A robust Au@Cu<sub>2-x</sub>S nanoreactor assembled by silk fibroin for enhanced intratumoral glucose depletion and redox dyshomeostasis.

Yu, Honglian; He, Mengting; Li, Yongcan; Liu, Yuhan; Xu, Zhigang; Zhang, Lei; Kang, Yuejun; Xue, Peng · Biomaterials · 2023

basic_science · Level V

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Abstract

Intracellular redox dyshomeostasis promoted by tumor microenvironment (TME) modulation has become an appealing therapeutic target for cancer management. Herein, a dual plasmonic Au/SF@Cu<sub>2-x</sub>S nanoreactor (abbreviation as ASC) is elaborately developed by covalent immobilization of sulfur defective Cu<sub>2-x</sub>S nanodots onto the surface of silk fibroin (SF)-capped Au nanoparticles. Tumor hypoxia can be effectively alleviated by ASC-mediated local oxygenation, owing to the newfound catalase-mimic activity of Cu<sub>2-x</sub>S. The semiconductor of Cu<sub>2-x</sub>S with narrow bandgap energy of 2.54 eV enables a more rapid dissociation of electron-hole (e<sup>-</sup>/h<sup>+</sup>) pair for a promoted US-triggered singlet oxygen (<sup>1</sup>O<sub>2</sub>) generation, in the presence of Au as electron scavenger. Moreover, Cu<sub>2-x</sub>S is devote to Fenton-like reaction to catalyze H<sub>2</sub>O<sub>2</sub> into ·OH under mild acidity and simultaneously deplete glutathione to aggravate intracellular oxidative stress. In another aspect, Au nanoparticles with glucose oxidase-mimic activity consumes intrinsic glucose, which contributes to a higher degree of oxidative damage and energy exhaustion of cancer cells. Importantly, such tumor starvation and <sup>1</sup>O<sub>2</sub> yield can be enhanced by Cu<sub>2-x</sub>S-catalyzed O<sub>2</sub> self-replenishment in H<sub>2</sub>O<sub>2</sub>-rich TME. ASC-initiated M1 macrophage activation and therapy-triggered immunogenetic cell death (ICD) favors the systematic tumor elimination by eliciting antitumor immunity. This study undoubtedly enriches the rational design of SF-based nanocatalysts for medical utilizations.

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