Roy J. Carver Department of Biochemistry, Biophysics & Molecular Biology, Iowa State University, Ames, IA 50011, USA.
Molecular, Cellular, and Developmental Biology Interdepartmental Program, Iowa State University, Ames, IA 50011, USA.
Nucleic Acids Res. 2021 Apr 19;49(7):4037-4053. doi: 10.1093/nar/gkab163.
Cas9 is an RNA-guided endonuclease in the bacterial CRISPR-Cas immune system and a popular tool for genome editing. The commonly used Streptococcus pyogenes Cas9 (SpCas9) is relatively non-specific and prone to off-target genome editing. Other Cas9 orthologs and engineered variants of SpCas9 have been reported to be more specific. However, previous studies have focused on specificity of double-strand break (DSB) or indel formation, potentially overlooking alternative cleavage activities of these Cas9 variants. In this study, we employed in vitro cleavage assays of target libraries coupled with high-throughput sequencing to systematically compare cleavage activities and specificities of two natural Cas9 variants (SpCas9 and Staphylococcus aureus Cas9) and three engineered SpCas9 variants (SpCas9 HF1, HypaCas9 and HiFi Cas9). We observed that all Cas9s tested could cleave target sequences with up to five mismatches. However, the rate of cleavage of both on-target and off-target sequences varied based on target sequence and Cas9 variant. In addition, SaCas9 and engineered SpCas9 variants nick targets with multiple mismatches but have a defect in generating a DSB, while SpCas9 creates DSBs at these targets. Overall, these differences in cleavage rates and DSB formation may contribute to varied specificities observed in genome editing studies.
Cas9 是细菌 CRISPR-Cas 免疫系统中的一种 RNA 指导的内切酶,也是基因组编辑的常用工具。常用的酿脓链球菌 Cas9(SpCas9)相对非特异性,容易发生脱靶基因组编辑。其他 Cas9 同源物和 SpCas9 的工程变体已被报道具有更高的特异性。然而,以前的研究主要集中在双链断裂(DSB)或插入缺失形成的特异性上,可能忽略了这些 Cas9 变体的替代切割活性。在这项研究中,我们采用了靶向文库的体外切割分析,并结合高通量测序,系统比较了两种天然 Cas9 变体(SpCas9 和金黄色葡萄球菌 Cas9)和三种工程化 SpCas9 变体(SpCas9 HF1、HypaCas9 和 HiFi Cas9)的切割活性和特异性。我们观察到,所有测试的 Cas9 都可以切割带有多达五个错配的靶序列。然而,基于靶序列和 Cas9 变体,靶序列和脱靶序列的切割率存在差异。此外,SaCas9 和工程化 SpCas9 变体可以在多个错配的靶序列上产生缺口,但不能形成 DSB,而 SpCas9 可以在这些靶序列上形成 DSB。总的来说,这些切割率和 DSB 形成的差异可能导致在基因组编辑研究中观察到的特异性差异。