单线态氧
光敏剂
光动力疗法
材料科学
共轭体系
生物物理学
体内
人血清白蛋白
渗透(战争)
癌症研究
牛血清白蛋白
肿瘤缺氧
缺氧(环境)
氧气
纳米颗粒
纳米技术
化学
光化学
放射治疗
生物化学
医学
有机化学
生物
外科
复合材料
生物技术
聚合物
工程类
运筹学
作者
Guangbao Yang,Soo Zeng Fiona Phua,Wei Qi Lim,Rui Zhang,Liangzhu Feng,Guofeng Liu,Hongwei Wu,Anivind Kaur Bindra,Deblin Jana,Zhuang Liu,Yanli Zhao
标识
DOI:10.1002/adma.201901513
摘要
Uncontrolled cancer cell proliferation, insufficient blood flow, and inadequate endogenous oxygen lead to hypoxia in tumor tissues. Herein, a unique type of hypoxia-responsive human serum albumin (HSA)-based nanosystem (HCHOA) is reported, prepared by cross-linking the hypoxia-sensitive azobenzene group between photosensitizer chlorin e6 (Ce6)-conjugated HSA (HC) and oxaliplatin prodrug-conjugated HSA (HO). The HCHOA nanosystem is stable under normal oxygen partial pressure with a size of 100-150 nm. When exposed to the hypoxic tumor microenvironment, the nanosystem can quickly dissociate into ultrasmall HC and HO therapeutic nanoparticles with a diameter smaller than 10 nm, significantly enabling their enhanced intratumoral penetration. After the dissociation, the quenched fluorescence of Ce6 in the produced HC nanoparticles can be recovered for bioimaging. At the same time, the production of singlet oxygen is increased because of the enhancement in the photoactivity of the photosensitizer. On account of these improvements, combined photodynamic therapy and chemotherapy is realized to display superior antitumor efficacy in vivo. Based on this simple strategy, it is possible to achieve the dissociation of hypoxic-responsive nanosystem to enhance the tumor penetration and therapeutic effect.
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