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.

Archives of Toxicology
|February 7, 2013
PubMed

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.

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