Department of Physiology of Cognitive Processes, Max Planck Institute for Biological Cybernetics, Tübingen, Germany.
Graduate School of Neural and Behavioral Sciences, International Max Planck Research School, Eberhard-Karls University of Tübingen, Tübingen, Germany.
Nature. 2021 Jan;589(7840):96-102. doi: 10.1038/s41586-020-2914-4. Epub 2020 Nov 18.
The hippocampus has a major role in encoding and consolidating long-term memories, and undergoes plastic changes during sleep. These changes require precise homeostatic control by subcortical neuromodulatory structures. The underlying mechanisms of this phenomenon, however, remain unknown. Here, using multi-structure recordings in macaque monkeys, we show that the brainstem transiently modulates hippocampal network events through phasic pontine waves known as pontogeniculooccipital waves (PGO waves). Two physiologically distinct types of PGO wave appear to occur sequentially, selectively influencing high-frequency ripples and low-frequency theta events, respectively. The two types of PGO wave are associated with opposite hippocampal spike-field coupling, prompting periods of high neural synchrony of neural populations during periods of ripple and theta instances. The coupling between PGO waves and ripples, classically associated with distinct sleep stages, supports the notion that a global coordination mechanism of hippocampal sleep dynamics by cholinergic pontine transients may promote systems and synaptic memory consolidation as well as synaptic homeostasis.
海马体在编码和巩固长期记忆方面起着重要作用,并在睡眠期间发生可塑性变化。这些变化需要皮质下神经调质结构进行精确的同型平衡控制。然而,这种现象的潜在机制尚不清楚。在这里,我们使用猕猴的多结构记录表明,脑干通过称为桥脑-顶叶-枕叶波(PGO 波)的相发性桥脑波短暂地调节海马体网络事件。两种生理上不同类型的 PGO 波似乎依次发生,分别选择性地影响高频尖峰波和低频 theta 事件。两种类型的 PGO 波与相反的海马体尖峰场耦合相关联,促使在尖峰波和 theta 实例期间神经群体的高神经同步。PGO 波与尖峰波的耦合,与特定的睡眠阶段相关,支持这样一种观点,即胆碱能桥脑瞬变对海马体睡眠动力学的全局协调机制可能促进系统和突触记忆巩固以及突触同型平衡。