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Enhanced CRISPR-Cas9 correction of Duchenne muscular dystrophy in mice by a self-complementary AAV delivery system

机译:通过自互补AAV输送系统增强了小鼠杜氏肌营养不良的CRISPR-CAS9校正

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Duchenne muscular dystrophy (DMD) is a lethal neuromuscular disease caused by mutations in the dystrophin gene ( DMD ). Previously, we applied CRISPR-Cas9–mediated “single-cut” genome editing to correct diverse genetic mutations in animal models of DMD. However, high doses of adeno-associated virus (AAV) are required for efficient in vivo genome editing, posing challenges for clinical application. In this study, we packaged Cas9 nuclease in single-stranded AAV (ssAAV) and CRISPR single guide RNAs in self-complementary AAV (scAAV) and delivered this dual AAV system into a mouse model of DMD. The dose of scAAV required for efficient genome editing were at least 20-fold lower than with ssAAV. Mice receiving systemic treatment showed restoration of dystrophin expression and improved muscle contractility. These findings show that the efficiency of CRISPR-Cas9–mediated genome editing can be substantially improved by using the scAAV system. This represents an important advancement toward therapeutic translation of genome editing for DMD.
机译:Duchenne肌肉营养不良(DMD)是一种由患者基因(DMD)突变引起的致死神经肌病疾病。以前,我们应用CRISPR-CAS9介导的“单切”基因组编辑,以纠正DMD的动物模型中的不同遗传突变。然而,高剂量的腺相关病毒(AAV)是高效的体内基因组编辑,构成临床应用的挑战。在这项研究中,我们将Cas9核酸酶包装在单链AAV(SSAAV)和CRISPR单引导RNA中,并在自互补AAV(SCAAV)中,并将这种双AAV系统交付成DMD的小鼠模型。高效基因组编辑所需的SCAAV剂量比SSAAV低至少20倍。接受全身治疗的小鼠显示营养不良素表达的恢复和改善的肌肉收缩性。这些发现表明,通过使用SCAAV系统,可以基本上改善CRISPR-CAS9介导的基因组编辑的效率。这代表了DMD对基因组编辑治疗性翻译的重要进步。

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