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Cell cycle analysis of the activity, subcellular localization, and subunit composition of human CAK (CDK-activating
J P Tassan1, S J Schultz, J Bartek
1Swiss Institute for Experimental Cancer Research (ISREC), Epalinges.
Abstract:
The activity of cyclin-dependent kinases (cdks) depends on the phosphorylation of a residue corresponding to threonine 161 in human p34cdc2. One enzyme responsible for phosphorylating this critical residue has recently been purified from Xenopus and starfish. It was termed CAK (for cdk-activating kinase), and it was shown to contain p40MO15 as its catalytic subunit. In view of the cardinal role of cdks in cell cycle control, it is important to learn if and how CAK activity is regulated during the somatic cell cycle. Here, we report a molecular characterization of a human p40MO15 homologue and its associated CAK activity. We have cloned and sequenced a cDNA coding for human p40MO15, and raised specific polyclonal and monoclonal antibodies against the corresponding protein expressed in Escherichia coli. These tools were then used to demonstrate that p40MO15 protein expression and CAK activity are constant throughout the somatic cell cycle. Gel filtration suggests that active CAK is a multiprotein complex, and immunoprecipitation experiments identify two polypeptides of 34 and 32 kD as likely complex partners of p40MO15. The association of the three proteins is near stoichiometric and invariant throughout the cell cycle. Immunocytochemistry and biochemical enucleation experiments both demonstrate that p40MO15 is nuclear at all stages of the cell cycle (except for mitosis, when the protein redistributes throughout the cell), although the p34cdc2/cyclin B complex, one of the major purported substrates of CAK, occurs in the cytoplasm until shortly before mitosis. The absence of obvious changes in CAK activity in exponentially growing cells constitutes a surprise. It suggests that the phosphorylation state of threonine 161 in p34cdc2 (and the corresponding residue in other cdks) may be regulated primarily by the availability of the cdk/cyclin substrates, and by phosphatase(s).
Insights
CDK-activating kinase (CAK) activity, driven by p40MO15, remains constant during the cell cycle. This suggests cell cycle regulation of cyclin-dependent kinases (cdks) relies more on substrate availability than CAK levels.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Cyclin-dependent kinases (cdks) are crucial for cell cycle control.
- CDK activity is regulated by phosphorylation at specific residues, like threonine 161 in human p34cdc2.
- CDK-activating kinase (CAK) phosphorylates this critical residue, with p40MO15 identified as its catalytic subunit.
Purpose of the Study:
- To investigate the regulation of CAK activity during the somatic cell cycle.
- To characterize the human p40MO15 homologue and its associated CAK activity.
Main Methods:
- Cloning and sequencing of human p40MO15 cDNA.
- Generation of antibodies against human p40MO15.
- Assays for CAK activity, gel filtration, immunoprecipitation, immunocytochemistry, and biochemical enucleation.
Main Results:
- Human p40MO15 expression and CAK activity are constant throughout the somatic cell cycle.
- Active CAK exists as a stable multiprotein complex with 34 and 32 kD partners.
- p40MO15 is primarily nuclear, while its substrate p34cdc2/cyclin B is cytoplasmic until mitosis.
Conclusions:
- CAK activity is not overtly regulated during the somatic cell cycle.
- Regulation of p34cdc2 phosphorylation at threonine 161 likely depends on cdk/cyclin substrate availability and phosphatase activity.
- The study provides molecular insights into CAK complex composition and localization relative to its substrates.