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Methods and Applications of CRISPR-Mediated Base Editing in Eukaryotic Genomes

机译:CRISPR介导的真核基因组中的碱基编辑的方法和应用

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摘要

The past several years have seen an explosion in development of applications for the CRISPR-Cas9 system, from efficient genome editing, to high-throughput screening, to recruitment of a range of DNA and chromatin-modifying enzymes. While homology-directed repair (HDR) coupled with Cas9 nuclease cleavage has been used with great success to repair and re-write genomes, recently developed base-editing systems present a useful orthogonal strategy to engineer nucleotide substitutions. Base editing relies on recruitment of cytidine deaminases to introduce changes (rather than double-stranded breaks and donor templates) and offers potential improvements in efficiency while limiting damage and simplifying the delivery of editing machinery. At the same time, these systems enable novel mutagenesis strategies to introduce sequence diversity for engineering and discovery. Here, we review the different base-editing platforms, including their deaminase recruitment strategies and editing outcomes, and compare them to other CRISPR genome-editing technologies. Additionally, we discuss how these systems have been applied in therapeutic, engineering, and research settings. Lastly, we explore future directions of this emerging technology. CRISPR-mediated base editing relies on recruitment of cytidine deaminases to introduce either precise C>T or diverse C>N changes, while avoiding nuclease-mediated double-strand breaks. Here, we review the different base editing platforms, including their deaminase recruitment strategies and editing outcomes, and discuss their application in therapeutic, engineering, and research settings.
机译:过去几年已经看到,在高效基因组编辑到高通量筛选中,在高效基因组系统中开发爆炸爆炸,以募集一系列DNA和染色质调节酶。虽然与Cas9核酸酶切割联系的同源导向的修复(HDR)已经用于修复和重写基因组的巨大成功,但最近开发的基础编辑系统为工程师核苷酸取代提供了一种有用的正交策略。基础编辑依赖于胞苷脱胺酶的募集,引入变化(而不是双链断裂和供体模板),并在限制损坏和简化编辑机器的输送时提供效率的潜在改进。与此同时,这些系统使新颖的诱变策略引入工程和发现的序列多样性。在这里,我们审查了不同的基础编辑平台,包括它们的脱蛋白酶招募策略和编辑结果,并将它们与其他CRISPR基因组编辑技术进行比较。此外,我们讨论这些系统如何应用于治疗,工程和研究设置。最后,我们探索了这种新兴技术的未来方向。 CRISPR介导的基础编辑依赖于胞苷脱氨酶的募集,以引入精确的C> T或不同的C> N变化,同时避免核酸酶介导的双链断裂。在这里,我们审查了不同的基础编辑平台,包括其脱氨酶招募策略和编辑结果,并讨论其在治疗,工程和研究环境中的应用。

著录项

  • 来源
    《Molecular cell》 |2017年第1期|共18页
  • 作者单位

    Department of Genetics and Stanford University Chemistry Engineering and Medicine for Human;

    Department of Genetics and Stanford University Chemistry Engineering and Medicine for Human;

    Department of Genetics and Stanford University Chemistry Engineering and Medicine for Human;

    Department of Genetics and Stanford University Chemistry Engineering and Medicine for Human;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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