树突状细胞
免疫系统
胰腺癌
癌症研究
抗原
细胞
化学
临床疗效
癌症免疫疗法
纳米颗粒
免疫疗法
疫苗效力
先天免疫系统
癌症
治疗效果
T细胞
机制(生物学)
抗体
癌细胞
抗原提呈细胞
获得性免疫系统
肺癌
治愈率
B细胞
治疗方法
细胞生物学
肿瘤微环境
细胞培养
癌症治疗
接种疫苗
抗原呈递
医学
免疫学
作者
X. Hermione Xu,X. Chen,Jin Wang,Ying Liu,Sidra Mustafa,L Diao,Rongrong Zhao,Haiyang Chi,Kang Hu,Jiashan Zhu,Jun Zhao,Mi Liu
标识
DOI:10.1002/advs.202510615
摘要
Dendritic cells (DC) play core roles in inducing antigen-specific T cells. However, limited effectiveness hinders their applications as vaccines. To improve the efficacy of traditional DC vaccines, this study optimized three aspects: tumor antigens, cell sources and co-incubating molecules, and thus proposed a new DC-BC vaccine: co-priming B cells and DC at a precise ratio. The therapeutic efficacy was significantly improved by co-incubating DC and B cells. Regarding tumor antigens, utilizing nanoparticles loading whole-tumor lysates performed better than utilizing nanoparticles loading multiple neo-antigens, or nanoparticles loading only water-soluble lysates, or free whole-tumor lysates. Moreover, adding IL-15 and αPD-L1 antibody further bettered DC-BC vaccines. The optimal DC-BC vaccines showed excellent therapeutic efficacy with a 100% response rate and could cure most tumor-bearing mice on several different cancer models, including melanoma, lung cancer and orthotopic pancreatic cancer. The mechanism investigation demonstrated that several molecules, including Ticam1 (TRIF), Traf3, Mavs, and Ifnar2, were involved in promoting APC maturation and improving therapeutic efficacy of vaccines by activating innate immune pathways (TLR/NLR/RLR). In summary, this study provides a new DC-BC vaccine that has much better therapeutic efficacy and explores the underlying mechanism of why co-incubating DC and B cells improved the therapeutic efficacy.
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