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Stenotrophomonas maltophilia PhoP, a Two-Component Response Regulator, Involved in Antimicrobial Susceptibilities
Ming-Che Liu1, Yi-Lin Tsai1, Yi-Wei Huang2
1Department and Graduate Institute of Clinical Laboratory Sciences and Medical Biotechnology, College of Medicine, National Taiwan University, Taipei, Taiwan, Republic of China.
Abstract:
Stenotrophomonas maltophilia, a gram-negative bacterium, has increasingly emerged as an important nosocomial pathogen. It is well-known for resistance to a variety of antimicrobial agents including cationic antimicrobial polypeptides (CAPs). Resistance to polymyxin B, a kind of CAPs, is known to be controlled by the two-component system PhoPQ. To unravel the role of PhoPQ in polymyxin B resistance of S. maltophilia, a phoP mutant was constructed. We found MICs of polymyxin B, chloramphenicol, ampicillin, gentamicin, kanamycin, streptomycin and spectinomycin decreased 2-64 fold in the phoP mutant. Complementation of the phoP mutant by the wild-type phoP gene restored all of the MICs to the wild type levels. Expression of PhoP was shown to be autoregulated and responsive to Mg2+ levels. The polymyxin B and gentamicin killing tests indicated that pretreatment of low Mg2+ can protect the wild-type S. maltophilia from killing but not phoP mutant. Interestingly, we found phoP mutant had a decrease in expression of SmeZ, an efflux transporter protein for aminoglycosides in S. maltophilia. Moreover, phoP mutant showed increased permeability in the cell membrane relative to the wild-type. In summary, we demonstrated the two-component regulator PhoP of S. maltophilia is involved in antimicrobial susceptibilities and low Mg2+ serves as a signal for triggering the pathway. Both the alteration in membrane permeability and downregulation of SmeZ efflux transporter in the phoP mutant contributed to the increased drug susceptibilities of S. maltophilia, in particular for aminoglycosides. This is the first report to describe the role of the Mg2+-sensing PhoP signaling pathway of S. maltophilia in regulation of the SmeZ efflux transporter and in antimicrobial susceptibilities. This study suggests PhoPQ TCS may serve as a target for development of antimicrobial agents against multidrug-resistant S. maltophilia.
Insights
The PhoP regulator in Stenotrophomonas maltophilia controls resistance to antibiotics like polymyxin B. Disrupting PhoP increases susceptibility by altering membrane permeability and reducing the SmeZ efflux transporter.
Area of Science:
- Microbiology
- Molecular Biology
- Antimicrobial Resistance
Background:
- Stenotrophomonas maltophilia is a significant nosocomial pathogen known for multidrug resistance.
- Resistance to cationic antimicrobial polypeptides (CAPs), such as polymyxin B, is a major clinical challenge.
- The two-component system PhoPQ is implicated in polymyxin B resistance in other bacteria.
Purpose of the Study:
- To investigate the role of the PhoPQ two-component system in Stenotrophomonas maltophilia's resistance to antimicrobial agents.
- To elucidate the regulatory mechanisms underlying PhoPQ-mediated resistance.
Main Methods:
- Construction and characterization of a phoP mutant in S. maltophilia.
- Determination of Minimum Inhibitory Concentrations (MICs) for various antibiotics.
- Assessment of bacterial membrane permeability.
- Analysis of SmeZ efflux transporter expression.
- Magnesium ion (Mg2+) concentration-dependent killing assays.
Main Results:
- The phoP mutant exhibited significantly reduced MICs for polymyxin B and several other antibiotics compared to the wild-type.
- Low Mg2+ protected wild-type S. maltophilia from killing by polymyxin B and gentamicin, but not the phoP mutant.
- The phoP mutant showed decreased expression of the SmeZ efflux transporter and increased cell membrane permeability.
- Complementation restored antimicrobial susceptibility to wild-type levels.
Conclusions:
- The PhoPQ two-component system is a key regulator of antimicrobial susceptibility in S. maltophilia.
- Low Mg2+ acts as a signal to activate the PhoPQ pathway.
- PhoP influences antimicrobial resistance through modulation of membrane permeability and regulation of the SmeZ efflux transporter.
- The PhoPQ system represents a potential therapeutic target for combating multidrug-resistant S. maltophilia.
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