Identification of 2-(N-aryl-1,2,3-triazol-4-yl) quinoline derivatives as antitubercular agents endowed with InhA inhibitory activity

  • Front Chem. 2024 Aug 7:12:1424017. doi: 10.3389/fchem.2024.1424017.
Ahmed Sabt  1 Maha-Hamadien Abdulla  2 Manal S Ebaid  1  3 Jakub Pawełczyk  4 Hayam A Abd El Salam  5 Ninh The Son  6  7 Nguyen Xuan Ha  8 Mansoor-Ali Vaali Mohammed  2 Thamer Traiki  2 Ahmed E Elsawi  9 Bozena Dziadek  10 Jaroslaw Dziadek  4 Wagdy M Eldehna  9  11
Affiliations
  • 1. Chemistry of Natural Compounds Department, Pharmaceutical and Drug Industries Research Institute, National Research Center, Dokki, Egypt.
  • 2. Colorectal Research Chair, Department of Surgery, College of Medicine, King Saud University, Riyadh, Saudi Arabia.
  • 3. Department of Chemistry, College of Science, Northern Border University, Arar, Saudi Arabia.
  • 4. Laboratory of Genetics and Physiology of Mycobacterium, Institute of Medical Biology of the Polish Academy of Sciences, Lodz, Poland.
  • 5. Department of Green Chemistry, National Research Center, Dokki, Egypt.
  • 6. Institute of Chemistry, Vietnam Academy of Science and Technology (VAST), Hanoi, Vietnam.
  • 7. Department of Chemistry, Graduate University of Science and Technology, Hanoi, Vietnam.
  • 8. Institute of Natural Products Chemistry, Vietnam Academy of Science and Technology, Hanoi, Vietnam.
  • 9. Department of Pharmaceutical Chemistry, Faculty of Pharmacy, Kafrelsheikh University, Kafrelsheikh, Egypt.
  • 10. Department of Molecular Microbiology, Faculty of Biology and Environmental Protection, University of Lodz, Lodz, Poland.
  • 11. Department of Pharmaceutical Chemistry, Faculty of Pharmacy, Pharos University in Alexandria, Alexandria, Egypt.
Abstract

The spread of drug-resistant tuberculosis strains has become a significant economic burden globally. To tackle this challenge, there is a need to develop new drugs that target specific mycobacterial Enzymes. Among these Enzymes, InhA, which is crucial for the survival of Mycobacterium tuberculosis, is a key target for drug development. Herein, 24 compounds were synthesized by merging 4-carboxyquinoline with triazole motifs. These molecules were then tested for their effectiveness against different strains of tuberculosis, including M. bovis BCG, M. tuberculosis, and M. abscessus. Additionally, their ability to inhibit the InhA enzyme was also evaluated. Several molecules showed potential as inhibitors of M. tuberculosis. Compound 5n displayed the highest efficacy with a MIC value of 12.5 μg/mL. Compounds 5g, 5i, and 5n exhibited inhibitory effects on InhA. Notably, 5n showed significant activity compared to the reference drug Isoniazid. Molecular docking analysis revealed interactions between these molecules and their target enzyme. Additionally, the molecular dynamic simulations confirmed the stability of the complexes formed by quinoline-triazole conjugate 5n with the InhA. Finally, 5n underwent in silico analysis to predict its ADME characteristics. These findings provide promising insights for developing novel small compounds that are safe and effective for the global fight against tuberculosis.

Keywords
MD simulation; biological evaluations; molecular docking; quinoline; triazole.
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