免疫原性细胞死亡
化学免疫疗法
癌症研究
阿霉素
纳米载体
三阴性乳腺癌
免疫系统
医学
细胞毒性T细胞
程序性细胞死亡
药理学
乳腺癌
离体
癌症
癌细胞
树突状细胞
T细胞
获得性免疫系统
免疫疗法
免疫检查点
联合疗法
体内
药品
免疫学
药物输送
酪氨酸激酶抑制剂
癌症免疫疗法
免疫增强剂
酪氨酸激酶
毒品携带者
肿瘤微环境
蒽环类
作者
Xiaomeng Zou,Shiyu Li,Zhiying Jin,Sisi Huang,Ruilan Niu,Naiqin Fu,W. Li,Jianbo Gao,ZhiLi Wang
标识
DOI:10.1021/acsami.5c26337
摘要
Immunogenic cell death (ICD) represents a promising strategy to stimulate antitumor immunity. Doxorubicin (DOX) is one drug that can trigger ICD. However, DOX has limitations for treating triple-negative breast cancer (TNBC). Its ability to stimulate a strong immune response is weak. The drug also promotes an immunosuppressive tumor microenvironment. This suppression hinders the antitumor immune response. Since reactive oxygen species (ROS) generation is a pivotal ICD trigger, we therefore hypothesized that nintedanib, a triple tyrosine kinase inhibitor known to promote immune cell infiltration and activation within tumors, potentiates DOX-induced ICD by augmenting intratumoral ROS generation. To address this, we engineered a targeted nanoenhancer for TNBC by coencapsulating liquid nintedanib and perfluoropentane (PFP), within a peptide-functionalized (tLyp-1) liposomal shell, creating tLyp-1-Nintedanib-PFP Nanoparticles (tNP-NPs) for use in sonodynamic therapy. This tNP-NP platform is intended for combination therapy with DOX in a chemoimmunotherapeutic strategy. With the assistance of low-intensity focused ultrasound (LIFU), tNP-NPs exhibited potent targeting and penetrating capabilities toward 4T1 TNBC cells, enhanced drug cytotoxicity, ROS production, and ICD markers in vitro. Subsequently, for the in vivo study, to mitigate systemic toxicity, an injectable thermosensitive hydrogel coencapsulating tNP-NPs and DOX was applied for local peritumoral injection. In orthotopic 4T1 TNBC models, this combination elicited potent ICD, promoting dendritic cell (DC) cells maturation and cytotoxic T lymphocyte activation within tumors and draining lymph nodes. This approach achieved exceptional antitumor efficacy and systemic immunity while reversing the immunosuppressive tumor microenvironment, without observable organ toxicity, presenting a robust chemoimmunotherapeutic strategy for TNBC.
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