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Virulence Induction in Pseudomonas aeruginosa under Inorganic Phosphate Limitation: a Proteomics Perspective
Miguel A Matilla1, Zulema Udaondo2, Sandra Maaß3
1Department of Biotechnology and Environmental Protection, Estación Experimental del Zaidín, Consejo Superior de Investigaciones Científicas, Granada, Spain.
Abstract:
Inorganic phosphate (Pi) is a central nutrient and signal molecule for bacteria. Pi limitation was shown to increase the virulence of several phylogenetically diverse pathogenic bacteria with different lifestyles. Hypophosphatemia enhances the risk of death in patients due to general bacteremia and was observed after surgical injury in humans. Phosphate therapy, or the reduction of bacterial virulence by the administration of Pi or phosphate-containing compounds, is a promising anti-infective therapy approach that will not cause cytotoxicity or the emergence of antibiotic-resistant strains. The proof of concept of phosphate therapy has been obtained using primarily Pseudomonas aeruginosa (PA). However, a detailed understanding of Pi-induced changes at protein levels is missing. Using pyocyanin production as proxy, we show that the Pi-mediated induction of virulence is a highly cooperative process that occurs between 0.2 to 0.6 mM Pi. We present a proteomics study of PA grown in minimal medium supplemented with either 0.2 mM or 1 mM Pi and rich medium. About half of the predicted PA proteins could be quantified. Among the 1,471 dysregulated proteins comparing growth in 0.2 mM to 1 mM Pi, 1,100 were depleted under Pi-deficient conditions. Most of these proteins are involved in general and energy metabolism, different biosynthetic and catabolic routes, or transport. Pi depletion caused accumulation of proteins that belong to all major families of virulence factors, including pyocyanin synthesis, secretion systems, quorum sensing, chemosensory signaling, and the secretion of proteases, phospholipases, and phosphatases, which correlated with an increase in exoenzyme production and antibacterial activity. IMPORTANCE Antibiotics are our main weapons to fight pathogenic bacteria, but the increase in antibiotic-resistant strains and their consequences represents a major global health challenge, revealing the necessity to develop alternative antimicrobial strategies that do not involve the bacterial killing or growth inhibition. P. aeruginosa has been placed second on the global priority list to guide research on the development of new antibiotics. One of the most promising alternative strategies is the phosphate therapy for which the proof of concept has been obtained for P. aeruginosa. This article reports the detailed changes at the protein levels comparing P. aeruginosa grown under Pi-abundant and Pi-depleted conditions. These data describe in detail the molecular mechanisms underlying phosphate therapy. Apart from Pi, several other phosphate-containing compounds have been used for phosphate therapy and this study will serve as a reference for comparative studies aimed at evaluating the effect of alternative compounds.
Insights
Phosphate (Pi) levels significantly impact bacterial virulence. This study reveals how Pi deficiency in Pseudomonas aeruginosa boosts virulence factors at the protein level, offering insights into novel phosphate therapy strategies.
Area of Science:
- Microbiology
- Molecular Biology
- Proteomics
Background:
- Inorganic phosphate (Pi) is crucial for bacterial nutrient signaling and virulence.
- Pi limitation increases pathogen virulence, posing risks in bacteremia and post-surgical infections.
- Phosphate therapy, using Pi or related compounds, is a promising, non-cytotoxic anti-infective strategy against antibiotic-resistant bacteria.
Purpose of the Study:
- To elucidate the protein-level changes in Pseudomonas aeruginosa (PA) under varying inorganic phosphate (Pi) conditions.
- To understand the molecular mechanisms underlying Pi-mediated virulence regulation in PA.
- To provide a reference for evaluating alternative phosphate-based anti-infective compounds.
Main Methods:
- Comparative proteomics of PA grown in minimal medium with 0.2 mM Pi (low) versus 1 mM Pi (high) and rich medium.
- Quantification of PA proteins to identify dysregulated proteins under Pi-deficient conditions.
- Analysis of protein functions and pathways affected by Pi availability.
Main Results:
- Proteomics identified 1,471 dysregulated proteins between low and high Pi conditions, with 1,100 depleted under Pi deficiency.
- Pi depletion led to the accumulation of proteins involved in virulence, including pyocyanin synthesis, secretion systems, and quorum sensing.
- Increased exoenzyme production and antibacterial activity correlated with Pi-depleted conditions.
Conclusions:
- Pi availability critically regulates PA virulence at the proteome level.
- Pi deficiency upregulates key virulence factors, explaining increased pathogenicity.
- These findings detail the molecular basis of phosphate therapy for P. aeruginosa infections.
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