A psychophysical and electrophysiological platform using internal action selection task in primate parkinsonian model*

Wenjuan Hu, Qiyi Hu, Y. Qiu, Keyi Liu, Yao Chen
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Abstract

Internal action selection is an important motor control, in which patients with Parkinson's disease (PD) generally show deficiencies. Basal ganglia (BG) is proved to play an important role in decision-making and act as a specialized internal selection device within the vertebrate brain architecture. Furthermore, some studies showed there was a close relationship among striatal dopamine signaling, action selection and time interval by training mice to perform an internal selection task. However, the neural mechanism of the internal action selection is still unclear.In this study, we setup a platform for psychophysical and electrophysiological study and recorded behavioral data from normal human subjects and primates when they performing an internal action selection task. The results showed that longer trial intervals led to longer action transition time, which indicates the time interval biases internal action selection, and the effect of movement direction was not significant. Furthermore, we recorded the task-related neuronal activity in primate’s primary motor cortex (M1). Preliminary data showed there were significant firing rate changes in M1 at the transition of action selection.
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灵长类帕金森模型内部动作选择任务的心理物理和电生理平台*
内动作选择是一种重要的运动控制,帕金森病患者普遍表现出运动控制缺陷。基底神经节(Basal ganglia, BG)在脊椎动物的大脑结构中起着重要的决策作用,是一种特殊的内部选择装置。此外,一些研究表明纹状体多巴胺信号、动作选择和时间间隔之间存在密切关系。然而,内部动作选择的神经机制尚不清楚。在本研究中,我们建立了一个心理物理和电生理研究平台,记录了正常人和灵长类动物在执行内部动作选择任务时的行为数据。实验结果表明,时间间隔越长,动作转换时间越长,说明时间间隔偏倚内部动作选择,运动方向的影响不显著。此外,我们还记录了灵长类动物初级运动皮层(M1)的任务相关神经元活动。初步数据显示,在动作选择的过渡阶段,M1的射速发生了显著变化。
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