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Morphological and Molecular Defects in Human Three-Dimensional Retinal Organoid Model of X-Linked Juvenile Retinoschisis

X-linked juvenile retinoschisis (XLRS), linked to mutations in the RS1 gene, is a degenerative retinopathy with a retinal splitting phenotype. We generated human induced pluripotent stem cells (hiPSCs) from patients to study XLRS in a 3D retinal organoid in vitro differentiation system. This model r...

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Autores principales: Huang, Kang-Chieh, Wang, Mong-Lien, Chen, Shih-Jen, Kuo, Jean-Cheng, Wang, Won-Jing, Nhi Nguyen, Phan Nguyen, Wahlin, Karl J., Lu, Jyh-Feng, Tran, Audrey A., Shi, Michael, Chien, Yueh, Yarmishyn, Aliaksandr A., Tsai, Ping-Hsing, Yang, Tien-Chun, Jane, Wann-Neng, Chang, Chia-Ching, Peng, Chi-Hsien, Schlaeger, Thorsten M., Chiou, Shih-Hwa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6895767/
https://www.ncbi.nlm.nih.gov/pubmed/31668851
http://dx.doi.org/10.1016/j.stemcr.2019.09.010
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author Huang, Kang-Chieh
Wang, Mong-Lien
Chen, Shih-Jen
Kuo, Jean-Cheng
Wang, Won-Jing
Nhi Nguyen, Phan Nguyen
Wahlin, Karl J.
Lu, Jyh-Feng
Tran, Audrey A.
Shi, Michael
Chien, Yueh
Yarmishyn, Aliaksandr A.
Tsai, Ping-Hsing
Yang, Tien-Chun
Jane, Wann-Neng
Chang, Chia-Ching
Peng, Chi-Hsien
Schlaeger, Thorsten M.
Chiou, Shih-Hwa
author_facet Huang, Kang-Chieh
Wang, Mong-Lien
Chen, Shih-Jen
Kuo, Jean-Cheng
Wang, Won-Jing
Nhi Nguyen, Phan Nguyen
Wahlin, Karl J.
Lu, Jyh-Feng
Tran, Audrey A.
Shi, Michael
Chien, Yueh
Yarmishyn, Aliaksandr A.
Tsai, Ping-Hsing
Yang, Tien-Chun
Jane, Wann-Neng
Chang, Chia-Ching
Peng, Chi-Hsien
Schlaeger, Thorsten M.
Chiou, Shih-Hwa
author_sort Huang, Kang-Chieh
collection PubMed
description X-linked juvenile retinoschisis (XLRS), linked to mutations in the RS1 gene, is a degenerative retinopathy with a retinal splitting phenotype. We generated human induced pluripotent stem cells (hiPSCs) from patients to study XLRS in a 3D retinal organoid in vitro differentiation system. This model recapitulates key features of XLRS including retinal splitting, defective retinoschisin production, outer-segment defects, abnormal paxillin turnover, and impaired ER-Golgi transportation. RS1 mutation also affects the development of photoreceptor sensory cilia and results in altered expression of other retinopathy-associated genes. CRISPR/Cas9 correction of the disease-associated C625T mutation normalizes the splitting phenotype, outer-segment defects, paxillin dynamics, ciliary marker expression, and transcriptome profiles. Likewise, mutating RS1 in control hiPSCs produces the disease-associated phenotypes. Finally, we show that the C625T mutation can be repaired precisely and efficiently using a base-editing approach. Taken together, our data establish 3D organoids as a valid disease model.
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spelling pubmed-68957672019-12-16 Morphological and Molecular Defects in Human Three-Dimensional Retinal Organoid Model of X-Linked Juvenile Retinoschisis Huang, Kang-Chieh Wang, Mong-Lien Chen, Shih-Jen Kuo, Jean-Cheng Wang, Won-Jing Nhi Nguyen, Phan Nguyen Wahlin, Karl J. Lu, Jyh-Feng Tran, Audrey A. Shi, Michael Chien, Yueh Yarmishyn, Aliaksandr A. Tsai, Ping-Hsing Yang, Tien-Chun Jane, Wann-Neng Chang, Chia-Ching Peng, Chi-Hsien Schlaeger, Thorsten M. Chiou, Shih-Hwa Stem Cell Reports Article X-linked juvenile retinoschisis (XLRS), linked to mutations in the RS1 gene, is a degenerative retinopathy with a retinal splitting phenotype. We generated human induced pluripotent stem cells (hiPSCs) from patients to study XLRS in a 3D retinal organoid in vitro differentiation system. This model recapitulates key features of XLRS including retinal splitting, defective retinoschisin production, outer-segment defects, abnormal paxillin turnover, and impaired ER-Golgi transportation. RS1 mutation also affects the development of photoreceptor sensory cilia and results in altered expression of other retinopathy-associated genes. CRISPR/Cas9 correction of the disease-associated C625T mutation normalizes the splitting phenotype, outer-segment defects, paxillin dynamics, ciliary marker expression, and transcriptome profiles. Likewise, mutating RS1 in control hiPSCs produces the disease-associated phenotypes. Finally, we show that the C625T mutation can be repaired precisely and efficiently using a base-editing approach. Taken together, our data establish 3D organoids as a valid disease model. Elsevier 2019-10-24 /pmc/articles/PMC6895767/ /pubmed/31668851 http://dx.doi.org/10.1016/j.stemcr.2019.09.010 Text en © 2019 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Huang, Kang-Chieh
Wang, Mong-Lien
Chen, Shih-Jen
Kuo, Jean-Cheng
Wang, Won-Jing
Nhi Nguyen, Phan Nguyen
Wahlin, Karl J.
Lu, Jyh-Feng
Tran, Audrey A.
Shi, Michael
Chien, Yueh
Yarmishyn, Aliaksandr A.
Tsai, Ping-Hsing
Yang, Tien-Chun
Jane, Wann-Neng
Chang, Chia-Ching
Peng, Chi-Hsien
Schlaeger, Thorsten M.
Chiou, Shih-Hwa
Morphological and Molecular Defects in Human Three-Dimensional Retinal Organoid Model of X-Linked Juvenile Retinoschisis
title Morphological and Molecular Defects in Human Three-Dimensional Retinal Organoid Model of X-Linked Juvenile Retinoschisis
title_full Morphological and Molecular Defects in Human Three-Dimensional Retinal Organoid Model of X-Linked Juvenile Retinoschisis
title_fullStr Morphological and Molecular Defects in Human Three-Dimensional Retinal Organoid Model of X-Linked Juvenile Retinoschisis
title_full_unstemmed Morphological and Molecular Defects in Human Three-Dimensional Retinal Organoid Model of X-Linked Juvenile Retinoschisis
title_short Morphological and Molecular Defects in Human Three-Dimensional Retinal Organoid Model of X-Linked Juvenile Retinoschisis
title_sort morphological and molecular defects in human three-dimensional retinal organoid model of x-linked juvenile retinoschisis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6895767/
https://www.ncbi.nlm.nih.gov/pubmed/31668851
http://dx.doi.org/10.1016/j.stemcr.2019.09.010
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