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Updated: Apr 6, 2026

Studying Proteolysis of Cyclin B at the Single Cell Level in Whole Cell Populations
Published on: September 17, 2012
Cyclin E/Cdk2-dependent phosphorylation of Mcl-1 determines its stability and cellular sensitivity to BH3 mimetics
Gaurav S Choudhary1,2, Trinh T Tat3, Saurav Misra4
1Department of Cancer Biology, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, USA.
Abstract:
Cyclin E/Cdk2 kinase activity is frequently deregulated in human cancers, resulting in impaired apoptosis. Here, we show that cyclin E/Cdk2 phosphorylates and stabilizes the pro-survival Bcl-2 family protein Mcl-1, a key cell death resistance determinant to the small molecule Bcl-2 family inhibitors ABT-199 and ABT-737, mimetics of the Bcl-2 homology domain 3 (BH3). Cyclin E levels were elevated and there was increased association of cyclin E/Cdk2 with Mcl-1 in ABT-737-resistant compared to parental cells. Cyclin E depletion in various human tumor cell-lines and cyclin E-/- mouse embryo fibroblasts showed decreased levels of Mcl-1 protein, with no change in Mcl-1 mRNA levels. In the absence of cyclin E, Mcl-1 ubiquitination was enhanced, leading to decreased protein stability. Studies with Mcl-1 phosphorylation mutants show that cyclin E/Cdk2-dependent phosphorylation of Mcl-1 residues on its PEST domain resulted in increased Mcl-1 stability (Thr92, and Thr163) and Bim binding (Ser64). Cyclin E knock-down restored ABT-737 sensitivity to acquired and inherently resistant Mcl-1-dependent tumor cells. CDK inhibition by dinaciclib resulted in Bim release from Mcl-1 in ABT-737-resistant cells. Dinaciclib in combination with ABT-737 and ABT-199 resulted in robust synergistic cell death in leukemic cells and primary chronic lymphocytic leukemia patient samples. Collectively, our findings identify a novel mechanism of cyclin E-mediated Mcl-1 regulation that provides a rationale for clinical use of Bcl-2 family and Cdk inhibitors for Mcl-1-dependent tumors.
Insights
Cyclin E stabilizes Mcl-1 protein, promoting cancer cell survival and resistance to apoptosis. Inhibiting cyclin-dependent kinase (CDK) restores sensitivity to cancer therapies, offering new treatment strategies for Mcl-1-dependent tumors.
Area of Science:
- Molecular Biology
- Cancer Biology
- Cell Death Pathways
Background:
- Cyclin E/Cdk2 kinase activity is often dysregulated in human cancers, leading to impaired apoptosis.
- Mcl-1 is a pro-survival Bcl-2 family protein crucial for resistance to BH3 mimetics like ABT-199 and ABT-737.
Purpose of the Study:
- To elucidate the role of cyclin E/Cdk2 in regulating Mcl-1 stability and its impact on cancer cell sensitivity to Bcl-2 inhibitors.
- To investigate the therapeutic potential of combining CDK inhibitors with Bcl-2 inhibitors in Mcl-1-dependent cancers.
Main Methods:
- Utilized human tumor cell lines and mouse embryo fibroblasts for cyclin E depletion studies.
- Analyzed Mcl-1 protein levels, mRNA, ubiquitination, and phosphorylation status.
- Assessed the effects of cyclin E knockdown and CDK inhibition (dinaciclib) on drug sensitivity and cell death.
Main Results:
- Cyclin E/Cdk2 phosphorylates and stabilizes Mcl-1, enhancing its resistance to apoptosis.
- Cyclin E depletion increases Mcl-1 ubiquitination and degradation, restoring sensitivity to ABT-737.
- CDK inhibition releases Bim from Mcl-1, leading to synergistic cell death with ABT-737/ABT-199 in leukemia models.
Conclusions:
- Cyclin E-mediated Mcl-1 stabilization is a novel mechanism driving cancer cell survival and drug resistance.
- Targeting cyclin E/Cdk2 in combination with Bcl-2 inhibitors presents a promising therapeutic strategy for Mcl-1-dependent malignancies.
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