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Describing a Transcription Factor Dependent Regulation of the MicroRNA Transcriptome
Published on: June 15, 2016
The POU-Domain Transcription Factor Oct-6/POU3F1 as a Regulator of Cellular Response to Genotoxic Stress
Cinzia Fionda1, Danilo Di Bona2, Andrea Kosta3
1Department of Molecular Medicine, Sapienza University of Rome, 00161 Rome, Italy. cinzia.fionda@uniroma1.it.
Abstract:
DNA damage and the generation of reactive oxygen species (ROS) are key mechanisms of apoptotic cell death by commonly used genotoxic drugs. However, the complex cellular response to these pharmacologic agents remains yet to be fully characterized. Several studies have described the role of transcription factor octamer-1 (Oct-1)/Pit-1, Oct-1/2, and Unc-86 shared domain class 2 homeobox 1 (POU2F1) in the regulation of the genes important for cellular response to genotoxic stress. Evaluating the possible involvement of other POU family transcription factors in these pathways, we revealed the inducible expression of Oct-6/POU3F1, a regulator of neural morphogenesis and epidermal differentiation, in cancer cells by genotoxic drugs. The induction of Oct-6 occurs at the transcriptional level via reactive oxygen species (ROS) and ataxia telangiectasia mutated- and Rad3-related (ATR)-dependent mechanisms, but in a p53 independent manner. Moreover, we provide evidence that Oct-6 may play a role in the regulation of cellular response to DNA damaging agents. Indeed, by using the shRNA approach, we demonstrate that in doxorubicin-treated H460 non-small-cell lung carcinoma (NSCLC) cells, Oct-6 depletion leads to a reduced G2-cell cycle arrest and senescence, but also to increased levels of intracellular ROS and DNA damage. In addition, we could identify p21 and catalase as Oct-6 target genes possibly mediating these effects. These results demonstrate that Oct-6 is expressed in cancer cells after genotoxic stress, and suggests its possible role in the control of ROS, DNA damage response (DDR), and senescence.
Insights
Genotoxic drugs induce Oct-6 expression in cancer cells via reactive oxygen species (ROS) and ATR pathways. Oct-6 depletion increases DNA damage and ROS, suggesting its role in cellular response to genotoxic stress.
Area of Science:
- Molecular Biology
- Cancer Research
- Cellular Biology
Background:
- Genotoxic drugs induce DNA damage and reactive oxygen species (ROS), leading to cell death.
- The transcription factor Oct-1 is known to regulate responses to genotoxic stress.
- The role of other POU family transcription factors in these pathways is less understood.
Purpose of the Study:
- To investigate the involvement of other POU family transcription factors in cellular responses to genotoxic stress.
- To characterize the role of Oct-6 (POU3F1) in cancer cells treated with genotoxic drugs.
Main Methods:
- Inducible expression analysis of Oct-6 in cancer cells.
- Investigated transcriptional regulation via ROS and ATR-dependent mechanisms.
- Utilized shRNA to deplete Oct-6 in doxorubicin-treated non-small-cell lung carcinoma (NSCLC) cells.
- Identified Oct-6 target genes using molecular assays.
Main Results:
- Genotoxic drugs induce Oct-6 expression transcriptionally, dependent on ROS and ATR, but independent of p53.
- Oct-6 depletion in NSCLC cells reduced G2-cell cycle arrest and senescence.
- Oct-6 depletion led to increased intracellular ROS and DNA damage.
- p21 and catalase were identified as potential Oct-6 target genes.
Conclusions:
- Oct-6 is expressed in cancer cells following genotoxic stress.
- Oct-6 plays a role in regulating cellular responses to DNA damaging agents.
- Oct-6 may be involved in the control of ROS, DNA damage response (DDR), and senescence.
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