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线粒体靶向超分子“纳米船”同时抑制双重能量代谢实现肿瘤选择性和协同化放化疗

Mitochondrion-targeted supramolecular "nano-boat" simultaneously inhibiting dual energy metabolism for tumor selective and synergistic chemo-radiotherapy.

机构信息

Key Laboratory of Radiopharmacokinetics for Innovative Drugs, Institute of Radiation Medicine, Chinese Academy of Medical Sciences & Peking Union Medical College, Tianjin 300192, P. R. China.

Radiation Oncology Department, Tianjin Medical University General Hospital, Tianjin 300052, P. R. China.

出版信息

Theranostics. 2022 Jan 1;12(3):1286-1302. doi: 10.7150/thno.67543. eCollection 2022.

Abstract

Tumor energy metabolism has been a well-appreciated target of cancer therapy; however, the metabolism change of cancer cells between oxidative phosphorylation and glycolysis poses a challenge to the above. In this study, we constructed an innovative mitochondrion-targeted supramolecular "nano-boat" based on peptide self-assembly for tumor combined chemo-radiotherapy by simultaneously inhibiting the dual energy metabolism. A lipophilic self-assembled peptide and a positively charged cyclen were integrated to fabricate a brand new mitochondrion-targeted nano-platform for the first time. The indices of mitochondrial dysfunction including mitochondrial membrane potential, apoptosis proteins expression and ultrastructure change were evaluated using a JC-1 probe, western blotting and biological transmission electron microscopy, respectively. Energy metabolism assays were conducted on a Seahorse XF24 system by detecting the oxygen consumption rate and the glycolytic proton efflux rate. The radio-sensitization effect was investigated by colony formation, the comet assay, and γ-H2AX staining. The supramolecular "nano-boat" could selectively kill cancer cells by much higher enrichment and reactive oxygen species generation than those in normal cells. In the cancer cells treated with the supramolecular "nano-boat", the dysfunctional morphological changes of the mitochondrial ultrastructure including swelling and pyknosis were evidently observed, and the endogenous mitochondrial apoptosis pathway was effectively triggered by abundant of cytochrome C leaking out. Concurrently, the dual metabolic pathways of glycolysis and oxidative phosphorylation were severely inhibited. More importantly, the supramolecular "nano-boat" displayed an excellent radio-sensitization effect with a sensitization enhancement ratio value as high as 2.58, and hence, efficiently combining radiotherapy yielded an enhanced chemo-radiotherapy effect. Our study demonstrated that the rationally designed peptide-based "nano-boat" could efficiently induce cancer cell apoptosis by the energy metabolism inhibition involving multiple pathways, which may provide the motivation for designing novel and universal mitochondria-targeted drug delivery systems for cancer therapy.

摘要

肿瘤能量代谢一直是癌症治疗的一个备受关注的靶点;然而,癌细胞在氧化磷酸化和糖酵解之间的代谢变化给这一靶点带来了挑战。在这项研究中,我们构建了一种基于肽自组装的创新的线粒体靶向超分子“纳米船”,用于通过同时抑制双重能量代谢来实现肿瘤联合化疗-放疗。我们首次将疏水性自组装肽和带正电荷的环糊精整合在一起,构建了一个全新的线粒体靶向纳米平台。使用 JC-1 探针、western blot 和生物透射电子显微镜分别评估了线粒体功能障碍的指标,包括线粒体膜电位、凋亡蛋白表达和超微结构变化。通过 Seahorse XF24 系统进行能量代谢测定,检测耗氧率和糖酵解质子流出率。通过集落形成、彗星试验和 γ-H2AX 染色研究放射增敏作用。超分子“纳米船”可以通过比正常细胞更高的富集和活性氧生成选择性地杀死癌细胞。在接受超分子“纳米船”处理的癌细胞中,线粒体超微结构的功能障碍形态变化,如肿胀和固缩,明显观察到,并且通过大量细胞色素 C 漏出,有效地触发了内源性线粒体凋亡途径。同时,糖酵解和氧化磷酸化的双重代谢途径受到严重抑制。更重要的是,超分子“纳米船”表现出优异的放射增敏作用,增敏增强比高达 2.58,因此,有效地结合放疗产生了增强的化疗-放疗效果。我们的研究表明,合理设计的基于肽的“纳米船”可以通过涉及多个途径的能量代谢抑制有效地诱导癌细胞凋亡,这可能为设计用于癌症治疗的新型通用线粒体靶向药物输送系统提供动力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6f9/8771563/77e3d3a03347/thnov12p1286g001.jpg

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