基于磁性纳米材料的肿瘤靶向治疗研究进展
CSTR:
作者:
作者单位:

1)西安交通大学第一附属医院Med-X研究院再生与重建医学研究所,西安 710049;2)西安交通大学第一附属医院精准外科与再生医学国家地方联合工程研究中心,西安 710061;3)西安交通大学第一附属医院陕西省再生医学与外科工程研究中心,西安 710061;4.5)西北大学化学与材料科学学院,西安 710127;5.4)西北大学生命科学学院,西安 710069

作者简介:

吕毅 Tel: 13991200581, E-mail: luyi169@xjtu.edu.cn刘晓丽 Tel: 13028426332, E-mail: liuxiaoli@nwu.edu.cnLü Yi. Tel: 86-13991200581, E-mail: luyi169@xjtu.edu.cnLIU Xiao-Li. Tel: 86-13028426332, E-mail: liuxiaoli@nwu.edu.cn

通讯作者:

中图分类号:

基金项目:

国家自然科学基金(81727802,82072063,31901003) 和西安 交通大学第一附属医院自由探索与创新项目(2021ZYTS-11) 资助。


Progress of Tumor Targeted Therapy Based on Magnetic Nanomaterials
Author:
Affiliation:

1)Institute of Regenerative and Reconstructive Medicine, Med-X Institute, First Affiliated Hospital of Xi’an Jiaotong University, Xi’an 710049, China;2)National Local Joint Engineering Research Center for Precision Surgery & Regenerative Medicine, First Affiliated Hospital of Xi’an Jiaotong University, Xi’an 710061, China;3)Shaanxi Provincial Center for Regenerative Medicine and Surgical Engineering, First Affiliated Hospital of Xi’an Jiaotong University, Xi’an 710061,China;4.5)College of Chemistry and Materials Science, Northwest University, Xi’an 710127, China;5.4)School of Life Sciences, Northwest University, Xi’an 710069, China

Fund Project:

This work was supported by grants from The National Natural Science Foundation of China (81727802,82072063,31901003), Free Exploration and Innovation Program of the First Affiliated Hospital of Xi’an Jiaotong University (2021ZYTS-11).

  • 摘要
  • |
  • 图/表
  • |
  • 访问统计
  • |
  • 参考文献
  • |
  • 相似文献
  • |
  • 引证文献
  • |
  • 资源附件
  • |
  • 文章评论
    摘要:

    磁性纳米材料具有独特的磁学性质,可响应外磁场,产生力、热等效应。如在静磁场下将药物磁靶向递送至肿瘤部位;低频交变磁场下可将纳米药物主动渗透至病灶部位,实现瘤内均一分布;中频交变磁场作用下磁滞损耗产生热和增强的活性氧,用于肿瘤治疗。磁性纳米材料同时具有尺寸依赖的磁学性质以及表面多功能化等特点,可将磁靶向、分子靶向以及磁热疗联合。此外,磁性纳米材料具有磁共振成像性能以及纳米酶催化特性,使其在肿瘤诊疗一体化治疗方面获得了广泛应用。近年来,纳米给药系统不断被优化,基于磁性纳米材料的肿瘤靶向治疗也得到了长足的发展。鉴于此,本文围绕提高靶向肿瘤治疗效果,从磁靶向药物治疗、被动靶向磁热疗和主动分子靶向磁热疗、纳米酶特性以及诊疗一体化应用等几方面出发,综述了基于磁性纳米材料的肿瘤靶向治疗研究进展。

    Abstract:

    Magnetic nanomaterials exhibit multiple magnetic-responsive behaviors under different external magnetic fields to produce various physicochemical effects (e.g., force and heat), which possess a broad range of applications in cancer therapy. To realize the precise delivery in vivo, magnetic nanomaterials induced magnetic actuation under static magnetic field has been the focus of biomedicine research. For instance, magnetic drug delivery systems such as nano-trajectory, nano-drugs have shown promise in efficient intratumoral accumulation of drugs. Inspired by a natural physiologic phenomenon in the tumor microenvironment and multiple physicochemical effects by external stimulation, a variety of endogenous-responsive and magnetic field-stimulated drug delivery systems were constructed. Magnetic nanomaterials loaded with drugs can actively penetrate into tumors under low-frequency alternating magnetic fields, resulting in their uniform distribution through the entire tumor tissue. Under a medium-frequency alternating magnetic field, magnetic nanomaterials produce heat and reactive oxygen species, which can facilitate the active drug release on-demand for cancer treatment. All those effects depend on size, composition, morphology, surface functionalization of magnetic nanomaterials. Owing to their easy surface functionalization, it presents an exciting opportunity in the modularized design and operation of an all-in-one system (imaging, targeted drug delivery, magnetothermal effect, nano-enzyme catalysis, etc.), which can achieve image-guided precise cancer theranostics. In this review, we focused on how to improve the magnetic nano-targeted drug delivery efficiency for tumor treatment, including the potential applications of magnetic targeted drug therapy, passive targeted magnetic hyperthermia and active targeted magnetic hyperthermia in enhancing the efficacy of cancer therapy. We highlighted the mechanisms underlying magnetically-actuated delivery and controlled release of drug. We also considered perspectives and challenges in tumor targeted therapy based on magnetic nanomaterials. Although the biomedical research based on magnetic nanomaterials has made great progress, most of the research is still in the stage of animal testing, and there is a long way to go to realize its clinical application in diagnosis and treatment. There is a series of challenges need to be overcome. (1) Designing safer and more efficient magnetic nanomaterials is needed. For example, improving magnetic properties of magnetic nanomaterials to achieve efficient magnetic targeted drug delivery; optimizing magnetic nanomaterials to avoid its penetration into the normal tissue. (2) Clarifying the regulation mechanism of magnetic nanomaterial-mediated effects on cell fate and disease treatment. (3) Understanding the interaction between magnetic field and living body, such as the effect of magnetic field on living body metabolism and clearance. (4) Developing safe and controllable magnetic field-generating equipment, control system and analysis software, etc. With the in-depth understanding of the biological effects of magnetic nanomaterials, a new discipline “magnetobiology” will be established soon.

    参考文献
    相似文献
    引证文献
引用本文

唐倩倩,吴荣谦,樊海明,刘晓丽,吕毅.基于磁性纳米材料的肿瘤靶向治疗研究进展[J].生物化学与生物物理进展,2022,49(12):2266-2277

复制
分享
文章指标
  • 点击次数:
  • 下载次数:
  • HTML阅读次数:
  • 引用次数:
历史
  • 收稿日期:2022-01-15
  • 最后修改日期:2022-11-15
  • 接受日期:2022-03-25
  • 在线发布日期: 2022-12-20
  • 出版日期: 2022-12-20