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Glial cell type-specific responses to menadione-induced oxidative stress
S B Hollensworth1, C Shen, J E Sim
1Department of Structural and Cellular Biology, University of South Alabama, Mobile, AL 36688, USA.
Abstract:
Glial cell types in the central nervous system are continuously exposed to reactive oxygen species (ROS) due to their high oxygen metabolism and demonstrate differential susceptibility to certain pathological conditions believed to involve oxidative stress. The purpose of the current studies was to test the hypothesis that mtDNA damage could contribute to the differential susceptibility of glial cell types to apoptosis induced by oxidative stress. Primary cultures of rat astrocytes, oligodendrocytes, and microglia were utilized, and menadione was used to produce the oxidative stress. Apoptosis was detected and quantitated in menadione-treated oligodendrocytes and microglia (but not astrocytes) using either positive annexin-V staining or positive staining for 3'-OH groups in DNA. The apoptotic pathway that was activated involved the release of cytochrome c from the intermitochondrial space and activation of caspase 9. Caspase 8 was not activated after exposure to menadione in any of the cells. Using equimolar concentrations of menadione, more initial damage was observed in mtDNA from oligodendrocytes and microglia. Additionally, using concentrations of menadione that resulted in comparable initial mtDNA damage, more efficient repair was observed in astrocytes compared to either oligodendrocytes or microglia. The differential susceptibility of glial cell types to oxidative damage and apoptosis did not appear related to cellular antioxidant capacity, because under the current culture conditions astrocytes had lower total glutathione content and superoxide dismutase activity than oligodendrocytes and microglia. These results show that the differential susceptibility of glial cell types to menadione-induced oxidative stress and apoptosis appears to correlate with increased oxidative mtDNA damage and support the hypothesis that mtDNA damage could participate in the initiation of apoptosis through the enhanced release of cytochrome c and the activation of caspase 9.
Insights
Mitochondrial DNA (mtDNA) damage contributes to glial cell apoptosis from oxidative stress. Astrocytes show better mtDNA repair than oligodendrocytes and microglia, influencing their susceptibility.
Area of Science:
- Neuroscience
- Cell Biology
- Oxidative Stress Research
Background:
- Glial cells in the central nervous system face constant reactive oxygen species (ROS) exposure.
- Differential susceptibility of glial cells to oxidative stress-related pathologies is observed.
Purpose of the Study:
- To investigate if mitochondrial DNA (mtDNA) damage mediates glial cell apoptosis induced by oxidative stress.
- To compare the susceptibility of astrocytes, oligodendrocytes, and microglia to oxidative stress.
Main Methods:
- Primary rat glial cell cultures (astrocytes, oligodendrocytes, microglia) were used.
- Menadione induced oxidative stress, and apoptosis was quantified.
- Mitochondrial DNA (mtDNA) damage and repair efficiency were assessed.
Main Results:
- Oligodendrocytes and microglia, but not astrocytes, underwent apoptosis upon menadione exposure.
- Oligodendrocytes and microglia exhibited greater initial mtDNA damage and slower repair compared to astrocytes.
- Apoptosis involved cytochrome c release and caspase 9 activation, not caspase 8.
Conclusions:
- Differential glial cell susceptibility to oxidative stress and apoptosis correlates with mtDNA damage levels.
- mtDNA damage initiates apoptosis via cytochrome c release and caspase 9 activation.
- Cellular antioxidant capacity did not explain the observed differential susceptibility.