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Behavioral correlates of complex spike synchrony in cerebellar microzones

机译:小脑微区复杂峰同步的行为相关

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The olivo-cerebellar system is crucial for smooth and well timed execution of movements based on sensory and proprioceptive cues. The inferior olive (IO) plays a pivotal role in this process by synchronizing its activity across neurons internally through connexin36 gap junctions and providing a timing and/or learning signal to the cerebellum. Even though synchrony achieved through electrical coupling in IO cells is generally thought to be important in timing motor output, a direct relation between timing of movement and synchrony of olivary discharges has never been demonstrated within functional microcomplexes using transgenics. Here we combined in vivo, two-photon calcium imaging of complex spikes in microcomplexes of Purkinje cell (PC) dendrites with high-speed filming of tail, trunk, and limb movements in awake wild-type and connexin36-deficient mice. In wild types at rest, functional clusters of PCs were poorly defined with synchrony correlations that were relatively small and spatially limited to mediolateral distances of ~50 μm, whereas during locomotion synchrony of the same PCs increased in strength and extended over distances spanning multiple microzones that could be correlated to specific components of sharp and well bounded movements. Instead, connexin36-deficient mice exhibited prolonged and desynchronized complex spike activity within PC microcomplexes both at rest and during behavior. Importantly, the mutants also showed concomitant abnormalities in the execution of spinocerebellar reflexes, which were significantly slower and more gradual than in wild-type littermates, particularly following sensory perturbations. Our results highlight the importance of modulation of synchronous activity within and between cerebellar microcomplexes in on-line temporal processing of motor output.
机译:橄榄小脑系统对于基于感觉和本体感受提示的平稳,及时的运动执行至关重要。下橄榄(IO)在此过程中起着举足轻重的作用,通过连接蛋白36间隙连接在内部跨神经元同步其活动,并向小脑提供时间和/或学习信号。尽管通常认为通过IO单元中的电耦合实现同步对于定时电机输出很重要,但从未在使用转基因的功能性微复合物中证明运动定时与卵放电同步之间的直接关系。在这里,我们结合了清醒的野生型和connexin36缺陷型小鼠的Purkinje细胞(PC)树突微复合物中的复合峰的体内双光子钙成像与高速拍摄尾巴,躯干和肢体运动的结合。在静止的野生型中,PC的功能簇定义不充分,同步相关性相对较小,并且在空间上仅限于〜50μm的中外侧距离,而在运动过程中,同一PC的强度同步增强,并跨越多个微区,可能与剧烈运动和界限分明的运动的特定组成部分相关。相反,连接蛋白36缺陷型小鼠在静止和行为期间在PC微复合物中均表现出延长的和不同步的复合钉活动。重要的是,这些突变体在执行脊髓小脑反射时也显示出相应的异常现象,与野生型同窝仔相比,这些异常明显更缓慢,更缓慢,特别是在感觉扰动之后。我们的研究结果突出了在小脑微复合体内部和之间的同步活动的调制在电机输出的在线时间处理中的重要性。

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