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Identification of Intracellular Signaling Events Induced in Viable Cells by Interaction with Neighboring Cells Undergoing Apoptotic Cell Death
Published on: December 27, 2016
Serine 64 phosphorylation enhances the antiapoptotic function of Mcl-1
Shogo Kobayashi1, Sun-Hee Lee2, Xue W Meng3
1Division of Gastroenterology and Hepatology, Mayo Clinic College of Medicine, Rochester, Minnesota 55905.
Abstract:
Mcl-1 is an antiapoptotic Bcl-2 family member that is highly regulated and when dysregulated contributes to cancer. The Mcl-1 protein is phosphorylated at multiple sites in response to different signaling events. Phosphorylations at Thr163 (by ERK) and Ser159 (by glycogen-synthase kinase 3beta) have recently been shown to slow and enhance, respectively, Mcl-1 protein turnover. Phosphorylation is also known to be stimulated at other, as-yet uncharacterized sites in the G2/M phase of the cell cycle. Using an S peptide-tagged Mcl-1 T163A mutant, Ser64 was identified as a novel Mcl-1 phosphorylation site by mass spectrometry. Immunoblotting demonstrated that phosphorylation at this site was maximal in cells in G2/M phase, was enhanced by tumor necrosis factor-alpha-related apoptosis-inducing ligand (TRAIL) treatment, was blocked by inhibitors of CDK (but not ERK or glycogen-synthase kinase 3beta), and was stimulated in vitro by CDK 1, CDK2, and JNK1. The half-life of a nonphosphorylatable S64A Mcl-1 mutant was indistinguishable from that of the wild type polypeptide. In contrast, this mutant failed to protect cells from TRAIL-mediated apoptosis, whereas reconstitution with the phosphomimetic S64E Mcl-1 mutant rendered cells TRAIL-resistant. This anti-apoptotic phenotype of the S64E Mcl-1 mutant was also associated with enhanced binding to the proapoptotic proteins Bim, Noxa, and Bak. A pharmacological CDK inhibitor that reduced Ser64 phosphorylation also sensitized cells to TRAIL cytotoxicity. Collectively, these observations not only identify G2/M-associated phosphorylation at Ser64 as a critical determinant of the antiapoptotic activity of Mcl-1 but also elucidate a novel mechanism by which CDK1/2 inhibitors can enhance the effectiveness of the cytotoxic cytokine TRAIL.
Insights
Mcl-1 phosphorylation at Ser64 is critical for its anti-apoptotic function and is regulated by CDKs. Inhibiting CDKs sensitizes cancer cells to TRAIL-induced apoptosis.
Area of Science:
- Cell Biology
- Molecular Oncology
Background:
- Mcl-1 is an anti-apoptotic protein in the Bcl-2 family, crucial for cancer cell survival.
- Dysregulation of Mcl-1 contributes to cancer development and treatment resistance.
- Mcl-1 protein turnover and function are regulated by phosphorylation at various sites.
Purpose of the Study:
- To identify novel phosphorylation sites on Mcl-1.
- To investigate the role of Mcl-1 phosphorylation at Ser64 in regulating its anti-apoptotic activity.
- To explore the therapeutic potential of targeting Mcl-1 phosphorylation in cancer treatment.
Main Methods:
- Mass spectrometry was used to identify Mcl-1 phosphorylation sites.
- Site-directed mutagenesis was employed to create nonphosphorylatable (S64A) and phosphomimetic (S64E) Mcl-1 mutants.
- Immunoblotting and cell-based assays were used to assess Mcl-1 phosphorylation, protein turnover, and apoptosis sensitivity.
- Pharmacological inhibitors of cyclin-dependent kinases (CDKs) were utilized.
Main Results:
- Serine 64 (Ser64) was identified as a novel Mcl-1 phosphorylation site, predominantly phosphorylated during the G2/M phase of the cell cycle.
- CDK1 and CDK2 were identified as kinases that phosphorylate Mcl-1 at Ser64.
- Mcl-1 phosphorylation at Ser64 is essential for its anti-apoptotic function and enhances binding to pro-apoptotic proteins.
- Inhibition of CDKs reduced Ser64 phosphorylation and sensitized cells to TRAIL-induced apoptosis.
Conclusions:
- G2/M-associated phosphorylation at Ser64 is a critical determinant of Mcl-1's anti-apoptotic activity.
- CDK1/2 inhibitors can enhance the efficacy of TRAIL therapy by targeting Mcl-1 phosphorylation.
- Targeting Mcl-1 Ser64 phosphorylation represents a potential therapeutic strategy in oncology.
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