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通过自然刺激在兔小脑蚓垂-小结中诱发的前庭和视觉攀爬纤维信号。

Vestibular and visual climbing fiber signals evoked in the uvula-nodulus of the rabbit cerebellum by natural stimulation.

作者信息

Barmack N H, Shojaku H

机构信息

R.S. Dow Neurological Sciences Institute, Legacy Good Samaritan Hospital & Medical Center, Portland, Oregon 97209, USA.

出版信息

J Neurophysiol. 1995 Dec;74(6):2573-89. doi: 10.1152/jn.1995.74.6.2573.

DOI:10.1152/jn.1995.74.6.2573
PMID:8747215
Abstract
  1. The cerebellar uvula-nodulus receives vestibular projections from primary and secondary vestibular afferents as well as vestibularly related climbing fibers. It also receives visually related information from climbing fiber pathways. In this experiment we investigated how this information is mapped onto the uvula-nodulus. We studied the specificity, dynamics, and topographic distribution of climbing fiber responses (CFRs), simple spike responses, and mossy fiber terminal responses evoked by vestibular and optokinetic stimulation in rabbits anesthetized with alpha-chloralose. 2. Vestibularly evoked CFRs were found in the ventral uvula and nodulus. These responses were evoked during static roll tilt of the rabbit about a longitudinal axis and by sinusoidal oscillation about the longitudinal axis. Purely static responses were attributed to stimulation of the utricular otolith by the linear acceleration of gravity. CFRs that lacked a static component were attributed to activation of the semicircular canals. 3. Using a "null technique" we showed that the canal-sensitive CFRs were caused by stimulation of the anterior or posterior semicircular canals. Of the CFRs classified as canal related, 96% could be attributed to stimulation of the vertical semicircular canals. 4. Increases in CFRs were correlated with decreases in simple spike responses in half the Purkinje cells from which we recorded. These climbing-fiber-induced pauses in simple spikes occurred during spontaneous climbing fiber discharge as well as during climbing fiber discharge evoked by vestibular stimulation. The duration of this pause was inversely proportional to the spontaneous level of simple spikes before the occurrence of a CFR. In the other half of the recorded population of Purkinje cells, vestibularly driven CFRs did not alter the simple spike responses. 5. Vestibularly and visually mediated CFRs were topographically represented on the surface of the uvula-nodulus. CFRs driven by ipsilateral otolithic inputs were distributed over the entire mediolateral surface of the uvula-nodulus. CFRs driven by the ipsilateral posterior semicircular canal were distributed in a sagittal strip approximately 1.5 mm wide, extending laterally from the midline of the nodulus. CFRs driven exclusively by horizontal, posterior-->anterior optokinetic stimulation of the ipsilateral eye were distributed in a sagittal strip approximately 0.5 mm wide located 0.5-1.0 mm from the midline and restricted to the ventral nodulus. CFRs driven by the ipsilateral anterior semicircular canal were found in a sagittal strip approximately 1.0 mm wide extending 1.0-2.0 mm from the midline. 6. The sagittal, topographically arrayed climbing fiber strips effectively map a mediolateral gradient of possible postural responses based on vestibular and optokinetic information.
摘要
  1. 小脑蚓垂-小结接受来自初级和次级前庭传入纤维以及与前庭相关的攀缘纤维的前庭投射。它还从攀缘纤维通路接收与视觉相关的信息。在本实验中,我们研究了这些信息如何映射到蚓垂-小结上。我们研究了用α-氯醛糖麻醉的家兔在前庭和视动刺激下诱发的攀缘纤维反应(CFRs)、简单锋电位反应和苔藓纤维终末反应的特异性、动力学和拓扑分布。2. 在前庭诱发的CFRs在蚓垂腹侧和小结中被发现。这些反应在兔子绕纵轴的静态滚动倾斜期间以及绕纵轴的正弦振荡期间诱发。纯粹的静态反应归因于重力线性加速度对椭圆囊耳石的刺激。缺乏静态成分的CFRs归因于半规管的激活。3. 使用“零技术”我们表明,对半规管敏感的CFRs是由前半规管或后半规管的刺激引起的。在被归类为与半规管相关的CFRs中,96%可归因于垂直半规管的刺激。4. 在我们记录的一半浦肯野细胞中,CFRs的增加与简单锋电位反应的减少相关。这些由攀缘纤维诱导的简单锋电位暂停发生在自发攀缘纤维放电期间以及前庭刺激诱发的攀缘纤维放电期间。这个暂停的持续时间与CFRs出现前简单锋电位的自发水平成反比。在记录的另一半浦肯野细胞群体中,前庭驱动的CFRs没有改变简单锋电位反应。5. 前庭和视觉介导的CFRs在蚓垂-小结表面呈拓扑分布。由同侧耳石输入驱动的CFRs分布在蚓垂-小结的整个内外侧表面。由同侧后半规管驱动的CFRs分布在一个大约1.5毫米宽的矢状条带中,从小结中线向外侧延伸。仅由同侧眼睛的水平、后→前视动刺激驱动的CFRs分布在一个大约0.5毫米宽的矢状条带中,位于距中线0.5 - 1.0毫米处,且仅限于小结腹侧。由同侧前半规管驱动的CFRs在一个大约1.0毫米宽的矢状条带中被发现,从中线延伸1.0 - 2.0毫米。6. 矢状排列的、拓扑分布的攀缘纤维条带基于前庭和视动信息有效地映射了可能的姿势反应的内外侧梯度。

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