缺氧(环境)
过氧化氢酶
癌细胞
细胞毒性
化学
肿瘤微环境
癌症研究
细胞生物学
材料科学
氧气
生物化学
医学
癌症
生物
氧化应激
内科学
有机化学
肿瘤细胞
体外
作者
P. K. Mukherjee,Subhabrata Guha,Antara Ghosh,K. Kar,Gaurav Das,Sumanta Kumar Sahu
标识
DOI:10.1021/acsabm.4c00723
摘要
Uncontrolled proliferation and altered metabolism of cancer cells result in an imbalance of nutrients and oxygen supply, and persuade hypoxia. Hypoxia, in turn, activates the transcription gene HIF-1α, which eventually upregulates the efflux transporter P-gp and induces multidrug resistance (MDR). Thus, hypoxia leads to the development of resistance to conventional therapies. Therefore, the fabrication of a nanoscale porous system enriched with upconversion nanoparticles to target cancer cells, evade hypoxia, and enhance anticancer therapy is the key goal of this article. Herein, upconversion nanoparticles are embedded in a nanoscale porous organic polymer (POP) and further conjugated with a targeting moiety and a catalase molecule. The nanoscale POP embedded in UCNPs is generated at room temperature. The targeting ligand, lactobionic acid, is attached after polymer coating, which effectively targets liver cancer cells. Then, catalase is grafted effectively to produce oxygen. Endogenously generated oxygen alleviates hypoxia in liver cancer cells. The drug- and catalase-loaded composite exhibit greater cytotoxicity in hypoxic liver cells than in normal cells by overcoming hypoxia and downregulating the hypoxia-inducible factors.
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