Reversibly Cross-Linked Asymmetric Hybrid Open-Polysilsesquioxane Films Enhancing Clotrimazole Bioavailability and

Marta Madej-Gajewska1, Tomasz Janek2, Monika Gosecka3

  • 1Faculty of Chemistry, University of Wrocław, 14 F. Joliot-Curie, Wrocław 50-383, Poland.

PubMed

Insights

Novel polymeric films enhance clotrimazole (CLT) delivery for treating vulvovaginal candidiasis. These films improve antifungal efficacy against Candida biofilms by ensuring uniform drug distribution and controlled release, offering a promising solution for challenging fungal infections.

Area of Science:

  • Biomaterials Science
  • Pharmaceutical Sciences
  • Mycology

Background:

  • Vulvovaginal candidiasis (VVC) poses a therapeutic challenge due to Candida albicans biofilms and poor solubility of antifungals like clotrimazole (CLT).
  • Existing film formulations for drug delivery suffer from issues like nonuniform drug distribution, uncontrolled release, and poor structural integrity.

Purpose of the Study:

  • To develop novel, water-swellable polymeric networks for enhanced clotrimazole bioavailability and potent anti-Candida biofilm activity.
  • To overcome limitations of current film formulations by ensuring homogeneous drug distribution and controlled drug release.

Main Methods:

  • Developed water-swellable polymeric networks using asymmetric open-Polyhedral Oligomeric Silsesquioxane (POSS) cages (IC-POSSPh, IC-POSSiBu) and poly(dimethylacrylamide-2-acrylamidephenylboronic acid) (P(DMAM-2-AAPBA)) copolymers.
  • Characterized network structure-property relationships using 11B NMR, DSC, rheology, and SEM-EDS.
  • Evaluated clotrimazole (CLT) distribution, drug release kinetics, antifungal efficacy against planktonic and biofilm Candida strains, and cytocompatibility.

Main Results:

  • IC-POSSPh cages prevented CLT crystallization via π-π stacking, ensuring homogeneous drug distribution.
  • P(DMAM-2-AAPBA) copolymers were crucial for uniform CLT dispersion, with higher 2-AAPBA content leading to slower drug release.
  • CLT-loaded films demonstrated significantly enhanced antifungal efficacy against Candida biofilms compared to free CLT, attributed to improved bioavailability and controlled release.

Conclusions:

  • Novel polymeric networks incorporating functionalized POSS cages and P(DMAM-2-AAPBA) copolymers effectively enhance clotrimazole bioavailability and anti-Candida biofilm activity.
  • Tailoring network composition and utilizing POSS cages are crucial for homogeneous drug distribution, controlled release, and improved therapeutic outcomes in VVC treatment.
  • These findings represent a promising advancement for antifungal drug delivery and hydrophobic drug carriers in biomedical applications.

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