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Precise Correction of the Dystrophin Gene in Duchenne Muscular Dystrophy Patient Induced Pluripotent Stem Cells by {TALEN} and CRISPR-Cas9

机译:{TALEN }和CRISPR-Cas9对Duchenne肌营养不良患者诱导的多能干细胞中肌营养不良蛋白基因的精确校正

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Summary Duchenne muscular dystrophy (DMD) is a severe muscle-degenerative disease caused by a mutation in the dystrophin gene. Genetic correction of patient-derived induced pluripotent stem cells (iPSCs) by {TALENs} or CRISPR-Cas9 holds promise for {DMD} gene therapy; however, the safety of such nuclease treatment must be determined. Using a unique k-mer database, we systematically identified a unique target region that reduces off-target sites. To restore the dystrophin protein, we performed three correction methods (exon skipping, frameshifting, and exon knockin) in DMD-patient-derived iPSCs, and found that exon knockin was the most effective approach. We further investigated the genomic integrity by karyotyping, copy number variation array, and exome sequencing to identify clones with a minimal mutation load. Finally, we differentiated the corrected iPSCs toward skeletal muscle cells and successfully detected the expression of full-length dystrophin protein. These results provide an important framework for developing iPSC-based gene therapy for genetic disorders using programmable nucleases.
机译:小结杜兴氏肌营养不良症(DMD)是由肌营养不良蛋白基因突变引起的一种严重的肌肉变性疾病。 {TALENs }或CRISPR-Cas9对患者源性诱导多能干细胞(iPSC)的遗传校正为 {DMD }基因治疗提供了希望。但是,必须确定这种核酸酶治疗的安全性。使用独特的k-mer数据库,我们系统地确定了减少脱靶位点的独特靶区域。为了恢复抗肌萎缩蛋白,我们对DMD患者来源的iPSC进行了三种校正方法(外显子跳跃,移码和外显子敲入),发现外显子敲入是最有效的方法。我们通过核型分析,拷贝数变异阵列和外显子组测序进一步研究了基因组完整性,以鉴定具有最小突变负荷的克隆。最后,我们将校正后的iPSCs分化为骨骼肌细胞,并成功检测出全长肌营养不良蛋白的表达。这些结果为使用可编程核酸酶开发基于iPSC的遗传性疾病基因治疗提供了重要框架。

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