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Designed nucleases for targeted genome editing

机译:为靶向基因组编辑设计的核酸酶

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Targeted genome-editing technology using designed nucleases has been evolving rapidly, and its applications are widely expanding in research, medicine and biotechnology. Using this genome-modifying technology, researchers can precisely and efficiently insert, remove or change specific sequences in various cultured cells, micro-organisms, animals and plants. This genome editing is based on the generation of double-strand breaks (DSBs), repair of which modifies the genome through nonhomologous end-joining (NHEJ) or homology-directed repair (HDR). In addition, designed nickase-induced generation of single-strand breaks can also lead to precise genome editing through HDR, albeit at relatively lower efficiencies than that induced by nucleases. Three kinds of designed nucleases have been used for targeted DSB formation: zinc-finger nucleases, transcription activator-like effector nucleases, and RNA-guided engineered nucleases derived from the bacterial clustered regularly interspaced short palindromic repeat (CRISPR)-Cas (CRISPR-associated) system. A growing number of researchers are using genome-editing technologies, which have become more accessible and affordable since the discovery and adaptation of CRISPR-Cas9. Here, the repair mechanism and outcomes of DSBs are reviewed and the three types of designed nucleases are discussed with the hope that such understanding will facilitate applications to genome editing.
机译:使用设计的核酸酶的靶向基因组编辑技术已经迅速发展,其应用在研究,医学和生物技术中广泛扩展。使用这种基因组改性技术,研究人员可以在各种培养细胞,微生物,动物和植物中精确和有效地插入,去除或改变特定序列。该基因组编辑基于双链断裂(DSB)的产生,通过非博语终端连接(NHEJ)或同源导向的修复(HDR)修复基因组的修复。此外,设计的尼斯诱导的单链断裂产生的产生也可以通过HDR导致精确的基因组,尽管效率相对较低,而不是由核酸酶诱导。已经用于靶向DSB形成的三种设计的核酸酶:锌 - 手指核酸酶,转录活化剂样效应核酸酶,以及衍生自细菌聚集的RNA引导的工程核酸酶定期间隙的短语重复(CRISPR)-CAS(CRISPR相关) 系统。越来越多的研究人员正在采用基因组编辑技术,自CISPR-CAS9的发现和适应以来,这已经变得更加接近,可负担得起。在此,审查了DSB的修复机制和结果,并讨论了三种类型的设计核酸酶,希望这种理解促进应用于基因组编辑。

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