Solid and Semisolid Innovative Formulations Containing Miconazole-Loaded Solid Lipid Microparticles to Promote Drug

Viviana De Caro1, Libero Italo Giannola1, Giulia Di Prima1

  • 1Dipartimento di Scienze e Tecnologie Biologiche Chimiche e Farmaceutiche (STEBICEF), University of Palermo, Via Archirafi 32, 90123 Palermo, Italy.

Pharmaceutics
|September 28, 2021
PubMed

Insights

New solid lipid microparticles (SLMs) enhance antifungal drug delivery for oral candidiasis. These microparticles improve drug penetration and accumulation in mucosal tissues, offering a promising alternative to conventional therapies.

Area of Science:

  • Pharmaceutical Sciences
  • Drug Delivery Systems
  • Nanotechnology

Background:

  • Current antifungal therapies for oral candidiasis (OC) face challenges including poor drug retention, low concentrations, and patient non-compliance.
  • Micro and nanotechnology offer potential solutions to overcome these limitations in antifungal drug delivery.

Purpose of the Study:

  • To develop and evaluate miconazole-loaded solid lipid microparticles (SLMs) as a penetration enhancer for oral candidiasis treatment.
  • To assess the efficacy of SLMs incorporated into buccal gels and films for improved drug delivery and reduced dosage.

Main Methods:

  • Synthesized cetyl decanoate and 1-hexadecanol to prepare miconazole-loaded SLMs.
  • Characterized SLM properties including particle size, drug loading, and melting point.
  • Evaluated ex vivo MCZ accumulation in porcine buccal mucosa compared to a commercial oral gel.
  • Formulated SLMs into buccal gels and mucoadhesive films for further assessment.

Main Results:

  • Prepared SLMs were spherical (45-300 µm), amorphous drug-loaded, with a suitable melting range for oromucosal administration.
  • SLMs significantly increased miconazole (MCZ) accumulation in porcine buccal mucosa by up to three-fold compared to Daktarin® 2% oral gel.
  • Buccal films containing SLMs demonstrated stability, reproducibility, and high mucoadhesion.
  • Lower doses of MCZ delivered via SLM formulations achieved enhanced mucosal accumulation.

Conclusions:

  • Formulated SLMs act as effective penetration enhancers for lipophilic drugs like miconazole.
  • SLM-based buccal gels and films offer a promising strategy to reduce drug dosage for oral candidiasis treatment.
  • The developed SLM technology is suitable for incorporation into various administrable dosage forms, improving therapeutic outcomes.

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