Enhanced bioavailability and anthelmintic efficacy of mebendazole in redispersible microparticles with

Paloma Marina de la Torre-Iglesias1, Juan José García-Rodriguez2, Guillermo Torrado3

  • 1Department of Pharmaceutical Technology, Faculty of Pharmacy, Complutense University, Madrid, Spain ; Institute of Industrial Pharmacy, Complutense University, Madrid, Spain.

Abstract

Insights

Mebendazole (MBZ) redispersible microparticles (RDMs) significantly improved oral absorption and therapeutic efficacy in a mouse model. This formulation enhances MBZ bioavailability, potentially allowing for lower, safer doses.

Area of Science:

  • Pharmaceutical Sciences
  • Drug Delivery Systems
  • Pharmacology

Background:

  • Mebendazole (MBZ) exhibits poor water solubility and absorption, leading to variable clinical outcomes and necessitating high-dose, prolonged treatments with increased toxicity risks.
  • Optimizing MBZ delivery is crucial for enhancing its therapeutic effectiveness and reducing adverse effects.

Purpose of the Study:

  • To develop and evaluate Mebendazole (MBZ) redispersible microparticles (RDMs) formulated with low-substituted hydroxypropylcellulose (L-HPC).
  • To investigate the impact of these RDMs on MBZ dissolution, oral bioavailability, and therapeutic efficacy against *Trichinella spiralis* infection in a murine model.

Main Methods:

  • RDMs containing MBZ and L-HPC at varying ratios (MBZ:L-HPC) were prepared.
  • Spontaneous microparticulate structures upon dispersion were analyzed for their influence on drug dissolution.
  • Oral bioavailability and therapeutic efficacy were assessed in mice infected with *Trichinella spiralis*.

Main Results:

  • RDMs with MBZ:L-HPC ratios of 1:2.5 and 1:5 demonstrated enhanced drug dissolution, attributed to MBZ amorphization and L-HPC properties.
  • RDMs significantly increased maximum plasma concentration and AUC0-∞ values (2.67- to 2.97-fold higher than pure MBZ).
  • The RDM-1:5 formulation was most effective, reducing parasite load by 4.56-fold compared to pure MBZ.

Conclusions:

  • Mebendazole (MBZ) RDMs formulated with L-HPC offer an effective strategy to improve oral bioavailability and therapeutic activity.
  • This approach enables the use of lower MBZ doses (5 mg/kg), potentially minimizing human toxicity.

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