1 |
Distinct roles of LRP5 and LRP6 in Wnt signaling regulation in the retina Singh HD, Ma JX, Takahashi Y Biochemical and Biophysical Research Communications, 545, 8, 2021 |
2 |
Over-expression of human PP5 gene in mice induces corneal hyperplasia and leads to ocular surface squamous neoplasia Dou LY, Wang J, Deng R, Wang C, Xie ZW, Yong WD Biochemical and Biophysical Research Communications, 529(2), 487, 2020 |
3 |
Thermo-sensitive gellan maleate/N-isopropylacrylamide hydrogels: initial "in vitro" and "in vivo" evaluation as ocular inserts Hamcerencu M, Desbrieres J, Pop M, Riess G Polymer Bulletin, 77(2), 741, 2020 |
4 |
Cow ghee fortified ocular topical microemulsion; in vitro, ex vivo, and in vivo evaluation Gupta A, Nayak K, Misra M Journal of Microencapsulation, 36(7), 603, 2019 |
5 |
Joule heating and buoyancy effects in electro-osmotic peristaltic transport of aqueous nanofluids through a microchannel with complex wave propagation Tripathi D, Sharma A, Beg OA Advanced Powder Technology, 29(3), 639, 2018 |
6 |
Mathematical and computational modeling of drug release from an ocular iontophoretic drug delivery device Naghipoor J, Jafary N, Rabczuk T International Journal of Heat and Mass Transfer, 123, 1035, 2018 |
7 |
Characterization of an in vitro Penetration System for Ocular lontophoresis Hikima T, Kawakami M, Tojo K Journal of Chemical Engineering of Japan, 51(5), 418, 2018 |
8 |
Nanostructured lipid carriers for intraocular brimonidine localisation: development, in-vitro and in-vivo evaluation El-Salamouni NS, Farid RM, El-Kamel AH, El-Gamal SS Journal of Microencapsulation, 35(1), 102, 2018 |
9 |
Ocular risks assessment in a central receiver solar power facility based on measured data of direct solar radiation Rascon DS, Ferreira AD, da Silva MCG, Iriarte C Solar Energy, 164, 77, 2018 |
10 |
Nanodispersion-loaded mucoadhesive polymeric inserts for prolonged treatment of post-operative ocular inflammation Morsi N, Ghorab D, Refai H, Teba H Journal of Microencapsulation, 34(3), 280, 2017 |