Sep 2026· Frontiers in Cell and Developmental Biology· Vol 14· 0 citations· 201 references
Medicine
TL;DR
This review systematically elucidates the multidimensional regulatory mechanisms of m6A on ferroptosis regulatory factors, covering post-transcriptional modifications of the System Xc−/GSH/GPX4 antioxidant axis, iron metabolism-related proteins, and key enzymes of lipid peroxidation.
Abstract
N6-methyladenosine (m6A), as the most abundant epitranscriptomic modification in eukaryotes, profoundly influences the metabolic fate of RNA. Meanwhile, ferroptosis, a regulated cell death modality driven by iron-dependent lipid peroxidation, has become a key component in tumor metabolic reprogramming. Increasing evidence suggests a deep interaction between m6A modification and ferroptosis, which plays a critical role in tumor occurrence and development, and treatment response. This review systematically elucidates the multidimensional regulatory mechanisms of m6A on ferroptosis regulatory factors, covering post-transcriptional modifications of the System Xc−/GSH/GPX4 antioxidant axis, iron metabolism-related proteins, and key enzymes of lipid peroxidation. It analyzes the dual role of the m6A-ferroptosis axis in tumor suppression and promotion, and then explores the function of this regulatory network in reshaping the tumor immune microenvironment and mediating treatment resistance. Finally, it looks forward to the translational potential of the m6A-ferroptosis interactive network as a novel biomarker and combination therapy target. Future research should integrate multi-omics and cutting-edge technologies to deeply analyze the spatiotemporal dynamic mechanism of this regulatory network in the occurrence and development of tumors, providing theoretical basis and new research directions for precise intervention in this interdisciplinary field.
Empirical evidence elucidating how m6A regulators remodel cystine import, GPX4-dependent antioxidant defense, FSP1 signaling, lipid metabolism, iron handling, autophagy and tumor-microenvironmental communication is synthesized.
Qing-Miao Shi, Yang-Ni Li, Chao Guan· Frontiers in Cell and Develo...· 0 citations
It is proposed that transcriptional-epigenetic crosstalk represents the core driver of ferroptosis plasticity, enabling cancer cells to dynamically adapt to therapeutic stress, and bridges mechanistic epigenetic biology with translational pharmacology, providing a valuable reference for overcoming cancer drug resistanc...
Ze-Nan Xu, Man-Xuan Zhang, Muhammad Faseeh et al.· Biochemical Pharmacology· 0 citations
Ferroptosis is an emerging form of programmed cell death driven by the excessive accumulation of iron-dependent lipid peroxides, which plays a pivotal regulatory role in suppressing tumor initiation and progression. In recent years, protein post-translational modification (PTM), as a core molecular mechanism regulating...
Xin Xie, Li-Zhou Song, Zhao-Yu Li et al.· International Journal on Bio...· 0 citations
This review systematically dissects how dysregulated m6A methylation fuels malignant transformation and progression by reinforcing core oncogenic hallmarks, sustained proliferation, metastasis, metabolic rewiring, and resistance to programmed cell death.
Sheng-Jie Tang, Rangping Xie, Jiang Fu et al.· Molecular Cancer· 0 citations
Ferroptosis is a regulated form of cell death caused by iron-dependent membrane lipid peroxidation. Iron metabolism, membrane lipid composition, cellular metabolic pathways, and antioxidant defense systems regulate ferroptosis. Recently, ferroptosis has attracted interest as a target in cancer therapy, in particular ca...
A. Di Paola, M. Marrapodi, Giuseppe Di Feo et al.· International Journal of Mol...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.