Afanasyeva Tess A V, Athanasiou Dimitra, Perdigao Pedro R L, Whiting Kae R, Duijkers Lonneke, Astuti Galuh D N, Bennett Jean, Garanto Alejandro, van der Spuy Jacqueline, Roepman Ronald, Cheetham Michael E, Collin Rob W J
Department of Human Genetics, Radboud University Medical Center, 6525 GA Nijmegen, the Netherlands.
Donders Institute for Brain, Cognition and Behaviour, Radboud University Medical Center, 6525 GD Nijmegen, the Netherlands.
Mol Ther Methods Clin Dev. 2023 May 17;29:522-531. doi: 10.1016/j.omtm.2023.05.012. eCollection 2023 Jun 8.
Mutations in the lebercilin-encoding gene cause one of the most severe forms of Leber congenital amaurosis, an early-onset retinal disease that results in severe visual impairment. Here, we report on the generation of a patient-specific cellular model to study -associated retinal disease. CRISPR-Cas9 technology was used to correct a homozygous nonsense variant in (c.835C>T; p.Q279∗) in patient-derived induced pluripotent stem cells (iPSCs). The absence of off-target editing in gene-corrected (isogenic) control iPSCs was demonstrated by whole-genome sequencing. We differentiated the patient, gene-corrected, and unrelated control iPSCs into three-dimensional retina-like cells, so-called retinal organoids. We observed opsin and rhodopsin mislocalization to the outer nuclear layer in patient-derived but not in the gene-corrected or unrelated control organoids. We also confirmed the rescue of lebercilin expression and localization along the ciliary axoneme within the gene-corrected organoids. Here, we show the potential of combining precise single-nucleotide gene editing with the iPSC-derived retinal organoid system for the generation of a cellular model of early-onset retinal disease.
编码勒伯西林的基因突变会导致最严重形式的莱伯先天性黑蒙之一,这是一种早发性视网膜疾病,会导致严重的视力损害。在此,我们报告了用于研究相关视网膜疾病的患者特异性细胞模型的构建。利用CRISPR-Cas9技术纠正了患者来源的诱导多能干细胞(iPSC)中LEB基因的一个纯合无义变体(c.835C>T;p.Q279∗)。通过全基因组测序证明了基因校正(等基因)对照iPSC中不存在脱靶编辑。我们将患者、基因校正和无关对照的iPSC分化为三维视网膜样细胞,即所谓的视网膜类器官。我们观察到在患者来源的类器官中视蛋白和视紫红质错定位于外核层,而在基因校正或无关对照类器官中则没有。我们还证实了基因校正类器官中沿睫状轴丝的勒伯西林表达和定位得到了挽救。在此,我们展示了将精确的单核苷酸基因编辑与iPSC来源的视网膜类器官系统相结合用于构建早发性视网膜疾病细胞模型的潜力。