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The PqsE Active Site as a Target for Small Molecule Antimicrobial Agents against Pseudomonas aeruginosa
Isabelle R Taylor1, Philip D Jeffrey1, Dina A Moustafa2
1Department of Molecular Biology, Princeton University, Princeton, New Jersey 08544, United States.
Abstract:
The opportunistic pathogen Pseudomonas aeruginosa causes antibiotic-resistant, nosocomial infections in immuno-compromised individuals and is a high priority for antimicrobial development. Key to pathogenicity in P. aeruginosa are biofilm formation and virulence factor production. Both traits are controlled by the cell-to-cell communication process called quorum sensing (QS). QS involves the synthesis, release, and population-wide detection of signal molecules called autoinducers. We previously reported that the activity of the RhlR QS transcription factor depends on a protein-protein interaction with the hydrolase, PqsE, and PqsE catalytic activity is dispensable for this interaction. Nonetheless, the PqsE-RhlR interaction could be disrupted by the substitution of an active site glutamate residue with tryptophan [PqsE(E182W)]. Here, we show that disruption of the PqsE-RhlR interaction via either the E182W change or alteration of PqsE surface residues that are essential for the interaction with RhlR attenuates P. aeruginosa infection in a murine host. We use crystallography to characterize the conformational changes induced by the PqsE(E182W) substitution to define the mechanism underlying disruption of the PqsE-RhlR interaction. A loop rearrangement that repositions the E280 residue in PqsE(E182W) is responsible for the loss of interaction. We verify the implications garnered from the PqsE(E182W) structure using mutagenic, biochemical, and additional structural analyses. We present the next generation of molecules targeting the PqsE active site, including a structure of the tightest binding of these compounds, BB584, in complex with PqsE. The findings presented here provide insights into drug discovery against P. aeruginosa with PqsE as the target.
Insights
Disrupting the interaction between Pseudomonas aeruginosa quorum sensing factors RhlR and PqsE attenuates infections. Structural analysis reveals a loop rearrangement mechanism, guiding the development of new anti-Pseudomonas aeruginosa drugs targeting PqsE.
Area of Science:
- Microbiology
- Structural Biology
- Drug Discovery
Background:
- *Pseudomonas aeruginosa* is an opportunistic pathogen causing antibiotic-resistant infections.
- Biofilm formation and virulence are regulated by quorum sensing (QS).
- The RhlR transcription factor interacts with the hydrolase PqsE for QS activity.
Purpose of the Study:
- To investigate the mechanism of PqsE-RhlR interaction disruption.
- To assess the impact of disrupting this interaction on *P. aeruginosa* pathogenicity.
- To guide the development of novel therapeutics targeting PqsE.
Main Methods:
- Site-directed mutagenesis (PqsE(E182W) and surface residue alterations).
- Crystallography to determine PqsE structures.
- In vivo murine infection models.
- Biochemical and mutagenic analyses.
- Co-crystallization of PqsE with drug compound BB584.
Main Results:
- Disruption of the PqsE-RhlR interaction, via E182W mutation or surface residue changes, attenuates *P. aeruginosa* infection in mice.
- Crystallography revealed a loop rearrangement in PqsE(E182W) causing loss of interaction.
- Structural and biochemical data confirmed the mechanism of interaction disruption.
- A potent PqsE inhibitor, BB584, was identified and its complex with PqsE was structurally characterized.
Conclusions:
- Targeting the PqsE-RhlR interaction is a viable strategy to combat *P. aeruginosa* infections.
- Structural insights into PqsE function facilitate rational drug design.
- PqsE is a promising target for developing new anti-Pseudomonas aeruginosa antimicrobials.

