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Experimental Approaches to Study Mitochondrial Localization and Function of a Nuclear Cell Cycle Kinase, Cdk1
Published on: February 25, 2016
Experimental validation of the docking orientation of Cdc25 with its Cdk2-CycA protein substrate
Jungsan Sohn1, Jerry M Parks, Gregory Buhrman
1Department of Biochemistry, Duke University Medical Center, Durham, North Carolina 27710, USA.
Abstract:
Cdc25 phosphatases are key activators of the eukaryotic cell cycle and compelling anticancer targets because their overexpression has been associated with numerous cancers. However, drug discovery targeting these phosphatases has been hampered by the lack of structural information about how Cdc25s interact with their native protein substrates, the cyclin-dependent kinases. Herein, we predict a docked orientation for Cdc25B with its Cdk2-pTpY-CycA protein substrate by a rigid-body docking method and refine the docked models with full-scale molecular dynamics simulations and minimization. We validate the stable ensemble structure experimentally by a variety of in vitro and in vivo techniques. Specifically, we compare our model with a crystal structure of the substrate-trapping mutant of Cdc25B. We identify and validate in vivo a novel hot-spot residue on Cdc25B (Arg492) that plays a central role in protein substrate recognition. We identify a hot-spot residue on the substrate Cdk2 (Asp206) and confirm its interaction with hot-spot residues on Cdc25 using hot-spot swapping and double mutant cycles to derive interaction energies. Our experimentally validated model is consistent with previous studies of Cdk2 and its interaction partners and initiates the opportunity for drug discovery of inhibitors that target the remote binding sites of this protein-protein interaction.
Insights
Cdc25 phosphatases regulate the cell cycle and are cancer targets. This study reveals key interactions between Cdc25B and its substrate Cdk2, enabling new drug discovery for cancer.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Cdc25 phosphatases are crucial cell cycle activators and cancer targets.
- Overexpression of Cdc25 phosphatases is linked to various cancers.
- Understanding Cdc25-substrate interactions is vital for drug discovery.
Purpose of the Study:
- To predict and validate the structural complex of Cdc25B with its substrate Cdk2-pTpY-CycA.
- To identify key residues involved in the Cdc25B-Cdk2 interaction.
- To provide a validated structural model for targeted drug discovery.
Main Methods:
- Rigid-body docking to predict initial orientation.
- Molecular dynamics simulations and minimization for refinement.
- In vitro and in vivo experimental validation, including mutant analysis.
Main Results:
- A stable, experimentally validated structural model of Cdc25B bound to Cdk2-pTpY-CycA was generated.
- A novel hot-spot residue (Arg492) on Cdc25B critical for substrate recognition was identified.
- A hot-spot residue (Asp206) on Cdk2 was identified and its interaction with Cdc25B confirmed.
Conclusions:
- The validated structural model provides insights into Cdc25-substrate recognition.
- Identification of key interaction residues (hot-spots) facilitates targeted inhibitor design.
- This work opens avenues for developing novel anticancer drugs targeting Cdc25-mediated cell cycle regulation.
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