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Mitochondrial OGG1 expression reduces age-associated neuroinflammation by regulating cytosolic mitochondrial DNA
Mansoor Hussain1, Xixia Chu1, Burcin Duan Sahbaz1
1DNA repair section, National Institute on Aging, Baltimore, MD, 21224, USA.
Abstract:
Aging is accompanied by a decline in DNA repair efficiency, which leads to the accumulation of different types of DNA damage. Age-associated chronic inflammation and generation of reactive oxygen species exacerbate the aging process and age-related chronic disorders. These inflammatory processes establish conditions that favor accumulation of DNA base damage, especially 8-oxo-7,8 di-hydroguanine (8-oxoG), which in turn contributes to various age associated diseases. 8-oxoG is repaired by 8-oxoG glycosylase1 (OGG1) through the base excision repair (BER) pathway. OGG1 is present in both the cell nucleus and in mitochondria. Mitochondrial OGG1 has been implicated in mitochondrial DNA repair and increased mitochondrial function. Using transgenic mouse models and cell lines that have been engineered to have enhanced expression of mitochondria-targeted OGG1 (mtOGG1), we show that elevated levels of mtOGG1 in mitochondria can reverse aging-associated inflammation and improve functions. Old male mtOGG1Tg mice show decreased inflammation response, decreased TNFα levels and multiple pro-inflammatory cytokines. Moreover, we observe that male mtOGG1Tg mice show resistance to STING activation. Interestingly, female mtOGG1Tg mice did not respond to mtOGG1 overexpression. Further, HMC3 cells expressing mtOGG1 display decreased release of mtDNA into the cytoplasm after lipopolysacchride induction and regulate inflammation through the pSTING pathway. Also, increased mtOGG1 expression reduced LPS-induced loss of mitochondrial functions. These results suggest that mtOGG1 regulates age-associated inflammation by controlling release of mtDNA into the cytoplasm.
Insights
Enhanced mitochondrial OGG1 (mtOGG1) expression reversed aging-associated inflammation and improved mitochondrial function in male mice. This suggests mtOGG1 plays a key role in regulating age-related inflammatory responses.
Area of Science:
- Cellular and Molecular Biology
- Aging Research
- Immunology
Background:
- Aging impairs DNA repair, leading to DNA damage accumulation.
- Chronic inflammation and reactive oxygen species worsen aging and age-related diseases.
- 8-oxo-7,8-dihydroguanine (8-oxoG) accumulation, repaired by OGG1, is linked to age-associated diseases.
Purpose of the Study:
- To investigate the role of mitochondria-targeted OGG1 (mtOGG1) in reversing aging-associated inflammation and improving function.
- To determine if enhanced mtOGG1 expression can mitigate age-related cellular dysfunction.
Main Methods:
- Utilized transgenic mouse models (mtOGG1Tg) with enhanced mitochondria-targeted OGG1 expression.
- Employed cell lines engineered for increased mtOGG1 expression.
- Assessed inflammatory markers, cytokine levels, STING activation, and mitochondrial function.
Main Results:
- Old male mtOGG1Tg mice exhibited reduced inflammation, lower TNFα and pro-inflammatory cytokine levels.
- Male mtOGG1Tg mice showed resistance to STING activation.
- HMC3 cells with mtOGG1 displayed reduced mtDNA release and regulated inflammation via the pSTING pathway, preserving mitochondrial function post-LPS induction.
- Female mtOGG1Tg mice did not show similar responses to mtOGG1 overexpression.
Conclusions:
- Elevated mtOGG1 levels can reverse aging-associated inflammation and improve mitochondrial function, particularly in males.
- mtOGG1 regulates age-associated inflammation by controlling mitochondrial DNA release into the cytoplasm.
- mtOGG1's beneficial effects appear sex-specific, warranting further investigation.
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