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Culture of Small Colony Variant of Pseudomonas aeruginosa and Quantitation of its Alginate
Published on: February 22, 2020
Pyrimidine Biosynthesis Regulates the Small-Colony Variant and Mucoidy in Pseudomonas aeruginosa through Sigma Factor
Roy Al Ahmar1, Brandon D Kirby1,2, Hongwei D Yu3,4,2
1Department of Biomedical Sciences, Joan C. Edwards School of Medicine at Marshall University, Huntington, West Virginia, USA.
Abstract:
Mucoidy due to alginate overproduction by the Gram-negative bacterium Pseudomonas aeruginosa facilitates chronic lung infections in patients with cystic fibrosis (CF). We previously reported that disruption in de novo synthesis of pyrimidines resulted in conversion to a nonmucoid small-colony variant (SCV) in the mucoid P. aeruginosa strain (PAO581), which has a truncated anti-sigma factor, MucA25, that cannot sequester sigma factor AlgU (AlgT). Here, we showed that supplementation with the nitrogenous bases uracil or cytosine in growth medium complemented the SCV to normal growth, and nonmucoidy to mucoidy, in these mucA25 mutants. This conversion was associated with an increase in intracellular levels of UMP and UTP suggesting that nucleotide restoration occurred via a salvage pathway. In addition, supplemented pyrimidines caused an increase in activity of the alginate biosynthesis promoter (P ), but had no effect on P , which controls transcription of algU Cytosolic levels of AlgU were not influenced by uracil supplementation, yet levels of RpoN, a sigma factor that regulates nitrogen metabolism, increased with disruption of pyrimidine synthesis and decreased after supplementation of uracil. This suggested that an elevated level of RpoN in SCV may block alginate biosynthesis. To support this, we observed that overexpressing rpoN resulted in a phenotypic switch to nonmucoidy in PAO581 and in mucoid clinical isolates. Furthermore, transcription of an RpoN-regulated promoter increased in the mutants and decreased after uracil supplementation. These results suggest that the balance of RpoN and AlgU levels may regulate growth from SCV to mucoidy through sigma factor competition for P IMPORTANCE Chronic lung infections with P. aeruginosa are the main cause of morbidity and mortality in patients with cystic fibrosis. This bacterium overproduces a capsular polysaccharide called alginate (also known as mucoidy), which aids in bacterial persistence in the lungs and in resistance to therapeutic regimens and host immune responses. The current study explores a previously unknown link between pyrimidine biosynthesis and mucoidy at the level of transcriptional regulation. Identifying/characterizing this link could provide novel targets for the control of bacterial growth and mucoidy. Inhibiting mucoidy may improve antimicrobial efficacy and facilitate host defenses to clear the noncapsulated P. aeruginosa bacteria, leading to improved prognosis for patients with cystic fibrosis.
Insights
Supplementing pyrimidines like uracil restores mucoidy in Pseudomonas aeruginosa by influencing sigma factor levels. This finding offers new targets for treating cystic fibrosis lung infections.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Mucoidy in *Pseudomonas aeruginosa*, caused by alginate overproduction, is crucial for chronic lung infections in cystic fibrosis (CF) patients.
- A previously identified *P. aeruginosa* strain (PAO581) with a defective MucA25 anti-sigma factor exhibited a nonmucoid small-colony variant (SCV) phenotype due to disrupted pyrimidine synthesis.
- The sigma factor AlgU (AlgT) is sequestered by MucA, and its release is necessary for alginate production.
Purpose of the Study:
- To investigate the role of pyrimidine biosynthesis in regulating mucoidy in *P. aeruginosa*.
- To elucidate the molecular mechanisms linking pyrimidine metabolism to alginate production and bacterial growth.
- To identify potential therapeutic targets for controlling *P. aeruginosa* mucoidy in CF patients.
Main Methods:
- Supplementation of growth medium with uracil or cytosine to study complementation of SCV mutants.
- Measurement of intracellular nucleotide levels (UMP, UTP).
- Analysis of alginate biosynthesis promoter (P algD) and *algU* promoter (P algU) activity.
- Assessment of AlgU and RpoN sigma factor levels.
- Overexpression of the *rpoN* gene to observe phenotypic changes.
- Quantification of transcription from an RpoN-regulated promoter.
Main Results:
- Supplementation with uracil or cytosine restored mucoidy and normal growth to SCV mutants, correlating with increased intracellular UMP and UTP levels.
- Pyrimidine supplementation increased alginate biosynthesis promoter activity but did not affect the *algU* promoter.
- Uracil supplementation did not alter AlgU levels but decreased RpoN levels, which were elevated in SCV mutants.
- Overexpression of *rpoN* induced a nonmucoid phenotype in both the PAO581 strain and clinical isolates.
- Transcription from an RpoN-regulated promoter was higher in mutants and decreased upon uracil supplementation.
Conclusions:
- Pyrimidine availability influences *P. aeruginosa* mucoidy, potentially through a salvage pathway affecting nucleotide levels.
- The balance between sigma factors RpoN and AlgU, regulated by pyrimidine availability, plays a critical role in controlling alginate biosynthesis.
- RpoN may act as an inhibitor of alginate production, and its levels are inversely correlated with pyrimidine levels.
- Targeting pyrimidine metabolism or RpoN levels could be a novel strategy to inhibit *P. aeruginosa* mucoidy in CF patients.
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