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Updated: Jun 3, 2026

Meiotic Spindle Assessment in Mouse Oocytes by siRNA-mediated Silencing
Published on: October 11, 2015
Impaired ovarian development and reduced fertility in female mice deficient in Skp2
Abbas Fotovati1, Samah Abu-Ali, Keiko Nakayama
1Department of Molecular and Cellular Biology, Medical Institute of Bioregulation, Kyushu University, Fukuoka, Fukuoka, Japan. fotovati@kyudai.jp
Abstract:
p27 is a major negative regulator of somatic cellular proliferation, and its down-regulation has been shown to be associated with cancer development. Targeted disruption ofp27 results in complete loss of fertility in female mice, suggesting that it plays a significant role in the development of female gametes and the surrounding environment. We have now investigated the effect of loss of Skp2, an F-box protein that mediates ubiquitin-dependent degradation of p27, on female gamete production. The female Skp2-deficient mice showed accumulation of p27 in the ovary and severely compromised gamete development from the embryonic stage to follicular growth in the adult ovary, eventually leading to a decreased functional gamete reserve. Additional deletion of p27 resulted in relatively normal ovarian folliculogenesis, suggesting that accumulating p27 is primarily responsible for the compromised ovarian development. Embryonic ovaries of Skp2(-/-) mice manifested massive apoptosis as evidenced by cleavage of pro-caspase 3 and poly(ADP-ribose) polymerase-1. This in turn resulted in a significant decrease in the remaining pool of functional gametes in Skp2(-/-) mice shortly after sexual maturity and premature ovarian failure. The increased apoptosis seemed to be attributable to the polyploidy of granulosa cells. These results suggest that proper progression of the cell cycle, regulated by the p27-Skp2 axis, is pivotal for the maintenance of fertility, and that defects in this system may underlie the pathogenesis of abnormal gamete production and premature ovarian failure during the reproductive life of women.
Insights
Loss of Skp2 in female mice causes p27 accumulation, leading to compromised gamete development and premature ovarian failure. Restoring p27 levels rescues ovarian function, highlighting the p27-Skp2 axis
Area of Science:
- Reproductive Biology
- Cell Cycle Regulation
- Ovarian Physiology
Background:
- p27 is a key negative regulator of cell proliferation, crucial for fertility.
- Its down-regulation is linked to cancer, and its absence causes female infertility in mice.
- Skp2 mediates p27 degradation, making its role in ovarian function important.
Purpose of the Study:
- To investigate the impact of Skp2 deficiency on female gamete production.
- To determine if p27 accumulation due to Skp2 loss causes ovarian defects.
- To elucidate the role of the p27-Skp2 axis in fertility and ovarian maintenance.
Main Methods:
- Generation and analysis of Skp2-deficient female mice.
- Assessment of ovarian histology, gamete development, and apoptosis markers (cleaved caspase-3, PARP-1).
- Evaluation of ovarian function following additional p27 deletion in Skp2-deficient mice.
Main Results:
- Skp2-deficient mice exhibited p27 accumulation in ovaries, impaired gamete development, and reduced gamete reserve.
- Massive apoptosis and granulosa cell polyploidy were observed in embryonic ovaries of Skp2(-/-) mice.
- Deletion of p27 in Skp2(-/-) mice largely restored ovarian folliculogenesis, indicating p27 accumulation's critical role.
Conclusions:
- The p27-Skp2 axis is essential for proper cell cycle progression and fertility.
- Skp2 deficiency-induced p27 accumulation leads to apoptosis, abnormal folliculogenesis, and premature ovarian failure.
- Dysregulation of this axis may contribute to infertility and premature ovarian failure in women.
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