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纹状体前馈抑制与皮质纹状体兴奋失衡导致震颤。

Loss of Balance between Striatal Feedforward Inhibition and Corticostriatal Excitation Leads to Tremor.

机构信息

The Leslie and Susan Goldschmied (Gonda) Multidisciplinary Brain Research Center, Bar-Ilan University, Ramat-Gan, 52900, Israel.

The Leslie and Susan Goldschmied (Gonda) Multidisciplinary Brain Research Center, Bar-Ilan University, Ramat-Gan, 52900, Israel

出版信息

J Neurosci. 2018 Feb 14;38(7):1699-1710. doi: 10.1523/JNEUROSCI.2821-17.2018. Epub 2018 Jan 12.

Abstract

Fast-spiking interneurons (FSIs) exert powerful inhibitory control over the striatum and are hypothesized to balance the massive excitatory cortical and thalamic input to this structure. We recorded neuronal activity in the dorsolateral striatum and globus pallidus (GP) concurrently with the detailed movement kinematics of freely behaving female rats before and after selective inhibition of FSI activity using IEM-1460 microinjections. The inhibition led to the appearance of episodic rest tremor in the body part that depended on the somatotopic location of the injection within the striatum. The tremor was accompanied by coherent oscillations in the local field potential (LFP). Individual neuron activity patterns became oscillatory and coherent in the tremor frequency. Striatal neurons, but not GP neurons, displayed additional temporal, nonoscillatory correlations. The subsequent reduction in the corticostriatal input following muscimol injection to the corresponding somatotopic location in the primary motor cortex led to disruption of the tremor and a reduction of the LFP oscillations and individual neuron's phase-locked activity. The breakdown of the normal balance of excitation and inhibition in the striatum has been shown previously to be related to different motor abnormalities. Our results further indicate that the balance between excitatory corticostriatal input and feedforward FSI inhibition is sufficient to break down the striatal decorrelation process and generate oscillations resulting in rest tremor typical of multiple basal ganglia disorders. Fast-spiking interneurons (FSIs) play a key role in normal striatal processing by exerting powerful inhibitory control over the network. FSI malfunctions have been associated with abnormal processing of information within the striatum that leads to multiple movement disorders. Here, we study the changes in neuronal activity and movement kinematics following selective inhibition of these neurons. The injections led to the appearance of episodic rest tremor, accompanied by coherent oscillations in neuronal activity, which was reversed following corticostriatal inhibition. These results suggest that the balance between corticostriatal excitation and feedforward FSI inhibition is crucial for maintaining the striatal decorrelation process, and that its breakdown leads to the formation of oscillations resulting in rest tremor typical of multiple basal ganglia disorders.

摘要

快速放电中间神经元 (FSI) 对纹状体施加强大的抑制控制,并被假设为平衡来自该结构的皮质和丘脑大量兴奋性输入。我们在自由行为的雌性大鼠之前和之后,使用 IEM-1460 微注射选择性抑制 FSI 活性,同时记录背外侧纹状体和苍白球 (GP) 的神经元活动以及详细的运动运动学。抑制导致在注射在纹状体中的身体部位出现阵发性静止性震颤。震颤伴随着局部场电位 (LFP) 的相干振荡。个体神经元活动模式在震颤频率下变得振荡和相干。纹状体神经元,但不是 GP 神经元,显示出额外的时间非振荡相关性。随后,在初级运动皮层的相应躯体部位注射 muscimol 后,皮质纹状体输入减少,导致震颤中断,LFP 振荡和单个神经元的锁相活动减少。以前已经表明,纹状体中兴奋和抑制的正常平衡的破坏与不同的运动异常有关。我们的结果进一步表明,兴奋性皮质纹状体输入和前馈 FSI 抑制之间的平衡足以破坏纹状体去相关过程并产生导致静止性震颤的振荡,静止性震颤是多种基底节疾病的典型表现。快速放电中间神经元 (FSI) 通过对网络施加强大的抑制控制,在正常纹状体处理中发挥关键作用。FSI 功能障碍与纹状体内部信息的异常处理有关,导致多种运动障碍。在这里,我们研究了选择性抑制这些神经元后神经元活动和运动运动学的变化。注射导致阵发性静止性震颤的出现,伴随着神经元活动的相干振荡,皮质纹状体抑制后反转。这些结果表明,皮质纹状体兴奋和前馈 FSI 抑制之间的平衡对于维持纹状体去相关过程至关重要,其破坏导致导致静止性震颤的振荡形成,静止性震颤是多种基底节疾病的典型表现。

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