Parkinson's disease (PD) is characterized by the death of substantia nigra pars compacta (SNc) dopamine (DA) neurons, but the pathophysiological mechanisms that precede and drive their death remain unknown. The activity of DA neurons is likely altered in PD, but we understand little about if or how chronic changes in activity may contribute to degeneration. To address this question, we developed a chemogenetic (DREADD) mouse model to chronically increase DA neuron activity and confirmed this increase using ex vivo electrophysiology. Chronic hyperactivation of DA neurons resulted in prolonged increases in locomotor activity during the light cycle and decreases during the dark cycle, consistent with chronic changes in DA release and circadian disturbances. We also observed early, preferential degeneration of SNc projections, recapitulating the PD hallmarks of selective vulnerability of SNc axons and the comparative resilience of ventral tegmental area axons. This was followed by the eventual loss of midbrain DA neurons. Continuous DREADD activation resulted in a sustained increase in baseline calcium levels, supporting a role for increased calcium in the neurodegeneration process. Finally, spatial transcriptomics from DREADD mice examining midbrain DA neurons and striatal targets, and cross-validation with human patient samples, provided insights into potential mechanisms of hyperactivity-induced toxicity and PD. Our results thus reveal the preferential vulnerability of SNc DA neurons to increased neural activity and support a potential role for increased neural activity in driving degeneration in PD.
Chronic hyperactivation of midbrain dopamine neurons causes preferential dopamine neuron degeneration.
中脑多巴胺神经元的慢性过度激活会导致多巴胺神经元优先退化
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作者:Rademacher Katerina, Doric Zak, Haddad Dominik, Mamaligas Aphroditi, Liao Szu-Chi, Creed Rose, Kano Kohei, Chatterton Zac, Fu Yuhong, Garcia Joseph H, Vance Victoria M, Sei Yoshitaka J, Kreitzer Anatol, Halliday Glenda, Nelson Alexandra B, Margolis Elyssa, Nakamura Ken
| 期刊: | Elife | 影响因子: | 6.400 |
| 时间: | 2025 | 起止号: | 2025 Aug 26; 13:RP98775 |
| doi: | 10.7554/eLife.98775 | 研究方向: | 神经科学 |
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