自噬
GPX4
谷胱甘肽
活性氧
化学
癌症研究
体内
谷胱甘肽过氧化物酶
光热治疗
氧化应激
体外
细胞生物学
过氧化物酶
材料科学
程序性细胞死亡
生物化学
细胞凋亡
癌细胞
生物
癌症
纳米技术
酶
生物技术
遗传学
作者
Peijing An,Zhiguo Gao,Kai Sun,Dihai Gu,Hongshuai Wu,Chaoqun You,Yaojia Li,Kaiwu Cheng,Yu Zhang,Zhifei Wang,Bai‐Wang Sun
标识
DOI:10.1021/acsami.9b16124
摘要
Until now, ferroptotic therapeutic strategies remain simple, although ferroptosis has aroused extensive interest owing to its escape from the biocarriers of conventional therapeutic modalities. Herein, we construct a photothermal (PT)- and autophagy-enhanced ferroptotic therapeutic modality based on MnO2@HMCu2–xS nanocomposites (HMCMs) for efficient tumor ablation. The HMCMs possess PT-enhanced glutathione (GSH) depletion capability, thereby inducing PT-enhanced ferroptosis via the reinforced inactivation of glutathione peroxidase 4 (GPX4). Thereafter, the GSH-responsed Mn2+ release could generate reactive oxygen species (ROS) by a Fenton-like reaction to reinforce the intracellular oxidative stress for the lipid hydroperoxide (LPO) accumulation in ferroptosis. Additionally, an autophagy promotor rapamycin (Rapa) was loaded into HMCM for sensitizing cells to ferroptosis due to the indispensable role of autophagy in the ferroptosis process. The in vitro and in vivo data demonstrated that the HMCM exhibited superior anticancer effect in human breast cancer models and that the combined therapeutic system afforded the next generation of ferroptotic therapy for combatting malignant tumors.
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