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Network Analysis of Foramen Ovale Electrode Recordings in Drug-resistant Temporal Lobe Epilepsy Patients
Published on: December 18, 2016
Thalamic neural activity and epileptic network analysis using stereoelectroencephalography: a prospective study
Tomotaka Ishizaki1,2, Satoshi Maesawa3, Shun Yamamoto4
1Department of Neurosurgery, Nagoya University, Nagoya, Aichi, Japan ishizaki.tomotaka.d8@f.mail.nagoya-u.ac.jp.
Introduction:
Epilepsy is a prevalent chronic neurological disorder, with approximately one-third of patients experiencing intractable epilepsy, often necessitating surgical intervention. Deep brain stimulation (DBS) of the thalamus has been introduced as a palliative surgical option for seizure control; however, its precise mechanisms remain largely unclear. The thalamus plays a crucial role in coordinating neural networks, both in normal brain function and the propagation of epileptic activity. This study aims to investigate the involvement of the thalamus in epilepsy networks using stereoelectroencephalography (SEEG) to monitor thalamic activity during epileptic seizures in patients with drug-resistant epilepsy.
Methods And Analysis:
This single-arm, non-randomised, prospective, exploratory study will be conducted at Nagoya University Hospital, involving 10 patients undergoing SEEG for presurgical evaluation of drug-resistant epilepsy. Participants must be 18 years or older, have normal cognitive function and provide informed consent. Between 7 and 14 SEEG electrodes, including 2 in the bilateral thalamus, will be implanted in key thalamic nuclei (anterior, dorsomedial, centromedian and pulvinar) using a robotic system. The primary outcome focuses on electroencephalographic findings from the thalamus, emphasising waveform and frequency changes around seizures. Secondary outcomes include postoperative seizure frequency, changes in cognitive function and neuroimaging results. SEEG data will be recorded continuously for 1-2 weeks to capture both ictal and interictal activity. Data analysis will employ t-tests to compare ictal and interictal periods, with p values <0.05 deemed statistically significant. This study seeks to characterise thalamic spectral and connectivity changes during seizures, identify the thalamic subnuclei involved in seizure propagation and explore their association with seizure outcomes, potentially contributing to future DBS candidate selection. By advancing our understanding of the thalamus in epilepsy networks, this research aims to improve DBS interventions, ultimately enhancing seizure control in patients with intractable epilepsy.
Ethics And Dissemination:
This study was approved by the ethics committee of the Nagoya University Graduate School of Medicine (Approval No. 2024-0044). All participants will provide written informed consent prior to enrolment. The results of this study will be disseminated through publication in a peer-reviewed journal and presentations at academic conferences.
Trial Registration Number:
jRCT1042240024.
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