Geographic atrophy: pathophysiology and current therapeutic strategies
暂无分享,去创建一个
[1] S. Bakri,et al. Geographic atrophy: Mechanism of disease, pathophysiology, and role of the complement system , 2023, Journal of managed care & specialty pharmacy.
[2] T. Keenan. Geographic Atrophy in Age-Related Macular Degeneration , 2023, Ophthalmology science.
[3] A. Rachitskaya,et al. Identifying geographic atrophy , 2023, Current opinion in ophthalmology.
[4] E. Cahir-McFarland,et al. Pharmacokinetic and Target Engagement Measures of ANX007, an Anti-C1q Antibody Fragment, Following Intravitreal Administration in Nonhuman Primates , 2023, Investigative ophthalmology & visual science.
[5] J. Sangiovanni,et al. Genetic deficiency and pharmacological modulation of RORα regulate laser-induced choroidal neovascularization , 2023, Aging.
[6] Anna K Dreismann,et al. Gene targeting as a therapeutic avenue in diseases mediated by the complement alternative pathway , 2022, Immunological reviews.
[7] D. Fong,et al. C1q and the classical complement cascade in geographic atrophy secondary to age-related macular degeneration , 2022, International Journal of Retina and Vitreous.
[8] Joshua R. Ehrlich,et al. Prevalence of Age-Related Macular Degeneration in the US in 2019. , 2022, JAMA ophthalmology.
[9] Simon J. Clark,et al. Age‐related macular degeneration: A disease of extracellular complement amplification , 2022, Immunological reviews.
[10] Jason A. Wiles,et al. Danicopan, an Oral Complement Factor D Inhibitor, Exhibits High and Sustained Exposure in Ocular Tissues in Preclinical Studies , 2022, Translational vision science & technology.
[11] P. Fogagnolo,et al. Compass Fundus-Guided Perimetry in Geographic Atrophy , 2022, Journal of ophthalmology.
[12] John D Lambris,et al. Emerging opportunities for C3 inhibition in the eye. , 2022, Seminars in immunology.
[13] E. Agrón,et al. Reticular Pseudodrusen: the Third Macular Risk Feature for Progression to Late Age-related Macular Degeneration. , 2022, Ophthalmology.
[14] P. Rosenfeld,et al. Multimodal Imaging and En Face OCT Detection of Calcified Drusen in Eyes with Age-Related Macular Degeneration , 2022, Ophthalmology science.
[15] M. Shchepinov,et al. Deuterated docosahexaenoic acid protects against oxidative stress and geographic atrophy‐like retinal degeneration in a mouse model with iron overload , 2022, Aging cell.
[16] Shrinivas J. Pundlik,et al. Dark Adaptation and Its Role in Age-Related Macular Degeneration , 2022, Journal of clinical medicine.
[17] A. Silva,et al. Exudative versus Nonexudative Age-Related Macular Degeneration: Physiopathology and Treatment Options , 2022, International journal of molecular sciences.
[18] F. Chen,et al. Cuticular Drusen in Age-Related Macular Degeneration: Association with Progression and Impact on Visual Sensitivity. , 2022, Ophthalmology.
[19] D. Glavač,et al. The Role of Vitamin A in Retinal Diseases , 2022, International journal of molecular sciences.
[20] S. Tenreiro,et al. Retinal Progression Biomarkers of Early and Intermediate Age-Related Macular Degeneration , 2021, Life.
[21] I. Washington,et al. C20D3-Vitamin A Prevents Retinal Pigment Epithelium Atrophic Changes in a Mouse Model , 2021, Translational vision science & technology.
[22] G. Querques,et al. CHOROIDAL VASCULARITY INDEX IS ASSOCIATED WITH GEOGRAPHIC ATROPHY PROGRESSION , 2021, Retina.
[23] H. Ameri,et al. Fundus Autofluorescence and Clinical Applications , 2021, Journal of ophthalmic & vision research.
[24] A. D. den Hollander,et al. Common haplotypes at the CFH locus and low-frequency variants in CFHR2 and CFHR5 associate with systemic FHR concentrations and age-related macular degeneration , 2021, American journal of human genetics.
[25] Young Gun Park,et al. Complement System and Potential Therapeutics in Age-Related Macular Degeneration , 2021, International journal of molecular sciences.
[26] Joan W. Miller,et al. A Review of Completed and Ongoing Complement Inhibitor Trials for Geographic Atrophy Secondary to Age-Related Macular Degeneration , 2021, Journal of clinical medicine.
[27] J. Duker,et al. Geographic atrophy: where we are now and where we are going , 2021, Current opinion in ophthalmology.
[28] C. Curcio,et al. Imaging Features Associated with Progression to Geographic Atrophy in Age-Related Macular Degeneration: CAM Report 5. , 2020, Ophthalmology. Retina.
[29] S. Sivaprasad,et al. Drusen and pachydrusen: the definition, pathogenesis, and clinical significance , 2020, Eye.
[30] A. Palestine,et al. Systemic activation of the complement system in patients with advanced age-related macular degeneration , 2020, European journal of ophthalmology.
[31] G. Ying,et al. Growth Rate of Geographic Atrophy Secondary to Age-Related Macular Degeneration: A Meta-Analysis of Natural History Studies and Implications for Designing Future Trials , 2020, Ophthalmic Research.
[32] R. Kim,et al. Prevalence and Pattern of Geographic Atrophy in Asia: the Asian Eye Epidemiology Consortium. , 2020, Ophthalmology.
[33] D. Saban,et al. Microglia versus Monocytes: Distinct Roles in Degenerative Diseases of the Retina , 2020, Trends in Neurosciences.
[34] E. Fletcher. Contribution of microglia and monocytes to the development and progression of age related macular degeneration , 2020, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[35] Leonard D. Goldstein,et al. Integration of eQTL and a Single-Cell Atlas in the Human Eye Identifies Causal Genes for Age-Related Macular Degeneration. , 2020, Cell reports.
[36] Janet R. Sparrow,et al. Lessons learned from quantitative fundus autofluorescence , 2020, Progress in Retinal and Eye Research.
[37] C. Green,et al. Targeting connexin hemichannels to control the inflammasome: the correlation between connexin43 and NLRP3 expression in chronic eye disease , 2019, Expert opinion on therapeutic targets.
[38] C. Curcio,et al. Incomplete Retinal Pigment Epithelial and Outer Retinal Atrophy in Age-Related Macular Degeneration: Classification of Atrophy Meeting Report 4. , 2019, Ophthalmology.
[39] Ivana K. Kim,et al. Percentage of Foveal vs Total Macular Geographic Atrophy as a Predictor of Visual Acuity in Age-Related Macular Degeneration , 2019, Journal of vitreoretinal diseases.
[40] Peter Nürnberg,et al. Assessment of Novel Genome-Wide Significant Gene Loci and Lesion Growth in Geographic Atrophy Secondary to Age-Related Macular Degeneration. , 2019, JAMA ophthalmology.
[41] J. Ting,et al. The NLRP3 inflammasome: molecular activation and regulation to therapeutics , 2019, Nature Reviews Immunology.
[42] J. Ash,et al. Mitochondrial oxidative stress in the retinal pigment epithelium (RPE) led to metabolic dysfunction in both the RPE and retinal photoreceptors , 2019, Redox biology.
[43] C. Luu,et al. Microperimetry for geographic atrophy secondary to age-related macular degeneration. , 2019, Survey of ophthalmology.
[44] Alexis Battle,et al. Retinal transcriptome and eQTL analyses identify genes associated with age-related macular degeneration , 2019, Nature Genetics.
[45] Nadia K. Waheed,et al. Choriocapillaris changes in dry age-related macular degeneration and geographic atrophy: a review , 2018, Eye and Vision.
[46] J. Provis,et al. Subretinal macrophages produce classical complement activator C1q leading to the progression of focal retinal degeneration , 2018, Molecular Neurodegeneration.
[47] R. Devenyi,et al. Final Analysis of LIGHTSITE I: A Double-Masked, Randomized, Sham-Controlled Study with Photobiomodulation in Dry Age-Related Macular Degeneration Subjects , 2018 .
[48] M. Calero,et al. An Overview of the Role of Lipofuscin in Age-Related Neurodegeneration , 2018, Front. Neurosci..
[49] J. Elstrott,et al. Classical and alternative complement activation on photoreceptor outer segments drives monocyte-dependent retinal atrophy , 2018, Scientific Reports.
[50] Jesse D. Sengillo,et al. HTRA1, an age‐related macular degeneration protease, processes extracellular matrix proteins EFEMP1 and TSP1 , 2018, Aging cell.
[51] John D Lambris,et al. The Complement System Is Critical in Maintaining Retinal Integrity during Aging , 2018, Front. Aging Neurosci..
[52] Glenn J Jaffe,et al. Consensus Definition for Atrophy Associated with Age-Related Macular Degeneration on OCT: Classification of Atrophy Report 3. , 2017, Ophthalmology.
[53] J. Buxbaum,et al. cGAS drives non-canonical inflammasome activation in age-related macular degeneration , 2017, Nature Medicine.
[54] Paul Mitchell,et al. The Progression of Geographic Atrophy Secondary to Age-Related Macular Degeneration. , 2017, Ophthalmology.
[55] S. J. Talks,et al. The Role of New Imaging Methods in Managing Age‐Related Macular Degeneration , 2017, Asia-Pacific journal of ophthalmology.
[56] J. Linton,et al. Biochemical adaptations of the retina and retinal pigment epithelium support a metabolic ecosystem in the vertebrate eye , 2017, bioRxiv.
[57] Ursula Schmidt-Erfurth,et al. THE PATHOPHYSIOLOGY OF GEOGRAPHIC ATROPHY SECONDARY TO AGE-RELATED MACULAR DEGENERATION AND THE COMPLEMENT PATHWAY AS A THERAPEUTIC TARGET , 2017, Retina.
[58] Glenn J Jaffe,et al. Imaging Protocols in Clinical Studies in Advanced Age-Related Macular Degeneration: Recommendations from Classification of Atrophy Consensus Meetings. , 2017, Ophthalmology.
[59] S. Sivaprasad,et al. Aging retinal function is improved by near infrared light (670 nm) that is associated with corrected mitochondrial decline , 2017, Neurobiology of Aging.
[60] S. Sadda,et al. CLINICAL ENDPOINTS FOR THE STUDY OF GEOGRAPHIC ATROPHY SECONDARY TO AGE-RELATED MACULAR DEGENERATION , 2016, Retina.
[61] B. Monia,et al. Reduction in ocular complement factor B protein in mice and monkeys by systemic administration of factor B antisense oligonucleotide , 2016, Molecular vision.
[62] Ruth E. Hogg,et al. Risk factors and biomarkers of age-related macular degeneration , 2016, Progress in Retinal and Eye Research.
[63] Peng Dai,et al. Alu RNA accumulation in hyperglycemia augments oxidative stress and impairs eNOS and SOD2 expression in endothelial cells , 2016, Molecular and Cellular Endocrinology.
[64] Ivana K. Kim,et al. Regression of Some High-risk Features of Age-related Macular Degeneration (AMD) in Patients Receiving Intensive Statin Treatment , 2016, EBioMedicine.
[65] Ivana K. Kim,et al. A large genome-wide association study of age-related macular degeneration highlights contributions of rare and common variants , 2015, Nature Genetics.
[66] J. Sangiovanni,et al. Nuclear receptor RORα regulates pathologic retinal angiogenesis by modulating SOCS3-dependent inflammation , 2015, Proceedings of the National Academy of Sciences.
[67] Rui Zhang,et al. Associations Between the T280M and V249I SNPs in CX3CR1 and the Risk of Age-Related Macular Degeneration. , 2015, Investigative ophthalmology & visual science.
[68] L. Ayton,et al. Longitudinal changes in microperimetry and low luminance visual acuity in age-related macular degeneration. , 2015, JAMA ophthalmology.
[69] M. Daly,et al. Rare genetic variants in the CFI gene are associated with advanced age-related macular degeneration and commonly result in reduced serum factor I levels , 2015, Human molecular genetics.
[70] T. Langmann,et al. Retinal microglia: Just bystander or target for therapy? , 2015, Progress in Retinal and Eye Research.
[71] Sarah L. Doyle,et al. NLRP3 Inflammasome and Pathobiology in AMD , 2015, Journal of clinical medicine.
[72] D. Mihai,et al. Morphological and physiological retinal degeneration induced by intravenous delivery of vitamin A dimers in rabbits , 2014, Disease Models & Mechanisms.
[73] G. Barile,et al. Bioactive lysophospholipids generated by hepatic lipase degradation of lipoproteins lead to complement activation via the classical pathway. , 2014, Investigative ophthalmology & visual science.
[74] J. Kamei,et al. Overexpression of HtrA1 and exposure to mainstream cigarette smoke leads to choroidal neovascularization and subretinal deposits in aged mice. , 2014, Investigative ophthalmology & visual science.
[75] G. Abecasis,et al. Age-related macular degeneration: genetics and biology coming together. , 2014, Annual review of genomics and human genetics.
[76] D. Mihai,et al. Vitamin A dimers trigger the protracted death of retinal pigment epithelium cells , 2014, Cell Death and Disease.
[77] J. Haines,et al. Rare complement factor H variant associated with age-related macular degeneration in the Amish. , 2014, Investigative ophthalmology & visual science.
[78] R. Klein,et al. Global prevalence of age-related macular degeneration and disease burden projection for 2020 and 2040: a systematic review and meta-analysis. , 2014, The Lancet. Global health.
[79] Robyn H. Guymer,et al. Proof of Concept, Randomized, Placebo-Controlled Study of the Effect of Simvastatin on the Course of Age-Related Macular Degeneration , 2013, PloS one.
[80] J. Köhl,et al. C3a modulates IL-1β secretion in human monocytes by regulating ATP efflux and subsequent NLRP3 inflammasome activation. , 2013, Blood.
[81] Sivakumar Gowrisankar,et al. Rare variants in CFI, C3 and C9 are associated with high risk of advanced age-related macular degeneration , 2013, Nature Genetics.
[82] E. Lenassi,et al. Complement component C3 plays a critical role in protecting the aging retina in a murine model of age-related macular degeneration. , 2013, The American journal of pathology.
[83] M. Kawaichi,et al. HtrA1 is induced by oxidative stress and enhances cell senescence through p38 MAPK pathway. , 2013, Experimental eye research.
[84] I. Hong,et al. Predictors for the progression of geographic atrophy in patients with age-related macular degeneration: fundus autofluorescence study with modified fundus camera , 2013, Eye.
[85] J. Matsubara,et al. Inflammatory mediators induced by amyloid-beta in the retina and RPE in vivo: implications for inflammasome activation in age-related macular degeneration. , 2013, Investigative ophthalmology & visual science.
[86] L. Singerman,et al. INVESTIGATION OF ORAL FENRETINIDE FOR TREATMENT OF GEOGRAPHIC ATROPHY IN AGE-RELATED MACULAR DEGENERATION , 2013, Retina.
[87] G. Jeffery,et al. Treatment with 670 nm Light Up Regulates Cytochrome C Oxidase Expression and Reduces Inflammation in an Age-Related Macular Degeneration Model , 2013, PloS one.
[88] M. van Lookeren Campagne,et al. Activation of the alternative complement pathway in vitreous is controlled by genetics in age-related macular degeneration. , 2012, Investigative ophthalmology & visual science.
[89] J. C. Saari. Vitamin A metabolism in rod and cone visual cycles. , 2012, Annual review of nutrition.
[90] W. Hauswirth,et al. DICER1 Loss and Alu RNA Induce Age-Related Macular Degeneration via the NLRP3 Inflammasome and MyD88 , 2012, Cell.
[91] J. Hollyfield,et al. NLRP3 has a protective role in age-related macular degeneration through the induction of IL-18 by drusen components , 2012, Nature Medicine.
[92] Richard Wormald,et al. Age and gender variations in age-related macular degeneration prevalence in populations of European ancestry: a meta-analysis. , 2012, Ophthalmology.
[93] A. Vingrys,et al. Visual function tests as potential biomarkers in age-related macular degeneration. , 2011, Investigative ophthalmology & visual science.
[94] T. Ideker,et al. High Temperature Requirement Factor A1 (HTRA1) Gene Regulates Angiogenesis through Transforming Growth Factor-β Family Member Growth Differentiation Factor 6* , 2011, The Journal of Biological Chemistry.
[95] Steffen Schmitz-Valckenberg,et al. Imaging Geographic Atrophy in Age-Related Macular Degeneration , 2011, Ophthalmologica.
[96] D. Clayton,et al. Age-related macular degeneration: the importance of family history as a risk factor , 2011, British Journal of Ophthalmology.
[97] Amrita,et al. Increased expression of multifunctional serine protease, HTRA1, in retinal pigment epithelium induces polypoidal choroidal vasculopathy in mice , 2011, Proceedings of the National Academy of Sciences.
[98] N. Peachey,et al. A novel role of complement in retinal degeneration. , 2011, Investigative ophthalmology & visual science.
[99] E. Agrón,et al. Changes in retinal sensitivity in geographic atrophy progression as measured by microperimetry. , 2011, Investigative ophthalmology & visual science.
[100] R. Braun,et al. DICER1 deficit induces Alu RNA toxicity in age-related macular degeneration , 2011, Nature.
[101] J. Tschopp,et al. A role for mitochondria in NLRP3 inflammasome activation , 2011, Nature.
[102] J. Cunha-Vaz,et al. Early Markers of Choroidal Neovascularization in the Fellow Eye of Patients with Unilateral Exudative Age-Related Macular Degeneration , 2010, Ophthalmologica.
[103] I. Washington,et al. Deuterium Enrichment of Vitamin A at the C20 Position Slows the Formation of Detrimental Vitamin A Dimers in Wild-type Rodents* , 2010, The Journal of Biological Chemistry.
[104] John D Lambris,et al. Complement: a key system for immune surveillance and homeostasis , 2010, Nature Immunology.
[105] Fei Ji,et al. Convergence of linkage, gene expression and association data demonstrates the influence of the RAR-related orphan receptor alpha (RORA) gene on neovascular AMD: A systems biology based approach , 2010, Vision Research.
[106] J. Seddon,et al. Plasma complement components and activation fragments: associations with age-related macular degeneration genotypes and phenotypes. , 2009, Investigative ophthalmology & visual science.
[107] Juan Liu,et al. Meta-analysis of the association of the HTRA1 polymorphisms with the risk of age-related macular degeneration. , 2009, Experimental eye research.
[108] T. Tomasi,et al. Dicer is regulated by cellular stresses and interferons. , 2009, Molecular immunology.
[109] Gary S Rubin,et al. Low luminance visual dysfunction as a predictor of subsequent visual acuity loss from geographic atrophy in age-related macular degeneration. , 2008, Ophthalmology.
[110] G. Muscat,et al. The orphan nuclear receptor, RORalpha, regulates gene expression that controls lipid metabolism: staggerer (SG/SG) mice are resistant to diet-induced obesity. , 2008, The Journal of biological chemistry.
[111] N. Camp,et al. A Variant of the HTRA1 Gene Increases Susceptibility to Age-Related Macular Degeneration , 2006, Science.
[112] Johanna M Seddon,et al. Evaluation of the clinical age-related maculopathy staging system. , 2006, Ophthalmology.
[113] S. Fisher,et al. Hypothetical LOC387715 is a second major susceptibility gene for age-related macular degeneration, contributing independently of complement factor H to disease risk , 2005 .
[114] R. T. Smith,et al. A common haplotype in the complement regulatory gene factor H (HF1/CFH) predisposes individuals to age-related macular degeneration. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[115] A. Edwards,et al. Complement Factor H Polymorphism and Age-Related Macular Degeneration , 2005, Science.
[116] J. Gilbert,et al. Complement Factor H Variant Increases the Risk of Age-Related Macular Degeneration , 2005, Science.
[117] J. Ott,et al. Complement Factor H Polymorphism in Age-Related Macular Degeneration , 2005, Science.
[118] J. Mariani,et al. The “CholesteROR” Protective Pathway in the Vascular System , 2004, Arteriosclerosis, thrombosis, and vascular biology.
[119] M. Kawaichi,et al. HtrA1 serine protease inhibits signaling mediated by Tgfβ family proteins , 2004, Development.
[120] Masaru Miyagi,et al. Drusen proteome analysis: An approach to the etiology of age-related macular degeneration , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[121] Y. Arsenijévic,et al. Aberrant accumulation of EFEMP1 underlies drusen formation in Malattia Leventinese and age-related macular degeneration , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[122] Robert F Mullins,et al. A role for local inflammation in the formation of drusen in the aging eye. , 2002, American journal of ophthalmology.
[123] D. Budai,et al. CD59 blocks not only the insertion of C9 into MAC but inhibits ion channel formation by homologous C5b‐8 as well as C5b‐9 , 2002, The Journal of physiology.
[124] P. Tacnet-Delorme,et al. β-Amyloid Fibrils Activate the C1 Complex of Complement Under Physiological Conditions: Evidence for a Binding Site for Aβ on the C1q Globular Regions1 , 2001, The Journal of Immunology.
[125] J. Mariani,et al. The orphan nuclear receptor RORα is a negative regulator of the inflammatory response , 2001 .
[126] S. Davies,et al. Photodamage to human RPE cells by A2-E, a retinoid component of lipofuscin. , 2000, Investigative ophthalmology & visual science.
[127] Dean P. Jones,et al. Oxidative damage and protection of the RPE , 2000, Progress in Retinal and Eye Research.
[128] F. Kruse,et al. Inhibition of lysosomal degradative functions in RPE cells by a retinoid component of lipofuscin. , 1999, Investigative ophthalmology & visual science.
[129] C. Bellmann,et al. Patterns of increased in vivo fundus autofluorescence in the junctional zone of geographic atrophy of the retinal pigment epithelium associated with age-related macular degeneration , 1999, Graefe's Archive for Clinical and Experimental Ophthalmology.
[130] B S Hawkins,et al. Visual function abnormalities and prognosis in eyes with age-related geographic atrophy of the macula and good visual acuity. , 1997, Ophthalmology.
[131] M. Boulton,et al. Blue Light-induced Reactivity of Retinal Age Pigment , 1995, The Journal of Biological Chemistry.
[132] G. Eldred,et al. Retinal age pigments generated by self-assembling lysosomotropic detergents , 1993, Nature.
[133] F. Formelli,et al. In vitro interaction of fenretinide with plasma retinol‐binding protein and its functional consequences , 1992, FEBS letters.
[134] P. Sims,et al. The complement-inhibitory activity of CD59 resides in its capacity to block incorporation of C9 into membrane C5b-9. , 1990, Journal of immunology.
[135] G. Fish,et al. The focal electroretinogram in fellow eyes of patients with idiopathic macular holes. , 1988, Archives of ophthalmology.
[136] W. Pryor,et al. The radicals in cigarette tar: their nature and suggested physiological implications. , 1983, Science.
[137] E. Berman,et al. Lipofuscin of human retinal pigment epithelium. , 1980, American journal of ophthalmology.
[138] Daniel L. Chao,et al. Long-Chain Polyunsaturated Fatty Acids and Age-Related Macular Degeneration. , 2019, Advances in experimental medicine and biology.
[139] F. Holz,et al. Geographic Atrophy Secondary to Age-Related Macular Degeneration , 2017 .
[140] P. D. de Jong,et al. Cigarette smoking and age-related macular degeneration in the EUREYE Study. , 2007, Ophthalmology.
[141] Lars G Fritsche,et al. Hypothetical LOC387715 is a second major susceptibility gene for age-related macular degeneration, contributing independently of complement factor H to disease risk. , 2005, Human molecular genetics.
[142] G. Ripandelli,et al. Optical coherence tomography. , 1998, Seminars in ophthalmology.
[143] E. Hulbert,et al. Regression of Some High-risk Features of Age-related Macular Degeneration ( AMD ) in Patients Receiving Intensive Statin Treatment , 2022 .