Cheyne Douglas, Bakhtazad Leyla, Gaetz William
Neuromagnetic Imaging Laboratory, Department of Diagnostic Imaging, Hospital for Sick Children Research Institute, Toronto, Ontario, Canada.
Hum Brain Mapp. 2006 Mar;27(3):213-29. doi: 10.1002/hbm.20178.
We describe a novel spatial filtering approach to the localization of cortical activity accompanying voluntary movements. The synthetic aperture magnetometry (SAM) minimum-variance beamformer algorithm was used to compute spatial filters three-dimensionally over the entire brain from single trial neuromagnetic recordings of subjects performing self-paced index finger movements. Images of instantaneous source power ("event-related SAM") computed at selected latencies revealed activation of multiple cortical motor areas prior to and following left and right index finger movements in individual subjects, even in the presence of low-frequency noise (e.g., eye movements). A slow premovement motor field (MF) reaching maximal amplitude approximately 50 ms prior to movement onset was localized to the hand area of contralateral precentral gyrus, followed by activity in the contralateral postcentral gyrus at 40 ms, corresponding to the first movement-evoked field (MEFI). A novel finding was a second activation of the precentral gyrus at a latency of approximately 150 ms, corresponding to the second movement-evoked field (MEFII). Group averaging of spatially normalized images indicated additional premovement activity in the ipsilateral precentral gyrus and the left inferior parietal cortex for both left and right finger movements. Weaker activations were also observed in bilateral premotor areas and the supplementary motor area. These results show that event-related beamforming provides a robust method for studying complex patterns of time-locked cortical activity accompanying voluntary movements, and offers a new approach for the localization of multiple cortical sources derived from neuromagnetic recordings in single subject and group data.
我们描述了一种用于定位伴随自主运动的皮层活动的新型空间滤波方法。使用合成孔径磁力测量法(SAM)最小方差波束形成器算法,根据执行自主节奏食指运动的受试者的单次试验神经磁记录,在全脑范围内三维计算空间滤波器。在选定延迟处计算的瞬时源功率图像(“事件相关SAM”)显示,即使存在低频噪声(如眼球运动),个体受试者在左右食指运动之前和之后,多个皮层运动区域均被激活。一个缓慢的运动前运动场(MF)在运动开始前约50毫秒达到最大振幅,定位于对侧中央前回的手部区域,随后在40毫秒时对侧中央后回出现活动,对应于第一个运动诱发场(MEFI)。一个新发现是中央前回在大约150毫秒的延迟处出现第二次激活,对应于第二个运动诱发场(MEFII)。对空间归一化图像进行组平均表明,对于左右手指运动,同侧中央前回和左侧顶下小叶皮层存在额外的运动前活动。在双侧运动前区和辅助运动区也观察到较弱的激活。这些结果表明,事件相关波束形成提供了一种强大的方法,用于研究伴随自主运动的时间锁定皮层活动的复杂模式,并为在单受试者和组数据中从神经磁记录定位多个皮层源提供了一种新方法。