Self-triggered thermoelectric nanoheterojunction for cancer catalytic and immunotherapy.

Yuan, Xue; Kang, Yong; Dong, Jinrui; Li, Ruiyan; Ye, Jiamin; Fan, Yueyue; Han, Jingwen; Yu, Junhui et al. · Nat Commun · 2023

basic_science · Level V

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Abstract

The exogenous excitation requirement and electron-hole recombination are the key elements limiting the application of catalytic therapies. Here a tumor microenvironment (TME)-specific self-triggered thermoelectric nanoheterojunction (Bi<sub>0.5</sub>Sb<sub>1.5</sub>Te<sub>3</sub>/CaO<sub>2</sub> nanosheets, BST/CaO<sub>2</sub> NSs) with self-built-in electric field facilitated charge separation is fabricated. Upon exposure to TME, the CaO<sub>2</sub> coating undergoes rapid hydrolysis, releasing Ca<sup>2+</sup>, H<sub>2</sub>O<sub>2</sub>, and heat. The resulting temperature difference on the BST NSs initiates a thermoelectric effect, driving reactive oxygen species production. H<sub>2</sub>O<sub>2</sub> not only serves as a substrate supplement for ROS generation but also dysregulates Ca<sup>2+</sup> channels, preventing Ca<sup>2+</sup> efflux. This further exacerbates calcium overload-mediated therapy. Additionally, Ca<sup>2+</sup> promotes DC maturation and tumor antigen presentation, facilitating immunotherapy. It is worth noting that the CaO<sub>2</sub> NP coating hydrolyzes very slowly in normal cells, releasing Ca<sup>2+</sup> and O<sub>2</sub> without causing any adverse effects. Tumor-specific self-triggered thermoelectric nanoheterojunction combined catalytic therapy, ion interference therapy, and immunotherapy exhibit excellent antitumor performance in female mice.

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