ArticleJournal of nanobiotechnology2026
An inflammation-modulating ferroptotic nanoplatform for immune-compatible cancer therapy.
Article in Journal of nanobiotechnology, 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
Chronic tumor-associated inflammation can impair dendritic-cell (DC) antigen presentation and limit immune engagement, posing a barrier to ferroptosis-based therapeutic strategies that often intensify oxidative stress. Here we develop an inflammation-compatible ferroptosis-inducing therapeutic platform by co-integrating an NF-κB-modulating small molecule, celastrol, with an iron-coordinated mesoporous polydopamine carrier (mPDA-Fe-Cel). The platform combines 808-nm photothermal heating with iron redox cycling to promote lipid peroxidation, while concurrently attenuating inflammatory signaling programs, thereby supporting ferroptosis-associated tumor cell damage in a more immune-permissive context. In tumor cells, mPDA-Fe-Cel increases labile Fe²⁺, depletes glutathione, downregulates GPX4, and amplifies lipid peroxidation, consistent with ferroptosis-associated cell death and accompanied by immunogenic cell death hallmarks, including calreticulin exposure, HMGB1 release, and ATP secretion. In parallel, transcriptomic and protein-level analyses indicate attenuation of NF-κB-linked inflammatory programs, with prominent suppression of a CXCL8-centered signature, together with reduced activation of Toll-like receptor and NOD-like receptor pathways. Functionally, tumor-conditioned cues generated by the nanoplatform support DC maturation and antigen-presentation-related phenotypes (MHC-I/MHC-II and costimulatory markers), coinciding with enhanced intratumoral CD8⁺ T-cell infiltration and improved antitumor efficacy in murine models with favorable biosafety. Collectively, this work outlines a materials-based strategy that couples ferroptosis induction with inflammatory modulation to facilitate immune-compatible cancer nanotherapy.
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