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初始学习建立的皮质纹状体可塑性在行为逆转后持续存在。

Corticostriatal Plasticity Established by Initial Learning Persists after Behavioral Reversal.

作者信息

Ghosh Sanchari, Zador Anthony M

机构信息

Cold Spring Harbor Laboratory, Cold Spring Harbor, NY 11724.

Cold Spring Harbor Laboratory School of Biological Sciences, Cold Spring Harbor Laboratory, NY 11724.

出版信息

eNeuro. 2021 Mar 11;8(2). doi: 10.1523/ENEURO.0209-20.2021. Print 2021 Mar-Apr.

Abstract

The neural mechanisms that allow animals to adapt their previously learned associations in response to changes in the environment remain poorly understood. To probe the synaptic mechanisms that mediate such adaptive behavior, we trained mice on an auditory-motor reversal task, and tracked changes in the strength of corticostriatal synapses associated with the formation of learned associations. Using a ChR2-based electrophysiological assay in acute striatal slices, we measured the strength of these synapses after animals learned to pair auditory stimuli with specific actions. Here, we report that the pattern of synaptic strength initially established by learning remains unchanged even when the task contingencies are reversed. Our findings reveal that synaptic changes associated with the initial acquisition of this task are not erased or overwritten, and that behavioral reversal of learned associations may recruit a separate neural circuit. These results suggest a more complex role of the striatum in regulating flexible behaviors where activity of striatal neurons may vary given the behavioral contexts of specific stimulus-action associations.

摘要

动物如何根据环境变化调整先前习得的关联的神经机制仍知之甚少。为了探究介导这种适应性行为的突触机制,我们训练小鼠完成一项听觉-运动反转任务,并追踪与习得关联形成相关的皮质纹状体突触强度的变化。在急性纹状体切片中使用基于ChR2的电生理测定法,我们测量了动物学会将听觉刺激与特定动作配对后这些突触的强度。在此,我们报告即使任务条件反转,最初通过学习建立的突触强度模式仍保持不变。我们的研究结果表明,与该任务初始习得相关的突触变化不会被消除或覆盖,并且习得关联的行为反转可能会招募一个独立的神经回路。这些结果表明纹状体在调节灵活行为中发挥着更复杂的作用,其中纹状体神经元的活动可能会根据特定刺激-动作关联的行为背景而有所不同。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7de1/7986528/e71cd3fbde0e/SN-ENUJ210034F001.jpg

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