RamA, which controls expression of the MDR efflux pump AcrAB-TolC, is regulated by the Lon protease
Vito Ricci1, Jessica M A Blair, Laura J V Piddock
1Antimicrobials Research Group, School of Immunity and Infection and Institute of Microbiology and Infection, University of Birmingham, Birmingham B15 2TT, UK.
Objectives:
RamA regulates the AcrAB-TolC multidrug efflux system. Using Salmonella Typhimurium, we investigated the stability of RamA and its impact on antibiotic resistance.
Methods:
To detect RamA, we introduced ramA::3XFLAG::aph into plasmid pACYC184 and transformed this into Salmonella Typhimurium SL1344ramA::cat and lon::aph mutants. An N-terminus-deleted mutant [pACYC184ramA(Δ2-21)::3XFLAG::aph] in which the first 20 amino acids of RamA were deleted was also constructed. To determine the abundance and half-life of FLAG-tagged RamA, we induced RamA with chlorpromazine (50 mg/L) and carried out western blotting using anti-FLAG antibody. Susceptibility to antibiotics and phenotypic characterization of the lon mutant was also carried out.
Results:
We show that on removal of chlorpromazine, a known inducer of ramA, the abundance of RamA decreased to pre-induced levels. However, in cells lacking functional Lon, we found that the RamA protein was not degraded. We also demonstrated that the 21 amino acid residues of the RamA N-terminus are required for recognition by the Lon protease. Antimicrobial susceptibility and phenotypic tests showed that the lon mutant was more susceptible to fluoroquinolone antibiotics, was filamentous when observed by microscopy and grew poorly, but showed no difference in motility or the ability to form a biofilm. There was also no difference in the ability of the lon mutant to invade human intestinal cells (INT-407).
Conclusions:
In summary, we show that the ATP-dependent Lon protease plays an important role in regulating the expression of RamA and therefore multidrug resistance via AcrAB-TolC in Salmonella Typhimurium.
Insights
The Lon protease degrades RamA, a regulator of multidrug resistance in Salmonella Typhimurium. Loss of Lon protease function increases RamA stability and antibiotic resistance.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Genetics
Background:
- RamA is a key regulator of the AcrAB-TolC multidrug efflux system in Salmonella Typhimurium.
- Understanding RamA stability is crucial for addressing multidrug resistance in bacterial pathogens.
Purpose of the Study:
- To investigate the stability of the RamA protein.
- To determine the impact of RamA stability on antibiotic resistance in Salmonella Typhimurium.
Main Methods:
- Constructed Salmonella Typhimurium strains with FLAG-tagged RamA and N-terminus deletion mutants.
- Utilized Western blotting to assess RamA abundance and half-life.
- Performed antimicrobial susceptibility testing and phenotypic characterization of bacterial mutants.
Main Results:
- RamA protein abundance decreased upon removal of the inducer chlorpromazine.
- RamA protein was not degraded in Salmonella Typhimurium lacking functional Lon protease.
- The N-terminus of RamA is essential for Lon protease recognition and degradation.
- Lon protease deficiency led to increased susceptibility to fluoroquinolones and altered cell morphology.
Conclusions:
- The ATP-dependent Lon protease is critical for regulating RamA stability.
- Lon protease-mediated regulation of RamA impacts multidrug resistance via the AcrAB-TolC efflux system in Salmonella Typhimurium.
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