Checkpoint-insulated triple-signal artificial antigen-presenting cells drive antigen relay and systemic antitumor immunity

成果类型:
Article
署名作者:
Zhao, Siyu; Shi, Tianzi; Tian, Tianyi; Zhang, Fangming; Zhang, Zitong; Xu, Hongbo; Zhou, Yixuan; Li, Zhilang; Qin, Zhaojing; Xu, Pengwen; Yang, Conglian; Zhang, Zhiping
署名单位:
Huazhong University of Science & Technology; Sun Yat Sen University; Huazhong University of Science & Technology
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2604171123
发表日期:
2026-08-11
页码:
e2604171123
关键词:
artificial antigen-presenting cells colorectal cancer immunotherapy cis CD80:PD-L1 complexes antigen cross-dressing cancer pd-1
摘要:
Dendritic cell (DC) vaccines offer professional antigen presentation but are often limited by suboptimal trafficking to lymphoid tissues, whereas whole tumor cell vaccines preserve antigenic diversity yet frequently lack coordinated activation cues for efficient T cell priming. Here, we report OncoAPC, an inactivated artificial antigen-presenting cell designed around a triple-signal priming logic: MHC-I-mediated antigen presentation (signal 1), CD80-mediated costimulation (signal 2) with checkpoint-insulating capacity, and incorporated IL-12 (signal 3). Mechanistically, OncoAPC directly activated T cells while partially insulating against PD-1 suppression through cis CD80:PD-L1 interactions and simultaneously engaged endogenous DCs to relay tumor antigens via cross-dressing and amplify lymphoid priming. Across multiple tumor models, OncoAPC showed broad therapeutic activity, including marked suppression of metastatic tumor burden and substantial control of established tumors, outperforming conventional DC vaccination. It further retained efficacy beyond the MC38 backbone and remained active when generated from human tumor cells or excised tumor-derived material. These findings establish OncoAPC as a scalable, broad-spectrum cancer vaccine platform that integrates antigenic diversity with DC-like functional precision.
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