Retinal Organoids from Induced Pluripotent Stem Cells of Patients with Inherited Retinal Diseases: A Systematic Review

被引:2
作者
Lee, Yoo Jin [1 ]
Jo, Dong Hyun [2 ]
机构
[1] Seoul Natl Univ, Coll Med, Dept Med, 103 Daehak Ro, Seoul 03080, South Korea
[2] Seoul Natl Univ, Coll Med, Dept Anat & Cell Biol, 103 Daehak Ro, Seoul 03080, South Korea
关键词
Retinal organoid; Inherited retinal disease; Optic cup; Three-dimensional; Ophthalmology; Induced pluripotent stem cell; LEBER CONGENITAL AMAUROSIS; PIGMENT EPITHELIUM; PROGENITOR CELLS; GANGLION-CELLS; NEURAL RETINA; DIFFERENTIATION; EXPRESSION; RB1; ESTABLISHMENT; PROJECTIONS;
D O I
10.1007/s12015-024-10802-7
中图分类号
Q813 [细胞工程];
学科分类号
摘要
BackgroundCurrently, most inherited retinal diseases lack curative interventions, and available treatment modalities are constrained to symptomatic approaches. Retinal organoid technology has emerged as a method for treating inherited retinal diseases, with growing academic interest in recent years. The purpose of this review was to systematically organize the current protocols for generating retinal organoids using induced pluripotent stem cells from patients with inherited retinal disease and to investigate the application of retinal organoids in inherited retinal disease research.MethodsData were collected from the PubMed, Scopus, and Web of Science databases using a keyword search. The main search term used was "retinal organoid," accompanied by secondary keywords such as "optic cup," "three-dimensional," and "self-organizing." The final search was conducted on October 2, 2024.ResultsOf the 2,129 studies retrieved, 130 were included in the qualitative synthesis. The protocols for the generation of retinal organoids in inherited retinal disease research use five major approaches, categorized into 3D and a combination of 2D/3D approaches, implemented with modifications. Disease phenotypes have been successfully reproduced via the generation of retinal organoids from the induced pluripotent stem cells of individuals with inherited retinal diseases, facilitating the progression of research into novel therapeutic developments. Cells have been obtained from retinal organoids for cell therapy, and progress toward their potential integration into clinical practice is underway. Considering their potential applications, retinal organoid technology has shown promise across various domains.ConclusionIn this systematic review, we organized protocols for generating retinal organoids using induced pluripotent stem cells from patients with inherited retinal diseases. Retinal organoid technology has various applications including disease modeling, screening for novel therapies, and cell replacement therapy. Further advancements would make this technology a clinically significant tool for patients with inherited retinal diseases.
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收藏
页码:167 / 197
页数:31
相关论文
共 210 条
[11]   CGMP Compliant Microfluidic Transfection of Induced Pluripotent Stem Cells for CRISPR-Mediated Genome Editing [J].
Bohrer, Laura R. ;
Stone, Nicholas E. ;
Wright, Allison T. ;
Han, Sewoon ;
Sicher, Ian ;
Sulchek, Todd A. ;
Mullins, Robert F. ;
Tucker, Budd A. .
STEM CELLS, 2023, 41 (11) :1037-1046
[12]   AAV-mediated gene augmentation therapy of CRB1 patient-derived retinal organoids restores the histological and transcriptional retinal phenotype [J].
Boon, Nanda ;
Lu, Xuefei ;
Andriessen, Charlotte A. ;
Moustakas, Ioannis ;
Buck, Thilo M. ;
Freund, Christian ;
Arendzen, Christiaan H. ;
Bohringer, Stefan ;
Boon, Camiel J. F. ;
Mei, Hailiang ;
Wijnholds, Jan .
STEM CELL REPORTS, 2023, 18 (05) :1123-1137
[13]   Clinical and genetic spectrums of 413 North African families with inherited retinal dystrophies and optic neuropathies [J].
Bouzidi, Aymane ;
Charoute, Hicham ;
Charif, Majida ;
Amalou, Ghita ;
Kandil, Mostafa ;
Barakat, Abdelhamid ;
Lenaers, Guy .
ORPHANET JOURNAL OF RARE DISEASES, 2022, 17 (01)
[14]   Retinal and Brain Organoids: Bridging the Gap Betweenin vivoPhysiology andin vitroMicro-Physiology for the Study of Alzheimer's Diseases [J].
Brighi, Carlo ;
Cordella, Federica ;
Chiriatti, Luigi ;
Soloperto, Alessandro ;
Di Angelantonio, Silvia .
FRONTIERS IN NEUROSCIENCE, 2020, 14
[15]   CRB1 is required for recycling by RAB11A+vesicles in human retinal organoids [J].
Buck, Thilo M. ;
Quinn, Peter M. J. ;
Pellissier, Lucie P. ;
Mulder, Aat A. ;
Jongejan, Aldo ;
Lu, Xuefei ;
Boon, Nanda ;
Koot, Danielle ;
Almushattat, Hind ;
Arendzen, Christiaan H. ;
Vos, Rogier M. ;
Bradley, Edward J. ;
Freund, Christian ;
Mikkers, Harald M. M. ;
Boon, Camiel J. F. ;
Moerland, Perry D. ;
Baas, Frank ;
Koster, Abraham J. ;
Neefjes, Jacques ;
Berlin, Ilana ;
Jost, Carolina R. ;
Wijnholds, Jan .
STEM CELL REPORTS, 2023, 18 (09) :1793-1810
[16]   Demonstration of the pathogenicity of a common non-exomic mutation in ABCA4 using iPSC-derived retinal organoids and retrospective clinical data [J].
Burnight, Erin R. ;
Fenner, Beau J. ;
Han, Ian C. ;
Deluca, Adam P. ;
Whitmore, S. Scott ;
Bohrer, Laura R. ;
Andorf, Jeaneen L. ;
Sohn, Elliott H. ;
Mullins, Robert F. ;
Tucker, Budd A. ;
Stone, Edwin M. .
HUMAN MOLECULAR GENETICS, 2024, 33 (16) :1379-1390
[17]   Disrupted alternative splicing for genes implicated in splicing and ciliogenesis causes PRPF31 retinitis pigmentosa [J].
Buskin, Adriana ;
Zhu, Lili ;
Chichagova, Valeria ;
Basu, Basudha ;
Mozaffari-Jovin, Sina ;
Dolan, David ;
Droop, Alastair ;
Collin, Joseph ;
Bronstein, Revital ;
Mehrotra, Sudeep ;
Farkas, Michael ;
Hilgen, Gerrit ;
White, Kathryn ;
Pan, Kuan-Ting ;
Treumann, Achim ;
Hallam, Dean ;
Bialas, Katarzyna ;
Chung, Git ;
Mellough, Carla ;
Ding, Yuchun ;
Krasnogor, Natalio ;
Przyborski, Stefan ;
Zwolinski, Simon ;
Al-Aama, Jumana ;
Alharthi, Sameer ;
Xu, Yaobo ;
Wheway, Gabrielle ;
Szymanska, Katarzyna ;
McKibbin, Martin ;
Inglehearn, Chris F. ;
Elliott, David J. ;
Lindsay, Susan ;
Ali, Robin R. ;
Steel, David H. ;
Armstrong, Lyle ;
Sernagor, Evelyne ;
Urlaub, Henning ;
Pierce, Eric ;
Luehrmann, Reinhard ;
Grellscheid, Sushma-Nagaraja ;
Johnson, Colin A. ;
Lako, Majlinda .
NATURE COMMUNICATIONS, 2018, 9
[18]   Engineering of human brain organoids with a functional vascular-like system [J].
Cakir, Bilal ;
Xiang, Yangfei ;
Tanaka, Yoshiaki ;
Kural, Mehmet H. ;
Parent, Maxime ;
Kang, Young-Jin ;
Chapeton, Kayley ;
Patterson, Benjamin ;
Yuan, Yifan ;
He, Chang-Shun ;
Raredon, Micha Sam B. ;
Dengelegi, Jake ;
Kim, Kun-Yong ;
Sun, Pingnan ;
Zhong, Mei ;
Lee, Sangho ;
Patra, Prabir ;
Hyder, Fahmeed ;
Niklason, Laura E. ;
Lee, Sang-Hun ;
Yoon, Young-Sup ;
Park, In-Hyun .
NATURE METHODS, 2019, 16 (11) :1169-+
[19]   Reproducibility and staging of 3D human retinal organoids across multiple pluripotent stem cell lines [J].
Capowski, Elizabeth E. ;
Samimi, Kayvan ;
Mayerl, Steven J. ;
Phillips, M. Joseph ;
Pinilla, Isabel ;
Howden, Sara E. ;
Saha, Jishnu ;
Jansen, Alex D. ;
Edwards, Kimberly L. ;
Jager, Lindsey D. ;
Barlow, Katherine ;
Valiauga, Rasa ;
Erlichman, Zachary ;
Hagstrom, Anna ;
Sinha, Divya ;
Sluch, Valentin M. ;
Chamling, Xitiz ;
Zack, Donald J. ;
Skala, Melissa C. ;
Gamm, David M. .
DEVELOPMENT, 2019, 146 (01)
[20]   Reliability of human retina organoid generation from hiPSC-derived neuroepithelial cysts [J].
Carido, Madalena ;
Voelkner, Manuela ;
Steinheuer, Lisa Maria ;
Wagner, Felix ;
Kurth, Thomas ;
Dumler, Natalie ;
Ulusoy, Selen ;
Wieneke, Stephanie ;
Norniella, Anabel Villanueva ;
Golfieri, Cristina ;
Khattak, Shahryar ;
Schoenfelder, Bruno ;
Scamozzi, Maria ;
Zoschke, Katja ;
Canzler, Sebastian ;
Hackermueller, Joerg ;
Ader, Marius ;
Karl, Mike O. .
FRONTIERS IN CELLULAR NEUROSCIENCE, 2023, 17