首页> 美国卫生研究院文献>Frontiers in Systems Neuroscience >Large Scale Calcium Imaging of the Cerebellar Vermis During Sensory Stimulus Unravels Two Response’s Components That Differ in Their Spatiotemporal Properties
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Large Scale Calcium Imaging of the Cerebellar Vermis During Sensory Stimulus Unravels Two Response’s Components That Differ in Their Spatiotemporal Properties

机译:感觉刺激期间小脑S部的大型钙成像揭示了两个反应的时空特性有所不同的成分

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摘要

The well documented precision of the cerebellar sagittal organization is commonly used to compose a comprehensive view on principles of cerebellar function. However, the physiological manifestation of this organization is either limited to information derived from single unit recordings or from imaging of a small group of closely located neurons. Here we used large scale imaging to monitor calcium concentration changes in the entire vermal area of folia V and VI in anesthetized mice. We found that the response to a strong auditory input or electrical shock to the tail area is composed of an early and a late component that differ in their spatiotemporal properties. The early component occurs throughout the scanned area whereas the late component reflects synchronous activation of Purkinje cells located along symmetric parasagittal bands that correspond well to sagittal band 2+ (). Similar organization was found in the rigorously disorganized cerebellum of Cxcr4 KO mice, suggesting that the sagittal organization is determined by the climbing fiber inputs to the cerebellar cortex. The responses for both stimuli are followed by a prolonged recovery period but the rate of recovery from auditory stimulus is much longer, reflecting a different site for the adapting process. We suggest that these sensory inputs, which are commonly used to evoke startle response, activate two sets of climbing fiber inputs that differ in their spatiotemporal properties and contribute to the motor organization and habituation of the startle response.Significance Statement:The ensemble activity of neurons in the brain is one of the current challenges of neuroscience. Here we use a fast and large-scale calcium imaging system to monitor ensemble activity in the cerebellar cortex following auditory stimuli or electric shocks to the tail. The system, which enables the detection of the response to a single trail, reveals the robustness of the functional organization of the olivo-cerebellar system in sagittal bands that is preserved in genetically induced disorganized cerebellar cortex. Furthermore, the response, which represents the activation of two sets of climbing fibers inputs, is followed by a prolonged recovery process that indicates the cerebellar involvement in startle response.
机译:小脑矢状位组织的精确记录的精度通常用于组成对小脑功能原理的综合看法。但是,该组织的生理表现仅限于从单个单位记录中获得的信息或从一小组位置紧密的神经元的成像中获得的信息。在这里,我们使用了大型成像技术来监测麻醉小鼠的整个叶V和VI的整个口腔区域的钙浓度变化。我们发现,对强烈的听觉输入或对尾巴区域的电击的反应由时空特性不同的早期和晚期成分组成。早期成分遍及整个扫描区域,而晚期成分则反映了沿对称的矢状带(与矢状带2+()相当)定位的Purkinje细胞的同步激活。在Cxcr4 KO小鼠的严格无序的小脑中发现了类似的组织,这表明矢状组织是由向小脑皮层输入的攀爬纤维决定的。对这两种刺激的响应都伴随着延长的恢复期,但是从听觉刺激中恢复的速度要长得多,这反映了适应过程的不同部位。我们建议这些常用于引起惊吓反应的感觉输入会激活两组时空性质不同的攀爬纤维输入,并有助于运动组织和惊吓反应的习惯化。意义声明:神经元的集合活动在大脑中,神经科学是当前的挑战之一。在这里,我们使用快速,大规模的钙成像系统来监测听觉刺激或电击尾巴后小脑皮层的合奏活动。该系统能够检测对单个轨迹的响应,揭示了在遗传诱导的无序小脑皮层中保留的矢状带中小脑小脑系统功能组织的鲁棒性。此外,响应代表了两组攀爬纤维输入的激活,随后是延长的恢复过程,表明小脑参与了惊吓反应。

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