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Surgical Tumor-Derived Personalized Photothermal Vaccine Formulation for Cancer Immunotherapy
Xinyu Ye1,2,3, Xin Liang1, Qian Chen4
1School of Pharmaceutical Sciences (Shenzhen) , Sun Yat-Sen University , Guangzhou 510275 , P. R. China.
Abstract:
Personalized cancer vaccines show great potential in cancer immunotherapy by inducing an effective and durable antitumor response. However, the limitation of neoantigen identification, low immunogenicity, and weak immune response hamper the development of personalized cancer vaccines. The surgically removed tumor contains tumor antigens specific to the patient, which provides a promising source for personalized cancer vaccines. Here, we utilized the surgically removed tumor to prepare a personalized photothermal vaccine combined with the PD-1 checkpoint blockade antibody to prevent tumor relapse and metastasis. Black phosphorus quantum dot nanovesicles (BPQD-CCNVs) coated with surgically removed tumor cell membrane were prepared and loaded into a thermosensitive hydrogel containing GM-CSF and LPS. The sustained release of GM-CSF from the hypodermic injection of Gel-BPQD-CCNVs effectively recruited dendritic cells to capture tumor antigen. NIR irradiation and LPS stimulated the expansion and activation of DCs, which then traveled to the lymph nodes to present antigen to CD8+ T cells. Moreover, the combination with PD-1 antibody significantly enhanced tumor-specific CD8+ T cell elimination of the surgical residual and lung metastatic tumor. Hence, our work may provide a promising strategy for the clinical development of a personalized cancer vaccine.
Insights
This study developed a personalized photothermal cancer vaccine using surgically removed tumor cells. Combined with PD-1 blockade, it effectively prevents tumor relapse and metastasis by boosting T cell response.
Area of Science:
- Oncology
- Immunotherapy
- Nanotechnology
Background:
- Personalized cancer vaccines offer potential but face challenges in neoantigen identification and immunogenicity.
- Surgically removed tumors provide a patient-specific source for developing personalized cancer vaccines.
Purpose of the Study:
- To develop a personalized photothermal vaccine combined with PD-1 blockade to prevent tumor relapse and metastasis.
- To utilize surgically removed tumor cells for vaccine preparation.
Main Methods:
- Prepared black phosphorus quantum dot nanovesicles (BPQD-CCNVs) coated with tumor cell membranes.
- Loaded BPQD-CCNVs into a thermosensitive hydrogel with GM-CSF and LPS for sustained release.
- Administered Gel-BPQD-CCNVs via hypodermic injection and used near-infrared (NIR) irradiation.
Main Results:
- Sustained GM-CSF release recruited and activated dendritic cells (DCs) for tumor antigen capture.
- NIR irradiation and LPS stimulated DC expansion and activation, leading to CD8+ T cell priming.
- Combination therapy with PD-1 antibody significantly enhanced CD8+ T cell-mediated elimination of residual and metastatic tumors.
Conclusions:
- The personalized photothermal vaccine strategy shows promise for preventing tumor recurrence and metastasis.
- This approach may offer a viable clinical strategy for developing effective personalized cancer vaccines.
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