Design, Synthesis, Evaluation of Antimicrobial Activity and Docking Studies of New Thiazole-based Chalcones

抗菌剂 噻唑 联苯苄唑 化学 肉汤微量稀释 抗菌活性 组合化学 立体化学 最小抑制浓度 微生物学 有机化学 抗真菌 细菌 生物 遗传学
作者
Christophe Tratrat,Michelyne Haroun,Iakovos Xenikakis,Κωνσταντίνος Λιάρας,Evangelia Tsolaki,Phaedra Eleftheriou,Anthi Petrou,Bandar E. Al‐Dhubiab,Mahesh Attimarad,Katharigatta N. Venugopala,Sree Harsha,Heba S. Elsewedy,Athina Geronikaki,Marina Sokóvić
出处
期刊:Current Topics in Medicinal Chemistry [Bentham Science Publishers]
卷期号:19 (5): 356-375 被引量:31
标识
DOI:10.2174/1568026619666190129121933
摘要

Thiazole derivates as well as chalcones, are very important scaffold for medicinal chemistry. Literature survey revealed that they possess wide spectrum of biological activities among which are anti-inflammatory and antimicrobial.The current studies describe the synthesis and evaluation of antimicrobial activity of twenty eight novel thiazole-based chalcones.The designed compounds were synthesized using classical methods of organic synthesis. The in vivo evaluation of antimicrobial activity was performed by microdilution method.All compounds have shown antibacterial properties better than that of ampicillin and in many cases better than streptomycin. As far as the antifungal activity is concerned, all compounds possess much higher activity than reference drugs bifonazole and ketoconazole. The most sensitive bacterial species was B. cereus (MIC 6.5-28.4 µmol × 10-2/mL and MBC 14.2-105.0 µmol × 10-2/mL) while the most resistant ones were L. monocytogenes (MIC 21.4-113.6 µmol × 10-2/mL) and E. coli (MIC 10.7- 113.6 µmol × 10-2/mL) and MBC at 42.7-358.6 µmol × 10-2/mL and 21.4-247.2 µmol × 10-2/mL, respectively. All the compounds exhibited antibacterial activity against the three resistant strains, MRSA, P. aeruginosa and E.coli. with MIC and MBC in the range of 0.65-11.00 µmol/mL × 10-2 and 1.30-16.50 µmol/mL × 10-2. Docking studies were performed.Twenty-eight novel thiazole-based chalcones were designed, synthesized and evaluated for antimicrobial activity. The results showed that these derivatives could be lead compounds in search of new potent antimicrobial agents. Docking studies indicated that DNA gyrase, GyrB and MurA inhibition may explain the antibacterial activity.
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