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Published on: July 29, 2022
Extracellular DNA-induced antimicrobial peptide resistance in Salmonella enterica serovar Typhimurium
Background:
The Salmonella enterica serovar Typhimurium PhoPQ two component system (TCS) is activated by low Mg2+ levels, low pH and by antimicrobial peptides (AP). Under Mg2+ limitation, the PhoPQ system induces pmrD expression, which post-translationally activates the PmrAB TCS. PhoPQ and PmrAB control many genes required for intracellular survival and pathogenesis. These include the polymyxin resistance (pmr) operon, which is required for aminoarabinose modification of LPS and protecting the outer membrane from antimicrobial peptide disruption and killing. Extracellular DNA is a ubiquitous polymer in the matrix of biofilms and accumulates in some infection sites. Extracellular DNA chelates cations and thus activates the Pseudomonas aeruginosa PhoPQ/PmrAB systems, leading to expression of the orthologous arn (pmr) operon.
Results:
Here we show that extracellular DNA induces expression of the S. Typhimurium pmr antimicrobial peptide resistance operon in a PhoPQ and PmrAB-dependent manner. Induction of the pmr genes by DNA was blocked when present with excess Mg2+. Exogenous DNA led to increased resistance of planktonic cultures to aminoglycosides, antimicrobial peptides (AP) and ciprofloxacin, but only AP resistance was PhoPQ/PmrAB-dependent. Extracellular DNA was shown to be a matrix component of S. Typhimurium biofilms cultivated in flow chambers and on glass surfaces. A pmrH-gfp fusion was highly expressed in flow chamber biofilms cultivated in medium with repressing levels of 10 mM Mg2+ and co-localized with eDNA. Expression of pmrH-lux was monitored in plastic peg biofilms and shown to require PhoPQ and PmrAB. Biofilms had higher levels of pmrH expression compared to planktonic cultures. We propose that DNA accumulation in biofilms contributes to the increased pmrH-lux expression in biofilms.
Conclusions:
The Salmonella PhoPQ/PmrAB systems and antimicrobial peptide resistance are activated by the cation chelating properties of extracellular DNA. DNA-induced AP resistance may allow immune evasion and increased survival of S. Typhimurium biofilms formed during extracellular growth stages of an infection or outside the host.
Insights
Extracellular DNA activates Salmonella Typhimurium's antimicrobial peptide resistance genes via the PhoPQ/PmrAB systems. This DNA-induced resistance enhances bacterial survival in biofilms, aiding immune evasion during infection.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- The Salmonella enterica serovar Typhimurium PhoPQ two-component system (TCS) responds to environmental cues like low Mg2+, low pH, and antimicrobial peptides (AP).
- Under Mg2+ limitation, PhoPQ activates the PmrAB TCS, controlling genes essential for survival and pathogenesis, including the polymyxin resistance (pmr) operon.
- Extracellular DNA (eDNA), a biofilm matrix component, chelates cations and activates similar PhoPQ/PmrAB systems in other bacteria like Pseudomonas aeruginosa.
Purpose of the Study:
- To investigate the role of extracellular DNA in activating the Salmonella Typhimurium PhoPQ/PmrAB systems.
- To determine if eDNA influences the expression of antimicrobial peptide resistance genes in S. Typhimurium.
- To assess the impact of eDNA on bacterial resistance to various antimicrobial agents and biofilm formation.
Main Methods:
- Utilized reporter gene fusions (pmrH-gfp and pmrH-lux) to monitor gene expression in response to eDNA.
- Cultivated S. Typhimurium biofilms in flow chambers and on plastic pegs under varying Mg2+ concentrations.
- Assessed the resistance of planktonic and biofilm cultures to aminoglycosides, antimicrobial peptides, and ciprofloxacin.
Main Results:
- Extracellular DNA induced the expression of the S. Typhimurium pmr operon in a PhoPQ and PmrAB-dependent manner.
- DNA-induced expression of pmr genes was inhibited by excess Mg2+.
- eDNA exposure increased resistance to antimicrobial peptides in planktonic cells, dependent on PhoPQ/PmrAB.
- eDNA was identified as a matrix component in S. Typhimurium biofilms, where pmrH expression was significantly higher than in planktonic cultures.
Conclusions:
- The Salmonella PhoPQ/PmrAB systems and antimicrobial peptide resistance are activated by the cation-chelating properties of extracellular DNA.
- DNA-induced antimicrobial peptide resistance contributes to immune evasion and survival of S. Typhimurium biofilms during infection stages.
- Extracellular DNA plays a crucial role in bacterial adaptation and survival within biofilm communities.
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