Extracellular DNA-induced antimicrobial peptide resistance in Salmonella enterica serovar Typhimurium

BMC Microbiology
|May 28, 2013
PubMed
Abstract

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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