4.7 Review

Effects of DNA, RNA, and Protein Methylation on the Regulation of Ferroptosis

Journal

INTERNATIONAL JOURNAL OF BIOLOGICAL SCIENCES
Volume 19, Issue 11, Pages 3558-3575

Publisher

IVYSPRING INT PUBL
DOI: 10.7150/ijbs.85454

Keywords

Ferroptosis; DNA methylation; RNA m6A methylation; Protein methylation; Histone methylation; Disulfidptosis

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Ferroptosis is a type of programmed cell death characterized by increased levels of ferrous ions and lipid peroxidation. It has been found to play a role in various organ injuries and degenerative diseases, while insufficient ferroptosis has been linked to tumorigenesis. The regulatory mechanisms of ferroptosis involve iron metabolism, redox systems, and epigenetic mechanisms. This review provides a critical analysis of the molecular mechanisms and regulatory networks of ferroptosis, with a focus on the role of DNA, RNA, and protein methylation. The unanswered questions and debated findings in this field are also discussed.
Ferroptosis is a form of programmed cell death characterized by elevated intracellular ferrous ion levels and increased lipid peroxidation. Since its discovery and characterization in 2012, considerable progress has been made in understanding the regulatory mechanisms and pathophysiological functions of ferroptosis. Recent findings suggest that numerous organ injuries (e.g., ischemia/reperfusion injury) and degenerative pathologies (e.g., aortic dissection and neurodegenerative disease) are driven by ferroptosis. Conversely, insufficient ferroptosis has been linked to tumorigenesis. Furthermore, a recent study revealed the effect of ferroptosis on hematopoietic stem cells under physiological conditions. The regulatory mechanisms of ferroptosis identified to date include mainly iron metabolism, such as iron transport and ferritinophagy, and redox systems, such as glutathione peroxidase 4 (GPX4)-glutathione (GSH), ferroptosis-suppressor-protein 1 (FSP1)-CoQ10, FSP1-vitamin K (VK), dihydroorotate dehydrogenase (DHODH)-CoQ, and GTP cyclohydrolase 1 (GCH1)-tetrahydrobiopterin (BH4). Recently, an increasing number of studies have demonstrated the important regulatory role played by epigenetic mechanisms, especially DNA, RNA, and protein methylation, in ferroptosis. In this review, we provide a critical analysis of the molecular mechanisms and regulatory networks of ferroptosis identified to date, with a focus on the regulatory role of DNA, RNA, and protein methylation. Furthermore, we discuss some debated findings and unanswered questions that should be the foci of future research in this field.

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