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Effect of Vitamin K3 Inhibiting the Function of NorA Efflux Pump and Its Gene Expression on Staphylococcus aureus
Saulo R Tintino1, Veruska C A de Souza2, Julia M A da Silva2
1Laboratory of Microbiology and Molecular Biology (LMBM), Department of Biological Chemistry/CCBS/URCA, Crato 63105-000, Brazil.
Abstract:
Resistance to antibiotics has made diseases that previously healed easily become more difficult to treat. Staphylococcus aureus is an important cause of hospital-acquired infections and multi-drug resistant. NorA efflux pump, present in bacteria S. aureus, is synthesized by the expression of the norA gene. Menadione, also known as vitamin K3, is one of the synthetic forms of vitamin K. Therefore, the aim of this study is to verify the menadione effect on efflux inhibition through NorA pump gene expression inhibition and assess the effects of menadione in bacterial membrane. The effect of menadione as an efflux pump inhibitor (EPI) was evaluated by the microdilution method, fluorimetry, electron microscopy, and by RT-qPCR to evaluate gene expression. In the molecular docking, association with menadione induces increased fluorescence intensity. Menadione was observed (100% of the clusters) interacting with residues ILE12, ILE15, PHE16, ILE19, PHE47, GLN51, ALA105, and MET109 from NorA. The results showed the norA gene had its expression significantly diminished in the presence of menadione. The simulation showed that several menadione molecules were able to go through the bilayer and allow the entry of water molecules into the hydrophobic regions of the bilayer. When present within membranes, menadione may have caused membrane structural changes resulting in a decline of the signaling pathways involved in norA expression. Menadione demonstrated to be an efflux pump inhibitor with dual mechanism: affecting the efflux pump by direct interaction with protein NorA and indirectly inhibiting the norA gene expression, possibly by affecting regulators present in the membrane altered by menadione.
Insights
Menadione (vitamin K3) inhibits the NorA efflux pump in Staphylococcus aureus by directly interacting with the pump and indirectly reducing norA gene expression. This dual action offers a new strategy against antibiotic resistance.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Antibiotic resistance is a growing global health threat, making infections harder to treat.
- Staphylococcus aureus is a major cause of hospital-acquired infections and exhibits multi-drug resistance.
- The NorA efflux pump, encoded by the norA gene in S. aureus, contributes to antibiotic resistance.
Purpose of the Study:
- To investigate menadione's efficacy as an efflux pump inhibitor (EPI) against the NorA pump in S. aureus.
- To determine if menadione inhibits norA gene expression.
- To assess menadione's impact on bacterial membrane structure and function.
Main Methods:
- Microdilution assays, fluorimetry, and electron microscopy were used to evaluate menadione's effects.
- RT-qPCR was employed to quantify norA gene expression levels.
- Molecular docking simulations were performed to predict menadione's interaction with the NorA protein.
Main Results:
- Menadione demonstrated efflux pump inhibition activity.
- Molecular docking revealed menadione binding to key residues in the NorA protein.
- Menadione significantly reduced norA gene expression.
- Menadione simulations indicated membrane penetration and disruption, potentially affecting signaling pathways.
Conclusions:
- Menadione acts as a dual-mechanism EPI against the NorA efflux pump.
- It directly inhibits the NorA protein and indirectly reduces norA gene expression.
- Menadione's membrane-altering effects may contribute to its inhibitory action, offering a novel approach to combatting S. aureus infections.
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