光动力疗法
刺
材料科学
光敏剂
免疫原性细胞死亡
癌症研究
免疫疗法
肿瘤微环境
渗透(HVAC)
转移
免疫系统
CD8型
放射治疗
医学
免疫学
内科学
癌症
复合材料
航空航天工程
工程类
有机化学
化学
作者
Huilin Yu,Qiaoqi Chen,Min Zheng,Ruoyao Wang,Haiyang Wang,Long Cheng,Yaqin Hu,Mingyuan Dai,Chier Du,Wenpei Luo,Mixiao Tan,Yang Cao,Yuan Guo,Haitao Ran
标识
DOI:10.1021/acsami.4c02528
摘要
Metastasis and recurrence are notable contributors to mortality associated with breast cancer. Although immunotherapy has shown promise in mitigating these risks after conventional treatments, its effectiveness remains constrained by significant challenges, such as impaired antigen presentation by dendritic cells (DCs) and inadequate T cell infiltration into tumor tissues. To address these limitations, we developed a multifunctional nanoparticle platform, termed GM@P, which consisted of a hydrophobic shell encapsulating the photosensitizer MHI148 and a hydrophilic core containing the STING agonist 2'3'-cGAMP. This design elicited robust type I interferon responses to activate antitumor immunity. The GM@P nanoparticles loaded with MHI148 specifically targeted breast cancer cells. Upon exposure to 808 nm laser irradiation, the MHI148-loaded nanoparticles produced toxic reactive oxygen species (ROS) to eradicate tumor cells through photodynamic therapy (PDT). Notably, PDT stimulated immunogenic cell death (ICD) to foster the potency of antitumor immune responses. Furthermore, the superior photoacoustic imaging (PAI) capabilities of MHI148 enabled the simultaneous visualization of diagnostic and therapeutic procedures. Collectively, our findings uncovered that the combination of PDT and STING activation facilitated a more conducive immune microenvironment, characterized by enhanced DC maturation, infiltration of CD8
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