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Published on: May 14, 2016
Sulforaphane-induced G2/M phase cell cycle arrest involves checkpoint kinase 2-mediated phosphorylation of cell
Shivendra V Singh1, Anna Herman-Antosiewicz, Ajita V Singh
1Department of Pharmacology and University of Pittsburgh Cancer Institute, Pittsburgh, PA 15213, USA. singhs@msx.upmc.edu
Abstract:
Previously, we showed that sulforaphane (SFN), a naturally occurring cancer chemopreventive agent, effectively inhibits proliferation of PC-3 human prostate cancer cells by causing caspase-9- and caspase-8-mediated apoptosis. Here, we demonstrate that SFN treatment causes an irreversible arrest in the G(2)/M phase of the cell cycle. Cell cycle arrest induced by SFN was associated with a significant decrease in protein levels of cyclin B1, cell division cycle (Cdc) 25B, and Cdc25C, leading to accumulation of Tyr-15-phosphorylated (inactive) cyclin-dependent kinase 1. The SFN-induced decline in Cdc25C protein level was blocked in the presence of proteasome inhibitor lactacystin, but lactacystin did not confer protection against cell cycle arrest. Interestingly, SFN treatment also resulted in a rapid and sustained phosphorylation of Cdc25C at Ser-216, leading to its translocation from the nucleus to the cytoplasm because of increased binding with 14-3-3beta. Increased Ser-216 phosphorylation of Cdc25C upon treatment with SFN was the result of activation of checkpoint kinase 2 (Chk2), which was associated with Ser-1981 phosphorylation of ataxia telangiectasia-mutated, generation of reactive oxygen species, and Ser-139 phosphorylation of histone H2A.X, a sensitive marker for the presence of DNA double-strand breaks. Transient transfection of PC-3 cells with Chk2-specific small interfering RNA duplexes significantly attenuated SFN-induced G(2)/M arrest. HCT116 human colon cancer-derived Chk2(-/-) cells were significantly more resistant to G(2)/M arrest by SFN compared with the wild type HCT116 cells. These findings indicate that Chk2-mediated phosphorylation of Cdc25C plays a major role in irreversible G(2)/M arrest by SFN. Activation of Chk2 in response to DNA damage is well documented, but the present study is the first published report to link Chk2 activation to cell cycle arrest by an isothiocyanate.
Insights
Sulforaphane (SFN) causes irreversible G2/M cell cycle arrest in prostate cancer cells. This arrest is mediated by checkpoint kinase 2 (Chk2) activating Cdc25C, highlighting a novel mechanism for SFN
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Cycle Regulation
Background:
- Sulforaphane (SFN), a natural chemopreventive agent, previously demonstrated to induce apoptosis in PC-3 prostate cancer cells.
- Understanding the precise mechanisms of SFN's anti-cancer effects is crucial for therapeutic development.
Purpose of the Study:
- To elucidate the role of SFN in cell cycle regulation beyond apoptosis.
- To investigate the molecular pathways involved in SFN-induced cell cycle arrest.
Main Methods:
- Cell cycle analysis (G2/M phase arrest) in PC-3 and HCT116 cells.
- Western blotting to assess protein levels (cyclin B1, Cdc25B, Cdc25C, p-Chk2, p-H2A.X).
- Use of proteasome inhibitor (lactacystin) and Chk2-specific small interfering RNA (siRNA).
- Generation of reactive oxygen species (ROS) and DNA double-strand break assays.
Main Results:
- SFN induces irreversible G2/M cell cycle arrest.
- SFN decreases levels of cyclin B1, Cdc25B, and Cdc25C, leading to inactive cyclin-dependent kinase 1.
- SFN triggers Cdc25C phosphorylation at Ser-216, causing cytoplasmic translocation via 14-3-3beta binding.
- SFN activates checkpoint kinase 2 (Chk2), linked to DNA damage markers (p-ATM, ROS, p-H2A.X).
- Chk2 inhibition or deficiency significantly reduces SFN-induced G2/M arrest.
Conclusions:
- Chk2-mediated phosphorylation of Cdc25C is a key mechanism for SFN-induced irreversible G2/M arrest.
- This study is the first to link Chk2 activation to cell cycle arrest by an isothiocyanate.
- SFN's anti-cancer activity involves intricate regulation of cell cycle checkpoints.
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