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呼吸相关脑振荡对稀疏集合活动的阶段特异性汇聚

Phase-specific pooling of sparse assembly activity by respiration-related brain oscillations.

作者信息

Folschweiller Shani, Sauer Jonas-Frederic

机构信息

Institute for Physiology I, Medical Faculty, Albert-Ludwigs-University Freiburg, Freiburg, Germany.

Faculty of Biology, Albert-Ludwigs-University Freiburg, Freiburg, Germany.

出版信息

J Physiol. 2022 Apr;600(8):1991-2011. doi: 10.1113/JP282631. Epub 2022 Mar 17.

Abstract

Nasal breathing affects cognitive functions, but it has remained largely unclear how respiration-driven inputs shape information processing in neuronal circuits. Current theories emphasize the role of neuronal assemblies, coalitions of transiently active pyramidal cells, as the core unit of cortical network computations. Here, we show that the phase of respiration-related oscillations (RROs) influences the likelihood of activation of a subset of neuronal assemblies in the medial prefrontal cortex of awake mice. RROs bias the activation of neuronal assemblies more efficiently than that of individual neurons by entraining the coactivity of assembly neurons. Moreover, the activation of assemblies is moderately biased towards the descending phase of RROs. Despite the enriched activation of assemblies during descending RRO, the overlap between individual assemblies remains constant across RRO phases. Putative GABAergic interneurons are shown to coactivate with assemblies and receive enhanced excitatory drive from assembly neurons during descending RRO, suggesting that the phase-specific recruitment of putative interneurons might help to keep the activation of different assemblies separated from each other during times of preferred assembly activation. Our results thus identify respiration-synchronized brain rhythms as drivers of neuronal assemblies and point to a role of RROs in defining time windows of enhanced yet segregated assembly activity. KEY POINTS: Activation of neuronal assemblies is phase-coupled to ongoing respiration-related oscillations (RROs) in the medial prefrontal cortex of mice. The phase coupling strength of assemblies exceeds that of individual neurons. Assemblies preferentially activate during the descending phase of RRO. Despite higher assembly frequency during descending RRO, overlap between active assemblies remains constant across RRO phase. Putative GABAergic interneurons are preferentially recruited by assembly neurons during descending RRO, suggesting that interneurons might contribute to the segregation of active assemblies during the descending phase of RRO.

摘要

鼻腔呼吸会影响认知功能,但呼吸驱动的输入如何塑造神经回路中的信息处理,在很大程度上仍不清楚。当前理论强调神经元集合体(即瞬时活跃的锥体细胞联盟)作为皮质网络计算核心单元的作用。在这里,我们表明呼吸相关振荡(RRO)的相位会影响清醒小鼠内侧前额叶皮质中一部分神经元集合体的激活可能性。RRO通过带动集合体神经元的共同活动,比单个神经元更有效地使神经元集合体的激活产生偏差。此外,集合体的激活适度偏向于RRO的下降阶段。尽管在RRO下降期间集合体的激活有所增加,但各个集合体之间的重叠在RRO各阶段保持不变。据推测,GABA能中间神经元会与集合体共同激活,并在RRO下降期间从集合体神经元接收增强的兴奋性驱动,这表明在偏好的集合体激活时期,推测的中间神经元的相位特异性募集可能有助于使不同集合体的激活彼此分离。因此,我们的结果确定呼吸同步的脑节律是神经元集合体的驱动因素,并指出RRO在定义增强但分离的集合体活动的时间窗口中的作用。要点:小鼠内侧前额叶皮质中神经元集合体的激活与正在进行的呼吸相关振荡(RRO)相位耦合。集合体的相位耦合强度超过单个神经元。集合体在RRO下降阶段优先激活。尽管在RRO下降期间集合体频率较高,但活跃集合体之间的重叠在RRO各阶段保持不变。在RRO下降期间,推测的GABA能中间神经元优先被集合体神经元募集,这表明中间神经元可能在RRO下降阶段有助于活跃集合体的分离。

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