首页> 美国卫生研究院文献>Frontiers in Systems Neuroscience >Modulations in Oscillatory Activity of Globus Pallidus Internus Neurons During a Directed Hand Movement Task—A Primary Mechanism for Motor Planning
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Modulations in Oscillatory Activity of Globus Pallidus Internus Neurons During a Directed Hand Movement Task—A Primary Mechanism for Motor Planning

机译:定向手运动任务中的苍白球间质神经元的振荡活动的调制-运动计划的主要机制。

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摘要

Globus pallidus internus (GPi) neurons in the basal ganglia are traditionally thought to play a significant role in the promotion and suppression of movement via a change in firing rates. Here, we hypothesize that a primary mechanism of movement control by GPi neurons is through specific modulations in their oscillatory patterns. We analyzed neuronal spiking activity of 83 GPi neurons recorded from two healthy nonhuman primates executing a radial center-out motor task. We found that, in directionally tuned neurons, the power in the gamma band is significantly (p < 0.05) greater than that in the beta band (a “cross-over” effect), during the planning stages of movements in their preferred direction. This cross-over effect is not observed in the non-directionally tuned neurons. These data suggest that, during movement planning, information encoding by GPi neurons may be governed by a sudden emergence and suppression of oscillatory activities, rather than simply by a change in average firing rates.
机译:传统上认为,基底神经节中的苍白苍白球内层(GPi)神经元通过激发速率的改变在促进和抑制运动中起重要作用。在这里,我们假设GPi神经元的运动控制的主要机制是通过其振荡模式的特定调制。我们分析了从两个健康的非人类灵长类动物执行的径向中心向外运动任务记录的83个GPi神经元的神经突刺活动。我们发现,在定向运动的神经元的计划运动阶段中,在定向调谐的神经元中,γ带的功率显着大于β带(“交叉”效应)(p <0.05)。在非定向调整的神经元中未观察到这种交叉效应。这些数据表明,在运动计划期间,GPi神经元编码的信息可能受突然出现和抑制振荡活动的支配,而不是仅受平均发动率变化的支配。

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