Faculty of Medicine and Health Sciences, Center for Medical Genetics, University of Antwerp and Antwerp University Hospital, Antwerp, Belgium.
Experimental Neurobiology Unit, Department of Biomedical Sciences, University of Antwerp, Antwerp, Belgium.
Sci Rep. 2023 Jan 27;13(1):1491. doi: 10.1038/s41598-023-27503-9.
Despite numerous prior attempts to improve knock-in (KI) efficiency, the introduction of precise base pair substitutions by the CRISPR-Cas9 technique in zebrafish remains challenging. In our efforts to generate KI zebrafish models of human CACNA1C mutations, we have tested the effect of several CRISPR determinants on KI efficiency across two sites in a single gene and developed a novel method for early selection to ameliorate KI efficiency. We identified optimal KI conditions for Cas9 protein and non-target asymmetric PAM-distal single stranded deoxynucleotide repair templates at both cacna1c sites. An effect of distance to the cut site on the KI efficiency was only observed for a single repair template conformation at one of the two sites. By combining minimally invasive early genotyping with the zebrafish embryo genotyper (ZEG) device and next-generation sequencing, we were able to obtain an almost 17-fold increase in somatic editing efficiency. The added benefit of the early selection procedure was particularly evident for alleles with lower somatic editing efficiencies. We further explored the potential of the ZEG selection procedure for the improvement of germline transmission by demonstrating germline transmission events in three groups of pre-selected embryos.
尽管先前已经尝试了多种方法来提高基因敲入(KI)效率,但利用 CRISPR-Cas9 技术在斑马鱼中精确引入碱基对替换仍然具有挑战性。在我们努力生成人类 CACNA1C 突变的 KI 斑马鱼模型的过程中,我们测试了几种 CRISPR 决定因素对单个基因两个位点的 KI 效率的影响,并开发了一种新的早期选择方法来改善 KI 效率。我们确定了在 cacna1c 两个位点的最优 Cas9 蛋白和非靶标不对称 PAM 远端单链脱氧核苷酸修复模板的 KI 条件。仅在两个位点之一的一种修复模板构象中观察到到切割位点的距离对 KI 效率的影响。通过将微创早期基因分型与斑马鱼胚胎基因分型器(ZEG)设备和下一代测序相结合,我们能够使体细胞编辑效率提高近 17 倍。对于体细胞编辑效率较低的等位基因,早期选择程序的附加好处尤为明显。我们进一步通过展示三组预先选择的胚胎中的种系传递事件,探索了 ZEG 选择程序在提高种系传递效率方面的潜力。