Glaucoma

Displaying 51 - 62 of 62CSV
Kamalipour, A., Moghimi, S., Eslani, M., Nishida, T., Mohammadzadeh, V., Micheletti, E., Girkin, C. A., Fazio, M. A., Liebmann, J. M., Zangwill, L. M., & Weinreb, R. N. (2022). A Prospective Longitudinal Study to Investigate Corneal Hysteresis as a Risk Factor of Central Visual Field Progression in Glaucoma. American Journal of Ophthalmology, 240, 159–169. https://doi.org/10.1016/j.ajo.2022.02.025
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Nishida, T., Moghimi, S., Mohammadzadeh, V., Wu, J.-H., Yamane, M. L. M., Kamalipour, A., Mahmoudinezhad, G., Micheletti, E., Liebmann, J. M., Fazio, M. A., Girkin, C. A., Zangwill, L. M., & Weinreb, R. N. (2022). Association Between Ganglion Cell Complex Thinning and Vision-Related Quality of Life in Glaucoma. JAMA Ophthalmology. https://doi.org/10.1001/jamaophthalmol.2022.2140
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Zemborain, Z. Z., Tsamis, E., La Bruna, S., Leshno, A., De Moraes, C. G., & Hood, D. C. (2022). Test of a Retinal Nerve Fiber Bundle Trajectory Model Using Eyes With Glaucomatous Optic Neuropathy. Translational Vision Science & Technology, 11(7), 7. https://doi.org/10.1167/tvst.11.7.7
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Melchior, B., Valenzuela, I. A., De Moraes, C. G., Paula, J. S., Fazio, M. A., Girkin, C. A., Proudfoot, J., Cioffi, G. A., Weinreb, R. N., Zangwill, L. M., & Liebmann, J. M. (2022). Glaucomatous Visual Field Progression in the African Descent and Glaucoma Evaluation Study (ADAGES): Eleven Years of Follow-up. American Journal of Ophthalmology, 239, 122–129. https://doi.org/10.1016/j.ajo.2022.02.003
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Zemborain, Z. Z., Tsamis, E., La Bruna, S., Leshno, A., De Moraes, C. G., Ritch, R., & Hood, D. C. (2022). Distinguishing Healthy From Glaucomatous Eyes With Optical Coherence Tomography Global Circumpapillary Retinal Nerve Fiber Thickness in the Bottom 5th Percentile. Journal of Glaucoma, 31(7), 529–539. https://doi.org/10.1097/ijg.0000000000002016
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Liebmann, J. M., Hood, D. C., de Moraes, C. G., Blumberg, D. M., Harizman, N., Kresch, Y. S., Tsamis, E., & Cioffi, G. A. (2022). Rationale and Development of an OCT-Based Method for Detection of Glaucomatous Optic Neuropathy. Journal of Glaucoma, 31(6), 375–381. https://doi.org/10.1097/ijg.0000000000002005
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Villasana, G. A., Bradley, C., Elze, T., Myers, J. S., Pasquale, L., De Moraes, C. G., Wellik, S., Boland, M. V., Ramulu, P., Hager, G., Unberath, M., & Yohannan, J. (2022). Improving Visual Field Forecasting by Correcting for the Effects of Poor Visual Field Reliability. Translational Vision Science & Technology, 11(5), 27. https://doi.org/10.1167/tvst.11.5.27
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Haring, B., Hovey, K., LaMonte, M., Andrews, C., Saquib, N., Manson, J. E., Shimbo, D., Ritch, R., De Moraes, C. G., & Wassertheil-Smoller, S. (2022). Blood pressure control and glaucoma risk in postmenopausal women: an analysis from the Women’s Health Initiative. Menopause, 29(5), 531–536. https://doi.org/10.1097/gme.0000000000001952
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Chang, A. Y., Tsamis, E., Blumberg, D. M., Al-Aswad, L. A., Cioffi, G. A., Hood, D. C., Liebmann, J. M., & De Moraes, C. G. (2022). The Role of Intraocular Pressure and Systemic Hypertension in the Progression of Glaucomatous Damage to the Macula. Journal of Glaucoma, 31(5), 317–321. https://doi.org/10.1097/ijg.0000000000002018
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Fan, R., Bowd, C., Christopher, M., Brye, N., Proudfoot, J. A., Rezapour, J., Belghith, A., Goldbaum, M. H., Chuter, B., Girkin, C. A., Fazio, M. A., Liebmann, J. M., Weinreb, R. N., Gordon, M. O., Kass, M. A., Kriegman, D., & Zangwill, L. M. (2022). Detecting Glaucoma in the Ocular Hypertension Study Using Deep Learning. JAMA Ophthalmology, 140(4), 383. https://doi.org/10.1001/jamaophthalmol.2022.0244
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La Bruna, S., Rai, A., Mao, G., Kerr, J., Amin, H., Zemborain, Z. Z., Leshno, A., Tsamis, E., De Moraes, C. G., & Hood, D. C. (2022). The OCT RNFL Probability Map and Artifacts Resembling Glaucomatous Damage. Translational Vision Science & Technology, 11(3), 18. https://doi.org/10.1167/tvst.11.3.18
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