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Selenium activates p53 and p38 pathways and induces caspase-independent cell death in cervical cancer cells
E. Rudolf, K. Rudolf, M. Červinka
Language English Country Netherlands
NLK
ProQuest Central
from 1997-01-01 to 1 year ago
Medline Complete (EBSCOhost)
from 2000-02-01 to 1 year ago
Nursing & Allied Health Database (ProQuest)
from 1997-01-01 to 1 year ago
Health & Medicine (ProQuest)
from 1997-01-01 to 1 year ago
Public Health Database (ProQuest)
from 1997-01-01 to 1 year ago
- MeSH
- Enzyme Activation drug effects MeSH
- Bromodeoxyuridine pharmacology metabolism MeSH
- Cell Death drug effects MeSH
- DNA, Neoplasm biosynthesis MeSH
- Apoptosis Inducing Factor metabolism MeSH
- Financing, Organized MeSH
- Glutathione metabolism MeSH
- HeLa Cells MeSH
- Cyclin-Dependent Kinase Inhibitor p21 metabolism MeSH
- Intracellular Signaling Peptides and Proteins metabolism MeSH
- JNK Mitogen-Activated Protein Kinases metabolism MeSH
- Caspase 3 metabolism MeSH
- Humans MeSH
- Metalloporphyrins MeSH
- Mitochondrial Proteins metabolism MeSH
- p38 Mitogen-Activated Protein Kinases metabolism MeSH
- Tumor Suppressor Protein p53 metabolism MeSH
- Uterine Cervical Neoplasms enzymology pathology MeSH
- Oxidative Stress drug effects MeSH
- DNA Damage MeSH
- Selenium pharmacology MeSH
- Organelle Shape drug effects MeSH
- Check Tag
- Humans MeSH
- Female MeSH
The mechanisms of sodium selenite-induced cell death in cervical carcinoma cells were studied during 24 h of exposure in the HeLa Hep-2 cell line. Selenite at the employed concentrations of 5 and 50 micromol/L produced time- and dose-dependent suppression of DNA synthesis and induced DNA damage which resulted in phosphorylation of histone H2A.X. These effects were influenced by pretreatment of cells with the SOD/catalase mimetic MnTMPyP or glutathione-depleting buthionine sulfoximine, suggesting the significant role of selenite-generated oxidative stress. Following the DNA damage, selenite activated p53-dependent pathway as evidenced by the appearance of phosphorylated p53 and accumulation of p21 in the treated cells. Concomitantly, selenite activated p38 pathway but its effect on JNK was very weak. p53- and p38-dependent signaling led to the accumulation of Bax protein, which was preventable by specific inhibitors of p38 (SB 203580) and p53 (Pifithrin-alpha). Mitochondria in selenite-treated cells changed their dynamics (shape and localization) and released AIF and Smac/Diablo, which initiated caspase-independent apoptosis as confirmed by the caspase-3 activity assay and the low effect of caspase inhibitors z-DEVD-fmk and z-VAD-fmk on cell death. We conclude that selenite induces caspase-independent apoptosis in cervical carcinoma cells mostly by oxidative stress-mediated activation of p53 and p38 pathways, but other selenite-mediated effects, in particular mitochondria-specific ones, are also involved.
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- $a Selenium activates p53 and p38 pathways and induces caspase-independent cell death in cervical cancer cells / $c E. Rudolf, K. Rudolf, M. Červinka
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- $a Department of Medical Biology and Genetics, Charles University in Prague, Faculty of Medicine in Hradec Kralove, Hradec Kralove, Czech Republic. rudolf@lfhk.cuni.cz
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- $a The mechanisms of sodium selenite-induced cell death in cervical carcinoma cells were studied during 24 h of exposure in the HeLa Hep-2 cell line. Selenite at the employed concentrations of 5 and 50 micromol/L produced time- and dose-dependent suppression of DNA synthesis and induced DNA damage which resulted in phosphorylation of histone H2A.X. These effects were influenced by pretreatment of cells with the SOD/catalase mimetic MnTMPyP or glutathione-depleting buthionine sulfoximine, suggesting the significant role of selenite-generated oxidative stress. Following the DNA damage, selenite activated p53-dependent pathway as evidenced by the appearance of phosphorylated p53 and accumulation of p21 in the treated cells. Concomitantly, selenite activated p38 pathway but its effect on JNK was very weak. p53- and p38-dependent signaling led to the accumulation of Bax protein, which was preventable by specific inhibitors of p38 (SB 203580) and p53 (Pifithrin-alpha). Mitochondria in selenite-treated cells changed their dynamics (shape and localization) and released AIF and Smac/Diablo, which initiated caspase-independent apoptosis as confirmed by the caspase-3 activity assay and the low effect of caspase inhibitors z-DEVD-fmk and z-VAD-fmk on cell death. We conclude that selenite induces caspase-independent apoptosis in cervical carcinoma cells mostly by oxidative stress-mediated activation of p53 and p38 pathways, but other selenite-mediated effects, in particular mitochondria-specific ones, are also involved.
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