首页> 美国卫生研究院文献>Frontiers in Cellular Neuroscience >Synchronization in Primate Cerebellar Granule Cell Layer Local Field Potentials: Basic Anisotropy and Dynamic Changes During Active Expectancy
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Synchronization in Primate Cerebellar Granule Cell Layer Local Field Potentials: Basic Anisotropy and Dynamic Changes During Active Expectancy

机译:灵长类小脑颗粒细胞层局部场电位的同步:活动预期期间的基本各向异性和动态变化。

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摘要

The cerebellar cortex is remarkable for its organizational regularity, out of which task-related neural networks should emerge. In Purkinje cells, both complex and simple spike network patterns are evident in sensorimotor behavior. However, task-related patterns of activity in the granule cell layer (GCL) have been less studied. We recorded local field potential (LFP) activity simultaneously in pairs of GCL sites in monkeys performing an active expectancy (lever-press) task, in passive expectancy, and at rest. LFP sites were selected when they showed strong 10–25 Hz oscillations; pair orientation was in stereotaxic sagittal and coronal (mainly), and diagonal. As shown previously, LFP oscillations at each site were modulated during the lever-press task. Synchronization across LFP pairs showed an evident basic anisotropy at rest: sagittal pairs of LFPs were better synchronized (more than double the cross-correlation coefficients) than coronal pairs, and more than diagonal pairs. On the other hand, this basic anisotropy was modifiable: during the active expectancy condition, where sagittal and coronal orientations were tested, synchronization of LFP pairs would increase just preceding movement, most notably for the coronal pairs. This lateral extension of synchronization was not observed in passive expectancy. The basic pattern of synchronization at rest, favoring sagittal synchrony, thus seemed to adapt in a dynamic fashion, potentially extending laterally to include more cerebellar cortex elements. This dynamic anisotropy in LFP synchronization could underlie GCL network organization in the context of sensorimotor tasks.
机译:小脑皮质因其组织规律而著称,与之相关的与任务相关的神经网络应运而生。在浦肯野细胞中,复杂的和简单的尖峰网络模式在感觉运动行为中均很明显。但是,对与任务相关的颗粒细胞层(GCL)活动模式的研究较少。我们在成对的GCL站点中同时记录了猴子的局部场电位(LFP)活动,这些猴子在执行主动预期(杠杆按压)任务,被动预期和静止状态下都处于活动状态。当LFP站点表现出强烈的10–25 Hz振荡时,选择它们。配对方向为立体定向矢状和冠状(主要)和对角线。如前所示,在压杆操作期间,每个位置的LFP振荡都得到了调制。 LFP对之间的同步显示了静止时明显的基本各向异性:LFP的矢状对与冠状对的同步性更好(互相关系数的两倍以上),对角线对的同步性更好。另一方面,这种基本的各向异性是可以改变的:在预期活动状态下,测试了矢状和冠状位取向时,LFP​​对的同步会在运动之前增加,尤其是在冠状对中。在被动预期中未观察到同步的这种横向扩展。静止时同步的基本模式,有利于矢状同步,因此似乎以动态的方式适应,可能横向延伸以包括更多的小脑皮质元素。 LFP同步中的这种动态各向异性可能是感觉运动任务背景下GCL网络组织的基础。

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