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Published on: November 28, 2015
METTL4-Mediated Mitochondrial DNA N6-Methyldeoxyadenosine Promoting Macrophage Inflammation and Atherosclerosis
Longbin Zheng1,2, Xiang Chen1, Xian He1
1Key Laboratory of Cardiovascular and Cerebrovascular Medicine, School of Pharmacy, Nanjing Medical University, Nanjing, China (Longbin Zheng, X.C., X.H., Y.T., J.M., Xinyu Li, H.W., M.C., Y.Z., M.D., Q.Y., D.H., H.J., Xuesong Li, H.C.).
Background:
Mitochondrial dysfunction is a key factor in the development of atherogenesis. METTL4 (methyltransferase-like protein 4) mediates N6- methyldeoxyadenosine (6mA) of mammalian mitochondrial DNA (mtDNA). However, the role of METTL4-mediated mitoepigenetic regulation in atherosclerosis is still unknown. This study aims to investigate the potential involvement of METTL4 in atherosclerosis, explore the underlying mechanism, and develop targeted strategies for treating atherosclerosis.
Methods:
Expression levels of mtDNA 6mA and METTL4 were determined in atherosclerotic lesions. We explored the mechanism of METTL4 involvement in atherosclerosis using Mettl4-Apoe and Mettl4-Apoe mice and cell models, as well as bone marrow transplantation. Natural compound libraries were screened to identify potent METTL4 antagonists. In addition, bioinspired proteolysis targeting chimera technology targeting macrophages within plaques was used to increase the efficacy of the METTL4 antagonist.
Results:
The expression levels of mtDNA 6mA and METTL4 were significantly increased in plaque macrophages. Mettl4-Apoe mice displayed suppressed mtDNA 6mA levels and atherosclerotic progression, which were reversed by METTL4 restoration through bone marrow transplantation (n=6). Mechanistically, elevated METTL4 expression reduces mitochondrial ATP6 (MT-ATP6) expression by suppressing its transcription, thereby impairing the activity of mitochondrial respiration chain complex V. This disruption leads to the accumulation of excess protons in the mitochondrial intermembrane space, causing mitochondrial dysfunction. Consequently, mtDNA is released into the cytoplasm, ultimately triggering inflammasome activation. All results were reversed by the mutation in the METTL4 methyltransferase active site. Mettl4-Apoe mice showed suppressed mtDNA 6mA levels and atherosclerotic progression and repaired mitochondrial function of macrophage, which were reversed by METTL4 restoration through bone marrow transplantation (n=6). Pemetrexed was identified as the first METTL4 antagonist to effectively alleviate atherosclerotic progression. Furthermore, we generated a proteolysis targeting chimera drug based on pemetrexed that specifically targeted METTL4 in macrophages within plaques, showing a promising therapeutic effect on atherosclerosis.
Conclusions:
This study revealed a novel mechanism by which mtDNA 6mA orchestrated mitochondrial function-related gene expression in macrophages, thereby promoting atherosclerosis. Through various experimental techniques, such as gene manipulation, pharmacological inhibition, and proteolysis targeting chimera, this study demonstrated that mtDNA 6mA and its specific enzyme METTL4 hold potential as therapeutic targets for atherosclerosis.
Insights
Mitochondrial dysfunction drives atherosclerosis. This study identifies METTL4 (methyltransferase-like protein 4) and its role in mitochondrial DNA (mtDNA) modifications as a key factor, revealing potential therapeutic targets for atherosclerosis.
Area of Science:
- Molecular Biology
- Epigenetics
- Cardiovascular Research
Background:
- Mitochondrial dysfunction is a critical contributor to atherogenesis.
- METTL4 (methyltransferase-like protein 4) modifies mitochondrial DNA (mtDNA) via N6-methyldeoxyadenosine (6mA).
- The role of METTL4-mediated mitoepigenetic regulation in atherosclerosis remains largely unexplored.
Purpose of the Study:
- To investigate the involvement of METTL4 in atherosclerosis.
- To elucidate the underlying molecular mechanisms.
- To develop targeted therapeutic strategies for atherosclerosis.
Main Methods:
- Quantified mtDNA 6mA and METTL4 levels in atherosclerotic lesions.
- Utilized Mettl4-Apoe knockout and wild-type mice, cell models, and bone marrow transplantation.
- Screened compound libraries for METTL4 antagonists and employed proteolysis targeting chimera technology.
Main Results:
- Elevated mtDNA 6mA and METTL4 expression were observed in plaque macrophages.
- Mettl4 deficiency suppressed atherosclerotic progression by reducing mtDNA 6mA and restoring mitochondrial function.
- METTL4 inhibition, particularly with pemetrexed and targeted drug conjugates, alleviated atherosclerosis.
Conclusions:
- mtDNA 6mA and METTL4 play a significant role in macrophage mitochondrial dysfunction and atherosclerosis progression.
- METTL4 and mtDNA 6mA represent promising therapeutic targets for atherosclerosis.
- Targeted inhibition of METTL4, especially in macrophages, offers a viable therapeutic strategy.
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