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Input- and Output-Specific Regulation of Serial Order Performance by Corticostriatal Circuits

机译:输入和输出特定顺序的皮层皮质电路的顺序性能

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The serial ordering of individual movements into sequential patterns is thought to require synaptic plasticity within corticostriatal circuits that route information through the basal ganglia. We used genetically and anatomically targeted manipulations of specific circuit elements in mice to isolate the source and target of a corticostriatal synapse that regulates the performance of a serial order task. This excitatory synapse originates in secondary motor cortex, terminates on direct pathway medium spiny neurons in the dorsolateral striatum, and is strengthened by serial order learning. This experience-dependent and synapse-specific form of plasticity may sculpt the balance of activity in basal ganglia circuits during sequential movements, driving a disparity in striatal output that favors the direct pathway. This disparity is necessary for execution of responses in serial order, even though both direct and indirect pathways are active during movement initiation, suggesting dynamic modulation of corticostriatal circuitry contributes to the choreography of behavioral routines.
机译:人们认为,将单个运动按顺序排列成连续模式需要在皮质信息通路中的突触可塑性,这些信息通过基底神经节传递信息。我们对小鼠中的特定电路元件进行了遗传和解剖学靶向操作,以分离调节序列任务性能的皮质口突触的来源和目标。这种兴奋性突触起源于继发性运动皮层,终止于背外侧纹状体中的直接通路中突棘神经元,并通过序列学习得到增强。这种依赖于经验和特定于突触的可塑性形式可能会在连续运动期间雕刻基底神经节回路中的活动平衡,从而驱动纹状体输出差异,从而有利于直接通路。即使直接和间接路径在运动启动过程中均处于活动状态,这种差异对于按顺序执行响应也是必需的,这表明皮质口角电路的动态调制有助于行为例程的编排。

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