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状态依赖的小鼠体感皮层感知和编码变化。

State-Dependent Changes in Perception and Coding in the Mouse Somatosensory Cortex.

机构信息

Eccles Institute of Neuroscience, John Curtin School of Medical Research, The Australian National University, Canberra, ACT 2601, Australia; Australian Research Council Centre of Excellence for Integrative Brain Function, The Australian National University Node, Canberra, ACT 2601, Australia.

Eccles Institute of Neuroscience, John Curtin School of Medical Research, The Australian National University, Canberra, ACT 2601, Australia; Australian Research Council Centre of Excellence for Integrative Brain Function, The Australian National University Node, Canberra, ACT 2601, Australia.

出版信息

Cell Rep. 2020 Sep 29;32(13):108197. doi: 10.1016/j.celrep.2020.108197.

Abstract

An animal's behavioral state is reflected in the dynamics of cortical population activity and its capacity to process sensory information. To better understand the relationship between behavioral states and information processing, mice are trained to detect varying amplitudes of whisker-deflection under two-photon calcium imaging. Layer 2/3 neurons in the vibrissal primary somatosensory cortex are imaged across different behavioral states, defined based on detection performance (low to high-state) and pupil diameter. The neurometric curve in each behavioral state mirrors the corresponding psychometric performance, with calcium signals predictive of the animal's choice. High behavioral states are associated with lower network synchrony, extending over shorter cortical distances. The decrease in correlation across neurons in high state results in enhanced information transmission capacity at the population level. The observed state-dependent changes suggest that the coding regime within the first stage of cortical processing may underlie adaptive routing of relevant information through the sensorimotor system.

摘要

动物的行为状态反映在皮质群体活动的动态及其处理感觉信息的能力上。为了更好地理解行为状态和信息处理之间的关系,我们训练老鼠在双光子钙成像下检测不同幅度的胡须偏转。在不同的行为状态下对触须初级体感皮层的第 2/3 层神经元进行成像,这些行为状态是根据检测性能(低到高状态)和瞳孔直径来定义的。每个行为状态的神经测量曲线反映了相应的心理测量性能,钙信号可以预测动物的选择。高行为状态与较低的网络同步性相关,其影响范围延伸到较短的皮质距离。在高状态下神经元之间的相关性降低导致群体水平的信息传输能力增强。观察到的状态依赖性变化表明,在皮质处理的第一阶段的编码模式可能是通过感觉运动系统对相关信息进行自适应路由的基础。

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