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GSK-3β protects fetal oocytes from premature death via modulating TAp63 expression in mice
1State Key Laboratory of Agrobiotechnology, College of Biological Sciences, China Agricultural University, Beijing, 100193, China.
Background:
Female mammals have a limited reproductive lifespan determined by the size of the primordial follicle pool established perinatally. Over two thirds of fetal oocytes are abolished via programmed cell death during early folliculogenesis. However, the underlying mechanisms governing fetal oocyte attrition remain largely elusive.
Results:
Here, we demonstrate that glycogen synthase kinase-3 beta (GSK-3β) is indispensable for fetal oocyte maintenance during meiotic prophase I in mice. In vitro inhibition of GSK-3β activity or in vivo conditional deletion of Gsk-3β in the germline led to a dramatic loss of fetal oocytes via apoptosis, which subsequently resulted in a reduced capacity of the primordial follicle pool. Inhibition of GSK-3β also impeded meiotic progression in fetal oocytes and led to a deficiency in DNA double-strand break (DSB) repair associated with premature upregulation of Tap63, the major genome guardian of the female germline, following GSK-3β inhibition in fetal ovaries. Mechanistically, we demonstrated that aberrant nuclear translocation of β-catenin was responsible for the abnormal expression of TAp63 and global fetal oocyte attrition following GSK-3β inhibition.
Conclusions:
In summary, GSK-3β was essential for sustaining fetal oocyte survival and folliculogenesis via fine-tuning the cytoplasmic-nuclear translocation of β-catenin, which in turn modulates timely TAp63 expression during meiotic prophase I in mice. Our study provides a perspective on the physiological regulatory role of DNA damage checkpoint signaling in fetal oocyte guardianship and female fertility.
Insights
Glycogen synthase kinase-3 beta (GSK-3β) is crucial for maintaining fetal oocytes and preserving the primordial follicle pool in mice. Inhibiting GSK-3β triggers oocyte apoptosis and impairs DNA repair, impacting female fertility.
Area of Science:
- Reproductive Biology
- Developmental Biology
- Molecular Genetics
Background:
- Female reproductive lifespan is limited by the primordial follicle pool size.
- Over two-thirds of fetal oocytes undergo programmed cell death during early folliculogenesis.
- Mechanisms governing fetal oocyte attrition are not well understood.
Purpose of the Study:
- To investigate the role of glycogen synthase kinase-3 beta (GSK-3β) in fetal oocyte maintenance.
- To elucidate the molecular mechanisms underlying fetal oocyte attrition.
Main Methods:
- In vitro inhibition of GSK-3β activity.
- In vivo conditional deletion of Gsk-3β in the germline.
- Assessment of oocyte apoptosis, meiotic progression, and DNA double-strand break (DSB) repair.
Main Results:
- GSK-3β inhibition led to significant fetal oocyte loss via apoptosis.
- Reduced GSK-3β activity impaired meiotic progression and DNA DSB repair.
- Aberrant nuclear translocation of β-catenin caused abnormal TAp63 expression and oocyte attrition.
Conclusions:
- GSK-3β is essential for fetal oocyte survival and folliculogenesis.
- GSK-3β regulates oocyte maintenance by fine-tuning β-catenin translocation and TAp63 expression.
- The study highlights the role of DNA damage checkpoint signaling in fetal oocyte protection and female fertility.
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