Yau Jeffrey M, Jalinous Reza, Cantarero Gabriela L, Desmond John E
Department of Neurology, Johns Hopkins Medical Institutions, Baltimore, MD 21205, USA.
The Magstim Company Ltd, Whitland, Wales, UK.
Brain Stimul. 2014 May-Jun;7(3):388-93. doi: 10.1016/j.brs.2014.02.007. Epub 2014 Feb 20.
Transcranial magnetic stimulation (TMS) can be combined with functional magnetic resonance imaging (fMRI) to simultaneously manipulate and monitor human cortical responses. Although tremendous efforts have been directed at characterizing the impact of TMS on image acquisition, the influence of the scanner's static field on the TMS coil has received limited attention.
OBJECTIVE/HYPOTHESIS: The aim of this study was to characterize the influence of the scanner's static field on TMS. We hypothesized that spatial variations in the static field could account for TMS field variations in the scanner environment.
Using an MRI-compatible TMS coil, we estimated TMS field strengths based on TMS-induced voltage changes measured in a search coil. We compared peak field strengths obtained with the TMS coil positioned at different locations (B0 field vs fringe field) and orientations in the static field. We also measured the scanner's static field to derive a field map to account for TMS field variations.
TMS field strength scaled depending on coil location and orientation with respect to the static field. Larger TMS field variations were observed in fringe field regions near the gantry as compared to regions inside the bore or further removed from the bore. The scanner's static field also exhibited the greatest spatial variations in fringe field regions near the gantry.
The scanner's static field influences TMS fields and spatial variations in the static field correlate with TMS field variations. Coil orientation changes in the B0 field did not result in substantial TMS field variations. TMS field variations can be minimized by delivering TMS in the bore or outside of the 0-70 cm region from the bore entrance.
经颅磁刺激(TMS)可与功能磁共振成像(fMRI)相结合,以同时操纵和监测人类皮质反应。尽管已经付出巨大努力来表征TMS对图像采集的影响,但扫描仪静磁场对TMS线圈的影响却受到的关注有限。
目的/假设:本研究的目的是表征扫描仪静磁场对TMS的影响。我们假设静磁场的空间变化可解释扫描仪环境中TMS场的变化。
使用与MRI兼容的TMS线圈,我们根据在搜索线圈中测量的TMS诱导的电压变化来估计TMS场强。我们比较了TMS线圈位于静磁场中不同位置(主磁场区域与边缘磁场区域)和方向时获得的峰值场强。我们还测量了扫描仪的静磁场以得出场图,以解释TMS场的变化。
TMS场强根据线圈相对于静磁场的位置和方向而缩放。与磁体孔内区域或离磁体孔更远的区域相比,在靠近机架的边缘磁场区域观察到更大的TMS场变化。扫描仪的静磁场在靠近机架的边缘磁场区域也表现出最大的空间变化。
扫描仪的静磁场影响TMS场,且静磁场的空间变化与TMS场变化相关。在主磁场中改变线圈方向不会导致TMS场发生实质性变化。通过在磁体孔内或距磁体孔入口0 - 70 cm区域之外进行TMS,可以将TMS场变化降至最低。