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功能状态塑造了小鼠感觉皮层中局部和全皮层神经活动的时空表现。

Functional states shape the spatiotemporal representation of local and cortex-wide neural activity in mouse sensory cortex.

机构信息

Institute of Pathophysiology, University Medical Center Mainz, Mainz, Germany.

Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts.

出版信息

J Neurophysiol. 2022 Oct 1;128(4):763-777. doi: 10.1152/jn.00424.2021. Epub 2022 Aug 17.

Abstract

The spatiotemporal representation of neural activity during rest and upon sensory stimulation in cortical areas is highly dynamic and may be predominantly governed by cortical state. On the mesoscale level, intrinsic neuronal activity ranges from a persistent state, generally associated with a sustained depolarization of neurons, to a bimodal, slow wave-like state with bursts of neuronal activation alternating with silent periods. These different activity states are prevalent under certain types of sedatives or are associated with specific behavioral or vigilance conditions. Neurophysiological experiments assessing circuit activity usually assume a constant underlying state, yet reports of variability of neuronal responses under seemingly constant conditions are common in the field. Even when a certain type of neural activity or cortical state can be stably maintained over time, the associated response properties are highly relevant for explaining experimental outcomes. Here we describe the spatiotemporal characteristics of ongoing activity and sensory-evoked responses under two predominant functional states in the sensory cortices of mice: persistent activity (PA) and slow wave activity (SWA). Using electrophysiological recordings and local and wide-field calcium recordings, we examine whether spontaneous and sensory-evoked neuronal activity propagate throughout the cortex in a state-dependent manner. We find that PA and SWA differ in their spatiotemporal characteristics, which determine the cortical network's response to a sensory stimulus. During PA state, sensory stimulation elicits gamma-based short-latency responses that precisely follow each stimulation pulse and are prone to adaptation upon higher stimulation frequencies. Sensory responses during SWA are more variable, dependent on refractory periods following spontaneous slow waves. Although spontaneous slow waves propagated in anterior-posterior direction in a majority of observations, the direction of propagation of stimulus-elicited wave depends on the sensory modality. These findings suggest that cortical state explains variance and should be considered when investigating multiscale correlates of functional neurocircuit activity. Here we dissect the cortical representation of brain states based on local photometry recordings and on mesoscale cortical calcium imaging, complemented by electrophysiological recordings in mice. We identify two distinct functional states in the sensory cortices, which differ in their spatiotemporal characteristics on the local and global cortical scales. We examine how intrinsic and stimulus-evoked neuronal activity propagates throughout the cortex in a state-dependent manner, supporting the notion that cortical state is a relevant variable to consider for a wide range of neurophysiological experiments.

摘要

在皮质区域中,休息时和受到感觉刺激时的神经活动的时空表现具有高度动态性,可能主要由皮质状态决定。在介观尺度上,内在神经元活动的范围从持续状态(通常与神经元持续去极化相关)到双模态慢波样状态,其中神经元激活的爆发与静默期交替出现。这些不同的活动状态在某些类型的镇静剂下很普遍,或者与特定的行为或警觉状态有关。评估电路活动的神经生理学实验通常假设存在一个恒定的基础状态,但在该领域中,关于在看似恒定的条件下神经元反应可变性的报告很常见。即使在某种类型的神经活动或皮质状态可以随时间稳定维持的情况下,相关的反应特性对于解释实验结果也非常重要。在这里,我们描述了在小鼠感觉皮层中的两种主要功能状态下,持续活动(PA)和慢波活动(SWA)下的活动的时空特征。使用电生理记录和局部及广域钙记录,我们检查了自发和感觉诱发的神经元活动是否以依赖状态的方式在整个皮层中传播。我们发现,PA 和 SWA 在其时空特征上存在差异,这决定了皮质网络对感觉刺激的反应。在 PA 状态下,感觉刺激会引发基于伽马的短潜伏期反应,这些反应精确地跟随每个刺激脉冲,并且在更高的刺激频率下容易适应。在 SWA 期间,感觉反应更具可变性,取决于自发慢波后的不应期。尽管自发慢波在大多数观察中从前向后传播,但刺激引发的波的传播方向取决于感觉模态。这些发现表明,皮质状态解释了变异性,在研究功能神经电路活动的多尺度相关性时应该考虑到这一点。在这里,我们基于局部光度记录和介观皮质钙成像,以及在小鼠中的电生理记录,剖析大脑状态的皮质表示。我们在感觉皮层中确定了两种不同的功能状态,它们在局部和全局皮质尺度上的时空特征存在差异。我们检查了内在和刺激诱发的神经元活动如何以依赖状态的方式在整个皮层中传播,这支持了皮质状态是广泛的神经生理学实验中一个相关变量的观点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0996/9722264/06477ddff60e/jn-00424-2021r01.jpg

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