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Sustained ophthalmic delivery of highly soluble drug using pH‐triggered inner layer‐embedded contact lens

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Graphical abstract Figure. No Caption available. Abstract In the present work the feasibility of using inner layer‐embedded contact lenses (CLs) to achieve sustained release of highly water soluble drug, betaxolol… Click to show full abstract

Graphical abstract Figure. No Caption available. Abstract In the present work the feasibility of using inner layer‐embedded contact lenses (CLs) to achieve sustained release of highly water soluble drug, betaxolol hydrochloride (BH) on the ocular surface was investigated. Blend film of cellulose acetate and Eudragit S100 was selected as the inner layer, while silicone hydrogel was used as outer layer to construct inner layer‐embedded contact lenses. Influence of polymer ratio in the blend film on in vitro drug release behavior in phosphate buffered solution or simulated tear fluid was studied and drug‐polymer interaction, erosion and swelling of the blend film were characterized to better understand drug‐release mechanism. Storage stability of the inner layer‐embedded contact lenses in phosphate buffer solution was also conducted, with ignorable drug loss and negligible change in drug release pattern within 30 days. In vivo pharmacokinetic study in rabbits showed sustained drug release for over 240 h in tear fluid, indicating prolonged drug precorneal residence time. In conclusion, cellulose acetate/Eudragit S100 inner layer‐embedded contact lenses are quite promising as controlled‐release carrier of highly water soluble drug for ophthalmic delivery.

Keywords: drug; embedded contact; inner layer; layer embedded

Journal Title: International Journal of Pharmaceutics
Year Published: 2018

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