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Circular RNAs in Ferroptosis: Regulation Mechanism and Potential Clinical Application in Disease

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Journal Front Pharmacol
Date 2023 Jun 19
PMID 37332354
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Abstract

Ferroptosis, an iron-dependent non-apoptotic form of cell death, is reportedly involved in the pathogenesis of various diseases, particularly tumors, organ injury, and degenerative pathologies. Several signaling molecules and pathways have been found to be involved in the regulation of ferroptosis, including polyunsaturated fatty acid peroxidation, glutathione/glutathione peroxidase 4, the cysteine/glutamate antiporter system Xc-, ferroptosis suppressor protein 1/ubiquinone, and iron metabolism. An increasing amount of evidence suggests that circular RNAs (circRNAs), which have a stable circular structure, play important regulatory roles in the ferroptosis pathways that contribute to disease progression. Hence, ferroptosis-inhibiting and ferroptosis-stimulating circRNAs have potential as novel diagnostic markers or therapeutic targets for cancers, infarctions, organ injuries, and diabetes complications linked to ferroptosis. In this review, we summarize the roles that circRNAs play in the molecular mechanisms and regulatory networks of ferroptosis and their potential clinical applications in ferroptosis-related diseases. This review furthers our understanding of the roles of ferroptosis-related circRNAs and provides new perspectives on ferroptosis regulation and new directions for the diagnosis, treatment, and prognosis of ferroptosis-related diseases.

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References
1.
Hao H, Xie Y, Zhang Y, Charlat O, Oster E, Avello M . ZNRF3 promotes Wnt receptor turnover in an R-spondin-sensitive manner. Nature. 2012; 485(7397):195-200. DOI: 10.1038/nature11019. View

2.
Karimi P, Islami F, Anandasabapathy S, Freedman N, Kamangar F . Gastric cancer: descriptive epidemiology, risk factors, screening, and prevention. Cancer Epidemiol Biomarkers Prev. 2014; 23(5):700-13. PMC: 4019373. DOI: 10.1158/1055-9965.EPI-13-1057. View

3.
Lyu N, Zeng Y, Kong Y, Chen Q, Deng H, Ou S . Ferroptosis is involved in the progression of hepatocellular carcinoma through the circ0097009/miR-1261/SLC7A11 axis. Ann Transl Med. 2021; 9(8):675. PMC: 8106082. DOI: 10.21037/atm-21-997. View

4.
Xie Y, Wang L, Yang D . CircEPSTI1 Promotes the Progression of Non-Small Cell Lung Cancer Through miR-145/HMGB3 Axis. Cancer Manag Res. 2020; 12:6827-6836. PMC: 7414941. DOI: 10.2147/CMAR.S252893. View

5.
Chen L, Yang L . Regulation of circRNA biogenesis. RNA Biol. 2015; 12(4):381-8. PMC: 4615371. DOI: 10.1080/15476286.2015.1020271. View