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Gene-environment Interaction Models to Unmask Susceptibility Mechanisms in Parkinson's Disease
Published on: January 7, 2014
Manganese-exposed developing rats display motor deficits and striatal oxidative stress that are reversed by Trolox
Fabiano M Cordova1, Aderbal S Aguiar, Tanara V Peres
1Departamento de Bioquímica, Centro de Ciências Biológicas, Universidade Federal de Santa Catarina, Florianópolis, SC 88040-900, Brazil.
Abstract:
While manganese (Mn) is essential for proper central nervous system (CNS) development, excessive Mn exposure may lead to neurotoxicity. Mn preferentially accumulates in the basal ganglia, and in adults it may cause Parkinson's disease-like disorder. Compared to adults, younger individuals accumulate greater Mn levels in the CNS and are more vulnerable to its toxicity. Moreover, the mechanisms mediating developmental Mn-induced neurotoxicity are not completely understood. The present study investigated the developmental neurotoxicity elicited by Mn exposure (5, 10 and 20 mg/kg; i.p.) from postnatal day 8 to PN27 in rats. Neurochemical analyses were carried out on PN29, with a particular focus on striatal alterations in intracellular signaling pathways (MAPKs, Akt and DARPP-32), oxidative stress generation and cell death. Motor alterations were evaluated later in life at 3, 4 or 5 weeks of age. Mn exposure (20 mg/kg) increased p38(MAPK) and Akt phosphorylation, but decreased DARPP-32-Thr-34 phosphorylation. Mn (10 and 20 mg/kg) increased caspase activity and F2-isoprostane production (a biological marker of lipid peroxidation). Paralleling the changes in striatal biochemical parameters, Mn (20 mg/kg) also caused motor impairment, evidenced by increased falling latency in the rotarod test, decreased distance traveled and motor speed in the open-field test. Notably, the antioxidant Trolox™ reversed the Mn (20 mg/kg)-dependent augmentation in p38(MAPK) phosphorylation and reduced the Mn (20 mg/kg)-induced caspase activity and F2-isoprostane production. Trolox™ also reversed the Mn-induced motor coordination deficits. These findings are the first to show that long-term exposure to Mn during a critical period of neurodevelopment causes motor coordination dysfunction with parallel increment in oxidative stress markers, p38(MAPK) phosphorylation and caspase activity in the striatum. Moreover, we establish Trolox™ as a potential neuroprotective agent given its efficacy in reversing the Mn-induced neurodevelopmental effects.
Insights
Manganese exposure during development causes motor deficits and neurotoxicity by increasing oxidative stress and altering signaling pathways. The antioxidant Trolox™ effectively reversed these harmful manganese effects in rats.
Area of Science:
- Neuroscience
- Toxicology
- Developmental Biology
Background:
- Manganese (Mn) is vital for central nervous system (CNS) development, but excessive exposure can cause neurotoxicity.
- Younger individuals are more vulnerable to Mn neurotoxicity than adults, with mechanisms not fully understood.
- Mn accumulation in the basal ganglia is linked to Parkinson's disease-like symptoms in adults.
Purpose of the Study:
- To investigate the developmental neurotoxicity of manganese (Mn) exposure in rats.
- To analyze striatal alterations in intracellular signaling pathways, oxidative stress, and cell death following Mn exposure.
- To evaluate motor function deficits induced by developmental Mn exposure and the potential neuroprotective effects of Trolox™.
Main Methods:
- Rats were exposed to Mn (5, 10, 20 mg/kg) from postnatal day 8 to 27.
- Neurochemical analyses of striatal signaling pathways (MAPKs, Akt, DARPP-32), oxidative stress (F2-isoprostane), and caspase activity were performed.
- Motor function was assessed using rotarod and open-field tests at 3-5 weeks of age.
Main Results:
- High-dose Mn (20 mg/kg) increased p38(MAPK) and Akt phosphorylation, decreased DARPP-32 phosphorylation, and elevated caspase activity and F2-isoprostane levels.
- Mn exposure (20 mg/kg) resulted in motor impairments, including poor coordination and reduced movement.
- Trolox™ administration reversed Mn-induced increases in p38(MAPK) phosphorylation, caspase activity, F2-isoprostane production, and motor deficits.
Conclusions:
- Long-term manganese exposure during neurodevelopment induces motor coordination dysfunction and striatal neurotoxicity.
- Oxidative stress, p38(MAPK) pathway activation, and apoptosis are key mechanisms in developmental Mn neurotoxicity.
- Trolox™ demonstrates neuroprotective potential against manganese-induced developmental neurotoxicity.
