High-mobility-group proteins P1, I and Y as substrates of the M-phase-specific p34cdc2/cyclincdc13 kinase

L Meijer1, A C Ostvold, S I Walass

  • 1CNRS, Station Biologique, Roscoff, France.

Insights

M-phase-specific histone H1 kinase, composed of p34cdc2 and cyclincdc13, phosphorylates DNA-binding high-mobility-group (HMG) proteins I, Y, and P1. This phosphorylation is crucial for chromatin condensation during the cell cycle transition to M phase.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • The cell cycle involves precise regulation of protein activity, particularly during M phase.
  • Histone H1 kinase, a key regulator of M phase, is a complex of p34cdc2 and cyclincdc13.
  • High-mobility-group (HMG) proteins are involved in DNA binding and chromatin structure.

Purpose of the Study:

  • To investigate whether DNA-binding HMG proteins are substrates of the M-phase-specific H1 kinase.
  • To identify the specific HMG proteins phosphorylated by the p34cdc2/cyclincdc13 complex.
  • To elucidate the role of HMG protein phosphorylation in cell cycle progression.

Main Methods:

  • In vitro kinase assays using purified H1 kinase and various HMG proteins.
  • Immunoprecipitation studies using anti-cyclin antibodies and p13suc1-Sepharose.
  • In vivo phosphorylation analysis in proliferating and nonproliferating cells (HeLa).

Main Results:

  • HMG proteins I, Y, and P1 were identified as excellent substrates for the M-phase-specific H1 kinase.
  • The p34cdc2/cyclincdc13 complex was confirmed as the active kinase responsible for HMG I, Y, and P1 phosphorylation.
  • In vivo phosphorylation of HMG I and P1 at M phase occurred at sites consistent with H1 kinase activity, suggesting a role in chromatin condensation.

Conclusions:

  • DNA-binding proteins HMG I, Y, and P1 are natural substrates of the M-phase-specific p34cdc2/cyclincdc13 kinase.
  • Phosphorylation of these HMG proteins by H1 kinase is a critical event during the G2 to M phase transition.
  • This phosphorylation likely contributes to the significant chromatin condensation observed during M phase entry.

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