Sun Wenjun, Chai Xiaoxia, Zhang Yuan, Yu Tongyao, Wang Yuhua, Zhao Wenzhe, Liu Yanhua, Yin Dachuan, Zhang Chenyan
Institute for Special Environmental Biophysics, Key Laboratory for Space Bioscience and Biotechnology, School of Life Sciences, Northwestern Polytechnical University, Xi'an, Shaanxi, 710100, PR China.
Department of Medical Oncology, Xuzhou Central Hospital, Xuzhou, 221009, China.
Chem Rec. 2024 Dec;24(12):e202400179. doi: 10.1002/tcr.202400179. Epub 2024 Nov 28.
Iron oxide nanoparticles (MNPs) demonstrate notable benefits in magnetic induction, attributed to their distinctive physical and chemical attributes. Emerging cancer treatment utilizing magnetic fields have also gathered increasing attention in the biomedical field. However, the defects of difficult dispersion and poor biocompatibility of MNPs seriously hinder their application. In order to overcome its inherent defects and maximize the therapeutic potential of MNPs, various functionalized MNPs have been developed, and numerous combined treatment methods based on MNPs have been widely studied. In this review, we compare and analyze the common nanoparticles based on MNPs with different sizes, shapes, and functional modifications. Additionally, we introduced the therapeutic mechanisms of the strategies, such as magnetically controlled targeting, magnetic hyperthermia, and magneto-mechanical effect, which based on the unique magnetic induction capabilities of MNPs. Finally, main challenges of MNPs as smart nanomaterials were also discussed. This review seeks to offer a thorough overview of MNPs in biomedicine and a new sight for their application in tumor treatment.
氧化铁纳米颗粒(MNPs)因其独特的物理和化学特性在磁感应方面展现出显著优势。利用磁场进行的新兴癌症治疗在生物医学领域也越来越受到关注。然而,MNPs存在难以分散和生物相容性差的缺陷,严重阻碍了它们的应用。为了克服其固有缺陷并最大化MNPs的治疗潜力,人们开发了各种功能化的MNPs,并广泛研究了众多基于MNPs的联合治疗方法。在这篇综述中,我们比较和分析了基于不同尺寸、形状和功能修饰的MNPs的常见纳米颗粒。此外,我们介绍了基于MNPs独特磁感应能力的策略的治疗机制,如磁控靶向、磁热疗和磁机械效应。最后,还讨论了MNPs作为智能纳米材料面临的主要挑战。这篇综述旨在全面概述MNPs在生物医学中的应用,并为其在肿瘤治疗中的应用提供新的视角。