Related Experiment Video
Updated: Aug 12, 2025

Intra-lymph Node Injection of Biodegradable Polymer Particles
Published on: January 2, 2014
Polymer-based particles against pathogenic fungi: A non-uptake delivery of compounds
Thomas Orasch1, Gauri Gangapurwala2, Antje Vollrath2
1Department of Molecular and Applied Microbiology, Leibniz Institute for Natural Product Research and Infection Biology - Hans Knöll Institute (Leibniz-HKI), Adolf-Reichwein-Straße 23, 07745 Jena, Germany.
Abstract:
The therapy of life-threatening fungal infections is limited and needs urgent improvement. This is in part due to toxic side effects of clinically used antifungal compounds or their limited delivery to fungal structures. Until today, it is a matter of debate how drugs or drug-delivery systems can efficiently reach the intracellular lumen of fungal cells and how this can be improved. Here, we addressed both questions by applying two different polymeric particles for delivery of compounds. Their formulation was based on two biocompatible polymers, i.e., poly(lactic-co-glycolic acid)50:50 and poly(methyl methacrylate-stat-methacrylic acid)90:10 yielding particles with hydrodynamic diameters ranging from 100 to 300 nm. The polymers were covalently labeled with the fluorescent dye DY-550 to monitor the interaction between particles and fungi by confocal laser scanning microscopy. Furthermore, the fluorescent dye coumarin-6 and the antifungal drug itraconazole were successfully encapsulated in particles to study the fate of both the cargo and the particle when interacting with the clinically most important human-pathogenic fungi Aspergillus fumigatus, A. terreus, Candida albicans, and Cryptococcus neoformans. While the polymers were exclusively located on the fungal surface, the encapsulated cargo was efficiently transported into fungal hyphae, indicated by increased intracellular fluorescence signals due to coumarin-6. In accordance with this finding, compared to the pristine drug a reduced minimal inhibitory concentration for itraconazole was determined, when it was encapsulated. Together, the herein used polymeric particles were not internalized by pathogenic fungi but were able to efficiently deliver hydrophobic cargos into fungal cells.
Insights
Polymeric particles effectively deliver antifungal drugs into fungal cells, bypassing surface limitations. This novel approach improves drug delivery for treating life-threatening fungal infections.
Area of Science:
- Mycology
- Materials Science
- Drug Delivery
Background:
- Limited therapeutic options for life-threatening fungal infections due to drug toxicity and poor delivery.
- Efficient intracellular delivery of antifungal agents to fungal cells remains a challenge.
Purpose of the Study:
- To investigate the efficacy of two distinct polymeric nanoparticle formulations for delivering compounds into pathogenic fungi.
- To evaluate the intracellular delivery and antifungal activity of encapsulated drugs.
Main Methods:
- Formulation of poly(lactic-co-glycolic acid) and poly(methyl methacrylate-stat-methacrylic acid) nanoparticles (100-300 nm).
- Labeling polymers with DY-550 for microscopy and encapsulating coumarin-6 and itraconazole.
- Testing particle-fungus interactions with Aspergillus fumigatus, A. terreus, Candida albicans, and Cryptococcus neoformans.
Main Results:
- Polymeric particles localized on the fungal surface, not internalized.
- Encapsulated cargo (coumarin-6) showed increased intracellular fluorescence, indicating efficient transport into fungal hyphae.
- Encapsulated itraconazole exhibited reduced minimal inhibitory concentration compared to the free drug.
Conclusions:
- Polymeric nanoparticles serve as effective carriers for delivering hydrophobic cargos into pathogenic fungi.
- The developed system bypasses fungal surface barriers to achieve intracellular drug delivery.
- This strategy holds promise for improving antifungal therapies by enhancing drug efficacy and potentially reducing toxicity.

