ReviewFrontiers in immunology2026
One-carbon metabolism in cancer immunity: T-cell fitness, epigenetic programming, and therapeutic opportunities.
Review in Frontiers in immunology, 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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Abstract
One-carbon metabolism has emerged as a critical interface between tumor metabolic adaptation and antitumor immunity. Beyond its canonical role in nucleotide biosynthesis and redox balance, this metabolic network regulates methyl-donor availability, epigenetic programming, and immune-cell state transitions within the tumor microenvironment. Recent studies show that tumor cells can outcompete T cells for methionine, thereby depleting intracellular S-adenosylmethionine, impairing histone methylation, and driving effector dysfunction or exhaustion. At the same time, tumor-intrinsic one-carbon enzymes such as MTHFD2 actively promote immune escape through PD-L1 upregulation and suppression of innate immune sensing. Serine-related pathways further shape the immune landscape in a context-dependent manner, supporting either immunosuppressive cell accumulation or enhanced tumor immunogenicity depending on the cellular compartment and metabolic state. Importantly, one-carbon metabolism also represents a therapeutic opportunity. Strategies including methionine restriction, formate supplementation, serine-pathway targeting, and methyl-donor modulation have shown potential to enhance antitumor immunity and improve responses to immune checkpoint blockade. However, because one-carbon metabolism is required by both tumor cells and immune cells, effective intervention will require careful attention to cell-type specificity, metabolic context, and therapeutic timing. In this review, we discuss how one-carbon metabolism governs T-cell fitness, epigenetic regulation, and the broader tumor immune ecosystem, and we highlight emerging translational strategies for exploiting this pathway in cancer immunotherapy.
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