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Updated: Feb 10, 2026

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Heying Cui1, Kyle M Loftus1, Crystal R Noell1
1Department of Chemistry, State University of New York at Binghamton.
Abstract:
Cyclin-dependent kinase 1 (Cdk1) is a master controller for the cell cycle in all eukaryotes and phosphorylates an estimated 8 - 13% of the proteome; however, the number of identified targets for Cdk1, particularly in human cells is still low. The identification of Cdk1-specific phosphorylation sites is important, as they provide mechanistic insights into how Cdk1 controls the cell cycle. Cell cycle regulation is critical for faithful chromosome segregation, and defects in this complicated process lead to chromosomal aberrations and cancer. Here, we describe an in vitro kinase assay that is used to identify Cdk1-specific phosphorylation sites. In this assay, a purified protein is phosphorylated in vitro by commercially available human Cdk1/cyclin B. Successful phosphorylation is confirmed by SDS-PAGE, and phosphorylation sites are subsequently identified by mass spectrometry. We also describe purification protocols that yield highly pure and homogeneous protein preparations suitable for the kinase assay, and a binding assay for the functional verification of the identified phosphorylation sites, which probes the interaction between a classical nuclear localization signal (cNLS) and its nuclear transport receptor karyopherin α. To aid with experimental design, we review approaches for the prediction of Cdk1-specific phosphorylation sites from protein sequences. Together these protocols present a very powerful approach that yields Cdk1-specific phosphorylation sites and enables mechanistic studies into how Cdk1 controls the cell cycle. Since this method relies on purified proteins, it can be applied to any model organism and yields reliable results, especially when combined with cell functional studies.
Insights
Researchers developed an in vitro kinase assay to identify Cyclin-dependent kinase 1 (Cdk1) phosphorylation sites. This method aids in understanding cell cycle control and identifying potential cancer-related mechanisms.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Cyclin-dependent kinase 1 (Cdk1) regulates the cell cycle by phosphorylating a significant portion of the proteome.
- Identifying Cdk1 targets is crucial for understanding cell cycle control, chromosome segregation, and preventing cancer.
- Current knowledge of Cdk1 targets, especially in human cells, remains limited.
Purpose of the Study:
- To describe a robust in vitro kinase assay for identifying Cdk1-specific phosphorylation sites.
- To present purification protocols for high-quality protein preparations for kinase assays.
- To introduce a binding assay for functional validation of identified phosphorylation sites and discuss predictive approaches.
Main Methods:
- An in vitro kinase assay using purified proteins and commercially available human Cdk1/cyclin B.
- Confirmation of phosphorylation via SDS-PAGE and identification of sites using mass spectrometry.
- Purification of proteins, binding assays for functional verification, and sequence-based prediction of phosphorylation sites.
Main Results:
- A powerful approach for identifying Cdk1-specific phosphorylation sites was established.
- Protocols for protein purification and functional verification of phosphorylation sites were detailed.
- The method enables mechanistic studies into Cdk1's role in cell cycle control.
Conclusions:
- The described in vitro kinase assay combined with mass spectrometry and functional assays provides a comprehensive method for identifying Cdk1 phosphorylation sites.
- This approach is applicable across model organisms and enhances mechanistic understanding of Cdk1's cell cycle functions.
- The findings facilitate research into chromosomal aberrations and cancer linked to cell cycle dysregulation.
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