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A macrophage-targeted platform for extending drug dosing with polymer prodrugs for pulmonary infection prophylaxis
Thomas E J Chavas1, Fang-Yi Su1, Selvi Srinivasan1
1Department of Bioengineering, University of Washington, Seattle, Washington 98195, United States.
Abstract:
Pulmonary melioidosis is a bacterial disease with high morbidity and a mortality rate that can be as high as 40% in resource-poor regions of South Asia. This disease burden is linked to the pathogen's intrinsic antibiotic resistance and protected intracellular localization in alveolar macrophages. Current treatment regimens require several antibiotics with multi-month oral and intravenous administrations that are difficult to implement in under-resourced settings. Herein, we report that a macrophage-targeted polyciprofloxacin prodrug acts as a surprisingly effective pre-exposure prophylactic in highly lethal murine models of aerosolized human pulmonary melioidosis. A single dose of the polymeric prodrug maintained high lung drug levels and targeted an intracellular depot of ciprofloxacin to the alveolar macrophage compartment that was sustained over a period of 7 days above minimal inhibitory concentrations. This intracellular pharmacokinetic profile provided complete pre-exposure protection in a BSL-3 model with an aerosolized clinical isolate of Burkholderia pseudomallei from Thailand. This total protection was achieved despite the bacteria's relative resistance to ciprofloxacin and where an equivalent dose of pulmonary-administered ciprofloxacin was ineffective. For the first time, we demonstrate that targeting the intracellular macrophage compartment with extended antibiotic dosing can achieve pre-exposure prophylaxis in a model of pulmonary melioidosis. This fully synthetic and modular therapeutic platform could be an important therapeutic approach with new or re-purposed antibiotics for melioidosis prevention and treatment, especially as portable inhalation devices in high-risk, resource-poor settings.
Insights
A novel polymeric prodrug targeting macrophages offers complete pre-exposure protection against lethal pulmonary melioidosis. This breakthrough in antibiotic delivery provides sustained drug levels, crucial for combating drug-resistant bacteria in resource-poor settings.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Pulmonary melioidosis presents a significant health challenge, particularly in South Asia, due to high mortality rates (up to 40%).
- The pathogen's antibiotic resistance and intracellular survival within alveolar macrophages complicate treatment.
- Current multi-month antibiotic regimens are challenging to administer in resource-limited areas.
Purpose of the Study:
- To evaluate a macrophage-targeted polyciprofloxacin prodrug as a pre-exposure prophylactic agent for pulmonary melioidosis.
- To assess the in vivo efficacy and pharmacokinetic profile of the novel prodrug in a lethal murine model.
Main Methods:
- Development of a macrophage-targeted polyciprofloxacin prodrug.
- Administration of a single dose of the prodrug to murine models.
- Evaluation of lung drug concentrations and protection against aerosolized Burkholderia pseudomallei.
Main Results:
- A single dose of the polymeric prodrug achieved sustained high drug levels in the lungs for 7 days.
- Targeted delivery to alveolar macrophages created an intracellular drug depot above minimal inhibitory concentrations.
- Complete pre-exposure protection was observed in a lethal murine model, even against ciprofloxacin-resistant strains.
Conclusions:
- Macrophage-targeted antibiotic delivery can achieve effective pre-exposure prophylaxis for pulmonary melioidosis.
- This synthetic, modular therapeutic platform shows promise for melioidosis prevention and treatment, especially in resource-poor settings.
- Portable inhalation devices utilizing this platform could revolutionize management in high-risk areas.

