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Updated: Aug 31, 2025

Multi-Photon Laser Ablation of Cytoplasmic Microtubule Organizing Centers in Mouse Oocytes
Published on: November 11, 2022
Dual control of formin-nucleated actin assembly by the chromatin and ER in mouse oocytes
HaiYang Wang1, Jinrong Hu1, Kexi Yi2
1Mechanobiology Institute, National University of Singapore, 5A Engineering Drive 1, Singapore 117411, Singapore.
Abstract:
The first asymmetric meiotic cell divisions in mouse oocytes are driven by formin 2 (FMN2)-nucleated actin polymerization around the spindle. In this study, we investigated how FMN2 is recruited to the spindle peripheral ER and how its activity is regulated in mouse meiosis I (MI) oocytes. We show that this process is regulated by the Ran GTPase, a conserved mediator of chromatin signal, and the ER-associated protein VAPA. FMN2 contains a nuclear localization sequence (NLS) within a domain (SLD) previously shown to be required for FMN2 localization to the spindle periphery. FMN2 NLS is bound to the importin α1/β complex, and the disruption of this interaction by RanGTP is required for FMN2 accumulation in the area proximal to the chromatin and the MI spindle. The importin-free FMN2 is then recruited to the surface of ER around the spindle through the binding of the SLD with the ER-membrane protein VAPA. We further show that FMN2 is autoinhibited through an intramolecular interaction between the SLD with the C-terminal formin homology 2 (FH2) domain that nucleates actin filaments. VAPA binding to SLD relieves the autoinhibition of FMN2, leading to localized actin polymerization. This dual control of formin-mediated actin assembly allows actin polymerization to initiate the movement of the meiotic spindle toward the cortex, an essential step in the maturation of the mammalian female gamete.
Insights
Formin 2 (FMN2) recruitment and activity in mouse oocytes are regulated by Ran GTPase and VAPA. This mechanism controls actin polymerization, essential for meiotic spindle positioning during female gamete maturation.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Biology
Background:
- Asymmetric meiotic cell divisions in mouse oocytes depend on formin 2 (FMN2)-nucleated actin polymerization.
- Understanding FMN2 recruitment and regulation at the spindle is crucial for meiosis.
Purpose of the Study:
- Investigate the regulation of formin 2 (FMN2) recruitment and activity in mouse meiosis I (MI) oocytes.
- Elucidate the roles of Ran GTPase and VAPA in controlling FMN2-mediated actin polymerization.
Main Methods:
- Studied FMN2 localization and interaction with importin complexes.
- Investigated the role of Ran GTPase in FMN2 release from importins.
- Examined FMN2 binding to VAPA and its effect on FMN2 autoinhibition.
- Assessed FMN2-mediated actin polymerization and spindle positioning.
Main Results:
- Ran GTPase disrupts FMN2 binding to importin, enabling FMN2 accumulation near the spindle.
- FMN2 is recruited to the peripheral ER via VAPA binding to its SLD domain.
- VAPA binding relieves FMN2 autoinhibition, promoting actin nucleation by the FH2 domain.
- This process drives localized actin polymerization for meiotic spindle positioning.
Conclusions:
- FMN2 recruitment and activity are dually controlled by Ran GTPase and VAPA.
- This regulation ensures precise actin polymerization for essential meiotic spindle movements.
- The findings provide insights into the maturation of mammalian female gametes.
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