PROTAC 工程化蛋白/DNA 纳米抗原是癌症免疫治疗中树突状细胞疫苗的有效增强剂
PROTAC-Engineered Protein/DNA Nanoantigen is a Potent Booster for Dendritic Cell Vaccines in Cancer Immunotherapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Integrated single-cell and functional analyses define strategies to enhance dendritic cell immunostimulatory capacity.
Integrated single-cell and functional analyses define strategies to enhance dendritic cell immunostimulatory capacity.
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树突状细胞(DC)对于抗肿瘤免疫应答的启动和调控至关重要。尽管DC疫苗在个性化癌症免疫治疗中具有巨大前景,但其疗效仍受限于肿瘤诱导的免疫抑制以及DC成熟和激活不足。近期研究表明,DC成熟伴随免疫检查点信号的动态变化,凸显了更好地定义功能性DC状态的必要性。为阐明这些调控特征,我们进行了单细胞RNA测序以表征DC异质性和转录程序,发现成熟DC亚群中免疫检查点相关特征(包括PD-L1)的富集。随后,我们在体外评估了PD-L1阻断和CD40刺激对DC激活和功能的影响。
我们发现,PD-L1抑制与CD40结合可增强DC成熟和抗原提呈能力。我们将这些功能优化的DC操作性定义为“增强型DC”,其特征为IL-12分泌升高和T细胞启动效率改善。当负载肿瘤新抗原肽时,增强型DC在共培养实验中有效激活CD8⁺ T细胞并促进记忆T细胞分化。
总之,本研究将单细胞转录组分析与功能验证相结合,证明靶向调控DC免疫检查点和共刺激通路可提高DC的免疫原性,尤其是在负载新抗原时。这些发现为优化基于DC的癌症疫苗和推进个性化免疫治疗方法提供了合理框架。
Dendritic cells (DCs) are essential for the initiation and regulation of antitumor immune responses. Although DC vaccines hold great promise in personalized cancer immunotherapy, their efficacy remains limited by tumor-induced immunosuppression and insufficient DC maturation and activation. Recent studies suggest that DC maturation is accompanied by dynamic changes in immune checkpoint signaling, highlighting the need to better define functional DC states.
To delineate these regulatory features, we performed single-cell RNA sequencing to characterize DC heterogeneity and transcriptional programs, identifying enrichment of immune checkpoint associated signatures, including PD-L1, within mature DC subsets. Subsequently, we evaluated the effects of PD-L1 blockade and CD40 stimulation on DC activation and function in vitro.
We found that combined PD-L1 inhibition and CD40 engagement enhanced DC maturation and antigen-presenting capacity.
We operationally define these functionally optimized DCs as “Enhanced DCs”, characterized by elevated IL-12 secretion, and improved T-cell priming efficiency. When loaded with tumor neoantigen peptides, Enhanced DCs effectively activated CD8⁺ T cells and promoted memory T-cell differentiation in co-culture assays.
Together, this study integrates single-cell transcriptomic profiling with functional validation to demonstrate that targeted modulation of DC immune checkpoints and co-stimulatory pathways can improve the immunogenicity of DC, particularly when loaded with neoantigens.
These findings provide a rational framework for optimizing DC-based cancer vaccines and advancing personalized immunotherapy approaches.
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