A tripartite cytolytic toxin formed by Vibrio cholerae proteins with flagellum-facilitated secretion

Aftab Nadeem1,2,3, Raghavendra Nagampalli3,4, Eric Toh1,2,3

  • 1Department of Molecular Biology, Umeå University, Umeå SE-90187, Sweden.

Insights

The MakA/B/E toxin from Vibrio cholerae forms pores in cell membranes, causing cell lysis. This newly discovered tripartite toxin is crucial for bacterial virulence and fitness in various environments.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Structural Biology

Background:

  • The protein MakA was initially identified as a motility-associated secreted toxin in *Vibrio cholerae*.
  • MakA is part of a larger gene cluster, makCDBAE, encoding additional proteins.

Purpose of the Study:

  • To characterize the MakA/B/E protein complex and its role in *Vibrio cholerae* virulence.
  • To elucidate the structure and mechanism of action of the MakA/B/E tripartite toxin.

Main Methods:

  • Crystal structure determination of MakA, MakB, and MakE.
  • Expression of MakA/B/E in *Escherichia coli* and toxicity assays in *Caenorhabditis elegans*.
  • In vitro cytolysis assays using erythrocytes and human colon carcinoma cells.
  • Electron microscopy to visualize oligomeric complex formation on liposomes.
  • Site-directed mutagenesis to identify essential functional domains.

Main Results:

  • MakA, MakB, and MakE are secreted by *V. cholerae*, with secretion dependent on flagella.
  • Structural analysis revealed MakA, MakB, and MakE belong to the pore-forming toxin superfamily.
  • An equimolar mixture of MakA, MakB, and MakE demonstrated tripartite cytolytic activity in vitro.
  • The MakA/B/E complex forms pores in membranes, initiating with MakA binding.
  • The makCDBAE gene cluster is prevalent in *V. cholerae* and *Vibrio anguillarum* genomes.

Conclusions:

  • The MakA/B/E complex represents a novel tripartite pore-forming toxin.
  • This toxin contributes to the fitness and virulence of Vibrionaceae species.
  • MakA/B/E plays a significant role in bacterial pathogenesis across different hosts.

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