1 |
Formulation and evaluation of epinephrine-loaded poly(acrylic acid-co-N-isopropylacrylamide) gel for sustained ophthalmic drug delivery Prasanna A, Tsai HC, Hsiue GH Reactive & Functional Polymers, 124, 40, 2018 |
2 |
Drug transport in HEMA conjunctival inserts containing precipitated drug particles Gupta C, Chauhan A Journal of Colloid and Interface Science, 347(1), 31, 2010 |
3 |
Development of a Poloxamer Analogs/Bioadhesive Polymers-Based In Situ Gelling Ophthalmic Delivery System for Tiopronin Jiang TY, Sun CS, Shen X, Wang TY, Wang SL Journal of Applied Polymer Science, 114(2), 775, 2009 |
4 |
Supercritical solvent impregnation of ophthalmic drugs on chitosan derivatives Braga MEM, Pato MTV, Silva HSRC, Ferreira EI, Gil MH, Duarte CMM, De Sousa HC Journal of Supercritical Fluids, 44(2), 245, 2008 |
5 |
Supercritical solvent impregnation of poly(epsilon-caprolactone)/poly(oxyethylene-b-oxypropylene-b-oxyethylene ) and poly(epsilon-caprolactone)/poly(ethylene-vinyl acetate) blends controlled release applications Natu MV, Gil MH, de Sousa HC Journal of Supercritical Fluids, 47(1), 93, 2008 |
6 |
Supercritical fluid impregnation of a biocompatible polymer for ophthalmic drug delivery Duarte ARC, Simplicio AL, Vega-Gonzalez A, Subra-Paternault P, Coimbra P, Gil MH, de Sousa HC, Duarte CMM Journal of Supercritical Fluids, 42(3), 373, 2007 |
7 |
In-vivo studies on dexamethasone sodium phosphate liposomes AlMuhammed J, Ozer AY, Ercan MT, Hincal AA Journal of Microencapsulation, 13(3), 293, 1996 |