光热治疗
生物膜
活性氧
体内
细胞内
巨噬细胞
细胞生物学
DNA损伤
生物物理学
平衡
细胞外
纳米技术
化学
胞外聚合物
材料科学
再生(生物学)
抗氧化剂
细胞
普鲁士蓝
细胞毒性
镓
生物相容性材料
微生物学
细胞存活
再生医学
生物
作者
Xin-Lin Jia,Xia Chen,Xiao‐Feng Shi,Chao-Hong Yu,Xiao-Peng Chen,Ying Wang,Yong‐Sheng Li,Yuanqing Mao
摘要
ABSTRACT Biofilm‐associated infections (BAIs) present a formidable clinical challenge due to the physical protection of extracellular polymeric substances (EPS) and the immunosuppressive microenvironment caused by excessive reactive oxygen species (ROS). Herein, a sequential “physical disruption‐metabolic interference‐immune repair” strategy is proposed using a platinum‐modified gallium‐doped Prussian blue nanoplatform (Pt@GaPB). It is verified that the robust photothermal effect of Pt@GaPB physically dismantles the EPS barrier, then the subsequently released gallium ions competitively disrupt bacterial iron homeostasis and metabolism, inhibiting DNA synthesis to precisely eradicate escaping planktonic MRSA, as confirmed by multi‐omics. Specifically, the platform's enzyme‐mimicking antioxidant activity scavenges ROS to remodel the macrophage niche, reactivating intracellular bactericidal functions for dual extracellular‐intracellular sterilization. In vivo studies confirm that this sequential strategy not only eradicates recalcitrant biofilms, but also accelerates skin and bone tissue regeneration. This work provides a potent, multimodal solution for overcoming the therapeutic hurdles of chronic BAIs.
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