紧身衣
光热治疗
单线态氧
光动力疗法
活性氧
光敏剂
聚乙二醇
阿霉素
化学
PEG比率
体内
纳米颗粒
材料科学
生物物理学
纳米技术
光化学
荧光
氧气
有机化学
生物化学
化疗
经济
生物技术
外科
物理
生物
医学
量子力学
财务
作者
Dapeng Chen,Qianyun Tang,Jianhua Zou,Xiaoyan Yang,Wei Huang,Qi Zhang,Jinjun Shao,Xiaochen Dong
标识
DOI:10.1002/adhm.201701272
摘要
Abstract Synergistic cancer therapy is of great interest for multiple advantages, such as excellent targeting accuracy, low side effects, and enhanced therapeutic efficiency. Herein, a near‐infrared photosensitizer aza‐BODIPY (AB) with high singlet oxygen quantum yield (Φ Δ = 82%) is designed and synthesized. With Schiff's base obtained from condensation reaction between doxorubicin (DOX) and polyethylene glycol‐benzaldehyde (PEG–CHO) as the polymer matrix, aza‐BODIPY is encapsulated to afford hydrophilic nanoparticles (DAB NPs). The DAB NPs exhibit high reactive oxygen species (ROS) generation rate and outstanding photothermal conversion efficiency (η = 38.3%) under irradiation. In vivo fluorescence‐ and photothermal‐imaging (PTI) results demonstrate that DAB NPs can specifically accumulate at tumor sites and serve as dual‐modal imaging probe for cancer diagnosis. Particularly, triggered by acidic tumor microenvironment, the HCN bond of Schiff's base would be broken simultaneously, resulting in the efficient release of DOX from DAB NPs at tumor sites as well as enhancing the targeting performance of chemotherapeutics. Compared with free DOX and aza‐BODIPY nanoparticles, DAB NPs can inhibit tumor growth more effectively through pH‐responsive photodynamic/photothermal/chemo synergistic therapy. This report may also present a practicable strategy to develop a pH‐responsive nanotheranostic agent for tumor targeting, imaging, and therapy.
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