Yang Yifan, Leopold David A, Duyn Jeff H, Sipe Grayson O, Liu Xiao
Department of Biomedical Engineering, The Pennsylvania State University, University Park, PA, 16802, USA.
Neurophysiology Imaging Facility, National Institute of Mental Health, National Institute of Neurological. Disorders and Stroke, and National Eye Institute, National Institutes of Health, Bethesda, MD, 20892, USA.
bioRxiv. 2023 Oct 6:2023.10.04.560900. doi: 10.1101/2023.10.04.560900.
The neural encoding of sensory stimuli is subject to the brain's internal circuit dynamics. Recent work has demonstrated that the resting brain exhibits widespread, coordinated activity that plays out over multisecond timescales in the form of quasi-periodic spiking cascades. Here we demonstrate that these intrinsic dynamics persist during the presentation of visual stimuli and markedly influence the efficacy of feature encoding in the visual cortex. During periods of passive viewing, the sensory encoding of visual stimuli was determined by quasi-periodic cascade cycle evolving over several seconds. During this cycle, high efficiency encoding occurred during peak arousal states, alternating in time with hippocampal ripples, which were most frequent in low arousal states. However, during bouts of active locomotion, these arousal dynamics were abolished: the brain remained in a state in which visual coding efficiency remained high and ripples were absent. We hypothesize that the brain's observed dynamics during awake, passive viewing reflect an adaptive cycle of alternating exteroceptive sensory sampling and internal mnemonic function.
感觉刺激的神经编码受大脑内部回路动力学的影响。最近的研究表明,静息状态下的大脑呈现出广泛的、协调的活动,这种活动以准周期性尖峰级联的形式在多秒时间尺度上展开。在此,我们证明这些内在动力学在视觉刺激呈现期间持续存在,并显著影响视觉皮层中特征编码的效率。在被动观看期间,视觉刺激的感觉编码由持续数秒的准周期性级联循环决定。在这个循环中,高效编码发生在觉醒峰值状态期间,与海马体涟漪在时间上交替出现,而海马体涟漪在低觉醒状态下最为频繁。然而,在主动运动期间,这些觉醒动力学被消除:大脑保持在视觉编码效率高且无涟漪的状态。我们推测,在清醒、被动观看期间观察到的大脑动力学反映了外部感觉采样和内部记忆功能交替的适应性循环。