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Updated: Jul 19, 2026

Meiotic Spindle Assessment in Mouse Oocytes by siRNA-mediated Silencing
Published on: October 11, 2015
Deficit of mitochondria-derived ATP during oxidative stress impairs mouse MII oocyte spindles
Xiao Zhang1, Xue Qing Wu, Shuang Lu
1Peking University First Hospital, Institute of Urology of Peking University, Beijing 100034, China.
Abstract:
Although the role of oxidative stress in maternal aging and infertility has been suggested, the underlying mechanisms are not fully understood. The present study is designed to determine the relationship between mitochondrial function and spindle stability in metaphase II (MII) oocytes under oxidative stress. MII mouse oocytes were treated with H2O2 in the presence or absence of permeability transition pores (PTPs) blockers cyclosporin A (CsA). In addition, antioxidant N-acetylcysteine (NAC), F0/F1 synthase inhibitor oligomycin A, the mitochondria uncoupler carbonyl cyanide 4-trifluoro-methoxyphenylhydrazone (FCCP) or thapsigargin plus 2.5 mM Ca2+ (Th+2.5 mM Ca2+) were used in mechanistic studies. Morphologic analyses of oocyte spindles and chromosomes were performed and mitochondrial membrane potential (DeltaPsim), cytoplasmic free calcium concentration ([Ca2+]c) and cytoplasmic ATP content within oocytes were also assayed. In a time- and H2O2 dose-dependent manner, disruption of meiotic spindles was found after oocytes were treated with H2O2, which was prevented by pre-treatment with NAC. Administration of H2O2 led to a dissipation of DeltaPsim, an increase in [Ca2+]c and a decrease in cytoplasmic ATP levels. These detrimental responses of oocytes to H2O2 treatment could be blocked by pre-incubation with CsA. Similar to H2O2, both oligomycin A and FCCP dissipated DeltaPsim, decreased cytoplasmic ATP contents and disassembled MII oocyte spindles, while high [Ca2+]c alone had no effects on spindle morphology. In conclusion, the decrease in mitochondria-derived ATP during oxidative stress may cause a disassembly of mouse MII oocyte spindles, presumably due to the opening of the mitochondrial PTPs.
Insights
Oxidative stress disrupts mouse oocyte spindle stability by decreasing mitochondrial ATP production, leading to infertility. Antioxidants and mitochondrial protection can prevent this damage.
Area of Science:
- Reproductive Biology
- Mitochondrial Biology
- Oxidative Stress Research
Background:
- Oxidative stress is implicated in maternal aging and infertility, but mechanisms remain unclear.
- Mitochondrial dysfunction is a potential contributor to oocyte aging and reduced fertility.
Purpose of the Study:
- To investigate the relationship between mitochondrial function and meiotic spindle stability in mouse oocytes under oxidative stress.
- To elucidate the role of mitochondrial permeability transition pores (PTPs) in oxidative stress-induced oocyte damage.
Main Methods:
- Metaphase II (MII) mouse oocytes were exposed to hydrogen peroxide (H2O2) with or without PTP blockers (cyclosporin A).
- Studies involved antioxidants (N-acetylcysteine), mitochondrial inhibitors (oligomycin A), uncouplers (FCCP), and calcium modulators.
- Assays included spindle/chromosome morphology, mitochondrial membrane potential (DeltaPsim), cytoplasmic calcium ([Ca2+]c), and ATP content.
Main Results:
- H2O2 induced time- and dose-dependent spindle disruption, prevented by N-acetylcysteine.
- H2O2 treatment dissipated DeltaPsim, increased [Ca2+]c, and decreased ATP levels, effects blocked by cyclosporin A.
- Oligomycin A and FCCP mimicked H2O2 effects on DeltaPsim, ATP, and spindle integrity; high [Ca2+]c alone did not affect spindles.
Conclusions:
- Decreased mitochondrial ATP production during oxidative stress likely causes MII oocyte spindle disassembly.
- Opening of mitochondrial PTPs is a key mechanism mediating oxidative stress-induced damage to oocyte spindles.
- These findings highlight the critical role of mitochondrial health in maintaining oocyte quality and fertility.
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