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Published on: January 29, 2018
Proconvulsant effects of the ketogenic diet in electroshock-induced seizures in mice
Iwona Zarnowska1, Jarogniew J Luszczki2,3, Tomasz Zarnowski4
1Department of Pathophysiology, Medical University, Jaczewskiego 8, 20-090, Lublin, Poland. zarnowskai@gmail.com.
Abstract:
Among non-pharmacological treatments, the ketogenic diet (KD) has the strongest demonstrated evidence of clinical success in drug resistant epilepsy. In an attempt to model the anticonvulsant effects of the KD pre-clinically, the present study assessed the effects of the KD against electroshock-induced convulsions in mice. After confirming that exposure to the KD for 2 weeks resulted in stable ketosis and hypoglycemia, mice were exposed to electroshocks of various intensities to establish general seizure susceptibility. When compared to mice fed the standard rodent chow diet (SRCD), we found that mice fed the KD were more sensitive to electroconvulsions as reflected by a significant decrease in seizure threshold (3.86 mA in mice on the KD vs 7.29 mA in mice on the SRCD; P < 0.05) in the maximal electroshock seizure threshold (MEST) test. To examine if this increased seizure sensitivity to electroconvulsions produced by the KD would affect anticonvulsant effects of antiepileptic drugs (AEDs), anticonvulsant potencies of carbamazepine (CBZ), phenobarbital (PB), phenytoin (PHT), and valproate (VPA) against maximal electroshock (MES)-induced convulsions were compared in mice fed the KD and SRCD. We found that potencies of all AEDs studied were decreased in mice fed the KD in comparison to those on the SRCD, with decreases in the anticonvulsant potencies ranging from 1.4 fold (PB) to 1.7 fold (PHT). Finally, the lack of differences in brain exposures of the AEDs studied in mice fed the KD and SRCD ruled out a pharmacokinetic nature of the observed findings. Taken together, exposure to the KD in the present study had an overall pro-convulsant effect. Since electroconvulsions require large metabolic reserves to support their rapid spread throughout the brain and consequent generalized tonic-clonic convulsions, this effect may be explained by a high energy state produced by the KD in regards to increased energy storage and utilization.
Insights
The ketogenic diet (KD) increased seizure sensitivity in mice, reducing the effectiveness of antiepileptic drugs. This suggests a pro-convulsant effect, potentially due to altered energy metabolism, contrary to its use in epilepsy treatment.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- The ketogenic diet (KD) is a recognized non-pharmacological treatment for drug-resistant epilepsy.
- Pre-clinical models are crucial for understanding the mechanisms underlying KD's effects.
Purpose of the Study:
- To investigate the effects of the ketogenic diet (KD) on seizure susceptibility and the efficacy of antiepileptic drugs (AEDs) in a mouse model.
- To determine if KD exhibits pro-convulsant or anticonvulsant properties in electroshock-induced seizures.
Main Methods:
- Mice were fed a KD or standard rodent chow diet (SRCD) for two weeks to induce ketosis and hypoglycemia.
- Maximal electroshock seizure threshold (MEST) tests were performed to assess seizure susceptibility.
- Anticonvulsant potencies of carbamazepine, phenobarbital, phenytoin, and valproate against maximal electroshock (MES)-induced convulsions were evaluated.
Main Results:
- Mice on the KD exhibited significantly lower seizure thresholds compared to SRCD-fed mice, indicating increased seizure sensitivity.
- The anticonvulsant potencies of all tested AEDs were reduced in KD-fed mice, ranging from 1.4 to 1.7-fold decreases.
- No significant differences in brain drug exposure were observed, ruling out pharmacokinetic interactions.
Conclusions:
- The ketogenic diet demonstrated a pro-convulsant effect in this pre-clinical model, increasing seizure susceptibility.
- KD exposure reduced the efficacy of common antiepileptic drugs, suggesting a complex interaction.
- The findings challenge the direct translation of KD's anticonvulsant effects to electroshock models and may relate to altered brain energy metabolism.
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