Division of Tumor Biology and Immunology, The Netherlands Cancer Institute, Plesmanlaan 121, 1066 CX, Amsterdam, The Netherlands.
Plant Sciences and Natural Products, Institute of Biology Leiden (IBL), Leiden University, Sylviusweg 72, 2333 BE, Leiden, The Netherlands.
Sci Rep. 2022 Jun 10;12(1):9606. doi: 10.1038/s41598-022-13688-y.
Promiscuous activity of the Streptococcus pyogenes DNA nuclease CRISPR-Cas9 can result in destruction of a successfully modified sequence obtained by templated repair of a Cas9-induced DNA double-strand break. To avoid re-cutting, additional target-site-disruptions (TSDs) are often introduced on top of the desired base-pair alteration in order to suppress target recognition. These TSDs may lower the efficiency of introducing the intended mutation and can cause unexpected phenotypes. Alternatively, successfully edited sites can be protected against Cas9 re-cutting activity. This method exploits the finding that Cas9 complexed to trimmed guideRNAs can still tightly bind specific genomic sequences but lacks nuclease activity. We show here that the presence of a guideRNA plus a trimmed guideRNA that matches the successfully mutated sequence, which we call hideRNA, can enhance the recovery of precise single base-pair substitution events tenfold. The benefit of hideRNAs in generating a single point mutation was demonstrated in cell lines using plasmid-based delivery of CRISPR-Cas9 components and in mouse zygotes injected with Cas9/guideRNA plus Cas9/hideRNA ribonucleoprotein complexes. However, hRNA protection sometimes failed, which likely reflects an unfavorable affinity of hRNA/Cas9 versus gRNA/Cas9 for the DNA target site. HideRNAs can easily be implemented into current gene editing protocols and facilitate the recovery of single base-pair substitution. As such, hideRNAs are of great value in gene editing experiments demanding high accuracy.
化脓性链球菌 DNA 核酸酶 CRISPR-Cas9 的杂乱活性可能导致通过 Cas9 诱导的 DNA 双链断裂的模板修复获得的成功修饰序列的破坏。为了避免重新切割,通常在所需碱基对改变的基础上引入额外的靶位点破坏(TSD),以抑制靶标识别。这些 TSD 可能会降低引入预期突变的效率,并可能导致意外的表型。或者,可以保护成功编辑的位点免受 Cas9 的重新切割活性。该方法利用了 Cas9 复合物与修剪的 guideRNA 仍能紧密结合特定基因组序列但缺乏核酸酶活性的发现。我们在这里表明,存在guideRNA 加上与成功突变序列匹配的修剪 guideRNA,我们称之为 hideRNA,可以将精确的单碱基替换事件的恢复效率提高十倍。在使用基于质粒的 CRISPR-Cas9 成分递送和用 Cas9/guideRNA 加 Cas9/hideRNA 核糖核蛋白复合物注射的小鼠受精卵中,在细胞系中证明了 hideRNAs 在产生单点突变方面的益处。然而,hRNA 保护有时会失败,这可能反映了 hRNA/Cas9 与 gRNA/Cas9 对 DNA 靶位点的不利亲和力。hideRNA 可以轻松地整合到当前的基因编辑方案中,并促进单碱基替换的恢复。因此,hideRNA 在需要高精度的基因编辑实验中具有很高的价值。