研究概要
我们的发现表明,ACT-DC 改善了原位抗原采集,无需外源性抗原即可触发强烈的全身免疫反应,并将肿瘤环境转变为更“免疫热”的状态。
中文摘要
引发针对肿瘤的强效免疫应答,常因有效抗原呈递细胞在免疫抑制性肿瘤微环境中数量不足及其呈递抗原能力欠佳而受到阻碍。在此,我们报告一种级联抗原接力策略,整合抗原捕获纳米颗粒(AC-NPs)与迁移性1型经典树突状细胞(cDC1s),命名为抗原捕获纳米颗粒转化树突状细胞疗法(ACT-DC),以促进原位免疫。AC-NPs被设计为直接从肿瘤中捕获抗原,并促进其递送至过继转移的迁移性cDC1s,增强抗原向淋巴结的呈递并重塑肿瘤微环境。我们的研究结果表明,ACT-DC改善了原位抗原收集,无需外源性抗原即可触发强效的系统性免疫应答,并将肿瘤环境转变为更“免疫热”的状态。在包括结肠癌、黑色素瘤和胶质瘤在内的多种肿瘤模型中,ACT-DC与免疫检查点抑制剂联合可在50-100%的治疗小鼠中消除原发肿瘤,并有效排斥两次独立的肿瘤再挑战。总体而言,ACT-DC可为原位癌症免疫和肿瘤微环境调控提供一种广泛有效的方法。
展开英文摘要原文
Eliciting a robust immune response against tumors is often hampered by the inadequate presence of effective antigen presenting cells and their suboptimal ability to present antigens within the immunosuppressive tumor microenvironment. Here, we report a cascade antigen relay strategy integrating antigen capturing nanoparticles (AC-NPs) and migratory type 1 conventional dendritic cells (cDC1s), named Antigen Capturing nanoparticle Transformed Dendritic Cell therapy (ACT-DC), to facilitate in situ immunization. AC-NPs are engineered to capture antigens directly from the tumor and facilitate their delivery to adoptively transferred migratory cDC1s, enhancing antigen presentation to the lymph nodes and reshaping the tumor microenvironment. Our findings suggest that ACT-DC improves in situ antigen collection, triggers a robust systemic immune response without the need for exogenous antigens, and transforms the tumor environment into a more "immune-hot" state. In multiple tumor models including colon cancer, melanoma, and glioma, ACT-DC in combination with immune checkpoint inhibitors eliminates primary tumors in 50-100% of treated mice and effectively rejects two separate tumor rechallenges. Collectively, ACT-DC could provide a broadly effective approach for in situ cancer immunization and tumor microenvironment modulation.
论文信息
- 作者
- Chao CJ、Zhang E、Trinh DN、Udofa E、Lin H、Silvers C、Huo J、He S
- 第一作者单位
- Department of Pharmaceutical Sciences, University of Illinois Chicago, Chicago, IL, USA.United States
- 通讯作者单位
- Department of Pharmaceutical Sciences, University of Illinois Chicago, Chicago, IL, USA. zhaozm@uic.edu.United States
- 期刊
- Nature communications2025 May 16