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Published on: February 27, 2018
Anticonvulsant Effect of Time-Restricted Feeding in a Pilocarpine-Induced Seizure Model: Metabolic and Epigenetic
Jorge Landgrave-Gómez1, Octavio Fabián Mercado-Gómez1, Mario Vázquez-García1
1Departamento de Fisiología, Facultad de Medicina, Universidad Nacional Autónoma de México México, DF, Mexico.
Abstract:
A new generation of antiepileptic drugs has emerged; however, one-third of epilepsy patients do not properly respond to pharmacological treatments. The purpose of the present study was to investigate whether time-restricted feeding (TRF) has an anticonvulsant effect and whether this restrictive diet promotes changes in energy metabolism and epigenetic modifications in a pilocarpine-induced seizure model. To resolve our hypothesis, one group of rats had free access to food and water ad libitum (AL) and a second group underwent a TRF schedule. We used the lithium-pilocarpine model to induce status epilepticus (SE), and behavioral seizure monitoring was analyzed. Additionally, an electroencephalography (EEG) recording was performed to verify the effect of TRF on cortical electrical activity after a pilocarpine injection. For biochemical analysis, animals were sacrificed 24 h after SE and hippocampal homogenates were used to evaluate the proteins related to metabolism and chromatin structure. Our results showed that TRF had an anticonvulsant effect as measured by the prolonged latency of forelimb clonus seizure, a decrease in the seizure severity score and fewer animals reaching SE. Additionally, the power of the late phase EEG recordings in the AL group was significantly higher than the TRF group. Moreover, we found that TRF is capable of inducing alterations in signaling pathways that regulate energy metabolism, including an increase in the phosphorylation of AMP dependent kinase (AMPK) and a decrease in the phosphorylation of Akt kinase. Furthermore, we found that TRF was able to significantly increase the beta hydroxybutyrate (β-HB) concentration, an endogenous inhibitor of histone deacetylases (HDACs). Finally, we found a significant decrease in HDAC activity as well as an increase in acetylation on histone 3 (H3) in hippocampal homogenates from the TRF group. These findings suggest that alterations in energy metabolism and the increase in β-HB mediated by TRF may inhibit HDAC activity, thus increasing histone acetylation and producing changes in the chromatin structure, which likely facilitates the transcription of a subset of genes that confer anticonvulsant activity.
Insights
Time-restricted feeding (TRF) shows anticonvulsant effects in a epilepsy model. This diet alters energy metabolism and epigenetic modifications, potentially offering a new strategy for drug-resistant epilepsy.
Area of Science:
- Neuroscience
- Metabolism
- Epigenetics
Background:
- A significant portion of epilepsy patients (one-third) exhibit resistance to current antiepileptic drug treatments.
- Exploring novel therapeutic strategies beyond conventional pharmacology is crucial for managing drug-resistant epilepsy.
- Dietary interventions, such as time-restricted feeding (TRF), are increasingly investigated for their potential health benefits.
Purpose of the Study:
- To determine if time-restricted feeding (TRF) exerts an anticonvulsant effect in a pilocarpine-induced seizure model.
- To investigate TRF's impact on energy metabolism and epigenetic modifications within the brain.
- To elucidate the underlying mechanisms by which TRF might influence seizure activity.
Main Methods:
- Utilized a pilocarpine-induced status epilepticus (SE) model in rats to simulate epileptic seizures.
- Compared behavioral seizure monitoring and electroencephalography (EEG) between rats with ad libitum (AL) feeding and TRF.
- Conducted biochemical analyses on hippocampal homogenates to assess proteins involved in metabolism and chromatin structure, including AMPK, Akt, beta-hydroxybutyrate (β-HB), and histone modifications.
Main Results:
- TRF demonstrated significant anticonvulsant effects, including prolonged seizure latency, reduced seizure severity, and fewer animals reaching SE.
- EEG recordings showed reduced cortical electrical activity power in the TRF group compared to the AL group.
- TRF modulated energy metabolism pathways (increased AMPK phosphorylation, decreased Akt phosphorylation), elevated beta-hydroxybutyrate (β-HB) levels, decreased histone deacetylase (HDAC) activity, and increased histone H3 acetylation.
Conclusions:
- Time-restricted feeding (TRF) possesses notable anticonvulsant properties in an epilepsy model.
- TRF-induced alterations in energy metabolism and increased β-HB may inhibit HDAC activity, leading to epigenetic changes (histone acetylation).
- These epigenetic modifications likely contribute to the anticonvulsant effects by altering gene expression patterns.
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