生物膜
巨噬细胞
声动力疗法
细胞内
巨噬细胞极化
吞噬作用
化学
微生物学
光动力疗法
细胞生物学
生物
细菌
生物化学
遗传学
有机化学
体外
作者
Xudong Zhang,Zhengxi Wang,Quan Liu,Xianli Hu,Jiawei Mei,Dongdong Xu,Jun Zhou,Xianzuo Zhang,Qianming Li,Hua Chen,Zheng Su,Wanbo Zhu,Chen Zhu
出处
期刊:Nano Today
[Elsevier]
日期:2023-12-05
卷期号:54: 102092-102092
被引量:10
标识
DOI:10.1016/j.nantod.2023.102092
摘要
As the vanguard against implant-associated infections (IAIs), macrophages facilitate the phagocytosis and pro-inflammatory polarization of planktonic and biofilm infections, but indirectly serve as a "Trojan horse" for intracellular bacterial infections. Effective drug delivery and macrophage immunomodulation to eliminate intracellular infections will contribute to the treatment of refractory IAIs and prevention of relapse. Herein, we developed an ultrasound-responsive copper-based nanoparticle targeting macrophages by encapsulating copper in a porphyrin metal-organic framework and surface-grafting D-Mannosamine to synthesize CuTCPP@MOF nanodots@ Mannosamine (CTMM) with macrophage-targeting functionality. Concurrent generation of hydroxyl radicals and singlet oxygen in biofilm microenvironment mediated by ultrasound disrupts the biofilm structure, achieving CTMM overload and interfering with bacterial biofilm growth and metabolism. By regulating macrophage oxidative stress metabolism, CTMM induced a cupferroptosis-like stress, characterized by concurrent cuproptosis and ferroptosis, to eliminate intracellular infections. Transcriptomic analysis verified that the cupferroptosis-like stress based on GPX4 axis modulation further promotes macrophage inflammatory activation. This CTMM+US-mediated bacterial clearance in biofilms and macrophage immunomodulation informs the "Trojan War" strategy to combat IAIs clinically.
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