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噻唑烷-4-酮并喹唑啉酮的合成、抗菌、抗癌评价及 QSAR 研究。

Synthesis, antimicrobial, anticancer evaluation and QSAR studies of thiazolidin-4-ones clubbed with quinazolinone.

机构信息

Faculty of Pharmaceutical Sciences, Maharshi Dayanand University, Rohtak-124001, India.

出版信息

Curr Top Med Chem. 2013 Aug;13(16):2034-46. doi: 10.2174/15680266113139990130.

Abstract

A series of 3-(5-(arylidene)-2-(aryl)-4-oxothiazolidin-3-yl)-2-phenylquinazolin-4(3H)-one derivatives (1-18) was synthesized in appreciable yield and characterized by physicochemical and spectral means. The synthesized compounds were evaluated for their in vitro antimicrobial and anticancer potentials. Antimicrobial properties of the title compounds were investigated against Gram positive and Gram negative bacterial as well fungal strains. 3-(5-(3- Methoxybenzylidene)-2-(4-(dimethylamino)phenyl)-4-oxothiazolidin-3-yl)-2-phenyl quinazolin-4(3H)-one (16, pMICam = 1.71 µM/ml) was found to be the most active antimicrobial agent. The anticancer evaluation of synthesized compounds against human colon (HCT116) cancer cell line indicated that 3-(5-(4-bromobenzylidene)-2-(3-chlorophenyl)-4- oxothiazolidin-3-yl)-2-phenylquinazolin-4(3H)-one (7, IC50 = 5.27 µM) was the most active anticancer agent and was more potent than standard drug, 5-fluorouracil (IC50 = 6.00 µM). QSAR models developed for antimicrobial activity of synthesized compounds indicated that antimicrobial activity of synthesized 4-thiazolidinone derivatives was governed by the topological parameters, valence first and second order molecular connectivity indices ((1)Χ(v) and (2)Χ(v)) and the electronic parameters, total energy (Te) and cosmic energy (Cos E).

摘要

一系列 3-(5-(芳亚甲基)-2-(芳基)-4-氧代噻唑烷-3-基)-2-苯基喹唑啉-4(3H)-酮衍生物(1-18)以可观的产率合成,并通过物理化学和光谱手段进行了表征。合成的化合物被评估了它们的体外抗菌和抗癌潜力。标题化合物的抗菌性质针对革兰氏阳性和革兰氏阴性细菌以及真菌菌株进行了研究。3-(5-(3-甲氧基亚苄基)-2-(4-(二甲基氨基)苯基)-4-氧代噻唑烷-3-基)-2-苯基喹唑啉-4(3H)-酮(16,pMICam = 1.71 µM/ml)被发现是最有效的抗菌剂。合成化合物对人结肠(HCT116)癌细胞系的抗癌评估表明,3-(5-(4-溴亚苄基)-2-(3-氯苯基)-4-氧代噻唑烷-3-基)-2-苯基喹唑啉-4(3H)-酮(7,IC50 = 5.27 µM)是最有效的抗癌剂,比标准药物 5-氟尿嘧啶(IC50 = 6.00 µM)更有效。为合成化合物的抗菌活性开发的 QSAR 模型表明,合成的 4-噻唑烷酮衍生物的抗菌活性受拓扑参数、价第一和第二阶分子连接性指数((1)Χ(v)和(2)Χ(v))和电子参数、总能量(Te)和宇宙能量(Cos E)控制。

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