Gamma band directional interactions between basal forebrain and visual cortex during wake and sleep states

Jayakrishnan Nair , Arndt-Lukas Klaassen , Jordan Poirot , Alexei Vyssotski , Björn Rasch , Gregor Rainer
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引用次数: 15

Abstract

The basal forebrain (BF) is an important regulator of cortical excitability and responsivity to sensory stimuli, and plays a major role in wake-sleep regulation. While the impact of BF on cortical EEG or LFP signals has been extensively documented, surprisingly little is known about LFP activity within BF. Based on bilateral recordings from rats in their home cage, we describe endogenous LFP oscillations in the BF during quiet wakefulness, rapid eye movement (REM) and slow wave sleep (SWS) states. Using coherence and Granger causality methods, we characterize directional influences between BF and visual cortex (VC) during each of these states. We observed pronounced BF gamma activity particularly during wakefulness, as well as to a lesser extent during SWS and REM. During wakefulness, this BF gamma activity exerted a directional influence on VC that was associated with cortical excitation. During SWS but not REM, there was also a robust directional gamma band influence of BF on VC. In all three states, directional influence in the gamma band was only present in BF to VC direction and tended to be regulated specifically within each brain hemisphere. Locality of gamma band LFPs to the BF was confirmed by demonstration of phase locking of local spiking activity to the gamma cycle. We report novel aspects of endogenous BF LFP oscillations and their relationship to cortical LFP signals during sleep and wakefulness. We link our findings to known aspects of GABAergic BF networks that likely underlie gamma band LFP activations, and show that the Granger causality analyses can faithfully recapitulate many known attributes of these networks.

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在清醒和睡眠状态下基底前脑和视觉皮层之间的伽马波段定向相互作用
基底前脑(BF)是皮层兴奋性和感觉刺激反应的重要调节器,在清醒-睡眠调节中起重要作用。虽然BF对皮质脑电图或LFP信号的影响已被广泛记录,但令人惊讶的是,对于BF中LFP的活动知之甚少。基于大鼠在其家笼中的双侧记录,我们描述了静醒、快速眼动(REM)和慢波睡眠(SWS)状态下BF的内源性LFP振荡。利用相干性和格兰杰因果关系方法,我们表征了在每种状态下BF和视觉皮层(VC)之间的定向影响。我们观察到明显的BF γ活动,特别是在清醒期间,在SWS和REM期间也有较小程度的活动。在清醒期间,这种BF γ活动对与皮层兴奋相关的VC产生方向性影响。在快速眼动期间,BF对VC也有较强的定向γ波段影响。在所有三种状态下,伽马波段的定向影响仅存在于BF到VC方向,并且倾向于在每个脑半球内特异性调节。伽玛波段lfp对BF的局部性通过对伽玛周期局部尖峰活动的锁相论证得到了证实。我们报告了内源性BF LFP振荡的新方面及其与睡眠和清醒期间皮层LFP信号的关系。我们将我们的发现与GABAergic BF网络的已知方面联系起来,这些方面可能是伽马波段LFP激活的基础,并表明格兰杰因果关系分析可以忠实地概括这些网络的许多已知属性。
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来源期刊
Journal of Physiology-Paris
Journal of Physiology-Paris 医学-神经科学
CiteScore
2.02
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Each issue of the Journal of Physiology (Paris) is specially commissioned, and provides an overview of one important area of neuroscience, delivering review and research papers from leading researchers in that field. The content will interest both those specializing in the experimental study of the brain and those working in interdisciplinary fields linking theory and biological data, including cellular neuroscience, mathematical analysis of brain function, computational neuroscience, biophysics of brain imaging and cognitive psychology.
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