New INH-pyrazole analogs: Design, synthesis and evaluation of antitubercular and antibacterial activity

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2015

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Elsevier Ltd

Abstract

With the aim of developing promising antitubercular and antibacterial leads, we have designed and synthesized a new series of isonicotinohydrazide based pyrazole derivatives (5a-r). All new derivatives (4a-b and 5a-r) were screened for in vitro antimycobacterial activity against Mycobacterium tuberculosis H<inf>37</inf>Rv (MTB) strain. Four compounds 5j, 5k, 5l and 4b emerged as promising antitubercular agents with MIC of ?4.9 ?M which is much lower than the MIC of the first line antitubercular drug, ethambutol. The 3-chlorophenyl substituent at position-3 of the pyrazole ring enhanced the antiTB activity of the molecules. Three derivatives 5b, 5k and 4b exhibited promising antibacterial activity against the tested bacterial strains. The active molecules were nontoxic to normal Vero cells and showed high selectivity index (>160). The structure and antitubercular activity relationship was further supported by in silico molecular docking study of the active compounds against enoyl acyl carrier protein reductase (InhA) enzyme of M. tuberculosis. © 2015 Published by Elsevier Ltd.

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Keywords

acyl carrier protein, enoyl acyl carrier protein reductase (NADH), ethambutol, isoniazid, oxidoreductase, pyrazole, pyrazole derivative, tuberculostatic agent, antiinfective agent, animal cell, antibacterial activity, Article, bacterial strain, computer model, controlled study, drug design, drug synthesis, in vitro study, minimum inhibitory concentration, molecular docking, Mycobacterium tuberculosis, nonhuman, structure activity relation, Vero cell line, bacterium, binding site, chemical structure, chemistry, drug effects, IC50, microbial sensitivity test, molecular model, synthesis, Anti-Bacterial Agents, Antitubercular Agents, Bacteria, Binding Sites, Drug Design, Inhibitory Concentration 50, Isoniazid, Microbial Sensitivity Tests, Models, Molecular, Molecular Docking Simulation, Molecular Structure, Pyrazoles

Citation

Bioorganic and Medicinal Chemistry Letters, 2015, 25, 23, pp. 5540-5545

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