Minimal effects of VEGF and anti-VEGF drugs on the permeability or selectivity of RPE tight junctions.
暂无分享,去创建一个
[1] P. Wangemann,et al. A Claudin-9–Based Ion Permeability Barrier Is Essential for Hearing , 2009, PLoS genetics.
[2] M. Fromm,et al. Claudin-10 exists in six alternatively spliced isoforms that exhibit distinct localization and function , 2009, Journal of Cell Science.
[3] Heping Zhang,et al. Diffusible retinal secretions regulate the expression of tight junctions and other diverse functions of the retinal pigment epithelium , 2008, Molecular vision.
[4] Magali Saint-Geniez,et al. Endogenous VEGF Is Required for Visual Function: Evidence for a Survival Role on Müller Cells and Photoreceptors , 2008, PloS one.
[5] A. Maminishkis,et al. Control of chemokine gradients by the retinal pigment epithelium. , 2008, Investigative ophthalmology & visual science.
[6] Steffen Schmitz-Valckenberg,et al. High-resolution spectral domain-OCT imaging in geographic atrophy associated with age-related macular degeneration. , 2008, Investigative ophthalmology & visual science.
[7] Salvatore Grisanti,et al. The role of vascular endothelial growth factor and other endogenous interplayers in age-related macular degeneration , 2008, Progress in Retinal and Eye Research.
[8] Y. Courtois,et al. PlGF-1 and VEGFR-1 Pathway Regulation of the External Epithelial Hemato-Ocular Barrier , 2008, Ophthalmic Research.
[9] K. Tsubota,et al. Inhibition of choroidal neovascularization with an anti-inflammatory carotenoid astaxanthin. , 2008, Investigative ophthalmology & visual science.
[10] C. Svendsen,et al. A novel serum-free method for culturing human prenatal retinal pigment epithelial cells. , 2008, Investigative ophthalmology & visual science.
[11] J. Hou,et al. Claudin-16 and claudin-19 interact and form a cation-selective tight junction complex. , 2008, The Journal of clinical investigation.
[12] C. V. Van Itallie,et al. The density of small tight junction pores varies among cell types and is increased by expression of claudin-2 , 2008, Journal of Cell Science.
[13] Z. Ablonczy,et al. VEGF modulation of retinal pigment epithelium resistance. , 2007, Experimental eye research.
[14] M. Weitzman,et al. Analysis of the RPE transcriptome reveals dynamic changes during the development of the outer blood-retinal barrier. , 2007, Molecular vision.
[15] P. Heiduschka,et al. Penetration of bevacizumab through the retina after intravitreal injection in the monkey. , 2007, Investigative ophthalmology & visual science.
[16] P. Heiduschka,et al. Ultrastructural findings in the primate eye after intravitreal injection of bevacizumab. , 2007, American journal of ophthalmology.
[17] Gerald Liew,et al. Ranibizumab for neovascular age-related macular degeneration. , 2007, The New England journal of medicine.
[18] M. Moschos,et al. Intravitreal use of bevacizumab (Avastin) for choroidal neovascularization due to ARMD: a preliminary multifocal-ERG and OCT study , 2007, Documenta Ophthalmologica.
[19] Ning Zhang,et al. Stimulation of apical and basolateral VEGF-A and VEGF-C secretion by oxidative stress in polarized retinal pigment epithelial cells. , 2006, Molecular vision.
[20] C. V. Van Itallie,et al. Two splice variants of claudin-10 in the kidney create paracellular pores with different ion selectivities. , 2006, American journal of physiology. Renal physiology.
[21] J. Hou,et al. Study of Claudin Function by RNA Interference* , 2006, Journal of Biological Chemistry.
[22] Stephan C F Neuhauss,et al. Mutations in the tight-junction gene claudin 19 (CLDN19) are associated with renal magnesium wasting, renal failure, and severe ocular involvement. , 2006, American journal of human genetics.
[23] Philip J Rosenfeld,et al. Ranibizumab for neovascular age-related macular degeneration. , 2006, The New England journal of medicine.
[24] Susan Schneider,et al. Ranibizumab versus verteporfin for neovascular age-related macular degeneration. , 2006, The New England journal of medicine.
[25] Arvydas Maminishkis,et al. Confluent monolayers of cultured human fetal retinal pigment epithelium exhibit morphology and physiology of native tissue. , 2006, Investigative ophthalmology & visual science.
[26] Yan Luo,et al. Effects of culture conditions on heterogeneity and the apical junctional complex of the ARPE-19 cell line. , 2006, Investigative ophthalmology & visual science.
[27] C. V. Van Itallie,et al. Claudins and epithelial paracellular transport. , 2006, Annual review of physiology.
[28] Bradley King,et al. Characterization of Barrier Properties and Inducible VEGF Expression of Several Types of Retinal Pigment Epithelium in Medium-Term Culture , 2006, Current eye research.
[29] N. Farman,et al. Aldosterone and tight junctions: modulation of claudin-4 phosphorylation in renal collecting duct cells. , 2005, American journal of physiology. Cell physiology.
[30] Olaf Strauss,et al. The retinal pigment epithelium in visual function. , 2005, Physiological reviews.
[31] N. Bressler. Age-related macular degeneration is the leading cause of blindness... , 2004, JAMA.
[32] Marco A Zarbin,et al. Current concepts in the pathogenesis of age-related macular degeneration. , 2004, Archives of ophthalmology.
[33] H. Ishii,et al. Vascular endothelial growth factor increases fenestral permeability in hepatic sinusoidal endothelial cells , 2003, Liver international : official journal of the International Association for the Study of the Liver.
[34] E. Sugano,et al. Interleukin-1beta and barrier function of retinal pigment epithelial cells (ARPE-19): aberrant expression of junctional complex molecules. , 2003, Investigative ophthalmology & visual science.
[35] C. Rahner,et al. Apical and basal regulation of the permeability of the retinal pigment epithelium. , 2003, Investigative ophthalmology & visual science.
[36] Robert S Warren,et al. Expression and endocytosis of VEGF and its receptors in human colonic vascular endothelial cells. , 2002, American journal of physiology. Gastrointestinal and liver physiology.
[37] L. Reuss. Tight Junction Permeability to Ions and Water , 2001 .
[38] D. Bok,et al. A cell culture medium that supports the differentiation of human retinal pigment epithelium into functionally polarized monolayers. , 2001, Molecular vision.
[39] C. Su,et al. Concentration of vascular endothelial growth factor in the subretinal fluid of retinal detachment. , 2000, Journal of ocular pharmacology and therapeutics : the official journal of the Association for Ocular Pharmacology and Therapeutics.
[40] O. Meijer,et al. Epithelial sodium channel regulated by aldosterone-induced protein sgk. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[41] H. Hayashi,et al. [Concentration of vascular endothelial growth factor within the subretinal space and vitreous fluid in rhegmatogenous retinal detachment]. , 1997, Nippon Ganka Gakkai zasshi.
[42] M. Balda,et al. Functional dissociation of paracellular permeability and transepithelial electrical resistance and disruption of the apical- basolateral intramembrane diffusion barrier by expression of a mutant tight junction membrane protein , 1996, The Journal of cell biology.
[43] B. Deurs,et al. Effects of brefeldin A on endocytosis, transcytosis and transport to the Golgi complex in polarized MDCK cells , 1992, The Journal of cell biology.
[44] G. Conn,et al. Amino acid and cDNA sequences of a vascular endothelial cell mitogen that is homologous to platelet-derived growth factor. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[45] D. Connolly,et al. Vascular permeability factor, an endothelial cell mitogen related to PDGF. , 1989, Science.
[46] K. Simons,et al. Endocytosis in filter-grown Madin-Darby canine kidney cells , 1989, The Journal of cell biology.
[47] F. Ferris,et al. Age-related macular degeneration and blindness due to neovascular maculopathy. , 1984, Archives of ophthalmology.
[48] D. Powell,et al. Barrier function of epithelia. , 1981, The American journal of physiology.
[49] P. Claude. Morphological factors influencing transepithelial permeability: A model for the resistance of theZonula Occludens , 1978, The Journal of Membrane Biology.
[50] L. Rizzolo. Development and role of tight junctions in the retinal pigment epithelium. , 2007, International review of cytology.
[51] Richard Horn,et al. Ionic selectivity revisited: The role of kinetic and equilibrium processes in ion permeation through channels , 2005, The Journal of Membrane Biology.
[52] P. Rakoczy,et al. VEGF differentially regulates transcription and translation of ZO-1α+ and ZO-1α− and mediates trans-epithelial resistance in cultured endothelial and epithelial cells , 2005, Cell and Tissue Research.
[53] M. Cereijido,et al. Effect of temperature on the occluding junctions of monolayers of epithelioid cells (MDCK) , 2005, The Journal of Membrane Biology.
[54] Paris G Tranos,et al. Macular edema. , 2004, Survey of ophthalmology.
[55] 伊田 宜史. RPE cells modulate subretinal neovascularization, but do not cause regression in mice with sustained expression of VEGF , 2004 .
[56] A. Tartakoff. Laboratory methods in vesicular and vectorial transport , 1991 .
[57] G. Korte,et al. Epithelium-capillary interactions in the eye: the retinal pigment epithelium and the choriocapillaris. , 1989, International review of cytology.