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Experimental design and optimization of raloxifene hydrochloride loaded nanotransfersomes for transdermal application
Syed Mahmood1, Muhammad Taher1, Uttam Kumar Mandal1
1Department of Pharmaceutical Technology, Kulliyyah of Pharmacy, International Islamic University Malaysia (IIUM), Pahang Darul Makmur, Malaysia.
Abstract:
Raloxifene hydrochloride, a highly effective drug for the treatment of invasive breast cancer and osteoporosis in post-menopausal women, shows poor oral bioavailability of 2%. The aim of this study was to develop, statistically optimize, and characterize raloxifene hydrochloride-loaded transfersomes for transdermal delivery, in order to overcome the poor bioavailability issue with the drug. A response surface methodology experimental design was applied for the optimization of transfersomes, using Box-Behnken experimental design. Phospholipon(®) 90G, sodium deoxycholate, and sonication time, each at three levels, were selected as independent variables, while entrapment efficiency, vesicle size, and transdermal flux were identified as dependent variables. The formulation was characterized by surface morphology and shape, particle size, and zeta potential. Ex vivo transdermal flux was determined using a Hanson diffusion cell assembly, with rat skin as a barrier medium. Transfersomes from the optimized formulation were found to have spherical, unilamellar structures, with a homogeneous distribution and low polydispersity index (0.08). They had a particle size of 134±9 nM, with an entrapment efficiency of 91.00%±4.90%, and transdermal flux of 6.5±1.1 μg/cm(2)/hour. Raloxifene hydrochloride-loaded transfersomes proved significantly superior in terms of amount of drug permeated and deposited in the skin, with enhancement ratios of 6.25±1.50 and 9.25±2.40, respectively, when compared with drug-loaded conventional liposomes, and an ethanolic phosphate buffer saline. Differential scanning calorimetry study revealed a greater change in skin structure, compared with a control sample, during the ex vivo drug diffusion study. Further, confocal laser scanning microscopy proved an enhanced permeation of coumarin-6-loaded transfersomes, to a depth of approximately160 μM, as compared with rigid liposomes. These ex vivo findings proved that a raloxifene hydrochloride-loaded transfersome formulation could be a superior alternative to oral delivery of the drug.
Insights
This study developed optimized transfersomes for transdermal delivery of raloxifene hydrochloride, significantly improving drug bioavailability compared to oral administration. These novel nanocarriers offer a promising alternative for treating breast cancer and osteoporosis.
Area of Science:
- Pharmaceutical Sciences
- Nanotechnology
- Drug Delivery Systems
Background:
- Raloxifene hydrochloride, crucial for post-menopausal osteoporosis and breast cancer, exhibits poor oral bioavailability (2%).
- Transdermal delivery presents an alternative route to enhance drug efficacy and patient compliance.
- Transfersomes offer potential for improved skin permeation due to their unique lipid bilayer structure.
Purpose of the Study:
- To develop and optimize raloxifene hydrochloride-loaded transfersomes for enhanced transdermal delivery.
- To overcome the limitations of poor oral bioavailability associated with raloxifene hydrochloride.
- To statistically optimize formulation parameters using response surface methodology.
Main Methods:
- Box-Behnken experimental design was employed to optimize transfersome formulation.
- Independent variables included Phospholipon® 90G, sodium deoxycholate, and sonication time.
- Dependent variables were entrapment efficiency, vesicle size, and transdermal flux; characterization included particle size, zeta potential, and morphology.
Main Results:
- Optimized transfersomes exhibited spherical, unilamellar structures with a mean particle size of 134±9 nM and high entrapment efficiency (91.00%±4.90%).
- Ex vivo transdermal flux was 6.5±1.1 μg/cm²/hour, with significant permeation and deposition enhancement ratios compared to conventional liposomes and drug solutions.
- Confocal microscopy confirmed enhanced permeation of transfersomes into skin layers.
Conclusions:
- Raloxifene hydrochloride-loaded transfersomes demonstrate superior transdermal delivery capabilities compared to oral administration.
- The optimized transfersome formulation offers a viable strategy to improve therapeutic outcomes for raloxifene hydrochloride.
- Transfersomes represent a promising nanocarrier system for overcoming bioavailability challenges in transdermal drug delivery.
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