Photothermal conversion-coordinated Fenton-like and photocatalytic reactions of Cu<sub>2-x</sub>Se-Au Janus nanoparticles for tri-combination antitumor therapy.

Wang, Yuanlin; Li, Zhenglin; Hu, Ying; Liu, Jing; Guo, Mengyu; Wei, Hengxiang; Zheng, Shanliang; Jiang, Tingting et al. · Biomaterials · 2020

basic_science · Level V

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Abstract

In vivo chemical reactions activated by the tumor microenvironment (TME) are particularly promising for antitumor treatments. Herein, employing Cu<sub>2-x</sub>Se-Au Janus nanoparticles (NPs), photothermal conversion-coordinated Fenton-like and photocatalytic reactions are demonstrated in vitro/vivo. The amorphous form of Cu<sub>2-x</sub>Se and the catalytic effect of Au benefit the OH generation, and the photo-induced electron‒hole separation of the Janus NPs produces additional OH. The plasmonic electrons of Au facilitate the conversion from Cu<sup>2+</sup> to Cu<sup>+</sup>. Both Cu<sub>2-x</sub>Se and Au contributes to the efficient photothermal conversion, further promoting the reactions. As a result, the H<sub>2</sub>O<sub>2</sub> utilization rate is largely increased, and remarkable generation of reactive oxygen species is achieved by cell endogenous H<sub>2</sub>O<sub>2</sub>in vitro/vivo. A competent tumor inhibition effect is afforded, with high-contrast multimodal imaging. This work opens up the route synergistically integrating photothermal therapy with chemodynamic therapy and photocatalytic therapy into tri-combination antitumor therapy, simply by heterojunction of semiconductor and noble metal.

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