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Understanding the Impact of Temperate Bacteriophages on Their Lysogens Through Transcriptomics
Published on: January 5, 2024
Temperate phage-antibiotic synergy across antibiotic classes reveals new mechanism for preventing lysogeny
Amany M Al-Anany1, Rabia Fatima1, Gayatri Nair2
1Department of Biochemistry and Biomedical Sciences, McMaster University, Hamilton, Ontario, Canada.
Abstract:
A recent demonstration of synergy between a temperate phage and the antibiotic ciprofloxacin suggested a scalable approach to exploiting temperate phages in therapy, termed temperate phage-antibiotic synergy, which specifically interacted with the lysis-lysogeny decision. To determine whether this would hold true across antibiotics, we challenged Escherichia coli with the phage HK97 and a set of 13 antibiotics spanning seven classes. As expected, given the conserved induction pathway, we observed synergy with classes of drugs known to induce an SOS response: a sulfa drug, other quinolones, and mitomycin C. While some β-lactams exhibited synergy, this appeared to be traditional phage-antibiotic synergy, with no effect on the lysis-lysogeny decision. Curiously, we observed a potent synergy with antibiotics not known to induce the SOS response: protein synthesis inhibitors gentamicin, kanamycin, tetracycline, and azithromycin. The synergy results in an eightfold reduction in the effective minimum inhibitory concentration of gentamicin, complete eradication of the bacteria, and, when administered at sub-optimal doses, drastically decreases the frequency of lysogens emerging from the combined challenge. However, lysogens exhibit no increased sensitivity to the antibiotic; synergy was maintained in the absence of RecA; and the antibiotic reduced the initial frequency of lysogeny rather than selecting against formed lysogens. Our results confirm that SOS-inducing antibiotics broadly result in temperate-phage-specific synergy, but that other antibiotics can interact with temperate phages specifically and result in synergy. This is the first report of a means of chemically blocking entry into lysogeny, providing a new means for manipulating the key lysis-lysogeny decision.IMPORTANCEThe lysis-lysogeny decision is made by most bacterial viruses (bacteriophages, phages), determining whether to kill their host or go dormant within it. With over half of the bacteria containing phages waiting to wake, this is one of the most important behaviors in all of biology. These phages are also considered unusable for therapy because of this behavior. In this paper, we show that many antibiotics bias this behavior to "wake" the dormant phages, forcing them to kill their host, but some also prevent dormancy in the first place. These will be important tools to study this critical decision point and may enable the therapeutic use of these phages.
Insights
This study shows that some antibiotics can synergize with temperate phages (viruses that can lie dormant in bacteria) to kill bacteria. Certain antibiotics block phages from entering dormancy, offering new therapeutic strategies.
Area of Science:
- Microbiology
- Bacteriology
- Virology
Background:
- Temperate phages, bacterial viruses capable of dormancy (lysogeny), are crucial in microbial ecosystems.
- The lysis-lysogeny decision governs phage-host interaction, impacting bacterial population dynamics.
- Previous work suggested synergy between temperate phages and antibiotics, specifically ciprofloxacin, targeting this decision.
Purpose of the Study:
- To investigate temperate phage-antibiotic synergy across diverse antibiotic classes.
- To determine if antibiotics affect the phage lysis-lysogeny decision.
- To explore novel therapeutic strategies by manipulating phage dormancy.
Main Methods:
- Challenged Escherichia coli with temperate phage HK97 and 13 antibiotics from seven classes.
- Assessed synergy by measuring bacterial killing and lysogen formation.
- Investigated the role of the SOS response and RecA in observed synergy.
Main Results:
- SOS-inducing antibiotics (sulfa drugs, quinolones, mitomycin C) showed expected synergy.
- Protein synthesis inhibitors (gentamicin, kanamycin, tetracycline, azithromycin) exhibited potent, novel synergy.
- These antibiotics reduced gentamicin's minimum inhibitory concentration eightfold and blocked entry into lysogeny.
Conclusions:
- Antibiotics broadly induce temperate phage-antibiotic synergy, particularly those activating the SOS response.
- Novel synergy observed with protein synthesis inhibitors, specifically blocking phage lysogeny.
- This represents the first chemical method to block phage entry into dormancy, enabling new therapeutic approaches.
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