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RNA m6A modification-regulated ferroptosis in cancer: mechanism and therapeutic potential

Sep 2026 · Frontiers in Cell and Developmental Biology · Vol 14 · 0 citations · 86 references
Medicine

TL;DR

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.

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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