Peri-Ictal Autonomic Control of Cardiac Function and Seizure-Induced Death
Ian C Wenker1, Elizabeth A Blizzard1, Pravin K Wagley1
1Department of Anesthesiology, University of Virginia, Charlottesville, VA, United States.
Abstract:
Sudden unexpected death in epilepsy (SUDEP) accounts for the deaths of 8-17% of patients with epilepsy. Although the mechanisms of SUDEP are unknown, one proposed mechanism is abnormal control of the heart by the autonomic nervous system (ANS). Our objective was to determine whether the broad changes in ictal heart rate experienced by mouse models of SUDEP are (1) due to the ANS and (2) contribute to seizure-induced death. Seizures were induced by electrical stimulation of the hippocampus of a mouse carrying the human SCN8A encephalopathy mutation p.Asn1768Asp (N1768D; "D/+ mice"). Using standard autonomic pharmacology, the relative roles of the parasympathetic and sympathetic nervous systems on heart rate changes associated with seizures were determined. All induced seizures had pronounced ictal bradycardia and postictal tachycardia. Seizure susceptibility or severity were unchanged by the pharmacological agents. Administration of Atropine, a muscarinic antagonist, eliminated ictal bradycardia, while carbachol, a muscarinic agonist, had no effect on ictal bradycardia, but reduced postictal tachycardia. Sotalol, an adrenergic β-receptor antagonist, had no effect on ictal bradycardia, but did suppress postictal tachycardia. Isoproterenol, a β-receptor agonist, had no effect on either ictal bradycardia or postictal tachycardia. Administration of the α1-receptor antagonist prazosin increases the incidence of seizure-induced death in D/+ mice. Although postictal heart rate was lower for these fatal seizures in the presence of prazosin, rates were not as low as that recorded for carbachol treated mice, which all survived. Both ictal bradycardia and postictal tachycardia are manifestations of the ANS. Bradycardia is mediated by a maximal activation of the parasympathetic arm of the ANS, and tachycardia is mediated by parasympathetic inactivation and sympathetic activation. While the changes in heart rate during seizures are profound, suppression of postictal heart rate did not increase seizure mortality.
Insights
Sudden unexpected death in epilepsy (SUDEP) involves autonomic nervous system (ANS) heart rate changes. Parasympathetic overactivation causes bradycardia, while sympathetic activation causes tachycardia, impacting seizure-induced death risk.
Area of Science:
- Neuroscience
- Cardiology
- Epilepsy Research
Background:
- Sudden unexpected death in epilepsy (SUDEP) is a significant cause of mortality in epilepsy patients.
- The precise mechanisms underlying SUDEP remain largely unknown.
- Abnormal autonomic nervous system (ANS) control of heart rate is a proposed SUDEP mechanism.
Purpose of the Study:
- To investigate if autonomic nervous system (ANS) activity underlies heart rate alterations during seizures in a mouse model of SUDEP.
- To determine the contribution of these heart rate changes to seizure-induced mortality.
Main Methods:
- Seizures were induced in mice with an SCN8A mutation (D/+ mice) using hippocampal electrical stimulation.
- Autonomic pharmacology (atropine, carbachol, sotalol, prazosin) was used to assess parasympathetic and sympathetic nervous system roles.
- Heart rate changes (ictal bradycardia, postictal tachycardia) and seizure-induced death incidence were monitored.
Main Results:
- Pharmacological agents did not alter seizure susceptibility or severity.
- Atropine abolished ictal bradycardia; carbachol reduced postictal tachycardia.
- Sotalol suppressed postictal tachycardia, while prazosin administration increased seizure-induced death incidence.
- Bradycardia is mediated by parasympathetic activation, and tachycardia by parasympathetic withdrawal and sympathetic activation.
Conclusions:
- Both ictal bradycardia and postictal tachycardia are ANS-mediated phenomena during seizures.
- Parasympathetic overactivation drives bradycardia, while tachycardia involves parasympathetic withdrawal and sympathetic activation.
- While ANS dysfunction is implicated, suppressing postictal heart rate did not increase mortality in this model.
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