4.8 Article

W-Doped TiO2 Nanorods for Multimode Tumor Eradication in Osteosarcoma Models under Single Ultrasound Irradiation

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 38, 页码 45325-45334

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c14701

关键词

ultrafine W-TiO2 nanorods; sonodynamic therapy; chemodynamic therapy; tumor microenvironment; GSH depletion

资金

  1. National Natural Science Foundation of China [22108168, 11774216, 12075146, 12175142]
  2. China Postdoctoral Science Foundation [2020M681267]

向作者/读者索取更多资源

The study introduces a facile synthesis method for ultrafine nanorod sonosensitizers, using tungsten-doped titanium dioxide nanorods for tumor therapy. The doped nanorods show effectiveness in eradicating tumors with no significant systemic toxicity.
Sonosensitizers play crucial roles in the controlled production of reactive oxygen species (ROS) under ultrasound (US) irradiation with high tissue-penetration depth for noninvasive solid tumor therapy. It is desirable to fabricate structurally simple yet multifunctional sonosensitizers from ultrafine nanoparticles for ROS-based multimode therapy to overcome monomode limitations such as low ROS production yields and endogenous reductive glutathione (GSH) to ROS-based treatment resistance. We report the facile high-temperature solution synthesis of ultrafine W-doped TiO2 (W-TiO2) nanorods for exploration of their sonodynamic, chemodynamic, and GSH-depleting activities in sonodynamicchemodynamic combination tumor therapy. We found that W5+ and W6+ ions doped in W-TiO2 nanorods play multiple roles in enhancing their ROS production. First, W doping narrows the band gap from 3.2 to 2.3 eV and introduces oxygen and Ti vacancies for enhancing their sonodynamic performance. Second, W5+ doping endows W-TiO2 nanorods with Fenton-like reaction activity to produce .OH from endogenous H2O2 in the tumor. Third, W6+ ions reduce endogenous GSH to glutathione disulfide (GSSG) and, in turn, form W5+ ions that further enhance their chemodynamic activity, which greatly modifies thae oxidationreduction tumor microenvironment in the tumor. In vivo experiments display the excellent ability of W-TiO2 nanorods for enhanced tumor eradication in human osteosarcoma models under single US irradiation. Importantly, the ultrafine nanorod morphology facilitates rapid excretion from the body, displaying no significant systemic toxicity. Our work suggests that multivalent metal doping in ultrafine nanomaterials is an effective and simple strategy for the introduction of new functions for ROS-based multimode therapy.

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