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Mitochondrial disease in mouse results in increased oxidative stress
L A Esposito1, S Melov, A Panov
1Center for Molecular Medicine, Emory University School of Medicine, Atlanta, GA 30322, USA.
Abstract:
It has been hypothesized that a major factor in the progression of mitochondrial disease resulting from defects in oxidative phosphorylation (OXPHOS) is the stimulation of the mitochondrial production of reactive oxygen species (ROS) and the resulting damage to the mtDNA. To test this hypothesis, we examined the mitochondria from mice lacking the heart/muscle isoform of the adenine nucleotide translocator (Ant1), designated Ant1(tm2Mgr) (-/-) mice. The absence of Ant1 blocks the exchange of ADP and ATP across the mitochondrial inner membrane, thus inhibiting OXPHOS. Consistent with Ant1 expression, mitochondria isolated from skeletal muscle, heart, and brain of the Ant1-deficient mice produced markedly increased amounts of the ROS hydrogen peroxide, whereas liver mitochondria, which express a different Ant isoform, produced normally low levels of hydrogen peroxide. The increased production of ROS by the skeletal muscle and heart was associated with a dramatic increase in the ROS detoxification enzyme manganese superoxide dismutase (Sod2, also known as MnSod) in muscle tissue and muscle mitochondria, a modest increase in Sod2 in heart tissue, and no increase in heart mitochondria. The level of glutathione peroxidase-1 (Gpx1), a second ROS detoxifying enzyme, was increased moderately in the mitochondria of both tissues. Consistent with the lower antioxidant defenses in heart, the heart mtDNAs of the Ant1-deficient mice showed a striking increase in the accumulation of mtDNA rearrangements, whereas skeletal muscle, with higher antioxidant defenses, had fewer mtDNA rearrangements. Hence, inhibition of OXPHOS does increase mitochondrial ROS production, eliciting antioxidant defenses. If the antioxidant defenses are insufficient to detoxify the ROS, then an increased mtDNA mutation rate can result.
Insights
Mitochondrial defects increase reactive oxygen species (ROS) production, damaging mtDNA. Insufficient antioxidant defenses lead to more mtDNA mutations, progressing mitochondrial disease.
Area of Science:
- Mitochondrial biology
- Genetics
- Biochemistry
Background:
- Mitochondrial diseases are linked to oxidative phosphorylation (OXPHOS) defects.
- Increased mitochondrial reactive oxygen species (ROS) production and subsequent mtDNA damage are hypothesized contributors to disease progression.
Purpose of the Study:
- To investigate the link between OXPHOS inhibition, ROS production, and mtDNA damage.
- To examine the role of antioxidant defenses in mitigating ROS-induced mtDNA alterations.
Main Methods:
- Utilized mice lacking the adenine nucleotide translocator 1 (Ant1), which inhibits OXPHOS.
- Measured ROS production (hydrogen peroxide) and antioxidant enzyme levels (Sod2, Gpx1) in various tissues.
- Assessed mitochondrial DNA (mtDNA) rearrangements in Ant1-deficient mice.
Main Results:
- Ant1-deficient mice showed increased ROS production in skeletal muscle, heart, and brain, but not liver.
- Antioxidant enzyme Sod2 and Gpx1 levels increased in response to elevated ROS.
- Heart mtDNA exhibited significant rearrangements, while skeletal muscle mtDNA showed fewer, correlating with antioxidant enzyme levels.
Conclusions:
- Inhibition of OXPHOS increases mitochondrial ROS production.
- Upregulation of antioxidant defenses can mitigate ROS-induced mtDNA damage.
- Insufficient antioxidant capacity leads to increased mtDNA mutation rates and progression of mitochondrial disease.