光动力疗法
光敏剂
化学
原卟啉IX
生物物理学
单线态氧
膜
PEG比率
聚乙二醇
光化学
生物化学
氧气
有机化学
财务
生物
经济
作者
Hao-Ran Jia,Yao‐Wen Jiang,Ya‐Xuan Zhu,Yan-Hong Li,Hong-Yin Wang,Xiaofeng Han,Zhi-Wu Yu,Ning Gu,Peidang Liu,Zhan Chen,Fu‐Gen Wu
标识
DOI:10.1016/j.jconrel.2017.04.030
摘要
To address the issue of low cellular uptake of photosensitizers by cancer cells in photodynamic therapy (PDT), we designed a smart plasma membrane-activatable polymeric nanodrug by conjugating the photosensitizer protoporphyrin IX (PpIX) and polyethylene glycol (PEG) with glycol chitosan (GC). The as-prepared GC-PEG-PpIX can self-assemble into core-shell nanoparticles (NPs) in aqueous solution and the fluorescence of PpIX moieties in the inner core is highly quenched due to strong π–π stacking. Interestingly, when encountering plasma membranes, the GC-PEG-PpIX NPs can disassemble and stably attach to plasma membranes due to the membrane affinity of PpIX moieties, which effectively suppresses the self-quenching of PpIX, leading to significantly enhanced fluorescence and singlet oxygen (1O2) production upon laser irradiation. The massively produced 1O2 can compromise the integrity of the plasma membrane, enabling the influx of extracellular nanoagents into cells to promote cell death upon further laser irradiation. Through local injection, the membrane anchored GC-PEG-PpIX enables strong physical association with tumor cells and exhibits highly enhanced in vivo fluorescence at the tumor site. Besides, excellent tumor accumulation and prolonged tumor retention of GC-PEG-PpIX were realized after intravenous injection, which ensured its effective imaging-guided PDT.
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