通过 CRISPR/Cas9 靶向牛胚胎中的 NANOS3 实现胚芽消融。

IF 4.9 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Frontiers in genome editing Pub Date : 2023-11-27 eCollection Date: 2023-01-01 DOI:10.3389/fgeed.2023.1321243
Maci L Mueller, Bret R McNabb, Joseph R Owen, Sadie L Hennig, Alba V Ledesma, Mitchell L Angove, Alan J Conley, Pablo J Ross, Alison L Van Eenennaam
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引用次数: 0

摘要

NANOS3在迁移的原始生殖细胞(PGCs)中表达,以保护它们免于凋亡,已知它是几种生物雌雄生殖细胞发育的关键因素。然而,迄今为止,NANOS3基因敲除(KO)活体牛尚未见报道,NANOS3在雄性牛(公牛)中的具体作用也仍未探明。本研究通过 CRISPR/Cas9 系统的细胞质显微注射,在体外产生的牛子代中产生了 NANOS3 KO 牛,并评估了消除 NANOS3 对牛生殖系发育(从胎儿发育到生殖年龄)的影响。在受精后 6 小时联合注射两种选定的引导 RNA (gRNA) /Cas9 核糖核蛋白复合物(即双 gRNA 方法),在发育中的胚胎中实现了较高的 NANOS3 KO 率。随后的胚胎移植妊娠率为 31%(n = 8/26)。双 gRNA 编辑方法实现了 75% (n = 6/8)的总 KO 率(即 100%的等位基因含有完全的功能缺失突变)。在 NANOS3 KO 的胎儿睾丸中,发现 PGCs 在胎龄 41 天时完全消失。重要的是,尽管生殖细胞缺失,NANOS3 KO 牛睾丸在胎儿期、围产期和成年期的曲细精管发育并未受损。此外,NANOS3 KO生殖细胞缺失的活体公牛在性成熟时表现出正常的性欲、解剖学上正常的生殖道以及完整的体细胞性腺发育和结构。此外,还培育出了一头NANOS3 KO生殖系缺失的活体小母牛。然而,NANOS3 KO 牛生殖细胞的缺失显然在更大程度上影响了卵巢的正常发育,而不是睾丸的发育。NANOS3 KO 牛的肉质成分并不显著。总之,这项研究证明,牛体内 NANOS3 的缺失会导致雄性和雌性生殖细胞的特异性缺乏,这表明 NANOS3 KO 牛有可能作为宿主,为雌雄两性生产供体来源的外源性生殖细胞。这些发现有助于人们了解 NANOS3 在牛体内的功能,并对利用 NANOS3 KO 胚系缺失宿主进行胚系互补的新型育种技术的开发具有重要意义。
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Germline ablation achieved via CRISPR/Cas9 targeting of NANOS3 in bovine zygotes.

NANOS3 is expressed in migrating primordial germ cells (PGCs) to protect them from apoptosis, and it is known to be a critical factor for germline development of both sexes in several organisms. However, to date, live NANOS3 knockout (KO) cattle have not been reported, and the specific role of NANOS3 in male cattle, or bulls, remains unexplored. This study generated NANOS3 KO cattle via cytoplasmic microinjection of the CRISPR/Cas9 system in vitro produced bovine zygotes and evaluated the effect of NANOS3 elimination on bovine germline development, from fetal development through reproductive age. The co-injection of two selected guide RNA (gRNA)/Cas9 ribonucleoprotein complexes (i.e., dual gRNA approach) at 6 h post fertilization achieved a high NANOS3 KO rate in developing embryos. Subsequent embryo transfers resulted in a 31% (n = 8/26) pregnancy rate. A 75% (n = 6/8) total KO rate (i.e., 100% of alleles present contained complete loss-of-function mutations) was achieved with the dual gRNA editing approach. In NANOS3 KO fetal testes, PGCs were found to be completely eliminated by 41-day of fetal age. Importantly, despite the absence of germ cells, seminiferous tubule development was not impaired in NANOS3 KO bovine testes during fetal, perinatal, and adult stages. Moreover, a live, NANOS3 KO, germline-ablated bull was produced and at sexual maturity he exhibited normal libido, an anatomically normal reproductive tract, and intact somatic gonadal development and structure. Additionally, a live, NANOS3 KO, germline-ablated heifer was produced. However, it was evident that the absence of germ cells in NANOS3 KO cattle compromised the normalcy of ovarian development to a greater extent than it did testes development. The meat composition of NANOS3 KO cattle was unremarkable. Overall, this study demonstrated that the absence of NANOS3 in cattle leads to the specific deficiency of both male and female germ cells, suggesting the potential of NANOS3 KO cattle to act as hosts for donor-derived exogenous germ cell production in both sexes. These findings contribute to the understanding of NANOS3 function in cattle and have valuable implications for the development of novel breeding technologies using germline complementation in NANOS3 KO germline-ablated hosts.

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