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Cone Photoreceptor Structure in Patients With X-Linked Cone Dysfunction and Red-Green Color Vision Deficiency

PURPOSE: Mutations in the coding sequence of the L and M opsin genes are often associated with X-linked cone dysfunction (such as Bornholm Eye Disease, BED), though the exact color vision phenotype associated with these disorders is variable. We examined individuals with L/M opsin gene mutations to...

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Autores principales: Patterson, Emily J., Wilk, Melissa, Langlo, Christopher S., Kasilian, Melissa, Ring, Michael, Hufnagel, Robert B., Dubis, Adam M., Tee, James J., Kalitzeos, Angelos, Gardner, Jessica C., Ahmed, Zubair M., Sisk, Robert A., Larsen, Michael, Sjoberg, Stacy, Connor, Thomas B., Dubra, Alfredo, Neitz, Jay, Hardcastle, Alison J., Neitz, Maureen, Michaelides, Michel, Carroll, Joseph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Association for Research in Vision and Ophthalmology 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4968428/
https://www.ncbi.nlm.nih.gov/pubmed/27447086
http://dx.doi.org/10.1167/iovs.16-19608
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author Patterson, Emily J.
Wilk, Melissa
Langlo, Christopher S.
Kasilian, Melissa
Ring, Michael
Hufnagel, Robert B.
Dubis, Adam M.
Tee, James J.
Kalitzeos, Angelos
Gardner, Jessica C.
Ahmed, Zubair M.
Sisk, Robert A.
Larsen, Michael
Sjoberg, Stacy
Connor, Thomas B.
Dubra, Alfredo
Neitz, Jay
Hardcastle, Alison J.
Neitz, Maureen
Michaelides, Michel
Carroll, Joseph
author_facet Patterson, Emily J.
Wilk, Melissa
Langlo, Christopher S.
Kasilian, Melissa
Ring, Michael
Hufnagel, Robert B.
Dubis, Adam M.
Tee, James J.
Kalitzeos, Angelos
Gardner, Jessica C.
Ahmed, Zubair M.
Sisk, Robert A.
Larsen, Michael
Sjoberg, Stacy
Connor, Thomas B.
Dubra, Alfredo
Neitz, Jay
Hardcastle, Alison J.
Neitz, Maureen
Michaelides, Michel
Carroll, Joseph
author_sort Patterson, Emily J.
collection PubMed
description PURPOSE: Mutations in the coding sequence of the L and M opsin genes are often associated with X-linked cone dysfunction (such as Bornholm Eye Disease, BED), though the exact color vision phenotype associated with these disorders is variable. We examined individuals with L/M opsin gene mutations to clarify the link between color vision deficiency and cone dysfunction. METHODS: We recruited 17 males for imaging. The thickness and integrity of the photoreceptor layers were evaluated using spectral-domain optical coherence tomography. Cone density was measured using high-resolution images of the cone mosaic obtained with adaptive optics scanning light ophthalmoscopy. The L/M opsin gene array was characterized in 16 subjects, including at least one subject from each family. RESULTS: There were six subjects with the LVAVA haplotype encoded by exon 3, seven with LIAVA, two with the Cys203Arg mutation encoded by exon 4, and two with a novel insertion in exon 2. Foveal cone structure and retinal thickness was disrupted to a variable degree, even among related individuals with the same L/M array. CONCLUSIONS: Our findings provide a direct link between disruption of the cone mosaic and L/M opsin variants. We hypothesize that, in addition to large phenotypic differences between different L/M opsin variants, the ratio of expression of first versus downstream genes in the L/M array contributes to phenotypic diversity. While the L/M opsin mutations underlie the cone dysfunction in all of the subjects tested, the color vision defect can be caused either by the same mutation or a gene rearrangement at the same locus.
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spelling pubmed-49684282017-01-01 Cone Photoreceptor Structure in Patients With X-Linked Cone Dysfunction and Red-Green Color Vision Deficiency Patterson, Emily J. Wilk, Melissa Langlo, Christopher S. Kasilian, Melissa Ring, Michael Hufnagel, Robert B. Dubis, Adam M. Tee, James J. Kalitzeos, Angelos Gardner, Jessica C. Ahmed, Zubair M. Sisk, Robert A. Larsen, Michael Sjoberg, Stacy Connor, Thomas B. Dubra, Alfredo Neitz, Jay Hardcastle, Alison J. Neitz, Maureen Michaelides, Michel Carroll, Joseph Invest Ophthalmol Vis Sci Visual Psychophysics and Physiological Optics PURPOSE: Mutations in the coding sequence of the L and M opsin genes are often associated with X-linked cone dysfunction (such as Bornholm Eye Disease, BED), though the exact color vision phenotype associated with these disorders is variable. We examined individuals with L/M opsin gene mutations to clarify the link between color vision deficiency and cone dysfunction. METHODS: We recruited 17 males for imaging. The thickness and integrity of the photoreceptor layers were evaluated using spectral-domain optical coherence tomography. Cone density was measured using high-resolution images of the cone mosaic obtained with adaptive optics scanning light ophthalmoscopy. The L/M opsin gene array was characterized in 16 subjects, including at least one subject from each family. RESULTS: There were six subjects with the LVAVA haplotype encoded by exon 3, seven with LIAVA, two with the Cys203Arg mutation encoded by exon 4, and two with a novel insertion in exon 2. Foveal cone structure and retinal thickness was disrupted to a variable degree, even among related individuals with the same L/M array. CONCLUSIONS: Our findings provide a direct link between disruption of the cone mosaic and L/M opsin variants. We hypothesize that, in addition to large phenotypic differences between different L/M opsin variants, the ratio of expression of first versus downstream genes in the L/M array contributes to phenotypic diversity. While the L/M opsin mutations underlie the cone dysfunction in all of the subjects tested, the color vision defect can be caused either by the same mutation or a gene rearrangement at the same locus. The Association for Research in Vision and Ophthalmology 2016-07-22 2016-07 /pmc/articles/PMC4968428/ /pubmed/27447086 http://dx.doi.org/10.1167/iovs.16-19608 Text en http://creativecommons.org/licenses/by-nc-nd/4.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
spellingShingle Visual Psychophysics and Physiological Optics
Patterson, Emily J.
Wilk, Melissa
Langlo, Christopher S.
Kasilian, Melissa
Ring, Michael
Hufnagel, Robert B.
Dubis, Adam M.
Tee, James J.
Kalitzeos, Angelos
Gardner, Jessica C.
Ahmed, Zubair M.
Sisk, Robert A.
Larsen, Michael
Sjoberg, Stacy
Connor, Thomas B.
Dubra, Alfredo
Neitz, Jay
Hardcastle, Alison J.
Neitz, Maureen
Michaelides, Michel
Carroll, Joseph
Cone Photoreceptor Structure in Patients With X-Linked Cone Dysfunction and Red-Green Color Vision Deficiency
title Cone Photoreceptor Structure in Patients With X-Linked Cone Dysfunction and Red-Green Color Vision Deficiency
title_full Cone Photoreceptor Structure in Patients With X-Linked Cone Dysfunction and Red-Green Color Vision Deficiency
title_fullStr Cone Photoreceptor Structure in Patients With X-Linked Cone Dysfunction and Red-Green Color Vision Deficiency
title_full_unstemmed Cone Photoreceptor Structure in Patients With X-Linked Cone Dysfunction and Red-Green Color Vision Deficiency
title_short Cone Photoreceptor Structure in Patients With X-Linked Cone Dysfunction and Red-Green Color Vision Deficiency
title_sort cone photoreceptor structure in patients with x-linked cone dysfunction and red-green color vision deficiency
topic Visual Psychophysics and Physiological Optics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4968428/
https://www.ncbi.nlm.nih.gov/pubmed/27447086
http://dx.doi.org/10.1167/iovs.16-19608
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