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Updated: Nov 5, 2025

Site-specific Bacterial Chromosome Engineering: ΦC31 Integrase Mediated Cassette Exchange (IMCE)
Published on: March 16, 2012
Staphylococcus epidermidis Phages Transduce Antimicrobial Resistance Plasmids and Mobilize Chromosomal Islands
Lenka Fišarová1, Tibor Botka1, Xin Du2,3
1Department of Experimental Biology, Faculty of Science, Masaryk University, Brno, Czech Republic.
Abstract:
Staphylococcus epidermidis is a leading opportunistic pathogen causing nosocomial infections that is notable for its ability to form a biofilm and for its high rates of antibiotic resistance. It serves as a reservoir of multiple antimicrobial resistance genes that spread among the staphylococcal population by horizontal gene transfer such as transduction. While phage-mediated transduction is well studied in Staphylococcus aureus, S. epidermidis transducing phages have not been described in detail yet. Here, we report the characteristics of four phages, 27, 48, 456, and 459, previously used for S. epidermidis phage typing, and the newly isolated phage E72, from a clinical S. epidermidis strain. The phages, classified in the family Siphoviridae and genus Phietavirus, exhibited an S. epidermidis-specific host range, and together they infected 49% of the 35 strains tested. A whole-genome comparison revealed evolutionary relatedness to transducing S. aureus phietaviruses. In accordance with this, all the tested phages were capable of transduction with high frequencies up to 10-4 among S. epidermidis strains from different clonal complexes. Plasmids with sizes from 4 to 19 kb encoding resistance to streptomycin, tetracycline, and chloramphenicol were transferred. We provide here the first evidence of a phage-inducible chromosomal island transfer in S. epidermidis Similarly to S. aureus pathogenicity islands, the transfer was accompanied by phage capsid remodeling; however, the interfering protein encoded by the island was distinct. Our findings underline the role of S. epidermidis temperate phages in the evolution of S. epidermidis strains by horizontal gene transfer, which can also be utilized for S. epidermidis genetic studies.IMPORTANCE Multidrug-resistant strains of S. epidermidis emerge in both nosocomial and livestock environments as the most important pathogens among coagulase-negative staphylococcal species. The study of transduction by phages is essential to understanding how virulence and antimicrobial resistance genes spread in originally commensal bacterial populations. In this work, we provide a detailed description of transducing S. epidermidis phages. The high transduction frequencies of antimicrobial resistance plasmids and the first evidence of chromosomal island transfer emphasize the decisive role of S. epidermidis phages in attaining a higher pathogenic potential of host strains. To date, such importance has been attributed only to S. aureus phages, not to those of coagulase-negative staphylococci. This study also proved that the described transducing bacteriophages represent valuable genetic modification tools in S. epidermidis strains where other methods for gene transfer fail.
Insights
This study details the characteristics of five bacteriophages capable of transferring antibiotic resistance plasmids and chromosomal islands between Staphylococcus epidermidis strains. These findings highlight the role of phages in spreading antimicrobial resistance and offer new tools for genetic studies.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- Staphylococcus epidermidis is a major cause of hospital-acquired infections, known for biofilm formation and antibiotic resistance.
- Horizontal gene transfer, particularly transduction by bacteriophages, plays a key role in the spread of antimicrobial resistance genes among staphylococci.
- While phage transduction is well-studied in Staphylococcus aureus, detailed descriptions of transducing phages in S. epidermidis are lacking.
Purpose of the Study:
- To characterize previously identified and newly isolated bacteriophages for their ability to infect and transduce Staphylococcus epidermidis.
- To investigate the role of these phages in the horizontal transfer of antimicrobial resistance genes and mobile genetic elements.
- To assess the potential of these transducing phages as tools for genetic manipulation of S. epidermidis.
Main Methods:
- Isolation and characterization of five bacteriophages (27, 48, 456, 459, and E72) with an S. epidermidis-specific host range.
- Whole-genome sequencing and comparative analysis of the isolated phages.
- Transduction experiments to quantify gene transfer frequencies of plasmids and chromosomal islands.
Main Results:
- The five characterized phages belong to the Siphoviridae family and PhiEtavirus genus, showing evolutionary relatedness to transducing S. aureus phietaviruses.
- High-frequency transduction (up to 10^-4) of antibiotic resistance plasmids (streptomycin, tetracycline, chloramphenicol) was observed among diverse S. epidermidis strains.
- The study provides the first evidence of phage-inducible chromosomal island transfer in S. epidermidis, accompanied by phage capsid remodeling.
Conclusions:
- Temperate bacteriophages of S. epidermidis are significant drivers of horizontal gene transfer, contributing to the evolution of antibiotic resistance and pathogenicity.
- These transducing phages are crucial for understanding the spread of virulence and resistance in S. epidermidis populations.
- The described bacteriophages represent valuable tools for genetic modification of S. epidermidis, especially when traditional gene transfer methods are ineffective.
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