免疫系统
癌症免疫疗法
癌症研究
免疫疗法
抗原
癌症
癌细胞
免疫检查点
免疫学
材料科学
生物
医学
内科学
作者
Ravi B. Patel,Mingzhou Ye,Peter M. Carlson,Abigail A. Jaquish,Luke M. Zangl,Ben Ma,Yuyuan Wang,Ian S. Arthur,Ruosen Xie,Ryan Brown,Xing Wang,Raghava N. Sriramaneni,KyungMann Kim,Shaoqin Gong,Zachary S. Morris
标识
DOI:10.1002/adma.201902626
摘要
Neoantigens induced by random mutations and specific to an individual's cancer are the most important tumor antigens recognized by T cells. Among immunologically "cold" tumors, limited recognition of tumor neoantigens results in the absence of a de novo antitumor immune response. These "cold" tumors present a clinical challenge as they are poorly responsive to most immunotherapies, including immune checkpoint inhibitors (ICIs). Radiation therapy (RT) can enhance immune recognition of "cold" tumors, resulting in a more diversified antitumor T-cell response, yet RT alone rarely results in a systemic antitumor immune response. Therefore, a multifunctional bacterial membrane-coated nanoparticle (BNP) composed of an immune activating PC7A/CpG polyplex core coated with bacterial membrane and imide groups to enhance antigen retrieval is developed. This BNP can capture cancer neoantigens following RT, enhance their uptake in dendritic cells (DCs), and facilitate their cross presentation to stimulate an antitumor T-cell response. In mice bearing syngeneic melanoma or neuroblastoma, treatment with BNP+RT results in activation of DCs and effector T cells, marked tumor regression, and tumor-specific antitumor immune memory. This BNP facilitates in situ immune recognition of a radiated tumor, enabling a novel personalized approach to cancer immunotherapy using off-the-shelf therapeutics.
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