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Published on: February 14, 2018
Nystatin antifungal micellar systems on endotracheal tubes: development, characterization and in vitro evaluation
Abstract:
Decontamination of patients' clinical devices in intensive care units is generally performed with an antifungal suspension. Nystatin is a widely-used high spectrum antifungal due to its low systemic absorption. However, nystatin has high hydrophobicity which hinders the contact with the internal lumen of the devices. In this work, hydrophilic micellar systems of nystatin were developed with sodium deoxycholate on silicone endotracheal tubes. The physical characteristics of the micellar system at different nystatin:deoxycholate ratios were studied using scanning electron microscopy, X-ray powder diffraction and differential scanning calorimetry. The electron microscopy results reveal that the deoxycholate micellar system altered the surface morphology, and the size of the aggregates was observed to be smaller. The hydrophilic structures of deoxycholate produce systems with a high surface area containing nystatin molecules on their interior. The X-ray and differential scanning calorimetry assays revealed a typical change in the crystallinity of micellar systems when the deoxycholate proportion increases. The endothermic peak of nystatin was not observed in the micellar systems as a consequence of the reduced crystallinity. Nystatin was homogenously dispersed in the surfactant matrix. Micellar systems with 1:0.8 nystatin:deoxycholate ratio (MS-N:DC [1:0.8]) showed increased antifungal activity compared to nystatin raw material. Micellar systems also achieved an over 40% inhibition of Candida albicans biofilm formation. The results obtained in this study conclude that the higher hydrophilic characteristic of the surfactant deoxycholate enhances nystatin penetration into the surface of the endotracheal tubes.
Insights
Developing hydrophilic micellar systems of nystatin with sodium deoxycholate improved antifungal efficacy for endotracheal tubes. This enhances nystatin penetration, crucial for decontaminating clinical devices in intensive care units.
Area of Science:
- Materials Science
- Mycology
- Pharmaceutical Sciences
Background:
- Antifungal decontamination of clinical devices in intensive care units typically uses nystatin.
- Nystatin's hydrophobicity limits its effectiveness in penetrating device lumens.
- Improved delivery systems are needed to enhance nystatin's antifungal action.
Purpose of the Study:
- To develop hydrophilic micellar systems of nystatin using sodium deoxycholate.
- To characterize the physical properties of these micellar systems on silicone endotracheal tubes.
- To evaluate the enhanced antifungal activity and biofilm inhibition of the developed systems.
Main Methods:
- Formulation of nystatin-deoxycholate micellar systems at various ratios.
- Characterization using scanning electron microscopy (SEM), X-ray powder diffraction (XRPD), and differential scanning calorimetry (DSC).
- Assessment of antifungal activity against Candida albicans and inhibition of biofilm formation.
Main Results:
- SEM showed altered surface morphology and smaller aggregates with deoxycholate.
- XRPD and DSC indicated reduced nystatin crystallinity and homogenous dispersion within the surfactant matrix.
- The 1:0.8 nystatin:deoxycholate ratio (MS-N:DC [1:0.8]) demonstrated increased antifungal activity and over 40% inhibition of Candida albicans biofilm formation.
Conclusions:
- Hydrophilic micellar systems enhance nystatin's penetration into endotracheal tube surfaces.
- Sodium deoxycholate effectively improves nystatin's dispersion and antifungal efficacy.
- This approach offers a promising strategy for decontaminating clinical devices.
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