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Oral Administration of Rotenone using a Gavage and Image Analysis of Alpha-synuclein Inclusions in the Enteric Nervous System
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Neuroprotective effect of gallic acid in mice with rotenone-induced neurodegeneration
Wachiryah Thong-Asa1, Chatrung Wassana1, Kunyarat Sukkasem1
1Animal Toxicology and Physiology Specialty Research Unit (ATPSRU), Department of Zoology, Faculty of Science, Kasetsart University, 50 Ngam Wong Wan Road, Jatujak, Bangkok 10900, Thailand.
Abstract:
We investigated the effect of gallic acid (Gal) against neurodegenerative pathophysiology relevant to Parkinsion's disease (PD) in mice with rotenone-induced toxicity. Forty male institute of cancer research (ICR) mice were randomly divided into four groups: sham-veh, PD-veh (received subcutaneous injection with 2.5 mg/kg/48 h of rotenone); PD-Gal50; and PD-Gal100 (the latter two groups received subcutaneous injection with 2.5 mg/kg/48 h of rotenone and oral gavage with gallic acid 50 and 100 mg/kg/48 h, respectively). All treatments continued for 5 weeks with motor ability assessments once per week using hanging and rotarod tests. Brain tissue evaluation of oxidative status, together with striatal and substantia nigra par compacta (SNc) histological and immunohistological assessments were performed. The results indicate that rotenone significantly induced muscle weakness and motor coordination deficit from the first week of rotenone injection, and a significant increase in neuronal degeneration was presented in both the striatum and SNc. Decreased tyrosine hydroxylase and increment of glia fibrillary acidic protein expression in SNc were depicted. The deteriorating effects of rotenone were ameliorated by gallic acid treatment, especially 100 mg/kg dose. Rotenone did not induce a significant change of lipid peroxidation indicated, but gallic acid exhibited a significant inhibitory effect on the lipid peroxidation increment. Rotenone showed a significant reduction of superoxide dismutase activity, and neither 50 nor 100 mg/kg of gallic acid could alleviate this enzyme activity. In conclusion, gallic acid ameliorated motor deficits and preserving SNc neurons which led to maintaining of the dopaminergic source, including a nurturing effect on supporting astrocytes in mice with rotenone-induced neurodegeneration.
Insights
Gallic acid (Gal) treatment improved motor function and preserved dopamine neurons in mice with Parkinson
Area of Science:
- Neuroscience
- Pharmacology
- Toxicology
Background:
- Parkinson's disease (PD) is a neurodegenerative disorder characterized by the loss of dopaminergic neurons.
- Rotenone is a pesticide that can induce PD-like pathology in animal models.
- Oxidative stress and neuroinflammation are key factors in PD pathogenesis.
Purpose of the Study:
- To investigate the neuroprotective effects of gallic acid (Gal) against rotenone-induced Parkinson's disease (PD) pathophysiology in mice.
- To evaluate the impact of gallic acid on motor deficits, neuronal degeneration, and oxidative stress markers in a PD mouse model.
Main Methods:
- Male ICR mice were administered rotenone to induce PD-like symptoms.
- Mice received varying doses of gallic acid (50 and 100 mg/kg) or vehicle.
- Motor function was assessed weekly using hanging and rotarod tests.
- Brain tissues were analyzed for oxidative status, neuronal degeneration, and specific protein expressions (tyrosine hydroxylase, glial fibrillary acidic protein).
Main Results:
- Rotenone induced significant motor deficits, muscle weakness, and neuronal degeneration in the striatum and substantia nigra pars compacta (SNc).
- Gallic acid treatment, particularly at 100 mg/kg, ameliorated motor deficits and preserved SNc neurons.
- Gallic acid inhibited lipid peroxidation and showed a nurturing effect on astrocytes, while not significantly affecting superoxide dismutase activity.
Conclusions:
- Gallic acid demonstrates neuroprotective effects against rotenone-induced neurodegeneration relevant to Parkinson's disease.
- Gallic acid ameliorates motor deficits by preserving dopaminergic neurons and supporting astrocytes.
- Gallic acid may be a potential therapeutic agent for Parkinson's disease, particularly due to its antioxidant properties.
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