Conjugative plasmid transfer is limited by prophages but can be overcome by high conjugation rates

Claudia Igler1, Lukas Schwyter1, Daniel Gehrig1

  • 1Department of Environmental Systems Science, Institute of Integrative Biology, ETH Zürich, Zurich, Switzerland.

Insights

Prophages, viruses in bacteria, can limit the spread of antibiotic resistance plasmids. Their impact on plasmid transfer depends on environment and bacterial genetics, but high plasmid transfer rates can overcome this.

Area of Science:

  • Microbiology
  • Genetics
  • Virology

Background:

  • Antibiotic resistance spread by plasmids is a major health threat.
  • Plasmid conjugation dynamics are crucial for understanding resistance spread.
  • The role of prophages (integrated viruses) in plasmid transfer remains understudied.

Purpose of the Study:

  • To investigate the impact of prophages on the spread of conjugative plasmids.
  • To understand how environmental conditions and bacterial genetics influence this interaction.

Main Methods:

  • Combined experimental studies using Escherichia coli, prophage λ, and plasmid RP4.
  • Developed and utilized an empirically parameterized mathematical model.
  • Varied phage and plasmid infection parameters within realistic ranges.

Main Results:

  • Prophages substantially limit conjugative plasmid spread, with effects varying by environment and bacterial genetics.
  • The model accurately predicted cells acquiring either prophages or plasmids individually.
  • Complex interactions between plasmids and prophages were needed to model cells acquiring both.
  • High plasmid conjugation rates can overcome the inhibitory effects of prophages.

Conclusions:

  • Prophages introduce an additional death rate for plasmid carriers, influenced by environment, phage, and plasmid.
  • Understanding these complex interactions is vital for predicting and controlling antibiotic resistance spread.

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