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Published on: May 16, 2019
Antiseizure medication effects on the autonomic nervous system in pediatric patients with epilepsy
Fatemeh Mohammad Alizadeh Chafjiri1, Stephanie Dailey1, Saeid Sadeghian1
1Division of Epilepsy and Clinical Neurophysiology, Department of Neurology, Boston Children's Hospital, Harvard Medical School, Boston, MA, USA.
Insights
Antiseizure medications (ASMs) can alter autonomic nervous system (ANS) functions like heart rate and temperature in children with epilepsy. Understanding these effects is crucial for monitoring treatment efficacy and potential side effects.
Area of Science:
- Neuroscience
- Pharmacology
- Pediatric Neurology
Background:
- Patients with epilepsy (PWE) on antiseizure medications (ASMs) often show altered autonomic nervous system (ANS) parameters.
- ANS signals offer a potential non-invasive method for monitoring ASM application and effectiveness.
Purpose of the Study:
- To review the existing literature on the effects of ASMs on the pediatric ANS.
- To synthesize findings on how ASMs impact physiological parameters such as heart rate (HR), heart rate variability (HRV), temperature, and sweat.
Main Methods:
- Systematic review following PRISMA guidelines.
- Searched PubMed, Web of Science, and Embase databases for relevant studies published up to December 2024.
- Screened 9837 studies, with 23 ultimately included for data extraction and analysis.
Main Results:
- Zonisamide and topiramate were associated with reduced sweating and increased temperature.
- Polytherapy with ASMs led to decreased HRV, with specific reductions noted for valproic acid (high-frequency) and phenobarbital (low-frequency).
- Higher ASM doses reduced HRV, while levetiracetam showed minimal short-term ANS effects but improved parasympathetic control over time.
Conclusions:
- ASMs can influence HR, sweat, and temperature in pediatric epilepsy patients, with varying effects depending on the specific medication and dosage.
- Understanding ASM-induced ANS changes is vital for evaluating medication efficacy, identifying side effects, and accounting for confounding factors in seizure prediction.
- Biosignal data reflecting ANS function could aid in developing device-based neuromodulation, seizure detection, and prediction algorithms.
Abstract:
Patients with epilepsy (PWE) taking antiseizure medications (ASMs) exhibit altered autonomic nervous system (ANS) parameters. ANS signals may monitor ASM applications and effectiveness non-invasively. Due to limited research, we reviewed the effects of ASMs on the pediatric ANS. We followed PRISMA guidelines and searched PubMed, Web of Science, and Embase for publications until 12/2024. These studies investigated the impact of ASMs on ANS, including heart rate (HR), heart rate variability (HRV), temperature, and sweat. We used Covidence software for screening processes and data extraction. After screening 9837 studies, 23 were included. Zonisamide and topiramate showed reduced sweating and increased temperature. In polytherapy patients, HRV decreased, with reductions in high-frequency (HF) values on valproic acid and low-frequency values on phenobarbital. Higher ASM doses reduced HRV but did not affect HR or sweat glands. One study reported altered cardiac ventricle functioning in PWE on ASMs. Two studies reviewing the effect of levetiracetam found minimal short-term ANS effects within the ECG but improved parasympathetic control and restored balance in HRV parameters over time. Sympathetic and parasympathetic dysfunctions were prominent in some patients, with polytherapy increasing HR and reducing HF values of HRV. In one study, higher ASM concentrations lowered HRV. Overall, ASMs may influence HR, sweat, and temperature, though many studies lacked analysis of specific ASM types. A better understanding of how ASMs affect ANS is essential for assessing medication efficacy, side effects, and their role as confounders in seizure prediction. These biosignal data can support device-based neuromodulation, seizure detection, and prediction algorithms.
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