光敏剂
体内
细菌
纳米载体
光动力疗法
荧光
材料科学
细菌细胞结构
点击化学
纳米颗粒
生物物理学
纳米技术
组合化学
化学
光化学
有机化学
生物
生物技术
物理
量子力学
遗传学
作者
Duo Mao,Fang Hu,Kenry Kenry,Shenglu Ji,Wenbo Wu,Dan Ding,Deling Kong,Bin Liu
标识
DOI:10.1002/adma.201706831
摘要
Abstract Bacterial infection is one of the most serious physiological conditions threatening human health. There is an increasing demand for more effective bacterial diagnosis and treatment through noninvasive theranostic approaches. Herein, a new strategy is reported to achieve in vivo metabolic labeling of bacteria through the use of MIL‐100 (Fe) nanoparticles (NPs) as the nanocarrier for precise delivery of 3‐azido‐ d ‐alanine ( d ‐AzAla). After intravenous injection, MIL‐100 (Fe) NPs can accumulate preferentially and degrade rapidly within the high H 2 O 2 inflammatory environment, releasing d ‐AzAla in the process. d ‐AzAla is selectively integrated into the cell walls of bacteria, which is confirmed by fluorescence signals from clickable DBCO‐Cy5. Ultrasmall photosensitizer NPs with aggregation‐induced emission characteristics are subsequently designed to react with the modified bacteria through in vivo click chemistry. Through photodynamic therapy, the amount of bacteria on the infected tissue can be significantly reduced. Overall, this study demonstrates the advantages of metal–organic‐framework‐assisted bacteria metabolic labeling strategy for precise bacterial detection and therapy guided by fluorescence imaging.
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