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Drug Repurposing Targeting Pseudomonas aeruginosa MvfR Using Docking, Virtual Screening, Molecular Dynamics, and
Tatiana F Vieira1,2, Rita P Magalhães1,2, Manuel Simões3
1UCIBIO/REQUIMTE, BioSIM, Departamento de Medicina, Faculdade de Medicina da Universidade do Porto, Alameda Prof. Hernâni Monteiro, 4200-319 Porto, Portugal.
Abstract:
Pseudomonas aeruginosa is an opportunistic Gram-negative bacterium responsible for acute and chronic infections in planktonic state or in biofilms. The sessile structures are known to confer physical stability, increase virulence, and work as a protective armor against antimicrobial compounds. P. aeruginosa can control the expression of genes, population density, and biofilm formation through a process called quorum sensing (QS), a rather complex and hierarchical system of communication. A recent strategy to try and overcome bacterial resistance is to target QS proteins. In this study, a combined multi-level computational approach was applied to find possible inhibitors against P. aeruginosa QS regulator protein MvfR, also known as PqsR, using a database of approved FDA drugs, as a repurposing strategy. Fifteen compounds were identified as highly promising putative MvfR inhibitors. On those 15 MvfR ligand complexes, molecular dynamic simulations and MM/GBSA free-energy calculations were performed to confirm the docking predictions and elucidate on the mode of interaction. Ultimately, the five compounds that presented better binding free energies of association than the reference molecules (a known antagonist, M64 and a natural inducer, 2-nonyl-4-hydroxyquinoline) were highlighted as very promising MvfR inhibitors.
Insights
This study repurposed FDA-approved drugs to find inhibitors for Pseudomonas aeruginosa quorum sensing (QS) regulator MvfR. Five compounds showed strong potential, offering new strategies against bacterial infections and resistance.
Area of Science:
- Microbiology
- Computational Chemistry
- Drug Discovery
Background:
- Pseudomonas aeruginosa causes infections, often protected by biofilms.
- Biofilms enhance virulence and resistance to antimicrobials.
- Quorum sensing (QS) regulates P. aeruginosa virulence and biofilm formation.
Purpose of the Study:
- To identify potential inhibitors of the P. aeruginosa QS regulator MvfR (PqsR) using drug repurposing.
- To evaluate the efficacy of identified compounds through computational methods.
Main Methods:
- A multi-level computational approach was used.
- Screening of FDA-approved drugs against MvfR.
- Molecular dynamics simulations and MM/GBSA calculations were performed.
Main Results:
- Fifteen promising MvfR inhibitors were identified from the drug database.
- Molecular simulations confirmed interactions and binding modes.
- Five compounds demonstrated superior binding free energies compared to reference molecules.
Conclusions:
- Drug repurposing is a viable strategy for discovering novel anti-virulence agents.
- The identified compounds are promising candidates for MvfR inhibition.
- This approach offers potential new treatments against P. aeruginosa infections.
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