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Cuproptosis is a currently discovered programmed cell death modality driven by copper (Cu) ions, which shows potential application prospects in overcoming apoptotic resistance in cancer therapy due to its unique mechanism. Nevertheless, the efficiency of cuproptosis is restricted by strict Cu metabolism regulation. Herein, elesclomol (ES) and glucose oxidase (GOx) co-loaded CuFeO (CF) nanoplatform (termed as CFEG) was elaborately engineered to boost cuproptosis through multi-pathway copper metabolisms regulation. After triggered by tumor-overexpressed glutathione (GSH), the released ES continuously chelated and targeted transport Cu ions through a shuttle mechanism to mitochondria where cuproptosis was initiated, which dramatically improved the influx efficiency of Cu. Additionally, GOx-mediated glucose oxidation reaction together with Cu and Fe ions stimulated Fenton reaction simultaneously amplified intracellular oxidative pressure by hydrogen peroxide (HO) self-supply and subsequent hydroxyl radical (•OH) generation, which down-regulated Cu exporter ATP7A expression and inhibited Cu ions efflux, thereby exacerbating cuproptosis. Furthermore, the consumption of GSH simultaneously reduced the chelation of GSH with Cu and promote the •OH generation, further potentiating the occurrence of cuproptosis. Collectively, such the multi-pathway copper metabolisms regulation including improved Cu influx, inhibited Cu efflux and GSH depletion significantly boosted cuproptosis, which synergized with photothermal effect of CF to efficiently repressed the growth of tumor in mice without causing systemic toxicity. This work provides a multivariate mode for enhanced tumor cuproptosis therapy, and may also inspire the design of advanced cuproptosis-related nanomedicine system.
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http://dx.doi.org/10.1016/j.colsurfb.2025.114682 | DOI Listing |
Adv Sci (Weinh)
June 2025
College of Life Sciences and Medicine, Zhejiang Sci-Tech University, Hangzhou, 310018, P. R. China.
Transition metal-based nanotherapeutics, such as chemodynamic therapy and ferroptosis- or cuproptosis-induced strategies, hold great potential for cancer treatment. Copper- and iron-based nanozymes enhance reactive oxygen species (ROS) generation and regulate metal ion homeostasis, driving ferroptosis and cuproptosis. However, simultaneous delivery of copper and iron ions and the role of mitochondria-targeted copper in inducing cuproptosis remain underexplored.
View Article and Find Full Text PDFSmall
August 2025
Low Dimensional Materials Chemistry Laboratory, Key Laboratory for Ultrafine Materials of Ministry of Education, Frontier Science Center of the Materials Biology and Dynamic Chemistry, School of Materials Science and Engineering, East China University of Science and Technology, Shanghai, 200237, P.
The unsaturated coordination alters the electronic structure of metal atoms, exposing more active sites, and thereby demonstrating high catalytic activity. It is extremely difficult to precisely regulate the unsaturated coordination environment of single-atom catalysts due to the thermodynamically unstable structure. Herein, a facile "micelle-confined oxidative crosslinking and coupled coordination" strategy is proposed to construct a copper single-atom catalyst with an unsaturated Cu-N coordination structure in a confined silica-carbon framework (Cu SA@MCSN), which demonstrate unique pH-dependent multiple-enzymatic activity (peroxidase (POD)-like activity in an acidic environment with a low K of 6.
View Article and Find Full Text PDFColloids Surf B Biointerfaces
August 2025
Zhejiang Engineering Research Center of Advanced Mass Spectrometry and Clinical Application, Institute of Mass Spectrometry, School of MaterialsScience & Chemical Engineering, Ningbo University, Ningbo 315211, PR China; Zhenhai Institute of Mass Spectrometry, Ningbo 315211, PR China. Electronic addr
Cuproptosis is a currently discovered programmed cell death modality driven by copper (Cu) ions, which shows potential application prospects in overcoming apoptotic resistance in cancer therapy due to its unique mechanism. Nevertheless, the efficiency of cuproptosis is restricted by strict Cu metabolism regulation. Herein, elesclomol (ES) and glucose oxidase (GOx) co-loaded CuFeO (CF) nanoplatform (termed as CFEG) was elaborately engineered to boost cuproptosis through multi-pathway copper metabolisms regulation.
View Article and Find Full Text PDFJ Colloid Interface Sci
February 2025
School of Materials and Chemistry, Institute of Bismuth Science, Shanghai Collaborative Innovation Center of Energy Therapy for Tumors, University of Shanghai for Science and Technology, Shanghai 200093, China. Electronic address:
Sonodynamic therapy (SDT) is a minimally invasive therapeutic approach that utilizes sonosensitizers to catalyze substrates and generate reactive oxygen species (ROS) under ultrasound stimulation, ultimately inducing tumor cell death. Enhancing the piezoelectric properties of nanomaterials and modulating the semiconductor energy band are effective strategies to improve the catalytic efficiency of sonosensitizers. In this study, we developed a two-dimensional (2D) copper-based piezoelectric metal-organic framework (MOF) sonosensitizer, denoted as CM, through the coordination of copper and dimethylimidazole.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
August 2024
State Key Laboratory of Medicinal Chemical Biology and College of Pharmacy, Nankai International Advanced Research Institute (SHENZHEN⋅FUTIAN), Nankai University, Tianjin, 300071, China.
Although self-assembly has emerged as an effective tool for fabricating biomaterials, achieving precise control over the morphologies and functionalities of the resultant assemblies remains an ongoing challenge. Inspired by the copper peptide naturally present in human plasma, in this study, we designed a synthetic precursor, FcGH. FcGH can self-assemble via two distinct pathways: spontaneous and Cu-induced.
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