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Redox regulation of the G1 to S phase transition in the mouse embryo fibroblast cell cycle.
Menon, Sarita G; Sarsour, Ehab H; Spitz, Douglas R; Higashikubo, Ryuji; Sturm, Mary; Zhang, Hannah; Goswami, Prabhat C.
Afiliação
  • Menon SG; Free Radical and Radiation Biology Program, Department of Radiation Oncology, University of Iowa, Iowa City 52242, USA.
Cancer Res ; 63(9): 2109-17, 2003 May 01.
Article em En | MEDLINE | ID: mdl-12727827
ABSTRACT
The hypothesis that intracellular oxidation/reduction (redox) reactions regulate the G(0)-G(1) to S-phase transition in the mouse embryonic fibroblast cell cycle was investigated. Intracellular redox state was modulated with a thiol-antioxidant, N-acetyl-L-cysteine (NAC), and cell cycle progression was measured using BrdUrd pulse-chase and flow cytometric analysis. Treatment with NAC for 12 h resulted in an approximately 6-fold increase in intracellular low-molecular-weight thiols and a decrease in the MFI of an oxidation-sensitive probe, dihydrofluorescein diacetate, indicating a shift in the intracellular redox state toward a more reducing environment. NAC-induced alterations in redox state caused selective delays in progression from G(0)-G(1) to S phase in serum-starved cells that were serum stimulated to reenter the cell cycle as well as to inhibit progression from G(1) to S phase in asynchronous cultures with no significant alterations in S phase, and G(2)+M transits. NAC treatment also showed a 70% decrease in cyclin D1 protein levels and a 3-4-fold increase in p27 protein levels, which correlated with decreased retinoblastoma protein phosphorylation. Cells released from the NAC treatment showed a transient increase in dihydrofluorescein fluorescence and oxidized glutathione content between 0 and 8 h after release, indicating a shift in intracellular redox state to a more oxidizing environment. These changes in redox state were followed by an increase in cyclin D1, a decrease in p27, retinoblastoma protein hyperphosphorylation and subsequent entry into S phase by 8-12 h after the removal of NAC. These results support the hypothesis that a redox cycle within the mammalian cell cycle might provide a mechanistic link between the metabolic processes early in G(1) and the activation of G(1)-regulatory proteins in preparation for the entry of cells into S phase.
Assuntos
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Base de dados: MEDLINE Assunto principal: Fase G1 / Fase S / Fibroblastos Limite: Animals Idioma: En Ano de publicação: 2003 Tipo de documento: Article
Buscar no Google
Base de dados: MEDLINE Assunto principal: Fase G1 / Fase S / Fibroblastos Limite: Animals Idioma: En Ano de publicação: 2003 Tipo de documento: Article