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通过同源定向修复在体外犬血友病 B 模型中设计核酸酶介导的基因校正。

Designer nuclease-mediated gene correction via homology-directed repair in an in vitro model of canine hemophilia B.

机构信息

Institute of Virology and Microbiology, Center for Biomedical Education and Research (ZBAF), Department of Human Medicine, Faculty of Health, Witten/Herdecke University, Witten, Germany.

Institute of Molecular Pathology, Hospital Merheim, Clinics of Cologne, Witten/Herdecke University, Cologne, Germany.

出版信息

J Gene Med. 2018 May;20(5):e3020. doi: 10.1002/jgm.3020. Epub 2018 May 3.

Abstract

BACKGROUND

Gene correction at specific target loci provides a powerful strategy for overcoming genetic diseases. In the present study, we aimed to use an in vitro model for canine hemophilia B containing a single point mutation in the catalytic domain of the canine coagulation factor IX (cFIX) gene. To correct the defective gene via homology-directed repair (HDR), we designed transcription-activator like effector nucleases and clustered regularly interspaced short palindromic repeats including Cas9 (CRISPR/Cas9) for introduction of double-strand breaks at the mutation site.

METHODS

To generate a stable cell line containing the mutated cFIX locus, a 2-kb genomic DNA fragment derived from a hemophilia B dog was amplified and integrated utilizing the phiC31 integrase system. Designer nucleases were assembled and cloned into vectors for constitutive and inducible expression. To detect mutations, insertions and deletions, and HDR events after nuclease treatment T7E1 assays, an amplification-refractory mutation system-quantitative polymerase chain reaction and pyrosequencing were performed.

RESULTS

To perform HDR correction experiments, we established a cell line carrying the mutated cFIX locus. In HDR approaches we either explored a wild-type or an optimized cFIX sequence and we found that our modified HDR cassette showed higher gene correction efficiencies of up to 6.4%. Furthermore, we compared inducible and constitutive designer nuclease expression systems and found that the inducible system resulted in comparable HDR efficiencies.

CONCLUSIONS

In conclusion, the present study demonstrates the potential of this strategy for gene therapeutic approaches in vitro and in a canine model for hemophilia B.

摘要

背景

在特定靶标基因进行基因校正为克服遗传性疾病提供了一种强有力的策略。在本研究中,我们旨在使用含有犬凝血因子 IX(cFIX)基因催化结构域单点突变的体外犬血友病 B 模型。为了通过同源定向修复(HDR)校正缺陷基因,我们设计了转录激活样效应物核酸酶和包括 Cas9(CRISPR/Cas9)的成簇规律间隔短回文重复序列,用于在突变部位产生双链断裂。

方法

为了产生含有突变 cFIX 基因座的稳定细胞系,我们扩增了来自血友病 B 犬的 2kb 基因组 DNA 片段,并利用 phiC31 整合酶系统进行整合。设计的核酸酶被组装并克隆到组成型和诱导型表达载体中。为了检测核酸酶处理后的突变、插入和缺失以及 HDR 事件,我们进行了 T7E1 分析、扩增受阻突变系统-定量聚合酶链反应和焦磷酸测序。

结果

为了进行 HDR 校正实验,我们建立了携带突变 cFIX 基因座的细胞系。在 HDR 方法中,我们探索了野生型或优化的 cFIX 序列,发现我们的修饰 HDR 盒显示出高达 6.4%的更高基因校正效率。此外,我们比较了诱导型和组成型设计核酸酶表达系统,发现诱导型系统产生了相当的 HDR 效率。

结论

总之,本研究证明了该策略在体外和犬血友病 B 模型中用于基因治疗方法的潜力。

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