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Updated: May 13, 2026

Detection of DNA Double-Stranded Breaks in Mouse Oocytes
Published on: June 23, 2023
The effects of DNA double-strand breaks on mouse oocyte meiotic maturation
Jun-Yu Ma1, Ying-Chun Ou Yang, Zhong-Wei Wang
1State Key Laboratory of Reproductive Biology, Institute of Zoology, Chinese Academy of Sciences, Beijing, China.
Abstract:
Both endogenous and exogenous factors can induce DNA double-strand breaks (DSBs) in oocytes, which is a potential risk for human-assisted reproductive technology as well as animal nuclear transfer. Here we used bleomycin (BLM) and laser micro-beam dissection (LMD) to induce DNA DSBs in germinal vesicle (GV) stage oocytes and compared the germinal vesicle breakdown (GVBD) rates and first polar body extrusion (PBE) rates between DNA DSB oocytes and untreated oocytes. Employing live cell imaging and immunofluorescence labeling, we observed the dynamics of DNA fragments during oocyte maturation. We also determined the cyclin B1 expression pattern in oocytes to analyze spindle assembly checkpoint (SAC) activity in DNA DSB oocytes. We used parthenogenetic activation to determine if the DNA DSB oocytes could be activated. As a result, we found that the BLM- or LMD-induced DSB oocytes showed lower GVBD rates and took a longer time to undergo GVBD compared with untreated oocytes. PBE was also delayed in DSB oocytes, but once GVBD had occurred, PBE was not affected, even in oocytes with severe DSBs. Compared with control oocytes, the DSB oocytes showed higher SAC activity, as indicated by less Ccnb1-GFP degradation during metaphase I to anaphase I transition. Parthenogenetic activation could activate the metaphase to interphase transition in the DNA DSB mature oocytes, but many oocytes contained multiple pronuclei or numerous micronuclei. These data suggest that DNA damage inhibits or delays the G2/M transition, but once GVBD occurs, DNA-damaged oocytes can complete chromosome separation and polar body extrusion even under a higher SAC activity, causing the formation of numerous micronuclei in early embryos.
Insights
DNA double-strand breaks (DSBs) in oocytes delay maturation but do not prevent chromosome separation. Damaged oocytes can extrude the first polar body, though resulting embryos may show multiple pronuclei or micronuclei.
Area of Science:
- Reproductive Biology
- Cell Biology
- Genetics
Background:
- DNA double-strand breaks (DSBs) pose risks to oocyte quality in assisted reproduction.
- Understanding oocyte response to DNA damage is crucial for improving reproductive technologies.
Purpose of the Study:
- To investigate the effects of induced DNA DSBs on oocyte maturation and early embryonic development.
- To analyze spindle assembly checkpoint (SAC) activity and parthenogenetic activation potential in DNA-damaged oocytes.
Main Methods:
- Induced DNA DSBs in germinal vesicle (GV) stage oocytes using bleomycin (BLM) or laser micro-beam dissection (LMD).
- Utilized live cell imaging and immunofluorescence to track DNA fragment dynamics and cyclin B1 expression.
- Assessed germinal vesicle breakdown (GVBD), first polar body extrusion (PBE), and parthenogenetic activation.
Main Results:
- DNA DSB oocytes exhibited delayed GVBD and PBE compared to controls.
- Spindle assembly checkpoint (SAC) activity was elevated in DSB oocytes, indicated by reduced Ccnb1-GFP degradation.
- Parthenogenetic activation of DSB oocytes resulted in embryos with multiple pronuclei or micronuclei.
Conclusions:
- DNA damage inhibits or delays the G2/M transition in oocytes.
- Oocytes with DSBs can complete chromosome segregation and polar body extrusion post-GVBD, despite elevated SAC activity.
- Induced DSBs in oocytes lead to abnormal early embryonic development with potential for aneuploidy.
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