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Published on: June 9, 2017
Activation of the transcription factor Oct-1 in response to DNA damage
1Department of Radiation Oncology, Pittsburgh Cancer Institute, University of Pittsburgh School of Medicine, Pennsylvania 15213, USA.
Abstract:
Mammalian cells exhibit complex cellular responses to genotoxic stress, including cell cycle checkpoint, DNA repair, and apoptosis. Inactivation of these important biological events will result in genomic instability and cell transformation. It has been demonstrated that gene activation is a critical initial step during the cellular response to DNA damage. A number of investigations have shown that transcription factors are involved in the regulation of stress-inducible genes. These transcription factors include p53, c-Myc, and AP-1 (c-fos and c-jun). However, the role for the octamer-binding transcription factor Oct-1 in the DNA damage-activated response is unknown. In this report, we have presented the novel observation that the transcription factor Oct-1 is induced after cells are exposed to multiple DNA-damaging agents and therapeutic agents, including UV radiation, methylmethane sulfonate, ionizing radiation, etoposide, cisplatin, and camptothecin. The induction of the Oct-1 protein is mediated through a posttranscriptional mechanism and does not require the normal cellular function of the tumor suppressor p53, indicating that the Oct-1 protein, as a transcription factor, may play a role in p53-independent gene activation. In addition to increased protein level, the activity of Oct-1 DNA binding to its specific consensus sequence is also enhanced by DNA damage. Therefore, these results have implicated that the transcription factor Oct-1 might participate in cellular response to DNA damage, particularly in p53-independent gene activation.
Insights
The transcription factor Oct-1 is activated by DNA damage through a posttranscriptional mechanism. This finding suggests Oct-1 plays a role in cellular responses to genotoxic stress, particularly in p53-independent gene activation.
Area of Science:
- Molecular Biology
- Cellular Biology
- Genetics
Background:
- Mammalian cells have complex responses to genotoxic stress, including DNA repair and apoptosis.
- Gene activation is crucial for cellular responses to DNA damage.
- Transcription factors like p53 regulate stress-inducible genes, but Oct-1's role is unknown.
Purpose of the Study:
- To investigate the role of the octamer-binding transcription factor Oct-1 in the DNA damage-activated response.
- To determine if Oct-1 is involved in cellular responses to various DNA-damaging agents.
Main Methods:
- Exposing mammalian cells to multiple DNA-damaging agents (UV, MMS, IR, etoposide, cisplatin, camptothecin).
- Analyzing Oct-1 protein induction and DNA binding activity.
- Assessing Oct-1's function independently of the tumor suppressor p53.
Main Results:
- Oct-1 protein levels are induced following exposure to various DNA-damaging agents.
- Oct-1 induction occurs via a posttranscriptional mechanism and is independent of functional p53.
- DNA damage enhances Oct-1 DNA binding activity to its consensus sequence.
Conclusions:
- The transcription factor Oct-1 is activated by DNA damage.
- Oct-1 may participate in the cellular response to genotoxic stress.
- Oct-1 is implicated in p53-independent gene activation pathways.
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