...
首页> 外文期刊>Neurocomputing >Sequential stimulation of rat cerebellar granular layer in wivo: Further evidence of a 'tidal-wave' timing mechanism in the cerebellum
【24h】

Sequential stimulation of rat cerebellar granular layer in wivo: Further evidence of a 'tidal-wave' timing mechanism in the cerebellum

机译:连续刺激大鼠小脑小脑颗粒层:小脑“潮汐”计时机制的进一步证据

获取原文
获取原文并翻译 | 示例
           

摘要

Here we present evidence that the cerebellar cortex in vivo specifically responses to sequential input to the granular layer, the main input site of the cerebellar cortex. Ordered sequences of electrical stimuli were delivered through an array of stikulating electrodes in such a way, that an apparent movement of the stimulus was produced. The parallel fiber population responses to sequential stimuli 'moving' at 7 different velocities (0.1-0.7 m/s) and in two different directions (towards and away from the recording site) were measured exteracellularly in the molecular layer. Population responses were maximal when the stimulus moved towards the recording site at a velocity close to the conduction velocity of parallel fibers. Responses were significantly reduced when the stimulus velocity was higher or lower. We conclude that the charcteristic geometrical arrangement of parallel fibers enables the cerebellum to specifically detect precise spatio-temporal activity patterns in the mossy fiber system. These findings confirm earlier observations made in vitro and shed new light on the functional interpretation of cerebellar anatomy. Together with recent findings suggesting that precise spatio-temporal activity patterns play a key role in information processing in the neocortex, the results reported here are particularly important concerning the information exchange between the strongly interconnected cerebellum and neocortex.
机译:在这里,我们提供的证据表明,小脑皮质在体内对顺序输入到颗粒层(小脑皮质的主要输入部位)的特异性反应。电刺激的有序序列以这样一种方式通过一系列刺激电极传递,使得产生了明显的刺激运动。在分子层中在细胞外测量了平行纤维群体对连续刺激以7种不同速度(0.1-0.7 m / s)和沿两个不同方向(朝向和远离记录部位)“移动”的响应。当刺激以接近平行纤维传导速度的速度向记录位置移动时,种群反应最大。当刺激速度更高或更低时,反应显着降低。我们得出结论,平行纤维的特征性几何排列使小脑能够特异性检测出苔藓纤维系统中的精确时空活动模式。这些发现证实了较早的体外观察,为小脑解剖的功能解释提供了新的思路。连同最近的发现表明精确的时空活动模式在新皮质的信息处理中起着关键作用,这里报道的结果对于在紧密相连的小脑和新皮质之间的信息交换特别重要。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号