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母源 DCAF2 对于小鼠第一个细胞周期中的基因组稳定性维持至关重要。

Maternal DCAF2 is crucial for maintenance of genome stability during the first cell cycle in mice.

机构信息

Life Sciences Institute, Zhejiang University, Hangzhou 310058, China.

State Key Laboratory of Reproductive Medicine, Nanjing Medical University, Nanjing 210029, China.

出版信息

J Cell Sci. 2017 Oct 1;130(19):3297-3307. doi: 10.1242/jcs.206664. Epub 2017 Aug 17.

Abstract

Precise regulation of DNA replication and genome integrity is crucial for gametogenesis and early embryogenesis. Cullin ring-finger ubiquitin ligase 4 (CRL4) has multiple functions in the maintenance of germ cell survival, oocyte meiotic maturation, and maternal-zygotic transition in mammals. DDB1-cullin-4-associated factor-2 (DCAF2, also known as DTL or CDT2) is an evolutionarily conserved substrate receptor of CRL4. To determine whether DCAF2 is a key CRL4 substrate adaptor in mammalian oocytes, we generated a novel mouse strain that carries a allele flanked by sequences, and specifically deleted in oocytes. knockout in mouse oocytes leads to female infertility. Although -null oocytes were able to develop and mature normally, the embryos derived from them were arrested at one- to two-cell stage, owing to prolonged DNA replication and accumulation of massive DNA damage. These results indicate that DCAF2 is a previously unrecognized maternal factor that safeguards zygotic genome stability. Maternal DCAF2 protein is crucial for prevention of DNA re-replication in the first and unique mitotic cell cycle of the zygote.This article has an associated First Person interview with the first author of the paper.

摘要

精确调控 DNA 复制和基因组完整性对于配子发生和早期胚胎发生至关重要。Cullin 环指泛素连接酶 4(CRL4)在哺乳动物中维持生殖细胞存活、卵母细胞减数分裂成熟和母-合子过渡方面具有多种功能。DDB1-cullin-4 相关因子 2(DCAF2,也称为 DTL 或 CDT2)是 CRL4 的一种进化上保守的底物受体。为了确定 DCAF2 是否是哺乳动物卵母细胞中关键的 CRL4 底物衔接蛋白,我们构建了一种新型小鼠品系,该品系携带侧翼为 序列的 等位基因,并在卵母细胞中特异性缺失 。在小鼠卵母细胞中缺失 导致雌性不育。尽管 -/-卵母细胞能够正常发育和成熟,但它们衍生的胚胎由于 DNA 复制延长和大量 DNA 损伤积累而停滞在 1-2 细胞阶段。这些结果表明 DCAF2 是一种以前未被识别的母源因子,可保障合子基因组稳定性。母源 DCAF2 蛋白对于预防合子第一次也是唯一一次有丝分裂细胞周期中的 DNA 再复制至关重要。本文有该论文第一作者的相关第一人称采访。

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