Epilepsy Center, Medical Center, University of Freiburg, Faculty of Medicine, University of Freiburg, Germany.
Department of Stereotactic and Functional Neurosurgery, Medical Center, University of Freiburg, Faculty of Medicine, University of Freiburg, Germany; Fraunhofer Institute for Laser Technology, Aachen, Germany.
J Neurosci Methods. 2021 Oct 1;362:109295. doi: 10.1016/j.jneumeth.2021.109295. Epub 2021 Jul 23.
Neurostimulation is an emerging treatment option for patients resistant to pharmacotherapy and ineligible for neurosurgical intervention. Compared to intracranial stimulation placement of electrodes in the subgaleal space offers a minimally invasive option for long-term seizure monitoring for responsive systems.
It was investigated, whether electrode contacts of a device being developed as a stimulation system placed in the subgaleal space are suited for recording of EEG activity for seizure detection. EEG was recorded intraoperatively in four participants participating in a clinical trial during the insertion of the device. Quantitative parameters like electrode impedance, signal amplitude ranges and amplitude spectra were determined. Epileptiform patterns in the recordings were compared to patterns occurring in scalp EEG prior to device implantation.
Electrode impedances, amplitude ranges for artefact free intervals and intervals containing artefacts were determined. Spectral analysis showed typical properties of EEG recordings with high amplitude content at low frequencies and a peak in the alpha band. No major noise except at power line frequency disturbed the recordings. In two patients, typical epileptiform patterns could be identified having similar characteristics as their respective scalp EEG recordings prior to device implantation.
New and less invasive electrode system compared to existing solutions for responsive neurostimulation.
The subgaleal electrode system allows for high quality EEG recordings even in an hostile unfavorable environment like an operation theatre. For the design of a signal acquisition unit of a responsive system using subgaleal electrodes, specifications could be obtained.
神经刺激是一种针对对药物治疗有抵抗力且不符合神经外科干预条件的患者的新兴治疗选择。与颅内刺激相比,将电极置于皮下空间提供了一种微创选择,可用于对响应系统进行长期癫痫监测。
研究了正在开发的作为刺激系统的设备的电极触点是否适合用于记录 EEG 活动以进行癫痫检测。在一项临床试验中,四名参与者在插入设备的过程中进行了术中 EEG 记录。确定了定量参数,如电极阻抗、信号幅度范围和幅度谱。将记录中的癫痫样模式与设备植入前头皮 EEG 中的模式进行了比较。
确定了电极阻抗、无伪影间隔和包含伪影间隔的幅度范围。频谱分析显示了 EEG 记录的典型特性,具有低频高幅度和 alpha 波段峰值。除了电源频率外,没有主要噪声干扰记录。在两名患者中,可以识别出典型的癫痫样模式,其特征与设备植入前各自的头皮 EEG 记录相似。
与用于响应性神经刺激的现有解决方案相比,新的、侵入性较小的电极系统。
即使在手术等恶劣不利的环境中,皮下电极系统也可以进行高质量的 EEG 记录。可以为使用皮下电极的响应系统的信号采集单元设计获得规格。