神经科学
黑质
多巴胺能
谷氨酸的
中棘神经元
长时程增强
神经保护
多巴胺
神经可塑性
黑质纹状体通路
神经传递
突触可塑性
帕金森病
医学
生物
运动前神经元活动
内大麻素系统
谷氨酸受体
串扰
神经药理学
AMPA受体
变质塑性
纹状体
疾病
致密部
NMDA受体
心理学
间接运动途径
突触后电位
作者
Federica Campanelli,Gioia Marino,Giuseppina Natale,Maria De Carluccio,Tabitha N. Rodriguez,Michelle Smeyne,Richard J. Smeyne,Veronica Ghiglieri,Paolo Calabresi
标识
DOI:10.1038/s41531-026-01396-7
摘要
Parkinson's disease (PD) is a neurodegenerative disorder marked by loss of substantia nigra dopaminergic neurons. Epidemiological evidence indicates that lifelong physical activity reduces both PD incidence and slows disease progression. Here, we examine how voluntary exercise induces long-lasting neuroprotection of the corticostriatal function in a murine model of α-synuclein-driven nigrostriatal pathology. In preformed fibril (PFF)-injected mice, long-lasting voluntary wheel running prevents degeneration of nigrostriatal dopaminergic terminals and improves motor performances. Intensive exercise normalizes spontaneous glutamatergic transmission and preserves corticostriatal long-term potentiation (LTP) in striatal spiny projection neurons. Exercise-induced LTP is dependent on activation of dopamine (DA) DA1, GluN2B-expressing NMDA and CB1 endocannabinoid (eCB) receptors. Pharmacological modulation of exercise-induced plasticity shows that, while in physiological conditions eCBs regulate synaptic depotentiation, persistence of LTP in active α-syn mice occurs independently of the eCB system, highlighting a critical interaction between DA and eCBs in long-term synaptic regulation. These findings identify voluntary exercise as a robust neuroprotective intervention with therapeutic relevance for early PD.
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