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CNTD1对于雌性减数分裂中的交叉形成以及建立卵巢储备至关重要。

CNTD1 is crucial for crossover formation in female meiosis and for establishing the ovarian reserve.

作者信息

Wood Anna J, Ahmed Rania M, Simon Leah E, Bradley Rachel A, Gray Stephen, Wolff Ian D, Cohen Paula E

机构信息

Department of Biomedical Sciences and Cornell Reproductive Sciences Center (CoRe), Cornell University, Ithaca, NY, USA.

School of Life Sciences, University of Nottingham, UK.

出版信息

J Cell Biol. 2025 Aug 4;224(8). doi: 10.1083/jcb.202401021. Epub 2025 Jun 9.

Abstract

In meiotic prophase I, hundreds of DNA double-strand breaks are formed and subsequently repaired as noncrossovers or crossovers (COs). COs are essential for accurate chromosome segregation during the first meiotic division, and errors in this process result in aneuploidy, birth defects, or infertility. Such errors are more pronounced in females compared with males, indicating that CO regulation and surveillance are sexually dimorphic. We demonstrate here dual roles of cyclin N-terminal domain containing 1 (CNTD1) in ensuring appropriate CO between homologous chromosomes in oocytes and in establishing the pool of follicles in the postnatal ovary. CNTD1-deficient oocytes fail to form COs and exhibit a severely depleted follicle pool shortly after birth, which is temporally distinct from previously reported CO mutants. Further investigation indicates that follicle loss is CHK2-dependent, resulting from inappropriate retention of HORMAD1 and the absence of SKP1. These findings indicate that CNTD1 plays novel roles in CO designation and establishment of the follicular reserve in female mammals.

摘要

在减数第一次分裂前期,会形成数百个DNA双链断裂,随后这些断裂会作为非交叉互换或交叉互换(COs)进行修复。交叉互换对于第一次减数分裂期间染色体的准确分离至关重要,而这一过程中的错误会导致非整倍体、出生缺陷或不育。与雄性相比,此类错误在雌性中更为明显,这表明交叉互换的调控和监测存在性别差异。我们在此证明了含细胞周期蛋白N端结构域1(CNTD1)在确保卵母细胞中同源染色体之间适当的交叉互换以及在建立出生后卵巢中的卵泡库方面具有双重作用。缺乏CNTD1的卵母细胞无法形成交叉互换,并且在出生后不久就会表现出卵泡库严重耗尽的情况,这在时间上与先前报道的交叉互换突变体不同。进一步的研究表明,卵泡丢失依赖于CHK2,这是由于HORMAD1的不适当保留和SKP1的缺失所致。这些发现表明,CNTD1在雌性哺乳动物交叉互换的指定和卵泡储备的建立中发挥着新的作用。

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