Investigation of microemulsion system for transdermal delivery of itraconazole

A new oil-in-water microemulsion-based (ME) gel containing 1% itraconazole (ITZ) was developed for topical delivery. The solubility of ITZ in oils and surfactants was evaluated to identify potential excipients. The microemulsion existence ranges were defined through the construction of the pseudoter...

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Main Authors: Arpan Chudasama, Vineetkumar Patel, Manish Nivsarkar, Kamala Vasu, Chamanlal Shishoo
Format: Article
Language:English
Published: Wolters Kluwer Medknow Publications 2011-01-01
Series:Journal of Advanced Pharmaceutical Technology & Research
Subjects:
Online Access:http://www.japtr.org/article.asp?issn=2231-4040;year=2011;volume=2;issue=1;spage=30;epage=38;aulast=Chudasama
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author Arpan Chudasama
Vineetkumar Patel
Manish Nivsarkar
Kamala Vasu
Chamanlal Shishoo
author_facet Arpan Chudasama
Vineetkumar Patel
Manish Nivsarkar
Kamala Vasu
Chamanlal Shishoo
author_sort Arpan Chudasama
collection DOAJ
description A new oil-in-water microemulsion-based (ME) gel containing 1% itraconazole (ITZ) was developed for topical delivery. The solubility of ITZ in oils and surfactants was evaluated to identify potential excipients. The microemulsion existence ranges were defined through the construction of the pseudoternary phase diagrams. The optimized microemulsion was characterized for its morphology and particle size distribution. The optimized microemulsion was incorporated into polymeric gels of Lutrol F127, Xanthan gum, and Carbopol 934 for convenient application and evaluated for pH, drug content, viscosity, and spreadability. In vitro drug permeation of ME gels was determined across excised rat skins. Furthermore, in vitro antimycotic inhibitory activity of the gels was conducted using agar-cup method and Candida albicans as a test organism. The droplet size of the optimized microemulsion was found to be <100 nm. The optimized Lutrol F 127 ME gel showed pH in the range of 5.68΁0.02 and spreadability of 5.75΁1.396 gcm/s. The viscosity of ME gel was found to be 1805.535΁542.4 mPa s. The permeation rate (flux) of ITZ from prepared ME gel was found to be 4.234 ΅g/cm/h. The release profile exhibited diffusion controlled mechanism of drug release from ME ITZ gel. The developed ME gels were nonirritant and there was no erythema or edema. The antifungal activity of ITZ showed the widest zone of inhibition with Lutrol F127 ME gel. These results indicate that the studied ME gel may be a promising vehicle for topical delivery of ITZ.
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spelling doaj.art-72196c1d8fe447979d8f3ae67d9022d62022-12-22T01:14:24ZengWolters Kluwer Medknow PublicationsJournal of Advanced Pharmaceutical Technology & Research2231-40400976-20942011-01-0121303810.4103/2231-4040.79802Investigation of microemulsion system for transdermal delivery of itraconazoleArpan ChudasamaVineetkumar PatelManish NivsarkarKamala VasuChamanlal ShishooA new oil-in-water microemulsion-based (ME) gel containing 1% itraconazole (ITZ) was developed for topical delivery. The solubility of ITZ in oils and surfactants was evaluated to identify potential excipients. The microemulsion existence ranges were defined through the construction of the pseudoternary phase diagrams. The optimized microemulsion was characterized for its morphology and particle size distribution. The optimized microemulsion was incorporated into polymeric gels of Lutrol F127, Xanthan gum, and Carbopol 934 for convenient application and evaluated for pH, drug content, viscosity, and spreadability. In vitro drug permeation of ME gels was determined across excised rat skins. Furthermore, in vitro antimycotic inhibitory activity of the gels was conducted using agar-cup method and Candida albicans as a test organism. The droplet size of the optimized microemulsion was found to be <100 nm. The optimized Lutrol F 127 ME gel showed pH in the range of 5.68΁0.02 and spreadability of 5.75΁1.396 gcm/s. The viscosity of ME gel was found to be 1805.535΁542.4 mPa s. The permeation rate (flux) of ITZ from prepared ME gel was found to be 4.234 ΅g/cm/h. The release profile exhibited diffusion controlled mechanism of drug release from ME ITZ gel. The developed ME gels were nonirritant and there was no erythema or edema. The antifungal activity of ITZ showed the widest zone of inhibition with Lutrol F127 ME gel. These results indicate that the studied ME gel may be a promising vehicle for topical delivery of ITZ.http://www.japtr.org/article.asp?issn=2231-4040;year=2011;volume=2;issue=1;spage=30;epage=38;aulast=ChudasamaAntifungalmicroemulsionpermeabilityphase diagramtransdermal
spellingShingle Arpan Chudasama
Vineetkumar Patel
Manish Nivsarkar
Kamala Vasu
Chamanlal Shishoo
Investigation of microemulsion system for transdermal delivery of itraconazole
Journal of Advanced Pharmaceutical Technology & Research
Antifungal
microemulsion
permeability
phase diagram
transdermal
title Investigation of microemulsion system for transdermal delivery of itraconazole
title_full Investigation of microemulsion system for transdermal delivery of itraconazole
title_fullStr Investigation of microemulsion system for transdermal delivery of itraconazole
title_full_unstemmed Investigation of microemulsion system for transdermal delivery of itraconazole
title_short Investigation of microemulsion system for transdermal delivery of itraconazole
title_sort investigation of microemulsion system for transdermal delivery of itraconazole
topic Antifungal
microemulsion
permeability
phase diagram
transdermal
url http://www.japtr.org/article.asp?issn=2231-4040;year=2011;volume=2;issue=1;spage=30;epage=38;aulast=Chudasama
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AT vineetkumarpatel investigationofmicroemulsionsystemfortransdermaldeliveryofitraconazole
AT manishnivsarkar investigationofmicroemulsionsystemfortransdermaldeliveryofitraconazole
AT kamalavasu investigationofmicroemulsionsystemfortransdermaldeliveryofitraconazole
AT chamanlalshishoo investigationofmicroemulsionsystemfortransdermaldeliveryofitraconazole