Related Experiment Video
Updated: Dec 20, 2025

Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
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.
Abstract:
The incidence and transmission of Klebsiella pneumoniae carbapenemase (KPC) producing plasmids have been well documented. However, the evolutionary dynamics of KPC plasmids and their fitness costs are not well characterized. Here, two carbapenemase-producing plasmids from Proteus mirabilis, pT18 and pT211 (both carrying bla KPC-2), were characterized through whole genome sequencing. pT211 is a 24.2 kbp N-type plasmid that contains bla KPC-2 and a single copy of the IS6-family insertion sequence IS26. pT18 is a 59 kbp cointegrate plasmid comprised of sequences derived from three different plasmids: a close relative of pT211 (containing bla KPC-2), an FII-33 plasmid (bla TEM-1B, bla CTX-M-65, rmtB and fosA3) and a rolling-circle plasmid. The segments of pT18 derived from each of the different plasmids are separated by copies of IS26, and sequence analysis indicated that pT18 was likely generated by both conservative and replicative IS26-mediated cointegrate formation. pT18 and pT211 were transferred into Escherichia coli DH5α separately to assess the impact of plasmids on host fitness. Only DH5α harbouring pT18 grew slower than the wild type in antibiotic-free media. However, in sub-inhibitory concentrations of fosfomycin and amikacin, cells containing pT18 grew faster than the wild type, and the minimum concentrations of fosfomycin and amikacin required to observe an advantage for plasmid-carrying cells were 1/3 and 1/20 the DH5α MIC, respectively. This study highlights the importance of the role of cointegrate plasmids in the dissemination of antibiotic resistance genes between pathogenic bacterial species, and highlights the importance of sub-inhibitory concentrations of antibiotics to the persistence of such plasmids.
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.
Related Concept Videos
Mechanism of Conjugation
Antibiotic Selection
Plasmids
Development of Antibiotic Resistance
Coordination of Gene Expression Processes in Bacteria
Conjugation

