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Tumor-targeted CD40 ligand-functionalized extracellular vesicle mimetics enable chemoimmunotherapy for neuroblastoma
Jinkui Wang1, Junyi Luo2, Jiahui Li2
1Department of Pediatrics, The Second Affiliated Hospital of Chongqing Medical University, Chongqing 400010, China; Key Laboratory of Traditional Chinese Medicine for Tumors Integrated Therapy, Chongqing Administration of Traditional Chinese Medicine, Chongqing 400010, China.
Abstract:
Neuroblastoma remains one of the most lethal pediatric solid tumors, and durable control of high-risk disease is hindered not only by inefficient tumor-selective drug delivery but also by a profoundly immunosuppressive tumor microenvironment. To address these dual barriers, we developed a chemoimmunotherapeutic vesicle-mimetic platform, DAS/CD40L-EM@DOX, by engineering CD40L-overexpressing HEK-293 T donor cells, generating extracellular vesicle mimetics through extrusion, decorating the membrane with a neuroblastoma-targeting DAS peptide, and post-loading doxorubicin. The resulting formulation preserved a nanoscale vesicular morphology, displayed CD40L on the membrane, and showed favorable particle size and zeta potential characteristics. In neuroblastoma cells, DAS decoration enhanced uptake in an α7 nicotinic acetylcholine receptor-associated manner and increased the cytotoxic and immunogenic effects of doxorubicin, as evidenced by augmented apoptosis, calreticulin exposure, and HMGB1 release. In macrophage assays, CD40L-containing vesicles shifted M2-like cells toward an M1-like phenotype, increasing CD86, TNF-α and IL-6 while decreasing CD206, IL-10 and TGF-β. Functionally, this repolarization enhanced tumor-cell phagocytosis and promoted CD8+ T-cell effector responses, including increased granzyme B, IFN-γ and IL-2 production. In tumor-bearing mice, DAS modification improved tumor accumulation and reduced off-target sequestration relative to unmodified vesicles. Therapeutically, DAS/CD40L-EM@DOX exerted the strongest inhibition of tumor growth, reduced tumor burden, prolonged survival, increased intratumoural M1-like macrophages and CD8+ T cells, decreased M2-like macrophages and regulatory T cells, and enhanced immunogenic cell-death markers in situ. Together, these findings support DAS/CD40L-EM@DOX as a dual-function vesicle-mimetic nanomedicine that couples neuroblastoma-targeted chemotherapy with macrophage reprogramming to remodel the tumor immune microenvironment and improve antitumour efficacy.
Insights
This study introduces a novel nanomedicine, DAS/CD40L-EM@DOX, that targets neuroblastoma by combining chemotherapy with immune system reprogramming. This approach enhances treatment efficacy against pediatric solid tumors by improving drug delivery and overcoming immune suppression.
Area of Science:
- Biomedical Engineering
- Nanomedicine
- Pediatric Oncology
Background:
- Neuroblastoma is a lethal pediatric cancer with challenges in drug delivery and immunosuppressive tumor microenvironments.
- Durable control of high-risk neuroblastoma requires overcoming these dual barriers.
Purpose of the Study:
- To develop a chemoimmunotherapeutic vesicle-mimetic platform, DAS/CD40L-EM@DOX, for enhanced neuroblastoma treatment.
- To investigate its dual function in targeted chemotherapy and immune microenvironment remodeling.
Main Methods:
- Engineered CD40L-overexpressing HEK-293 T cells to create extracellular vesicle mimetics.
- Decorated vesicles with a neuroblastoma-targeting DAS peptide and loaded with doxorubicin.
- Assessed uptake, cytotoxic, immunogenic, and macrophage repolarization effects in vitro and in vivo.
Main Results:
- DAS/CD40L-EM@DOX enhanced neuroblastoma cell uptake and doxorubicin's cytotoxic/immunogenic effects.
- Vesicles repolarized M2 macrophages to M1-like phenotypes, enhancing phagocytosis and T-cell responses.
- In vivo studies showed improved tumor targeting, reduced tumor growth, prolonged survival, and favorable immune cell infiltration.
Conclusions:
- DAS/CD40L-EM@DOX is a dual-function nanomedicine effectively coupling targeted chemotherapy with immune reprogramming.
- This platform shows significant potential for remodeling the tumor immune microenvironment and improving anti-neuroblastoma efficacy.
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