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Research Article | Open Access | Just Accepted

Ultrasound/GSH dual responsive ZIF-8-GOx@Cu-PDA@liposome-L-arginine nanoparticles for ion interference/starvation/gas synergistic tumor therapy

Yingpei Yao1,§Tian Zhang1,§Yunzhu Wang1,§Dong Cen3()Yike Fu1,2()Xiang Li1()

1 State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering, Zhejiang University, Hangzhou 310058, China

2 ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou 311215, China

3 Key Laboratory of Laparoscopic Technology of Zhejiang Province, Department of General Surgery, Sir Run Run Shaw Hospital, Zhejiang University School of Medicine, Hangzhou 310016, China

§ Yingpei Yao,Tian Zhang, and Yunzhu Wang contributed equally to this work.

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Abstract

Glucose oxidase (GOx)-based starvation therapy has emerged as a promising strategy in tumor therapy. However, the non-specific catalytic activity and premature degradation of GOx during systemic circulation have limited its therapeutic efficacy in tumor regions. In this study, we present the synthesis of ultrasound/glutathione dual-responsive ZIF-8-GOx@copper-polydopamine@liposome-L-arginine (ZGCLL) nanoparticles, designed to concurrently achieve ion interference therapy, starvation therapy, and ultrasound-catalyzed gas therapy. The ZIF-8-GOx nanoparticles are prepared via a co-precipitation method, followed by the encapsulation of a copper-polydopamine (Cu-PDA) shell on the particle surface. Subsequently, liposomes and L-arginine are incorporated to form ZGCLL. The Cu-PDA shell exhibits responsiveness to the elevated level of glutathione in tumor microenvironment, leading to its degradation, mitigating the risk of unintended degradation and 'off-target' effect of GOx in normal tissues. The exposure of ZIF-8 results in zinc overload and activates the catalytic reaction of GOx. The consequent depletion of glucose facilitates starvation therapy, while the generated H2O2, in synergy with zinc ions, intensifies oxidative stress. H2O2 can produce more potent reactive oxygen species when exposed to ultrasound, which subsequently react with L-arginine to generate higher levels of nitric oxide for gas therapy. Both in vitro and in vivo studies demonstrate that this platform achieves precise and efficient antitumor effects. This research offers an innovative strategy for the development of cascade catalytic reaction systems and targeted therapeutic platforms.

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Cite this article:
Yao Y, Zhang T, Wang Y, et al. Ultrasound/GSH dual responsive ZIF-8-GOx@Cu-PDA@liposome-L-arginine nanoparticles for ion interference/starvation/gas synergistic tumor therapy. Nano Research, 2025, https://doi.org/10.26599/NR.2025.94907373
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