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Functional Nanocarriers for Delivering Itraconazole Against Fungal Intracellular Infections
Susana P Mejía1,2, Arturo Sánchez1, Viviana Vásquez1
1Max Planck Tandem Group in Nanobioengineering, University of Antioquia, Medellín, Colombia.
Abstract:
Infectious diseases caused by intracellular microorganisms represent a significant challenge in medical care due to interactions among drugs during coinfections and the development of resistance in microorganisms, limiting existing therapies. This work reports on itraconazole (ITZ) encapsulated into functional polymeric nanoparticles for their targeted and controlled release into macrophages to fight intracellular infections. NPs are based on poly (lactic acid-co-glycolic acid) (PLGA) polymers of different compositions, molecular weights, and lactic acid-to-glycolic acid ratios. They were self-assembled using the high-energy nanoemulsion method and characterized by transmission electron microscopy, Fourier transform infrared spectroscopy (FT-IR), and differential scanning calorimetry. It was studied how the polymer-to-drug ratio, changes in the aqueous phase pH, and type and concentration of surfactant affected nanocarriers' formation, drug-loading capacity, and encapsulation efficiency. Results showed that drug-loading capacity and encapsulation efficiency reached 6.7 and 80%, respectively, by lowering the pH to 5.0 and using a mixture of surfactants. Optimized formulation showed an initial immediate ITZ release, followed by a prolonged release phase that fitted better with a Fickian diffusion kinetic model and high stability at 4 and 37°C. NPs functionalized by using the adsorption and carbodiimide methods had different efficiencies, the carbodiimide approach being more efficient, stable, and reproducible. Furthermore, linking F4/80 and mannose to the NPs was demonstrated to increase J774A.1 macrophages' uptake. Overall, in vitro assays showed the nanosystem's efficacy to eliminate the Histoplasma capsulatum fungus and pave the way to design highly efficient nanocarriers for drug delivery against intracellular infections.
Insights
Functional polymeric nanoparticles effectively deliver itraconazole to macrophages, combating intracellular infections like Histoplasma capsulatum. This targeted drug delivery enhances efficacy and overcomes drug resistance challenges.
Area of Science:
- Nanotechnology
- Infectious Diseases
- Pharmacology
Background:
- Intracellular microbial infections pose significant challenges due to drug interactions and resistance.
- Existing therapies are limited, necessitating novel drug delivery systems.
- Targeted delivery to macrophages is crucial for treating intracellular pathogens.
Purpose of the Study:
- To develop functional polymeric nanoparticles for targeted itraconazole (ITZ) delivery to macrophages.
- To enhance the efficacy of antifungal treatments against intracellular infections.
- To overcome limitations of current therapies for coinfections and drug resistance.
Main Methods:
- Poly (lactic acid-co-glycolic acid) (PLGA) nanoparticles were synthesized using a high-energy nanoemulsion method.
- Nanoparticle characterization included transmission electron microscopy, FT-IR, and differential scanning calorimetry.
- Optimization of drug-loading capacity and encapsulation efficiency was achieved by adjusting pH and surfactant composition.
Main Results:
- High drug-loading capacity (6.7%) and encapsulation efficiency (80%) were achieved at pH 5.0 with a surfactant mixture.
- Optimized nanoparticles exhibited a biphasic release profile (immediate followed by prolonged) following Fickian diffusion kinetics.
- Carbodiimide method-based functionalization and targeting ligands (F4/80, mannose) significantly enhanced macrophage uptake and in vitro efficacy against Histoplasma capsulatum.
Conclusions:
- Functionalized PLGA nanoparticles offer a promising platform for targeted itraconazole delivery against intracellular infections.
- The developed nanosystem demonstrates high stability and efficacy in eliminating Histoplasma capsulatum.
- This approach paves the way for designing advanced nanocarriers to combat drug-resistant intracellular pathogens.
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