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Permeation studies of novel terbinafine formulations containing hydrophobins through human nails in vitro
Ivana Vejnovic1, Cornelia Huonder, Gabriele Betz
1Industrial Pharmacy Research Group of the Department of Pharmaceutical Sciences, University of Basel, Klingelbergstr. 50, 4056 Basel, Switzerland.
Abstract:
Existing treatments of onychomycosis are not satisfactory. Oral therapies have many side effects and topical formulations are not able to penetrate into the human nail plate and deliver therapeutical concentrations of active agent in situ. The purpose of the present study was to determine the amount of terbinafine, which permeates through the human nail plate, from liquid formulations containing enhancers, namely hydrophobins A-C in the concentration of 0.1% (w/v). The used reference solution contained 10% (w/v) of terbinafine in 60% (v/v) ethanol/water without enhancer. Permeability studies have been performed on cadaver nails using Franz diffusion cells modified to mount nail plates and filled with 60% (v/v) ethanol/water in the acceptor chamber. Terbinafine was quantitatively determined by HPLC. The amount of terbinafine remaining in the nail was extracted by 96% ethanol from pulverized nail material after permeation experiment and presented as percentage of the dry nail weight before the milling test. Permeability coefficient (PC) of terbinafine from reference solution was determined to be 1.52E-10 cm/s. Addition of hydrophobins improved PC in the range of 3E-10 to 2E-9 cm/s. Remaining terbinafine reservoir in the nail from reference solution was 0.83% (n=2). An increase of remaining terbinafine reservoir in the nail was observed in two out of three tested formulations containing hydrophobins compared to the reference. In all cases, known minimum inhibitory concentration of terbinafine for dermatophytes (0.003 microg/ml) has been exceeded in the acceptor chamber of the diffusion cells. All tested proteins (hydrophobins) facilitated terbinafine permeation after 10 days of permeation experiment, however one of them achieved an outstanding enhancement factor of 13.05 compared to the reference. Therefore, hydrophobins can be included in the list of potential enhancers for treatment of onychomycosis.
Insights
Hydrophobins significantly enhance terbinafine penetration through human nail plates, exceeding minimum inhibitory concentrations for fungal infections. This suggests hydrophobins are promising enhancers for onychomycosis topical treatments.
Area of Science:
- Pharmaceutical Sciences
- Dermatology
- Biotechnology
Background:
- Current onychomycosis treatments are inadequate, with oral drugs causing side effects and topical agents lacking nail penetration.
- Effective delivery of antifungal agents like terbinafine into the nail plate is crucial for treating fungal nail infections.
Purpose of the Study:
- To evaluate the efficacy of hydrophobins as enhancers for terbinafine permeation through human nail plates.
- To quantify terbinafine delivery into the nail and its concentration in the acceptor chamber using liquid formulations.
Main Methods:
- Permeability studies utilized cadaver nails in modified Franz diffusion cells with terbinafine formulations.
- Hydrophobins (A-C) at 0.1% (w/v) were tested against a reference solution (10% terbinafine in ethanol/water).
- Terbinafine quantification was performed using High-Performance Liquid Chromatography (HPLC) after permeation.
Main Results:
- Hydrophobins increased terbinafine's permeability coefficient (PC) significantly, ranging from 3E-10 to 2E-9 cm/s.
- One hydrophobin formulation achieved an enhancement factor of 13.05, demonstrating superior permeation.
- Terbinafine concentrations in the acceptor chamber exceeded the minimum inhibitory concentration for dermatophytes in all tested formulations.
Conclusions:
- Hydrophobins effectively enhance terbinafine permeation through the human nail plate.
- These proteins show potential as novel enhancers for topical onychomycosis treatments, improving drug delivery.
- Further research into hydrophobin-based formulations could lead to more effective therapies for fungal nail infections.
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