Plasmid pUM505 encodes a Toxin-Antitoxin system conferring plasmid stability and increased Pseudomonas aeruginosa
K C Hernández-Ramírez1, V M Chávez-Jacobo1, M I Valle-Maldonado1
1Instituto de Investigaciones Químico-Biológicas, Universidad Michoacana, Morelia, Michoacán, Mexico.
Abstract:
Pseudomonas aeruginosa plasmid pUM505 possesses a pathogenicity island that contains the pumAB genes that encode products with sequence similarity to Toxin-Antitoxin (TA) modules. RT-PCR assays on the overlapping regions of the pumAB genes generated a bicistronic messenger RNA, suggesting that they form an operon. When the pumAB genes were cloned into the pJET vector, recombinant plasmid pJET-pumAB was maintained under nonselective conditions in Escherichia coli cells after six daily subcultures, whereas pJET without pumAB genes was lost. These data indicate that pumAB genes confer post-segregational plasmid stability. In addition, overexpression of the PumA protein in the E. coli BL21 strain resulted in a significant growth inhibition, while BL21 co-expressing the PumA and PumB proteins did not show growth inhibition. These results indicate that pumAB genes encode a TA system where the PumB protein counters the toxic effects of the PumA toxin. Furthermore, P. aeruginosa PAO1 transformants with the pumA gene increased Caenorhabditis elegans and mouse mortality rate and improved mouse organ invasion, effects neutralized by the PumB protein. Moreover, purified recombinant His-PumA protein decreased the viability of C. elegans, indicating that the PumA protein could acts as a toxin. These results indicate that PumA has the potential to promoter the PAO1 virulence against C. elegans and mice when is expressed in absence of PumB. This is the first description, to our knowledge, of a plasmid-encoded TA system that confers plasmid stability and encoded a toxin with the possible ability to increase the P. aeruginosa virulence.
Insights
This study identifies a novel plasmid-encoded toxin-antitoxin (TA) system in Pseudomonas aeruginosa. The pumAB genes provide plasmid stability and a toxin (PumA) that enhances bacterial virulence, counteracted by its antitoxin (PumB).
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Pseudomonas aeruginosa is an opportunistic pathogen.
- Plasmids contribute to bacterial virulence and antibiotic resistance.
- Toxin-antitoxin (TA) systems are known to provide plasmid stability.
Purpose of the Study:
- To characterize the function of the pumAB genes found on the P. aeruginosa plasmid pUM505.
- To determine if pumAB constitutes a novel toxin-antitoxin system.
- To investigate the role of the pumAB system in P. aeruginosa virulence.
Main Methods:
- RT-PCR to analyze pumAB gene expression.
- Cloning of pumAB genes into E. coli to assess plasmid stability.
- Protein overexpression in E. coli to study toxin-antitoxin interactions.
- Infection assays using Caenorhabditis elegans and mice to evaluate virulence.
Main Results:
- The pumAB genes form an operon and confer post-segregational stability to plasmids in E. coli.
- PumA acts as a toxin causing growth inhibition, while PumB neutralizes this effect, indicating a TA system.
- PumA expression increases P. aeruginosa virulence in C. elegans and mouse models, an effect abolished by PumB.
- Purified PumA protein reduces C. elegans viability, confirming its toxic activity.
Conclusions:
- The pumAB genes encode a novel plasmid-encoded toxin-antitoxin system.
- This TA system contributes to plasmid stability and potentially enhances P. aeruginosa virulence.
- PumA is a toxin that increases virulence, and PumB acts as its specific antitoxin.
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