HDR-based CRISPR/Cas9-mediated Knockout of PD-L1 in C57BL/6 Mice.

Laura V Heeb, Betül Taskoparan, Antonios Katsoulas, Michal Beffinger, Pierre-Alain Clavien, Sebastian Kobold, Anurag Gupta, Johannes Vom Berg
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Abstract

The immune-inhibitory molecule programmed cell death ligand 1 (PD-L1) has been shown to play a role in pathologies such as autoimmunity, infections, and cancer. The expression of PD-L1 not only on cancer cells but also on non-transformed host cells is known to be associated with cancer progression. Generation of PD-L1 deficiency in the murine system enables us to specifically study the role of PD-L1 in physiological processes and diseases. One of the most versatile and easy to use site-specific gene editing tools is the CRISPR/Cas9 system, which is based on an RNA-guided nuclease system. Similar to its predecessors, the Zinc finger nucleases or transcription activator-like effector nucleases (TALENs), CRISPR/Cas9 catalyzes double-strand DNA breaks, which can result in frameshift mutations due to random nucleotide insertions or deletions via non-homologous end joining (NHEJ). Furthermore, although less frequently, CRISPR/Cas9 can lead to insertion of defined sequences due to homology-directed repair (HDR) in the presence of a suitable template. Here, we describe a protocol for the knockout of PD-L1 in the murine C57BL/6 background using CRISPR/Cas9. Targeting of exon 3 coupled with the insertion of a HindIII restriction site leads to a premature stop codon and a loss-of-function phenotype. We describe the targeting strategy as well as founder screening, genotyping, and phenotyping. In comparison to NHEJ-based strategy, the presented approach results in a defined stop codon with comparable efficiency and timelines as NHEJ, generates convenient founder screening and genotyping options, and can be swiftly adapted to other targets.

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基于hdr的CRISPR/ cas9介导的C57BL/6小鼠PD-L1敲除
免疫抑制分子程序性细胞死亡配体1 (PD-L1)已被证明在自身免疫、感染和癌症等疾病中发挥作用。PD-L1的表达不仅在癌细胞上,而且在未转化的宿主细胞上也与癌症进展有关。小鼠系统中PD-L1缺失的产生使我们能够专门研究PD-L1在生理过程和疾病中的作用。最通用和易于使用的位点特异性基因编辑工具之一是CRISPR/Cas9系统,该系统基于rna引导的核酸酶系统。与其前身锌指核酸酶或转录激活物样效应核酸酶(TALENs)类似,CRISPR/Cas9催化双链DNA断裂,通过非同源末端连接(NHEJ)随机核苷酸插入或缺失可导致移码突变。此外,尽管频率较低,CRISPR/Cas9可以在合适的模板存在下通过同源定向修复(HDR)导致插入定义序列。在这里,我们描述了一种使用CRISPR/Cas9敲除小鼠C57BL/6背景中的PD-L1的方案。靶向外显子3加上插入一个HindIII限制位点导致过早停止密码子和功能丧失表型。我们描述了靶向策略以及创始人筛选,基因分型和表型。与基于NHEJ的策略相比,所提出的方法产生的终止密码子具有与NHEJ相当的效率和时间线,产生方便的创始人筛选和基因分型选项,并且可以迅速适应其他目标。
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