School of Materials and Energy, Southwest University, Chongqing, 400715, China.
Small. 2022 Sep;18(38):e2203080. doi: 10.1002/smll.202203080. Epub 2022 Aug 21.
The therapeutic exploration of nano-zirconia semiconductor largely remains untouched in the field of fundamental science to date. Here, a robust nano-sonosensitizer of ZrO @Pt is strategically formulated by in situ growth of Pt nanocrystal onto the surface of oxygen-deficient ZrO . Compared to 3.09 eV of nano-ZrO , the bandgap of ZrO @Pt Schottky junction is narrowed down to 2.74 eV. The band bending and bandgap narrowing enables an enhanced e /h separation in the presence of aPt electron sink, which facilitates a high yield of singlet oxygen ( O ) and hydroxyl radicals (·OH) under ultrasound (US) irradiation. Moreover, nanozyme Pt with catalase-mimic activity can promote O generation by relieving the hypoxic tumor microenvironment. Upon further modification of 2,2'-azobis[2-(2-imidazolin-2-yl)propane] dihydrochloride (AIPH), US-stimulated local thermal shock can disintegrate AIPH to create cytotoxic alkyl radicals ( R). US-triggered reactive oxygen species generation and hyperthermia-induced alkyl radical production lead to severe and irreversible tumor cell death. Such combinatorial sonodynamic-thermodynamic therapy benefits the tumor eradication and metastasis inhibition at the animal level, with the aid of immunogenetic cell death and immune checkpoint blockade. Taken together, this proof-of-concept paradigm expands the medical use of nano-zirconia and provides useful insights for its therapeutic perspectives.
迄今为止,纳米氧化锆半导体的治疗探索在基础科学领域基本上尚未涉及。在这里,通过将 Pt 纳米晶原位生长到氧缺陷 ZrO 表面,策略性地构建了一种强大的纳米声敏剂 ZrO @Pt。与 3.09 eV 的纳米 ZrO 相比,ZrO @Pt 肖特基结的带隙缩小到 2.74 eV。带弯曲和带隙变窄使得在 Pt 电子汇存在下增强了 e / h 分离,这有利于在超声 (US) 照射下产生高产量的单线态氧 ( O ) 和羟基自由基 (·OH)。此外,具有类过氧化物酶活性的纳米酶 Pt 可以通过缓解缺氧肿瘤微环境来促进 O 的产生。进一步修饰 2,2'-偶氮双 [2-(2-咪唑啉-2-基)丙烷] 二盐酸盐 (AIPH) 后,US 刺激的局部热冲击可以使 AIPH 分解以产生细胞毒性烷基自由基 ( R)。US 触发的活性氧生成和热疗诱导的烷基自由基生成导致严重且不可逆的肿瘤细胞死亡。这种组合的声动力学-热动力学治疗在动物水平上有利于肿瘤的根除和转移抑制,同时还借助免疫遗传细胞死亡和免疫检查点阻断。总之,这一概念验证范例扩展了纳米氧化锆的医疗用途,并为其治疗前景提供了有用的见解。