AAV9 可编辑正常小鼠和肌营养不良成年小鼠的肌肉干细胞

AlIqtishad Jurnal Ilmu Ekonomi Syariah Pub Date : 2019-09-04 Epub Date: 2019-07-03 DOI:10.1016/j.ymthe.2019.06.012
Michael E Nance, Ruicheng Shi, Chady H Hakim, Nalinda B Wasala, Yongping Yue, Xiufang Pan, Tracy Zhang, Carolyn A Robinson, Sean X Duan, Gang Yao, N Nora Yang, Shi-Jie Chen, Kathryn R Wagner, Charles A Gersbach, Dongsheng Duan
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引用次数: 47

摘要

用9号血清型腺相关病毒(AAV9)对肌肉干细胞(MuSCs)进行CRISPR编辑,有望实现肌肉萎缩症的持续基因修复疗法。然而,关于 AAV9 是否能转导肌肉干细胞的证据并不一致。为了严格解决这个问题,我们使用了肌肉移植模型。在肌肉干细胞再生之前,移植的肌肉已经完全坏死。我们将 AAV9.Cre 注入 Ai14 小鼠。这些小鼠在 Cre 介导下去除一个缺失的终止密码子后会表达 tdTomato。在移植物前和再生移植物中,分别约有 28%-47% 和 24%-89% 的 Pax7+ MuSCs 表达了 tdTomato(p > 0.05),这表明 AAV9 能有效地转导 MuSCs,并且 AAV9 编辑的 MuSCs 能成功更新。将AAV9.Cre注射到Pax7-ZsGreen-Ai14小鼠体内进一步证实了MuSC的稳健转导,在这种小鼠体内,Pax7+ MuSCs被ZsGreen基因标记。接下来,我们将 AAV9.Cas9 和 AAV9.gRNA 联合注射到肌营养不良 mdx 小鼠体内,以修复突变的肌营养蛋白基因。CRISPR处理过和未处理过的肌肉被移植到免疫缺陷、肌营养不良的NSG.mdx4cv小鼠身上。从经过 CRISPR 处理的肌肉中再生的移植物含有经过编辑的基因组,产生的肌营养不良症+细胞增加了 2.7 倍(p = 0.015)。重要的是,dystrophin 表达的增加并不是由于逆转纤维的形成增强或移植物中残留的 CRISPR 载体的重新转导所致。我们的结论是,AAV9 能有效转导 MuSCs。对MuSCs进行AAV9 CRISPR编辑可提供持久的治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
AAV9 Edits Muscle Stem Cells in Normal and Dystrophic Adult Mice.

CRISPR editing of muscle stem cells (MuSCs) with adeno-associated virus serotype-9 (AAV9) holds promise for sustained gene repair therapy for muscular dystrophies. However, conflicting evidence exists on whether AAV9 transduces MuSCs. To rigorously address this question, we used a muscle graft model. The grafted muscle underwent complete necrosis before regenerating from its MuSCs. We injected AAV9.Cre into Ai14 mice. These mice express tdTomato upon Cre-mediated removal of a floxed stop codon. About 28%-47% and 24%-89% of Pax7+ MuSCs expressed tdTomato in pre-grafts and regenerated grafts (p > 0.05), respectively, suggesting AAV9 efficiently transduced MuSCs, and AAV9-edited MuSCs renewed successfully. Robust MuSC transduction was further confirmed by delivering AAV9.Cre to Pax7-ZsGreen-Ai14 mice in which Pax7+ MuSCs are genetically labeled by ZsGreen. Next, we co-injected AAV9.Cas9 and AAV9.gRNA to dystrophic mdx mice to repair the mutated dystrophin gene. CRISPR-treated and untreated muscles were grafted to immune-deficient, dystrophin-null NSG.mdx4cv mice. Grafts regenerated from CRISPR-treated muscle contained the edited genome and yielded 2.7-fold more dystrophin+ cells (p = 0.015). Importantly, increased dystrophin expression was not due to enhanced formation of revertant fibers or de novo transduction by residual CRISPR vectors in the graft. We conclude that AAV9 effectively transduces MuSCs. AAV9 CRISPR editing of MuSCs may provide enduring therapy.

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