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.

Current Biology : CB
|August 18, 2022
PubMed

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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