-trisubstituted thiazole-1,3,4-thiadiazole conjugates 4-8. Furthermore, the trisubstituted thiazole-1,3,4-thiadiazole hybrids 12a-d were synthesized the regioselective cyclization of 4-substituted-1,3,4-thiadiazolylthiosemicarbazones with phenacyl bromide. The cyclized 2,4-disubstituted thiazole 4 enhanced cytotoxicity by nine, four and two times against HepG-2, Caco2, and MCF-7, respectively. Moreover, the simple methyl substitution on the thiosemicarbazone terminus 9a improved the parent derivative 3 cytotoxicity by nine, fourteen, and six times against HepG-2, Caco2, and MCF-7, respectively. This astonishing cytotoxicity was elaborated with hCAIX molecular docking simulation of 4, 9a, and 12d demonstrating binding to zinc and its catalytic His94. Furthermore, molecular dynamic simulation 9a revealed stable hydrogen bonding with hCAIX with interaction energy of -61.07 kcal mol and Δ MM-PBSA of -9.6 kcal mol.
按照“尾巴”方法设计了一系列新型的2,4,5-和2,3,4-三取代噻唑杂化物,其与1,3,4-噻二唑基苯磺酰胺作为可能的hCAIX抑制剂。关键中间体1与硫代氨基脲2a缩合得到1,3,4-噻二唑基硫代氨基脲3,其与取代的α-卤代酮和酯进行杂环化反应,得到2,4,5-三取代噻唑-1,3,4-噻二唑共轭物4-8。此外,通过4-取代-1,3,4-噻二唑基硫代氨基脲与苯甲酰溴的区域选择性环化反应合成了三取代噻唑-1,3,4-噻二唑杂化物12a-d。环化的2,4-二取代噻唑4对HepG-2、Caco2和MCF-7的细胞毒性分别增强了9倍、4倍和2倍。此外,硫代氨基脲末端的简单甲基取代9a对母体衍生物3对HepG-2、Caco2和MCF-7的细胞毒性分别提高了9倍、14倍和6倍。通过对4、9a和12d进行hCAIX分子对接模拟,证明它们与锌及其催化性His94结合,从而阐述了这种惊人的细胞毒性。此外,分子动力学模拟9a显示与hCAIX形成稳定的氢键,相互作用能为-61.07 kcal/mol,ΔMM-PBSA为-9.6 kcal/mol。