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Investigating the mobilome in clinically important lineages of Enterococcus faecium and Enterococcus faecalis
Theresa Mikalsen1, Torunn Pedersen2, Rob Willems3
1Research group for Host-microbe Interactions, Department of Medical Biology, Faculty of Health Science, UiT - The Arctic University of Norway, Tromsø, Norway. Theresa.Mikalsen@uit.no.
Background:
The success of Enterococcus faecium and E. faecalis evolving as multi-resistant nosocomial pathogens is associated with their ability to acquire and share adaptive traits, including antimicrobial resistance genes encoded by mobile genetic elements (MGEs). Here, we investigate this mobilome in successful hospital associated genetic lineages, E. faecium sequence type (ST)17 (n=10) and ST78 (n=10), E. faecalis ST6 (n=10) and ST40 (n=10) by DNA microarray analyses.
Results:
The hybridization patterns of 272 representative targets including plasmid backbones (n=85), transposable elements (n=85), resistance determinants (n=67), prophages (n=29) and clustered regularly interspaced short palindromic repeats (CRISPR)-cas sequences (n=6) separated the strains according to species, and for E. faecalis also according to STs. RCR-, Rep_3-, RepA_N- and Inc18-family plasmids were highly prevalent and with the exception of Rep_3, evenly distributed between the species. There was a considerable difference in the replicon profile, with rep 17/pRUM , rep 2/pRE25 , rep 14/EFNP1 and rep 20/pLG1 dominating in E. faecium and rep 9/pCF10 , rep 2/pRE25 and rep 7 in E. faecalis strains. We observed an overall high correlation between the presence and absence of genes coding for resistance towards antibiotics, metals, biocides and their corresponding MGEs as well as their phenotypic antimicrobial susceptibility pattern. Although most IS families were represented in both E. faecalis and E. faecium, specific IS elements within these families were distributed in only one species. The prevalence of IS256-, IS3-, ISL3-, IS200/IS605-, IS110-, IS982- and IS4-transposases was significantly higher in E. faecium than E. faecalis, and that of IS110-, IS982- and IS1182-transposases in E. faecalis ST6 compared to ST40. Notably, the transposases of IS981, ISEfm1 and IS1678 that have only been reported in few enterococcal isolates were well represented in the E. faecium strains. E. faecalis ST40 strains harboured possible functional CRISPR-Cas systems, and still resistance and prophage sequences were generally well represented.
Conclusions:
The targeted MGEs were highly prevalent among the selected STs, underlining their potential importance in the evolution of hospital-adapted lineages of enterococci. Although the propensity of inter-species horizontal gene transfer (HGT) must be emphasized, the considerable species-specificity of these MGEs indicates a separate vertical evolution of MGEs within each species, and for E. faecalis within each ST.
Insights
Mobile genetic elements (MGEs) are crucial for multi-resistant enterococci. This study reveals species-specific MGE evolution in hospital-adapted Enterococcus faecium and E. faecalis lineages, impacting antimicrobial resistance.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- Enterococcus faecium and E. faecalis are significant nosocomial pathogens due to their multi-drug resistance.
- Mobile genetic elements (MGEs) facilitate the acquisition and spread of antimicrobial resistance genes in these bacteria.
- Hospital-adapted genetic lineages of E. faecium (ST17, ST78) and E. faecalis (ST6, ST40) were selected for study.
Purpose of the Study:
- To investigate the mobilome, including plasmids and transposons, in successful hospital-associated genetic lineages of E. faecium and E. faecalis.
- To understand the role of MGEs in the evolution and adaptation of these multi-resistant enterococci.
Main Methods:
- DNA microarray analysis was employed to examine MGEs in selected strains.
- The study targeted plasmid backbones, transposable elements, resistance determinants, prophages, and CRISPR-Cas sequences.
- Phenotypic antimicrobial susceptibility testing was correlated with genotypic findings.
Main Results:
- MGEs, including plasmids (RCR-, Rep_3-, RepA_N-, Inc18-families) and transposable elements, were highly prevalent and showed species-specific distribution.
- A strong correlation was observed between the presence of MGEs and genes conferring resistance to antibiotics, metals, and biocides, aligning with phenotypic susceptibility.
- Specific transposable elements (IS256, IS3, ISL3, IS200/IS605, IS110, IS982, IS4) were significantly more common in E. faecium, while others showed differences between E. faecalis STs.
Conclusions:
- The studied MGEs are highly prevalent in hospital-adapted enterococcal lineages, underscoring their importance in pathogen evolution.
- While horizontal gene transfer occurs, the species-specific nature of MGEs suggests independent vertical evolution within E. faecium and E. faecalis, and even within E. faecalis STs.
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