Pseudomonas Virulence Factor Pathway Synthesizes Autoinducers That Regulate the Secretome of a Pathogen
Abstract:
Cell-to-cell communication via chemical signals is an essential mechanism that pathogenic bacteria use to coordinate group behaviors and promote virulence. The Pseudomonas virulence factor (pvf) gene cluster is distributed in more than 500 strains of proteobacteria including both plant and human pathogens. The pvf cluster has been implicated in the production of signaling molecules important for virulence; however, the regulatory impact of these signaling molecules on virulence had not been elucidated. Using the insect pathogen Pseudomonas entomophila L48 as a model, we demonstrated that pvf-encoded biosynthetic enzymes produce PVF autoinducers that regulate the expression of pvf genes and a gene encoding the toxin monalysin via quorum sensing. In addition, PVF autoinducers regulate the expression of nearly 200 secreted and membrane proteins, including toxins, motility proteins, and components of the type VI secretion system, which play key roles in bacterial virulence, colonization, and competition with other microbes. Deletion of pvf also altered the secondary metabolome. Six major compounds upregulated by PVF autoinducers were isolated and structurally characterized, including three insecticidal 3-indolyl oxazoles, the labradorins, and three antimicrobial pyrrolizidine alkaloids, the pyreudiones. The signaling properties of PVF autoinducers and their wide-ranging regulatory effects indicate multifaceted roles of PVF in controlling cell physiology and promoting virulence. The broad genome distribution of pvf suggests that PVF-mediated signaling is relevant to many bacteria of agricultural and biomedical significance.
Insights
Pseudomonas virulence factors (PVF) autoinducers regulate bacterial group behaviors and virulence through quorum sensing. These signals control toxin production and nearly 200 other proteins, impacting colonization and competition.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Chemical Ecology
Background:
- Pathogenic bacteria use cell-to-cell chemical signals for coordinated group behaviors and virulence.
- The Pseudomonas virulence factor (pvf) gene cluster is found in over 500 proteobacteria strains, including plant and human pathogens.
- The role of pvf-encoded signaling molecules in regulating bacterial virulence remained unclear.
Purpose of the Study:
- To elucidate the regulatory impact of PVF autoinducers on bacterial virulence.
- To investigate the role of the pvf gene cluster in Pseudomonas entomophila virulence.
Main Methods:
- Utilized Pseudomonas entomophila L48 as a model organism.
- Investigated gene expression regulation via quorum sensing.
- Performed deletion mutagenesis of the pvf cluster.
- Isolated and characterized secondary metabolites using chemical analysis.
Main Results:
- PVF autoinducers regulate pvf gene expression and monalysin toxin production via quorum sensing.
- PVF autoinducers control nearly 200 secreted and membrane proteins involved in virulence, colonization, and inter-microbial competition.
- Deletion of pvf altered the bacterial secondary metabolome, with six compounds (labradorins and pyreudiones) identified as upregulated by PVF autoinducers.
Conclusions:
- PVF autoinducers play multifaceted roles in bacterial cell physiology and virulence.
- The widespread distribution of the pvf cluster suggests the relevance of PVF-mediated signaling in diverse agriculturally and biomedically significant bacteria.
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