化学
线粒体
药物输送
程序性细胞死亡
转录组
癌变
细胞
癌细胞
细胞生物学
胞浆
药物发现
纳米技术
生物物理学
计算生物学
生物化学
癌症
细胞凋亡
基因
基因表达
生物
酶
遗传学
有机化学
材料科学
作者
Salame Haddad,Isabel Abánades Lázaro,Marcus Fantham,Ajay Mishra,Joaquín Silvestre-Alberó,Johannes W. M. Osterrieth,Gabriele S. Kaminski Schierle,Clemens F. Kaminski,Ross S. Forgan,David Fairén-Jiménez
摘要
Mitochondria play a key role in oncogenesis and constitute one of the most important targets for cancer treatments. Although the most effective way to deliver drugs to mitochondria is by covalently linking them to a lipophilic cation, the in vivo delivery of free drugs still constitutes a critical bottleneck. Herein, we report the design of a mitochondria-targeted metal–organic framework (MOF) that greatly increases the efficacy of a model cancer drug, reducing the required dose to less than 1% compared to the free drug and ca. 10% compared to the nontargeted MOF. The performance of the system is evaluated using a holistic approach ranging from microscopy to transcriptomics. Super-resolution microscopy of MCF-7 cells treated with the targeted MOF system reveals important mitochondrial morphology changes that are clearly associated with cell death as soon as 30 min after incubation. Whole transcriptome analysis of cells indicates widespread changes in gene expression when treated with the MOF system, specifically in biological processes that have a profound effect on cell physiology and that are related to cell death. We show how targeting MOFs toward mitochondria represents a valuable strategy for the development of new drug delivery systems.
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