Okada Y C, Nicholson C
Department of Physiology and Biophysics, New York University Medical Center, New York 10016.
Biophys J. 1988 May;53(5):723-31. doi: 10.1016/S0006-3495(88)83153-9.
The neural basis of magnetic evoked fields of the brain was studied with an isolated turtle cerebellum as a model preparation. The turtle cerebellum is a nearly flat tissue with neural processes arranged along three orthogonal axes of symmetry. According to theoretical results, this geometry should enable us to selectively measure the magnetic field due to a subpopulation of nerve cells whose longitudinal axes are perpendicular to the cerebellar surface, by simply placing the cerebellum vertically in the bath so that these cells are horizontal and by measuring the field along the rostrocaudal axis perpendicular to the longitudinal axis of these nerve cells. To elicit neural activity in these cells the dorsal midline was electrically stimulated with a bipolar electrode. Consistent with our expectations, the one-dimensional profile of the field normal to bath surface (Bz) was antisymmetrical along the rostrocaudal axis, implying that the underlying currents were transcortical. Also, the Bz field at a field extremum varied as a cosine of the orientation of the cerebellum when it was rotated about its rostrocaudal axis with the amplitude being zero when the cerebellum was horizontal. The Bz field was dipolar as judged by statistically excellent fits of the dipolar field to the one-dimensional field profile and to the distance function relating the field magnitude at an extremum to measuring distance. This was the case even for the initial component thought to be due to antidromic action currents invading the soma and dendrites of Purkinje cells. We also showed that the dipolar term of the source could be localized within 1 mm of the actual source location in most cases.
以分离的龟小脑作为模型标本,研究了大脑磁诱发场的神经基础。龟小脑是一种近乎扁平的组织,其神经突起沿三个相互正交的对称轴排列。根据理论结果,这种几何结构应使我们能够通过简单地将小脑垂直放置在浴槽中,使这些细胞呈水平状态,并沿着垂直于这些神经细胞纵轴的头尾轴测量磁场,从而选择性地测量由于纵轴垂直于小脑表面的神经细胞亚群产生的磁场。为了激发这些细胞的神经活动,用双极电极对背中线进行电刺激。与我们的预期一致,垂直于浴槽表面的磁场(Bz)的一维分布沿头尾轴呈反对称,这意味着潜在电流是跨皮质的。此外,当小脑绕其头尾轴旋转时,场极值处的Bz场随小脑方向的余弦变化,当小脑水平时幅度为零。通过将偶极场与一维场分布以及将极值处场强与测量距离相关的距离函数进行统计学上的良好拟合判断,Bz场是偶极的。即使对于最初认为是由于逆向动作电流侵入浦肯野细胞的胞体和树突而产生的成分也是如此。我们还表明,在大多数情况下,源的偶极项可以定位在实际源位置的1毫米范围内。