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具有自增强光触发光敏剂细胞内流的细胞膜激活型聚合物纳米诊疗剂用于光动力癌症治疗。

Plasma membrane activatable polymeric nanotheranostics with self-enhanced light-triggered photosensitizer cellular influx for photodynamic cancer therapy.

机构信息

State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, PR China.

Key Laboratory of Bioorganic Phosphorous Chemistry and Chemical Biology (Ministry of Education), Department of Chemistry, Tsinghua University, Beijing 100084, PR China.

出版信息

J Control Release. 2017 Jun 10;255:231-241. doi: 10.1016/j.jconrel.2017.04.030. Epub 2017 Apr 23.

Abstract

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 (O) production upon laser irradiation. The massively produced O 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.

摘要

为了解决光动力疗法(PDT)中癌细胞对光敏剂摄取率低的问题,我们通过将光敏剂原卟啉 IX(PpIX)和聚乙二醇(PEG)与壳聚糖-乙二醇(GC)偶联,设计了一种智能的细胞膜激活型聚合物纳米药物。所制备的 GC-PEG-PpIX 可以在水溶液中自组装成核壳纳米颗粒(NPs),由于强π-π堆积,内部核芯中 PpIX 部分的荧光被高度猝灭。有趣的是,当遇到质膜时,由于 PpIX 部分的膜亲和力,GC-PEG-PpIX NPs 可以解组装并稳定地附着在质膜上,有效地抑制了 PpIX 的自猝灭,导致激光照射时荧光和单线态氧(O)的产生显著增强。大量产生的 O 可以破坏质膜的完整性,使细胞外纳米药物能够进入细胞,在进一步的激光照射下促进细胞死亡。通过局部注射,锚定在质膜上的 GC-PEG-PpIX 能够与肿瘤细胞强烈地物理结合,并在肿瘤部位表现出高度增强的体内荧光。此外,GC-PEG-PpIX 经静脉注射后实现了优异的肿瘤积累和延长的肿瘤保留,从而确保了其有效的成像引导 PDT。

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