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Strategies for Tracking Anastasis, A Cell Survival Phenomenon that Reverses Apoptosis
Published on: February 16, 2015
Programmed expression of pro-apoptotic BMCC1 during apoptosis, triggered by DNA damage in neuroblastoma cells
Mohammad Sazzadul Islam1,2, Ryo Takano1,2, Tomoki Yokochi1,3
1Division of Innovative Cancer Therapeutics, Chiba Cancer Center Research Institute, Chiba, Japan.
Background:
The multi-functional BMCC1 (BCH motif-containing molecule at the carboxyl terminal region 1)/PRUNE2 plays a clear role in suppression of tumor activity. In the patients with neuroblastoma (NB), reduced expression of BMCC1 in primary tumor tissues was associated with poor prognosis. By contrast, enforced expression of BMCC1 as well as elevated expression of BMCC1 in response to DNA-damage promotes apoptosis by abrogating Akt-mediated survival pathways.
Methods:
We addressed molecular mechanisms underlying changes in regulation of BMCC1 expression during the process of apoptosis, which was promoted by a DNA-damaging drug Cisplatin (CDDP), in NB-derived cells.
Results:
Elevated expression of BMCC1 was identified as an early response to DNA damage, which is accompanied by phosphorylation of ataxia telangiectasia mutated kinase (ATM) and accumulation of E2F1. Indeed, inhibition of ATM using an ATM inhibitor resulted in a decrease in expression of BMCC1 at mRNA levels. In addition, an E2F-binding sight was required for activation of BMCC1 promoter in response to DNA damage. On the other hand, knockdown of E2F1 yielded abrogated induction of BMCC1 in the cells after treatment with CDDP, suggesting that BMCC1 accumulation was caused by ATM-E2F1-dependent transcription. Finally, we demonstrated that full-length BMCC1 was proteolytically cleaved by apoptosis-activated caspase-9 during advanced stages of apoptosis in SK-N-AS cells.
Conclusions:
In this study, we demonstrated the programmed expression of full-length BMCC1 in human NB cells undergoing DNA damage-induced apoptosis. The elucidation of the molecular mechanisms controlling the regulation of BMCC1 during apoptosis initiated by DNA damage provides useful information for understanding drug resistance of tumor cells and spontaneous regression of NB.
Insights
The study reveals that DNA damage triggers programmed expression of BMCC1 (BCH motif-containing molecule at the carboxyl terminal region 1) in neuroblastoma cells, mediated by the ATM-E2F1 pathway. This programmed expression is crucial for apoptosis and understanding drug resistance.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Death Mechanisms
Background:
- BMCC1 (BCH motif-containing molecule at the carboxyl terminal region 1)/PRUNE2 is a tumor suppressor.
- Reduced BMCC1 expression in neuroblastoma (NB) correlates with poor prognosis.
- BMCC1 promotes apoptosis by inhibiting survival pathways.
Purpose of the Study:
- To investigate the molecular mechanisms regulating BMCC1 expression during DNA damage-induced apoptosis in NB cells.
- To understand the role of Cisplatin (CDDP) in modulating BMCC1 expression.
Main Methods:
- Studied NB-derived cells treated with Cisplatin (CDDP).
- Analyzed BMCC1 mRNA levels, ATM and E2F1 activity.
- Utilized ATM inhibitors and E2F1 knockdown.
- Investigated BMCC1 promoter activity.
- Examined caspase-9 cleavage of BMCC1.
Main Results:
- BMCC1 expression is an early response to DNA damage, dependent on ATM and E2F1.
- ATM-E2F1-dependent transcription drives BMCC1 accumulation.
- Caspase-9 cleaves full-length BMCC1 during late-stage apoptosis.
- BMCC1 promoter activity requires an E2F-binding site.
Conclusions:
- Programmed expression of BMCC1 occurs in human NB cells during DNA damage-induced apoptosis.
- Understanding BMCC1 regulation offers insights into drug resistance and NB regression.
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