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PTEN Status Switches Cell Fate Between Premature Senescence and Apoptosis in Glioma Exposed to Ionizing Radiation

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Specialty Cell Biology
Date 2010 Nov 13
PMID 21072054
Citations 94
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Abstract

Loss of the tumor suppressor phosphatase and tensin homolog (PTEN) has frequently been observed in human gliomas, conferring AKT activation and resistance to ionizing radiation (IR) and drug treatments. Recent reports have shown that PTEN loss or AKT activation induces premature senescence, but many details regarding this effect remain obscure. In this study, we tested whether the status of PTEN determined fate of the cell by examining PTEN-deficient U87, U251, and U373, and PTEN-proficient LN18 and LN428 glioma cells after exposure to IR. These cells exhibited different cellular responses, senescence or apoptosis, depending on the PTEN status. We further observed that PTEN-deficient U87 cells with high levels of both AKT activation and intracellular reactive oxygen species (ROS) underwent senescence, whereas PTEN-proficient LN18 cells entered apoptosis. ROS were indispensable for inducing senescence in PTEN-deficient cells, but not for apoptosis in PTEN-proficient cells. Furthermore, transfection with wild-type (wt) PTEN or AKT small interfering RNA induced a change from premature senescence to apoptosis and depletion of p53 or p21 prevented IR-induced premature senescence in U87 cells. Our data indicate that PTEN acts as a pivotal determinant of cell fate, regarding senescence and apoptosis in IR-exposed glioma cells. We conclude that premature senescence could have a compensatory role for apoptosis in the absence of the tumor suppressor PTEN through the AKT/ROS/p53/p21 signaling pathway.

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References
1.
Cai X, Tao B, Wang L, Liang Y, Jin J, Yang Y . Protein phosphatase activity of PTEN inhibited the invasion of glioma cells with epidermal growth factor receptor mutation type III expression. Int J Cancer. 2005; 117(6):905-12. DOI: 10.1002/ijc.21251. View

2.
Quillet-Mary A, Jaffrezou J, Mansat V, Bordier C, Naval J, Laurent G . Implication of mitochondrial hydrogen peroxide generation in ceramide-induced apoptosis. J Biol Chem. 1997; 272(34):21388-95. DOI: 10.1074/jbc.272.34.21388. View

3.
Suzuki M, Boothman D . Stress-induced premature senescence (SIPS)--influence of SIPS on radiotherapy. J Radiat Res. 2008; 49(2):105-12. DOI: 10.1269/jrr.07081. View

4.
Roninson I . Tumor cell senescence in cancer treatment. Cancer Res. 2003; 63(11):2705-15. View

5.
Keniry M, Parsons R . The role of PTEN signaling perturbations in cancer and in targeted therapy. Oncogene. 2008; 27(41):5477-85. DOI: 10.1038/onc.2008.248. View