An Activatable Prodrug Nanosystem for Ultrasound-Driven Multimodal Tumor Therapy And Metastasis Inhibition.
Jiazhu ZhengHaoying GeDanhong ZhouQichao YaoSaran LongWen SunJiangli FanJianjun DuXiaojun PengPublished in: Advanced materials (Deerfield Beach, Fla.) (2023)
Ultrasound, featuring deep tissue penetration and noninvasiveness, offers a new opportunity to activate functional materials in a tumor-selective manner. However, very few direct ultrasound-responsive redox systems are applicable under medical condition (1 M Hz, 1-2 W). Herein, we report our investigations on nanoprodrug of DHE@PEG-SS-DSPE, which exhibits glutathione-activated release of dihydroethidium (DHE) in tumor cells. DHE is stable with good biosafety and is transformed into cytotoxic ethidium to induce DNA damage under medical ultrasound irradiation, accompanied by the generation of reactive oxygen species. Further, DHE@PEG-SS-DSPE could effectively induce ferroptosis through glutathione depletion, lipid peroxide accumulation, and downregulation of glutathione peroxidase 4. In vivo studies confirmed that DHE@PEG-SS-DSPE nanoparticles effectively inhibit both the growth of solid tumors and the expression of metastasis-related proteins in mice, thus effectively inhibiting lung metastasis. This DHE-based prodrug nanosystem could lay a foundation for the design of ultrasound-driven therapeutic agents. This article is protected by copyright. All rights reserved.
Keyphrases
- magnetic resonance imaging
- dna damage
- drug delivery
- cancer therapy
- healthcare
- reactive oxygen species
- contrast enhanced ultrasound
- ultrasound guided
- signaling pathway
- cell proliferation
- oxidative stress
- computed tomography
- dna repair
- hydrogen peroxide
- type diabetes
- radiation therapy
- long non coding rna
- chronic pain
- pain management
- drug release
- cell therapy
- skeletal muscle
- mesenchymal stem cells
- replacement therapy