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Transcription factor E2F and cyclin E-Cdk2 complex cooperate to induce chromosomal DNA replication in Xenopus oocytes

E Akamatsu1, T Tanaka, J Y Kato

  • 1Graduate School of Biological Sciences, Nara Institute of Science and Technology, 8916-5 Takayama, Ikoma, Nara 630-0101, Japan.

Insights

Xenopus oocytes gain DNA replication ability during meiosis I, requiring E2F and cyclin E-Cdk2 activity. This capability is suppressed in meiosis II until fertilization, but can be induced by enhancing these factors.

Area of Science:

  • Cell Biology
  • Developmental Biology
  • Molecular Biology

Background:

  • Xenopus oocytes develop DNA replication capability during meiosis I (MI) in response to progesterone.
  • This ability is suppressed during meiosis II (MII) by Mos proteins and maturation/mitosis promoting factor until fertilization.

Purpose of the Study:

  • To investigate the molecular mechanisms regulating DNA replication ability during Xenopus oocyte maturation.
  • To identify key factors required for the induction and suppression of DNA replication in oocytes.

Main Methods:

  • Inhibition of RNA synthesis using actinomycin D.
  • Microinjection of recombinant proteins including dominant-negative E2F, Cdk inhibitors (p21, p27), wild type E2F-1, Cdk4-specific inhibitor (p19), cyclin E, and their combinations.
  • Assessing DNA replication ability and cell cycle progression.

Main Results:

  • Actinomycin D blocked replication ability induction but not meiotic progression.
  • Dominant-negative E2F or universal Cdk inhibitors (p21, p27) abolished replication ability induction.
  • Co-injection of E2F-1 and cyclin E induced DNA replication in immature oocytes without progesterone.
  • Cyclin E alone activated Cdk2 but did not induce replication.

Conclusions:

  • Both E2F activity and cyclin E-Cdk2 complex are essential for inducing DNA replication in maturing Xenopus oocytes, similar to somatic cells.
  • Enhancing both E2F and cyclin E-Cdk2 activities can overcome inhibitory mechanisms present in maturing oocytes.

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