Initial triggering of M-phase in starfish oocytes: a possible novel component of maturation-promoting factor besides

E Okumura1, T Sekiai, S Hisanaga

  • 1Laboratory of Cell and Developmental Biology, Faculty of Biosciences, Tokyo Institute of Technology, Yokohama, Japan.

Insights

Starfish oocytes use a cdc2 kinase activity-independent process to initially activate maturation. This process suppresses cdc2 kinase inactivators, enabling meiosis reinitiation and suggesting a novel maturation-promoting factor component.

Area of Science:

  • Cell Cycle Regulation
  • Developmental Biology
  • Molecular Biology

Background:

  • Immature starfish oocytes arrest in G2 phase with inactive cdc2 kinase and cdc25 phosphatase.
  • Hormonal stimulation initiates maturation by regulating cdc2 kinase and cdc25 activity.
  • Inhibitors of cdc2 kinase and cdc25 phosphatase are active in immature oocytes.

Purpose of the Study:

  • Investigate the regulatory balance controlling initial cdc2 kinase activation during starfish oocyte maturation.
  • Elucidate the mechanisms underlying the transition from G2 arrest to M-phase entry.

Main Methods:

  • Utilized starfish oocytes arrested in G2 phase.
  • Produced "triggered oocytes" using a neutralizing anti-cdc25 antibody to block cdc2 kinase activation.
  • Injected cdc2 kinase into control and triggered oocytes to assess inactivation levels.

Main Results:

  • In triggered oocytes, cdc25 phosphorylation occurred, but cdc2 kinase activation was prevented.
  • Injected cdc2 kinase remained active in triggered oocytes, unlike in control oocytes.
  • A cdc2 kinase activity-independent process was identified that suppresses cdc2 kinase inactivators and phosphorylates cdc25.

Conclusions:

  • A cdc2 kinase activity-independent mechanism initiates oocyte maturation by suppressing cdc2 kinase inhibitors.
  • This process likely involves a novel suppressor, potentially a component of maturation-promoting factor.
  • Subsequent cdc2 kinase-dependent feedback loops amplify the activation signal for M-phase entry.

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