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Monitoring the Assembly of a Secreted Bacterial Virulence Factor Using Site-specific Crosslinking
Published on: December 17, 2013
Domain exchange at the 3' end of the gene encoding the fratricide meningococcal two-partner secretion protein A
Jesús Arenas1, Kim Schipper, Peter van Ulsen
1Department of Molecular Microbiology, Utrecht University, Padualaan 8, Utrecht 3584 CH, The Netherlands. J.A.arenasbusto@uu.nl.
Background:
Two-partner secretion systems in Gram-negative bacteria consist of an outer membrane protein TpsB that mediates the secretion of a cognate TpsA protein into the extracellular milieu. TpsA proteins have diverse, often virulence-related functions, and some of them inhibit the growth of related bacteria. In Neisseria meningitidis, several functions have been attributed to the TpsA proteins. Downstream of the tpsB and tpsA genes, several shorter tpsA-related gene cassettes, called tpsC, are located interspersed with intervening open-reading frames (IORFs). It has been suggested that the tpsC cassettes may recombine with the tpsA gene as a mechanism of antigenic variation. Here, we investigated (i) whether TpsA of N. meningitidis also has growth-inhibitory properties, (ii) whether tpsC cassettes recombine with the tpsA gene, and (iii) what the consequences of such recombination events might be.
Results:
We demonstrate that meningococcal TpsA has growth-inhibitory properties and that the IORF located immediately downstream of tpsA confers immunity to the producing strain. Although bioinformatics analysis suggests that recombination between tpsC cassettes and tpsA occurs, detailed analysis of the tpsA gene in a large collection of disease isolates of three clonal complexes revealed that the frequency is very low and cannot be a mechanism of antigenic variation. However, recombination affected growth inhibition. In vitro experiments revealed that recombination can be mediated through acquirement of tpsC cassettes from the environment and it identified the regions involved in the recombination.
Conclusions:
Meningococcal TpsA has growth-inhibitory properties. Recombination between tpsA and tpsC cassettes occurs in vivo but is rare and has consequences for growth inhibition. A recombination model is proposed and we propose that the main goal of recombination is the collection of new IORFs for protection against a variety of TpsA proteins.
Insights
Neisseria meningitidis TpsA inhibits bacterial growth. Recombination between tpsA and tpsC cassettes occurs rarely, impacting growth inhibition and potentially collecting new genes for protection.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Two-partner secretion systems (TPS) involve TpsB and TpsA proteins in Gram-negative bacteria.
- TpsA proteins often have virulence functions and can inhibit growth of related bacteria.
- Neisseria meningitidis possesses TpsA proteins and associated tpsC cassettes, with proposed roles in antigenic variation.
Purpose of the Study:
- To investigate the growth-inhibitory properties of Neisseria meningitidis TpsA.
- To determine if tpsC cassettes recombine with the tpsA gene.
- To understand the consequences of tpsA-tpsC recombination events.
Main Methods:
- Demonstration of TpsA growth-inhibitory properties and IORF-mediated immunity.
- Bioinformatic analysis of tpsA gene recombination frequency in disease isolates.
- In vitro experiments to study tpsC cassette acquisition and recombination mechanisms.
Main Results:
- Meningococcal TpsA exhibits growth-inhibitory properties, with downstream IORFs conferring self-immunity.
- Recombination between tpsC cassettes and tpsA is rare in clinical isolates, not supporting antigenic variation.
- Recombination events were observed to influence growth inhibition, with environmental acquisition of tpsC cassettes identified as a mechanism.
Conclusions:
- Neisseria meningitidis TpsA possesses growth-inhibitory capabilities.
- In vivo recombination between tpsA and tpsC cassettes occurs but is infrequent, affecting growth inhibition.
- The primary role of recombination appears to be the acquisition of novel IORFs for protection against diverse TpsA proteins.
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