4.6 Article

Protective effects of antioxidants and anti-inflammatory agents against manganese-induced oxidative damage and neuronal injury

期刊

TOXICOLOGY AND APPLIED PHARMACOLOGY
卷 256, 期 3, 页码 219-226

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.taap.2011.06.001

关键词

Manganese; Oxidative stress; Medium spiny neurons; Neurodegeneration; Vitamin E; Trolox; Ibuprofen

资金

  1. Department of Defense [W81XWH-05-1-0239]
  2. National Institute of Environmental Health Science (NIEHS) [R01 10563]

向作者/读者索取更多资源

Exposure to excessive manganese (Mn) levels leads to neurotoxicity, referred to as manganism, which resembles Parkinson's disease (PD). Manganism is caused by neuronal injury in both cortical and subcortical regions. particularly in the basal ganglia. The basis for the selective neurotoxicity of Mn is not yet fully understood. However, several studies suggest that oxidative damage and inflammatory processes play prominent roles in the degeneration of dopamine-containing neurons. In the present study, we assessed the effects of Mn on reactive oxygen species (ROS) formation, changes in high-energy phosphates and associated neuronal dysfunctions both in vitro and in vivo. Results from our in vitro study showed a significant (p<0.01) increase in biomarkers of oxidative damage, F-2-isoprostanes (F-2-lsoPs), as well as the depletion of ATP in primary rat cortical neurons following exposure to Mn (500 mu M) for 2 h. These effects were protected when neurons were pretreated for 30 min with 100 of an antioxidant, the hydrophilic vitamin E analog, trolox (6-hydroxy-2,5,7,8-tetramethylchroman-2-carboxylic acid), or an anti-inflammatory agent, indomethacin. Results from our in vivo study confirmed a significant increase in F-2-lsoPs levels in conjunction with the progressive spine degeneration and dendritic damage of the striatal medium spiny neurons (MSNs) of mice exposed to Mn (100 mg/kg, s.c.) 24 h. Additionally, pretreatment with vitamin E (100 mg/kg, i.p.) or ibuprofen (140 mu g/ml in the drinking water for two weeks) attenuated the Mn-induced increase in cerebral F-2-lsoPs? and protected the MSNs from dendritic atrophy and dendritic spine loss. Our findings suggest that the mediation of oxidative stress/mitochondrial dysfunction and the control of alterations in biomarkers of oxidative injury, neuroinflammation and synaptodendritic degeneration may provide an effective, multi-pronged therapeutic strategy for protecting dysfunctional dopaminergic transmission and slowing of the progression of Mn-induced neurodegenerative processes. (C) 2011 Elsevier Inc. All rights reserved.

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