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Updated: Jul 14, 2025

Electrophoretic Delivery of γ-aminobutyric Acid GABA into Epileptic Focus Prevents Seizures in Mice
Published on: May 16, 2019
Innovative minimally invasive options to treat drug-resistant epilepsies
L Samalens1, C Courivaud2, J-F Adam3
1Université Grenoble-Alpes, Inserm, U1216, Grenoble Institut Neurosciences, 38000 Grenoble, France; Université Grenoble-Alpes, Inserm, UA7, STROBE, 38000 Grenoble, France.
Abstract:
Despite the regular discovery of new molecules, one-third of epileptic patients are resistant to antiepileptic drugs. Only a few can benefit from resective surgery, the current gold standard. Although effective in 50-70% of cases, this therapy remains risky, costly, and can be associated with long-term cognitive or neurological side effects. In addition, patients are increasingly reluctant to have a craniotomy, emphasizing the need for new less invasive therapies for focal drug-resistant epilepsies. Here, we review different minimally invasive approaches already in use in the clinic or under preclinical development to treat drug-resistant epilepsies. Localized thermolesion of the epileptogenic zone has been developed in the clinic using high-frequency thermo-coagulations or magnetic resonance imaging-guided laser or ultrasounds. Although less invasive, they have not yet significantly improved the outcomes when compared with resective surgery. Radiosurgery techniques have been used in the clinic for the last 20years and have proven efficiency. However, their efficacy is not better than resective surgery, and various side effects have been reported as well as the potential risk of sudden unexpected death associated with epilepsy. Recently, a new strategy of radiosurgery has emerged using synchrotron-generated X-ray microbeams: microbeam radiation therapy (MRT). The low divergence and high-flux of the synchrotron beams and the unique tolerance to MRT by healthy brain tissues, allows a precise targeting of specific brain regions with minimal invasiveness and limited behavioral or functional consequences in animals. Antiepileptic effects over several months have been recorded in animal models, and histological and synaptic tracing analysis suggest a reduction of neuronal connectivity as a mechanism of action. The possibility of transferring this approach to epileptic patients is discussed in this review.
Insights
New minimally invasive therapies are needed for drug-resistant epilepsy. Microbeam radiation therapy (MRT) shows promise, offering targeted treatment with fewer side effects than surgery.
Area of Science:
- Neuroscience
- Medical Physics
- Oncology
Background:
- Epilepsy affects millions, with a significant portion resistant to current antiepileptic drugs.
- Resective surgery, the gold standard, is invasive, costly, and carries risks, necessitating less invasive alternatives.
Purpose of the Study:
- To review existing and emerging minimally invasive therapeutic approaches for focal drug-resistant epilepsies.
- To evaluate the potential of microbeam radiation therapy (MRT) as a novel treatment strategy.
Main Methods:
- Review of clinical and preclinical data on minimally invasive epilepsy treatments.
- Focus on localized thermolesion, radiosurgery, and microbeam radiation therapy (MRT).
- Analysis of MRT's mechanism of action, including neuronal connectivity reduction.
Main Results:
- Current minimally invasive methods like thermolesion and conventional radiosurgery show limited improvement over resective surgery.
- Microbeam radiation therapy (MRT) demonstrates sustained antiepileptic effects in animal models.
- MRT offers precise targeting with minimal invasiveness and high tolerance in healthy brain tissue.
Conclusions:
- Microbeam radiation therapy (MRT) presents a promising, less invasive option for drug-resistant epilepsies.
- Further research and clinical trials are needed to validate MRT's efficacy and safety in human patients.
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