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.
Abstract:
Acinetobacter baumannii is an opportunistic pathogen with ability to cause serious infection such as bacteremia, ventilator associated pneumonia, and wound infections. As strains of A. baumannii are resistant to almost all clinically used antibiotics and with the emergence of carbapenems resistant phenotypes warrants the search for novel antibiotics. Considering this, herein, a series of computer aided drug designing approach was utilized to search novel chemical scaffolds that bind stronger to MurE ligase enzyme of A. baumannii, which is involved peptidoglycan synthesis. The work identified LAS_22461675, LAS_34000090 and LAS_51177972 compounds as promising binding molecules with MurE enzyme having binding energy score of -10.5 kcal/mol, -9.3 kcal/mol and -8.6 kcal/mol, respectively. The compounds were found to achieve docked inside the MurE substrate binding pocket and established close distance chemical interactions. The interaction energies were dominated by van der Waals and less contributions were seen from hydrogen bonding energy. The dynamic simulation assay predicted the complexes stable with no major global and local changes noticed. The docked stability was also validated by MM/PBSA and MM/GBSA binding free energy methods. The net MM/GBSA binding free energy of LAS_22461675 complex, LAS_34000090 complex and LAS_51177972 complex is -26.25 kcal/mol, -27.23 kcal/mol and -29.64 kcal/mol, respectively. Similarly in case of MM-PBSA, the net energy value was in following order; LAS_22461675 complex (-27.67 kcal/mol), LAS_34000090 complex (-29.94 kcal/mol) and LAS_51177972 complex (-27.32 kcal/mol). The AMBER entropy and WaterSwap methods also confirmed stable complexes formation. Further, molecular features of the compounds were determined that predicted compounds to have good druglike properties and pharmacokinetic favorable. The study concluded the compounds to good candidates to be tested by in vivo and in vitro experimental assays.Communicated by Ramaswamy H. Sarma.
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.
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