Hawsawi Hassan B, Papadaki Anastasia, Thornton John S, Carmichael David W, Lemieux Louis
Department of Clinical and Experimental Epilepsy, UCL Queen Square Institute of Neurology, London, United Kingdom.
MRI Unit, Epilepsy Society, Buckinghamshire, United Kingdom.
Front Neurosci. 2020 May 12;14:429. doi: 10.3389/fnins.2020.00429. eCollection 2020.
The application of intracranial electroencephalography (icEEG) recording during functional magnetic resonance imaging (icEEG-fMRI) has allowed the study of the hemodynamic correlates of epileptic activity and of the neurophysiological basis of the blood oxygen level-dependent (BOLD) signal. However, the applicability of this technique is affected by data quality issues such as signal drop out in the vicinity of the implanted electrodes. In our center we have limited the technique to a quadrature head transmit and receive RF coil following the results of a safety evaluation. The purpose of this study is to gather further safety-related evidence for performing icEEG-fMRI using a body RF-transmit coil, to allow the greater flexibility afforded by the use of modern, high-density receive arrays, and therefore parallel imaging with benefits such as reduced signal drop-out and distortion artifact. Specifically, we performed a set of empirical temperature measurements on a 1.5T Siemens Avanto MRI scanner with the body RF-transmit coil in a range of electrode and connector cable configurations. The observed RF-induced heating during a high-SAR sequence was maximum in the immediate vicinity of a depth electrode located along the scanner's central axis (range: 0.2-2.4°C) and below 0.5°C at the other electrodes. Also for the high-SAR sequence, we observed excessive RF-related heating in connection cable configurations that deviate from our recommended setup. For the low-SAR sequence, the maximum observed temperature increase across all configurations was 0.3°C. This provides good evidence to allow simultaneous icEEG-fMRI to be performed utilizing the body transmit coil on the 1.5T Siemens Avanto MRI scanner at our center with acceptable additional risk by following a well-defined protocol.
在功能磁共振成像(icEEG-fMRI)过程中应用颅内脑电图(icEEG)记录,使得人们能够研究癫痫活动的血流动力学相关性以及血氧水平依赖(BOLD)信号的神经生理学基础。然而,该技术的适用性受到数据质量问题的影响,例如植入电极附近的信号丢失。在我们中心,根据安全评估结果,我们将该技术限制在使用正交头部发射和接收射频线圈。本研究的目的是收集更多与安全相关的证据,以便使用体部射频发射线圈进行icEEG-fMRI,从而利用现代高密度接收阵列提供更大的灵活性,进而实现并行成像,带来诸如减少信号丢失和失真伪影等好处。具体而言,我们在1.5T西门子Avanto MRI扫描仪上,使用体部射频发射线圈,在一系列电极和连接电缆配置下进行了一组经验性温度测量。在高比吸收率(SAR)序列期间,观察到的射频感应加热在沿扫描仪中心轴放置的深部电极紧邻区域最大(范围:0.2 - 2.4°C),而在其他电极处低于0.5°C。同样对于高SAR序列,我们在偏离我们推荐设置的连接电缆配置中观察到了过度的射频相关加热。对于低SAR序列,所有配置下观察到的最大温度升高为0.3°C。这提供了充分的证据,表明在我们中心的1.5T西门子Avanto MRI扫描仪上,按照明确的方案使用体部发射线圈同时进行icEEG-fMRI时,额外风险是可接受的。