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Updated: Jun 17, 2026

Multi-Photon Laser Ablation of Cytoplasmic Microtubule Organizing Centers in Mouse Oocytes
Published on: November 11, 2022
Epithelial cell transforming protein 2 (ECT2) depletion blocks polar body extrusion and generates mouse oocytes
Judith Elbaz1, Yitzhak Reizel, Nava Nevo
1Weizmann Institute of Science, Department of Biological Regulation, Herzel Street 1, Rehovot 76100, Israel.
Abstract:
Completion of the first meiosis in oocytes is achieved by the extrusion of the first polar body (PBI), a particular example of cell division. In mitosis, the small GTPase RhoA, which is activated by epithelial cell transforming protein 2 (ECT2), orchestrates contractile ring constriction, thus enabling cytokinesis. However, the involvement of this pathway in mammalian oocytes has not been established. To characterize the role of ECT2 in PBI emission in mouse oocytes, the small interfering RNA approach was employed. We found that ECT2 depletion significantly reduces PBI emission, induces first metaphase arrest, and generates oocytes containing two properly formed spindles of the second metaphase. Moreover, we describe, for the first time, that before PBI emission, RhoA forms a ring that is preceded by a dome-like accumulation at the oocyte cortex, next to the spindle. This unique mode of RhoA translocation failed to occur in the absence of ECT2. We further found that the Rho-dependent kinase, a main RhoA effector, is essential for PBI emission. In addition, we demonstrate herein that ECT2 is subjected to phosphorylation/dephosphorylation throughout meiosis in oocytes and further reveal that PBI emission is temporally associated with ECT2 dephosphorylation. Our data provide the first demonstration that an active cyclin-dependent kinase 1, the catalytic subunit of the maturation-promoting factor, phosphorylates ECT2 during the first meiotic metaphase and that cyclin-dependent kinase 1 inactivation at anaphase allows ECT2 dephosphorylation. In conclusion, our study demonstrates the indispensable role of the maturation-promoting factor/ECT2/RhoA pathway in PBI extrusion in mouse oocytes.
Insights
The epithelial cell transforming protein 2 (ECT2) pathway is crucial for first polar body (PBI) extrusion in mouse oocytes. ECT2 depletion disrupts PBI emission and causes metaphase arrest, highlighting its role in meiosis.
Area of Science:
- Cell Biology
- Developmental Biology
- Reproductive Biology
Background:
- First polar body (PBI) extrusion is essential for oocyte meiosis.
- The RhoA-ECT2 pathway regulates cytokinesis in mitosis but its role in oocytes is unclear.
Purpose of the Study:
- To investigate the role of epithelial cell transforming protein 2 (ECT2) in mouse oocyte PBI emission.
- To elucidate the molecular mechanisms governing PBI extrusion.
Main Methods:
- Small interfering RNA (siRNA) to deplete ECT2 in mouse oocytes.
- Microscopy to observe spindle formation and PBI extrusion.
- Analysis of RhoA localization and ECT2 phosphorylation status.
Main Results:
- ECT2 depletion significantly inhibited PBI emission and caused metaphase arrest.
- RhoA formed a ring and dome-like structure at the cortex before PBI emission, dependent on ECT2.
- ECT2 phosphorylation/dephosphorylation, regulated by cyclin-dependent kinase 1, correlated with PBI emission.
Conclusions:
- The maturation-promoting factor/ECT2/RhoA pathway is indispensable for PBI extrusion in mouse oocytes.
- ECT2 acts as a key regulator, coordinating spindle positioning and cytokinesis during oocyte meiosis.
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