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Updated: Feb 10, 2026

Analysis of Global RNA Synthesis at the Single Cell Level following Hypoxia
Published on: May 13, 2014
Long non-coding RNA GAS5 aggravates hypoxia injury in PC-12 cells via down-regulating miR-124
Xiaoli Hu1, Juan Liu2, Gang Zhao1
1Department of Rehabilitation Medicine, People's Hospital of Rizhao, Rizhao, Shandong, China.
Abstract:
One important feature of cerebral ischemia is hypoxia injury in nerve cells. Growth arrest-specific transcript 5 (GAS5) is widely reported as a tumor suppressor gene; however, the investigations about its role in cerebrovascular disease are relatively rare. This study was aimed to explore the impact of GAS5 on hypoxia response in nervous cells. PC-12 cells were incubated under anoxic condition to induce hypoxia injury. Regulatory effects of GAS5 on miR-124 and miR-124 on ICAM-1 expression were assessed by qRT-PCR and/or Western blot. Targeting effect of miR-124 on ICAM-1 3'-untranslated regions (UTR) was evaluated through dual luciferase activity assay. The potential regulatory mechanism on hypoxia injury in PC-12 cells was assessed by detecting key elements of NF-κB and Notch signaling pathways using Western blot. GAS5 ectopic expression accentuated hypoxia injury in PC-12 cells. miR-124 expression was negatively regulated by GAS5 expression. Cells with overexpressions of GAS5 and miR-124 alleviated hypoxia injury as in compassion with cells only with GAS5 overexpression. ICAM-1 expression was negatively regulated by miR-124 expression. ICAM-1 was a functional target of miR-124. ICAM-1 overexpression aggravated hypoxia injury, but inversely, ICAM-1 silence diminished hypoxia damage. Besides, ICAM-1 expression was negatively related with activation of NF-κB and Notch pathways. GAS5-miR-124-ICAM-1 axis could regulate hypoxia injury in PC-12 cells. GAS5 might aggravate hypoxia injury via down-regulating miR-124, then up-regulating ICAM-1, and further enhancing activations of NF-κB and Notch pathways.
Insights
Growth arrest-specific transcript 5 (GAS5) aggravates hypoxia injury in nerve cells by downregulating miR-124 and upregulating ICAM-1, impacting NF-κB and Notch pathways.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Cerebral ischemia commonly causes hypoxia injury in nerve cells.
- Growth arrest-specific transcript 5 (GAS5) is a known tumor suppressor, but its role in cerebrovascular disease is under-explored.
Purpose of the Study:
- To investigate the impact of GAS5 on the cellular response to hypoxia in nerve cells.
- To elucidate the molecular mechanisms involving GAS5, miR-124, and ICAM-1 in hypoxia-induced nerve cell injury.
Main Methods:
- PC-12 cells were subjected to anoxic conditions to simulate hypoxia.
- Quantitative real-time PCR (qRT-PCR) and Western blot were used to assess gene and protein expression.
- Dual luciferase activity assay evaluated the targeting interaction between miR-124 and ICAM-1 3'-UTR.
- NF-κB and Notch signaling pathway activation was analyzed via Western blot.
Main Results:
- GAS5 overexpression exacerbated hypoxia injury in PC-12 cells.
- GAS5 negatively regulated miR-124 expression, while miR-124 negatively regulated ICAM-1 expression.
- Overexpression of both GAS5 and miR-124 alleviated hypoxia injury compared to GAS5 overexpression alone.
- ICAM-1 was identified as a direct target of miR-124; ICAM-1 overexpression worsened hypoxia injury, whereas its silence diminished damage.
- ICAM-1 expression inversely correlated with the activation of NF-κB and Notch pathways.
Conclusions:
- The GAS5-miR-124-ICAM-1 axis plays a significant role in regulating hypoxia injury in nerve cells.
- GAS5 may aggravate hypoxia injury by downregulating miR-124, leading to increased ICAM-1 expression and subsequent activation of NF-κB and Notch signaling pathways.
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