Gross J, Kujala J, Hamalainen M, Timmermann L, Schnitzler A, Salmelin R
Department of Neurology, Heinrich-Heine-University, Moorenstrasse 5, D-40225 Duesseldorf, Germany.
Proc Natl Acad Sci U S A. 2001 Jan 16;98(2):694-9. doi: 10.1073/pnas.98.2.694.
Functional connectivity between cortical areas may appear as correlated time behavior of neural activity. It has been suggested that merging of separate features into a single percept ("binding") is associated with coherent gamma band activity across the cortical areas involved. Therefore, it would be of utmost interest to image cortico-cortical coherence in the working human brain. The frequency specificity and transient nature of these interactions requires time-sensitive tools such as magneto- or electroencephalography (MEG/EEG). Coherence between signals of sensors covering different scalp areas is commonly taken as a measure of functional coupling. However, this approach provides vague information on the actual cortical areas involved, owing to the complex relation between the active brain areas and the sensor recordings. We propose a solution to the crucial issue of proceeding beyond the MEG sensor level to estimate coherences between cortical areas. Dynamic imaging of coherent sources (DICS) uses a spatial filter to localize coherent brain regions and provides the time courses of their activity. Reference points for the computation of neural coupling may be based on brain areas of maximum power or other physiologically meaningful information, or they may be estimated starting from sensor coherences. The performance of DICS is evaluated with simulated data and illustrated with recordings of spontaneous activity in a healthy subject and a parkinsonian patient. Methods for estimating functional connectivities between brain areas will facilitate characterization of cortical networks involved in sensory, motor, or cognitive tasks and will allow investigation of pathological connectivities in neurological disorders.
皮层区域之间的功能连接可能表现为神经活动的相关时间行为。有人提出,将单独的特征合并为单一感知(“捆绑”)与所涉及的皮层区域之间的相干伽马波段活动有关。因此,对工作中的人类大脑进行皮层-皮层相干成像将是极其有趣的。这些相互作用的频率特异性和瞬态性质需要磁振造影或脑电图(MEG/EEG)等对时间敏感的工具。覆盖不同头皮区域的传感器信号之间的相干性通常被用作功能耦合的度量。然而,由于活跃脑区与传感器记录之间的复杂关系,这种方法提供的关于实际涉及的皮层区域的信息模糊。我们提出了一种解决方案,以解决超越MEG传感器水平来估计皮层区域之间相干性的关键问题。相干源动态成像(DICS)使用空间滤波器来定位相干脑区,并提供其活动的时间进程。神经耦合计算的参考点可以基于最大功率的脑区或其他生理上有意义的信息,也可以从传感器相干性开始估计。用模拟数据评估DICS的性能,并用健康受试者和帕金森病患者的自发活动记录进行说明。估计脑区之间功能连接的方法将有助于表征参与感觉、运动或认知任务的皮层网络,并将允许研究神经疾病中的病理连接。