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High-Resolution Comparison of Bacterial Conjugation Frequencies
Published on: January 10, 2019
The Specificity of ParR Binding Determines the Incompatibility of Conjugative Plasmids in Clostridium perfringens
Thomas D Watts1, Daouda A K Traore2,3, Sarah C Atkinson2
1Infection Program, Monash Biomedicine Discovery Institute and Department of Microbiology, Monash Universitygrid.1002.3, Victoria, Australia.
Abstract:
Plasmids that encode the same replication machinery are generally unable to coexist in the same bacterial cell. However, Clostridium perfringens strains often carry multiple conjugative toxin or antibiotic resistance plasmids that are closely related and encode similar Rep proteins. In many bacteria, plasmid partitioning upon cell division involves a ParMRC system; in C. perfringens plasmids, there are approximately 10 different ParMRC families, with significant differences in amino acid sequences between each ParM family (15% to 54% identity). Since plasmids carrying genes belonging to the same ParMRC family are not observed in the same strain, these families appear to represent the basis for plasmid compatibility in C. perfringens. To understand this process, we examined the key recognition steps between ParR DNA-binding proteins and their parC binding sites. The ParR proteins bound to sequences within a parC site from the same ParMRC family but could not interact with a parC site from a different ParMRC family. These data provide evidence that compatibility of the conjugative toxin plasmids of C. perfringens is mediated by their parMRC-like partitioning systems. This process provides a selective advantage by enabling the host bacterium to maintain separate plasmids that encode toxins that are specific for different host targets. IMPORTANCE Toxins produced by the Gram-positive pathogen Clostridium perfringens are primarily encoded by genes found on different conjugative plasmids. These plasmids encode highly similar replication proteins and therefore should be incompatible, but they are often found to coexist within the same isolate. In this study, we showed that a series of phylogenetically related ParMRC plasmid partitioning systems, structures that are normally responsible for ensuring that plasmids segregate correctly at cell division, dictate which toxin plasmid combinations can coexist within the same bacterial cell. We dissected the recognition steps between the DNA-binding ParMRC component, ParR, and the plasmid-derived centromere, parC. Our data suggested a mechanism by which plasmids encoding ParMRC systems from the same family are incompatible, whereas plasmids encoding ParMRC systems from distinct families are compatible. This work provides insight into how these cells can maintain multiple highly similar toxin plasmids, which is a critical first step in understanding how to limit the disease-causing potential of C. perfringens.
Insights
Clostridium perfringens toxin plasmids, despite similar replication machinery, coexist due to distinct plasmid partitioning systems. These ParMRC systems dictate compatibility, allowing bacteria to maintain multiple plasmids for enhanced survival.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Clostridium perfringens frequently harbors multiple conjugative plasmids encoding toxins or antibiotic resistance.
- These plasmids often possess similar replication proteins, suggesting they should be incompatible.
- Plasmid coexistence in C. perfringens is often mediated by distinct ParMRC partitioning systems.
Purpose of the Study:
- To investigate the mechanism of plasmid compatibility in Clostridium perfringens.
- To determine how multiple, closely related toxin plasmids coexist within the same bacterial cell.
- To elucidate the role of ParMRC partitioning systems in dictating plasmid compatibility.
Main Methods:
- Analysis of ParMRC families and their sequence identity.
- Examination of DNA-binding interactions between ParR proteins and parC sites.
- Comparative analysis of ParR-parC interactions across different ParMRC families.
Main Results:
- Ten distinct ParMRC families were identified in C. perfringens plasmids, with significant sequence divergence.
- ParR proteins specifically bound to parC sites within the same ParMRC family.
- No cross-interaction was observed between ParR and parC from different ParMRC families.
Conclusions:
- Plasmid compatibility in C. perfringens is mediated by their diverse parMRC-like partitioning systems.
- Distinct ParMRC families ensure that plasmids encoding similar replication machinery can coexist.
- This mechanism allows C. perfringens to maintain multiple toxin plasmids, conferring a selective advantage.
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