Barmack N H, Shojaku H
Neuroscience. 1992 Sep;50(1):1-5. doi: 10.1016/0306-4522(92)90376-d.
In this report we describe an interesting form of plasticity in climbing fiber responses evoked in Purkinje cells of the rabbit cerebellum by periodic vestibular stimulation. The cerebellar nodulus receives a vestibular as well as a visual climbing fiber afferent input from the contralateral inferior olive. The vestibular input to the inferior olive originates from the ipsilateral medial and descending vestibular nuclei and terminates within the beta-nucleus. This projection to the beta-nucleus from secondary vestibular neurons is GABAergic. This means that vestibularly evoked activity of neurons in the beta-nucleus is controlled by modulation of an inhibitory input, rather than by modification of an excitatory input. We have recorded the climbing fiber responses of single Purkinje cells in the uvula-nodulus (lobules 9c, 9d and 10) of rabbits and we have characterized the climbing fiber response of each Purkinje cell from which we recorded by testing its sensitivity to otolithic stimulation, semicircular canal stimulation and optokinetic stimulation. Vestibularly evoked climbing fiber responses recorded from the left nodulus were stationary. They were repeatedly evoked, for tens of minutes, by sinusoidally rotating the rabbit about the longitudinal axis onto its left side (Fig. 1B). When the vestibular stimulus was stopped the discharge of these climbing fiber responses returned to non-periodic spontaneous levels. However, the vestibularly evoked climbing fiber discharge of approximately 5% of Purkinje cells was not stationary.(ABSTRACT TRUNCATED AT 250 WORDS)
在本报告中,我们描述了一种有趣的可塑性形式,它存在于周期性前庭刺激诱发的兔小脑浦肯野细胞的攀缘纤维反应中。小脑小结从对侧下橄榄核接受前庭以及视觉攀缘纤维传入输入。下橄榄核的前庭输入起源于同侧内侧和下行前庭核,并终止于β核内。从次级前庭神经元到β核的这种投射是γ-氨基丁酸能的。这意味着β核中神经元的前庭诱发活动是由抑制性输入的调制控制的,而不是由兴奋性输入的改变控制的。我们记录了兔蚓垂小结(小叶9c、9d和10)中单个浦肯野细胞的攀缘纤维反应,并通过测试其对耳石刺激、半规管刺激和视动刺激的敏感性,对我们记录的每个浦肯野细胞的攀缘纤维反应进行了特征描述。从左侧小结记录的前庭诱发攀缘纤维反应是稳定的。通过将兔子绕纵轴向左正弦旋转数十分钟,可反复诱发这些反应(图1B)。当前庭刺激停止时,这些攀缘纤维反应的放电恢复到非周期性自发水平。然而,约5%的浦肯野细胞的前庭诱发攀缘纤维放电并不稳定。(摘要截短于250字)