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首页> 外文期刊>Nucleic Acids Research >Modularly assembled designer TAL effector nucleases for targeted gene knockout and gene replacement in eukaryotes
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Modularly assembled designer TAL effector nucleases for targeted gene knockout and gene replacement in eukaryotes

机译:模块化组装的设计师TAL效应子核酸酶,用于真核生物中的靶向基因敲除和基因替换

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摘要

Recent studies indicate that the DNA recognition domain of transcription activator-like (TAL) effectors can be combined with the nuclease domain of FokI restriction enzyme to produce TAL effector nucleases (TALENs) that, in pairs, bind adjacent DNA target sites and produce double-strand breaks between the target sequences, stimulating non-homologous end-joining and homologous recombination. Here, we exploit the four prevalent TAL repeats and their DNA recognition cipher to develop a 'modular assembly' method for rapid production of designer TALENs (dTALENs) that recognize unique DNA sequence up to 23 bases in any gene. We have used this approach to engineer 10 dTALENs to target specific loci in native yeast chromosomal genes. All dTALENs produced high rates of site-specific gene disruptions and created strains with expected mutant phenotypes. Moreover, dTALENs stimulated high rates (up to 34%) of gene replacement by homologous recombination. Finally, dTALENs caused no detectable cytotoxicity and minimal levels of undesired genetic mutations in the treated yeast strains. These studies expand the realm of verified TALEN activity from cultured human cells to an intact eukaryotic organism and suggest that low-cost, highly dependable dTALENs can assume a significant role for gene modifications of value in human and animal health, agriculture and industry.
机译:最近的研究表明,转录激活因子样(TAL)效应子的DNA识别域可以与FokI限制性酶的核酸酶域结合,以产生TAL效应子核酸酶(TALEN),成对地结合相邻的DNA靶位点并产生双靶序列之间的链断裂,刺激非同源的末端连接和同源重组。在这里,我们利用四个普遍的TAL重复序列及其DNA识别密码来开发一种“模块组装”方法,以快速生产可识别任何基因中多达23个碱基的独特DNA序列的设计师TALENs(dTALENs)。我们已经使用这种方法设计了10个dTALEN,以靶向天然酵母染色体基因中的特定基因座。所有dTALENs产生高位点特异性基因破坏率,并产生具有预期突变表型的菌株。此外,dTALENs通过同源重组刺激了很高的基因替代率(高达34%)。最后,dTALENs在处理过的酵母菌株中未引起可检测的细胞毒性和不希望的基因突变的最小水平。这些研究将已验证的TALEN活性从培养的人类细胞扩展到完整的真核生物领域,并表明低成本,高度可靠的dTALENs可以在人类和动物健康,农业和工业中对价值的基因修饰起重要作用。

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