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Sulforaphane Ameliorates Metabolic Changes Associated With Status Epilepticus in Immature Rats
Jan Daněk1, Šárka Danačíková1, David Kala1
1Institute of Physiology, Czech Academy of Sciences, Prague, Czechia.
Insights
Sulforaphane (SFN) treatment improved brain metabolism and blood flow in immature rats after status epilepticus (SE). SFN mitigated hypometabolism and enhanced recovery, suggesting a protective role against epilepsy development.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Status epilepticus (SE) is a critical pediatric neurological emergency that can lead to long-term epilepsy due to brain metabolic alterations.
- The Nrf2 pathway is crucial for cellular defense mechanisms, including antioxidative and metabolic regulation, making it a potential target for mitigating SE-induced damage.
Purpose of the Study:
- To investigate the efficacy of sulforaphane (SFN), an Nrf2 activator, in a rat model of acquired epilepsy induced by status epilepticus (SE).
- To evaluate the impact of SFN on brain energy metabolism, neuronal survival, and cerebral blood flow (CBF) following SE in immature rats.
Main Methods:
- Acquired epilepsy model induced by Li-Cl pilocarpine in 12-day-old rats.
- Measurement of energy metabolites (ATP, glucose, lactate) using enzymatic fluorimetric methods.
- Assessment of protein expression via Western blot, neuronal death using FluoroJadeB staining, glucose metabolism with 18F-DG μCT/PET, and CBF responses using laser Doppler flowmetry.
Main Results:
- SFN upregulated the Nrf2 pathway in the central nervous system (CNS) of immature rats.
- SFN modulated glucose uptake post-SE, initially lowering it but subsequently reversing hypometabolism over three weeks.
- SFN treatment did not alter neuronal death but improved CBF and its response to electrical stimulation.
Conclusions:
- SFN effectively improves metabolic disturbances and enhances cerebral blood flow recovery following status epilepticus in immature rats.
- These findings suggest that SFN holds therapeutic potential for preventing or mitigating epilepsy development by supporting the CNS's adaptive capacity against epileptogenic insults.
Abstract:
Status epilepticus (SE) is a common paediatric emergency with the highest incidence in the neonatal period and is a well-known epileptogenic insult. As previously established in various experimental and human studies, SE induces long-term alterations to brain metabolism, alterations that directly contribute to the development of epilepsy. To influence these changes, organic isothiocyanate compound sulforaphane (SFN) has been used in the present study for its known effect of enhancing antioxidative, cytoprotective, and metabolic cellular properties via the Nrf2 pathway. We have explored the effect of SFN in a model of acquired epilepsy induced by Li-Cl pilocarpine in immature rats (12 days old). Energy metabolites PCr, ATP, glucose, glycogen, and lactate were determined by enzymatic fluorimetric methods during the acute phase of SE. Protein expression was evaluated by Western blot (WB) analysis. Neuronal death was scored on the FluoroJadeB stained brain sections harvested 24 h after SE. To assess the effect of SFN on glucose metabolism we have performed a series of 18F-DG μCT/PET recordings 1 h, 1 day, and 3 weeks after the induction of SE. Responses of cerebral blood flow (CBF) to electrical stimulation and their influence by SFN were evaluated by laser Doppler flowmetry (LDF). We have demonstrated that the Nrf2 pathway is upregulated in the CNS of immature rats after SFN treatment. In the animals that had undergone SE, SFN was responsible for lowering glucose uptake in most regions 1 h after the induction of SE. Moreover, SFN partially reversed hypometabolism observed after 24 h and achieved full reversal at approximately 3 weeks after SE. Since no difference in cell death was observed in SFN treated group, these changes cannot be attributed to differences in neurodegeneration. SFN per se did not affect the glucose uptake at any given time point suggesting that SFN improves endogenous CNS ability to adapt to the epileptogenic insult. Furthermore, we had discovered that SFN improves blood flow and accelerates CBF response to electrical stimulation. Our findings suggest that SFN improves metabolic changes induced by SE which have been identified during epileptogenesis in various animal models of acquired epilepsy.
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