A simple and effective genotyping workflow for rapid detection of CRISPR genome editing.

IF 3.9 3区 医学 Q1 GASTROENTEROLOGY & HEPATOLOGY American journal of physiology. Gastrointestinal and liver physiology Pub Date : 2024-04-01 Epub Date: 2024-02-27 DOI:10.1152/ajpgi.00013.2024
Lingxiang Wang, Jiale Wang, Dongfeng Feng, Bin Wang, Yasmin Jahan-Mihan, Ying Wang, Yan Bi, DoYoung Lim, Baoan Ji
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Abstract

Genetically engineered mouse models play a pivotal role in the modeling of diseases, exploration of gene functions, and the development of novel therapies. In recent years, clustered regularly interspaced short palindromic repeats (CRISPR)-CRISPR-associated protein 9 (Cas9)-mediated genome editing technology has revolutionized the process of developing such models by enabling precise genome modifications of the multiple interested genes simultaneously. Following genome editing, an efficient genotyping methodology is crucial for subsequent characterization. However, current genotyping methods are laborious, time-consuming, and costly. Here, using targeting the mouse trypsinogen genes as an example, we introduced common applications of CRISPR-Cas9 editing and a streamlined cost-effective genotyping workflow for CRISPR-edited mouse models, in which Sanger sequencing is required only at the initial steps. In the F0 mice, we focused on identifying the presence of positive editing by PCR followed by Sanger sequencing without the need to know the exact sequences, simplifying the initial screening. In the F1 mice, Sanger sequencing and algorithms decoding were used to identify the precise editing. Once the edited sequence was established, a simple and effective genotyping strategy was established to distinguish homozygous and heterozygous status by PCR from tail DNA. The genotyping workflow applies to deletions as small as one nucleotide, multiple-gene knockout, and knockin studies. This simplified, efficient, and cost-effective genotyping shall be instructive to new investigators who are unfamiliar with characterizing CRISPR-Cas9-edited mouse strains.NEW & NOTEWORTHY This study presents a streamlined, cost-effective genotyping workflow for clustered regularly interspaced short palindromic repeats (CRISPR)-CRISPR-associated protein 9 (Cas9) edited mouse models, focusing on trypsinogen genes. It simplifies initial F0 mouse screening using PCR and Sanger sequencing without needing exact sequences. For F1 mice, precise editing is identified through Sanger sequencing and algorithm decoding. The workflow includes a novel PCR strategy for distinguishing homozygous and heterozygous statuses in subsequent generations, effective for small deletions, multiple-gene knockouts, and knockins.

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用于快速检测 CRISPR 基因组编辑的简单有效的基因分型工作流程。
基因工程小鼠模型在疾病建模、探索基因功能和开发新型疗法方面发挥着举足轻重的作用。近年来,CRISPR-Cas9 介导的基因组编辑技术可以同时对多个相关基因进行精确的基因组修饰,从而彻底改变了此类模型的开发过程。基因组编辑后,高效的基因分型方法对后续表征至关重要。然而,目前的基因分型方法费力、费时、费钱。在这里,我们以靶向小鼠胰蛋白酶原基因为例,介绍了CRISPR-Cas9编辑的常见应用,以及CRISPR编辑小鼠模型的简化、经济高效的基因分型工作流程,其中Sanger测序只需在初始步骤中进行。在 F0 小鼠中,我们的重点是通过 PCR 确定是否存在阳性编辑,然后进行 Sanger 测序,无需知道确切的序列,从而简化了初步筛选。在 F1 小鼠中,我们使用 Sanger 测序和算法解码来确定精确的编辑。一旦确定了编辑序列,就可以建立一种简单有效的基因分型策略,通过尾部 DNA 的 PCR 来区分同卵和异卵状态。基因分型工作流程适用于小至一个核苷酸的缺失、多基因敲除和基因敲入研究。这种简化、高效、经济的基因分型方法对不熟悉CRISPR-Cas9编辑小鼠品系特征的新研究人员很有帮助。
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来源期刊
CiteScore
9.40
自引率
2.20%
发文量
104
审稿时长
1 months
期刊介绍: The American Journal of Physiology-Gastrointestinal and Liver Physiology publishes original articles pertaining to all aspects of research involving normal or abnormal function of the gastrointestinal tract, hepatobiliary system, and pancreas. Authors are encouraged to submit manuscripts dealing with growth and development, digestion, secretion, absorption, metabolism, and motility relative to these organs, as well as research reports dealing with immune and inflammatory processes and with neural, endocrine, and circulatory control mechanisms that affect these organs.
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