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Irradiation of adult human dental pulp stem cells provokes activation of p53, cell cycle arrest, and senescence but not apoptosis
D. Muthna, T. Soukup, J. Vavrova, J. Mokry, J. Cmielova, B. Visek, A. Jiroutova, R. Havelek, J. Suchanek, S. Filip, D. English, M. Rezacova
Jazyk angličtina Země Spojené státy americké
Typ dokumentu časopisecké články, práce podpořená grantem
Grantová podpora
NR9182
MZ0
CEP - Centrální evidence projektů
PubMed
20331357
DOI
10.1089/scd.2009.0449
Knihovny.cz E-zdroje
- MeSH
- apoptóza účinky záření MeSH
- beta-galaktosidasa metabolismus MeSH
- buněčný cyklus účinky záření MeSH
- destičkový růstový faktor farmakologie MeSH
- dospělí MeSH
- epidermální růstový faktor farmakologie MeSH
- inhibitor p21 cyklin-dependentní kinasy metabolismus MeSH
- ionizující záření MeSH
- kmenové buňky cytologie účinky záření MeSH
- kultivované buňky MeSH
- lidé MeSH
- nádorové proteiny analýza metabolismus MeSH
- nádorový supresorový protein p53 metabolismus MeSH
- polymerázová řetězová reakce s reverzní transkripcí MeSH
- stárnutí buněk účinky záření MeSH
- viabilita buněk MeSH
- western blotting MeSH
- zubní dřeň cytologie účinky záření MeSH
- Check Tag
- dospělí MeSH
- lidé MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
Adult human dental pulp contains stem cells (DPSCs) that are capable of differentiation into osteoblasts, odontoblasts, adipocytes, and neuronal-like cells. Because these cells have potential use in tissue regeneration, herein we characterized the response of DPSC lines to ionizing radiation (IR). These DPSC lines have been developed from the extracted molars of healthy donors. DPSCs were cultivated in a unique media supplemented with epidermal growth factor (EGF) and platelet-derived growth factor (PDGF). Since tissue homeostasis depends on a precise balance among cell proliferation, senescence, and cell death, we explored the effects of IR (2-20 Gy) on the proliferative activity of DPSCs and the molecular pathways involved. Even the highest dose used (20 Gy) did not induce DPSC apoptosis. After irradiation with doses of 6 and 20 Gy, DPSCs accumulated in the G2 phase of the cell cycle. DPSCs responded to IR (20 Gy) with senescence detected as SA-β-galactosidase positivity, beginning on the third day after irradiation. Twenty-four hours after irradiation, p53 and its serine 15 and 392 phosphorylated forms were detected. At this time, p21 (WAF1) was induced. Increases in protein p16 were observed from the third day following irradiation and continued till the end of the examination (Day 13). We conclude that DPSCs respond to IR-induced damage by permanent cell cycle arrest in the G2 phase and by stress-induced premature senescence.
Department of Histology and Embryology Charles University Prague Czech Republic
Department of Medical Biochemistry Charles University Prague Czech Republic
Department of Oncology and Radiotherapy Charles University Prague Czech Republic
Citace poskytuje Crossref.org
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- $a Adult human dental pulp contains stem cells (DPSCs) that are capable of differentiation into osteoblasts, odontoblasts, adipocytes, and neuronal-like cells. Because these cells have potential use in tissue regeneration, herein we characterized the response of DPSC lines to ionizing radiation (IR). These DPSC lines have been developed from the extracted molars of healthy donors. DPSCs were cultivated in a unique media supplemented with epidermal growth factor (EGF) and platelet-derived growth factor (PDGF). Since tissue homeostasis depends on a precise balance among cell proliferation, senescence, and cell death, we explored the effects of IR (2-20 Gy) on the proliferative activity of DPSCs and the molecular pathways involved. Even the highest dose used (20 Gy) did not induce DPSC apoptosis. After irradiation with doses of 6 and 20 Gy, DPSCs accumulated in the G2 phase of the cell cycle. DPSCs responded to IR (20 Gy) with senescence detected as SA-β-galactosidase positivity, beginning on the third day after irradiation. Twenty-four hours after irradiation, p53 and its serine 15 and 392 phosphorylated forms were detected. At this time, p21 (WAF1) was induced. Increases in protein p16 were observed from the third day following irradiation and continued till the end of the examination (Day 13). We conclude that DPSCs respond to IR-induced damage by permanent cell cycle arrest in the G2 phase and by stress-induced premature senescence.
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