Rappelsberger P, Pockberger H, Petsche H
Pflugers Arch. 1981 Jan;389(2):159-70. doi: 10.1007/BF00582108.
This paper deals with the application of current source density (CSD) analysis to simultaneously recorded intracortical field potentials of the rabbit's visual cortex. Recordings were made with multielectrodes with either 8 contacts at distances of 300 microns, or 16 contacts at distances of 150 microns on one carrier needle. For synchronized activities, a spatial resolution of 150 microns turned out to be sufficient to record all depth-varying details of the field potentials; for seizure potentials even a spacing of 300 microns was adequate in most cases. For practical application, an appropriate spacing of the measuring points has to be chosen for a satisfactory estimation of the first and second derivatives of the field potentials. For this reason an interpolation procedure is applied to reduce the spacing from 300 microns or 150 microns electrode contact distances, respectively, and to obtain intermediate values at 75 microns distances. With this spacing satisfactory estimations of the second derivative are obtained. Theoretically, CSD analysis has to be made three-dimensionally, but under certain conditions which are discussed, a one-dimensional analysis can be applied. An unknown quantity is sigma z, the vertical conductivity. It turned out that average values obtained from different experiments are not representative and that the vertical conductivity has to be measured in every experiment. This is caused by the great individual differences of the cortices even if the same stereotactic coordinates are chosen. Therefore, in every experiment relative conductivity measurements are performed. The influence of different conductivity values within the various layers and the influence of a conductivity gradient is discussed and demonstrated by examples.
本文探讨了电流源密度(CSD)分析在兔视觉皮层同步记录的皮层内场电位中的应用。记录使用多电极,一种是在一根载针上有8个间距为300微米的触点,另一种是有16个间距为150微米的触点。对于同步活动,150微米的空间分辨率足以记录场电位所有随深度变化的细节;对于癫痫电位,在大多数情况下300微米的间距也足够。为了实际应用,必须选择合适的测量点间距,以便对场电位的一阶和二阶导数进行令人满意的估计。因此,应用了一种插值程序,将电极触点距离分别从300微米或150微米减小,并获得75微米间距处的中间值。采用这种间距可获得二阶导数的满意估计值。从理论上讲,CSD分析必须进行三维分析,但在讨论的某些条件下,可以应用一维分析。一个未知量是σz,即垂直电导率。结果表明,从不同实验获得的平均值不具有代表性,每个实验都必须测量垂直电导率。这是由于即使选择相同的立体定向坐标,皮层的个体差异也很大。因此,在每个实验中都要进行相对电导率测量。通过实例讨论并展示了各层内不同电导率值的影响以及电导率梯度的影响。