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麻醉和清醒小鼠的介观成像揭示感觉诱发和自发活动的时空结构。

Spatiotemporal structure of sensory-evoked and spontaneous activity revealed by mesoscale imaging in anesthetized and awake mice.

机构信息

University of Lethbridge, Faculty of Arts and Sciences, Department of Neuroscience, 4401 University Dr. W., Lethbridge, Alberta T1K 3M4, Canada.

University of Lethbridge, Faculty of Arts and Sciences, Department of Neuroscience, 4401 University Dr. W., Lethbridge, Alberta T1K 3M4, Canada; Center for Neurobiology of Learning and Memory, Department of Neurobiology and Behavior, University of California, Irvine, CA 92603, USA.

出版信息

Cell Rep. 2021 Dec 7;37(10):110081. doi: 10.1016/j.celrep.2021.110081.

Abstract

Stimuli-evoked and spontaneous brain activity propagates across the cortex in diverse spatiotemporal patterns. Despite extensive studies, the relationship between spontaneous and evoked activity is poorly understood. We investigate this relationship by comparing the amplitude, speed, direction, and complexity of propagation trajectories of spontaneous and evoked activity elicited with visual, auditory, and tactile stimuli using mesoscale wide-field imaging in mice. For both spontaneous and evoked activity, the speed and direction of propagation is modulated by the amplitude. However, spontaneous activity has a higher complexity of the propagation trajectories. For low stimulus strengths, evoked activity amplitude and speed is similar to that of spontaneous activity but becomes dissimilar at higher stimulus strengths. These findings are consistent with observations that primary sensory areas receive widespread inputs from other cortical regions, and during rest, the cortex tends to reactivate traces of complex multisensory experiences that might have occurred in exhibition of different behaviors.

摘要

刺激引发的和自发的大脑活动以不同的时空模式在皮层中传播。尽管进行了广泛的研究,但自发活动和诱发活动之间的关系仍未得到很好的理解。我们通过在小鼠中使用中尺度宽场成像来比较视觉、听觉和触觉刺激引发的自发和诱发活动的传播轨迹的振幅、速度、方向和复杂性,来研究这种关系。对于自发和诱发活动,传播的速度和方向都受到振幅的调节。然而,自发活动具有更高的传播轨迹复杂性。对于低强度的刺激,诱发活动的幅度和速度与自发活动相似,但在高强度刺激下变得不同。这些发现与以下观察结果一致,即主要感觉区域从其他皮层区域接收广泛的输入,并且在休息期间,皮层倾向于重新激活在不同行为表现中可能发生的复杂多感觉体验的痕迹。

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