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A Metabolite of Pseudomonas Triggers Prophage-Selective Lysogenic to Lytic Conversion in Staphylococcus aureus
Magdalena Jancheva1, Thomas Böttcher1,2
1Department of Chemistry, Konstanz Research School Chemical Biology, Zukunftskolleg, University of Konstanz, 78457 Konstanz, Germany.
Abstract:
Bacteriophages have major impact on their microbial hosts and shape entire microbial communities. The majority of these phages are latent and reside as prophages integrated in the genomes of their microbial hosts. A variety of intricate regulatory systems determine the switch from a lysogenic to lytic life style, but so far strategies are lacking to selectively control prophage induction by small molecules. Here we show that Pseudomonas aeruginosa deploys a trigger factor to hijack the lysogenic to lytic switch of a polylysogenic Staphylococcus aureus strain causing the selective production of only one of its prophages. Fractionating extracts of P. aeruginosa identified the phenazine pyocyanin as a highly potent prophage inducer of S. aureus that, in contrast to mitomycin C, displayed prophage selectivity. Mutagenesis and biochemical investigations confirm the existence of a noncanonical mechanism beyond SOS-response that is controlled by the intracellular oxidation level and is prophage-selective. Our results demonstrate that human pathogens can produce metabolites triggering lysogenic to lytic conversion in a prophage-selective manner. We anticipate our discovery to be the starting point of unveiling metabolite-mediated microbe-prophage interactions and laying the foundations for a selective small molecule controlled manipulation of prophage activity. These could be for example applied to control microbial communities by their built-in destruction mechanism in a novel form of phage therapy or for the construction of small molecule-inducible switches in synthetic biology.
Insights
Pseudomonas aeruginosa uses pyocyanin to selectively induce prophage in Staphylococcus aureus. This metabolite triggers a novel, oxidation-controlled switch, offering new avenues for phage therapy and synthetic biology applications.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Bacteriophages significantly influence microbial communities, with most existing as latent prophages within host genomes.
- Controlling the switch from lysogenic to lytic states is crucial but lacks selective small-molecule strategies.
- Understanding prophage induction mechanisms is key for manipulating microbial populations.
Purpose of the Study:
- To investigate metabolite-mediated control of prophage induction.
- To identify specific molecules from Pseudomonas aeruginosa that can trigger prophage activity in Staphylococcus aureus.
- To elucidate the mechanism behind selective prophage induction.
Main Methods:
- Fractionation of Pseudomonas aeruginosa extracts to isolate active compounds.
- Biochemical assays and mutagenesis to confirm pyocyanin's role and mechanism.
- Analysis of the lysogenic-to-lytic switch in Staphylococcus aureus.
Main Results:
- Pyocyanin, a phenazine from P. aeruginosa, was identified as a potent inducer of prophage in S. aureus.
- Pyocyanin demonstrated prophage selectivity, unlike non-selective inducers like mitomycin C.
- A novel, non-canonical induction mechanism, independent of SOS response and controlled by intracellular oxidation, was revealed.
Conclusions:
- Human pathogens can produce metabolites that selectively induce prophage activity.
- This discovery opens possibilities for metabolite-mediated microbe-prophage interactions.
- Potential applications include novel phage therapy and developing small molecule-inducible genetic switches.
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