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Updated: Sep 11, 2025

A Multimodal Imaging- and Stimulation-based Method of Evaluating Connectivity-related Brain Excitability in Patients with Epilepsy
Published on: November 13, 2016
How Soon is Soon Enough? Consideration of Timing and Disease Etiology for microRNAs in Epilepsy
Christina Gross1,2,3,4, Amanda M McGann1,3,4, Durgesh Tiwari1,2,3
1Division of Neurology, Cincinnati Children's Hospital Medical Center, OH, USA.
Abstract:
Recurrent spontaneous seizures in epilepsy cause a myriad of structural, circuit-related, and molecular modifications in the brain. The multifaceted molecular changes suggest that wide-reaching epigenetic mechanisms are altered in epilepsy. Indeed, it has been known for more than 15 years that a class of epigenetic regulators called microRNAs-short, noncoding RNAs that control the translation and stability of sometimes hundreds of mRNA targets-are dysregulated after seizures and in epilepsy in human patients and rodent models. Epilepsy-associated microRNAs regulate many different molecular contributors to epilepsy, including ion channels, neuroinflammatory modulators, and proteins critical for neuronal and synaptic structure. In recent years, it has become clear that microRNAs are important at every phase of epilepsy-from the onset of the first seizure to the latent phase and chronic epilepsy. In line with these findings, manipulation of a subset of microRNAs has been shown to alter seizure susceptibility, reduce epileptogenesis, and/or decrease the frequency of spontaneous recurrent seizures in animal models of epilepsy. These studies illustrate the promise of microRNAs as future therapeutic targets in epilepsy and show that specific microRNAs play different regulatory roles depending on the phase and type of epilepsy. In this concise review, we summarize recent findings of microRNAs in epilepsy, emphasizing novel approaches that advance the field. We discuss the insight on underlying mechanisms and disease etiology that can be drawn from these studies and highlight the importance of timing when developing microRNA-based therapeutic strategies.
Insights
Epilepsy involves brain changes regulated by microRNAs (miRNAs), which are small RNA molecules. Dysregulated miRNAs impact epilepsy progression and offer potential therapeutic targets for seizure control.
Area of Science:
- Neuroscience
- Epigenetics
- Molecular Biology
Background:
- Recurrent seizures in epilepsy induce significant brain alterations.
- Epigenetic mechanisms, particularly microRNAs (miRNAs), are implicated in epilepsy pathophysiology.
- miRNAs are known to be dysregulated in epilepsy patients and animal models.
Purpose of the Study:
- To review recent findings on microRNAs in epilepsy.
- To highlight novel approaches and insights into epilepsy mechanisms and etiology.
- To emphasize the therapeutic potential of miRNAs in epilepsy treatment.
Main Methods:
- Review of recent scientific literature on microRNAs and epilepsy.
- Analysis of miRNA dysregulation in human patients and rodent models.
- Examination of the role of miRNAs in different epilepsy phases and types.
Main Results:
- MicroRNAs are dysregulated in epilepsy and influence key molecular pathways.
- miRNAs play critical roles throughout all phases of epilepsy development.
- Modulating specific miRNAs can alter seizure activity and epileptogenesis in animal models.
Conclusions:
- MicroRNAs are integral to epilepsy pathogenesis and progression.
- Targeting specific microRNAs presents a promising therapeutic strategy for epilepsy.
- The timing of microRNA-based interventions is crucial for effective epilepsy treatment.

