Gene Knock-in by CRISPR/Cas9 and Cell Sorting in Macrophage and T Cell Lines

清脆的 生物 转染 电穿孔 Cas9 单元格排序 免疫系统 基因敲除 基因靶向 基因敲除 基因 细胞培养 反式激活crRNA 细胞生物学 细胞 计算生物学 遗传学
作者
Lichen Zhang,Rong Huang,Liaoxun Lu,Rui Fu,Guo Guo,Yanrong Gu,Zhuangzhuang Liu,Le He,Marie Malissen,Yinming Liang
出处
期刊:Journal of Visualized Experiments [MyJOVE]
卷期号: (177) 被引量:5
标识
DOI:10.3791/62328
摘要

Functional genomics studies of the immune system require genetic manipulations that involve both deletion of target genes and addition of elements to proteins of interest. Identification of gene functions in cell line models is important for gene discovery and exploration of cell-intrinsic mechanisms. However, genetic manipulations of immune cells such as T cells and macrophage cell lines using CRISPR/Cas9-mediated knock-in are difficult because of the low transfection efficiency of these cells, especially in a quiescent state. To modify genes in immune cells, drug-resistance selection and viral vectors are typically used to enrich for cells expressing the CRIPSR/Cas9 system, which inevitably results in undesirable intervention of the cells. In a previous study, we designed dual fluorescent reporters coupled to CRISPR/Cas9 that were transiently expressed after electroporation. This technical solution leads to rapid gene deletion in immune cells; however, gene knock-in in immune cells such as T cells and macrophages without the use of drug-resistance selection or viral vectors is even more challenging. In this article, we show that by using cell sorting to aid selection of cells transiently expressing CRISPR/Cas9 constructs targeting the Rosa26 locus in combination with a donor plasmid, gene knock-in can be achieved in both T cells and macrophages without drug-resistance enrichment. As an example, we show how to express human ACE2, a receptor of SARS-Cov-2, which is responsible for the current Covid-19 pandemic, in RAW264.7 macrophages by performing knock-in experiments. Such gene knock-in cells can be widely used for mechanistic studies.
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