ArticleBioactive materials2026
Countering postoperative immune suppression with a self-assembling dendritic cell nanovaccine.
Article in Bioactive materials, 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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16 authors.
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Abstract
Postoperative immune suppression, driven by transforming growth factor β (TGFβ)-mediated dendritic cell (DC) dysfunction, significantly impairs antigen-specific T cell responses and elevates cancer recurrence risk. A key mechanism is TGFβ-mediated lysosomal incompetence in DCs, resulting from loss of lysosomal prosaposin (pSAP). Herein, we developed an in vivo-generated DC vaccine, BAIT (boosting antigen-delivering immunovaccine for T cell priming), which integrated DC recruitment, antigen delivery, and immune activation within a single platform. Inspired by arginine metabolism-driven lysosomal biogenesis and acidification, BAITs were designed with an arginine-enriched self-assembling peptide backbone, in which tumor lysate antigens and CCL20 co-assembled via coordination interactions. When administered early post-surgery, BAITs recruited DCs, promoted antigen internalization, and activated the mTOR pathway to upregulate pSAP expression. This BAIT-driven DC modulation reversed TGFβ-induced impairments in antigen digestion and MHC-peptide complex formation. To optimize precision immunotherapy, we employed a functional precision medicine approach by customizing tumor lysate preparations induced via ferroptosis, necroptosis, or apoptosis. In a murine postoperative cancer model, Apo-BAITs formulated with apoptotic lysates achieved an 85.5% reduction in tumor burden. These findings demonstrate that BAITs target the lysosomal mTOR-pSAP axis to restore DC function, providing a personalized postoperative cancer vaccine strategy to counter surgery-induced immune suppression.
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