| Literature DB >> 24250473 |
Prabhakar Panzade1, Ashish Heda, Prashant Puranik, Mayur Patni, Vipul Mogal.
Abstract
The purpose of the present study was to explore the passive and electrically assisted transdermal transport of Granisetron hydrochloride (GRA) in solution and gel formulation through iontophoresis and also the feasibility of delivering therapeutic amounts of drug for the treatment of chemotherapy-induced nausea and vomiting. In this study, iontophoretic permeation of GRA through guinea pig skin using silver-silver chloride electrode was performed and the effects of different variables on this phenomenon were evaluated. Preliminary in-vitro studies using aqueous GRA formulations investigating the effect of drug concentration (5, 10, 15 and 20 mg mL(-1)) on passive permeation, current density (0.2, 0.4 and 0.5 mA cm(-2)), mode of current application, penetration enhancers and effect of application duration were performed. As expected, GRA delivery was found to be increased with the elevation in drug concentration and current density. Anodal continuous current delivery was more effective in the permeation of GRA than the pulsed current method. Penetration enhancers were ineffective to show synergistic effect in conjunction with iontophoresis. It was evident that reservoir in the skin was not formed during the iontophoretic delivery. The results confirm that GRA is an excellent candidate for iontophoresis. The present study demonstrated the feasibility of GRA transdermal transport through the Lutrol F-127 gel by iontophoresis. Further in-vivo studies will be required to support in-vitro conclusions and develop in-vitro, in-vivo correlations.Entities:
Keywords: Granisetron; Iontophoresis; Penetration enhancer; Poloxamer; Transdermal
Year: 2012 PMID: 24250473 PMCID: PMC3832148
Source DB: PubMed Journal: Iran J Pharm Res ISSN: 1726-6882 Impact factor: 1.696
Figure 1Effect of drug concentration
Permeation parameters for passive diffusion
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| 5 | 0.0962 | 0.00675 ± 0.0047 | 0.0004 |
| 10 | 0.1899 | 0.0149 ± 0.0039 | 0.0004 |
| 15 | 0.1931 | 0.0150 ± 0.00444 | 0.0005 |
| 20 | 0.2007 | 0.0157 ± 0.0035 | 0.0006 |
Jss = Steady state flux, Kp = Permeability coefficient, Er = Enhancement ratio, Q8 = Cumulative amount permeated in 8 h
Data Mean ± S.D.
Figure 2Optimization of current density
Effect of various variables on permeation parameters
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| 0.1899 | 0.0149 ± 0.0039 | 0.0004 | 1.0 |
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| 1.2654 | 0.1170 ± 0.167 | 0.0039 | 7.8523 | |
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| 2.8587 | 0.3169 ± 0.177 | 0.0105 | 21.2684 | |
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| 4.7459 | 0.6322 ± 0.207 | 0.0218 | 42.4295 | |
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| 2.6070 | 0.4189 ± 0.287 | 0.0161 | 28.1140 |
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| 0.2140 | 0.4120 ± 0.300 | 0.0137 | 27.6510 | |
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| 0.5090 | 0.0983 ± 0.229 | 0.0032 | 6.5973 | |
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| 3.7882 | 0.5630 ± 0.0224 | 0.0187 | 37.5872 |
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| 4.0873 | 0.5728 ± 0.0652 | 0.0226 | 45.6375 | |
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| 3.5818 | 0.5435 ± 0.0384 | 0.0197 | 39.8255 | |
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| 4.4079 | 0.6213 ± 0.0863 | 0.0243 | 49.0805 | |
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| 0.1899 | 0.0149 ± 0.0039 | 0.0004 | 3.0755 |
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| 0.6587 | 0.1624 ± 0.205 | 0.0108 | 10.8993 | |
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| 1.0436 | 0.1860 ± 0.281 | 0.0124 | 12.4832 | |
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| 4.7459 | 0.6322 ± 0.249 | 0.0218 | 42.4295 | |
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| 0.1899 | 0.0149 ± 0.207 | 0.0005 | 1.0 |
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| 0.0755 | 0.0075 ± 0.005 | 0.0004 | 1.0 | |
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| 4.7459 | 0.6322 ± 0.0039 | 0.0218 | 42.4295 | |
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| 2.2266 | 0.2917 ± 0.148 | 0.0097 | 19.5771 | |
Figure 3Effect of pulsatile current
Figure 4Effect of penetration enhancer
Figure 5Effect of duration of application of current
Evaluation of Lutrol- F127 gels
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| A | 5.77 ± 0.11 | 1440 ± 21 | ++ |
| B | 6.98 ± 0.12 | 9224 ± 45 | +++ |
| C | 6.63 ± 0.16 | 9986 ± 53 | ++ |
Figure 6Comparison of solution and gel