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MicroRNAs in the pathophysiology and treatment of status epilepticus
1Department of Physiology and Medical Physics, Royal College of Surgeons in Ireland Dublin, Ireland.
Abstract:
MicroRNA (miRNA) are an important class of non-coding RNA which function as post-transcriptional regulators of gene expression in cells, repressing and fine-tuning protein output. Prolonged seizures (status epilepticus, SE) can cause damage to brain regions such as the hippocampus and result in cognitive deficits and the pathogenesis of epilepsy. Emerging work in animal models has found that SE produces select changes to miRNAs within the brain. Similar changes in over 20 miRNAs have been found in the hippocampus in two or more studies, suggesting conserved miRNA responses after SE. The miRNA changes that accompany SE are predicted to impact levels of multiple proteins involved in neuronal morphology and function, gliosis, neuroinflammation, and cell death. miRNA expression also displays select changes in the blood after SE, supporting blood genomic profiling as potential molecular biomarkers of seizure-damage or epileptogenesis. Intracerebral delivery of chemically modified antisense oligonucleotides (antagomirs) has been shown to have potent, specific and long-lasting effects on brain levels of miRNAs. Targeting miR-34a, miR-132 and miR-184 has been reported to alter seizure-induced neuronal death, whereas targeting miR-134 was neuroprotective, reduced seizure severity during status epilepticus and reduced the later emergence of recurrent spontaneous seizures. These studies support roles for miRNAs in the pathophysiology of status epilepticus and miRNAs may represent novel therapeutic targets to reduce brain injury and epileptogenesis.
Insights
MicroRNAs (miRNAs) change in the brain after prolonged seizures (status epilepticus). Targeting specific miRNAs may reduce brain injury and prevent epilepsy development.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- MicroRNAs (miRNAs) are crucial regulators of gene expression.
- Prolonged seizures (status epilepticus, SE) can lead to brain damage, cognitive deficits, and epilepsy.
- SE induces specific changes in brain miRNAs, impacting neuronal function and survival.
Purpose of the Study:
- To investigate the role of miRNAs in the pathophysiology of status epilepticus.
- To explore miRNAs as potential biomarkers for seizure-induced brain injury.
- To evaluate miRNAs as therapeutic targets for reducing epileptogenesis.
Main Methods:
- Analysis of miRNA expression changes in the brain and blood following SE in animal models.
- Bioinformatic prediction of protein targets affected by altered miRNA levels.
- Assessment of therapeutic interventions using antisense oligonucleotides (antagomirs) targeting specific miRNAs.
Main Results:
- SE causes conserved changes in over 20 miRNAs in the hippocampus.
- Predicted targets of these miRNAs are involved in neuronal processes, inflammation, and cell death.
- Targeting miR-134 demonstrated neuroprotection and reduced seizure severity and recurrence.
- miRNA expression changes were also observed in blood, suggesting potential biomarkers.
Conclusions:
- miRNAs play a significant role in the brain's response to status epilepticus.
- Blood miRNA profiling may serve as a biomarker for seizure-related damage.
- Targeting specific miRNAs offers a promising therapeutic strategy to mitigate brain injury and prevent epilepsy.
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