In and Out of Criticality? State-Dependent Scaling in the Rat Visual Cortex

PRX Life Pub Date : 2024-05-21 DOI:10.1103/prxlife.2.023008
Daniel M. Castro, Thaís Feliciano, Nivaldo A. P. de Vasconcelos, C. Soares-Cunha, B. Coimbra, A. Rodrigues, Pedro V. Carelli, Mauro Copelli
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Abstract

The presumed proximity to a critical point is believed to endow the brain with scale-invariant statistics, which are thought to confer various functional advantages in terms of its information processing, storage, and transmission capabilities. To assess the relationship between scaling and cortical states, we apply a phenomenological renormalization group analysis to 3-h spiking data recordings from the urethane-anesthetized rat's visual cortex. Under this type of anesthesia, cortical states dynamically shift across a spectrum of synchronization levels, defined by population spiking rate variability. By developing a scaling criterion based on the kurtosis of the momentum-space activity distribution, our study combines the coarse-graining method with state-dependent analysis. We find that scaling signatures only appear as spiking variability surpasses a specified threshold. Notably, within this regime, scaling exponents show relative stability. Conversely, subthreshold activity is primarily asynchronous and fails to meet the scaling criterion. Our results suggest that a wide range of cortical states corresponds to small deviations around a critical point, with the system fluctuating in and out of criticality, spending roughly three-quarters of the experiment duration within a scaling regime. Published by the American Physical Society 2024
进出临界状态?大鼠视觉皮层的状态依赖性缩放
接近临界点的假定被认为赋予了大脑尺度不变的统计特性,这被认为赋予了大脑在信息处理、存储和传输能力方面的各种功能优势。为了评估标度与大脑皮层状态之间的关系,我们对来自尿烷麻醉大鼠视觉皮层的 3 小时尖峰数据记录进行了现象学重正化群分析。在这种麻醉状态下,大脑皮层状态会在同步水平频谱上动态移动,而同步水平频谱是由群体尖峰率变异性定义的。通过开发基于动量空间活动分布峰度的缩放标准,我们的研究将粗粒度方法与状态相关分析相结合。我们发现,只有当尖峰振荡变异性超过特定阈值时,才会出现缩放特征。值得注意的是,在这种情况下,缩放指数显示出相对稳定性。相反,阈下活动主要是异步的,不符合缩放标准。我们的研究结果表明,大脑皮层的各种状态与临界点附近的小偏差相对应,系统在临界点内外波动,大约四分之三的实验持续时间都在缩放机制内。 美国物理学会发表 2024
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