Low-intensity focused ultrasound-augmented Cascade chemodynamic therapy via boosting ROS generation

芬顿反应 单线态氧 纳米反应器 羟基自由基 材料科学 PLGA公司 肿瘤微环境 激进的 生物医学中的光声成像 癌症研究 活性氧 化学 纳米技术 氧气 纳米颗粒 生物化学 医学 肿瘤细胞 有机化学 物理 光学
作者
Liming Deng,Mingzhu Liu,Danli Sheng,Yuanli Luo,Dong Wang,Xian Yu,Zhigang Wang,Haitao Ran,Pan Li
出处
期刊:Biomaterials [Elsevier]
卷期号:271: 120710-120710 被引量:54
标识
DOI:10.1016/j.biomaterials.2021.120710
摘要

Fenton reaction-mediated chemodynamic therapy (CDT), which destroys tumor cells by converting H2O2 into cytotoxic hydroxyl radical (OH) and singlet oxygen (1O2) species, is a promising field. However, Fenton-based CDT is severely impaired by the inappropriate tumor environment associated with undesirable intratumoral acidity and insufficient H2O2 supply in tumor microenvironment (TME). Therefore, a strategy that can address these concerns is highly desired and beneficial for boosting such treatment. Herein, a magnetic nanoreactor system (denoted as poly (lactic-co-glycolic acid) (PLGA)–superparamagnetic iron oxide (SPIO)&vitamin C (Vc) was constructed with Vc in the core, SPIO on the shell, and PLGA as the building carrier. Upon low-intensity focused ultrasound irradiation, on-demand Vc release can locally decompose into H2O2, which can generate a favorable condition for facilitating SPIO-based Fenton-like reaction and result in continuous O2 and OH/1O2 generation. The TME modulation-augmented CDT by this nanoreactor based on the reinforced Fenton reaction tremendously improved the antitumor outcomes, especially under increased accumulation contributed by magnetic targeting combined with enhanced permeability and retention effect. Moreover, the explosive production of oxygen can be monitored by real-time photoacoustic imaging, offering a noninvasive means to forecast the treatment efficacy. Therefore, this established microenvironment modulation strategy for augmenting Fenton reaction-based CDT paves a new avenue to realize highly efficient cancer theranostics.

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