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抑制性和兴奋性输入如何控制橄榄下核的输出。

How inhibitory and excitatory inputs gate output of the inferior olive.

机构信息

Department of Neuroscience, Erasmus MC, Rotterdam, Netherlands.

Netherlands Institute for Neuroscience, Royal Academy of Arts & Sciences, Amsterdam, Netherlands.

出版信息

Elife. 2023 Aug 1;12:e83239. doi: 10.7554/eLife.83239.

Abstract

The inferior olive provides the climbing fibers to Purkinje cells in the cerebellar cortex, where they elicit all-or-none complex spikes and control major forms of plasticity. Given their important role in both short-term and long-term coordination of cerebellum-dependent behaviors, it is paramount to understand the factors that determine the output of olivary neurons. Here, we use mouse models to investigate how the inhibitory and excitatory inputs to the olivary neurons interact with each other, generating spiking patterns of olivary neurons that align with their intrinsic oscillations. Using dual color optogenetic stimulation and whole-cell recordings, we demonstrate how intervals between the inhibitory input from the cerebellar nuclei and excitatory input from the mesodiencephalic junction affect phase and gain of the olivary output at both the sub- and suprathreshold level. When the excitatory input is activated shortly (50 ms) after the inhibitory input, the phase of the intrinsic oscillations becomes remarkably unstable and the excitatory input can hardly generate any olivary spike. Instead, when the excitatory input is activated one cycle (150 ms) after the inhibitory input, the excitatory input can optimally drive olivary spiking, riding on top of the first cycle of the subthreshold oscillations that have been powerfully reset by the preceding inhibitory input. Simulations of a large-scale network model of the inferior olive highlight to what extent the synaptic interactions penetrate in the neuropil, generating quasi-oscillatory spiking patterns in large parts of the olivary subnuclei, the size of which also depends on the relative timing of the inhibitory and excitatory inputs.

摘要

下橄榄核为小脑皮层中的浦肯野细胞提供了攀缘纤维,在那里它们引发全或无复杂 spikes 并控制主要形式的可塑性。鉴于它们在小脑依赖行为的短期和长期协调中都起着重要作用,了解决定橄榄核神经元输出的因素至关重要。在这里,我们使用小鼠模型来研究橄榄核神经元的抑制性和兴奋性输入如何相互作用,产生与内在振荡相一致的橄榄核神经元的 spikes 模式。使用双色光遗传刺激和全细胞记录,我们展示了小脑核的抑制性输入和中脑 - 间脑交界处的兴奋性输入之间的间隔如何影响亚阈值和超阈值水平的橄榄输出的相位和增益。当兴奋性输入在抑制性输入后约 50 毫秒(ms)被激活时,内在振荡的相位变得非常不稳定,并且兴奋性输入几乎不能产生任何橄榄 spike。相反,当兴奋性输入在抑制性输入后一个周期(约 150 毫秒)被激活时,兴奋性输入可以最佳地驱动橄榄 spike,骑在由先前的抑制性输入强力重置的第一个亚阈值振荡周期的顶部。对下橄榄核的大规模网络模型的模拟突出了突触相互作用在神经胶中的渗透程度,在橄榄核亚核的大部分区域产生准振荡 spikes 模式,其大小还取决于抑制性和兴奋性输入的相对时间。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cff9/10393294/9b67a8fe1ced/elife-83239-fig1.jpg

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