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Distinct Populations of Motor Thalamic Neurons Encode Action Initiation Action Selection and Movement Vigor

机译:运动丘脑神经元的不同种群编码动作启动动作选择和运动活力

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摘要

Motor thalamus (Mthal) comprises the ventral anterior, ventral lateral, and ventral medial thalamic nuclei in rodents. This subcortical hub receives input from the basal ganglia (BG), cerebellum, and reticular thalamus in addition to connecting reciprocally with motor cortical regions. Despite the central location of Mthal, the mechanisms by which it influences movement remain unclear. To determine its role in generating ballistic, goal-directed movement, we recorded single-unit Mthal activity as male rats performed a two-alternative forced-choice task. A large population of Mthal neurons increased their firing briefly near movement initiation and could be segregated into functional groups based on their behavioral correlates. The activity of “initiation” units was more tightly locked to instructional cues than movement onset, did not predict which direction the rat would move, and was anticorrelated with reaction time (RT). Conversely, the activity of “execution” units was more tightly locked to movement onset than instructional cues, predicted which direction the rat would move, and was anticorrelated with both RT and movement time. These results suggest that Mthal influences choice RT performance in two stages: short latency, nonspecific action initiation followed by action selection/invigoration. We discuss the implications of these results for models of motor control incorporating BG and cerebellar circuits.>SIGNIFICANCE STATEMENT Motor thalamus (Mthal) is a central node linking subcortical and cortical motor circuits, though its precise role in motor control is unclear. Here, we define distinct populations of Mthal neurons that either encode movement initiation, or both action selection and movement vigor. These results have important implications for understanding how basal ganglia, cerebellar, and motor cortical signals are integrated. Such an understanding is critical to defining the pathophysiology of a range of BG- and cerebellum-linked movement disorders, as well as refining pharmacologic and neuromodulatory approaches to their treatment.
机译:运动性丘脑(Mthal)在啮齿动物中包括腹侧前腹,腹侧外侧和腹侧丘脑内侧核。除了相互连接运动皮层区域外,该皮层下枢纽还接受来自基底神经节(BG),小脑和网状丘脑的输入。尽管Mthal位于中心位置,但它影响运动的机制仍不清楚。为了确定其在产生弹道,目标定向运动中的作用,我们记录了单单位Mthal活动,因为雄性大鼠执行了两种选择的强制选择任务。大量的Mthal神经元在运动开始时短暂地增加了放电,并可以根据其行为相关性分为功能组。 “起始”单元的活动比运动开始更紧密地锁定在教学提示上,不能预测大鼠会往哪个方向运动,并且与反应时间(RT)反相关。相反,“执行”单元的活动比指令提示更紧密地锁定于运动发作,可以预测大鼠的运动方向,并且与RT和运动时间均不相关。这些结果表明,Mthal在两个阶段影响选择RT的性能:短潜伏期,非特异性动作启动,随后的动作选择/激发。我们讨论了这些结果对结合BG和小脑回路的运动控制模型的意义。>重要声明丘脑(Mthal)是连接皮层和皮质运动回路的中心节点,尽管它在运动控制中具有精确的作用。尚不清楚。在这里,我们定义了不同的Mthal神经元种群,这些种群要么编码运动开始,要么编码动作选择和运动活力。这些结果对于理解基底神经节,小脑和运动皮层信号如何整合具有重要意义。这种理解对于定义一系列BG和小脑相关的运动障碍的病理生理学,以及完善对其治疗的药理学和神经调节方法至关重要。

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