Multi-platform imaging in ABCA4-Associated Disease
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S. Tsang | R. Allikmets | Stanley Chang | J. Sparrow | Winston Lee | Lijuan Chen | Jose Ronaldo Lima de Carvalho
[1] S. Tsang,et al. Photoreceptor cells as a source of fundus autofluorescence in recessive Stargardt disease , 2019, Journal of neuroscience research.
[2] M. Hartnett,et al. The utility of ultra-widefield fluorescein angiography in pediatric retinal diseases , 2018, International Journal of Retina and Vitreous.
[3] S. Tsang,et al. Mutations in GPR143/OA1 and ABCA4 Inform Interpretations of Short-Wavelength and Near-Infrared Fundus Autofluorescence , 2018, Investigative ophthalmology & visual science.
[4] J. Heckenlively,et al. Peripheral Pigmented Retinal Lesions in Stargardt Disease. , 2017, American journal of ophthalmology.
[5] A. Cideciyan,et al. Progression of Stargardt Disease as Determined by Fundus Autofluorescence in the Retrospective Progression of Stargardt Disease Study (ProgStar Report No. 9) , 2017, JAMA ophthalmology.
[6] A. Cideciyan,et al. Incidence of Atrophic Lesions in Stargardt Disease in the Progression of Atrophy Secondary to Stargardt Disease (ProgStar) Study: Report No. 5 , 2017, JAMA ophthalmology.
[7] S. Sadda,et al. ULTRAWIDEFIELD AUTOFLUORESENCE IN ABCA4 STARGARDT DISEASE , 2017, Retina.
[8] J. Sparrow,et al. Photodegradation of retinal bisretinoids in mouse models and implications for macular degeneration , 2016, Proceedings of the National Academy of Sciences.
[9] Tobias Duncker,et al. Flecks in Recessive Stargardt Disease: Short-Wavelength Autofluorescence, Near-Infrared Autofluorescence, and Optical Coherence Tomography. , 2015, Investigative ophthalmology & visual science.
[10] S. Sadda,et al. Assessment of accuracy and precision of quantification of ultra-widefield images. , 2015, Ophthalmology.
[11] J. Lupski,et al. Analysis of the ABCA4 genomic locus in Stargardt disease. , 2014, Human molecular genetics.
[12] V. Greenstein,et al. Correlations among near-infrared and short-wavelength autofluorescence and spectral-domain optical coherence tomography in recessive Stargardt disease. , 2014, Investigative ophthalmology & visual science.
[13] S. Tsang,et al. Distinct characteristics of inferonasal fundus autofluorescence patterns in stargardt disease and retinitis pigmentosa. , 2013, Investigative ophthalmology & visual science.
[14] Russell L Woods,et al. Quantitative fundus autofluorescence in healthy eyes. , 2013, Investigative ophthalmology & visual science.
[15] Szilárd Kiss,et al. Comparison of ultra-widefield fluorescein angiography with the Heidelberg Spectralis® noncontact ultra-widefield module versus the Optos® Optomap® , 2013, Clinical ophthalmology.
[16] R. T. Smith,et al. Visualization of the optic fissure in short-wavelength autofluorescence images of the fundus. , 2012, Investigative ophthalmology & visual science.
[17] Szilárd Kiss,et al. Peripheral autofluorescence findings in age‐related macular degeneration , 2012, Acta ophthalmologica.
[18] Kazunori Yamamoto,et al. The bisretinoids of retinal pigment epithelium , 2012, Progress in Retinal and Eye Research.
[19] P. Sieving,et al. Centrifugal expansion of fundus autofluorescence patterns in Stargardt disease over time. , 2012, Archives of ophthalmology.
[20] P. Gouras,et al. Analysis of the ABCA4 gene by next-generation sequencing. , 2011, Investigative ophthalmology & visual science.
[21] R. Spaide. PERIPHERAL AREAS OF NONPERFUSION IN TREATED CENTRAL RETINAL VEIN OCCLUSION AS IMAGED BY WIDE-FIELD FLUORESCEIN ANGIOGRAPHY , 2011, Retina.
[22] T. Peto,et al. Agreement between image grading of conventional (45 degrees) and ultra wide-angle (200 degrees) digital images in the macula in the Reykjavik eye study , 2010 .
[23] T. Peto,et al. Agreement between image grading of conventional (45°) and ultra wide-angle (200°) digital images in the macula in the Reykjavik eye study , 2010, Eye.
[24] U. Kellner,et al. FUNDUS AUTOFLUORESCENCE (488 NM) AND NEAR-INFRARED AUTOFLUORESCENCE (787 NM) VISUALIZE DIFFERENT RETINAL PIGMENT EPITHELIUM ALTERATIONS IN PATIENTS WITH AGE-RELATED MACULAR DEGENERATION , 2010, Retina.
[25] A. V. Cideciyan,et al. Retinal pigment epithelium defects in humans and mice with mutations in MYO7A: imaging melanosome-specific autofluorescence. , 2009, Investigative ophthalmology & visual science.
[26] Richard A. Bone,et al. Macular pigment, photopigments, and melanin: Distributions in young subjects determined by four-wavelength reflectometry , 2007, Vision Research.
[27] T. Aleman,et al. Reduced-illuminance autofluorescence imaging in ABCA4-associated retinal degenerations. , 2007, Journal of the Optical Society of America. A, Optics, image science, and vision.
[28] Y. Jang,et al. Complement activation by photooxidation products of A2E, a lipofuscin constituent of the retinal pigment epithelium , 2006, Proceedings of the National Academy of Sciences.
[29] F. Delori,et al. Near-infrared autofluorescence imaging of the fundus: visualization of ocular melanin. , 2006, Investigative ophthalmology & visual science.
[30] Haishan Zeng,et al. Cutaneous melanin exhibiting fluorescence emission under near-infrared light excitation. , 2006, Journal of biomedical optics.
[31] E. Gaillard,et al. Antioxidant Properties of Melanin in Retinal Pigment Epithelial Cells , 2006, Photochemistry and photobiology.
[32] Ayyakkannu Manivannan,et al. Ultra-wide-field fluorescein angiography of the ocular fundus. , 2005, American journal of ophthalmology.
[33] François C Delori,et al. Autofluorescence method to measure macular pigment optical densities fluorometry and autofluorescence imaging. , 2004, Archives of biochemistry and biophysics.
[34] M. Boulton,et al. The role of the retinal pigment epithelium: Topographical variation and ageing changes , 2001, Eye.
[35] N. Amino,et al. Corrigendum: Congenital hypothyroidism caused by a mutation in the Na+/I− symporter , 1997, Nature Genetics.
[36] J. Lupski,et al. Corrigendum: A photoreceptor cell-specific ATP-binding transporter gene (ABCR) is mutated in recessive Stargardt macular dystrophy , 1997, Nature Genetics.
[37] D M Snodderly,et al. Individual variations in the spatial profile of human macular pigment. , 1997, Journal of the Optical Society of America. A, Optics, image science, and vision.
[38] J. Lupski,et al. A photoreceptor cell-specific ATP-binding transporter gene (ABCR) is mutated in recessive Starqardt macular dystrophy , 1997, Nature Genetics.
[39] C K Dorey,et al. In vivo fluorescence of the ocular fundus exhibits retinal pigment epithelium lipofuscin characteristics. , 1995, Investigative ophthalmology & visual science.
[40] J. Weiter,et al. Retinal pigment epithelial lipofuscin and melanin and choroidal melanin in human eyes. , 1986, Investigative ophthalmology & visual science.
[41] F. Delori,et al. The macular pigment. II. Spatial distribution in primate retinas. , 1984, Investigative ophthalmology & visual science.
[42] Correction to the paper, "Peripheral areas of nonperfusion in treated central retinal vein occlusion as imaged by wide-field fluorescein angiography". , 2014, Retina.
[43] Fred P. Seeber,et al. OP-TEC national center for optics and photonics education and ANSI Z136.5 American National Standard for the safe use of lasers in educational institutions – How they will work together to improve laser safety in educational institutions , 2009 .
[44] Giuseppe Querques,et al. Fundus Autofluorescence , 2013 .