Xi'an Key Laboratory of Stem Cell and Regenerative Medicine, Institute of Medical Research, Northwestern Polytechnical University, Xi'an, 710072, P. R. China.
School of Life Science, Northwestern Polytechnical University, Xian, 710072, China.
Small. 2023 Oct;19(42):e2303253. doi: 10.1002/smll.202303253. Epub 2023 Jun 17.
Tumor-dependent glucose and glutamine metabolisms are essential for maintaining survival, while the accordingly metabolic suppressive therapy is limited by the compensatory metabolism and inefficient delivery efficiency. Herein, a functional metal-organic framework (MOF)-based nanosystem composed of the weakly acidic tumor microenvironment-activated detachable shell and reactive oxygen species (ROS)-responsive disassembled MOF nanoreactor core is designed to co-load glycolysis and glutamine metabolism inhibitors glucose oxidase (GOD) and bis-2-(5-phenylacetmido-1,2,4-thiadiazol-2-yl) ethyl sulfide (BPTES) for tumor dual-starvation therapy. The nanosystem excitingly improves tumor penetration and cellular uptake efficiency via integrating the pH-responsive size reduction and charge reversal and ROS-sensitive MOF disintegration and drug release strategy. Furthermore, the degradation of MOF and cargoes release can be self-amplified via additional self-generation H O mediated by GOD. Last, the released GOD and BPTES collaboratively cut off the energy supply of tumors and induce significant mitochondrial damage and cell cycle arrest via simultaneous restriction of glycolysis and compensatory glutamine metabolism pathways, consequently realizing the remarkable triple negative breast cancer killing effect in vivo with good biosafety via the dual starvation therapy.
肿瘤依赖性葡萄糖和谷氨酰胺代谢对于维持生存至关重要,而相应的代谢抑制疗法受到代偿代谢和低效递送效率的限制。在此,设计了一种由弱酸性肿瘤微环境激活的可分离壳和活性氧(ROS)响应的分解型 MOF 纳米反应核组成的功能性金属有机骨架(MOF)纳米系统,用于共载糖酵解和谷氨酰胺代谢抑制剂葡萄糖氧化酶(GOD)和双-[2-(5-苯乙酰胺基-1,2,4-噻二唑-2-基)乙基]二硫化物(BPTES)进行肿瘤双重饥饿治疗。该纳米系统通过整合 pH 响应的尺寸减小和电荷反转以及 ROS 敏感的 MOF 分解和药物释放策略,令人兴奋地提高了肿瘤穿透和细胞摄取效率。此外,通过 GOD 介导的额外自产生 H2O,MOF 和货物的降解可以自我放大。最后,释放的 GOD 和 BPTES 通过同时限制糖酵解和代偿性谷氨酰胺代谢途径,共同切断肿瘤的能量供应,诱导显著的线粒体损伤和细胞周期停滞,从而通过双重饥饿治疗在体内实现良好生物安全性的显著三阴性乳腺癌杀伤作用。