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小脑微区复杂峰电位同步的行为相关性。

Behavioral correlates of complex spike synchrony in cerebellar microzones.

机构信息

Netherlands Institute for Neuroscience, Royal Netherlands Academy of Arts and Sciences, 1105 BA Amsterdam, The Netherlands and.

Netherlands Institute for Neuroscience, Royal Netherlands Academy of Arts and Sciences, 1105 BA Amsterdam, The Netherlands and Department of Neuroscience, Erasmus MC, 3000 CA Rotterdam, The Netherlands

出版信息

J Neurosci. 2014 Jul 2;34(27):8937-47. doi: 10.1523/JNEUROSCI.5064-13.2014.

DOI:10.1523/JNEUROSCI.5064-13.2014
PMID:24990915
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6608251/
Abstract

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.

摘要

橄榄小脑系统对于基于感觉和本体感觉提示的运动的平稳和适时执行至关重要。下橄榄核 (IO) 通过在神经元内部通过连接蛋白 36 间隙连接使其活动同步,并向小脑提供定时和/或学习信号,在这个过程中起着关键作用。尽管 IO 细胞中通过电耦联实现的同步性通常被认为对运动输出的定时很重要,但在使用转基因动物的功能性微丛内,从未证明运动的定时与橄榄状放电的同步性之间存在直接关系。在这里,我们结合了清醒野生型和连接蛋白 36 缺陷型小鼠体内的双光子钙成像,以记录复杂尖峰在浦肯野细胞 (PC) 树突的微丛中的活动,以及尾巴、躯干和肢体运动的高速拍摄。在休息时,野生型的功能 PC 簇定义较差,同步相关性相对较小,空间局限于约 50μm 的中侧距离,而在运动时,相同 PC 的同步性增强,并扩展到跨越多个微区的距离,这些距离可以与锐度和良好界限运动的特定成分相关联。相反,连接蛋白 36 缺陷型小鼠在休息和行为期间在 PC 微丛内表现出延长和去同步的复杂尖峰活动。重要的是,突变体还表现出脊髓小脑反射执行的伴随异常,其明显比野生型同窝仔慢且更渐进,特别是在感觉扰动后。我们的结果强调了调制小脑微丛内和之间的同步活动在运动输出的在线时间处理中的重要性。

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本文引用的文献

1
Cerebellar inhibitory input to the inferior olive decreases electrical coupling and blocks subthreshold oscillations.小脑对橄榄核的抑制性传入减少电耦合并阻断亚阈值振荡。
Neuron. 2014 Mar 19;81(6):1389-1400. doi: 10.1016/j.neuron.2014.02.032.
2
NMDA receptor activation strengthens weak electrical coupling in mammalian brain.NMDA 受体的激活增强了哺乳动物大脑中的弱电耦合。
Neuron. 2014 Mar 19;81(6):1375-1388. doi: 10.1016/j.neuron.2014.01.024.
3
Synaptically induced long-term modulation of electrical coupling in the inferior olive.下橄榄核中突触诱导的电耦合的长期调制。
Neuron. 2014 Mar 19;81(6):1290-1296. doi: 10.1016/j.neuron.2014.01.005.
4
Modulation of electrotonic coupling in the inferior olive by inhibitory and excitatory inputs: integration in the glomerulus.电紧张耦合在橄榄下核中的调制:在肾小球中的整合。
Neuron. 2014 Mar 19;81(6):1215-1217. doi: 10.1016/j.neuron.2014.03.009.
5
Clusters of cerebellar Purkinje cells control their afferent climbing fiber discharge.小脑浦肯野细胞簇控制其传入的 climbing 纤维放电。
Proc Natl Acad Sci U S A. 2013 Oct 1;110(40):16223-8. doi: 10.1073/pnas.1302310110. Epub 2013 Sep 17.
6
Strength and timing of motor responses mediated by rebound firing in the cerebellar nuclei after Purkinje cell activation.浦肯野细胞激活后小脑核中反弹放电介导的运动反应的强度和时机。
Front Neural Circuits. 2013 Aug 21;7:133. doi: 10.3389/fncir.2013.00133. eCollection 2013.
7
Number of spikes in climbing fibers determines the direction of cerebellar learning. climbing fibers 中的尖峰数量决定了小脑学习的方向。
J Neurosci. 2013 Aug 14;33(33):13436-40. doi: 10.1523/JNEUROSCI.1527-13.2013.
8
Oscillatory activity, phase differences, and phase resetting in the inferior olivary nucleus.下橄榄核中的振荡活动、相位差和相位重置。
Front Syst Neurosci. 2013 Jun 19;7:22. doi: 10.3389/fnsys.2013.00022. eCollection 2013.
9
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10
Climbing fiber burst size and olivary sub-threshold oscillations in a network setting.在网络环境中,爬行纤维爆发大小和橄榄下阈振荡。
PLoS Comput Biol. 2012;8(12):e1002814. doi: 10.1371/journal.pcbi.1002814. Epub 2012 Dec 13.