Optimization of genome editing by CRISPR ribonucleoprotein for high efficiency of germline transmission of Sox9 in zebrafish

IF 4.9 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS New biotechnology Pub Date : 2025-05-25 Epub Date: 2025-01-21 DOI:10.1016/j.nbt.2025.01.009
Kangning Yang , Le Cai , Yu Zhao, Hanhua Cheng, Rongjia Zhou
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Abstract

Primordial germ cells (PGCs) are the first germline stem cells to emerge during early embryonic development and are essential for the propagation and survival of species. Genome editing creates mutagenesis possibilities in vivo, but the generation of precise mutations in PGCs is still challenging. Here, we report an optimized approach for highly efficient genome editing via introducing biallelic variations in early embryos in zebrafish. We adopted an extended, GC-rich, and chemically modified sgRNA along with microinjection of the CRISPR ribonucleoprotein (RNP) complex into the yolk sac at the 1-cell stage. We found that genome editing of Sox9a generated a high proportion of heterozygotes with edited alleles in the F1 generation, indicating biallelic editing. Deep sequencing and mapping the edited cells from early embryos to future tissues revealed that the edited founder has a dominantly edited allele, sox9a M1, accounting for over 99 % of alleles in the testis. Specifically, all offspring of the founder inherited the edited allele, suggesting nearly complete editing of the alleles in early germline cells. Overall, the optimization delineates biallelic editing of sox9a in early embryos and transmission of edited alleles to offspring, thus presenting a method to create a desired genetic mutation line of Sox9a avoiding lengthy traditional crossbreeding.
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利用CRISPR核糖核蛋白优化基因组编辑,实现Sox9在斑马鱼种系高效传播。
原始生殖细胞(PGCs)是最早在胚胎发育过程中出现的生殖系干细胞,对物种的繁殖和生存至关重要。基因组编辑在体内创造了诱变的可能性,但在PGCs中产生精确的突变仍然具有挑战性。在这里,我们通过在斑马鱼早期胚胎中引入双等位基因变异,报道了一种高效基因组编辑的优化方法。我们采用了一种扩展的、富含gc的、化学修饰的sgRNA,并在1细胞期将CRISPR核糖核蛋白(RNP)复合物显微注射到卵黄囊中。我们发现,Sox9a的基因组编辑在F1代中产生了高比例的带有编辑等位基因的杂合子,表明双等位基因编辑。深度测序和绘制编辑过的细胞从早期胚胎到未来组织的图谱显示,编辑过的创始人有一个显性编辑的等位基因sox9a M1,占睾丸中99%以上的等位基因。具体来说,创始人的所有后代都继承了编辑过的等位基因,这表明在早期生殖细胞中几乎完全编辑了等位基因。总体而言,优化描述了sox9a在早期胚胎中的双等位基因编辑和编辑后的等位基因传递给后代,从而提供了一种创建所需sox9a基因突变系的方法,避免了冗长的传统杂交。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
New biotechnology
New biotechnology 生物-生化研究方法
CiteScore
11.40
自引率
1.90%
发文量
77
审稿时长
1 months
期刊介绍: New Biotechnology is the official journal of the European Federation of Biotechnology (EFB) and is published bimonthly. It covers both the science of biotechnology and its surrounding political, business and financial milieu. The journal publishes peer-reviewed basic research papers, authoritative reviews, feature articles and opinions in all areas of biotechnology. It reflects the full diversity of current biotechnology science, particularly those advances in research and practice that open opportunities for exploitation of knowledge, commercially or otherwise, together with news, discussion and comment on broader issues of general interest and concern. The outlook is fully international. The scope of the journal includes the research, industrial and commercial aspects of biotechnology, in areas such as: Healthcare and Pharmaceuticals; Food and Agriculture; Biofuels; Genetic Engineering and Molecular Biology; Genomics and Synthetic Biology; Nanotechnology; Environment and Biodiversity; Biocatalysis; Bioremediation; Process engineering.
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