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Updated: May 14, 2026

Evaluation of the Spindle Assembly Checkpoint Integrity in Mouse Oocytes
Published on: September 13, 2022
Caspase 9 is constitutively activated in mouse oocytes and plays a key role in oocyte elimination during meiotic
Adriana C Ene1, Stephanie Park, Winfried Edelmann
1Department of Biology, McGill University, Urology Research Laboratory, Royal Victoria Hospital, 687 Pine Avenue West, Montreal, Quebec, Canada H3A 1A1.
Abstract:
In many mammalian species, more than half of the initial oocyte population is eliminated by neonatal life, thus limiting the oocyte reserve for reproduction. The cause or mechanism of this major oocyte loss remains poorly understood. We examined the apoptotic pathway involved in oocyte elimination in wild-type mouse ovaries as well as in Msh5 -/- ovaries, in which all oocytes were eliminated due to a lack of double strand break repair. Immunoblot and immunofluorescence staining showed that an initiator caspase 9 and an effector caspase 7 were constitutively activated in almost all oocytes in fetal ovaries regardless of their genotypes. In caspase 9 -/- ovaries, the total number of oocytes remained high while that in wild-type ovaries steadily declined during ovarian development. Therefore, the activation of caspase 9 was required for but did not immediately lead to oocyte demise. We found that XIAP, an endogenous inhibitor of apoptosis, was also abundant in oocytes during meiotic prophase progression. On the other hand, a cleaved form of PARP1, a target of effector caspases, was localized to the nuclei of a limited number of oocytes, and the frequency of cleaved PARP1-positive oocyte nuclei increased significantly higher before all oocytes disappeared in Msh5 -/- ovaries. We conclude that the mitochondrial apoptotic pathway mediated by caspase 9 is constitutively activated in oocytes and renders the elimination of oocytes with meiotic errors, which can be captured by the cleavage of PARP1.
Insights
Oocyte loss is reduced when caspase 9 is absent, revealing its role in programmed cell death. Caspase 9 activation targets oocytes with meiotic errors, as indicated by cleaved PARP1.
Area of Science:
- Reproductive biology
- Cellular and molecular biology
- Developmental biology
Background:
- Oocyte reserve depletion significantly impacts mammalian fertility.
- The mechanisms driving substantial oocyte loss remain largely unknown.
- Apoptosis, or programmed cell death, is a key factor in oocyte elimination.
Purpose of the Study:
- To investigate the role of the apoptotic pathway in oocyte elimination during ovarian development.
- To identify specific caspases and their targets involved in oocyte loss.
- To understand the contribution of meiotic errors to oocyte demise.
Main Methods:
- Comparative analysis of oocyte populations in wild-type and Msh5-/- mouse ovaries.
- Immunoblotting and immunofluorescence staining to detect caspase 9, caspase 7, XIAP, and cleaved PARP1.
- Assessment of oocyte numbers and apoptosis markers throughout ovarian development.
Main Results:
- Caspase 9 and caspase 7 were constitutively activated in oocytes of fetal ovaries.
- Oocyte numbers were preserved in caspase 9-/- ovaries compared to wild-type.
- Cleaved PARP1, a marker of effector caspase activity, increased in oocytes with meiotic errors.
Conclusions:
- Mitochondrial apoptotic pathway activation, mediated by caspase 9, is essential for oocyte elimination.
- Caspase 9 activation is required for, but does not directly cause, oocyte death.
- The cleavage of PARP1 serves as an indicator for the elimination of oocytes with meiotic errors.
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