研究概要
本研究为治疗肿瘤内细菌提供了一种新的非抗生素选择,并为肿瘤靶向提供了一种新的仿生杂化膜技术。
中文摘要
越来越多的证据表明,瘤内微生物群,尤其是具核梭杆菌(Fn),会促进肿瘤微环境中的免疫抑制。我们发现,雷公藤红素(CLT)对三阴性乳腺癌(TNBC)细胞表现出细胞毒性,同时对Fn具有杀菌作用。为利用这一独特的双重功能,我们开发了一种仿生系统(CiTB),使用来自工程化T细胞和Fn的杂合膜包裹载有CLT的PLGA纳米颗粒。该设计利用T细胞膜上过表达的PD-1和Fn膜上的Fap2蛋白,分别靶向肿瘤细胞表面过表达的PD-L1和Gal-GalNAc残基。重要的是,该仿生系统通过四种协同效应重编程肿瘤微环境:(1)直接清除Fn以打破细菌诱导的免疫抑制,(2)通过PD-1膜介导的免疫检查点阻断实现免疫再激活,(3)以NK细胞和T细胞浸润为特征的增强协同免疫,(4)通过细菌成分佐剂性与肿瘤抗原释放相结合实现原位疫苗。在Fn定植的TNBC模型中,CiTB表现出优异的肿瘤蓄积和抑制效果,以及显著的中位生存期延长(从23天延长至44.5天)。CiTB还表现出优异的生物安全性,且未破坏肠道微生物组。因此,本研究既为治疗瘤内细菌提供了一种新的非抗生素选择,也为肿瘤靶向提供了一种新的仿生杂合膜技术。
展开英文摘要原文
Mounting evidence reveals that intratumoral microbiota, particularly Fusobacterium nucleatum (Fn) , promote immunosuppression in the tumor microenvironment. We discovered that celastrol (CLT) displays concurrent cytotoxicity against triple-negative breast cancer (TNBC) cells and bactericidal effects against Fn . To exploit this unique dual-functionality, we developed a biomimetic system (CiTB) using hybrid membranes from engineered T cells and Fn to wrap CLT-loaded PLGA nanoparticles. This design utilizes overexpressed PD-1 on the T cell membrane and Fap2 proteins on the Fn membrane to target PD-L1 and Gal-GalNAc residues overexpressed on tumor cell surfaces, respectively. Importantly, this biomimetic system reprograms the tumor microenvironment through four synergistic effects: (1) directly clearing Fn to break bacteria-induced immunosuppression, (2) immune reactivation via PD-1 membrane mediated immune checkpoint blockade, (3) enhanced synergistic immunity characterized by NK cells and T cell infiltration, and (4) in-situ vaccination through combined bacterial component adjuvanticity and tumor antigen release. In Fn -colonized TNBC models, CiTB exhibited superior tumor accumulation and suppression as well as significant median survival length extension (from 23 to 44.5 days). CiTB also exhibited excellent biosafety without gut microbiome disruption. Thus, this study provides both a new nonantibiotic option for treating intratumor bacteria and a new biomimetic hybrid membrane technique for tumor targeting.
论文信息
- 作者
- Yang L、Zhang Y、Chen T、Han J、Wang H、Zhang M、Bao Q、Diao Z
- 单位
- Med-X Center for Materials, College of Polymer Science and Engineering, Sichuan University, Chengdu 610065, People's Republic of China.China
- 期刊
- ACS applied materials & interfaces2025 Nov 5