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Updated: Aug 14, 2026

Experimental Approaches to Study Mitochondrial Localization and Function of a Nuclear Cell Cycle Kinase, Cdk1
Published on: February 25, 2016
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.
Abstract:
All dividing cells entering the M phase of the cell cycle undergo the transient activation of an M-phase-specific histone H1 kinase which was recently shown to be constituted of at least two subunits, p34cdc2 and cyclincdc13. The DNA-binding high-mobility-group (HMG) proteins 1, 2, 14, 17, I, Y and an HMG-like protein, P1, were investigated as potential substrates of H1 kinase. Among these HMG proteins, P1 and HMG I and Y are excellent substrates of the M-phase-specific kinase obtained from both meiotic starfish oocytes and mitotic sea urchin eggs. Anticyclin immunoprecipitates, extracts purified on specific p34cdc2-binding p13suc1-Sepharose and affinity-purified H1 kinase display strong HMG I, Y and P1 phosphorylating activities, demonstrating that the p34cdc2/cyclincdc13 complex is the active kinase phosphorylating these HMG proteins. HMG I and P1 phosphorylation is competitively inhibited by a peptide mimicking the consensus phosphorylation sequence of H1 kinase. HMG I, Y and P1 all possess the consensus sequence for phosphorylation by the p34cdc2/cyclincdc13 kinase (Ser/Thr-Pro-Xaa-Lys/Arg). HMG I is phosphorylated in vivo at M phase on the same sites phosphorylated in vitro by H1 kinase. P1 is phosphorylated by H1 kinase on sites different from the sites of phosphorylation by casein kinase II. The three thermolytic phosphopeptides of P1 phosphorylated in vitro by purified H1 kinase are all present in thermolytic peptide maps of P1 phosphorylated in vivo in proliferating HeLa cells. These phosphopeptides are absent in nonproliferating cells. These results demonstrate that the DNA-binding proteins HMG I, Y and P1 are natural substrates for the M-phase-specific protein kinase. The phosphorylation of these proteins by p34cdc2/cyclincdc13 may represent a crucial event in the intense chromatin condensation occurring as cells transit from the G2 to the M phase of the cell cycle.
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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