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Tolfenpyrad Modulates Antibiotic Activity on Francisella novicida and Synergizes with Electron Transport Chain
Chloe Marmarosh Van Horn1, Nimra Khalid1, Henry S Heine2
1Department of Infectious Diseases & Immunology, University of Florida, Gainesville, Florida 32608, United States.
Abstract:
Francisella tularensis is a highly virulent intracellular pathogen for which treatment options remain limited and vulnerable to resistance development. Tolfenpyrad, a pesticide with selective antibacterial activity against Francisella species, has emerged as a promising compound, yet its mechanism of action remains poorly defined. Here, we investigated how tolfenpyrad modulates the activity of established antibiotics and probed its effects on bacterial energy metabolism in Francisella. In this study, we used combinatorial drug experiments to identify both synergistic and antagonistic drug-drug interactions. Tolfenpyrad synergized with polymyxin B and azithromycin to inhibit Francisella novicida in vitro, and this synergistic activity was also observed with azithromycin in an intramacrophage infection model, resulting in enhanced bacterial clearance. In contrast, tolfenpyrad antagonized aminoglycoside and tetracycline-class antibiotics, restoring bacterial survival under otherwise inhibitory conditions. Consistent with this antagonism, tolfenpyrad attenuated uptake of tetracycline and doxycycline, suggesting that it may disrupt proton motive force-dependent transport. Supporting this model, tolfenpyrad synergized with multiple electron transport chain inhibitors in F. novicida and in F. tularensis, and reduced ATP levels in F. novicida. Collectively, these data indicate that tolfenpyrad disrupts bacterial energy metabolism in Francisella, likely impairing oxidative phosphorylation and proton motive force generation. These findings define a mechanistic framework for tolfenpyrad's antibacterial activity and highlight its potential as an inhibitor of Francisella bioenergetics and a potential partner in combinatorial antibiotic therapies.
Insights
Tolfenpyrad, a pesticide, disrupts energy metabolism in Francisella bacteria. It enhances some antibiotics like azithromycin but weakens others, offering potential for new Francisella tularensis combination therapies.
Area of Science:
- Microbiology
- Bacteriology
- Drug Discovery
Background:
- Francisella tularensis is a dangerous pathogen with limited treatment options.
- Antibiotic resistance is a growing concern for Francisella infections.
- Tolfenpyrad shows selective antibacterial activity against Francisella but its mechanism is unclear.
Purpose of the Study:
- To investigate the mechanism of action of tolfenpyrad against Francisella.
- To determine how tolfenpyrad affects bacterial energy metabolism.
- To explore tolfenpyrad's potential in combination antibiotic therapies.
Main Methods:
- Combinatorial drug experiments to identify drug-drug interactions.
- In vitro and intramacrophage infection models using Francisella species.
- Assays to measure bacterial ATP levels and antibiotic uptake.
Main Results:
- Tolfenpyrad synergized with azithromycin and polymyxin B against Francisella.
- Tolfenpyrad antagonized aminoglycoside and tetracycline antibiotics, reducing their efficacy.
- Tolfenpyrad disrupted bacterial energy metabolism, likely by inhibiting oxidative phosphorylation and proton motive force.
Conclusions:
- Tolfenpyrad disrupts Francisella bioenergetics, impairing energy production.
- Tolfenpyrad's mechanism involves interference with proton motive force.
- Tolfenpyrad shows promise as a component of novel combination therapies for Francisella infections.
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