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利用 CRISPR/Cas9 系统对小鼠受精卵进行基因编辑。

Gene Editing in Mouse Zygotes Using the CRISPR/Cas9 System.

机构信息

German Center for Neurodegenerative Diseases (DZNE), Munich, Germany.

Helmholtz Zentrum München, German Research Center for Environmental Health, Institute of Developmental Genetics, Neuherberg, Germany.

出版信息

Methods Mol Biol. 2023;2631:207-230. doi: 10.1007/978-1-0716-2990-1_8.

DOI:10.1007/978-1-0716-2990-1_8
PMID:36995669
Abstract

Engineering of the mouse germline is a key technology in biomedical research for studying the function of genes in health and disease. Since the first knockout mouse was described in 1989, gene targeting was based on recombination of vector encoded sequences in mouse embryonic stem cell lines and their introduction into preimplantation embryos to obtain germline chimeric mice. This approach has been replaced in 2013 by the application of the RNA-guided CRISPR/Cas9 nuclease system, which is introduced into zygotes and directly creates targeted modifications in the mouse genome. Upon the introduction of Cas9 nuclease and guide RNAs into one-cell embryos, sequence-specific double-strand breaks are created that are highly recombinogenic and processed by DNA repair enzymes. Gene editing commonly refers to the diversity of DSB repair products that include imprecise deletions or precise sequence modifications copied from repair template molecules. Since gene editing can now be easily applied directly in mouse zygotes, it has rapidly become the standard procedure for generating genetically engineered mice. This article covers the design of guide RNAs, knockout and knockin alleles, options for donor delivery, preparation of reagents, microinjection or electroporation of zygotes, and the genotyping of pups derived from gene editing projects.

摘要

小鼠生殖系工程是生物医学研究中的一项关键技术,可用于研究基因在健康和疾病中的功能。自 1989 年首次描述了敲除小鼠以来,基因靶向技术一直基于在小鼠胚胎干细胞系中重组载体编码序列,并将其导入着床前胚胎中,以获得生殖系嵌合小鼠。这种方法在 2013 年被 RNA 指导的 CRISPR/Cas9 核酸酶系统的应用所取代,该系统被导入受精卵,并直接在小鼠基因组中创建靶向修饰。当 Cas9 核酸酶和向导 RNA 被导入单细胞胚胎时,会产生序列特异性双链断裂,这些双链断裂具有高度的重组性,并被 DNA 修复酶处理。基因编辑通常是指 DSB 修复产物的多样性,包括非精确缺失或从修复模板分子复制的精确序列修饰。由于基因编辑现在可以直接在小鼠受精卵中轻松应用,因此它已迅速成为生成基因工程小鼠的标准程序。本文涵盖了向导 RNA 的设计、敲除和敲入等位基因、供体传递的选择、试剂的制备、受精卵的显微注射或电穿孔,以及源自基因编辑项目的幼鼠的基因分型。

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History of genome editing: From meganucleases to CRISPR.基因组编辑的历史:从巨型核酸酶到 CRISPR。
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Cytosine base editor 4 but not adenine base editor generates off-target mutations in mouse embryos.胞嘧啶碱基编辑器 4 而非腺嘌呤碱基编辑器会在小鼠胚胎中产生脱靶突变。
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