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Histone Deacetylase Inhibition Rescues Gene Knockout Levels Achieved with Integrase-Defective Lentiviral Vectors Encoding Zinc-Finger Nucleases

机译:组蛋白脱乙酰基酶抑制可以拯救基因敲除水平与编码锌指核酸酶的整合酶缺陷型慢病毒载体。

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Zinc-finger nucleases (ZFNs) work as dimers to induce double-stranded DNA breaks (DSBs) at predefined chromosomal positions. In doing so, they constitute powerful triggers to edit and to interrogate the function of genomic sequences in higher eukaryotes. A preferred route to introduce ZFNs into somatic cells relies on their cotransduction with two integrase-defective lentiviral vectors (IDLVs) each encoding a monomer of a functional heterodimeric pair. The episomal nature of IDLVs diminishes the risk of genotoxicity and ensures the strict transient expression profile necessary to minimize deleterious effects associated with long-term ZFN activity. However, by deploying IDLVs and conventional lentiviral vectors encoding HPRT1- or eGFP-specific ZFNs, we report that DSB formation at target alleles is limited after IDLV-mediated ZFN transfer. This IDLV-specific underperformance stems, to a great extent, from the activity of chromatin-remodeling histone deacetylases (HDACs). Importantly, the prototypic and U. S. Food and Drug Administration-approved inhibitors of metal-dependent HDACs, trichostatin A and vorinostat, respectively, did not hinder illegitimate recombination-mediated repair of targeted chromosomal DSBs. This allowed rescuing IDLV-mediated site-directed mutagenesis to levels approaching those achieved by using their isogenic chromosomally integrating counterparts. Hence, HDAC inhibition constitutes an efficacious expedient to incorporate in genome-editing strategies based on transient IDLV-mediated ZFN expression. Finally, we compared two of the most commonly used readout systems to measure targeted gene knockout activities based on restriction and mismatch-sensitive endonucleases. These experiments indicate that these enzymatic assays display a similar performance.
机译:锌指核酸酶(ZFN)作为二聚体起作用,以在预定的染色体位置诱导双链DNA断裂(DSB)。这样做,它们构成了强大的触发器,可以编辑和询问高级真核生物中的基因组序列的功能。将ZFN引入体细胞的优选途径取决于它们与两个整合酶缺陷型慢病毒载体(IDLV)的共转导,每个载体编码功能性异二聚体对的单体。 IDLV的附加性质减少了遗传毒性的风险,并确保了严格的瞬时表达谱,以最小化与长期ZFN活性相关的有害影响。但是,通过部署IDLV和编码HPRT1或eGFP特异性ZFN的常规慢病毒载体,我们报告IDLV介导的ZFN转移后,目标等位基因的DSB形成受到限制。这种IDLV特异的性能低下很大程度上源于染色质重塑组蛋白脱乙酰基酶(HDAC)的活性。重要的是,原型和美国食品药品监督管理局批准的金属依赖性HDAC抑制剂,曲古抑菌素A和伏立诺他抑制剂分别不阻碍非法重组介导的靶向染色体DSB修复。这样可以将IDLV介导的定点诱变挽救到接近通过使用其等基因染色体整合对应物而达到的水平。因此,HDAC抑制构成了一种有效的权宜手段,可以将其纳入基于瞬时IDLV介导的ZFN表达的基因组编辑策略中。最后,我们比较了两种最常用的读出系统,以基于限制性和错配敏感的核酸内切酶来测量目标基因敲除活性。这些实验表明这些酶促测定显示出相似的性能。

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