首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Using a Fluorescent PCR-capillary Gel Electrophoresis Technique to Genotype CRISPR/Cas9-mediated Knockout Mutants in a High-throughput Format
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Using a Fluorescent PCR-capillary Gel Electrophoresis Technique to Genotype CRISPR/Cas9-mediated Knockout Mutants in a High-throughput Format

机译:使用荧光PCR-毛细管凝胶电泳技术以高通量形式对CRISPR / Cas9介导的基因突变体进行基因型分析

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摘要

The development of programmable genome-editing tools has facilitated the use of reverse genetics to understand the roles specific genomic sequences play in the functioning of cells and whole organisms. This cause has been tremendously aided by the recent introduction of the CRISPR/Cas9 system-a versatile tool that allows researchers to manipulate the genome and transcriptome in order to, among other things, knock out, knock down, or knock in genes in a targeted manner. For the purpose of knocking out a gene, CRISPR/Cas9-mediated double-strand breaks recruit the non-homologous end-joining DNA repair pathway to introduce the frameshift-causing insertion or deletion of nucleotides at the break site. However, an individual guide RNA may cause undesirable off-target effects, and to rule these out, the use of multiple guide RNAs is necessary. This multiplicity of targets also means that a high-volume screening of clones is required, which in turn begs the use of an efficient high-throughput technique to genotype the knockout clones. Current genotyping techniques either suffer from inherent limitations or incur high cost, hence rendering them unsuitable for high-throughput purposes. Here, we detail the protocol for using fluorescent PCR, which uses genomic DNA from crude cell lysate as a template, and then resolving the PCR fragments via capillary gel electrophoresis. This technique is accurate enough to differentiate one base-pair difference between fragments and hence is adequate in indicating the presence or absence of a frameshift in the coding sequence of the targeted gene. This precise knowledge effectively precludes the need for a confirmatory sequencing step and allows users to save time and cost in the process. Moreover, this technique has proven to be versatile in genotyping various mammalian cells of various tissue origins targeted by guide RNAs against numerous genes, as shown here and elsewhere.
机译:可编程基因组编辑工具的发展促进了反向遗传学的应用,以了解特定基因组序列在细胞和整个生物体的功能中发挥的作用。最近引入的CRISPR / Cas9系统极大地帮助了这一原因,该工具使研究人员能够操纵基因组和转录组,以敲除,敲除或敲除靶标中的基因。方式。为了敲除基因,CRISPR / Cas9介导的双链断裂募集了非同源的末端连接DNA修复途径,以引入导致移码的核苷酸插入或缺失的断裂位点。但是,单个指导RNA可能会导致不良的脱靶效应,并且要排除这些影响,必须使用多个指导RNA。靶标的多样性还意味着需要对克隆进行大量筛选,这反过来又要求使用有效的高通量技术对敲除的克隆进行基因分型。当前的基因分型技术或者遭受固有的局限性或者招致高成本,因此使其不适合于高通量目的。在这里,我们详细介绍了使用荧光PCR的方案,该方案使用来自粗细胞裂解液的基因组DNA作为模板,然后通过毛细管凝胶电泳分离PCR片段。该技术足够精确以区分片段之间的一个碱基对差异,因此足以指示目标基因的编码序列中是否存在移码。这种精确的知识有效地排除了验证序列步骤的需要,并允许用户节省过程中的时间和成本。此外,如本文和其他地方所示,该技术已被证明可用于对各种组织起源的各种哺乳动物细胞进行基因分型,这些细胞被针对许多基因的引导RNA靶向。

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