癌症研究
结直肠癌
免疫原性细胞死亡
免疫系统
氧化应激
癌症
细胞
免疫
细胞内
医学
免疫疗法
化学
癌细胞
微泡
肿瘤微环境
程序性细胞死亡
纳米医学
细胞生长
双重角色
树突状细胞
过氧化物酶
微生物学
免疫学
抗药性
生物膜
作者
Yinghao Cao,Ting Wang,Hui Wang,Xiang Sun,Fang Fang,Shiying Li,Jianping Liu,Changrong Shi,Pengyuan Qi,Jianhua Zou,Xiaoyuan Chen,Kailin Cai
标识
DOI:10.1002/advs.202516272
摘要
The intratumoral microbiota is a critical determinant of therapeutic outcomes in colorectal cancer (CRC). Although several microbial species have been identified that influence CRC development and treatment resistance, effective strategies for precisely modulating these bacteria remain limited. In this study, we identify Peptostreptococcus anaerobius as a tumor-enriched anaerobe that promotes CRC progression by inhibiting ferroptosis. To counteract this, we engineered a composite iron-based nanozyme encapsulating lincomycin, which selectively targets and eradicates intratumoral P. anaerobius, thereby reversing ferroptosis resistance in CRC. Simultaneously, the nanozyme's inherent peroxidase (POD) like activity catalyzes hydroxyl radical generation, enhancing intracellular oxidative stress and promoting ferroptosis. This dual mechanism-microbial clearance and ROS-mediated ferroptosis induction-synergistically suppresses tumor growth. Moreover, ferroptotic cancer cells release large amounts of damage-associated molecular patterns (DAMPs), which trigger immunogenic cell death (ICD), promoting dendritic cell (DC) maturation and T cell activation, thereby enhancing anti-tumor immunity. Our findings highlight a novel ferroptosis-centered therapeutic strategy integrating microbiota modulation and catalytic nanomedicine for precise CRC treatment.
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