Cointegration as a mechanism for the evolution of a KPC-producing multidrug resistance plasmid in Proteus mirabilis

Xiaoting Hua1,2, Linyue Zhang1,2, Robert A Moran3

  • 1Department of Infectious Diseases, Sir Run Run Shaw Hospital, College of Medicine, Zhejiang University, Hangzhou, People's Republic of China.

Insights

Cointegrate plasmids carrying carbapenemase genes, like KPC-2, can spread antibiotic resistance. These plasmids, especially pT18, confer a fitness advantage in bacteria exposed to low antibiotic levels.

Area of Science:

  • Molecular biology
  • Genetics
  • Microbiology

Background:

  • Carbapenemase-producing plasmids, particularly those encoding Klebsiella pneumoniae carbapenemase (KPC), are significant in antimicrobial resistance.
  • The evolutionary pathways and fitness implications of KPC-carrying plasmids remain incompletely understood.

Purpose of the Study:

  • To characterize the genome of two KPC-2 producing plasmids, pT18 and pT211, from Proteus mirabilis.
  • To investigate the impact of these plasmids on host bacterial fitness in the presence and absence of antibiotics.

Main Methods:

  • Whole genome sequencing was employed to analyze the genetic makeup of plasmids pT18 and pT211.
  • Plasmids were transferred into Escherichia coli DH5α to assess fitness costs and advantages.
  • Growth rates were measured in antibiotic-free media and media with sub-inhibitory concentrations of fosfomycin and amikacin.

Main Results:

  • Plasmid pT211 is an N-type plasmid containing blaKPC-2 and IS26.
  • Plasmid pT18 is a 59 kbp cointegrate plasmid formed by IS26-mediated integration of three distinct plasmids, including one carrying blaKPC-2.
  • While pT18 imposed a growth defect in antibiotic-free conditions, it conferred a fitness advantage in sub-inhibitory concentrations of fosfomycin and amikacin.

Conclusions:

  • Cointegrate plasmids play a crucial role in the dissemination of antibiotic resistance genes across bacterial species.
  • Sub-inhibitory antibiotic concentrations can promote the persistence of antibiotic resistance plasmids within bacterial populations.

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