Related Experiment Video
Updated: May 11, 2026

Electroconvulsive Seizures in Rats and Fractionation of Their Hippocampi to Examine Seizure-induced Changes in Postsynaptic Density Proteins
Published on: August 15, 2017
The methylation hypothesis of pharmacoresistance in epilepsy
Katja Kobow1, Assam El-Osta, Ingmar Blümcke
1Department of Neuropathology, University Hospital Erlangen, Erlangen, Germany.
Abstract:
Seizures cannot be medically controlled in approximately 40% of people with epilepsy. Although we are beginning to understand how to better treat certain seizure types, we still do not know the regulatory events that determine antiepileptic drug resistance. Proposed pathoetiologic mechanisms include altered expression of drug targets (i.e., receptor or ion channel modifications), endothelial drug transporter activation (i.e., increasing drug clearance), or intrinsic severity factors. The latter hypothesis results from an often confirmed clinical observation, that seizure severity is a reliable predictor for the development of pharmacoresistance (PR) in epilepsy. Herein, we propose, that genome modifications that do not involve changes to the DNA sequence per se (i.e., epigenetic changes) could confer PR in patients with epilepsy. Seizures cause excessive neuronal membrane depolarization, which can influence the cellular nucleus; we thus hypothesize that seizures can mediate epigenetic modifications that result in persistent genomic methylation, histone density, and posttranslational modifications, as well as noncoding RNA-based changes. Although experimental evidence is lacking in epilepsy, such mechanisms are well characterized in cancer, either as a result of anticancer drugs themselves or cancer-related intrinsic signals (i.e., noncoding RNAs). We suggest that similar mechanisms also play a role in PR epilepsies. Addressing such epigenetic mechanisms may be a successful strategy to increase the brain's sensitivity to antiepileptic drugs and may even act as disease-modifying treatment.
Insights
Epigenetic changes, not DNA mutations, may cause drug-resistant epilepsy. Understanding these modifications could lead to new treatments for uncontrolled seizures.
Area of Science:
- Neuroscience
- Genetics
- Pharmacology
Background:
- Epilepsy affects millions, with 40% experiencing drug-resistant seizures.
- Current treatments for epilepsy are insufficient for a significant patient population.
- Mechanisms of antiepileptic drug resistance are not fully understood.
Purpose of the Study:
- To propose epigenetic modifications as a cause of antiepileptic drug resistance in epilepsy.
- To explore how seizures might induce persistent epigenetic changes.
- To suggest targeting epigenetic mechanisms for novel epilepsy therapies.
Main Methods:
- Review of existing literature on epilepsy, drug resistance, and epigenetic mechanisms.
- Hypothesizing the link between seizure activity and epigenetic alterations.
- Drawing parallels with epigenetic changes observed in cancer research.
Main Results:
- Epigenetic modifications (e.g., DNA methylation, histone changes, noncoding RNAs) are proposed as a novel mechanism for drug resistance.
- Seizure-induced neuronal depolarization may trigger these epigenetic changes.
- Similar epigenetic mechanisms are established in cancer treatment resistance.
Conclusions:
- Epigenetic changes represent a potential key to understanding and overcoming antiepileptic drug resistance.
- Targeting epigenetic pathways could enhance antiepileptic drug efficacy.
- This approach may offer disease-modifying strategies for epilepsy.
More Related Videos
07:01Electrophoretic Delivery of γ-aminobutyric Acid (GABA) into Epileptic Focus Prevents Seizures in Mice
Published on: May 16, 2019
08:04Identification and Classification of Position-specific GABAA Receptor Subunit Missense Variants for Their Role In Hippocampal Pyramidal Neurons
Published on: June 6, 2025
Related Concept Videos
Epilepsy and Seizures: Overview
Various factors can trigger epilepsy, including genetic factors, brain damage, metabolic causes, and unknown etiology. Diagnosis of epilepsy involves electroencephalography (EEG), which...
Antiepileptic Drugs: Glutamate Antagonists
Phase II Reactions: Methylation Reactions
The mechanism of methylation unfolds in two stages. The first stage sees a methyltransferase enzyme facilitating the transfer of a methyl group from S-adenosylmethionine (SAM) to the substrate, forming S-adenosylhomocysteine (SAH). The second stage involves further metabolism of SAH into homocysteine, which can be recycled...
Antiepileptic Drugs: GABAergic Pathway Potentiators
The key GABA pathway potentiators used in epilepsy management are as follows.
Benzodiazepines are a well-known class of drugs used for their...
Antiepileptic Drugs: Modulators of Neurotransmitter Release Mediated by SV2A Protein
SV2A is a transmembrane glycoprotein located predominantly in the brain, modulating the release of neurotransmitters for neuronal communication. Both levetiracetam and brivaracetam exhibit a high affinity for...
Pharmacogenetic Phenotypes: Alterations in Pharmacokinetics, Drug Targets and Biologic Milieu