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Increased mitochondrial superoxide generation in neurons from trisomy 16 mice: a model of Down's syndrome
1Institut für Physiologie der Charité, Humboldt Universität Berlin, Germany. sebastian.schuchmann@charite.de
Abstract:
Increased neuronal cell death in neurodegenerative diseases has been suggested to result from an increased mitochondrial generation of radical oxygen species (ROS). To test this hypothesis, we investigated superoxide formation in cultured hippocampal neurons from diploid and trisomy 16 mice (Ts16), a model of Down's syndrome. Microflurometric techniques were used to measure superoxide-induced oxidation rate of hydroethidine (HEt) to ethidium and reduced nicotinamide adenine dinucleotide (NADH) and reduced nicotinamide adenine dinucleotide phosphate (NADPH) autofluorescence signal to monitor changes in neuronal energy metabolism. We found an increase in superoxide formation by more than 50% in Ts16 neurons in comparison with diploid control neurons. In the presence of the mitochondrial respiratory chain complex I inhibitor rotenone superoxide production was blocked in diploid neurons, but the increased superoxide generation in Ts16 neurons remained. Uncoupling of mitochondrial oxidative phosphorylation using carbonyl cyanide p-trifluoromethoxyphenylhydrazone (FCCP) caused irreversible deficiency in the energy metabolism, monitored by NAD(P)H autofluorescence in Ts16 neurons, but not in diploid control neurons. These results suggest an increased basal generation of superoxide in Ts16 neurons, probably caused by a deficient complex I of mitochondrial electron transport chain, which leads to an impaired mitochondrial energy metabolism and finally neuronal cell death.
Insights
Mitochondrial dysfunction and increased radical oxygen species (ROS) contribute to neuronal cell death in Down
Area of Science:
- Neuroscience
- Mitochondrial Biology
- Genetics
Background:
- Neurodegenerative diseases are linked to increased neuronal cell death.
- Mitochondrial radical oxygen species (ROS) generation is a proposed cause for this cell death.
Purpose of the Study:
- To investigate superoxide formation and energy metabolism in neurons from a mouse model of Down's syndrome (trisomy 16).
- To test the hypothesis that increased ROS contributes to neuronal cell death.
Main Methods:
- Utilized microfluorometric techniques to measure superoxide production in cultured hippocampal neurons from diploid and trisomy 16 (Ts16) mice.
- Assessed changes in neuronal energy metabolism via reduced nicotinamide adenine dinucleotide (NADH) and reduced nicotinamide adenine dinucleotide phosphate (NADPH) autofluorescence.
Main Results:
- Ts16 neurons exhibited over 50% increased superoxide formation compared to diploid controls.
- Superoxide production in Ts16 neurons persisted even when mitochondrial complex I was inhibited.
- Mitochondrial uncoupling led to irreversible energy metabolism deficiency in Ts16 neurons, but not controls.
Conclusions:
- Ts16 neurons show increased basal superoxide generation, likely due to a deficient mitochondrial electron transport chain complex I.
- This impaired mitochondrial energy metabolism in Ts16 neurons may lead to neuronal cell death.