Digenome-seq: genome-wide profiling of CRISPR-Cas9 off-target effects in human cells

IF 32.1 1区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS Nature Methods Pub Date : 2015-02-09 DOI:10.1038/nmeth.3284
Daesik Kim, Sangsu Bae, Jeongbin Park, Eunji Kim, Seokjoong Kim, Hye Ryeong Yu, Jinha Hwang, Jong-Il Kim, Jin-Soo Kim
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引用次数: 813

Abstract

In vitro digestion of genomic DNA with Cas9 and single guide RNAs (sgRNAs) yields genome-wide off-target sites at frequencies below 0.1%. Off-target sites can be further reduced with modified sgRNAs. Although RNA-guided genome editing via the CRISPR-Cas9 system is now widely used in biomedical research, genome-wide target specificities of Cas9 nucleases remain controversial. Here we present Digenome-seq, in vitro Cas9-digested whole-genome sequencing, to profile genome-wide Cas9 off-target effects in human cells. This in vitro digest yields sequence reads with the same 5′ ends at cleavage sites that can be computationally identified. We validated off-target sites at which insertions or deletions were induced with frequencies below 0.1%, near the detection limit of targeted deep sequencing. We also showed that Cas9 nucleases can be highly specific, inducing off-target mutations at merely several, rather than thousands of, sites in the entire genome and that Cas9 off-target effects can be avoided by replacing ''promiscuous'' single guide RNAs (sgRNAs) with modified sgRNAs. Digenome-seq is a robust, sensitive, unbiased and cost-effective method for profiling genome-wide off-target effects of programmable nucleases including Cas9.

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Digenome-seq:人类细胞中 CRISPR-Cas9 脱靶效应的全基因组图谱分析
用 Cas9 和单导 RNA(sgRNA)体外消化基因组 DNA 会产生全基因组范围的脱靶位点,其频率低于 0.1%。经过修饰的 sgRNA 可进一步减少脱靶位点。尽管通过 CRISPR-Cas9 系统进行 RNA 引导的基因组编辑现已广泛应用于生物医学研究,但 Cas9 核酸酶的全基因组靶向特异性仍存在争议。在这里,我们介绍了 Digenome-seq(体外 Cas9 消化全基因组测序),以分析人类细胞中全基因组的 Cas9 脱靶效应。体外消化产生的序列读数具有相同的5′末端裂解位点,可以通过计算确定。我们验证了诱导插入或缺失的脱靶位点,其频率低于 0.1%,接近靶向深度测序的检测极限。我们还发现,Cas9 核酸酶具有高度特异性,可在整个基因组中的几个而不是数千个位点诱导脱靶突变,而且用修饰的 sgRNA 取代 "杂乱的 "单导 RNA(sgRNA)可避免 Cas9 的脱靶效应。Digenome-seq 是一种稳健、灵敏、无偏见且经济有效的方法,可用于分析包括 Cas9 在内的可编程核酸酶的全基因组脱靶效应。
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来源期刊
Nature Methods
Nature Methods 生物-生化研究方法
CiteScore
58.70
自引率
1.70%
发文量
326
审稿时长
1 months
期刊介绍: Nature Methods is a monthly journal that focuses on publishing innovative methods and substantial enhancements to fundamental life sciences research techniques. Geared towards a diverse, interdisciplinary readership of researchers in academia and industry engaged in laboratory work, the journal offers new tools for research and emphasizes the immediate practical significance of the featured work. It publishes primary research papers and reviews recent technical and methodological advancements, with a particular interest in primary methods papers relevant to the biological and biomedical sciences. This includes methods rooted in chemistry with practical applications for studying biological problems.
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