| Literature DB >> 30268826 |
Fangchao Bi1, Di Song1, Nan Zhang1, Zhiyang Liu1, Xinjie Gu1, Chaoyu Hu1, Xiaokang Cai1, Henrietta Venter2, Shutao Ma3.
Abstract
Antibiotic resistance among clinically significant bacterial pathogens is becoming a prevalent threat to public health, and new antibacterial agents with novel mechanisms of action hence are in an urgent need. Utilizing computational docking method and structure-based optimization strategy, we rationally designed and synthesized two series of isoxazol-3-yl- and isoxazol-5-yl-containing benzamide derivatives that targeted the bacterial cell division protein FtsZ. Evaluation of their activity against a panel of Gram-positive and -negative pathogens revealed that compounds B14 and B16 that possessed the isoxazol-5-yl group showed strong antibacterial activity against various testing strains, including methicillin-resistant Staphylococcus aureus and penicillin-resistant S. aureus. Further molecular biological studies and docking analyses proved that the compound functioned as an effective inhibitor to alter the dynamics of FtsZ self-polymerization via a stimulatory mechanism, which finally terminated the cell division and caused cell death. Taken together, these results could suggest a promising chemotype for development of new FtsZ-targeting bactericidal agent.Entities:
Keywords: Antibacterial activity; FtsZ inhibitor; Isoxazole-containing benzamide; Molecular docking analysis; Structure-based optimization
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Year: 2018 PMID: 30268826 DOI: 10.1016/j.ejmech.2018.09.053
Source DB: PubMed Journal: Eur J Med Chem ISSN: 0223-5234 Impact factor: 6.514