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Updated: Dec 23, 2025

Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
Endogenous mitochondrial oxidative stress in MnSOD-deficient mouse embryonic fibroblasts promotes mitochondrial DNA
Viola Breyer1, Ingrid Weigel, Ting-Ting Huang
1Department of Chemistry and Pharmacy, Food Chemistry, Emil Fischer Center, Friedrich-Alexander University Erlangen-Nuremberg, D-91052 Erlangen, Germany.
Abstract:
The accumulation of somatic mutations in mitochondrial DNA (mtDNA) induced by reactive oxygen species (ROS) is regarded as a major contributor to aging and age-related degenerative diseases. ROS have also been shown to facilitate the formation of certain advanced glycation end-products (AGEs) in proteins and DNA and N(2)-carboxyethyl-2'-deoxyguanosine (CEdG) has been identified as a major DNA-bound AGE. Therefore, the influence of mitochondrial ROS on the glycation of mtDNA was investigated in primary embryonic fibroblasts derived from mutant mice (Sod2(-/+)) deficient in the mitochondrial antioxidant enzyme manganese superoxide dismutase. In Sod2(-/+) fibroblasts vs wild-type fibroblasts, the CEdG content of mtDNA was increased from 1.90 ± 1.39 to 17.14 ± 6.60 pg/microg DNA (p<0.001). On the other hand, the CEdG content of nuclear DNA did not differ between Sod2(+/+) and Sod2(-/+) cells. Similarly, cytosolic proteins did not show any difference in advanced glycation end-products or protein carbonyl contents between Sod2(+/+) and Sod2(-/+). Taken together, the data suggest that mitochondrial oxidative stress specifically promotes glycation of mtDNA and does not affect nuclear DNA or cytosolic proteins. Because DNA glycation can change DNA integrity and gene functions, glycation of mtDNA may play an important role in the decline of mitochondrial functions.
Insights
Mitochondrial oxidative stress specifically promotes the glycation of mitochondrial DNA (mtDNA), a key factor in aging and disease. This glycation, measured as N(2)-carboxyethyl-2'-deoxyguanosine (CEdG), did not affect nuclear DNA or proteins.
Area of Science:
- Biochemistry
- Molecular Biology
- Gerontology
Background:
- Reactive oxygen species (ROS) drive somatic mutations in mitochondrial DNA (mtDNA), contributing to aging and degenerative diseases.
- ROS also promote advanced glycation end-products (AGEs) formation in proteins and DNA, with N(2)-carboxyethyl-2 -deoxyguanosine (CEdG) being a major DNA-bound AGE.
Purpose of the Study:
- To investigate the influence of mitochondrial ROS on the glycation of mtDNA.
- To determine if mitochondrial oxidative stress affects nuclear DNA or cytosolic proteins.
Main Methods:
- Primary embryonic fibroblasts from mutant mice (Sod2(-/+)) deficient in manganese superoxide dismutase were used.
- Quantification of CEdG content in mtDNA, nuclear DNA, and cytosolic proteins was performed.
Main Results:
- mtDNA CEdG content significantly increased in Sod2(-/+) fibroblasts compared to wild-type (17.14 ± 6.60 vs 1.90 ± 1.39 pg/microg DNA).
- No significant difference in CEdG content was observed in nuclear DNA or cytosolic proteins between Sod2(+/+) and Sod2(-/+) cells.
Conclusions:
- Mitochondrial oxidative stress specifically promotes the glycation of mtDNA.
- mtDNA glycation may contribute to the decline of mitochondrial function due to altered DNA integrity and gene expression.
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