Ding Zhaohuan, Wang Yong, Li Jiaxi, Li Xiaoli
State Key Laboratory of Cognitive Neuroscience and Learning and IDG/McGovern Institute for Brain Research, Beijing Normal University, Beijing, People's Republic of China.
Zhuhai UM Science and Technology Research Institute, Zhuhai, People's Republic of China.
J Neural Eng. 2022 Oct 7;19(5). doi: 10.1088/1741-2552/ac9432.
. Transcranial magnetic stimulation-electroencephalogram (TMS-EEG) technology has played an increasingly important role in the field of neuroscience, and closed loop TMS has also been gradually concerned. However, the characteristics of closed-loop TMS-EEG were few discussed. To study the dependence of EEG reactivity on cortical oscillation phase under TMS stimulation, we explored in detail the TMS-EEG characteristics induced by closed-loop TMS contingent on occipital alpha phase.By collecting 30 healthy volunteers' closed-loop TMS-EEG data, we verified the real-time accuracy of our closed-loop system and analyzed the inter-trial phase coherence (ITPC) value, the TMS-induced natural frequency, the N100 TMS-evoked potential and the spatial characteristics of TMS-EEG data.The ITPC value of closed-loop TMS-EEG was higher than that of open loop TMS-EEG, suggesting that our research improves the repeatability of TMS-EEG experiments; the alpha power induced by 0° TMS was higher than that induced by 180° stimulation in the central region and parietal/occipital lobe; the N100 amplitude of 90° (3.85V) stimulation was significantly higher than that of 270° (1.87V) stimulation, and the latency of the N100 of the 90° stimulation (mean 95.01 ms) was significantly less than that of the 270° stimulation (mean 113.94 ms); the topographical distributions of the N45-P70-N100 potential were significantly affected by the O1 alpha phase at the moment of TMS.Our experimental results provided support for the dependence of EEG reactivity on cortical oscillation phase under TMS stimulation.
经颅磁刺激 - 脑电图(TMS - EEG)技术在神经科学领域发挥着越来越重要的作用,闭环TMS也逐渐受到关注。然而,关于闭环TMS - EEG的特性却鲜有讨论。为了研究TMS刺激下脑电图反应性对皮质振荡相位的依赖性,我们详细探讨了基于枕叶α相位的闭环TMS诱发的TMS - EEG特性。通过收集30名健康志愿者的闭环TMS - EEG数据,我们验证了闭环系统的实时准确性,并分析了试间相位相干(ITPC)值、TMS诱发的固有频率、N100 TMS诱发电位以及TMS - EEG数据的空间特征。闭环TMS - EEG的ITPC值高于开环TMS - EEG,这表明我们的研究提高了TMS - EEG实验的可重复性;在中央区和顶叶/枕叶,0° TMS诱发的α功率高于180°刺激诱发的α功率;90°(3.85V)刺激的N100波幅显著高于270°(1.87V)刺激的N100波幅,且90°刺激的N100潜伏期(平均95.01 ms)显著短于270°刺激的N100潜伏期(平均113.94 ms);TMS时刻O1α相位对N45 - P70 - N100电位的地形分布有显著影响。我们的实验结果为TMS刺激下脑电图反应性对皮质振荡相位的依赖性提供了支持。