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Hyperbranched polycation-based hierarchical assembles as vaccine carrier for cascaded antigen delivery and enhanced
Xiaolan Ye1, Jie Jiang1, Mingming Deng1
1Key Laboratory of Biomaterials of Guangdong Higher Education Institutes, Engineering Technology Research Center of Drug Carrier of Guangdong, Department of Biomedical Engineering, Jinan University, Guangzhou 510632, China.
Abstract:
Tumor vaccines have emerged as a promising strategy in cancer immunotherapy, and their therapeutic efficacy hinges on successive activation of multi-step cascade immune responses, including the uptake of antigens by dendritic cells, the presentation of antigens by mature DCs to T cells and the activation of T cells, and the recognition and killing of tumor cells by effector T cells. However, distinct or even conflicting characteristics (e.g., charge, size, stability) of vaccine delivery system are required at different stages to overcome multi-stage biological barriers remain a pivotal challenge. Herein, we develop a hyperbranched polycation-based multistage delivery carrier that establishes a cascade delivery capacity, thereby potentiating antigen efficiency and immune activation. Specifically, ovalbumin (OVA) as the model antigen was encapsulated by polyethylenimine end-capped disulfide-bond-bearing hyperbranched poly(amido amine) (HPAP) to form HPAP/OVA, followed by the assembly with the charge-reversal Polyethylene glycol-polyethyleneimine-2, 3-dimethylmaleic anhydride(mPEG-PEI-DMMA,PPD) via electrostatic interactions. Herein, the polyethylene glycol (PEG) shell of PPD@HPAP/OVA facilitates lymph node drainage, while its charge-reversal PPD enables pH-responsive lysosomal escape. Following cytosolic entry, the HPAP/OVA complex undergoes glutathione (GSH)-triggered degradation, rapidly releasing OVA to enhance cross-presentation efficiency. This process improved antigen delivery efficiency, as well as potently induces enhanced cellular and humoral immunity. In a subcutaneous tumor model, PPD@HPAP/OVA demonstrated remarkable prophylactic efficacy. The design strategy proposed in this study introduces the "cascade approach" into the design of preventive tumor vaccines, providing a new idea for the development of effective vaccines.
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