The Straits Laboratory of Flexible Electronics (SLoFE), Straits Institute of Flexible Electronics (SIFE Future Technologies), Fujian Normal University, Fuzhou, Fujian, 350117, China.
Key Laboratory of Microbial Pathogenesis and Interventions of Fujian Province University, Key Laboratory of Innate Immune Biology of Fujian Province, Biomedical Research Center of South China, College of Life Sciences, Fujian Normal University, Fuzhou, Fujian, 350117, China.
Adv Healthc Mater. 2024 Jul;13(18):e2304522. doi: 10.1002/adhm.202304522. Epub 2024 Mar 31.
Cuproptosis is dependent on mitochondrial respiration modulation by targeting lipoylated tricarboxylic acid cycle (TCA) cycle proteins, showing great potential in cancer treatment. However, the specific release of copper ions at mitochondrial is highly needed and still a major challenge to trigger cellular cuproptosis. Herein, a metal-organic framework-based nanoplatform (ZCProP) is designed for mitochondrial-targeted and ATP/pH-responsive Cu and prodigiosin release. The released Cu promotes aggregation of lipoylated protein and loss of Fe-S cluster protein, resulting in cell cuproptosis. In the meanwhile, Cu can concert with prodigiosin to induce mitochondrial dysfunction and DNA damage and enhance cell cuproptosis. Furthermore, this nanoplatform has an ability to deplete glutathione, which not only further promotes cuproptosis but also triggers cell ferroptosis by the suppression of glutathione peroxidase 4, an anti-ferroptosis protein. Collectively, the designed ZCProP nanoplatform can responsively release cargos at mitochondrial and realize a conspicuous therapeutic efficacy through a cuproptosis-mediated concerted effect. Along with its excellent biocompatibility, this nanoplatform may provide a novel therapeutic modality paradigm to boost cancer therapeutic strategies based on cuproptosis.
铜死亡依赖于靶向脂酰化三羧酸 (TCA) 循环蛋白的线粒体呼吸调节,在癌症治疗中具有巨大潜力。然而,线粒体中铜离子的特异性释放是触发细胞铜死亡的主要挑战。本文设计了一种基于金属有机骨架的纳米平台 (ZCProP),用于线粒体靶向和 ATP/ pH 响应的 Cu 和灵菌红素释放。释放的 Cu 促进脂酰化蛋白的聚集和 Fe-S 簇蛋白的丢失,导致细胞铜死亡。同时,Cu 可以与灵菌红素协同诱导线粒体功能障碍和 DNA 损伤,增强细胞铜死亡。此外,该纳米平台能够消耗谷胱甘肽,不仅进一步促进铜死亡,还通过抑制抗氧化蛋白 4 (GPX4) 触发细胞铁死亡。总之,设计的 ZCProP 纳米平台可以在粒体中响应性地释放药物,并通过铜死亡介导的协同作用实现显著的治疗效果。此外,由于其优异的生物相容性,该纳米平台可能为基于铜死亡的癌症治疗策略提供一种新的治疗模式范例。