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УДК: | 617.736 DOI: https://doi.org/10.25276/2410-1257-2020-3-62-64 |
Корниловский И.М.
Новая концепция патогенеза формирования друз при возрастной макулярной дегенерации сетчатки
1. Cohen SY, Dubois L, Tadayoni R et al. Prevalence of reticular pseudodrusen in age-related macular degeneration with newly diagnosed choroidal neovascularisation. British Journal of Ophthalmology. 2006; 91(3): 354-359.
2. Sarks J, Arnold J, Ho I-V, Sarks S, Killingsworth M. Evolution of reticular pseudodrusen. British Journal of Ophthalmology. 2010; 95 (7): 979-985.
3. Spaide RF, Curcio CA. Drusen characterization with multimodal imaging. Retina. 2010; 30 (9): 1441-1454.
4. Bhutto I, Lutty G. Understanding age-related macular degeneration (AMD): Relationships between the photoreceptor/retinal pigment epithelium/Bruch’s membrane/choriocapillaris complex. Molecular Aspects of Medicine. 2012; 33(4): 295-317.
5. Spaide RF. Outer retinal atrophy after regression of subretinal drusenoid deposits as a newly recognized form of late age-related macular degeneration. Retina. 2013;33(9):1800-1808.
6. Ouyang Y, Heussen FM, Hariri A et al. Optical Coherence Tomography-Based Observation of the Natural History of Drusenoid Lesion in Eyes with Dry Age-related Macular Degeneration. Ophthalmology. 2013; 120(12): 2656-2665.
7. Wu Z, Luu CD, Ayton LN et al. Optical Coherence Tomography-Defined Changes Preceding the Development of Drusen-Associated Atrophy in Age-Related Macular Degeneration. Ophthalmology. 2014; 121(12): 2415-2422.
8. Kovach JL, Schwartz SG, Agarwal A et al. The Relationship Between Reticular Pseudodrusen and Severity of AMD. Ophthalmology. 2016; 123(4): 921-923.
9. Abokyi S, To C, Lam T, Tse D. Central Role of Oxidative Stress in Age-Related Macular Degeneration: Evidence from a Review of the Molecular Mechanisms and Animal Models. Oxidative Medicine and Cellular Longevity, 2020. https://doi.org/10.1155/2020/7901270
10. Семенова Н.С., Акопян В.С., Родин А.С. Вариабельность макулярных друз: возможности мультимодальной визуализации. Вестник офтальмологии. 2016; 6: 78-86.
2. Sarks J, Arnold J, Ho I-V, Sarks S, Killingsworth M. Evolution of reticular pseudodrusen. British Journal of Ophthalmology. 2010; 95 (7): 979-985.
3. Spaide RF, Curcio CA. Drusen characterization with multimodal imaging. Retina. 2010; 30 (9): 1441-1454.
4. Bhutto I, Lutty G. Understanding age-related macular degeneration (AMD): Relationships between the photoreceptor/retinal pigment epithelium/Bruch’s membrane/choriocapillaris complex. Molecular Aspects of Medicine. 2012; 33(4): 295-317.
5. Spaide RF. Outer retinal atrophy after regression of subretinal drusenoid deposits as a newly recognized form of late age-related macular degeneration. Retina. 2013;33(9):1800-1808.
6. Ouyang Y, Heussen FM, Hariri A et al. Optical Coherence Tomography-Based Observation of the Natural History of Drusenoid Lesion in Eyes with Dry Age-related Macular Degeneration. Ophthalmology. 2013; 120(12): 2656-2665.
7. Wu Z, Luu CD, Ayton LN et al. Optical Coherence Tomography-Defined Changes Preceding the Development of Drusen-Associated Atrophy in Age-Related Macular Degeneration. Ophthalmology. 2014; 121(12): 2415-2422.
8. Kovach JL, Schwartz SG, Agarwal A et al. The Relationship Between Reticular Pseudodrusen and Severity of AMD. Ophthalmology. 2016; 123(4): 921-923.
9. Abokyi S, To C, Lam T, Tse D. Central Role of Oxidative Stress in Age-Related Macular Degeneration: Evidence from a Review of the Molecular Mechanisms and Animal Models. Oxidative Medicine and Cellular Longevity, 2020. https://doi.org/10.1155/2020/7901270
10. Семенова Н.С., Акопян В.С., Родин А.С. Вариабельность макулярных друз: возможности мультимодальной визуализации. Вестник офтальмологии. 2016; 6: 78-86.
Страница источника: 62-64
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