前列腺癌
医学
免疫疗法
免疫系统
人性化鼠标
联合疗法
多西紫杉醇
肿瘤微环境
癌症研究
外周血单个核细胞
细胞疗法
T细胞
免疫学
癌症免疫疗法
免疫检查点
癌症
放射治疗
前列腺
肿瘤科
免疫耐受
细胞
作者
Wenwen Guo,Hui Li,Yong Zhao,Jing Qin,Meng Han,Ge Xu,Caiqin Zhang,Changhong Shi
标识
DOI:10.1007/s00262-025-04225-7
摘要
Prostate cancer (PCa) exhibits low sensitivity to immune checkpoint inhibitors due to insufficient T cell infiltration and the dominance of immunosuppressive cells in the tumor immune microenvironment (TIME). Immunotherapy-based combination therapy proves to be an effective strategy in overcoming immune resistance. However, the development and optimization of such therapies necessitate an accurate preclinical model capable of replicating the complex TIME of PCa. To address this need, we developed a humanized mouse model that closely mimics the TIME of PCa patients. This model was created by transplanting human peripheral blood mononuclear cells (PBMCs) into severe combined immunodeficient mice. We systematically investigated factors influencing immune reconstitution, including donor variability, cell dosage, and recipient characteristics. Furthermore, the model was employed to establish a human PCa xenograft, which enabled us to assess the therapeutic efficacy and explore the underlying mechanisms of the combination therapy involving docetaxel and pembrolizumab. The results revealed that both the donor origin and the quantity of transplanted PBMCs had a significant impact on immune reconstitution. In our preclinical evaluations, the combination therapy of docetaxel with immunotherapy showed superior efficacy in both cell line-derived and patient-derived xenograft models when compared to monotherapy approaches. This enhanced efficacy is attributed to the increased infiltration of CD8+ T cells within the TIME. Our study successfully establishes a reliable humanized mouse model for PCa. The promising outcomes of the combination therapy observed in this model could potentially lay the groundwork for innovative clinical applications designed to overcome immune resistance in PCa.
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