Phosphorylation of MCM4 by Cdc7 kinase facilitates its interaction with Cdc45 on the chromatin

Hisao Masai1, Chika Taniyama, Keiko Ogino

  • 1Genome Dynamics Project, Tokyo Metropolitan Institute of Medical Science, Tokyo 113-8613, Japan. hmasai@rinshoken.or.jp

Insights

The Cdc7 kinase phosphorylates MCM subunits, specifically MCM4, during DNA replication initiation. This N-terminal phosphorylation is crucial for activating replication origins and cell viability.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Cdc7 kinase is vital for DNA replication initiation across species.
  • The precise mechanisms of Cdc7 in stimulating DNA replication remain incompletely understood.

Purpose of the Study:

  • To elucidate the role of Cdc7 kinase in the phosphorylation of MCM subunits during the cell cycle.
  • To investigate how MCM4 phosphorylation by Cdc7 influences DNA replication origin activation.

Main Methods:

  • Analysis of MCM subunit phosphorylation via SDS-PAGE mobility shifts.
  • Utilizing phospho-amino acid-specific antibodies to identify phosphorylation sites.
  • Employing siRNA and gene deletion strategies in mouse ES cells to assess Cdc7 function.

Main Results:

  • Cdc7 kinase specifically phosphorylates MCM4 at N-terminal (S/T)(S/T)P residues during S phase.
  • This phosphorylation event enhances Cdc45 chromatin association, crucial for origin activation.
  • N-terminal modifications of MCM4, MCM2, and MCM6 by Cdc7 are essential for cell viability, suggesting redundant roles.

Conclusions:

  • N-terminal phosphorylation of MCM subunits by Cdc7 kinase is a key regulatory mechanism for DNA replication initiation.
  • These phosphorylation events are critical for the assembly of pre-replication complexes and origin firing.
  • Dysregulation of MCM phosphorylation by Cdc7 can lead to impaired DNA replication and cell cycle defects.

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