Unveiling MurE ligase potential inhibitors for treating multi-drug resistant Acinetobacter baumannii

Ali Altharawi1, Safar M Alqahatani1, Mohammed M Alanazi2

  • 1Department of Pharmaceutical Chemistry, College of Pharmacy, Prince Sattam Bin Abdulaziz University, Al-Kharj, Saudi Arabia.

Insights

Novel drug candidates were identified using computer-aided design to combat antibiotic-resistant Acinetobacter baumannii infections. These compounds target the MurE ligase enzyme, showing promising binding affinity and stability for potential in vivo and in vitro testing.

Area of Science:

  • Computational chemistry and drug discovery
  • Microbiology and infectious diseases
  • Molecular modeling and bioinformatics

Background:

  • Acinetobacter baumannii is an opportunistic pathogen causing severe infections like bacteremia and pneumonia.
  • Increasing antibiotic resistance in A. baumannii, including carbapenem resistance, necessitates novel therapeutic strategies.
  • The MurE ligase enzyme, crucial for bacterial cell wall peptidoglycan synthesis, is a potential drug target.

Purpose of the Study:

  • To identify novel chemical scaffolds with strong binding affinity to the A. baumannii MurE ligase enzyme.
  • To evaluate the binding interactions, stability, and drug-like properties of potential inhibitor compounds.

Main Methods:

  • Computer-aided drug design (CADD) approach was employed to screen for MurE inhibitors.
  • Molecular docking simulations were performed to assess binding energy and interactions within the MurE active site.
  • Molecular dynamics simulations, MM/PBSA, MM/GBSA, AMBER entropy, and WaterSwap methods were used to validate complex stability.

Main Results:

  • Three compounds (LAS_22461675, LAS_34000090, LAS_51177972) exhibited strong binding energies to MurE (-10.5, -9.3, -8.6 kcal/mol, respectively).
  • Molecular dynamics and binding free energy calculations confirmed the stability of the docked complexes.
  • In silico analysis predicted favorable drug-like properties and pharmacokinetic profiles for the identified compounds.

Conclusions:

  • The identified compounds demonstrate significant potential as novel inhibitors of A. baumannii MurE ligase.
  • These compounds represent promising candidates for further experimental validation through in vitro and in vivo assays.
  • The CADD approach effectively identified novel scaffolds against a critical target in antibiotic-resistant bacteria.