运动障碍
神经科学
基底神经节
心理学
人口
运动障碍
金刚烷胺
中棘神经元
帕金森病
物理医学与康复
医学
内科学
疾病
中枢神经系统
环境卫生
作者
Gaurav Chattree,Radosław Chrapkiewicz,Yanping Zhang,Jane Li,Fatih Dinc,Mark J. Schnitzer
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-04-02
标识
DOI:10.1101/2025.04.01.646527
摘要
ABSTRACT Background In the classical model of basal ganglia circuitry, striatal spiny projection neurons of the direct and indirect pathways (dSPNs, iSPNs) promote and suppress movement, respectively, and exhibit unbalanced activity levels during hypokinetic or hyperkinetic conditions. Most therapies for these conditions are thought to work by rebalancing the relative activity of dSPNs and iSPNs towards normal levels. However, the mechanism of amantadine, which uniquely improves both hypokinetic and hyperkinetic conditions, is poorly understood. Objective To determine whether amantadine restores motor function by normalizing the balance of dSPN and iSPN activity or through a distinct mechanism. Methods We used dual-color two-photon Ca 2+ imaging in the 6-OHDA mouse model of Parkinson’s disease to concurrently monitor dSPN and iSPN dynamics across healthy, hypokinetic (parkinsonian), and hyperkinetic (dyskinetic) conditions. Results We evaluated both dSPN/iSPN activity balance and action-specific neural ensemble activity in the dorsolateral striatum. In hypokinetic conditions, L-DOPA rescued the dSPN/iSPN imbalance but failed to restore the disrupted activity of the locomotion-specific ensemble. Conversely, amantadine improved locomotion-specific ensemble activity without normalizing the dSPN/iSPN imbalance. In hyperkinetic conditions, forelimb dyskinesias were characterized by neural activity patterns distinct from those encoding locomotion. Amantadine selectively suppressed the resting activity of forelimb dyskinesia ensembles without affecting locomotion-coding ensembles or restoring pathway balance. Conclusions L-DOPA and amantadine may act through distinct mechanisms, with L-DOPA normalizing pathway balance and amantadine modulating action-specific neural ensembles. These findings support the importance of action-coding disruptions during hypokinetic and hyperkinetic conditions and suggest that correcting them can restore motor function.
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