Comprehensive molecular, genomic and phenotypic analysis of a major clone of Enterococcus faecalis MLST ST40

Melanie Zischka1,2, Carsten T Künne3,4, Jochen Blom5,6

  • 1Division of Nosocomial Pathogens and Antibiotic Resistances, Department of Infectious Diseases, Robert Koch Institute, Wernigerode Branch, Burgstr. 37, D-38855, Wernigerode, Germany. melanie.zischka@googlemail.com.

BMC Genomics
|April 19, 2015
PubMed
Abstract

Insights

The study reveals that the common Enterococcus faecalis ST40 strain can adapt to different environments, with some strains showing increased pathogenic potential and adherence. This highlights the microevolution and niche adaptation of this versatile bacterium.

Area of Science:

  • Microbiology
  • Genomics
  • Bacterial Pathogenesis

Background:

  • Enterococcus faecalis is a common gut bacterium and a significant nosocomial pathogen.
  • The ST40 multi-locus sequence typing (MLST) type is the most frequent and globally distributed strain of E. faecalis.
  • Understanding the microevolution and niche adaptation of this clonal type is crucial due to its adaptability.

Purpose of the Study:

  • To analyze the microevolution and niche adaptation of the globally distributed Enterococcus faecalis MLST ST40 clonal type.
  • To compare molecular, genomic, and phenotypic characteristics of ST40 isolates from various sources and conditions.

Main Methods:

  • Whole genome sequencing (WGS) of 42 ST40 isolates, including generation of a closed reference genome.
  • Comparative genomic analyses, phylogenetic analysis, and assessment of mobile genetic elements (MGEs).
  • Phenotypic assays including carbon source utilization, biofilm formation, and resistance profiling; cell-biological and animal experiments.

Main Results:

  • High similarity in core genomes and carbon utilization patterns among ST40 isolates.
  • Genomic diversity driven by a pathogenicity island, a novel genomic island, and isolate-specific plasmids/phages.
  • One animal-origin isolate (D32) demonstrated greater adherence to human cell lines and increased pathogenic potential in vivo compared to a clinical isolate.

Conclusions:

  • Molecular and genomic analyses provide insights into the adaptability of E. faecalis ST40.
  • This common commensal bacterium can transform into a conditional pathogen through microevolutionary processes.
  • Genomic islands and MGEs contribute significantly to the diversity and adaptation of E. faecalis ST40.

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