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Dual function of thalamic low-vigilance state oscillations: rhythm-regulation and plasticity

机译:丘脑低警觉性状态振荡的双重功能:节奏调节和可塑性

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摘要

During inattentive wakefulness and non-rapid eye movement (NREM) sleep, the neocortex and thalamus cooperatively engage in rhythmic activities that are exquisitely reflected in the electroencephalogram as distinctive rhythms spanning a range of frequencies from <1 Hz slow waves to 13 Hz alpha waves. In the thalamus, these diverse activities emerge through the interaction of cell-intrinsic mechanisms and local and long-range synaptic inputs. One crucial feature, however, unifies thalamic oscillations of different frequencies: repetitive burst firing driven by voltage-dependent Ca2+ spikes. Recent evidence reveals that thalamic Ca2+ spikes are inextricably linked to global somatodendritic Ca2+ transients and are essential for several forms of thalamic plasticity. Thus, we here propose herein that alongside their rhythm-regulation function, thalamic oscillations of low-vigilance states have a plasticity function that, through modifications of synaptic strength and cellular excitability in local neuronal assemblies, can shape ongoing oscillations during inattention and NREM sleep and may potentially reconfigure thalamic networks for faithful information processing during attentive wakefulness.
机译:在注意力不集中的清醒和快速眼动(NREM)睡眠期间,新皮层和丘脑共同参与有节律的活动,这些活动在脑电图中被很好地反映为独特的节律,频率范围从<1 Hz慢波到13 Hzα波。在丘脑中,这些不同的活动通过细胞内在机制与局部和远距离突触输入的相互作用而出现。但是,一个关键特征是统一了不同频率的丘脑振荡:由依赖于电压的Ca 2 + 尖峰驱动的重复性脉冲发射。最近的证据表明,丘脑Ca 2 + 峰与整体体树突状Ca 2 + 瞬变有着密不可分的联系,并且对于几种形式的丘脑可塑性至关重要。因此,我们在此提出,低警惕状态的丘脑振荡除了具有节律调节功能外,还具有可塑性功能,通过改变局部神经元组件中的突触强度和细胞兴奋性,可以在注意力不集中和NREM睡眠期间形成持续的振荡。可能会在注意唤醒期间重新配置丘脑网络以进行忠实的信息处理。

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