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Published on: May 30, 2017
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.
Abstract:
The protein MakA was discovered as a motility-associated secreted toxin from Vibrio cholerae Here, we show that MakA is part of a gene cluster encoding four additional proteins: MakB, MakC, MakD, and MakE. MakA, MakB, and MakE were readily detected in culture supernatants of wild-type V. cholerae, whereas secretion was very much reduced from a flagellum-deficient mutant. Crystal structures of MakA, MakB, and MakE revealed a structural relationship to a superfamily of bacterial pore-forming toxins. Expression of MakA/B/E in Escherichia coli resulted in toxicity toward Caenorhabditis elegans used as a predatory model organism. None of these Mak proteins alone or in pairwise combinations were cytolytic, but an equimolar mixture of MakA, MakB, and MakE acted as a tripartite cytolytic toxin in vitro, causing lysis of erythrocytes and cytotoxicity on cultured human colon carcinoma cells. Formation of oligomeric complexes on liposomes was observed by electron microscopy. Oligomer interaction with membranes was initiated by MakA membrane binding followed by MakB and MakE joining the assembly of a pore structure. A predicted membrane insertion domain of MakA was shown by site-directed mutagenesis to be essential for toxicity toward C. elegans Bioinformatic analyses revealed that the makCDBAE gene cluster is present as a genomic island in the vast majority of sequenced genomes of V. cholerae and the fish pathogen Vibrio anguillarum We suggest that the hitherto-unrecognized cytolytic MakA/B/E toxin can contribute to Vibrionaceae fitness and virulence potential in different host environments and organisms.
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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