Cuffin B N, Cohen D
Francis Bitter National Magnet Laboratory, Massachusetts Institute of Technology, Cambridge 02139.
Electroencephalogr Clin Neurophysiol. 1979 Aug;47(2):132-46. doi: 10.1016/0013-4694(79)90215-3.
The spatial response of the magnetoencephalogram (MEG) to sources in the brain's cortex is compared with that of the electroencephalogram (EEG). This is done using computer modeling of the head which is approximated by 4 concentric spherical regions that represent the brain and surrounding bone and tissue. Lead fields are calculated at points on the cortex for unipolar, bipolar and quadrupolar MEG and EEG measurements. Since lead fields are patterns of the sensitivity of these measurements to a source at various locations and orientations, they provide a convenient means for comparison. It is found that a unipolar MEG has a very different lead field than a unipolar EEG. Hence, this type of MEG detects sources at different locations and orientations than this EEG. Although bipolar MEG and EEG lead fields are found to have similar patterns, the MEG lead field is narrower than that of the EEG and hence 'sees' a smaller area on the cortex than the EEG. This is because the potentials measured by the EEG are 'smeared' by the low-conductivity skull; the magnetic fields measured by the MEG are not smeared. Quadrupolar MEG and EEG lead fields are found to be about the same. The responses of bipolar MEGs and EEGs to distributed sources, which are composed of aligned and randomly oriented dipoles, are compared. It is found that for both types of sources, the MEG 'sees' an area on the cortex which is approximately 0.3 times that for the EEG. Hence, the MEG appears to be useful for detecting a more restricted group of sources than the EEG.
将脑磁图(MEG)对大脑皮质中源的空间响应与脑电图(EEG)的空间响应进行了比较。这是通过对头部进行计算机建模来完成的,头部由4个同心球形区域近似表示,分别代表大脑以及周围的骨骼和组织。针对单极、双极和四极MEG以及EEG测量,计算皮质上各点的导联场。由于导联场是这些测量对不同位置和方向的源的敏感度模式,它们提供了一种方便的比较方式。研究发现,单极MEG的导联场与单极EEG的导联场有很大不同。因此,这种类型的MEG检测到的源在位置和方向上与EEG检测到的不同。虽然发现双极MEG和EEG的导联场有相似的模式,但MEG的导联场比EEG的更窄,因此在皮质上“看到”的区域比EEG小。这是因为EEG测量的电位被低导电性的头骨“模糊”了;而MEG测量的磁场没有被模糊。四极MEG和EEG的导联场大致相同。比较了双极MEG和EEG对由排列整齐和随机取向的偶极组成的分布式源的响应。结果发现,对于这两种类型的源,MEG在皮质上“看到”的区域大约是EEG的0.3倍。因此,与EEG相比,MEG似乎更有助于检测更受限的一组源。