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Updated: Aug 14, 2026

Meiotic Spindle Assessment in Mouse Oocytes by siRNA-mediated Silencing
Published on: October 11, 2015
Acquisition of meiotic competence in growing mouse oocytes is controlled at both translational and posttranslational
C de Vantéry1, A Stutz, J D Vassalli
1Clinique de Stérilité et d'Endocrinologie Gynécologique, Département de Gynécologie et Obstétrique, Maternité, Hôpital Cantonal Universitaire de Geneve, Genèva, Switzerland.
Abstract:
Full-grown mouse oocytes spontaneously resume meiosis in vitro when released from their follicular environment. By contrast, growing oocytes are not competent to resume meiosis; the molecular basis of meiotic competence is not known. Entry into M phase of the eukaryotic cell cycle is controlled by MPF, a catalytically active complex comprising p34cdc2 kinase and cyclin B. Incompetent oocytes contain levels of cyclin B comparable to those in competent oocytes, while their level of p34cdc2 is markedly lower; p34cdc2 accumulates abruptly at the end of oocyte growth, at the time of meiotic competence acquisition. We show here that this change in p34cdc2 concentration is not secondary to a corresponding change in the concentration of the cognate mRNA, indicating that translational control may be involved. Microinjection of translatable p34cdc2 mRNA into incompetent oocytes yielded high levels of the protein, but it did not lead to resumption of meiosis. Similarly, microinjection of cyclin B1 mRNA resulted in accumulation of the protein, but not in the acquisition of meiotic competence. By contrast, the microinjection of both p34cdc2 and cyclin B1 mRNAs in incompetent oocytes induced histone H1 and MAP kinase activation, germinal vesicle breakdown, and entry into M-phase including the translational activation of a dormant mRNA. Thus, endogenous cyclin B1 in incompetent oocytes is not available for interaction with p34cdc2, suggesting that a posttranslational event must occur to achieve meiotic competence. Microinjection of either p34cdc2 or cyclin B1 mRNAs accelerated meiotic reinitiation of okadaic acid-treated incompetent oocytes. Taken together, these results suggest that acquisition of meiotic competence by mouse oocytes is regulated at both translational and posttranslational levels.
Insights
Mouse oocyte meiotic competence acquisition involves both translational and posttranslational regulation. Key proteins p34cdc2 and cyclin B must be present together for oocytes to resume meiosis.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Biology
Background:
- Full-grown mouse oocytes resume meiosis in vitro, but growing oocytes lack this meiotic competence.
- Meiotic resumption is controlled by Maturation-Promoting Factor (MPF), a complex of p34cdc2 kinase and cyclin B.
- The molecular basis for meiotic competence acquisition remains unknown.
Purpose of the Study:
- To investigate the molecular mechanisms underlying meiotic competence acquisition in mouse oocytes.
- To determine the roles of p34cdc2 and cyclin B in regulating meiotic entry.
Main Methods:
- Oocyte culture and microinjection of specific mRNAs (p34cdc2, cyclin B1).
- Analysis of protein levels and activation of downstream signaling pathways (MAP kinase).
- Assessment of meiotic resumption markers like germinal vesicle breakdown.
Main Results:
- Incompetent oocytes have lower p34cdc2 levels, with accumulation occurring at competence acquisition.
- Translational control, not mRNA levels, influences p34cdc2 accumulation.
- Co-injection of p34cdc2 and cyclin B1 mRNAs induced meiotic resumption, suggesting a requirement for both proteins and potential posttranslational regulation of cyclin B1 availability.
Conclusions:
- Meiotic competence in mouse oocytes is acquired through coordinated translational and posttranslational regulatory events.
- Both p34cdc2 and cyclin B are essential, and their proper interaction, possibly mediated by posttranslational modifications, is critical for initiating meiosis.
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