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Updated: Jul 18, 2026

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Structural basis for the modulation of CDK-dependent/independent activity of cyclin D1
Jean-Luc Ferrer1, Jérôme Dupuy, Franck Borel
1Laboratoire de Cristallogenèse et Cristallographie des Protéines, Institut de Biologie Structural J.-P Ebel, Grenoble, France. jean-luc.ferrer@ibs.fr
Abstract:
D-type cyclins are key regulators of the cell division cycle. In association with Cyclin Dependent Kinases (CDK) 2/4/6, they control the G1/S-phase transition in part by phosphorylation and inactivation of tumor suppressor of retinoblastoma family. Defective regulation of the G1/S transition is a well-known cause of cancer, making the cyclin D1-CDK4/6 complex a promising therapeutic target. Our objective is to develop inhibitors that would block the formation or the activation of the cyclin D1-CDK4/6 complex, using in silico docking experiments on a structural homology model of the cyclin D1-CDK4/6 complex. To this end we focused on the cyclin subunit in three different ways: (1) targeting the part of the cyclin D1 facing the N-terminal domain of CDK4/6, in order to prevent the dimer formation; (2) targeting the part of the cyclin D1 facing the C-terminal domain of CDK4/6, in order to prevent the activation of CDK4/6 by blocking the T-loop in an inactive conformation, and also to destabilize the dimer; (3) targeting the groove of cyclin D1 where p21 binds, in order to mimic its inhibition mode by preventing binding of cyclin D1-CDK4/6 complex to its targets. Our strategy, and the tools we developed, will provide a computational basis to design lead compounds for novel cancer therapeutics, targeting a broad range of proteins involved in the regulation of the cell cycle.
Insights
Researchers are developing novel cancer therapeutics by designing inhibitors for the cyclin D1-CDK4/6 complex, a key regulator of the cell cycle. These inhibitors aim to block complex formation or activation, offering a new strategy against cancer.
Area of Science:
- Cell Biology
- Molecular Oncology
- Drug Discovery
Background:
- D-type cyclins and Cyclin Dependent Kinases (CDKs) regulate the cell division cycle, specifically the G1/S-phase transition.
- Dysregulation of the G1/S transition is implicated in cancer development.
- The cyclin D1-CDK4/6 complex is a validated therapeutic target for various cancers.
Purpose of the Study:
- To computationally design inhibitors targeting the cyclin D1-CDK4/6 complex.
- To block the formation or activation of the cyclin D1-CDK4/6 complex.
- To establish a computational foundation for developing novel cancer therapeutics.
Main Methods:
- In silico molecular docking experiments were performed.
- A structural homology model of the cyclin D1-CDK4/6 complex was utilized.
- Three distinct strategies were employed to target the cyclin D1 subunit.
Main Results:
- Inhibitors were designed to target specific interfaces of the cyclin D1-CDK4/6 complex.
- Strategies included preventing dimer formation, blocking CDK activation, and mimicking p21 inhibition.
- Computational tools were developed to guide lead compound design.
Conclusions:
- The study provides a computational framework for developing targeted cancer therapies.
- Inhibitors of the cyclin D1-CDK4/6 complex represent a promising avenue for cancer treatment.
- This approach can be extended to target other cell cycle regulatory proteins.
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