Multi-Functional Magnetic Nanocrystals for Tumor Mitochondria-Targeted Magnetic Hyperthermia Combined with Enhanced Radiotherapy.

IF 6.5 2区 医学 Q1 NANOSCIENCE & NANOTECHNOLOGY
International Journal of Nanomedicine Pub Date : 2025-09-11 eCollection Date: 2025-01-01 DOI:10.2147/IJN.S535222
Yue Zong, Jie He, Yichun Wu, Jingwen Qin, Mingyan Zhao, Xingyu Zhu, Jun Xie, Haitao Yin
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引用次数: 0

Abstract

Objective: In this study, a fluorescent magnetic nanomaterial with mitochondrial targeting property (Fe3O4@DPPC@DMPE-PEG2000-LOD@IR780, FDLI) was successfully prepared. We found that FDLI-mediated targeted magnetic hyperthermia (TMH) increases the sensitivity of tumor to radiotherapy (RT). The related underlying mechanisms have also been revealed.

Methods: The crystal structure, chemical composition, magnetic properties, optical characteristics and enzyme-like activity of FDLI were systematically elevated. The mitochondrial targeting ability, anti-tumor efficacy, and RT sensitization potential of FDLI were validated in vitro using breast cancer 4T1 cells. Additionally, a subcutaneous breast tumor transplantation mouse model was established to evaluate the therapeutic effectiveness of FDLI, and an optimized in vivo treatment protocol was assessed. Following intravenous administration of FDLI in mice, the diagnostic and therapeutic effects were evaluated using FDLI-mediated multimodal imaging diagnosis and therapeutic strategies.

Results: Following mitochondrial targeting of tumor cells, FDLI induced localized TMH and exhibited peroxidase-like activity to generate ·OH, which selectively disrupted the mitochondrial membranes of tumor cells, resulting in reduced adenosine triphosphate (ATP) production and elevated lipid peroxidation. Meanwhile, FDLI increased intracellular reactive oxygen species (ROS) levels while reducing glutathione (GSH) levels, thereby promoting ferroptosis in tumor cells and enhancing the sensitivity to synergistic RT.

Conclusion: FDLI can effectively inhibit tumor growth and metastasis, prolonging the survival of tumor-bearing mice through the combined effects of TMH and RT. Our study provides a clinical basis for the development of FDLI as a high-performance agent for integrated tumor diagnosis and therapy.

多功能磁性纳米晶体用于肿瘤线粒体靶向磁热疗联合增强放疗。
目的:本研究成功制备了具有线粒体靶向性的荧光磁性纳米材料(Fe3O4@DPPC@DMPE-PEG2000-LOD@IR780, FDLI)。我们发现fdli介导的靶向磁热疗(TMH)增加了肿瘤对放疗(RT)的敏感性。相关的潜在机制也已被揭示。方法:系统地测定FDLI的晶体结构、化学组成、磁性、光学特性和类酶活性。利用乳腺癌4T1细胞体外验证FDLI的线粒体靶向能力、抗肿瘤功效和RT致敏潜力。建立乳腺肿瘤皮下移植小鼠模型,评价FDLI的治疗效果,并对优化后的体内治疗方案进行评估。小鼠静脉注射FDLI后,采用FDLI介导的多模态成像诊断和治疗策略评估其诊断和治疗效果。结果:在线粒体靶向肿瘤细胞后,FDLI诱导局部TMH并表现出过氧化物酶样活性,产生·OH,选择性地破坏肿瘤细胞的线粒体膜,导致三磷酸腺苷(adenosine triphosphate, ATP)生成减少,脂质过氧化水平升高。同时,FDLI增加细胞内活性氧(ROS)水平,降低谷胱甘肽(GSH)水平,从而促进肿瘤细胞铁下垂,增强对协同rt的敏感性。FDLI可通过TMH和rt的联合作用,有效抑制肿瘤的生长和转移,延长荷瘤小鼠的生存期。本研究为FDLI作为肿瘤综合诊疗的高性能药物的开发提供了临床依据。
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来源期刊
International Journal of Nanomedicine
International Journal of Nanomedicine NANOSCIENCE & NANOTECHNOLOGY-PHARMACOLOGY & PHARMACY
CiteScore
14.40
自引率
3.80%
发文量
511
审稿时长
1.4 months
期刊介绍: The International Journal of Nanomedicine is a globally recognized journal that focuses on the applications of nanotechnology in the biomedical field. It is a peer-reviewed and open-access publication that covers diverse aspects of this rapidly evolving research area. With its strong emphasis on the clinical potential of nanoparticles in disease diagnostics, prevention, and treatment, the journal aims to showcase cutting-edge research and development in the field. Starting from now, the International Journal of Nanomedicine will not accept meta-analyses for publication.
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