The Institute of Molecular Health Sciences, ETH Zurich, Zurich, Switzerland.
The Institute of Molecular Life Sciences, University of Zurich, Zurich, Switzerland.
Elife. 2018 May 29;7:e33761. doi: 10.7554/eLife.33761.
The CRISPR-Cas9 targeted nuclease technology allows the insertion of genetic modifications with single base-pair precision. The preference of mammalian cells to repair Cas9-induced DNA double-strand breaks via error-prone end-joining pathways rather than via homology-directed repair mechanisms, however, leads to relatively low rates of precise editing from donor DNA. Here we show that spatial and temporal co-localization of the donor template and Cas9 via covalent linkage increases the correction rates up to 24-fold, and demonstrate that the effect is mainly caused by an increase of donor template concentration in the nucleus. Enhanced correction rates were observed in multiple cell types and on different genomic loci, suggesting that covalently linking the donor template to the Cas9 complex provides advantages for clinical applications where high-fidelity repair is desired.
CRISPR-Cas9 靶向核酸酶技术允许以单碱基对精度插入遗传修饰。然而,哺乳动物细胞更倾向于通过易错的末端连接途径而不是通过同源定向修复机制来修复 Cas9 诱导的 DNA 双链断裂,这导致来自供体 DNA 的精确编辑的相对低速率。在这里,我们表明通过共价键将供体模板和 Cas9 进行空间和时间上的共定位会将校正率提高 24 倍,并证明该效应主要是由于核内供体模板浓度的增加引起的。在多种细胞类型和不同基因组位点上都观察到了增强的校正率,这表明将供体模板共价连接到 Cas9 复合物为需要高保真修复的临床应用提供了优势。