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.

Mbio
|December 21, 2017
PubMed

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.