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Updated: Dec 31, 2025

Evaluation of the Spindle Assembly Checkpoint Integrity in Mouse Oocytes
Published on: September 13, 2022
OLA1 is responsible for normal spindle assembly and SAC activation in mouse oocytes
Di Xie1,2, Juan Zhang2, JinLi Ding1
1Reproductive Medical Center, Renmin Hospital of Wuhan University, WuHan, HuBei, China.
Background:
OLA1 is a member of the GTPase protein family; unlike other members, it possess both GTPase and ATPase activities, and can bind and hydrolyze ATP more efficiently than GTP. OLA1 participates in cell proliferation, oxidative response, protein synthesis and tumorigenesis. However, whether OLA1 is also required for oocyte meiosis is still unknown.
Methods:
In this study, the localization, expression, and functions of OLA1 in the mouse oocyte meiosis were examined. Immunofluorescent and confocal microscopy were used to explore the location pattern of OLA1 in the mouse oocyte. Moreover, nocodazole treatment was used to confirm the spindle-like location of OLA1 during mouse meiosis. Western blot was used to explore the expression pattern of OLA1 in the mouse oocyte. Microinjection of siRNA was used to explore the OLA1 functions in the mouse oocyte meiosis. In addition, chromosome spreading was used to investigate the spindle assembly checkpoint (SAC) activity.
Results:
Immunofluorescent staining showed that OLA1 evenly distributed in the cytoplasm at germinal vesicle (GV) stage. After meiosis resumption (GVBD), OLA1 co-localized with spindles, which was further identified by nocodazole treatment experiments. Knockdown of OLA1 impaired the germinal vesicle breakdown progression and finally resulted in a lower polar body extrusion rate. Immunofluorescence analysis indicated that knockdown of OLA1 led to abnormal spindle assembly, which was evidenced by multipolar spindles in OLA1-RNAi-oocytes. After 6 h post-GVBD in culture, an increased proportion of oocyte which has precociously entered into anaphase/telephase I (A/TI) was observed in OLA1-knockdown oocytes, suggesting that loss of OLA1 resulted in the premature segregation of homologous chromosomes. In addition, the chromosome spread analysis suggested that OLA1 knockdown induced premature anaphase onset was due to the precocious inactivation of SAC. Taken together, we concluded that OLA1 plays important role in GVBD, spindle assembly and SAC activation maintenance in oocyte meiosis.
Insights
Oocyte meiosis requires the OLA1 protein for proper spindle assembly and chromosome segregation. Loss of OLA1 disrupts these processes, impacting cell division and potentially leading to infertility.
Area of Science:
- Cell Biology
- Molecular Biology
- Reproductive Biology
Background:
- The GTPase family protein, OLA1, exhibits unique GTPase and ATPase activities.
- OLA1 is implicated in cell proliferation, oxidative stress response, protein synthesis, and tumorigenesis.
- The role of OLA1 in oocyte meiosis remains unexplored.
Purpose of the Study:
- To investigate the localization, expression, and function of OLA1 during mouse oocyte meiosis.
- To determine OLA1's involvement in key meiotic events such as germinal vesicle breakdown (GVBD), spindle assembly, and the spindle assembly checkpoint (SAC).
Main Methods:
- Immunofluorescence and confocal microscopy to determine OLA1 localization.
- Nocodazole treatment to confirm spindle association.
- Western blotting for OLA1 expression analysis.
- siRNA-mediated knockdown to assess OLA1 function.
- Chromosome spreading to evaluate SAC activity.
Main Results:
- OLA1 localizes to the cytoplasm in the germinal vesicle (GV) stage and co-localizes with spindles post-meiosis resumption.
- Knockdown of OLA1 impairs GVBD, reduces polar body extrusion, and leads to abnormal spindle formation (multipolar spindles).
- OLA1 depletion causes premature homologous chromosome segregation due to precocious SAC inactivation.
Conclusions:
- OLA1 is crucial for maintaining GVBD progression in oocytes.
- OLA1 plays a significant role in ensuring proper spindle assembly during oocyte meiosis.
- OLA1 is essential for the sustained activation of the SAC, preventing premature anaphase onset.
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