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Updated: May 24, 2026

Lipidomics and Transcriptomics in Neurological Diseases
Published on: March 18, 2022
Targeting oxidative stress component in the therapeutics of epilepsy
Faizul Azam1, M V V Prasad, Neelaveni Thangavel
1Faculty of Pharmacy, NIMS Institute of Pharmacy, NIMS University, Jaipur-303121, Rajasthan, India. azamfaizul@yahoo.co.in
Abstract:
The role of free radical-mediated reactions in human neuropathology continues to attract significant interest. Oxidative injury produced by free radicals may play a role in the initiation and progression of epilepsy and, therapies aimed at reducing oxidative stress may ameliorate tissue damage and favorably alter the clinical course. The prevalence of epilepsy increases with age, and mitochondrial oxidative stress is a leading mechanism of aging and age-related degenerative disease, signifying a further involvement of mitochondrial dysfunction in seizure generation. Oxidative stress occurs when the generation of reactive oxygen species in a system exceeds the body's ability to neutralize and eliminate them, thus creating an imbalance or over abundance of free radicals. Therefore, it is imperative to maintain oxidative balance and control in the brain, and this is tightly regulated by antioxidants. In the last two decades, there has been an explosive interest in the role of antioxidants or neuroprotectants in clinical as well as experimental models of epilepsy. In this regard, the present review is intended to discuss the current state of knowledge pertaining to neuroprotection in epileptic conditions by employing diverse chemical agents including conventional as well as novel anti-epileptic drugs, and to highlight the efficacy of distinct neuroprotective strategies for preventing or treating epilepsy.
Insights
Oxidative stress from free radicals contributes to epilepsy. Antioxidants and neuroprotective therapies show promise in managing this condition and reducing brain damage.
Area of Science:
- Neurology
- Biochemistry
- Pathology
Background:
- Free radical-mediated reactions are implicated in neuropathology, particularly epilepsy.
- Oxidative stress, an imbalance of reactive oxygen species, contributes to aging and neurodegenerative diseases.
- Mitochondrial dysfunction is increasingly recognized in seizure generation and age-related epilepsy.
Purpose of the Study:
- To review current knowledge on neuroprotection in epilepsy.
- To discuss the role of antioxidants and neuroprotectants in managing epilepsy.
- To highlight the efficacy of various neuroprotective strategies.
Main Methods:
- Review of existing literature on neuroprotection and epilepsy.
- Analysis of studies employing chemical agents, including anti-epileptic drugs.
- Examination of experimental and clinical models of epilepsy.
Main Results:
- Oxidative injury from free radicals may initiate and progress epilepsy.
- Therapies targeting oxidative stress can potentially reduce tissue damage and improve clinical outcomes.
- Antioxidants play a crucial role in maintaining oxidative balance in the brain.
Conclusions:
- Neuroprotection strategies are vital for preventing and treating epilepsy.
- Diverse chemical agents, including novel anti-epileptic drugs, offer therapeutic potential.
- Further research into antioxidants and neuroprotective agents is warranted for epilepsy management.
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