化学
光动力疗法
单线态氧
结合
光毒性
电子转移
光敏剂
脂质过氧化
生物物理学
氧化应激
光化学
过氧化氢
细胞内
DNA损伤
活性氧
癌细胞
细胞凋亡
谷胱甘肽
细胞损伤
组合化学
光诱导电子转移
反应性(心理学)
激进的
细胞
程序性细胞死亡
内生
敏化
电子受体
能量转移
单重态
细胞保护
氧化磷酸化
癌症研究
接受者
作者
Nicolás Montesdeoca,Zisis Papadopoulos,Hung Tran,Steffi Krause Hinojosa,Henrik Sielhorst,Jacqueline Heinen-Weiler,Johannes Karges
摘要
The unique microenvironment of solid tumors, characterized by pathological hypoxia, remains a primary driver of treatment resistance and poor clinical outcomes in oncology. While photodynamic therapy has emerged as a promising treatment modality, its clinical efficacy is constrained by its dependence on molecular oxygen. Conventional photosensitizers typically operate by oxygen-dependent energy transfer, leading to a marked reduction or complete loss of therapeutic activity within the oxygen-depleted regions of solid tumors. Herein, we show that iron coordination can serve as a molecular switch to enable the photochemical reactivity of a ruthenium(II) polypyridine complex to an oxygen-independent pathway. Under normoxic conditions, the conjugate undergoes energy transfer to produce singlet oxygen. However, upon binding intracellular iron, the system activates an alternative mechanism characterized by ultrafast metal-to-metal electron transfer from the ruthenium(II) center to the iron center. This process enables the formation of cytotoxic hydroxyl radicals from endogenous hydrogen peroxide, ensuring potent phototoxicity even under severe hypoxia. We demonstrate that the resulting mitochondrial oxidative stress induces significant lipid peroxidation and glutathione depletion, ultimately triggering cell death by ferroptosis in both nonresistant and multidrug-resistant cancer cell lines. These findings establish metal-to-metal electron transfer as a general design logic for directing excited-state pathways and provide a conceptual basis for adaptive, hypoxia-tolerant photochemical systems.
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