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Updated: May 31, 2026

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Incomplete folding upon binding mediates Cdk4/cyclin D complex activation by tyrosine phosphorylation of inhibitor
Li Ou1, Antonio M Ferreira, Steve Otieno
1Department of Structural Biology, St. Jude Children's Research Hospital, Memphis, Tennessee 38105, USA.
Abstract:
p27(Kip1) (p27), an intrinsically disordered protein, regulates the various Cdk/cyclin complexes that control cell cycle progression. The kinase inhibitory domain of p27 contains a cyclin-binding subdomain (D1), a Cdk-binding subdomain (D2), and a linker helix subdomain that connects D1 and D2. Here, we report that, despite extensive sequence conservation between Cdk4/cyclin D1 (hereafter Cdk4/cyclin D) and Cdk2/cyclin A, the thermodynamic details describing how the individual p27 subdomains contribute to equally high affinity binding to these two Cdk/cyclin complexes are strikingly different. Differences in enthalpy/entropy compensation revealed that the D2 subdomain of p27 folds incompletely when binding Cdk4/cyclin D versus Cdk2/cyclin A. Incomplete binding-induced folding exposes tyrosine 88 of p27 for phosphorylation by the nonreceptor tyrosine kinase Abl. Importantly, tyrosine phosphorylation (of p27) relieves Cdk inhibition by p27, enabling cell cycle entry. Furthermore, the interaction between a conserved hydrophobic patch on cyclin D and subdomain D1 is much weaker than that with cyclin A; consequently, a construct containing subdomains D1 and LH (p27-D1LH) does not inhibit substrate binding to Cdk4/cyclin D as it does to Cdk2/cyclin A. Our results provide a mechanism by which Cdk4 (within the p27/Cdk4/cyclin D complex) is poised to be activated by extrinsic mitogenic signals that impinge upon p27 at the earliest stage of cell division. More broadly, our results further illustrate the regulatory versatility of intrinsically disordered proteins.
Insights
The intrinsically disordered protein p27 (p27) regulates cell cycle progression. Its binding to Cdk4/cyclin D differs from Cdk2/cyclin A, impacting cell cycle entry via phosphorylation.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- p27(Kip1) (p27) is an intrinsically disordered protein regulating cell cycle progression via Cdk/cyclin complexes.
- p27's kinase inhibitory domain has cyclin-binding (D1), Cdk-binding (D2), and linker helix subdomains.
Purpose of the Study:
- To investigate the thermodynamic differences in p27 subdomain binding to Cdk4/cyclin D versus Cdk2/cyclin A.
- To elucidate the mechanism of p27-mediated Cdk inhibition and its regulation.
Main Methods:
- Thermodynamic analysis of p27 subdomain interactions with Cdk/cyclin complexes.
- Assessment of binding-induced folding and tyrosine phosphorylation of p27.
- Enzyme inhibition assays using p27 constructs.
Main Results:
- p27 exhibits distinct enthalpy/entropy compensation when binding Cdk4/cyclin D compared to Cdk2/cyclin A.
- Incomplete binding-induced folding of p27's D2 subdomain with Cdk4/cyclin D exposes Tyr88 for Abl kinase phosphorylation.
- Phosphorylation of p27 relieves Cdk inhibition, promoting cell cycle entry.
- p27's D1 subdomain interaction with cyclin D is weaker than with cyclin A, affecting Cdk4/cyclin D inhibition.
Conclusions:
- p27's differential binding and phosphorylation provide a mechanism for Cdk4/cyclin D activation by external signals.
- This highlights the regulatory adaptability of intrinsically disordered proteins in cell division control.
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