Pyruvate prevents dopaminergic neurodegeneration and motor deficits in the 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine model of Parkinson’s disease
- Abstract
- Parkinson's disease (PD) is a progressive neurodegenerative disorder characterized by the selective loss of dopamine(DA)rgic neurons in the substantia nigra of the midbrain, and primarily causes motor symptoms. While the pathological cause of PD remains uncertain, oxidative damage, neuroinflammation, and energy metabolic perturbation have been implicated. Pyruvate has been shown neuroprotective in animal models for many neurological disorders, presumably owing to its potent anti-oxidative, anti-inflammatory, and energy metabolic properties. We therefore investigated whether exogenous pyruvate could also protect nigral DA neurons from degeneration and reverse the associated motor deficits in an animal model of PD using the DA neuron-specific toxin 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP). MPTP (20 mg/kg) was injected four times every 2 h into the peritoneum of mice, which resulted in a massive loss of DA neurons as well as an increase in neuronal death and cytosolic labile zinc overload. There were rises in inflammatory and oxidative responses, a drop in the striatal DA level, and the emergence of PD-related motor deficits. In comparison, when sodium pyruvate was administered intraperitoneally at a daily dose of 250 mg/kg for 7 days starting 2 h after the final MPTP treatment, significant relief in the MPTP-induced neuropathology, neurodegeneration, DA depletion, and motor symptoms was observed. Equiosmolar dose of NaCl had no neuroprotective effect, and lower doses of sodium pyruvate did not have any statistically significant effects. These findings suggest that pyruvate has therapeutic potential for the treatment of PD and related neurodegenerative diseases.
- Author(s)
- Yun-Mi Kim; Su Yeon Choi; Onyou Hwang; Joo-Yong Lee
- Issued Date
- 2022
- Type
- Article
- Keyword
- Dopamine; Neuroinflammation; Neuroprotection; Nigrostriatal tissues; Oxidative damage; Zinc
- DOI
- 10.1007/s12035-022-03017-9
- URI
- https://oak.ulsan.ac.kr/handle/2021.oak/14022
- Publisher
- MOLECULAR NEUROBIOLOGY
- Language
- 영어
- ISSN
- 0893-7648
- Citation Volume
- 59
- Citation Number
- 11
- Citation Start Page
- 6956
- Citation End Page
- 6970
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