首页> 美国卫生研究院文献>Molecules >5-(1H-Indol-3-ylmethylene)-4-oxo-2-thioxothiazolidin-3-yl)alkancarboxylic Acids as Antimicrobial Agents: Synthesis Biological Evaluation and Molecular Docking Studies
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5-(1H-Indol-3-ylmethylene)-4-oxo-2-thioxothiazolidin-3-yl)alkancarboxylic Acids as Antimicrobial Agents: Synthesis Biological Evaluation and Molecular Docking Studies

机译:5-(1H-吲哚-3-基亚甲基)-4-氧代-2-硫代噻唑并恶唑烷-3-基)烷基羧酸作为抗微生物剂:合成生物学评估和分子对接研究

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摘要

Background: Infectious diseases symbolize a global consequential strain on public health security and impact on the socio-economic stability all over the world. The increasing resistance to the current antimicrobial treatment has resulted in crucial need for the discovery and development of novel entity for the infectious treatment with different modes of action that could target both sensitive and resistant strains. Methods: Compounds were synthesized using classical methods of organic synthesis. Results: All 20 synthesized compounds showed antibacterial activity against eight Gram-positive and Gram-negative bacterial species. It should be mentioned that all compounds exhibited better antibacterial potency than ampicillin against all bacteria tested. Furthermore, 18 compounds appeared to be more potent than streptomycin against , and . Three the most active compounds , , and appeared to be more potent against MRSA than ampicillin, while streptomycin did not show any bactericidal activity. All three compounds displayed better activity also against resistant strains and than ampicillin. Furthermore, all compounds were able to inhibit biofilm formation 2- to 4-times more than both reference drugs. Compounds were evaluated also for their antifungal activity against eight species. The evaluation revealed that all compounds exhibited antifungal activity better than the reference drugs bifonazole and ketoconazole. Molecular docking studies on antibacterial and antifungal targets were performed in order to elucidate the mechanism of antibacterial activity of synthesized compounds. Conclusion: All tested compounds showed good antibacterial and antifungal activity better than that of reference drugs and three the most active compounds could consider as lead compounds for the development of new more potent agents.
机译:背景:传染病象征着全球性的公共卫生安全压力,并影响着全世界的社会经济稳定。对当前抗微生物治疗的日益增加的耐药性导致迫切需要发现和开发用于感染治疗的新颖实体,其具有可同时针对敏感和耐药菌株的不同作用方式。方法:采用有机合成的经典方法合成化合物。结果:所有20种合成化合物对8种革兰氏阳性和革兰氏阴性细菌均表现出抗菌活性。应该提到的是,所有化合物对所有测试细菌的抗菌作用均优于氨苄西林。此外,有18种化合物似乎比链霉素对和更为有效。三种活性最高的化合物,和似乎比氨苄青霉素对MRSA更有效,而链霉素则没有任何杀菌活性。与氨苄青霉素相比,这三种化合物均显示出更好的抗药性。此外,所有化合物都比两种参比药物抑制生物膜形成的能力高2至4倍。还评估了化合物对八种植物的抗真菌活性。评估表明,所有化合物均显示出比参考药物联苯苄唑和酮康唑更好的抗真菌活性。为了阐明合成化合物的抗菌活性机理,对抗菌和抗真菌靶标进行了分子对接研究。结论:所有测试化合物均显示出比参考药物更好的抗菌和抗真菌活性,并且三种活性最高的化合物可被视为开发新的更有效药物的先导化合物。

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