ReviewRedox biology2026
S-nitrosylation topology in melanoma: established mechanisms, unresolved redox-immune links, and a testable framework.
Review in Redox 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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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
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Abstract
Melanoma therapies can produce substantial tumor regression without durable control, raising two separable questions: how efficiently tumor cells are eliminated and whether therapy-induced death supports immune recognition. This review examines whether melanocytic-lineage redox biology and site-selective protein S-nitrosylation help connect these outcomes. We distinguish mechanisms demonstrated directly in melanoma from mechanistic precedents in other systems and from hypotheses that require validation. In melanocytic cells, active pigment-forming chemistry can support a nitric oxide synthase (NOS)-active state. In melanoma, S-nitrosylation has been linked to MAPK persistence during MEK inhibition, TSC2-dependent mTOR activation, and NOS1-dependent suppression of interferon programs through HDAC2 and IRF7. Pharmacological S-nitrosylation blockade also increases ER stress signaling, calreticulin exposure, HMGB1 release, immune cell recruitment, and tumor control, but these observations do not establish a site-specific effect on the immunological quality of cell death. We therefore propose a two-gate framework in which S-nitrosylation may regulate both susceptibility to irreversible death and the signaling competence of dying cells. Establishing this model will require quantitative site occupancy, cell type-resolved nitrosoproteomics, causal site replacement, and immune assays that distinguish altered signaling from simply increased cell killing. The available evidence supports selective interrogation of causal S-nitrosylation nodes rather than indiscriminate suppression of NO biology.
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