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Published on: June 29, 2022
The effect of dichloroacetate in mouse models of epilepsy
Dylan Durie1, Tanya S McDonald1, Karin Borges1
1School of Biomedical Sciences, Faculty of Medicine, The University of Queensland, St Lucia, QLD 4072, Australia.
Abstract:
A recent report has found that glucose oxidation and the activity of pyruvate dehydrogenase (PDH) are reduced in the chronic stage of the pilocarpine mouse epilepsy model. This is likely caused by increased phosphorylation by PDH kinase of the E1α subunit of PDH, downregulating its activity. Inhibition of this phosphorylation has not yet been explored as a possible approach to treat epilepsy. Chronic dichloroacetate (DCA, 50 and 100 mg/kg/day) treatment was tested in acute seizure and the chronic pilocarpine models. We also determined the effects on phosphorylation state, activity and protein levels of PDH in the chronic stage of the pilocarpine model. DCA treatment did not increase latencies to seizures in the acute flurothyl seizure test and was slightly proconvulsant in the 6 Hz test. The latencies to seizures in a second-hit flurothyl test were decreased in SE vs. No SE mice in the chronic stage, but were not restored by DCA. In mice that had experienced pilocarpine-induced SE and were in the chronic "epileptic" stage of the model, PDH activity was reduced by 65% compared to "healthy" No SE mice. This was partially alleviated with DCA treatment. Also, PDH protein levels were decreased by 37% and phosphorylation at Ser300 of PDH was increased by 52% in SE mice, but were not significantly changed with DCA. Moreover DCA treatment decreased the amounts of total PDH by 23% in No SE mice, which may explain the proconvulsant effects in the 6 Hz test. The reduction in PDH protein levels during the chronic epileptic stage suggests increased degradation of the protein, which may contribute to the deficient glucose oxidation found in epilepsy. Taken together, DCA did not have any anti-convulsant effects in the tested models. Future studies utilising other PDH kinase inhibitors are required to determine whether this treatment approach is viable.
Insights
Dichloroacetate (DCA) did not show anti-convulsant effects in epilepsy models. DCA partially alleviated reduced pyruvate dehydrogenase (PDH) activity but did not alter PDH phosphorylation or protein levels in chronic epilepsy, suggesting other treatments are needed.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Reduced glucose oxidation and pyruvate dehydrogenase (PDH) activity are observed in the chronic pilocarpine mouse epilepsy model.
- This reduction is linked to increased PDH kinase activity and phosphorylation of the PDH E1α subunit, downregulating PDH.
- Inhibition of PDH phosphorylation is a potential, unexplored therapeutic strategy for epilepsy.
Purpose of the Study:
- To investigate the effects of chronic dichloroacetate (DCA) treatment on acute and chronic epilepsy models.
- To determine DCA's impact on PDH phosphorylation, activity, and protein levels in the chronic pilocarpine epilepsy model.
Main Methods:
- Testing DCA (50 and 100 mg/kg/day) in acute flurothyl and 6 Hz seizure tests.
- Evaluating DCA's effect on seizure latency in a 'second-hit' flurothyl test in chronic pilocarpine-treated mice.
- Measuring PDH activity, phosphorylation state (Ser300), and protein levels in chronic epileptic mice with and without DCA treatment.
Main Results:
- DCA did not increase seizure latency in acute tests and showed proconvulsant effects in the 6 Hz test.
- In chronic epileptic mice, PDH activity was reduced by 65%, partially alleviated by DCA; PDH protein levels decreased by 37%, and Ser300 phosphorylation increased by 52%, with no significant change by DCA.
- DCA decreased total PDH by 23% in non-epileptic mice, potentially explaining proconvulsant effects.
Conclusions:
- Chronic DCA treatment demonstrated no anticonvulsant effects in the tested epilepsy models.
- DCA partially restored PDH activity but did not normalize its phosphorylation or protein levels in chronic epilepsy.
- Further research with alternative PDH kinase inhibitors is necessary to explore this therapeutic avenue for epilepsy.
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