Anti-VEGF therapy in the management of retinopathy of prematurity: what we learn from representative animal models of oxygen-induced retinopathy
暂无分享,去创建一个
[1] J. D. de Haan,et al. Ebselen by modulating oxidative stress improves hypoxia-induced macroglial Müller cell and vascular injury in the retina. , 2015, Experimental eye research.
[2] A. Chédotal,et al. Slit2 signaling through Robo1 and Robo2 is required for retinal neovascularization , 2015, Nature Medicine.
[3] Wei-Chi Wu,et al. Serum levels of vascular endothelial growth factor and related factors after intravitreous bevacizumab injection for retinopathy of prematurity. , 2015, JAMA ophthalmology.
[4] J. Blanks,et al. A hypoxia-responsive glial cell-specific gene therapy vector for targeting retinal neovascularization. , 2014, Investigative ophthalmology & visual science.
[5] A. Chuang,et al. Refractive outcomes following bevacizumab monotherapy compared with conventional laser treatment: a randomized clinical trial. , 2014, JAMA ophthalmology.
[6] Zhihong Yang,et al. VEGFA activates erythropoietin receptor and enhances VEGFR2-mediated pathological angiogenesis. , 2014, The American journal of pathology.
[7] Zhihong Yang,et al. Endothelial NADPH oxidase 4 mediates vascular endothelial growth factor receptor 2–induced intravitreal neovascularization in a rat model of retinopathy of prematurity , 2014, Molecular vision.
[8] C. Tokunaga,et al. Effects of anti-VEGF treatment on the recovery of the developing retina following oxygen-induced retinopathy. , 2014, Investigative ophthalmology & visual science.
[9] B. Jones,et al. Quantitative analyses of retinal vascular area and density after different methods to reduce VEGF in a rat model of retinopathy of prematurity. , 2014, Investigative ophthalmology & visual science.
[10] K. S. Kim,et al. Transcriptional activation of hypoxia-inducible factor-1 (HIF-1) in myeloid cells promotes angiogenesis through VEGF and S100A8 , 2014, Proceedings of the National Academy of Sciences.
[11] D. Lazzaro,et al. Hydrogen peroxide accumulation in the choroid during intermittent hypoxia increases risk of severe oxygen-induced retinopathy in neonatal rats. , 2013, Investigative ophthalmology & visual science.
[12] Bing Pan,et al. VEGF111b, a new member of VEGFxxxb isoforms and induced by mitomycin C, inhibits angiogenesis. , 2013, Biochemical and biophysical research communications.
[13] J. Flannery,et al. Short hairpin RNA-mediated knockdown of VEGFA in Müller cells reduces intravitreal neovascularization in a rat model of retinopathy of prematurity. , 2013, The American journal of pathology.
[14] P. Kehoe,et al. VEGF-A165b is an endogenous neuroprotective splice isoform of vascular endothelial growth factor A in vivo and in vitro. , 2013, The American journal of pathology.
[15] S. Harper,et al. SRPK1 inhibition modulates VEGF splicing to reduce pathological neovascularization in a rat model of retinopathy of prematurity. , 2013, Investigative ophthalmology & visual science.
[16] J. Sears,et al. Prolyl hydroxylase inhibition during hyperoxia prevents oxygen-induced retinopathy in the rat 50/10 model. , 2013, Investigative ophthalmology & visual science.
[17] P. Khaw,et al. VEGF-A Is Necessary and Sufficient for Retinal Neuroprotection in Models of Experimental Glaucoma , 2013, The American journal of pathology.
[18] M. Hartnett,et al. Anti-VEGF antibody leads to later atypical intravitreous neovascularization and activation of angiogenic pathways in a rat model of retinopathy of prematurity. , 2013, Investigative ophthalmology & visual science.
[19] R. Caldwell,et al. Hyperoxia causes regression of vitreous neovascularization by downregulating VEGF/VEGFR2 pathway. , 2013, Investigative ophthalmology & visual science.
[20] M. Hartnett,et al. Mechanisms and management of retinopathy of prematurity. , 2012, The New England journal of medicine.
[21] C. Gilbert,et al. An update on progress and the changing epidemiology of causes of childhood blindness worldwide. , 2012, Journal of AAPOS : the official publication of the American Association for Pediatric Ophthalmology and Strabismus.
[22] Chang Sik Cho,et al. Anti-angiogenic effect of luteolin on retinal neovascularization via blockade of reactive oxygen species production. , 2012, Investigative ophthalmology & visual science.
[23] Sookja K. Chung,et al. Aldose reductase deficiency reduced vascular changes in neonatal mouse retina in oxygen-induced retinopathy. , 2012, Investigative ophthalmology & visual science.
[24] S. J. Lichtenstein,et al. Reactivation of retinopathy of prematurity after bevacizumab injection. , 2012, Archives of ophthalmology.
[25] A. Hafezi-Moghadam,et al. Intravitreal anti-VEGF therapy blocks inflammatory cell infiltration and re-entry into the circulation in retinal angiogenesis. , 2012, Investigative ophthalmology & visual science.
[26] P. Bagnoli,et al. Beta-adrenoreceptor agonism influences retinal responses to hypoxia in a model of retinopathy of prematurity. , 2012, Investigative ophthalmology & visual science.
[27] M. Hartnett,et al. VEGF-mediated STAT3 activation inhibits retinal vascularization by down-regulating local erythropoietin expression. , 2012, The American journal of pathology.
[28] G. Lutty,et al. VEGF 165b in the developing vasculatures of the fetal human eye , 2012, Developmental dynamics : an official publication of the American Association of Anatomists.
[29] V. Čabarkapa,et al. Changes of serum VEGF concentration after intravitreal injection of Avastin in treatment of diabetic retinopathy , 2012, European journal of ophthalmology.
[30] P. Bagnoli,et al. Antiangiogenic effects of β2‐adrenergic receptor blockade in a mouse model of oxygen‐induced retinopathy , 2011, Journal of neurochemistry.
[31] J. Blanks,et al. Hypoxia-regulated retinal glial cell-specific promoter for potential gene therapy in disease. , 2011, Investigative ophthalmology & visual science.
[32] Alice Z Chuang,et al. Efficacy of intravitreal bevacizumab for stage 3+ retinopathy of prematurity. , 2011, The New England journal of medicine.
[33] P. Fortunato,et al. Role of the adrenergic system in a mouse model of oxygen-induced retinopathy: antiangiogenic effects of beta-adrenoreceptor blockade. , 2011, Investigative ophthalmology & visual science.
[34] S. Harper,et al. Recombinant human VEGF165b inhibits experimental choroidal neovascularization. , 2010, Investigative ophthalmology & visual science.
[35] S. Harper,et al. VEGF-A165b is cytoprotective and antiangiogenic in the retina. , 2010, Investigative ophthalmology & visual science.
[36] T. Gardiner,et al. Reduced nitro-oxidative stress and neural cell death suggests a protective role for microglial cells in TNFalpha-/- mice in ischemic retinopathy. , 2010, Investigative ophthalmology & visual science.
[37] R. Adams,et al. Axon guidance molecules in vascular patterning. , 2010, Cold Spring Harbor perspectives in biology.
[38] M. Hartnett,et al. Increased angiogenic factors associated with peripheral avascular retina and intravitreous neovascularization: a model of retinopathy of prematurity. , 2010, Archives of ophthalmology.
[39] Christopher A. Jones,et al. Slit2–Robo4 signalling promotes vascular stability by blocking Arf6 activity , 2009, Nature Cell Biology.
[40] Lois E. H. Smith,et al. Suppression of retinal neovascularization by erythropoietin siRNA in a mouse model of proliferative retinopathy. , 2009, Investigative ophthalmology & visual science.
[41] J. Sears,et al. Prolyl hydroxylase inhibition during hyperoxia prevents oxygen-induced retinopathy , 2008, Proceedings of the National Academy of Sciences.
[42] David Maberley,et al. Expression of integrins in human proliferative diabetic retinopathy membranes. , 2008, Canadian journal of ophthalmology. Journal canadien d'ophtalmologie.
[43] Maryam Hamdollah-Zadeh,et al. Recombinant human VEGF165b protein is an effective anti-cancer agent in mice. , 2008, European journal of cancer.
[44] Grace Byfield,et al. Neutralizing VEGF decreases tortuosity and alters endothelial cell division orientation in arterioles and veins in a rat model of ROP: relevance to plus disease. , 2008, Investigative ophthalmology & visual science.
[45] F. Mannello,et al. Erythropoietin and its receptor in breast cancer: putting together the pieces of the puzzle. , 2008, The oncologist.
[46] Joshua D. Wythe,et al. Corrigendum: Robo4 stabilizes the vascular network by inhibiting pathologic angiogenesis and endothelial hyperpermeability , 2008, Nature Medicine.
[47] M. Hartnett,et al. Activated NAD(P)H oxidase from supplemental oxygen induces neovascularization independent of VEGF in retinopathy of prematurity model. , 2008, Investigative ophthalmology & visual science.
[48] Lois E. H. Smith,et al. Erythropoietin deficiency decreases vascular stability in mice. , 2008, The Journal of clinical investigation.
[49] G. Dusting,et al. Important Role of Nox4 Type NADPH Oxidase in Angiogenic Responses in Human Microvascular Endothelial Cells In Vitro , 2007, Arteriosclerosis, thrombosis, and vascular biology.
[50] M. Hartnett,et al. Inhibition of NAD(P)H oxidase reduces apoptosis and avascular retina in an animal model of retinopathy of prematurity , 2007, Molecular vision.
[51] K. Sugamura,et al. Important Role of Erythropoietin Receptor to Promote VEGF Expression and Angiogenesis in Peripheral Ischemia in Mice , 2007, Circulation research.
[52] G. Thurston,et al. Delta-like ligand 4 (Dll4) is induced by VEGF as a negative regulator of angiogenic sprouting , 2007, Proceedings of the National Academy of Sciences.
[53] M. Hartnett,et al. Orientation of endothelial cell division is regulated by VEGF signaling during blood vessel formation. , 2007, Blood.
[54] R. Willette,et al. SB-267268, a nonpeptidic antagonist of alpha(v)beta3 and alpha(v)beta5 integrins, reduces angiogenesis and VEGF expression in a mouse model of retinopathy of prematurity. , 2006, Investigative ophthalmology & visual science.
[55] S. Harper,et al. Diabetic retinopathy is associated with a switch in splicing from anti- to pro-angiogenic isoforms of vascular endothelial growth factor , 2005, Diabetologia.
[56] M. Bartoli,et al. Inhibition of NAD(P)H oxidase activity blocks vascular endothelial growth factor overexpression and neovascularization during ischemic retinopathy. , 2005, The American journal of pathology.
[57] H. Sucov,et al. The role of erythropoietin in regulating angiogenesis. , 2004, Developmental biology.
[58] Marina Ziche,et al. VEGF165b, an Inhibitory Vascular Endothelial Growth Factor Splice Variant , 2004, Cancer Research.
[59] N. Ferrara,et al. The biology of VEGF and its receptors , 2003, Nature Medicine.
[60] R. Wenger,et al. The antimycotic ciclopirox olamine induces HIF‐1α stability, VEGF expression, and angiogenesis , 2003, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[61] O. Blokhina,et al. Antioxidants, oxidative damage and oxygen deprivation stress: a review. , 2003, Annals of botany.
[62] D. Gillatt,et al. VEGF165b, an inhibitory splice variant of vascular endothelial growth factor, is down-regulated in renal cell carcinoma. , 2002, Cancer research.
[63] N. Ferrara. Role of vascular endothelial growth factor in regulation of physiological angiogenesis. , 2001, American journal of physiology. Cell physiology.
[64] Christopher J. Robinson,et al. The splice variants of vascular endothelial growth factor (VEGF) and their receptors. , 2001, Journal of cell science.
[65] B. Fanburg,et al. Reactive oxygen species in cell signaling. , 2000, American journal of physiology. Lung cellular and molecular physiology.
[66] T. Byzova,et al. A mechanism for modulation of cellular responses to VEGF: activation of the integrins. , 2000, Molecular cell.
[67] M Aguet,et al. VEGF is required for growth and survival in neonatal mice. , 1999, Development.
[68] S. Stacker,et al. The vascular endothelial growth factor family; proteins which guide the development of the vasculature , 1998, International journal of experimental pathology.
[69] N. Ferrara,et al. The biology of vascular endothelial growth factor. , 1997, Endocrine reviews.
[70] L. Aiello,et al. Suppression of retinal neovascularization in vivo by inhibition of vascular endothelial growth factor (VEGF) using soluble VEGF-receptor chimeric proteins. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[71] L. Aiello,et al. Vascular endothelial growth factor in ocular fluid of patients with diabetic retinopathy and other retinal disorders. , 1994, The New England journal of medicine.
[72] J. Penn,et al. Exposure to Alternating Hypoxia and Hyperoxia Causes Severe Proliferative Retinopathy in the Newborn Rat , 1994, Pediatric Research.
[73] R. Flower,et al. Retrolental Fibroplasia: Evidence for a Role of the Prostaglandin Cascade in the Pathogenesis of Oxygen-Induced Retinopathy in the Newborn Beagle , 1981, Pediatric Research.
[74] A. Garner,et al. Intermittent oxygen in retrolental fibroplasia. , 1970, The Journal of pathology.
[75] M. Hartnett,et al. Pathophysiology and mechanisms of severe retinopathy of prematurity. , 2015, Ophthalmology.
[76] M. Hartnett,et al. Signaling pathways triggered by oxidative stress that mediate features of severe retinopathy of prematurity. , 2013, JAMA ophthalmology.
[77] J. D. de Haan,et al. Lack of the antioxidant glutathione peroxidase-1 (GPx1) exacerbates retinopathy of prematurity in mice. , 2013, Investigative ophthalmology & visual science.
[78] V. Haase. Regulation of erythropoiesis by hypoxia-inducible factors. , 2013, Blood reviews.
[79] E. Duh,et al. Inhibition of pathological retinal angiogenesis by the integrin αvβ3 antagonist tetraiodothyroacetic acid (tetrac). , 2012, Experimental eye research.
[80] R. Ali,et al. Vascular Biology , Atherosclerosis , and Endothelium Biology Endogenous Erythropoietin Protects Neuroretinal Function in Ischemic Retinopathy , 2012 .
[81] Joshua D. Wythe,et al. Robo4 stabilizes the vascular network by inhibiting pathologic angiogenesis and endothelial hyperpermeability , 2008, Nature Medicine.
[82] Sheena Sharma,et al. Age-related changes in sympathetic neurotransmission in rat retina and choroid. , 2007, Experimental eye research.
[83] R. Juliano,et al. Integrin Signaling , 2005, Cancer and Metastasis Reviews.
[84] Lois E. H. Smith,et al. Oxygen-induced retinopathy in the mouse. , 1994, Investigative ophthalmology & visual science.
[85] N. Ashton. Editorial: Retrolental fibroplasia now retinopathy ofprematurity , 1984 .
[86] submit your manuscript | www.dovepress.com , 2022 .