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Targeting oxidative stress improves disease outcomes in a rat model of acquired epilepsy
Alberto Pauletti1, Gaetano Terrone1, Tawfeeq Shekh-Ahmad2
11 Department of Neuroscience, IRCCS-Istituto di Ricerche Farmacologiche Mario Negri, Milan, Italy.
Abstract:
Epilepsy therapy is based on antiseizure drugs that treat the symptom, seizures, rather than the disease and are ineffective in up to 30% of patients. There are no treatments for modifying the disease-preventing seizure onset, reducing severity or improving prognosis. Among the potential molecular targets for attaining these unmet therapeutic needs, we focused on oxidative stress since it is a pathophysiological process commonly occurring in experimental epileptogenesis and observed in human epilepsy. Using a rat model of acquired epilepsy induced by electrical status epilepticus, we show that oxidative stress occurs in both neurons and astrocytes during epileptogenesis, as assessed by measuring biochemical and histological markers. This evidence was validated in the hippocampus of humans who died following status epilepticus. Oxidative stress was reduced in animals undergoing epileptogenesis by a transient treatment with N-acetylcysteine and sulforaphane, which act to increase glutathione levels through complementary mechanisms. These antioxidant drugs are already used in humans for other therapeutic indications. This drug combination transiently administered for 2 weeks during epileptogenesis inhibited oxidative stress more efficiently than either drug alone. The drug combination significantly delayed the onset of epilepsy, blocked disease progression between 2 and 5 months post-status epilepticus and drastically reduced the frequency of spontaneous seizures measured at 5 months without modifying the average seizure duration or the incidence of epilepsy in animals. Treatment also decreased hippocampal neuron loss and rescued cognitive deficits. Oxidative stress during epileptogenesis was associated with de novo brain and blood generation of high mobility group box 1 (HMGB1), a neuroinflammatory molecule implicated in seizure mechanisms. Drug-induced reduction of oxidative stress prevented HMGB1 generation, thus highlighting a potential novel mechanism contributing to therapeutic effects. Our data show that targeting oxidative stress with clinically used drugs for a limited time window starting early after injury significantly improves long-term disease outcomes. This intervention may be considered for patients exposed to potential epileptogenic insults.
Insights
Targeting oxidative stress with N-acetylcysteine and sulforaphane early after injury can prevent epilepsy onset and progression. This antioxidant therapy improves long-term outcomes by reducing seizures and neuron loss.
Area of Science:
- Neuroscience
- Pathophysiology
- Pharmacology
Background:
- Current epilepsy treatments manage seizures but not the underlying disease, failing up to 30% of patients.
- No therapies exist to modify disease progression, prevent seizure onset, or improve prognosis.
- Oxidative stress is a key pathophysiological process in experimental and human epilepsy.
Purpose of the Study:
- To investigate the role of oxidative stress in epileptogenesis.
- To evaluate the efficacy of antioxidant therapy targeting oxidative stress in a rat model of acquired epilepsy.
- To explore the potential of clinically used drugs for modifying epilepsy progression.
Main Methods:
- Induced acquired epilepsy in rats using electrical status epilepticus.
- Assessed oxidative stress markers in neurons and astrocytes in rats and human epilepsy cases.
- Treated rats with N-acetylcysteine and sulforaphane during epileptogenesis.
- Measured seizure onset, frequency, duration, disease progression, neuron loss, cognitive deficits, and high mobility group box 1 (HMGB1) generation.
Main Results:
- Oxidative stress was confirmed in neurons and astrocytes during epileptogenesis in rats and humans.
- Combined N-acetylcysteine and sulforaphane treatment effectively inhibited oxidative stress.
- The antioxidant combination significantly delayed epilepsy onset, blocked disease progression, and reduced seizure frequency.
- Treatment decreased hippocampal neuron loss, rescued cognitive deficits, and prevented HMGB1 generation.
Conclusions:
- Targeting oxidative stress during epileptogenesis with a combination of N-acetylcysteine and sulforaphane offers a promising therapeutic strategy.
- This intervention significantly improves long-term epilepsy outcomes, including delayed onset, reduced progression, and fewer seizures.
- The findings suggest a potential treatment for patients at risk of developing epilepsy after an injury.
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