流出
活性氧
效应器
脂多糖
免疫系统
生物
抗氧化剂
铜绿假单胞菌
微生物学
超氧化物
多重耐药
先天免疫系统
细胞生物学
启动(农业)
NADPH氧化酶
超氧化物歧化酶
谷胱甘肽
细菌
氧化应激
细胞
作者
Can Wu,Linfei Chen,Guangbao Li,Xuan Wu,Lingfeng Xu,Tong Ye,Xiaotong Sun,Xiaotong Sun,Z L Wang,Yue Wang,Chao Liu,Anqi Liu,Xiaobo Sun,Xiaobo Sun,Xin Pang
摘要
ABSTRACT Multidrug‐resistant (MDR) bacteria pose a formidable challenge to conventional sonodynamic therapy (SDT) due to their sophisticated defense mechanisms, including antioxidant systems, efflux pumps, and the ability to create an immunosuppressive microenvironment. To address these barriers, we propose a “three‐phase” sono‐immunotherapy strategy using a supermolecular nanoplatform co‐assembled from trivalent bismuth (Bi 3+ ), natural sonosensitizer hypericin (Hy), and immunopotentiator Astragali polysaccharide (APS). In the pre‐SDT priming phase, Bi 3+ leverages its high thiophilicity to deplete glutathione while impairing bacterial efflux pumps via NADH dehydrogenase inhibition. Concurrently, its Fe(III)‐mimetic property suppresses the key antioxidant enzyme of superoxide dismutase, collectively disarming bacterial redox defenses and enhancing Hy accumulation. During SDT execution, ultrasound triggers Hy to generate a sustained, potent reactive oxygen species storm within this preconditioned microenvironment, effectively killing bacteria. Subsequently, in the post‐SDT immunization phase, APS reprograms the local immunosuppressive milieu. Together with SDT‐generated bacterial debris, it synergistically promotes dendritic cell maturation and effector T cell expansion, enabling immune‐mediated clearance of residual bacteria. In a murine model of MDR Pseudomonas aeruginosa pneumonia, this integrated approach achieved near‐complete infection resolution. By sequentially orchestrating defense disruption, oxidative detonation, and immune activation, our precision‐engineered SDT paradigm offers a highly effective solution for intractable MDR infections.
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