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Published on: July 16, 2015
Targeting miR-499-5p for neuroprotection in spinal cord injury: Implications for inflammation and ROS-induced
Shuo Yang1, Yunzhi Guan1, Qifeng Yu1
1Department of Orthopedics, Huashan Hospital, Fudan University, Shanghai City, China.
Abstract:
Spinal cord injury (SCI) leads to a cascade of secondary damage responses, including inflammation, apoptosis, and oxidative stress. These processes are crucial in determining the extent of tissue damage and recovery. It is well-established that various molecular mechanisms, such as the regulation of gene expression by non-coding RNAs, contribute significantly to the pathophysiology of SCI. However, the processes behind miRNA-regulated secondary damage are not entirely understood. The SCI mouse model and the cellular model were developed to investigate the effects of miRNAs during SCI. The GEO miRNA expression profile (GSE158195) was retrieved, and the differentially expressed miRNAs were examined using bioinformatics tools. Quantitative real-time polymerase chain reaction (qRT-PCR) was employed to assess the expression levels of miRNA and programmed cell death protein 4 (PDCD4). The Basso, Beattie, and Bresnahan (BBB) scoring system was used to assess neurological function. The concentrations of inflammatory cytokines were quantified via ELISA, whereas the production of reactive oxygen species (ROS) was assessed utilizing commercial kits. Our findings revealed a significant down-regulation of miR-499-5p in the spinal cord tissue of SCI mice. According to the functional study, agomir-miR-499 treatment significantly improved locomotor recovery, reduced tissue damage and edema, and suppressed neuronal death. Agomir-miR-499 also reduced SCI-induced ROS and inflammatory responses in mice. In SCI mice and cell models, miR-499 was discovered to target programmed cell death 4 and regulated its expression at protein and mRNA levels. Furthermore, increasing PDCD4 reversed agomir-miR-499's suppressive effects on the inflammatory response, ROS, and cell death. Agomir-miR-499, meanwhile, has the ability to suppress PDCD4 expression and stimulate the PI3K/AKT signaling pathway in SCI mice. Overall, our research shows that miR-499, a potential therapeutic target for SCI, reduces ROS-induced neuronal death and inflammation through PI3K/Akt signaling in SCI mice.
Insights
MicroRNA-499-5p (miR-499-5p) shows promise for treating spinal cord injury (SCI). Restoring miR-499-5p levels reduced inflammation and neuronal death, improving recovery in SCI mouse models.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Spinal cord injury (SCI) triggers secondary damage, including inflammation, apoptosis, and oxidative stress.
- Non-coding RNAs, particularly microRNAs (miRNAs), play a role in SCI pathophysiology, but their specific mechanisms are not fully understood.
- Understanding miRNA-mediated damage is crucial for developing effective SCI therapies.
Purpose of the Study:
- To investigate the role of miRNAs in secondary damage following spinal cord injury.
- To identify specific miRNAs involved in SCI pathophysiology and their therapeutic potential.
- To elucidate the molecular mechanisms by which miR-499-5p influences SCI outcomes.
Main Methods:
- Utilized a mouse model of spinal cord injury and a cellular model.
- Analyzed miRNA expression profiles (GEO: GSE158195) and identified differentially expressed miRNAs using bioinformatics.
- Assessed miRNA and programmed cell death protein 4 (PDCD4) expression via qRT-PCR.
- Evaluated neurological function using the Basso, Beattie, and Bresnahan (BBB) score.
- Quantified inflammatory cytokines (ELISA) and reactive oxygen species (ROS) production.
- Investigated the regulatory relationship between miR-499-5p and PDCD4, and its effect on the PI3K/AKT pathway.
Main Results:
- Down-regulation of miR-499-5p was observed in spinal cord tissue after SCI.
- Agomir-miR-499 treatment significantly improved locomotor recovery, reduced tissue damage, edema, and neuronal death.
- miR-499-5p suppressed SCI-induced ROS and inflammatory responses.
- miR-499-5p targets PDCD4, regulating its expression at both mRNA and protein levels.
- Overexpression of PDCD4 reversed the protective effects of agomir-miR-499.
- Agomir-miR-499 inhibited PDCD4 expression and activated the PI3K/AKT signaling pathway.
Conclusions:
- miR-499-5p is significantly down-regulated in spinal cord injury.
- Restoration of miR-499-5p levels offers a potential therapeutic strategy for SCI by reducing inflammation and oxidative stress.
- miR-499-5p exerts its neuroprotective effects by targeting PDCD4 and modulating the PI3K/AKT signaling pathway.
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