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丙泊酚介导的意识丧失会破坏神经活动的预测性路由和局部场相位调制。

Propofol-mediated loss of consciousness disrupts predictive routing and local field phase modulation of neural activity.

作者信息

Xiong Yihan Sophy, Donoghue Jacob A, Lundqvist Mikael, Mahnke Meredith, Major Alex James, Brown Emery N, Miller Earl K, Bastos André M

出版信息

bioRxiv. 2023 Sep 5:2023.09.02.555990. doi: 10.1101/2023.09.02.555990.

Abstract

UNLABELLED

Predictive coding is a fundamental function of the cortex. The predictive routing model proposes a neurophysiological implementation for predictive coding. Predictions are fed back from deep-layer cortex via alpha/beta (8-30Hz) oscillations. They inhibit the gamma (40-100Hz) and spiking that feed sensory inputs forward. Unpredicted inputs arrive in circuits unprepared by alpha/beta, resulting in enhanced gamma and spiking. To test the predictive routing model and its role in consciousness, we collected data from intracranial recordings of macaque monkeys during passive presentation of auditory oddballs (e.g., AAAAB) before and after propofol-mediated loss of consciousness (LOC). In line with the predictive routing model, alpha/beta oscillations in the awake state served to inhibit the processing of predictable stimuli. Propofol-mediated LOC eliminated alpha/beta modulation by a predictable stimulus in sensory cortex and alpha/beta coherence between sensory and frontal areas. As a result, oddball stimuli evoked enhanced gamma power, late (> 200 ms from stimulus onset) period spiking, and superficial layer sinks in sensory cortex. Therefore, auditory cortex was in a disinhibited state during propofol-mediated LOC. However, despite these enhanced feedforward responses in auditory cortex, there was a loss of differential spiking to oddballs in higher order cortex. This may be a consequence of a loss of within-area and inter-area spike-field coupling in the alpha/beta and gamma frequency bands. These results provide strong constraints for current theories of consciousness.

SIGNIFICANCE STATEMENT

Neurophysiology studies have found alpha/beta oscillations (8-30Hz), gamma oscillations (40-100Hz), and spiking activity during cognition. Alpha/beta power has an inverse relationship with gamma power/spiking. This inverse relationship suggests that gamma/spiking are under the inhibitory control of alpha/beta. The predictive routing model hypothesizes that alpha/beta oscillations selectively inhibit (and thereby control) cortical activity that is predictable. We tested whether this inhibitory control is a signature of consciousness. We used multi-area neurophysiology recordings in monkeys presented with tone sequences that varied in predictability. We recorded brain activity as the anesthetic propofol was administered to manipulate consciousness. Compared to conscious processing, propofol-mediated unconsciousness disrupted alpha/beta inhibitory control during predictive processing. This led to a disinhibition of gamma/spiking, consistent with the predictive routing model.

摘要

未标注

预测编码是皮层的一项基本功能。预测性路由模型提出了一种用于预测编码的神经生理学实现方式。预测信息通过α/β(8 - 30赫兹)振荡从皮层深层反馈回来。它们抑制将感觉输入向前传递的γ(40 - 100赫兹)振荡和尖峰信号。未预测到的输入到达没有被α/β准备好的神经回路,导致γ振荡增强和尖峰信号增强。为了测试预测性路由模型及其在意识中的作用,我们在丙泊酚介导的意识丧失(LOC)前后,对恒河猴在被动呈现听觉异常球(例如,AAAAB)期间进行颅内记录,收集数据。与预测性路由模型一致,清醒状态下的α/β振荡用于抑制可预测刺激的处理。丙泊酚介导的LOC消除了感觉皮层中可预测刺激对α/β的调制以及感觉和额叶区域之间的α/β相干性。结果,异常球刺激诱发了增强的γ功率、刺激开始后较晚(> 200毫秒)时期的尖峰信号以及感觉皮层浅层的汇。因此,在丙泊酚介导的LOC期间,听觉皮层处于去抑制状态。然而,尽管听觉皮层中这些前馈反应增强,但在高阶皮层中对异常球的差异尖峰信号丧失了。这可能是α/β和γ频段内区域间和区域间尖峰 - 场耦合丧失的结果。这些结果为当前的意识理论提供了有力的限制条件。

意义声明

神经生理学研究在认知过程中发现了α/β振荡(8 - 30赫兹)、γ振荡(40 - 100赫兹)和尖峰活动。α/β功率与γ功率/尖峰信号呈反比关系。这种反比关系表明γ/尖峰信号受α/β的抑制控制。预测性路由模型假设α/β振荡选择性地抑制(从而控制)可预测的皮层活动。我们测试了这种抑制控制是否是意识的一个特征。我们在呈现可预测性不同的音调序列的猴子中使用多区域神经生理学记录。在给予麻醉剂丙泊酚以操纵意识时,我们记录大脑活动。与有意识处理相比,丙泊酚介导的无意识状态在预测处理过程中破坏了α/β抑制控制。这导致γ/尖峰信号的去抑制,与预测性路由模型一致。

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