Barth D S, Sutherling W
Department of Neurology, University of California, Los Angeles 90024.
Brain Res. 1988 May 31;450(1-2):280-94. doi: 10.1016/0006-8993(88)91567-3.
The electrophysiological basis of macropotentials produced by the direct cortical response (DCR) to electrical stimulation was studied using a combination of current source-density (CSD) and neuromagnetic analysis. Current source-density analysis indicated the locations of extracellular sources and sinks in the cortical depth giving rise to each temporal component of the DCR complex. Information about intradendritic currents was obtained from extracranial magnetic field measures. These data indicate that the DCR is composed of a sequential activation of pyramidal cells at different cortical depths. The complex begins with depolarization of cells in the upper and middle layers, followed by depolarization of deeper pyramidal cells with apical dendrites extending near the cortical surface. The complex ends with a positive-negative slow wave sequence indicating possible afterhyperpolarization of surface dendrites and hyperpolarization of cell bodies and basilar dendrites in the depth. These data demonstrate a unique way in which electrical and magnetic measures may be combined to provide complementary information about the spatially and temporally organized cellular currents within local neuronal networks.
采用电流源密度(CSD)和神经磁分析相结合的方法,研究了直接皮层反应(DCR)对电刺激产生的大电位的电生理基础。电流源密度分析表明了在皮层深度产生DCR复合体各时间成分的细胞外电流源和电流汇的位置。从颅外磁场测量中获得了关于树突内电流的信息。这些数据表明,DCR由不同皮层深度的锥体细胞的顺序激活组成。该复合体始于上层和中层细胞的去极化,随后是更深层锥体细胞的去极化,其顶端树突在皮层表面附近延伸。该复合体以正负慢波序列结束,表明表面树突可能发生超极化后电位,以及深度处细胞体和基底树突发生超极化。这些数据证明了一种独特的方式,通过这种方式可以将电和磁测量结合起来,以提供关于局部神经元网络内时空组织的细胞电流的补充信息。