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意识丧失期间丘脑-海马体-内侧前额叶皮质通路的顺序失活。

Sequential deactivation across the thalamus-hippocampus-mPFC pathway during loss of consciousness.

作者信息

Chen Xiaoai, Cramer Samuel R, Chan Dennis C Y, Han Xu, Zhang Nanyin

出版信息

bioRxiv. 2024 May 20:2024.05.20.594986. doi: 10.1101/2024.05.20.594986.

Abstract

How consciousness is lost in states such as sleep or anesthesia remains a mystery. To gain insight into this phenomenon, we conducted concurrent recordings of electrophysiology signals in the anterior cingulate cortex and whole-brain functional magnetic resonance imaging (fMRI) in rats exposed to graded propofol, undergoing the transition from consciousness to unconsciousness. Our results reveal that upon the loss of consciousness (LOC), as indicated by the loss of righting reflex, there is a sharp increase in low-frequency power of the electrophysiological signal. Additionally, simultaneously measured fMRI signals exhibit a cascade of deactivation across a pathway including the hippocampus, thalamus, and medial prefrontal cortex (mPFC) surrounding the moment of LOC, followed by a broader increase in brain activity across the cortex during sustained unconsciousness. Furthermore, sliding window analysis demonstrates a temporary increase in synchrony of fMRI signals across the hippocampus-thalamus-mPFC pathway preceding LOC. These data suggest that LOC might be triggered by sequential activities in the hippocampus, thalamus and mPFC, while wide-spread activity increases in other cortical regions commonly observed during anesthesia-induced unconsciousness might be a consequence, rather than a cause of LOC. Taken together, our study identifies a cascade of neural events unfolding as the brain transitions into unconsciousness, offering critical insight into the systems-level neural mechanisms underpinning LOC.

摘要

在睡眠或麻醉等状态下意识是如何丧失的仍是一个谜。为了深入了解这一现象,我们对暴露于不同剂量丙泊酚下、经历从清醒到昏迷转变的大鼠,同时记录了前扣带回皮质的电生理信号和全脑功能磁共振成像(fMRI)。我们的结果显示,在意识丧失(LOC)时,如翻正反射消失所示,电生理信号的低频功率会急剧增加。此外,同时测量的fMRI信号在LOC时刻周围,会在包括海马体、丘脑和内侧前额叶皮质(mPFC)的一条通路上呈现出一连串的失活,随后在持续昏迷期间整个皮质的脑活动会更广泛地增加。此外,滑动窗口分析表明,在LOC之前,海马体 - 丘脑 - mPFC通路上的fMRI信号同步性会暂时增加。这些数据表明,LOC可能是由海马体、丘脑和mPFC中的顺序活动触发的,而在麻醉诱导的昏迷期间通常观察到的其他皮质区域广泛的活动增加可能是结果,而非LOC的原因。总之,我们的研究确定了大脑转变为昏迷状态时一系列神经事件的发生过程,为支撑LOC的系统层面神经机制提供了关键见解。

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