ReviewFrontiers in cell and developmental biology2026
RNA m6A modification-regulated ferroptosis in cancer: mechanism and therapeutic potential.
Review in Frontiers in cell and developmental biology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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3 authors.
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Abstract
Ferroptosis, an iron-dependent form of regulated cell death, is increasingly recognized as a context-dependent therapeutic vulnerability in cancer, particularly as malignant cells adapt to oxidative, metabolic, and therapy-induced stresses. As a prevalent and reversible epitranscriptomic modification, RNA N6-methyladenosine (m6A) modification orchestrates RNA stability, translation, splicing and decay; consequently, its dysregulation contributes to cancer progression and therapeutic resistance. The intersection of m6A regulation and ferroptosis is therefore biologically important because many ferroptosis threshold genes are short-lived, stress-responsive transcripts controlled by writers, erasers, readers and RNA-binding proteins. This review synthesizes empirical evidence elucidating how m6A regulators remodel cystine import, GPX4-dependent antioxidant defense, FSP1 signaling, lipid metabolism, iron handling, autophagy and tumor-microenvironmental communication. We organize the evidence by regulatory layer rather than cancer type, covering writer-mediated deposition, reader and RNA-binding protein recognition, eraser-dependent demethylation, non-coding RNA and exosomal regulation, and downstream ferroptosis modules. We further discuss how this axis contributes to radiotherapy, chemotherapy, targeted-therapy resistance and ferroptosis-sensitizing combinations. Although m6A-ferroptosis crosstalk offers promising biomarker and therapeutic opportunities, translation requires transcript-level validation, standardized ferroptosis assays, tumor-selective delivery and clinically meaningful patient stratification. A deeper and more precise integration of epitranscriptomics with ferroptosis biology holds the potential to transform stress-adaptive RNA circuits into actionable vulnerabilities for precision cancer therapy.
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