ArticleBioactive materials2027
Nanocarrier-mediated targeting of chemotherapy-induced DPP4 enhances T cell infiltration and improves cancer immunochemotherapy.
Article in Bioactive materials, 2027. 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
Cancer immunotherapy has transformed cancer treatment, yet its efficacy remains limited by a "cold" tumor immune microenvironment (TIME) characterized by poor T cell infiltration. Induction of immunogenic cell death (ICD) improves T cell infiltration by promoting the release of T-cell-recruiting chemokines such as CXCL10. However, the outcome may be limited by dipeptidyl peptidase IV (DPP4), a serine protease that degrades CXCL10 and related chemokines. We report that chemotherapeutic agents, particularly those capable of inducing strong ICD, transcriptionally upregulate DPP4 in cancer cells, establishing a negative feedback mechanism that dampens CXCL10-mediated immune responses. To overcome this limitation, we developed an enhanced triple-combination immunochemotherapy based on the codelivery of doxorubicin, a DPP4 inhibitor (Sitagliptin, Sitag), and a COX-2 inhibitor (5-ASA) using a 5-ASA-derivatized hyaluronic acid (HA) dendrimer nanocarrier (HASA). HA is a natural ligand for CD44 that is overexpressed on tumor and tumor endothelial cells, enabling precise targeting. In preclinical tumor models, this strategy enhanced T cell infiltration, antitumor immunity, and therapeutic efficacy while minimizing systemic toxicity, resulting in significant survival benefit when combined with anti-PD-1 therapy. Our work identifies chemotherapy-induced DPP4 upregulation as an adaptive immune-resistance feedback loop and establishes a targeted triple-drug nanoplatform that integrates chemotherapy, DPP4 inhibition, and COX-pathway modulation for enhanced immunochemotherapy.
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