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Secretome analysis of Vibrio cholerae type VI secretion system reveals a new effector-immunity pair
Emrah Altindis1, Tao Dong2, Christy Catalano2
1Department of Microbiology and Immunobiology, Harvard Medical School, Boston, Massachusetts, USA.
Unlabelled:
The type VI secretion system (T6SS) is a dynamic macromolecular organelle that many Gram-negative bacteria use to inhibit or kill other prokaryotic or eukaryotic cells. The toxic effectors of T6SS are delivered to the prey cells in a contact-dependent manner. In Vibrio cholerae, the etiologic agent of cholera, T6SS is active during intestinal infection. Here, we describe the use of comparative proteomics coupled with bioinformatics to identify a new T6SS effector-immunity pair. This analysis was able to identify all previously identified secreted substrates of T6SS except PAAR (proline, alanine, alanine, arginine) motif-containing proteins. Additionally, this approach led to the identification of a new secreted protein encoded by VCA0285 (TseH) that carries a predicted hydrolase domain. We confirmed that TseH is toxic when expressed in the periplasm of Escherichia coli and V. cholerae cells. The toxicity observed in V. cholerae was suppressed by coexpression of the protein encoded by VCA0286 (TsiH), indicating that this protein is the cognate immunity protein of TseH. Furthermore, exogenous addition of purified recombinant TseH to permeabilized E. coli cells caused cell lysis. Bioinformatics analysis of the TseH protein sequence suggest that it is a member of a new family of cell wall-degrading enzymes that include proteins belonging to the YD repeat and Rhs superfamilies and that orthologs of TseH are likely expressed by species belonging to phyla as diverse as Bacteroidetes and Proteobacteria.
Importance:
The Gram-negative bacterium Vibrio cholerae causes cholera, a severe and often lethal diarrheal disease. The 2010-2012 epidemic in Haiti and new explosive epidemics in Africa show that cholera remains a significant global public health problem. The type VI secretion system (T6SS) is a dynamic organelle expressed by many Gram-negative bacteria, which use it to inject toxic effector proteins into eukaryotic and bacterial prey cells. In this study, we applied a comparative proteomics approach to the V. cholerae T6SS secretome to identify new substrates of this secretion apparatus. We show that the product of the gene VCA0285 is likely a new peptidoglycan hydrolase that is secreted by T6SS and that its cognate immunity protein is encoded by the gene that is immediately downstream (VCA0286). Bioinformatics analysis shows that VCA0285 carries four conserved motifs that likely define a large family of hydrolases with antibacterial activity. The identification of new antibacterial T6SS effectors provides useful information for the development of novel antibiotics and therapeutic agents.
Insights
Researchers discovered a new toxic protein, TseH, secreted by the type VI secretion system (T6SS) in Vibrio cholerae. This T6SS effector, a cell wall-degrading enzyme, is neutralized by its immunity protein, TsiH, offering potential for new antibiotic development.
Area of Science:
- Microbiology and Molecular Biology
- Bacterial Pathogenesis
- Protein Secretion Systems
Background:
- The type VI secretion system (T6SS) is a crucial virulence factor in many Gram-negative bacteria, enabling inter-bacterial competition and host cell manipulation.
- Vibrio cholerae, the causative agent of cholera, utilizes T6SS during intestinal infections, highlighting its role in disease pathogenesis.
- Identifying novel T6SS effectors and their cognate immunity proteins is essential for understanding bacterial interactions and developing targeted therapeutics.
Purpose of the Study:
- To identify novel effector-immunity protein pairs secreted by the Vibrio cholerae type VI secretion system (T6SS) using comparative proteomics and bioinformatics.
- To characterize the function and potential antibacterial activity of newly identified T6SS substrates.
- To explore the evolutionary conservation and potential applications of these findings in antibiotic development.
Main Methods:
- Comparative proteomics was employed to analyze the T6SS secretome of Vibrio cholerae.
- Bioinformatics tools were used to predict protein function, identify conserved motifs, and analyze protein families.
- Functional assays, including periplasmic expression in E. coli and V. cholerae, and assessment of toxicity and cell lysis, were performed.
Main Results:
- A new T6SS effector, TseH (encoded by VCA0285), with a predicted hydrolase domain, was identified.
- TseH demonstrated toxicity when expressed in the bacterial periplasm, and its cognate immunity protein, TsiH (encoded by VCA0286), was identified.
- TseH was confirmed to cause cell lysis in permeabilized E. coli and is likely a novel cell wall-degrading enzyme with homologs across diverse bacterial phyla.
Conclusions:
- The study successfully identified a novel T6SS effector-immunity pair (TseH-TsiH) in Vibrio cholerae, expanding the known repertoire of T6SS substrates.
- TseH represents a new family of bacterial hydrolases with potent antibacterial activity, suggesting a role in inter-bacterial competition.
- The discovery of TseH and its mechanism of action provides valuable insights for the development of novel antibacterial agents and therapeutic strategies.
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