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Describing a Transcription Factor Dependent Regulation of the MicroRNA Transcriptome
Published on: June 15, 2016
The pro-death role of Cited2 in stroke is regulated by E2F1/4 transcription factors
Tianwen Huang1, Yasmilde Rodríguez González2, Dianbo Qu3
1University of Ottawa Brain and Mind Research Institute, Department of Cellular and Molecular Medicine, University of Ottawa, Ottawa, Ontario K1H 8M5, Canada; Department of Neurology, and Fujian Key Laboratory of Molecular Neurology, Fujian Medical University Union Hospital, Fuzhou, 350001 Fujian, China.
Abstract:
We previously reported that the cell cycle-related cyclin-dependent kinase 4-retinoblastoma (RB) transcriptional corepressor pathway is essential for stroke-induced cell death both in vitro and in vivo However, how this signaling pathway induces cell death is unclear. Previously, we found that the cyclin-dependent kinase 4 pathway activates the pro-apoptotic transcriptional co-regulator Cited2 in vitro after DNA damage. In the present study, we report that Cited2 protein expression is also dramatically increased following stroke/ischemic insult. Critically, utilizing conditional knockout mice, we show that Cited2 is required for neuronal cell death, both in culture and in mice after ischemic insult. Importantly, determining the mechanism by which Cited2 levels are regulated, we found that E2F transcription factor (E2F) family members participate in Cited2 regulation. First, E2F1 expression induced Cited2 transcription, and E2F1 deficiency reduced Cited2 expression. Moreover, determining the potential E2F-binding regions on the Cited2 gene regulatory sequence by ChIP analysis, we provide evidence that E2F1/4 proteins bind to this DNA region. A luciferase reporter assay to probe the functional outcomes of this interaction revealed that E2F1 activates and E2F4 inhibits Cited2 transcription. Moreover, we identified the functional binding motif for E2F1 in the Cited2 gene promoter by demonstrating that mutation of this site dramatically reduces E2F1-mediated Cited2 transcription. Finally, E2F1 and E2F4 regulated Cited2 expression in neurons after stroke-related insults. Taken together, these results indicate that the E2F-Cited2 regulatory pathway is critically involved in stroke injury.
Insights
The E2F-Cited2 pathway regulates neuronal cell death after stroke. This study identifies E2F transcription factors and Cited2 as key players in stroke-induced neuronal death, offering new therapeutic targets.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- The cyclin-dependent kinase 4-retinoblastoma pathway is crucial for stroke-induced cell death.
- The exact mechanism by which this pathway induces neuronal death remains unclear.
- Previous research indicated cyclin-dependent kinase 4 pathway activation of Cited2 after DNA damage.
Purpose of the Study:
- To elucidate the mechanism of stroke-induced neuronal cell death.
- To investigate the role of Cited2 in stroke-induced neuronal death.
- To identify the regulatory factors controlling Cited2 expression in the context of stroke.
Main Methods:
- Utilized conditional knockout mice to assess Cited2's role in neuronal cell death.
- Employed chromatin immunoprecipitation (ChIP) analysis to identify E2F binding sites on the Cited2 gene.
- Conducted luciferase reporter assays to determine the functional impact of E2F binding on Cited2 transcription.
- Analyzed E2F and Cited2 expression in neurons following stroke-related insults.
Main Results:
- Cited2 protein expression significantly increases after ischemic insult.
- Cited2 is essential for neuronal cell death in vitro and in vivo after ischemic insult.
- E2F transcription factors (E2F1 and E2F4) directly regulate Cited2 transcription.
- E2F1 activates and E2F4 inhibits Cited2 transcription, with specific binding motifs identified.
Conclusions:
- The E2F-Cited2 regulatory pathway is critically involved in stroke-induced neuronal injury.
- Cited2 acts as a key mediator of cell death downstream of the cyclin-dependent kinase 4 pathway in stroke.
- Understanding this pathway provides insights into the molecular mechanisms of stroke and potential therapeutic interventions.
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