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Updated: May 15, 2026

Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
ROS production is essential for the apoptotic function of E2F1 in pheochromocytoma and neuroblastoma cell lines
Lilia Espada1, Nathalie Meo-Evoli, Patricia Sancho
1Departament de Bioquímica i Biologia Molecular, Facultat de Farmàcia. Universitat de Barcelona, Barcelona, Catalunya, Spain.
Abstract:
In this study we demonstrate that accumulation of reactive oxygen species (ROS) is essential for E2F1 mediated apoptosis in ER-E2F1 PC12 pheochromocytoma, and SH-SY5Y and SK-N-JD neuroblastoma stable cell lines. In these cells, the ER-E2F1 fusion protein is expressed in the cytosol; the addition of 4-hydroxytamoxifen (OHT) induces its translocation to the nucleus and activation of E2F1target genes. Previously we demonstrated that, in ER-E2F1 PC12 cells, OHT treatment induced apoptosis through activation of caspase-3. Here we show that caspase-8 activity did not change upon treatment with OHT. Moreover, over-expression of Bcl-xL arrested OHT-induced apoptosis; by contrast, over-expression of c-FLIP, did not have any effect on OHT-induced apoptosis. OHT addition induces BimL expression, its translocation to mitochondria and activation of Bax, which is paralleled by diminished mitochondrial enrichment of Bcl-xL. Treatment with a Bax-inhibitory peptide reduced OHT-induced apoptosis. These results point out the essential role of mitochondria on the apoptotic process driven by E2F1. ROS accumulation followed E2F1 induction and treatment with the antioxidant N-acetylcysteine, inhibited E2F1-induced Bax translocation to mitochondria and subsequent apoptosis. The role of ROS in mediating OHT-induced apoptosis was also studied in two neuroblastoma cell lines, SH-SY5Y and SK-N-JD. In SH-SY5Y cells, activation of E2F1 by the addition of OHT induced ROS production and apoptosis, whereas over-expression of E2F1 in SK-N-JD cells failed to induce either response. Transcriptional profiling revealed that many of the genes responsible for scavenging ROS were down-regulated following E2F1-induction in SH-SY5Y, but not in SK-N-JD cells. Finally, inhibition of GSK3β blocked ROS production, Bax activation and the down regulation of ROS scavenging genes. These findings provide an explanation for the apparent contradictory role of E2F1 as an apoptotic agent versus a cell cycle activator.
Insights
Reactive oxygen species (ROS) accumulation is crucial for E2F1-induced apoptosis in neuroblastoma cells. Inhibiting ROS production prevents apoptosis, clarifying E2F1
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- E2F1 is a transcription factor known to regulate cell cycle progression and apoptosis.
- Previous studies indicated E2F1-induced apoptosis involves caspase-3 activation.
- The role of reactive oxygen species (ROS) in E2F1-mediated apoptosis was not fully understood.
Purpose of the Study:
- To elucidate the role of ROS in E2F1-mediated apoptosis.
- To investigate the mitochondrial pathway involvement in E2F1-induced apoptosis.
- To explore differential responses to E2F1 activation in neuroblastoma cell lines.
Main Methods:
- Utilized ER-E2F1 fusion protein system in PC12, SH-SY5Y, and SK-N-JD cell lines.
- Administered 4-hydroxytamoxifen (OHT) to induce nuclear translocation and gene activation.
- Assessed apoptosis, caspase activity, mitochondrial protein localization (Bax, Bcl-xL), ROS levels, and gene expression.
Main Results:
- ROS accumulation is essential for E2F1-mediated apoptosis, confirmed by N-acetylcysteine inhibition.
- E2F1 induces apoptosis via the mitochondrial pathway, involving BimL, Bax activation, and Bcl-xL downregulation.
- SH-SY5Y cells showed OHT-induced ROS production and apoptosis with downregulated ROS-scavenging genes, unlike SK-N-JD cells.
Conclusions:
- ROS accumulation is a critical mediator of E2F1-induced apoptosis through the mitochondrial pathway.
- Differential regulation of ROS-scavenging genes contributes to varied cellular responses to E2F1.
- Findings reconcile E2F1's dual role as an apoptotic agent and cell cycle activator.
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