$$\rightleftharpoonup{xx}$$
$$\longleftharp{xx}$$,
$$\longrightharp{xx}$$,
In this paper, we aim to improve the specificity of Cas9 by combining different strategies. Various methods of avoiding the off-target effects of CRISPR-Cas9 have been developed. For example, truncated sgRNAs can be used to achieve higher specificity1. Additionally, the method of Cas9 delivery can be changed from a plasmid format to an RNP format to obtain higher specificity2. Specific amino acid residues of the Streptococcus pyogenes Cas9 (SpCas9) protein have been modified according to the rational design described previously3,4,5. Alternatively, amino acid residues have been altered in a random manner and the Cas9 variants with the highest specificity were identified using either a yeast6 or an E. coli7,8 screening system.
However, many groups have reported that Cas9 variants engineered using the design to debilitate the nonspecific interaction between Cas9 and the substrate exhibit low on-target activities7,8,9,10,11,12. We developed an E. coli-based directed evolution system, Sniper-screen, to screen randomly mutagenized Cas9 variants. An E. coli screening system has advantages over a yeast system because of the faster doubling time and higher transformation efficiencies of E. coli.
Both negative and positive selection, based on three different plasmids and a gene of interest (GOI) integrated into the E. coli genome, are used in Sniper-screen. Cas9 variants are expressed under the CMV-PltetO1 dual-promoter system of a low-copy number plasmid so that candidates identified in E. coli can be tested in mammalian cells without the need for subcloning. The GOI is introduced into the E. coli genome using the Tn7 transposon system. The sgRNA plasmid, which contains a temperature-sensitive origin of replication, expresses an sgRNA targeting the GOI; however, the sgRNA and GOI sequences are not perfectly matched. A perfectly matched sgRNA target site exists on a third plasmid containing the ccdB gene, which encodes a lethal product that poisons gyrase. In this system, cells expressing Cas9 variants with high off-target activities are removed because double-strand breaks (DSBs) are introduced into the mismatched site located in the genomic DNA. On the other hand, cells expressing Cas9 variants with low on-target activities are also removed because of lethal ccdB gene expression. The expression level of the Cas9 variants can be changed by altering the concentration of anhydrotetracycline (ATC), which adjusts the selection force.
We reasoned that locating the mismatched sgRNA target site in the genomic DNA rather than on a plasmid would increase the sensitivity of the system. The advantage of this approach is that there is only one genomic site, whereas there would be many plasmids, each containing a target site, within a single E. coli cell.
Using this system, we identified a Cas9 variant, Sniper-Cas9, which shows WT-level on-target activities and reduced off-target activities compared to WT Cas9. Sniper-Cas9 can achieve even higher specificity ratios by using truncated sgRNAs or RNP-based delivery rather than plasmid-based delivery.