Molecular Neurobiology Laboratory, The Salk Institute for Biological Studies, La Jolla, United States.
Center for Motor Control and Disease, Key Laboratory of Brain Functional Genomics, East China Normal University, Shanghai, China.
Elife. 2023 Sep 26;12:RP87644. doi: 10.7554/eLife.87644.
The basal ganglia are known to be essential for action selection. However, the functional role of basal ganglia direct and indirect pathways in action selection remains unresolved. Here, by employing cell-type-specific neuronal recording and manipulation in mice trained in a choice task, we demonstrate that multiple dynamic interactions from the direct and indirect pathways control the action selection. While the direct pathway regulates the behavioral choice in a linear manner, the indirect pathway exerts a nonlinear inverted-U-shaped control over action selection, depending on the inputs and the network state. We propose a new center (direct)-surround (indirect)-context (indirect) 'Triple-control' functional model of basal ganglia, which can replicate the physiological and behavioral experimental observations that cannot be simply explained by either the traditional 'Go/No-go' or more recent 'Co-activation' model. These findings have important implications on understanding the basal ganglia circuitry and action selection in health and disease.
基底神经节被认为对动作选择至关重要。然而,基底神经节直接和间接通路在动作选择中的功能作用仍未得到解决。在这里,通过在接受选择任务训练的小鼠中进行细胞类型特异性神经元记录和操作,我们证明了来自直接和间接通路的多种动态相互作用控制着动作选择。虽然直接通路以线性方式调节行为选择,但间接通路根据输入和网络状态对动作选择施加非线性的倒 U 形控制。我们提出了一个新的基底神经节“三重控制”功能模型,包括直接通路、间接通路和上下文间接通路,该模型可以复制生理和行为实验观察结果,而这些结果不能简单地用传统的“是/否”或最近的“共同激活”模型来解释。这些发现对于理解基底神经节回路和健康与疾病中的动作选择具有重要意义。