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CRISPR RNA 引导的可编程脱氨酶的全基因组靶向特异性。

Genome-wide target specificities of CRISPR RNA-guided programmable deaminases.

机构信息

Department of Chemistry, Seoul National University, Seoul, Republic of Korea.

Center for Genome Engineering, Institute for Basic Science (IBS), Seoul, Republic of Korea.

出版信息

Nat Biotechnol. 2017 May;35(5):475-480. doi: 10.1038/nbt.3852. Epub 2017 Apr 10.

Abstract

Cas9-linked deaminases, also called base editors, enable targeted mutation of single nucleotides in eukaryotic genomes. However, their off-target activity is largely unknown. Here we modify digested-genome sequencing (Digenome-seq) to assess the specificity of a programmable deaminase composed of a Cas9 nickase (nCas9) and the deaminase APOBEC1 in the human genome. Genomic DNA is treated with the base editor and a mixture of DNA-modifying enzymes in vitro to produce DNA double-strand breaks (DSBs) at uracil-containing sites. Off-target sites are then computationally identified from whole genome sequencing data. Testing seven different single guide RNAs (sgRNAs), we find that the rAPOBEC1-nCas9 base editor is highly specific, inducing cytosine-to-uracil conversions at only 18 ± 9 sites in the human genome for each sgRNA. Digenome-seq is sensitive enough to capture off-target sites with a substitution frequency of 0.1%. Notably, off-target sites of the base editors are often different from those of Cas9 alone, calling for independent assessment of their genome-wide specificities.

摘要

Cas9 连接的脱氨酶,也称为碱基编辑器,可实现真核基因组中单核苷酸的靶向突变。然而,其脱靶活性在很大程度上是未知的。在这里,我们修改了消化基因组测序(Digenome-seq),以评估由 Cas9 切口酶(nCas9)和脱氨酶 APOBEC1 组成的可编程脱氨酶在人类基因组中的特异性。将基因组 DNA 用碱基编辑器和一组 DNA 修饰酶在体外处理,以在含有尿嘧啶的位点产生 DNA 双链断裂(DSB)。然后从全基因组测序数据中计算出脱靶位点。通过测试七种不同的单指导 RNA(sgRNA),我们发现 rAPOBEC1-nCas9 碱基编辑器非常特异,每个 sgRNA 仅在人类基因组中的 18 ± 9 个位点诱导胞嘧啶向尿嘧啶的转换。Digenome-seq 足够灵敏,可以捕获替代频率为 0.1%的脱靶位点。值得注意的是,碱基编辑器的脱靶位点通常与 Cas9 不同,因此需要对其进行独立的全基因组特异性评估。

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