Iron oxide-based nanomagnets in nanomedicine: fabrication and applications.

Nano reviews Pub Date : 2010-01-01 Epub Date: 2010-02-22 DOI:10.3402/nano.v1i0.4883
Meng Meng Lin, Hyung-Hwan Kim, Hyuck Kim, Mamoun Muhammed, Do Kyung Kim
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Abstract

Iron oxide-based nanomagnets have attracted a great deal of attention in nanomedicine over the past decade. Down to the nanoscale, superparamagnetic iron oxide nanoparticles can only be magnetized in the presence of an external magnetic field, which makes them capable of forming stable colloids in a physio-biological medium. Their superparamagnetic property, together with other intrinsic properties, such as low cytotoxicity, colloidal stability, and bioactive molecule conjugation capability, makes such nanomagnets ideal in both in-vitro and in-vivo biomedical applications. In this review, a chemical, physical, and biological synthetic approach to prepare iron oxide-based nanomagnets with different physicochemical properties was illustrated and compared. The growing interest in iron oxide-based nanomagnets with multifunctionalities was explored in cancer diagnostics and treatment, focusing on their combined roles in a magnetic resonance contrast agent, hyperthermia, and magnetic force assisted drug delivery. Iron oxides as magnetic carriers in gene therapy were reviewed with a focus on the sophisticated design and construction of magnetic vectors. Finally, the iron oxide-based nanomagnet also represents a very promising tool in particle/cell interfacing in controlling cellular functionalities, such as adhesion, proliferation, differentiation, and cell patterning, in stem cell therapy and tissue engineering applications.

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纳米医学中的氧化铁基纳米磁体:制造与应用。
过去十年来,基于氧化铁的纳米磁体在纳米医学领域引起了广泛关注。超顺磁性氧化铁纳米粒子只有在外部磁场存在的情况下才能被磁化,这使得它们能够在物理生物介质中形成稳定的胶体。它们的超顺磁性以及其他固有特性,如低细胞毒性、胶体稳定性和生物活性分子共轭能力,使这种纳米磁体成为体外和体内生物医学应用的理想选择。本综述对制备具有不同物理化学特性的氧化铁基纳米磁体的化学、物理和生物合成方法进行了说明和比较。在癌症诊断和治疗方面,人们对具有多功能性的氧化铁基纳米磁体的兴趣与日俱增,重点探讨了它们在磁共振造影剂、热疗和磁力辅助给药方面的综合作用。研究还回顾了铁氧化物作为基因治疗中的磁性载体,重点是磁性载体的复杂设计和构建。最后,在干细胞治疗和组织工程应用中,基于氧化铁的纳米磁体也是控制细胞功能(如粘附、增殖、分化和细胞图案化)的颗粒/细胞界面的一种非常有前途的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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