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Updated: Sep 15, 2025

In Vitro Growth of Mouse Preantral Follicles Under Simulated Microgravity
Published on: December 17, 2017
The Critical Role of Enhanced OXPHOS and Mitochondrial Hyperpolarization in Simulated Microgravity-Induced Oocyte
Lei Ge1,2,3, Yuqing Gao1,3,4, Feifei Du1,3
1Center for Energy Metabolism and Reproduction, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, Guangdong, 518055, China.
Abstract:
Meiosis is essential for sexual reproduction, yet the impact of microgravity on oocyte maturation remains unclear, raising concerns for reproductive success in space environments. Here, it is examined the effects of simulated microgravity (SMG) on mouse oocytes and found that SMG impaired mitochondrial function, evidenced by elevated oxidative phosphorylation and mitochondrial membrane hyperpolarization, resulting in meiotic arrest. This response is distinct from that induced by other stressors or seen in somatic cells under microgravity, highlighting the unique sensitivity of oocytes. SMG also caused mitochondrial mislocalization, which activated the unfolded protein response and suppressed mitochondrial gene expression. Despite accelerating meiotic progression, SMG delayed microtubule-organizing center (MTOC) coalescence. This misalignment led to spindle defects, reduced polar body extrusion, and increased aneuploidy, compromising oocyte quality. The spindle assembly checkpoint (SAC) remained functional, suggesting mitochondrial dysregulation-not SAC failure-drives meiotic acceleration. Notably, even oocytes that reached maturation under SMG exhibited polarity loss and reduced developmental potential. Extending metaphase I by inhibiting the anaphase-promoting complex rescued MTOC assembly and spindle formation, significantly improving maturation rates. These findings identify mitochondrial dysfunction as a key mediator of SMG-induced meiotic failure and propose M-phase regulation as a strategy to safeguard female fertility in space environments.
Insights
Simulated microgravity impairs mouse oocyte maturation by disrupting mitochondrial function and spindle organization. Interventions targeting M-phase regulation show promise for preserving female fertility in space.
Area of Science:
- Reproductive Biology
- Cell Biology
- Space Biology
Background:
- Meiosis is crucial for sexual reproduction.
- The effects of microgravity on oocyte maturation are not well understood.
- Space exploration raises concerns for reproductive health.
Purpose of the Study:
- To investigate the impact of simulated microgravity (SMG) on mouse oocyte maturation.
- To identify the underlying mechanisms of SMG-induced meiotic defects.
- To explore potential strategies to mitigate these effects.
Main Methods:
- Exposure of mouse oocytes to simulated microgravity (SMG).
- Assessment of mitochondrial function (oxidative phosphorylation, membrane potential).
- Analysis of meiotic progression, spindle organization, and aneuploidy.
- Investigation of the unfolded protein response and spindle assembly checkpoint (SAC).
Main Results:
- SMG impaired mitochondrial function, leading to meiotic arrest.
- Mitochondrial mislocalization activated the unfolded protein response and suppressed gene expression.
- SMG delayed microtubule-organizing center (MTOC) coalescence, causing spindle defects and aneuploidy.
- The SAC remained functional, indicating mitochondrial dysfunction drives meiotic acceleration.
Conclusions:
- Mitochondrial dysfunction is a key factor in SMG-induced meiotic failure in oocytes.
- SMG compromises oocyte quality and developmental potential.
- Inhibiting the anaphase-promoting complex to extend metaphase I improved oocyte maturation rates.
- M-phase regulation may be a viable strategy to protect female fertility in space.
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