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Natural killer cell-inspired dendritic mesoporous rare-earth nanoparticles potentiate X-ray-triggered reactive oxygen generation for low-dose radiotherapy-radiodynamic therapy

单线态氧 化学 活性氧 纳米颗粒 放射治疗 过氧化氢 放射增敏剂 光动力疗法 介孔二氧化硅 羟基自由基 氧气 生物物理学 氧化铈 微泡 癌症研究 肿瘤缺氧 纳米技术 吸收(声学) 纳米载体 介孔材料 光化学
作者
Xiaojing He,Yang Li,Xia Wang,Xia Wang,Yi Ju Li,Wenjing Yang,Wenlong Li,Wenjing Yang,Wenlong Li,Kaiyuan Wang,Jinyan Lin,Xiaoyuan Chen
出处
期刊:Bioactive Materials [Elsevier BV]
卷期号:61: 464-481
标识
DOI:10.1016/j.bioactmat.2026.02.011
摘要

The efficacy of traditional radiotherapy has been significantly limited by its severe side effects, tumor hypoxia, and insufficient tumor accumulation. To address these challenges, we developed a multifarious radio enhancer composed of NK cell-derived extracellular vesicle (NKEV)-cloaked dendritic mesoporous thulium oxide (Tm 2 O 3 ) encapsulated with cerium clusters (Ce 6 C)-photosensitizer (TSSI) coordination (TSSI-Ce 6 C-DMTm@NKEV). This nanoplatform is designed to heighten X-ray absorption and energy transfer while generating oxygen to alleviate tumor hypoxia, thereby improving radiotherapy-radiodynamic therapy. Once accumulated at tumor sites, the TSSI-Ce 6 C-DMTm@NKEV nanoparticles could actively recognize the tumor cells and then catalyze endogenous hydrogen peroxide (H 2 O 2 ) to produce oxygen, thereby increasing oxygen supply and alleviating tumor hypoxia. Upon X-ray irradiation, the nanoparticles could significantly enhance hydroxyl radical (•OH) generation from Ce 6 C-DMTm for high-efficiency radiotherapy via matching between Tm's K-edge with X-ray bremsstrahlung peak, and synchronously facilitate singlet oxygen ( 1 O 2 ) generation from adjacently coordinated TSSI for radiodynamic therapy. This dual mechanism of action, integrated with the alleviation of tumor hypoxia, leads to superior anticancer outcomes through lipid peroxidation, mitochondrial dysfunction, and DNA double-strand break. Our work demonstrates a potential radiotherapy strategy that leverages low-dose X-ray to intensify tumor suppression while minimizing systemic toxicity. The TSSI-Ce 6 C-DMTm@NKEV nanoparticles can actively recognize tumor cells and then catalyze endogenous hydrogen peroxide to produce oxygen, thereby alleviating tumor hypoxia. Then, upon X-ray irradiation, the nanoparticles would enhance hydroxyl radical generation from Ce 6 C-DMTm for radiotherapy and simultaneously facilitate singlet oxygen generation from adjacently coordinated TSSI for radiodynamic therapy, thereby exhibiting optimal antitumor efficacy. • This nanoplatform could heighten X-ray absorption and energy transfer while generating oxygen to alleviate tumor hypoxia. • Upon X-ray irradiation, the nanoparticles could enhance •OH and 1 O 2 generation for radiotherapy-radiodynamic therapy. • Ce 6 C-photosensitizer coordination could function as a radiosensitizer, a radiodynamic agent, and an oxygen generator. • Functionalization with NKEV improves the biosafety and tumor-targeting capability of the nanosystem.
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