Deep Retinal Layer Microvasculature Dropout Detected by the Optical Coherence Tomography Angiography in Glaucoma.
暂无分享,去创建一个
Robert N Weinreb | Akram Belghith | Linda M Zangwill | Alberto Diniz-Filho | Felipe A Medeiros | Min Hee Suh | Alberto Diniz-Filho | F. Medeiros | L. Zangwill | R. Weinreb | M. Suh | A. Yarmohammadi | P. I. Manalastas | A. Belghith | L. Saunders | Luke J Saunders | Adeleh Yarmohammadi | Patricia Isabel C Manalastas
[1] Robert N Weinreb,et al. Optical Coherence Tomography Angiography Vessel Density in Glaucomatous Eyes with Focal Lamina Cribrosa Defects. , 2016, Ophthalmology.
[2] Young Kook Kim,et al. Lamina cribrosa defects in eyes with glaucomatous disc haemorrhage , 2016, Acta ophthalmologica.
[3] David Huang,et al. Optical Coherence Tomography Angiography Vessel Density in Healthy, Glaucoma Suspect, and Glaucoma Eyes , 2016, Investigative ophthalmology & visual science.
[4] H. Park,et al. Association between Corneal Deformation Amplitude and Posterior Pole Profiles in Primary Open-Angle Glaucoma. , 2016, Ophthalmology.
[5] Nadia K. Waheed,et al. Investigating the choriocapillaris and choroidal vasculature with new optical coherence tomography technologies , 2016, Progress in Retinal and Eye Research.
[6] J. Fujimoto,et al. IMAGE ARTIFACTS IN OPTICAL COHERENCE TOMOGRAPHY ANGIOGRAPHY , 2015, Retina.
[7] Guohua Shi,et al. Correlation between optic disc perfusion and glaucomatous severity in patients with open-angle glaucoma: an optical coherence tomography angiography study , 2015, Graefe's Archive for Clinical and Experimental Ophthalmology.
[8] F. Medeiros,et al. Assessment of Choroidal Thickness in Healthy and Glaucomatous Eyes Using Swept Source Optical Coherence Tomography , 2014, PloS one.
[9] R. Ritch,et al. Effect of focal lamina cribrosa defect on glaucomatous visual field progression. , 2014, Ophthalmology.
[10] Robert N Weinreb,et al. Evaluation of retinal and choroidal thickness by swept-source optical coherence tomography: repeatability and assessment of artifacts. , 2014, American journal of ophthalmology.
[11] Eun Ji Lee,et al. Recent structural alteration of the peripheral lamina cribrosa near the location of disc hemorrhage in glaucoma. , 2014, Investigative ophthalmology & visual science.
[12] Martin F. Kraus,et al. Optical coherence tomography angiography of optic disc perfusion in glaucoma. , 2014, Ophthalmology.
[13] K. Park,et al. Pathogenesis and clinical implications of optic disk hemorrhage in glaucoma. , 2014, Survey of ophthalmology.
[14] Robert N Weinreb,et al. Defects of the lamina cribrosa in eyes with localized retinal nerve fiber layer loss. , 2014, Ophthalmology.
[15] Yoel Arieli,et al. Effect of intraocular pressure on the hemodynamics of the central retinal artery: a mathematical model. , 2014, Mathematical biosciences and engineering : MBE.
[16] R. Ritch,et al. Factors associated with focal lamina cribrosa defects in glaucoma. , 2013, Investigative ophthalmology & visual science.
[17] V. Öner,et al. Influence of Axial Length on Peripapillary Retinal Nerve Fiber Layer Thickness in Children: A Study by RTVue Spectral-Domain Optical Coherence Tomography , 2013, Current eye research.
[18] C. Pournaras,et al. Choroidal hemodynamic in myopic patients with and without primary open‐angle glaucoma , 2013, Acta ophthalmologica.
[19] R. Ritch,et al. Focal lamina cribrosa defects associated with glaucomatous rim thinning and acquired pits. , 2013, JAMA ophthalmology.
[20] James G. Fujimoto,et al. Quantitative OCT angiography of optic nerve head blood flow , 2012, Biomedical optics express.
[21] Jost B. Jonas,et al. Parapapillary Atrophy: Histological Gamma Zone and Delta Zone , 2012, PloS one.
[22] R. Ritch,et al. In vivo evaluation of focal lamina cribrosa defects in glaucoma. , 2012, Archives of ophthalmology.
[23] Martin F. Kraus,et al. Split-spectrum amplitude-decorrelation angiography with optical coherence tomography , 2012, Optics express.
[24] S. Azen,et al. Blood pressure, perfusion pressure, and open-angle glaucoma: the Los Angeles Latino Eye Study. , 2010, Investigative ophthalmology & visual science.
[25] Robert N Weinreb,et al. The African Descent and Glaucoma Evaluation Study (ADAGES): design and baseline data. , 2009, Archives of ophthalmology.
[26] R. Weinreb. Ocular blood flow in glaucoma. , 2009, Canadian journal of ophthalmology. Journal canadien d'ophtalmologie.
[27] T. Yatagai,et al. In vivo high-contrast imaging of deep posterior eye by 1-microm swept source optical coherence tomography and scattering optical coherence angiography. , 2007, Optics express.
[28] Jost B Jonas,et al. Clinical implications of peripapillary atrophy in glaucoma , 2005, Current opinion in ophthalmology.
[29] Paul Mitchell,et al. Retinal vessel diameter and open-angle glaucoma: the Blue Mountains Eye Study. , 2005, Ophthalmology.
[30] A. G. Bennett,et al. Improvements on Littmann's method of determining the size of retinal features by fundus photography , 1994, Graefe's Archive for Clinical and Experimental Ophthalmology.
[31] R. Klein,et al. Relationships between age, blood pressure, and retinal vessel diameters in an older population. , 2003, Investigative ophthalmology & visual science.
[32] Jost B Jonas,et al. Small neuroretinal rim and large parapapillary atrophy as predictive factors for progression of glaucomatous optic neuropathy. , 2002, Ophthalmology.
[33] Hans E. Grossniklaus,et al. Morphometric changes of the choriocapillaris and the choroidal vasculature in eyes with advanced glaucomatous changes , 2002, Vision Research.
[34] J. Jonas,et al. Ophthalmoscopic evaluation of the optic nerve head. , 1999, Survey of ophthalmology.
[35] W. Freeman,et al. Indocyanine green angiography of the peripapillary region in glaucomatous eyes by confocal scanning laser ophthalmoscopy. , 1997, American journal of ophthalmology-glaucoma.
[36] K. Yoshikawa,et al. Peripapillary fluorescein angiographic findings in primary open angle glaucoma. , 1996, The British journal of ophthalmology.
[37] G A Cioffi,et al. Microvasculature of the human optic nerve. , 1995, American journal of ophthalmology.
[38] J. Flammer. The vascular concept of glaucoma. , 1994, Survey of ophthalmology.
[39] E. Bartov,et al. Axial length and scleral thickness effect on susceptibility to glaucomatous damage: a theoretical model implementing Laplace's law. , 1992, Ophthalmic research.
[40] J. Jonas,et al. Parapapillary chorioretinal atrophy in normal and glaucoma eyes. I. Morphometric data. , 1989, Investigative ophthalmology & visual science.
[41] H. Quigley. Reappraisal of the mechanisms of glaucomatous optic nerve damage , 1987, Eye.
[42] J. R. Landis,et al. An application of hierarchical kappa-type statistics in the assessment of majority agreement among multiple observers. , 1977, Biometrics.
[43] W. Green,et al. Histologic studies of the vasculature of the anterior optic nerve. , 1976, American journal of ophthalmology.
[44] D. R. Anderson,et al. Reevaluation of the optic disk vasculature. , 1976, American journal of ophthalmology.
[45] Jacob Cohen,et al. Weighted kappa: Nominal scale agreement provision for scaled disagreement or partial credit. , 1968 .