Design, synthesis, molecular docking, molecular dynamic simulation, and MMGBSA analysis of 7-O-substituted 5-hydroxy flavone derivatives.
Kajalben B PatelRahul V PatelIqrar Ahmad AnsariDhanji RajaniHarun PatelSudipta MukherjeePremlata KumariPublished in: Journal of biomolecular structure & dynamics (2023)
A series of chrysin derivatives were designed, synthesized, and evaluated for their antibacterial activity against four different bacterial strains. We have synthesized new propyl-substituted and butyl-substituted chrysin-piperazine derivatives, which show marvellous inhibition against E. coli and S. aureus . The free hydroxyl group at the C-5 position of chrysin improved therapeutic efficacy in vivo and was a beneficial formulation for chemotherapy. All synthesized compounds were confirmed by various spectroscopic techniques such as IR, NMR, HPLC, and mass spectrometry. The compounds exhibited moderate to good inhibition, and their structure-activity relationship (SAR) has also been illustrated. Among the synthesised compounds, compounds 4 and 10 were the most active against S. pyogenes and E. coli , with 12.5 g/mL MICs; additionally, compound 12 exhibits significant activity on both the S. aureus and E. coli stains. Based on the promising activity profile and docking score of compound 12 , it was selected for 100 ns MD simulation and post-dynamic binding free energy analysis within the active sites of S. aureus TyrRS (PDB ID: 1JIJ) and E. coli DNA GyrB (PDB ID: 6YD9) to investigate the stability of molecular contacts and to establish how the newly synthesized inhibitors fit together in the most stable conformations.Communicated by Ramaswamy H. Sarma.
Keyphrases
- molecular docking
- structure activity relationship
- escherichia coli
- molecular dynamics simulations
- mass spectrometry
- molecular dynamics
- high resolution
- single molecule
- magnetic resonance
- oxide nanoparticles
- high performance liquid chromatography
- drug delivery
- liquid chromatography
- high intensity
- capillary electrophoresis
- cell free
- zika virus
- dna binding
- solid state