State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials, Dalian University of Technology, Dalian, Liaoning 116024, P. R. China.
Ningbo Institute of Dalian University of Technology, 26 Yucai Road, Jiangbei District, Ningbo, Zhejiang 315016, P. R. China.
ACS Nano. 2023 Apr 25;17(8):7901-7910. doi: 10.1021/acsnano.3c01856. Epub 2023 Apr 13.
The regulation of electrostatic electric fields through electrical stimulation is an efficient method to increase the catalytic activity of nanozymes and improve the therapeutic effect of nanozyme catalytic therapy. Piezoelectric materials, which are capable of generating a built-in electric field under ultrasound (US), not only improve the activity of nanozymes but also enable piezoelectric sonodynamic therapy (SDT). In this study, a sonosensitizer based on a Hf-based metal-organic framework (UIO-66) and Au nanoparticles (NPs) was produced. Under US irradiation, UIO-66 can generate a built-in electric field inside the materials, which promotes electron-hole separation and produces reactive oxygen species (ROS). The introduction of Au NPs facilitated the electron transfer, which inhibited the recombination of the electron-hole pairs and improved the piezoelectric properties of UIO-66. The value of the piezoelectric constant () increased from 71 to 122 pmV after the deposition of Au NPs. In addition, the intrinsic catalase and peroxidase activities of the Au NPs were increased 2-fold after the stimulation from the built-in electric field induced through US exposure. In vivo and in vitro experiments revealed that the proposed sonosensitizer can kill cancer cells and inhibit tumor growth in mice through the enhanced piezoelectric SDT and nanozyme catalytic therapy. The piezoelectric sensitizer proposed in this work proved to be an efficient candidate that can be used for multiple therapeutic modalities in tumor therapy.
通过电刺激调节静电电场是提高纳米酶催化活性和改善纳米酶催化治疗效果的有效方法。压电材料在超声(US)下能够产生内置电场,不仅可以提高纳米酶的活性,还可以实现压电声动力学治疗(SDT)。在本研究中,制备了一种基于 Hf 基金属有机骨架(UIO-66)和 Au 纳米颗粒(NPs)的声敏剂。在 US 照射下,UIO-66 可以在材料内部产生内置电场,促进电子空穴分离并产生活性氧(ROS)。Au NPs 的引入促进了电子转移,抑制了电子空穴对的复合,并提高了 UIO-66 的压电性能。沉积 Au NPs 后,压电常数()的值从 71 增加到 122 pmV。此外,Au NPs 的固有过氧化氢酶和过氧化物酶活性在 US 暴露诱导的内置电场刺激下增加了 2 倍。体内和体外实验表明,所提出的声敏剂可通过增强的压电 SDT 和纳米酶催化治疗通过杀死癌细胞和抑制小鼠肿瘤生长。本工作中提出的压电敏化剂被证明是一种有效的候选物,可用于肿瘤治疗中的多种治疗模式。