Disrupted MOS signaling alters meiotic cell cycle regulation and the egg transcriptome

细胞生物学 生物 减数分裂 极体 减数分裂II 中期 卵母细胞 转录组 遗传学 基因 基因表达 染色体 胚胎
作者
Gisela Cairo,Olha Kholod,Olivia Palmer,Sophia Meytin,Brittany A. Goods,Soni Lacefield
出处
期刊:Reproduction [Bioscientifica]
标识
DOI:10.1530/rep-25-0156
摘要

Mammalian female meiosis is tightly regulated to produce a developmentally competent egg. Oocytes enter meiosis in the fetal ovary and then arrest at prophase I until sexual maturation. Upon hormonal stimulation, a subset of oocytes resumes meiosis. Oocytes then complete meiosis I, enter metaphase II, and arrest until fertilization, a process essential for egg competency. The MOS kinase is a key regulator of the metaphase II arrest, activating the MAPK signaling cascade. Loss of MOS in female mice disrupts the maintenance of the metaphase II arrest, with some eggs extruding two polar bodies and some dividing beyond anaphase II. To investigate the consequences of the Mos deletion, we performed live imaging and found that mos-/- eggs exhibit transient chromosome separation events in meiosis I, suggesting a role for MOS in coordinating the timing of meiotic divisions. Further analysis showed that new transcription is required for mos-/- eggs to undergo additional divisions but not for second polar body extrusion. Surprisingly, single-egg sequencing revealed extensive differences in gene expression between wildtype and mos-/- eggs, including those with only one polar body. Many differentially expressed genes were involved in cell cycle regulation, including Aurka, Bub3, and Cdk7. Upregulated pathways included metabolism of RNA, transcription, and neddylation. Furthermore, the gene expression profile of mos-/- eggs was markedly different from that of chemically activated wildtype eggs. Our findings demonstrate that MOS plays a crucial role in meiotic cell cycle regulation and helps ensure that the egg maintains the proper transcriptome necessary for developmental competence.

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