CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Antigen Self-Presented Personalized Nanovaccines Boost the Immunotherapy of Highly Invasive and Metastatic Tumors.
Antigen Self-Presented Personalized Nanovaccines Boost the Immunotherapy of Highly Invasive and Metastatic Tumors.
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基于树突状细胞(DC)的疫苗在过继性细胞治疗中已显示出增强抗肿瘤免疫抗原特异性应答的前景。然而,其临床疗效受到通过 MHC I 递呈的肿瘤相关抗原(TAAs)较少以及淋巴结归巢效率低的限制。
在此,为解决这些问题,我们通过用成熟 DC 的膜包被 Cu 2- x Se 纳米颗粒(CS NPs),合理设计并制备了基于 DC 的纳米疫苗(命名为 DCNV(CSD) 纳米疫苗)。
我们从三个方面揭示了 CS NPs 在 DCNV(CSD) 纳米疫苗中的重要作用:(1)诱导肿瘤细胞的免疫原性细胞死亡,以暴露丰富的 TAAs;(2)在抗原递呈过程中通过 MHC I 促进 TAAs 从 DC 的溶酶体中逃逸;(3)持续释放微量铜离子以促进 T 细胞的增殖。
我们的 DCNV(CSD) 纳米疫苗具有 MHC I、CD80、CD86、CCR7 和 ICAM-1 蛋白高表达的特征,这不仅赋予其丰富的经加工处理的特异性 TAAs,还赋予其强大的淋巴结归巢能力。
我们的小尺寸 DCNV(CSD) 纳米疫苗的归巢能力强于成熟 DC。更重要的是,如在高侵袭性胶质母细胞瘤和高转移性黑色素瘤治疗中所测试的,它们能够激发强效抗特异性 CD8 + T 细胞的强烈应答,用于抗肿瘤免疫治疗。
此外,DCNV(CSD) 纳米疫苗能够在小鼠脾脏中产生记忆 T 细胞(T EM),以有效预防已治疗肿瘤的复发。这项工作展示了一种利用多功能 CS NPs 制备用于肿瘤免疫治疗的高性能基于 DC 的纳米疫苗的通用方法。
Dendritic cell (DC)-based vaccines have shown promise in adoptive cell therapy for enhancing the antigen-specific response of antitumor immunity.
However, their clinical efficacy is limited by the less-presented tumor-associated antigens (TAAs) through MHC I and low lymph node homing efficiency.
Herein, to address these issues, we rationally design and fabricate DC-based nanovaccines by coating Cu 2- x Se nanoparticles (CS NPs) with the membrane of matured DCs (named as DCNV(CSD) nanovaccines).
We reveal the important roles of CS NPs in the DCNV(CSD) nanovaccines from three aspects: (1) inducing the immunogenic cell death of tumor cells to expose abundant TAAs; (2) promoting the escape of TAAs from the lysosomes of DCs during the antigen presenting process through MHC I; (3) sustainably releasing traces of copper ions to promote the proliferation of T cells.
Our DCNV(CSD) nanovaccines are characterized with high expressions of MHC I, CD80, CD86, CCR7, and ICAM-1 proteins, which not only endow them with abundantly processed specific TAAs, but also a strong capability of homing to the lymph nodes. The homing capability of our small DCNV(CSD) nanovaccines is better than that of matured DCs. More importantly, they can elicit the strong response of potent antispecific CD8 + T cells for antitumor immunotherapy, as tested in the treatment of highly invasive glioblastoma and highly metastatic melanoma.
Additionally, DCNV(CSD) nanovaccines can generate memory T cells (T EM ) in the spleen of mice to effectively prevent the recurrence of treated tumors. This work demonstrates a universal approach to fabricate high-performance DC-based nanovaccines for tumor immunotherapy by using versatile CS NPs.
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