Optimization, characterization and in vivo evaluation of mupirocin nanocrystals for topical administration

Muna B Najm1, Mutasem Rawas-Qalaji1, Nouran H Assar2

  • 1Department of Pharmaceutics & Pharmaceutical Technology, College of Pharmacy, University of Sharjah, Sharjah 27272, United Arab Emirates; Research Institute for Medical and Health Sciences, University of Sharjah, Sharjah 27272, United Arab Emirates.

Insights

Nanocrystallization enhanced mupirocin (MP) efficacy against MRSA skin infections. Mupirocin-nanocrystals (MP-NC) showed improved solubility, dissolution, and skin penetration, leading to faster wound healing in vivo.

Area of Science:

  • Pharmaceutical Sciences
  • Nanotechnology
  • Dermatology

Background:

  • Topical antibiotic treatment for skin infections, especially MRSA, is hindered by bacterial biofilms and antimicrobial resistance.
  • Mupirocin (MP) efficacy is limited by poor water solubility and increasing bacterial resistance.
  • Nanocrystallization offers a strategy to enhance the therapeutic performance of poorly soluble drugs.

Purpose of the Study:

  • To improve the therapeutic efficacy of mupirocin for skin infections by modifying its physicochemical properties via nanocrystallization.
  • To develop and optimize mupirocin-nanocrystals (MP-NC) for enhanced topical delivery and antimicrobial activity.

Main Methods:

  • Mupirocin-nanocrystals (MP-NC) were prepared using a nanoprecipitation technique and optimized via a D-optimal response surface design.
  • Characterization included particle size, polydispersity, solubility, and dissolution rate.
  • In vitro, ex vivo (pig ear skin), microbiological (MIC/MBC), and in vivo (rat burn wound model) studies were conducted.

Main Results:

  • Optimized MP-NC exhibited ultra-small, monodisperse spherical particles (70 nm diameter, 0.2 PDI).
  • MP-NC demonstrated a 10-fold increase in saturation solubility and a 9-fold increase in dissolution rate.
  • Ex vivo studies showed a 2-fold increase in dermal deposition, with significant drug presence at 500 µm depth.
  • Microbiological assays revealed a 16-fold reduction in MIC and MBC.
  • In vivo studies demonstrated rapid and complete healing of infected burn wounds in rats treated with MP-NC cream compared to a marketed product.

Conclusions:

  • Nanocrystallization significantly enhanced the solubility, dissolution, and antimicrobial efficacy of mupirocin.
  • MP-NC formulations demonstrated improved skin permeation and deposition, suggesting enhanced local drug delivery.
  • MP-NC cream represents a promising therapeutic approach for treating challenging skin infections, including those caused by MRSA.