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Updated: Sep 9, 2025

Induction and Assessment of Levodopa-induced Dyskinesias in a Rat Model of Parkinson's Disease
Published on: October 14, 2021
Morphologic changes in striatonigral neurons in a rat model of levodopa-induced dyskinesia
Masako Fujita1, Haruo Nishijima1, Tomonori Furukawa2
1Department of Neurology, Hirosaki University Graduate School of Medicine, Japan.
Abstract:
We aimed to elucidate morphological changes in striatonigral projection neurons in a rat model of levodopa-induced dyskinesia (LID). Male Wistar rats underwent unilateral 6-hydroxydopamine lesioning to establish a hemiparkinsonian model. At 8 weeks postoperatively, the rats were allocated to either the levodopa-treated group or the saline-treated control group. Behavioral abnormalities were quantified using the Abnormal Involuntary Movement (AIM) scores. We identified direct pathway neurons projecting to substantia nigra pars reticulata (SNr) by retrograde tracer injection. Dendritic spine morphology and the ultrastructure of synaptic terminals in SNr were assessed. The AIM scores increased along with levodopa treatment. Compared to control rats and the intact side of the LID model, the dendritic spine heads of striatonigral projection neurons were significantly enlarged, while spine density was reduced in the dopamine-denervated side of the LID model. Electron microscopic analysis revealed enlarged axon terminals and an increased number of synaptic vesicles in the dopamine-denervated side of SNr in levodopa-treated rats compared with those of the controls. Repeated levodopa administration induces morphological plasticity in striatonigral neurons, characterized by enlarged dendritic spine heads, reduced spine density, and enlarged synaptic terminals. These structural alterations likely contribute to enhanced GABAergic transmission in SNr and a reduced threshold for dyskinesia.

