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Codon swapping of zinc finger nucleases confers expression in primary cells and in vivo from a single lentiviral vector

机译:锌指核酸酶的密码子交换赋予原代细胞和体内单一慢病毒载体的表达

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摘要

BACKGROUND: Zinc finger nucleases (ZFNs) are promising tools for genome editing for biotechnological as well as therapeutic purposes. Delivery remains a major issue impeding targeted genome modification. Lentiviral vectors are highly efficient for delivering transgenes into cell lines, primary cells and into organs, such as the liver. However, the reverse transcription of lentiviral vectors leads to recombination of homologous sequences, as found between and within ZFN monomers.METHODS: We used a codon swapping strategy to both drastically disrupt sequence identity between ZFN monomers and to reduce sequence repeats within a monomer sequence. We constructed lentiviral vectors encoding codon-swapped ZFNs or unmodified ZFNs from a single mRNA transcript. Cell lines, primary hepatocytes and newborn rats were used to evaluate the efficacy of integrative-competent (ICLV) and integrative-deficient (IDLV) lentiviral vectors to deliver ZFNs into target cells.RESULTS: We reduced total identity between ZFN monomers from 90.9% to 61.4% and showed that a single ICLV allowed efficient expression of functional ZFNs targeting the rat UGT1A1 gene after codon-swapping, leading to much higher ZFN activity in cell lines (up to 7-fold increase compared to unmodified ZFNs and 60% activity in C6 cells), as compared to plasmid transfection or a single ICLV encoding unmodified ZFN monomers. Off-target analysis located several active sites for the 5-finger UGT1A1-ZFNs. Furthermore, we reported for the first time successful ZFN-induced targeted DNA double-strand breaks in primary cells (hepatocytes) and in vivo (liver) after delivery of a single IDLV encoding two ZFNs.CONCLUSION: These results demonstrate that a codon-swapping approach allowed a single lentiviral vector to efficiently express ZFNs and should stimulate the use of this viral platform for ZFN-mediated genome editing of primary cells, for both ex vivo or in vivo applications.
机译:背景:锌指核酸酶(ZFN)是用于生物技术和治疗目的的基因组编辑的有前途的工具。传递仍然是阻碍靶向基因组修饰的主要问题。慢病毒载体对于将转基因传递到细胞系,原代细胞和器官(例如肝脏)中非常有效。然而,慢病毒载体的逆转录导致ZFN单体之间和内部的同源序列重组。方法:我们使用密码子交换策略来彻底破坏ZFN单体之间的序列同一性并减少单体序列内的序列重复。我们从单个mRNA转录本构建了编码密码​​子交换ZFN或未修饰ZFN的慢病毒载体。细胞系,原代肝细胞和新生大鼠用于评估整合能力(ICLV)和整合缺陷(IDLV)慢病毒载体将ZFN传递至靶细胞的功效。结果:我们将ZFN单体之间的总同一性从90.9%降低至交换率为61.4%,并表明单个ICLV允许密码子交换后有效表达靶向大鼠UGT1A1基因的功能性ZFN,从而导致细胞系中的ZFN活性高得多(与未修饰的ZFNs相比提高了7倍,在C6中的活性达到60%与质粒转染或编码未修饰ZFN单体的单个ICLV相比)。脱靶分析定位了五指UGT1A1-ZFN的几个活性位点。此外,我们首次报道了在传递编码两个ZFN的单个IDLV后,ZFN首次成功地在原代细胞(肝细胞)和体内(肝脏)诱导了靶向DNA双链断裂。结论:这些结果表明密码子交换该方法允许单个慢病毒载体有效表达ZFN,并应刺激该病毒平台在ZFN介导的原代细胞基因组编辑中的应用,无论是体外还是体内应用。

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