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Author Spotlight: A Computational Approach to Decipher Amino Acid Preferences in Multispecific Protein-Protein Interactions
Published on: January 26, 2024
Identification of promising methionine aminopeptidase enzyme inhibitors: A combine study of comprehensive virtual
1Department of Pharmaceutical Chemistry, College of Pharmacy, Prince Sattam Bin Abdulaziz University, Al-Kharj 11942, Saudi Arabia.
Abstract:
Methionine aminopeptidase (MetAP) enzymes play a critical role in bacterial cell survival by cleaving formyl-methionine initiators at N-terminal of nascent protein, a process which is vital in proper protein folding. This makes MetAP an attractive and novel antibacterial target to unveil promising antibiotics. In this study, the crystal structure of R. prowazekii MetAP was used in structure-based virtual screening of drug libraries such as Asinex antibacterial library and Comprehensive Marine Natural Products Database (CMNPD) to identify promising lead molecules against the enzyme. This shortlisted three drug molecules; BDE-25098678, BDE-30686468 and BDD_25351157 as most potent leads that showed strong binding to the MetAP enzyme. The static docked conformation of the compounds to the MetAP was reevaluated in molecular dynamics simulation studies. The analysis observed the docked complexes as stable structure with no major local or global deviations noticed. These findings suggest the formation of strong intermolecular docked complexes, which showed stable dynamics and atomic level interactions network. The binding free energy analysis predicted net MMGBSA energy of complexes as: BDE-25098678 (-73.41 kcal/mol), BDE-30686468 (-59.93 kcal/mol), and BDD_25351157 (-75.39 kcal/mol). In case of MMPBSA, the complexes net binding energy was as; BDE-25098678 (-77.47 kcal/mol), BDE-30686468 (-69.47 kcal/mol), and BDD_25351157 (-75.6 kcal/mol). Further, the compounds were predicted to follow the famous Lipinski rule of five and have non-toxic, non-carcinogenic and non-mutagenic profile. The screened compounds might be used in experimental test to highlight the real anti- R. prowazekii MetAP activity.
Insights
Novel antibiotics targeting bacterial Methionine aminopeptidase (MetAP) were identified through structure-based virtual screening. Three potent lead molecules showed strong binding and stable interactions with R. prowazekii MetAP, suggesting potential as new antibacterial agents.
Area of Science:
- Biochemistry and Molecular Biology
- Structural Biology
- Drug Discovery
Background:
- Methionine aminopeptidase (MetAP) is crucial for bacterial survival, making it a promising antibacterial target.
- Targeting MetAP can lead to the development of novel antibiotics.
- Understanding enzyme-inhibitor interactions is key for drug design.
Purpose of the Study:
- To identify potential drug molecules targeting *R. prowazekii* Methionine aminopeptidase (MetAP).
- To evaluate the binding affinity and stability of identified lead compounds.
- To assess the drug-likeness and safety profile of potential antibiotics.
Main Methods:
- Structure-based virtual screening of the *R. prowazekii* MetAP crystal structure against drug libraries.
- Molecular dynamics simulations to assess the stability of docked complexes.
- Binding free energy calculations (MMGBSA and MMPBSA) and Lipinski's rule of five analysis.
Main Results:
- Three lead molecules (BDE-25098678, BDE-30686468, BDD_25351157) exhibited strong binding to *R. prowazekii* MetAP.
- Molecular dynamics simulations confirmed stable docked complexes with strong intermolecular interactions.
- Binding free energy calculations indicated potent interactions, and compounds adhered to Lipinski's rule with favorable safety profiles.
Conclusions:
- The identified compounds are promising lead molecules for developing new antibiotics against *R. prowazekii*.
- The study highlights the potential of MetAP as an antibacterial target.
- Further experimental validation is recommended to confirm the anti-MetAP activity of these compounds.
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