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Interconnections of Pseudomonas aeruginosa Quorum-Sensing Systems in Intestinal Permeability and Inflammation
Vijay K Singh1,2,3, Marianna Almpani1,2,3, Kelsey M Wheeler1,2
1Department of Surgery, Harvard Medical School and Massachusetts General Hospital, Boston, Massachusetts, USA.
Abstract:
Quorum sensing (QS) is a highly conserved microbial communication mechanism based on the production and sensing of secreted signaling molecules. The recalcitrant pathogen Pseudomonas aeruginosa is a problematic nosocomial pathogen with complex interconnected QS systems controlling multiple virulence functions. The relevance of QS in P. aeruginosa pathogenesis is well established; however, the regulatory interrelationships of the three major QS systems, LasR/LasI, MvfR (PqsR)/PqsABCD, and RhlR/RhlI, have been studied primarily in vitro. It is, therefore, unclear how these relationships translate to the host environment during infection. Here, we use a collection of P. aeruginosa QS mutants of the three major QS systems to assess the interconnections and contributions in intestinal inflammation and barrier function in vivo. This work reveals that MvfR, not LasR or RhlR, promotes intestinal inflammation during infection. In contrast, we find that P. aeruginosa-driven murine intestinal permeability is controlled by an interconnected QS network involving all three regulators, with MvfR situated upstream of LasR and RhlR. This study demonstrates the importance of understanding the interrelationships of the QS systems during infection and provides critical insights for developing successful antivirulence strategies. Moreover, this work provides a framework to interrogate QS systems in physiologically relevant settings. IMPORTANCE Pseudomonas aeruginosa is a common multidrug-resistant bacterial pathogen that seriously threatens critically ill and immunocompromised patients. Intestinal colonization by this pathogen is associated with elevated mortality rates. Disrupting bacterial communication is a desirable anti-infective approach since these systems coordinate multiple acute and chronic virulence functions in P. aeruginosa. Here, we investigate the role of each of the three major communication systems in the host intestinal functions. This work reveals that P. aeruginosa influences intestinal inflammation and permeability through distinct mechanisms.
Insights
Pseudomonas aeruginosa quorum sensing (QS) systems regulate intestinal inflammation and barrier function differently. MvfR drives inflammation, while all three QS systems, interconnected with MvfR upstream, control intestinal permeability in vivo.
Area of Science:
- Microbiology
- Pathogenesis
- Host-pathogen interactions
Background:
- Quorum sensing (QS) is a conserved microbial communication system essential for virulence in pathogens like Pseudomonas aeruginosa.
- P. aeruginosa possesses complex, interconnected QS systems (LasR/LasI, MvfR/PqsABCD, RhlR/RhlI) that regulate virulence factors.
- The in vivo interplay of these QS systems in host environments, particularly during intestinal infection, remains poorly understood.
Purpose of the Study:
- To investigate the distinct roles and interconnections of the three major P. aeruginosa QS systems in intestinal inflammation and barrier function during infection.
- To elucidate the upstream/downstream regulatory relationships among MvfR, LasR, and RhlR in the context of host intestinal responses.
- To provide insights into developing targeted antivirulence strategies against P. aeruginosa intestinal colonization.
Main Methods:
- Utilized a collection of P. aeruginosa QS mutants lacking key components of the LasR/LasI, MvfR/PqsABCD, and RhlR/RhlI systems.
- Assessed the contribution of these QS mutants to intestinal inflammation and barrier function in a murine infection model.
- Analyzed the regulatory interdependencies between the QS systems in vivo.
Main Results:
- The MvfR (PqsR) QS system, but not LasR or RhlR, was identified as the primary driver of intestinal inflammation during P. aeruginosa infection.
- Murine intestinal permeability was modulated by an interconnected QS network involving all three regulators (MvfR, LasR, RhlR).
- MvfR was found to act upstream of both the LasR and RhlR QS systems in regulating intestinal barrier function.
Conclusions:
- P. aeruginosa utilizes distinct QS regulatory pathways to influence intestinal inflammation and permeability.
- Understanding the in vivo interrelationships of QS systems, particularly the upstream role of MvfR, is crucial for effective antivirulence strategies.
- This study establishes a framework for studying QS systems in physiologically relevant host settings.
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