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通过纳米级金属有机框架干扰生物合成以增强放射治疗。

Interfering biosynthesis by nanoscale metal-organic frameworks for enhanced radiation therapy.

作者信息

Fu Zi, Liu Zhuang, Wang Jiaxing, Deng Lianfu, Wang Han, Tang Wei, Ni Dalong

机构信息

Department of Orthopaedics, Shanghai Key Laboratory for Prevention and Treatment of Bone and Joint Diseases, Shanghai Institute of Traumatology and Orthopaedics, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China.

Department of Radiology, Fudan University Shanghai Cancer Center, Shanghai 200032, China.

出版信息

Biomaterials. 2023 Apr;295:122035. doi: 10.1016/j.biomaterials.2023.122035. Epub 2023 Feb 2.

Abstract

Radiation therapy (RT) is one of the most widely used cancer treatments. However, the vigorous biosynthesis of cancer cells plays an important role for RT resistance. Herein, we develop a hafnium-based nanoscale metal-organic frameworks (Hf-nMOFs) loaded with 3-bromopyruvate (3-BrPA) to overcome RT resistance and achieve favorable RT efficacy. The deposition of X-rays is greatly enhanced by Hf-nMOFs to induce stronger damage to DNA in RT. Simultaneously, as an inhibitor of glycolysis, the loaded 3-BrPA can reduce the supply of energy and interfere with the biosynthesis of proteins to decrease the DNA damage repair. As a result, the 3-BrPA@Hf-nMOFs (BHT) will overcome the RT resistance and enhance the curative effect of RT. Up and down-regulated genes as well as the related pathways in cellular metabolism and biosynthesis are well investigated to reveal the radiosensitization mechanism of BHT. In addition, the Hf element endows BHT with CT imaging capability to real-timely monitor the therapeutic process. Hence, the designed strategy of biosynthesis-targeted radiosensitization could decrease the doses of ionizing radiations and provide fresh perspectives on cancer treatment.

摘要

放射治疗(RT)是应用最为广泛的癌症治疗方法之一。然而,癌细胞旺盛的生物合成作用对放疗抵抗起着重要作用。在此,我们开发了一种负载3-溴丙酮酸(3-BrPA)的铪基纳米级金属有机框架(Hf-nMOFs),以克服放疗抵抗并实现良好的放疗效果。Hf-nMOFs极大地增强了X射线的沉积,从而在放疗中对DNA造成更强的损伤。同时,作为一种糖酵解抑制剂,负载的3-BrPA可以减少能量供应并干扰蛋白质的生物合成,从而减少DNA损伤修复。结果,3-BrPA@Hf-nMOFs(BHT)将克服放疗抵抗并增强放疗疗效。对细胞代谢和生物合成中上调和下调的基因以及相关途径进行了深入研究,以揭示BHT的放射增敏机制。此外,铪元素赋予BHT CT成像能力,以实时监测治疗过程。因此,所设计的针对生物合成的放射增敏策略可以降低电离辐射剂量,并为癌症治疗提供新的视角。

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