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Porphyrin-based porous organic polymer coated ZIF-8 nanoparticles as tumor targeted photosensitizer for combination cancer photodynamic/photothermal therapy

光热治疗 光敏剂 卟啉 光动力疗法 纳米颗粒 沸石咪唑盐骨架 材料科学 聚合物 共价键 涂层 纳米技术 光化学 化学 吸附 金属有机骨架 有机化学 复合材料
作者
Yue Tian,Zhaolei Ding,Xiao Zheng,Yun Li,Xiaotong Teng,Guifang Guo,Jun Wang,Wei Tan,Baolong Zhou
出处
期刊:Microporous and Mesoporous Materials [Elsevier]
卷期号:355: 112562-112562 被引量:24
标识
DOI:10.1016/j.micromeso.2023.112562
摘要

The issue of low tumor-targeting and easy aggregation of small-molecule photosensitizers (PSs), as well as the heterogeneity and complexity of tumor tissue, greatly limit the therapeutic efficiency of phototherapy. Herein, a porphyrin-based organic polymer (POP) coated zeolitic imidazolate framework-8 (ZIF-8) hybrid nanoparticles ([email protected]) was developed, for delivering photosensitizer (porphyrin-based POP) specifically into tumor sites. The low-cost, biocompatible, tumor-specific [email protected] with core-shell structure was prepared via a simple but efficient covalent surface-coating strategy, in which the pH-responsive ZIF-8 functioned as templates, finely controlling the nanometer size of the hybrid and ensuring targeted delivery of PSs to tumor tissue. Moreover, a direct covalently coated polymer-based PSs on ZIF-8 can better preserve optical properties compared to conventional physical adsorption methods. Under laser irradiation, the resulting hybridization not only efficiently converts light into local heat, causing severe photothermal damage to tumor tissue, but also synergistically promotes the production of strongly toxic 1O2, which exerts a photodynamic treatment on tumor sites. Therefore, this special [email protected] hybrid presented a cooperatively enhanced synergistic photodynamic/photothermal anticancer efficacy, as demonstrated both the in vitro and in vivo assay, systematically. This study presents a practicable and reliable strategy to develop stable and high-efficiency cancer phototherapy agents which could simultaneously manipulate the structural characteristics and performance of targeted materials for promising noninvasive multi-mode anti-cancer.
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