活性氧
声动力疗法
肿瘤微环境
化学
单线态氧
过氧化氢酶
谷胱甘肽
癌症研究
肿瘤缺氧
线粒体ROS
氧气
缺氧(环境)
羟基自由基
体内
生物物理学
光动力疗法
谷胱甘肽过氧化物酶
细胞凋亡
激进的
超氧化物
氧化应激
生物化学
医学
生物
放射治疗
肿瘤细胞
内科学
生物技术
有机化学
酶
作者
Qiyu Liu,Liyin Shi,Ying Liao,Xianshuo Cao,Xiaoqing Liu,Yanxia Yu,Zifan Wang,Xihong Lu,Jianwei Wang
标识
DOI:10.1002/advs.202200005
摘要
Sonodynamic therapy (SDT) typically suffers from compromised anticancer efficacy owing to the low reactive oxygen species (ROS) yield and complicated tumor microenvironment (TME) which can consume ROS and support the occurrence and development of tumors. Herein, ultrathin-FeOOH-coated MnO2 nanospheres (denoted as MO@FHO) as sonosensitizers which can not only facilitate ultrasound (US)-triggered ROS but also tune the TME by hypoxia alleviation, H2 O2 consumption as well as glutathione (GSH) depletion are designed. The FeOOH coating will boost the production yield of singlet oxygen (1 O2 ) and hydroxyl radicals (• OH) by inhibiting the recombination of US-initiated electron-hole pairs and Fenton-like reaction, respectively. Additionally, the catalase-like and GSH peroxidase-like activities of MO@FHO nanospheres enable them to break the TME equilibrium via hypoxia alleviation and GSH depletion. The combination of high ROS yield and fundamental destruction of TME equilibrium results in satisfactory antitumor outcomes, as demonstrated by the high tumor suppression efficacy of MO@FHO on MDA-MB-231-tumor-bearing mice. No obvious toxicity is detected to normal tissues at therapeutic doses in vivo. The capability to modulate the ROS production and TME simultaneously can afford new probability for the development of advanced sonosensitizers for synergistic comprehensive cancer therapy.
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