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Differential cytotoxicity of Mn(II) and Mn(III): special reference to mitochondrial [Fe-S] containing enzymes
1Division of Environmental Health Sciences, Columbia University, New York, New York 10032, USA.
Abstract:
Manganese (Mn)-induced neurodegenerative toxicity has been associated with a distorted iron (Fe) metabolism at both systemic and cellular levels. In the current study, we examined whether the oxidation states of Mn produced differential effects on certain mitochondrial [Fe-S] containing enzymes in vitro. When mitochondrial aconitase, which possesses a [4Fe-4S] cluster, was incubated with either Mn(II) or Mn(III), both Mn species inhibited the activities of aconitase. However, the IC(10) (concentration to cause a 10% enzyme inhibition) for Mn(III) was ninefold lower than that for Mn(II). Following exposure of mitochondrial fractions with Mn(II) or Mn(III), there was a significant inhibition by either Mn species in activities of Complex I whose active site contains five to eight [Fe-S] clusters. The dose-time response curves reveal that Mn(III) was more effective in blocking Complex I activity than Mn(II). Northern blotting was used to examine the expression of mRNAs encoding transferrin receptor (TfR), which is regulated by cytosolic aconitase. Treatment of cultured PC12 cells with Mn(II) and Mn(III) at 100 microM for 3 days resulted in 21 and 58% increases, respectively, in the expression of TfR mRNA. Further studies on cell growth dynamics after exposure to 25-50 microM Mn in culture media demonstrated that the cell numbers were much reduced in Mn(III)-treated groups compared to Mn(II)-treated groups, suggesting that Mn(III) is more effective than Mn(II) in cell killing. In cells exposed to Mn(II) and Mn(III), mitochondrial DNA (mtDNA) was significantly decreased by 24 and 16%, respectively. In contrast, rotenone and MPP+ did not seem to alter mtDNA levels. These in vitro results suggest that Mn(III) species appears to be more cytotoxic than Mn(II) species, possibly due to higher oxidative reactivity and closer radius resemblance to Fe.
Insights
Manganese (Mn) neurotoxicity involves iron (Fe) metabolism disruption. This study found manganese(III) is more toxic than manganese(II) to mitochondrial enzymes and cells, potentially due to higher oxidative stress.
Area of Science:
- Biochemistry
- Neuroscience
- Toxicology
Background:
- Manganese (Mn) neurotoxicity is linked to disturbed iron (Fe) metabolism.
- The differential toxicity of Mn oxidation states on cellular processes remains unclear.
Purpose of the Study:
- To investigate the in vitro effects of manganese(II) and manganese(III) on mitochondrial [Fe-S] cluster-containing enzymes.
- To assess the impact of Mn oxidation states on cellular responses, including gene expression, cell viability, and mitochondrial DNA integrity.
Main Methods:
- In vitro enzyme activity assays for mitochondrial aconitase and Complex I.
- Northern blotting to analyze transferrin receptor mRNA expression in PC12 cells.
- Cell growth assays and mitochondrial DNA quantification following Mn exposure.
Main Results:
- Both Mn(II) and Mn(III) inhibited aconitase and Complex I activities, with Mn(III) being more potent.
- Mn(III) significantly increased transferrin receptor mRNA expression and reduced cell viability more than Mn(II).
- Mitochondrial DNA levels were decreased by both Mn species, with Mn(II) showing a larger reduction than Mn(III).
Conclusions:
- Manganese(III) exhibits greater cytotoxicity than manganese(II) in vitro.
- Differential effects of Mn oxidation states on mitochondrial function and cellular integrity are observed.
- Higher oxidative reactivity and Fe resemblance may contribute to Mn(III)'s enhanced toxicity.