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Published on: December 23, 2016
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.
Background:
Mebendazole (MBZ) is an extremely insoluble and therefore poorly absorbed drug and the variable clinical results may correlate with blood concentrations. The necessity of a prolonged high dose treatment of this drug increases the risk of adverse effects.
Methods:
In the present study we prepared redispersible microparticles (RDM) containing MBZ, an oral, poorly water-soluble drug, in different proportions of low-substituted hydroxypropylcellulose (L-HPC). We investigated the microparticulate structures that emerge spontaneously upon dispersion of an RDM in aqueous medium and elucidated their influence on dissolution, and also on their oral bioavailability and therapeutic efficiency using a murine model of infection with the nematode parasite Trichinella spiralis.
Results:
Elevated percentages of dissolved drug were obtained with RDM at 1:2.5 and 1:5 ratios of MBZ: L-HPC. Thermal analysis showed an amorphization of MBZ in the RDM by the absence of a clear MBZ melting peak in formulations. The rapid dissolution behavior could be due to the decreased drug crystallinity, the fast dissolution time of carriers as L-HPC, together with its superior dispersibility and excellent wetting properties. RDM-1:2.5 and RDM-1:5 resulted in increased maximum plasma concentration and area(s) under the curve (AUC)0-∞ values. Likewise, after oral administration of the RDM-1:2.5 and RDM-1:5 the AUC0-∞ were 2.67- and 2.97-fold higher, respectively, compared to those of pure MBZ. Therapeutic activity, assessed on the Trichinella spiralis life cycle, showed that RDM-1:5 was the most effective in reducing the number of parasites (4.56-fold) as compared to pure MBZ, on the encysted stage.
Conclusion:
THE MBZ: L-HPC RDM might be an effective way of improving oral bioavailability and therapeutic activity using low doses of MBZ (5 mg/kg), which implies a low degree of toxicity for humans.
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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