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Therapeutic Implications of p53 Status on Cancer Cell Fate Following Exposure to Ionizing Radiation and the DNA-PK
Qing Sun1, Yige Guo1, Xiaohong Liu1
1Translational Innovation Platform Oncology, EMD Serono Research and Development Institute, Inc., Billerica, Massachusetts.
Abstract:
Inhibition of DNA double-strand break (DSB) repair in cancer cells has been proposed as a new therapeutic strategy for potentiating the anticancer effects of radiotherapy. M3814 is a novel, selective pharmacologic inhibitor of the serine/threonine kinase DNA-dependent protein kinase (DNA-PK), a key driver of nonhomologous end-joining, one of the main DSB-repair pathways, currently under clinical investigation. Here, we show that M3814 effectively blocks the repair of radiation-induced DSBs and potently enhances p53 phosphorylation and activation. In p53 wild-type cells, ataxia telangiectasia-mutated (ATM) and its targets, p53 and checkpoint kinase 2 (CHK2), were more strongly activated by combination treatment with M3814 and radiation than by radiation alone, leading to a complete p53-dependent cell-cycle block and premature cell senescence. Cancer cells with dysfunctional p53 were unable to fully arrest their cell cycle and entered S and M phases with unrepaired DNA, leading to mitotic catastrophe and apoptotic cell death. Isogenic p53-null/wild-type A549 and HT-1080 cell lines were generated and used to demonstrate that p53 plays a critical role in determining the response to ionizing radiation and M3814. Time-lapse imaging of cell death and measuring apoptosis in panels of p53 wild-type and p53-null/mutant cancer lines confirmed the clear differences in cell fate, dependent on p53 status. IMPLICATIONS: Our results identify p53 as a possible biomarker for response of cancer cells to combination treatment with radiation and a DNA-PK inhibitor and suggest that p53 mutation status should be considered in the design of future clinical trials. VISUAL OVERVIEW: http://mcr.aacrjournals.org/content/molcanres/17/12/2457/F1.large.jpg.
Insights
Inhibiting DNA repair with M3814 enhances radiation therapy. Cancer cells with functional p53 undergo senescence, while those with mutated p53 experience cell death, highlighting p53 as a predictive biomarker.
Area of Science:
- Oncology
- Molecular Biology
- Radiotherapy
Background:
- DNA double-strand breaks (DSBs) are critical targets for cancer therapy.
- Radiotherapy induces DSBs, but cancer cells can repair them.
- DNA-dependent protein kinase (DNA-PK) is crucial for DSB repair via nonhomologous end-joining.
Purpose of the Study:
- To investigate the efficacy of M3814, a DNA-PK inhibitor, in combination with radiation.
- To determine the role of p53 status in cancer cell response to M3814 and radiation.
Main Methods:
- Treatment of cancer cells with M3814 and ionizing radiation.
- Assessment of DSB repair inhibition, p53 phosphorylation, and cell-cycle progression.
- Utilizing isogenic p53-null/wild-type cell lines (A549, HT-1080).
- Time-lapse imaging and apoptosis assays.
Main Results:
- M3814 effectively inhibited radiation-induced DSB repair.
- Combination therapy enhanced p53 activation in wild-type p53 cells, leading to cell-cycle arrest and senescence.
- p53-mutant cells failed to arrest, exhibiting mitotic catastrophe and apoptosis due to unrepaired DNA.
- p53 status critically determined cell fate in response to M3814 and radiation.
Conclusions:
- M3814 potentiates radiotherapy by blocking DSB repair.
- p53 status is a key determinant of cancer cell response to DNA-PK inhibition and radiation.
- p53 mutation status may serve as a predictive biomarker for this combination therapy.
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