Inhibition of DNA-Dependent Protein Kinase Induces Accelerated Senescence in Irradiated Human Cancer Cells
Inhibition of DNA-Dependent Protein Kinase Induces Accelerated Senescence in Irradiated Human Cancer Cells
AbstractDNA-dependent protein kinase (DNA-PK) plays a pivotal role in the repair of DNA double-strand breaks (DSB) and is centrally involved in regulating cellular radiosensitivity. Here, we identify DNA-PK as a key therapeutic target for augmenting accelerated senescence in irradiated human cancer cells. We find that BEZ235, a novel inhibitor of DNA-PK and phosphoinositide 3-kinase (PI3K)/mTOR, abrogates radiation-induced DSB repair resulting in cellular radiosensitization and growth delay of irradiated tumor xenografts. Importantly, radiation enhancement by BEZ235 coincides with a prominent p53-dependent accelerated senescence phenotype characterized by positive β-galactosidase staining, G2–M cell-cycle arrest, enlarged and flattened cellular morphology, and increased p21 expression and senescence-associated cytokine secretion. Because this senescence response to BEZ235 is accompanied by unrepaired DNA DSBs, we examined whether selective targeting of DNA-PK also induces accelerated senescence in irradiated cells. Significantly, we show that specific pharmacologic inhibition of DNA-PK, but not PI3K or mTORC1, delays DSB repair leading to accelerated senescence after radiation. We additionally show that PRKDC knockdown using siRNA promotes a striking accelerated senescence phenotype in irradiated cells comparable with that of BEZ235. Thus, in the context of radiation treatment, our data indicate that inhibition of DNA-PK is sufficient for the induction of accelerated senescence. These results validate DNA-PK as an important therapeutic target in irradiated cancer cells and establish accelerated senescence as a novel mechanism of radiosensitization induced by DNA-PK blockade. Mol Cancer Res; 9(12); 1696–707. ©2011 AACR.
- University of Melbourne Australia
- St Vincent's Hospital Australia
- Novartis Institutes for BioMedical Research Switzerland
- Peter MacCallum Cancer Centre Australia
- St Vincent's Health Australia
rho GTP-Binding Proteins, DNA Repair, Nude, Mice, Nude, DNA-dependent protein kinase (DNA-PK), 612, DNA-Activated Protein Kinase, Mechanistic Target of Rapamycin Complex 1, Small Interfering, Radiation Tolerance, Cell Line, Double-Stranded, Mice, Phosphatidylinositol 3-Kinases, Cell Line, Tumor, Animals, Humans, DNA Breaks, Double-Stranded, DNA double-strand breaks (DSB), 111203 Cancer Genetics, Protein Kinase Inhibitors, Cellular Senescence, 111201 Cancer Cell Biology, Phosphoinositide-3 Kinase Inhibitors, Transplantation, Heterologous, Neoplastic, Tumor, TOR Serine-Threonine Kinases, DNA Breaks, Imidazoles, Proteins, Cell Cycle Checkpoints, Gene Expression Regulation, Neoplastic, Gene Expression Regulation, Gene Knockdown Techniques, Multiprotein Complexes, Quinolines, RNA, Tumor Suppressor Protein p53
rho GTP-Binding Proteins, DNA Repair, Nude, Mice, Nude, DNA-dependent protein kinase (DNA-PK), 612, DNA-Activated Protein Kinase, Mechanistic Target of Rapamycin Complex 1, Small Interfering, Radiation Tolerance, Cell Line, Double-Stranded, Mice, Phosphatidylinositol 3-Kinases, Cell Line, Tumor, Animals, Humans, DNA Breaks, Double-Stranded, DNA double-strand breaks (DSB), 111203 Cancer Genetics, Protein Kinase Inhibitors, Cellular Senescence, 111201 Cancer Cell Biology, Phosphoinositide-3 Kinase Inhibitors, Transplantation, Heterologous, Neoplastic, Tumor, TOR Serine-Threonine Kinases, DNA Breaks, Imidazoles, Proteins, Cell Cycle Checkpoints, Gene Expression Regulation, Neoplastic, Gene Expression Regulation, Gene Knockdown Techniques, Multiprotein Complexes, Quinolines, RNA, Tumor Suppressor Protein p53
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