Efficient mutagenesis by CRISPR/Cas system during meiotic maturation of porcine oocytes

Asuka Onuma, W. Fujii, K. Sugiura, K. Naito
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引用次数: 9

Abstract

Genome editing using the CRISPR/Cas system can induce mutations with high efficiency, and allows easier production of genome-modified animals than that offered by the conventional method where embryonic stem cells are used. However, studies using CRISPR/Cas systems have been mostly limited to proliferating somatic cells and pronuclear-stage fertilized eggs. In contrast, the efficiency of a CRISPR/Cas system in immature and maturing oocytes progressing through meiosis has not yet been assessed. In the present study, we evaluated the genome-modification efficiency of the CRISPR/Cas system during meiotic maturation of porcine oocytes. Additionally, the localization of the Cas9 protein in immature oocytes was analyzed in relation to nuclear transport and mutation induction. The results showed that CRISPR/Cas induced mutation with high efficiency even in maturing oocytes with condensed chromosomes, whereas mutations were not induced in GV-stage oocytes. The localization analysis of enhanced green fluorescent protein (EGFP)-tagged Cas9 (Cas9-EGFP) revealed that the nuclei contained lesser Cas9 than the cytoplasm in immature oocytes. Treatment with leptomycin B, a nuclear export inhibitor, increased the amount of nuclear Cas9 and enabled mutation induction in GV oocytes. Our results suggest that CRISPR/Cas systems can be applied to oocytes during meiotic maturation and be implemented in novel applications targeting female genomes.
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猪卵母细胞减数分裂成熟过程中CRISPR/Cas系统的高效诱变
使用CRISPR/Cas系统进行基因组编辑可以高效率地诱导突变,并且比使用胚胎干细胞的传统方法更容易生产基因组修饰的动物。然而,使用CRISPR/Cas系统的研究大多局限于增殖体细胞和原核阶段受精卵。相比之下,CRISPR/Cas系统在未成熟和成熟卵母细胞减数分裂过程中的效率尚未得到评估。在本研究中,我们评估了CRISPR/Cas系统在猪卵母细胞减数分裂成熟过程中的基因组修饰效率。此外,我们还分析了Cas9蛋白在未成熟卵母细胞中的定位与核转运和突变诱导的关系。结果表明,CRISPR/Cas在染色体凝聚的成熟卵母细胞中诱导突变的效率很高,而在gv期卵母细胞中则没有诱导突变。增强绿色荧光蛋白(EGFP)标记Cas9 (Cas9-EGFP)的定位分析显示,在未成熟卵母细胞中,细胞核中Cas9的含量少于细胞质。用leptomycin B(一种核输出抑制剂)治疗GV卵母细胞,增加了核Cas9的数量,并激活了突变诱导。我们的研究结果表明,CRISPR/Cas系统可以应用于减数分裂成熟过程中的卵母细胞,并可以在针对女性基因组的新应用中实现。
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