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Published on: May 8, 2020
Cyanide Production by Chromobacterium piscinae Shields It from Bdellovibrio bacteriovorus HD100 Predation
Wonsik Mun1, Heeun Kwon1, Hansol Im1
1School of Life Sciences, Ulsan National Institute of Science and Technology (UNIST), Eonyang-eup, Ulsan, South Korea.
Insights
Cyanide produced by Chromobacterium piscinae inhibits predation by Bdellovibrio bacteriovorus. Cyanide affects both attack-phase and intraperiplasmic predators, preventing bacterial predation.
Area of Science:
- Microbiology
- Bacterial Interactions
- Antimicrobial Mechanisms
Background:
- Bacterial predators like Bdellovibrio bacteriovorus prey on Gram-negative bacteria, with potential applications as antibiotics.
- Prey bacteria can produce secondary metabolites that inhibit predation, but the effects on B. bacteriovorus are not well understood.
- Understanding these inhibitory mechanisms is crucial for developing effective biocontrol strategies using bacterial predators.
Purpose of the Study:
- To investigate the mechanism by which Chromobacterium piscinae inhibits predation by Bdellovibrio bacteriovorus HD100.
- To identify the specific compound responsible for inhibiting predation.
- To elucidate the effects of this compound on different life cycle stages of B. bacteriovorus.
Main Methods:
- Comparative experiments using dilute nutrient broth (DNB) and HEPES media to assess predation inhibition.
- Analysis of cell-free supernatants to confirm the presence of an inhibitory effector.
- Quantification of cyanide concentrations and confirmation of its role using hydroxocobalamin.
Main Results:
- Predation of C. piscinae by B. bacteriovorus was inhibited in DNB but not in HEPES.
- Cyanide was identified as the inhibitory compound, produced at high concentrations (202 µM) in DNB and low concentrations (19 µM) in HEPES.
- Cyanide impaired motility of attack-phase B. bacteriovorus and halted development/lysis of intraperiplasmic predators.
Conclusions:
- Cyanogenesis is a mechanism employed by C. piscinae to prevent or reduce predation by B. bacteriovorus.
- Cyanide exhibits a dual role, affecting both extracellular and intracellular stages of B. bacteriovorus predation.
- These findings highlight the ecological role of bacterial secondary metabolites in mediating predator-prey interactions.
Abstract:
Predation of Chromobacterium piscinae by Bdellovibrio bacteriovorus HD100 was inhibited in dilute nutrient broth (DNB) but not in HEPES. Experiments showed that the effector responsible was present in the medium, as cell-free supernatants retained the ability to inhibit predation, and that the effector was not toxic to B. bacteriovorus Violacein, a bisindole secondary metabolite produced by C. piscinae, was not responsible. Further characterization of C. piscinae found that this species produces sufficient concentrations of cyanide (202 µM) when grown in DNB to inhibit the predatory activity of B. bacteriovorus, but that in HEPES, the cyanide concentrations were negligible (19 µM). The antagonistic role of cyanide was further confirmed, as the addition of hydroxocobalamin, which chelates cyanide, allowed predation to proceed. The activity of cyanide against B. bacteriovorus was found to be twofold, depending on the life cycle stage of this predator. For the attack-phase predatory cells, cyanide caused the cells to lose motility and tumble, while for intraperiplasmic predators, development and lysis of the prey cell were halted. These findings suggest that cyanogenesis in nature may be employed by the bacterial strains that produce this compound to prevent and reduce their predation by B. bacteriovorusIMPORTANCE Bacterial predators actively attack, kill, and enter the periplasm of susceptible Gram-negative bacteria, where they consume the prey cell components. To date, the activity of B. bacteriovorus HD100 has been demonstrated against more than 100 human pathogens. As such, this strain and others are being considered as potential alternatives or supplements to conventional antibiotics. However, the production of secondary metabolites by prey bacteria is known to mitigate, and even abolish, predation by bacterivorous nematodes and protists. With the exception of indole, which was shown to inhibit predation, the effects of bacterial secondary metabolites on B. bacteriovorus and its activities have not been considered. Consequently, we undertook this study to better understand the mechanisms that bacterial strains employ to inhibit predation by B. bacteriovorus HD100. We report here that cyanogenic bacterial strains can inhibit predation and show that cyanide affects both attack-phase predators and those within prey, i.e., in the bdelloplast.
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