Related Experiment Video
Updated: Jan 20, 2026

A 1.5 Hour Procedure for Identification of Enterococcus Species Directly from Blood Cultures
Published on: February 10, 2011
Identification of Novel Bacteriophages with Therapeutic Potential That Target Enterococcus faecalis
M Al-Zubidi1, M Widziolek1,2, E K Court1
1Integrated BioSciences, School of Clinical Dentistry, University of Sheffield, Sheffield, United Kingdom.
Abstract:
The Gram-positive opportunistic pathogen Enterococcus faecalis is frequently responsible for nosocomial infections in humans and represents one of the most common bacteria isolated from recalcitrant endodontic (root canal) infections. E. faecalis is intrinsically resistant to several antibiotics routinely used in clinical settings (such as cephalosporins and aminoglycosides) and can acquire resistance to vancomycin (vancomycin-resistant enterococci). The resistance of E. faecalis to several classes of antibiotics and its capacity to form biofilms cause serious therapeutic problems. Here, we report the isolation of several bacteriophages that target E. faecalis strains isolated from the oral cavity of patients suffering root canal infections. All phages isolated were Siphoviridae with similar tail lengths (200 to 250 nm) and icosahedral heads. The genome sequences of three isolated phages were highly conserved with the exception of predicted tail protein genes that diverge in sequence, potentially reflecting the host range. The properties of the phage with the broadest host range (SHEF2) were further characterized. We show that this phage requires interaction with components of the major and variant region enterococcal polysaccharide antigen to engage in lytic infection. Finally, we explored the therapeutic potential of this phage and show that it can eradicate E. faecalis biofilms formed in vitro on a standard polystyrene surface but also on a cross-sectional tooth slice model of endodontic infection. We also show that SHEF2 cleared a lethal infection of zebrafish when applied in the circulation. We therefore propose that the phage described here could be used to treat a broad range of antibiotic-resistant E. faecalis infections.
Insights
Researchers isolated bacteriophages effective against antibiotic-resistant Enterococcus faecalis, a common cause of root canal infections. These phages show promise for treating serious bacterial infections, including those in dental settings and systemic infections in animal models.
Area of Science:
- Microbiology
- Virology
- Infectious Diseases
Background:
- Enterococcus faecalis is a Gram-positive bacterium causing nosocomial and endodontic infections.
- E. faecalis exhibits intrinsic and acquired antibiotic resistance, including to vancomycin (VRE).
- Bacterial biofilms and antibiotic resistance in E. faecalis present significant therapeutic challenges.
Purpose of the Study:
- To isolate and characterize bacteriophages targeting Enterococcus faecalis.
- To investigate the therapeutic potential of bacteriophages against E. faecalis infections and biofilms.
- To evaluate phage efficacy in preclinical models.
Main Methods:
- Isolation and characterization of bacteriophages from oral cavity samples.
- Genomic sequencing of isolated phages.
- Analysis of phage host range and infection mechanisms.
- In vitro biofilm eradication assays.
- In vivo efficacy testing in a zebrafish infection model.
Main Results:
- Several Siphoviridae bacteriophages targeting E. faecalis were isolated.
- Phage genome analysis revealed conserved regions with divergence in tail protein genes.
- The broad-host-range phage SHEF2 requires enterococcal polysaccharide antigen for lytic infection.
- SHEF2 eradicated E. faecalis biofilms in vitro and cleared lethal infections in zebrafish.
Conclusions:
- Bacteriophages, particularly SHEF2, demonstrate significant potential for treating antibiotic-resistant E. faecalis infections.
- Phage therapy offers a promising alternative to antibiotics for recalcitrant infections like those in endodontics.
- Further development of phage therapy could address the growing threat of multidrug-resistant bacteria.
Related Concept Videos
Lysogenic Cycle of Bacteriophages
Lytic Cycle of Bacteriophages
DNA Bacteriophages
Therapeutic Index
Potential Energy
Chemical bonds that form attractive forces between atoms also contain potential energy, called chemical energy. When a chemical reaction...
Standard Electrode Potentials

