Brain Accumulation and Toxicity of Mn(II) and Mn(III) Exposures
Open Access
- 1 June 2006
- journal article
- research article
- Published by Oxford University Press (OUP) in Toxicological Sciences
- Vol. 93 (1) , 114-124
- https://doi.org/10.1093/toxsci/kfl028
Abstract
Concern over the neurotoxic effects of chronic moderate exposures to manganese has arisen due to increased awareness of occupational exposures and to the use of methylcyclopentadienyl manganese tricarbonyl, a manganese-containing gasoline antiknock additive. Little data exist on how the oxidation state of manganese exposure affects toxicity. The objective of this study was to better understand how the oxidation state of manganese exposure affects accumulation and subsequent toxicity of manganese. This study utilized a rat model of manganese neurotoxicity to investigate how ip exposure to Mn(II)-chloride or Mn(III)-pyrophosphate at total cumulative doses of 0, 30, or 90 mg Mn/kg body weight affected the brain region distribution and neurotoxicity of manganese. Results indicate that Mn(III) exposures produced significantly higher blood manganese levels than equimolar exposures to Mn(II). Brain manganese concentrations increased in a dose-dependent manner, with Mn(III) exposures producing significantly higher (> 25%) levels than exposures to Mn(II) but with no measurable differences in the accumulation of manganese across different brain regions. Gamma amino butyric acid concentrations were increased in the globus pallidus (GP) with manganese exposure. Dopamine (DA) levels were altered in the GP, with the highest Mn(II) and Mn(III) exposures producing significantly different DA levels. In addition, transferrin receptor and H-ferritin protein expression increased in the GP with manganese exposure. These data substantiate the heightened susceptibility of the GP to manganese, and they indicate that the oxidation state of manganese exposure may be an important determinant of tissue toxicodynamics and subsequent neurotoxicity.Keywords
This publication has 56 references indexed in Scilit:
- Transition Metal Speciation in the Cell: Insights from the Chemistry of Metal Ion ReceptorsScience, 2003
- Manganese deficiency and toxicity: Are high or low dietary amounts of manganese cause for concern?BioFactors, 1999
- Kinetic Behavior of Mn(III) Complexes of Pyrophosphate, EDTA, and CitrateEnvironmental Science & Technology, 1998
- Assessment of the permissible exposure level to manganese in workers exposed to manganese dioxide dust.Occupational and Environmental Medicine, 1992
- Saturable Transport of Manganese(II) Across the Rat Blood‐Brain BarrierJournal of Neurochemistry, 1991
- Increased iron (III) and total iron content in post mortem substantia nigra of parkinsonian brainJournal Of Neural Transmission-Parkinsons Disease and Dementia Section, 1988
- Dual effects of manganese on prolactin secretionCell Calcium, 1984
- Adsorption of Mn(II) ions to human low density lipoproteins: Magnetic resonance studiesBiochimica et Biophysica Acta (BBA) - Lipids and Lipid Metabolism, 1982
- Increased GABA content in caudate nucleus of rats after chronic manganese chloride administrationJournal of Neurochemistry, 1978
- Selective depletion of caudate nucleus dopamine and serotonin during chronic manganese dioxide administration to squirrel monkeysCellular and Molecular Life Sciences, 1969