Information flow between motor cortex and striatum reverses during skill learning

神经科学 纹状体 运动学习 心理学 运动皮层 皮质(解剖学) 信息流 运动技能 初级运动皮层 计算机科学 刺激 语言学 哲学 多巴胺
作者
Stefan Lemke,Marco Celotto,Roberto Maffulli,Karunesh Ganguly,Stefano Panzeri
出处
期刊:Current Biology [Elsevier BV]
卷期号:34 (9): 1831-1843.e7 被引量:8
标识
DOI:10.1016/j.cub.2024.03.023
摘要

The coordination of neural activity across brain areas during a specific behavior is often interpreted as neural communication involved in controlling the behavior. However, whether information relevant to the behavior is actually transferred between areas is often untested. Here, we used information-theoretic tools to quantify how motor cortex and striatum encode and exchange behaviorally relevant information about specific reach-to-grasp movement features during skill learning in rats. We found a temporal shift in the encoding of behaviorally relevant information during skill learning, as well as a reversal in the primary direction of behaviorally relevant information flow, from cortex-to-striatum during naive movements to striatum-to-cortex during skilled movements. Standard analytical methods that quantify the evolution of overall neural activity during learning-such as changes in neural signal amplitude or the overall exchange of information between areas-failed to capture these behaviorally relevant information dynamics. Using these standard methods, we instead found a consistent coactivation of overall neural signals during movement production and a bidirectional increase in overall information propagation between areas during learning. Our results show that skill learning is achieved through a transformation in how behaviorally relevant information is routed across cortical and subcortical brain areas and that isolating the components of neural activity relevant to and informative about behavior is critical to uncover directional interactions within a coactive and coordinated network.
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