The Mechanism and Role of N6-Methyladenosine (m6A) Modification in Atherosclerosis and Atherosclerotic Diseases
Abstract
:1. Introduction
2. Regulators of m6A Methylation
2.1. Writers
2.2. Erasers
2.3. Readers
3. The Effects of m6A Methylation in AS Major Risk Factors
3.1. Lipid Metabolism Disorder
3.2. Hypertension
3.3. Type 2 Diabetes Mellitus (T2DM)
4. The Mechanisms of m6A Methylation in AS
4.1. Vascular Endothelial Cells
4.2. Macrophages Response and Inflammation
4.3. Vascular Smooth Muscle Cell (VSMC)
5. The Role of m6A Methylation in AS and AD
5.1. AS
5.2. AD
5.2.1. CHD
5.2.2. IS
6. Potential Diagnostic Biomarkers and Therapeutic Targets of m6A for AS and AD
6.1. Potential Diagnostic Biomarkers of m6A for AS and AD
6.2. Potential Therapeutic Targets of m6A for AS and AD
7. Discussion and Perspectives
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Atherosclerotic Process | m6A Regulators | Expression | Target Gene | Main Function | Reference |
---|---|---|---|---|---|
AS | METTL3 | ↑ | LRP6 and DVL1 | Enhances translation of LRP6 and DVL1, modulates Wnt signaling, and thus exerts angiogenic effects | [84] |
METTL3 | ↑ | PGC-1α mRNA | Promotes mitochondrial dysfunction and ox-LDL-induced inflammation | [73] | |
METTL3 | ↓ | JAK2/STAT3 | Alleviates ox-LDL-induced endothelial cell dysfunction, prevents in vivo angiogenesis of developing embryos, and hinders progression in AS mice models | [85] | |
METTL3 | ↑ | NLRP1 and KLF4 | Up-regulates NLRP1, down-regulates KLF4, hypermethylates m6A, and triggers atherosclerotic response | [86] | |
METTL3 | ↑ | miR-375-3p/PDK1 | Makes AS plaques more vulnerable | [87] | |
METTL3 | ↑ | EGFR | Promotes EGFR degradation and alleviates endothelial atherogenic progression | [88] | |
METTL14 | ↑ | FOXO1 | Increases FOXO1 m6A methylation, aggravates endothelial inflammation and AS | [89] | |
METTL14 | ↓ | miR-19a | Inhibits the proliferation and invasion of ASVEC | [90] | |
METTL14 | ↑ | LncRNA ZFAS1 | Plays a vital role in AS | [91] | |
METTL14 | ↓ | p65 mRNA | Relieves the development of AS | [92] | |
METTL14 | ↓ | NF-κB/IL-6 | Reduces the inflammation response of macrophages and the development of AS plaques | [72] | |
FTO | ↑ | Not known | Modulates neointima formation in vivo | [81] | |
FTO | ↓ | NR4A3 | Alleviates AngII-induced VSMC proliferation and inflammatory response | [80] | |
ALKBH5 | ↓ | HIF1α | Inhibits the expression of MIAT induced by ox-LDL | [42] | |
CHD | METTL3 | ↑ | TFEB | Promotes cardiomyocyte apoptosis | [8] |
WTAP | ↑ | ATF4 | Promotes endoplasmic reticulum stress and apoptosis, aggravates myocardial I/R injury | [93] | |
FTO | ↑ | SERCA2A MYH6/7 RYR2 | Reverses ischemic damage | [94] | |
FTO | ↑ | MHRT | Inhibits cardiomyocyte apoptosis | [95] | |
ALKBH5 | ↓ | TFEB | Promotes cardiomyocyte apoptosis | [8] | |
ALKBH5 | ↑ | WNT5A | Regulates angiogenesis after ischemia | [96] | |
IS | METTL3 | ↑ | miR-335 | Promotes formation of SG and reduces damage of IS | [97] |
YTHDC1 | ↑ | Not known | Protects rats from brain damage | [98] |
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Tan, Q.; He, S.; Leng, X.; Zheng, D.; Mao, F.; Hao, J.; Chen, K.; Jiang, H.; Lin, Y.; Yang, J. The Mechanism and Role of N6-Methyladenosine (m6A) Modification in Atherosclerosis and Atherosclerotic Diseases. J. Cardiovasc. Dev. Dis. 2022, 9, 367. https://doi.org/10.3390/jcdd9110367
Tan Q, He S, Leng X, Zheng D, Mao F, Hao J, Chen K, Jiang H, Lin Y, Yang J. The Mechanism and Role of N6-Methyladenosine (m6A) Modification in Atherosclerosis and Atherosclerotic Diseases. Journal of Cardiovascular Development and Disease. 2022; 9(11):367. https://doi.org/10.3390/jcdd9110367
Chicago/Turabian StyleTan, Quandan, Song He, Xinyi Leng, Danni Zheng, Fengkai Mao, Junli Hao, Kejie Chen, Haisong Jiang, Yapeng Lin, and Jie Yang. 2022. "The Mechanism and Role of N6-Methyladenosine (m6A) Modification in Atherosclerosis and Atherosclerotic Diseases" Journal of Cardiovascular Development and Disease 9, no. 11: 367. https://doi.org/10.3390/jcdd9110367
APA StyleTan, Q., He, S., Leng, X., Zheng, D., Mao, F., Hao, J., Chen, K., Jiang, H., Lin, Y., & Yang, J. (2022). The Mechanism and Role of N6-Methyladenosine (m6A) Modification in Atherosclerosis and Atherosclerotic Diseases. Journal of Cardiovascular Development and Disease, 9(11), 367. https://doi.org/10.3390/jcdd9110367