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.

BMC Genomics
|April 18, 2015
PubMed
Abstract

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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