Residual Foveal Cone Structure in CNGB3-Associated Achromatopsia
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Christopher S. Langlo | David J. Wilson | Emily J Patterson | W. Hauswirth | A. Dubra | G. Fishman | B. Lam | J. Carroll | R. Weleber | M. Pennesi | Emily J. Patterson | C. Kay | P. Summerfelt | B. Higgins | Moataz M. Razeen | Laura R. Erker | Maria A. Parker | F. Collison | Jing Zhang | Paul Yang | J. Chiang | J. Chulay | C. Langlo
[1] Christopher S. Langlo,et al. Assessing Photoreceptor Structure in Retinitis Pigmentosa and Usher Syndrome , 2016, Investigative ophthalmology & visual science.
[2] Christopher S. Langlo,et al. ASSESSING PHOTORECEPTOR STRUCTURE ASSOCIATED WITH ELLIPSOID ZONE DISRUPTIONS VISUALIZED WITH OPTICAL COHERENCE TOMOGRAPHY , 2016, Retina.
[3] W. Hauswirth,et al. Gene Augmentation Therapy Restores Retinal Function and Visual Behavior in a Sheep Model of CNGA3 Achromatopsia. , 2015, Molecular therapy : the journal of the American Society of Gene Therapy.
[4] S. Kohl,et al. Achromatopsia: On the Doorstep of a Possible Therapy , 2015, Ophthalmic Research.
[5] C. Curcio,et al. Variability in Human Cone Topography Assessed by Adaptive Optics Scanning Laser Ophthalmoscopy. , 2015, American journal of ophthalmology.
[6] B. Lujan,et al. DIRECTIONAL OPTICAL COHERENCE TOMOGRAPHY PROVIDES ACCURATE OUTER NUCLEAR LAYER AND HENLE FIBER LAYER MEASUREMENTS , 2015, Retina.
[7] J. Horton,et al. Spontaneous Regeneration of Human Photoreceptor Outer Segments , 2015, Scientific Reports.
[8] W. Hauswirth,et al. Vitreal delivery of AAV vectored Cnga3 restores cone function in CNGA3-/-/Nrl-/- mice, an all-cone model of CNGA3 achromatopsia. , 2015, Human molecular genetics.
[9] A. J. Roman,et al. Genetics and Disease Expression in the CNGA3 Form of Achromatopsia: Steps on the Path to Gene Therapy. , 2015, Ophthalmology.
[10] Christopher S. Langlo,et al. CNGB3-Achromatopsia Clinical Trial With CNTF: Diminished Rod Pathway Responses With No Evidence of Improvement in Cone Function. , 2015, Investigative ophthalmology & visual science.
[11] Christopher S. Langlo,et al. Visual Psychophysics and Physiological Optics Genotype-Dependent Variability in Residual Cone Structure in Achromatopsia : Toward Developing Metrics for Assessing Cone Health , 2014 .
[12] Omer P. Kocaoglu,et al. The cellular origins of the outer retinal bands in optical coherence tomography images. , 2014, Investigative ophthalmology & visual science.
[13] W. Hauswirth,et al. Flicker cone function in normal and day blind sheep: a large animal model for human achromatopsia caused by CNGA3 mutation , 2014, Documenta Ophthalmologica.
[14] M. Nardini,et al. A prospective longitudinal study of retinal structure and function in achromatopsia. , 2014, Investigative ophthalmology & visual science.
[15] S. Sadda,et al. Proposed lexicon for anatomic landmarks in normal posterior segment spectral-domain optical coherence tomography: the IN•OCT consensus. , 2014, Ophthalmology.
[16] Christopher S. Langlo,et al. In vivo imaging of human cone photoreceptor inner segments. , 2014, Investigative ophthalmology & visual science.
[17] Christopher S. Langlo,et al. Retinal structure and function in achromatopsia: implications for gene therapy. , 2014, Ophthalmology.
[18] A. Springer. Relationship between foveal cone specialization and pit morphology in albinism. , 2014, Investigative ophthalmology & visual science.
[19] A. V. Cideciyan,et al. Human cone visual pigment deletions spare sufficient photoreceptors to warrant gene therapy. , 2013, Human gene therapy.
[20] David Williams,et al. The effect of cone opsin mutations on retinal structure and the integrity of the photoreceptor mosaic. , 2012, Investigative ophthalmology & visual science.
[21] Joseph Carroll,et al. Evaluation of normal human foveal development using optical coherence tomography and histologic examination. , 2012, Archives of ophthalmology.
[22] Mervyn G. Thomas,et al. Early signs of longitudinal progressive cone photoreceptor degeneration in achromatopsia , 2012, British Journal of Ophthalmology.
[23] Kevin W Eliceiri,et al. NIH Image to ImageJ: 25 years of image analysis , 2012, Nature Methods.
[24] Christopher A. Clark,et al. Cone photoreceptor packing density and the outer nuclear layer thickness in healthy subjects. , 2012, Investigative ophthalmology & visual science.
[25] W. Hauswirth,et al. AAV-Mediated Cone Rescue in a Naturally Occurring Mouse Model of CNGA3-Achromatopsia , 2012, PloS one.
[26] D. Hood,et al. The inner segment/outer segment border seen on optical coherence tomography is less intense in patients with diminished cone function. , 2011, Investigative ophthalmology & visual science.
[27] A. Dubra,et al. Photoreceptor structure and function in patients with congenital achromatopsia. , 2011, Investigative ophthalmology & visual science.
[28] C. Curcio,et al. ANATOMICAL CORRELATES TO THE BANDS SEEN IN THE OUTER RETINA BY OPTICAL COHERENCE TOMOGRAPHY: Literature Review and Model , 2011, Retina.
[29] Toco Y P Chui,et al. Variation of cone photoreceptor packing density with retinal eccentricity and age. , 2011, Investigative ophthalmology & visual science.
[30] Mervyn G. Thomas,et al. Structural grading of foveal hypoplasia using spectral-domain optical coherence tomography a predictor of visual acuity? , 2011, Ophthalmology.
[31] A. Roorda,et al. Observation of cone and rod photoreceptors in normal subjects and patients using a new generation adaptive optics scanning laser ophthalmoscope , 2011, Biomedical optics express.
[32] David Williams,et al. Noninvasive imaging of the human rod photoreceptor mosaic using a confocal adaptive optics scanning ophthalmoscope , 2011, Biomedical optics express.
[33] Gerald McGwin,et al. Human chorioretinal layer thicknesses measured in macula-wide, high-resolution histologic sections. , 2011, Investigative ophthalmology & visual science.
[34] A. Dubra,et al. Reflective afocal broadband adaptive optics scanning ophthalmoscope , 2011, Biomedical optics express.
[35] Livia S. Carvalho,et al. Long-term and age-dependent restoration of visual function in a mouse model of CNGB3-associated achromatopsia following gene therapy , 2011, Human molecular genetics.
[36] Mervyn G. Thomas,et al. High-resolution in vivo imaging in achromatopsia. , 2011, Ophthalmology.
[37] Austin Roorda,et al. Revealing Henle's fiber layer using spectral domain optical coherence tomography. , 2011, Investigative ophthalmology & visual science.
[38] Jennifer J. Hunter,et al. Imaging retinal mosaics in the living eye , 2011, Eye.
[39] C. Klaver,et al. Progressive loss of cones in achromatopsia: an imaging study using spectral-domain optical coherence tomography. , 2010, Investigative ophthalmology & visual science.
[40] Alfredo Dubra,et al. Registration of 2D Images from Fast Scanning Ophthalmic Instruments , 2010, WBIR.
[41] András M Komáromy,et al. Gene therapy rescues cone function in congenital achromatopsia. , 2010, Human molecular genetics.
[42] Jessica I. W. Morgan,et al. Cone photoreceptor mosaic disruption associated with Cys203Arg mutation in the M-cone opsin , 2009, Proceedings of the National Academy of Sciences.
[43] D. M. Tait,et al. Retinal imaging using commercial broadband optical coherence tomography , 2009, British Journal of Ophthalmology.
[44] C. Klaver,et al. Genetic etiology and clinical consequences of complete and incomplete achromatopsia. , 2009, Ophthalmology.
[45] David Williams,et al. In vivo imaging of the photoreceptor mosaic of a rod monochromat , 2008, Vision Research.
[46] Daniel X Hammer,et al. Foveal fine structure in retinopathy of prematurity: an adaptive optics Fourier domain optical coherence tomography study. , 2008, Investigative ophthalmology & visual science.
[47] P. Sieving,et al. CNGB3 achromatopsia with progressive loss of residual cone function and impaired rod-mediated function. , 2007, Investigative ophthalmology & visual science.
[48] Hannah E Smithson,et al. Residual cone vision without alpha-transducin. , 2007, Journal of vision.
[49] T. Aleman,et al. Identifying photoreceptors in blind eyes caused by RPE65 mutations: Prerequisite for human gene therapy success , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[50] M. Sandberg,et al. Cone cGMP‐gated channel mutations and clinical findings in patients with achromatopsia, macular degeneration, and other hereditary cone diseases , 2005, Human mutation.
[51] P. Sieving,et al. CNGB3 mutations account for 50% of all cases with autosomal recessive achromatopsia , 2005, European Journal of Human Genetics.
[52] David Williams,et al. Functional photoreceptor loss revealed with adaptive optics: an alternate cause of color blindness. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[53] D. Hunt,et al. The cone dysfunction syndromes , 2004, British Journal of Ophthalmology.
[54] S. Jacobson,et al. Mutations in the cone photoreceptor G-protein alpha-subunit gene GNAT2 in patients with achromatopsia. , 2002, American journal of human genetics.
[55] T. Hebert,et al. Adaptive optics scanning laser ophthalmoscopy. , 2002, Optics express.
[56] Herbert Jägle,et al. Reorganization of human cortical maps caused by inherited photoreceptor abnormalities , 2002, Nature Neuroscience.
[57] J. Nathans,et al. Opsin genes, cone photopigments, color vision, and color blindness , 1999 .
[58] S. Jacobson,et al. Total colourblindness is caused by mutations in the gene encoding the α-subunit of the cone photoreceptor cGMP-gated cation channel , 1998, Nature Genetics.
[59] M. Alpern,et al. Typical total monochromacy. A histological and psychophysical study. , 1965, Archives of ophthalmology.
[60] J. N. Hayward,et al. Congenital total color blindness: a clincopathological report. , 1960, Archives of ophthalmology.