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Climbing Fiber Coupling between Adjacent Purkinje Cell Dendrites in Vivo

机译:体内相邻Purkinje细胞树突之间的纤维耦合攀登

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摘要

Climbing fiber discharges within the rat cerebellar cortex have been shown to display synchrony, especially for climbing fibers terminating in the same parasagittal bands. In addition, Purkinje cells which have the smallest rostrocaudal separation also seem to have the highest degree of synchrony. But this has so far only been investigated for distances down to 250 μm. In the present study, we wanted to investigate whether Purkinje cells that are located immediately next to each other display a particularly pronounced synchrony in their climbing fiber discharges. To this end, we used a previously undescribed type of electrophysiological recording, a single electrode, loose patch, dual dendritic recording, from pairs of adjacent Purkinje cells in the decerebrated, non-anesthetized cat. From each recorded dendrite, this technique provided well isolated, unitary calcium spikes, which we found to have a spontaneous activity that was essentially identical with the pattern of spontaneous climbing fiber discharges. By calculating the coupling in firing between the adjacent dendrites, we found that most climbing fiber responses occurred independently of each other and that the probability of coupled discharges was less than 8%. These values are comparable to those obtained in previous studies for Purkinje cells located within the same parasagittal band and show that climbing fiber coupling within a microzone exists also in non-rodent mammalian species. However, since the degree of synchrony of climbing fiber discharge was not particularly pronounced in adjacent Purkinje cells, it seems unlikely that climbing fiber synchrony has pronounced systematic regional variations within the same microzone.
机译:已显示大鼠小脑皮层内的攀爬纤维放电显示出同步性,特别是对于终止于相同矢状旁带的攀爬纤维。另外,具有最小的后尾骨间隔的浦肯野细胞似乎也具有最高的同步度。但是到目前为止,仅对距离低至250μm的情况进行了研究。在本研究中,我们想研究彼此紧邻的浦肯野细胞在攀爬纤维放电中是否表现出特别明显的同步性。为此,我们使用了以前未描述过的电生理记录类型,即单电极,松散的贴片,双树突状记录,这些记录来自去脑,非麻醉猫中的相邻浦肯野细胞对。从每个记录的枝晶中,该技术提供了良好隔离的单一钙尖峰,我们发现其具有自发活性,该活动与自发攀爬纤维放电的模式基本相同。通过计算相邻枝晶之间的烧成耦合,我们发现大多数攀升纤维响应是彼此独立发生的,耦合放电的可能性小于8%。这些值与先前研究中位于相同矢状带内的Purkinje细胞的值相当,并且表明在非啮齿类哺乳动物中也存在微区内的攀爬纤维耦合。但是,由于在邻近的浦肯野细胞中攀爬纤维放电的同步程度不是特别明显,因此攀爬纤维同步似乎不太可能在同一微区内显示出系统的区域变化。

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