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Cyp1b1 Regulates Ocular Fissure Closure Through a Retinoic Acid–Independent Pathway

PURPOSE: Mutations in the CYP1B1 gene are the most commonly identified genetic causes of primary infantile-onset glaucoma. Despite this disease association, the role of CYP1B1 in eye development and its in vivo substrate remain unknown. In the present study, we used zebrafish to elucidate the mechan...

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Autores principales: Williams, Antionette L., Eason, Jessica, Chawla, Bahaar, Bohnsack, Brenda L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Association for Research in Vision and Ophthalmology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5308778/
https://www.ncbi.nlm.nih.gov/pubmed/28192799
http://dx.doi.org/10.1167/iovs.16-20235
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author Williams, Antionette L.
Eason, Jessica
Chawla, Bahaar
Bohnsack, Brenda L.
author_facet Williams, Antionette L.
Eason, Jessica
Chawla, Bahaar
Bohnsack, Brenda L.
author_sort Williams, Antionette L.
collection PubMed
description PURPOSE: Mutations in the CYP1B1 gene are the most commonly identified genetic causes of primary infantile-onset glaucoma. Despite this disease association, the role of CYP1B1 in eye development and its in vivo substrate remain unknown. In the present study, we used zebrafish to elucidate the mechanism by which cyp1b1 regulates eye development. METHODS: Zebrafish eye and neural crest development were analyzed using live imaging of transgenic zebrafish embryos, in situ hybridization, immunostaining, TUNEL assay, and methylacrylate sections. Cyp1b1 and retinoic acid (RA) levels were genetically (morpholino oligonucleotide antisense and mRNA) and pharmacologically manipulated to examine gene function. RESULTS: Using zebrafish, we observed that cyp1b1 was expressed in a specific spatiotemporal pattern in the ocular fissures of the developing zebrafish retina and regulated fissure patency. Decreased Cyp1b1 resulted in the premature breakdown of laminin in the ventral fissure and altered subsequent neural crest migration into the anterior segment. In contrast, cyp1b1 overexpression inhibited cell survival in the ventral ocular fissure and prevented fissure closure via an RA-independent pathway. Cyp1b1 overexpression also inhibited the ocular expression of vsx2, pax6a, and pax6b and increased the extraocular expression of shha. Importantly, embryos injected with human wild-type but not mutant CYP1B1 mRNA also showed colobomas, demonstrating the evolutionary and functional conservation of gene function between species. CONCLUSIONS: Cyp1b1 regulation of ocular fissure closure indirectly affects neural crest migration and development through an RA-independent pathway. These studies provide insight into the role of Cyp1b1 in eye development and further elucidate the pathogenesis of primary infantile-onset glaucoma.
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spelling pubmed-53087782017-02-17 Cyp1b1 Regulates Ocular Fissure Closure Through a Retinoic Acid–Independent Pathway Williams, Antionette L. Eason, Jessica Chawla, Bahaar Bohnsack, Brenda L. Invest Ophthalmol Vis Sci Biochemistry and Molecular Biology PURPOSE: Mutations in the CYP1B1 gene are the most commonly identified genetic causes of primary infantile-onset glaucoma. Despite this disease association, the role of CYP1B1 in eye development and its in vivo substrate remain unknown. In the present study, we used zebrafish to elucidate the mechanism by which cyp1b1 regulates eye development. METHODS: Zebrafish eye and neural crest development were analyzed using live imaging of transgenic zebrafish embryos, in situ hybridization, immunostaining, TUNEL assay, and methylacrylate sections. Cyp1b1 and retinoic acid (RA) levels were genetically (morpholino oligonucleotide antisense and mRNA) and pharmacologically manipulated to examine gene function. RESULTS: Using zebrafish, we observed that cyp1b1 was expressed in a specific spatiotemporal pattern in the ocular fissures of the developing zebrafish retina and regulated fissure patency. Decreased Cyp1b1 resulted in the premature breakdown of laminin in the ventral fissure and altered subsequent neural crest migration into the anterior segment. In contrast, cyp1b1 overexpression inhibited cell survival in the ventral ocular fissure and prevented fissure closure via an RA-independent pathway. Cyp1b1 overexpression also inhibited the ocular expression of vsx2, pax6a, and pax6b and increased the extraocular expression of shha. Importantly, embryos injected with human wild-type but not mutant CYP1B1 mRNA also showed colobomas, demonstrating the evolutionary and functional conservation of gene function between species. CONCLUSIONS: Cyp1b1 regulation of ocular fissure closure indirectly affects neural crest migration and development through an RA-independent pathway. These studies provide insight into the role of Cyp1b1 in eye development and further elucidate the pathogenesis of primary infantile-onset glaucoma. The Association for Research in Vision and Ophthalmology 2017-02 /pmc/articles/PMC5308778/ /pubmed/28192799 http://dx.doi.org/10.1167/iovs.16-20235 Text en Copyright 2017 The Authors http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License.
spellingShingle Biochemistry and Molecular Biology
Williams, Antionette L.
Eason, Jessica
Chawla, Bahaar
Bohnsack, Brenda L.
Cyp1b1 Regulates Ocular Fissure Closure Through a Retinoic Acid–Independent Pathway
title Cyp1b1 Regulates Ocular Fissure Closure Through a Retinoic Acid–Independent Pathway
title_full Cyp1b1 Regulates Ocular Fissure Closure Through a Retinoic Acid–Independent Pathway
title_fullStr Cyp1b1 Regulates Ocular Fissure Closure Through a Retinoic Acid–Independent Pathway
title_full_unstemmed Cyp1b1 Regulates Ocular Fissure Closure Through a Retinoic Acid–Independent Pathway
title_short Cyp1b1 Regulates Ocular Fissure Closure Through a Retinoic Acid–Independent Pathway
title_sort cyp1b1 regulates ocular fissure closure through a retinoic acid–independent pathway
topic Biochemistry and Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5308778/
https://www.ncbi.nlm.nih.gov/pubmed/28192799
http://dx.doi.org/10.1167/iovs.16-20235
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