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Magnetic nanoparticles as tools for cell therapy [Nanoparticules magn??tiques au c?ur des cellules: des outils pour les th??rapies cellulaires]

机译:磁性纳米颗粒作为细胞治疗工具[细胞核心的磁性纳米颗粒:细胞治疗工具]

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摘要

Labelling living cells with magnetic nanoparticles creates opportunities for numerous biomedical applications such as Magnetic Resonance Imaging (MRI) cell tracking, cell manipulation, cell patterning for tissue engineering and magnetically-assisted cell delivery. The unique advantage of magnetic-based methods is to activate or monitor cell behavior by a remote stimulus, the magnetic field. Cell labelling methods using superparamagnetic nanoparticles have been widely developed, showing no adverse effect on cell proliferation and functionalities while conferring magnetic properties to various cell types. This paper first describes how cells can become responsive to magnetic field by safely internalizing magnetic nanoparticles. We next show how magnetic cells can be detected by MRI, giving the opportunity for non-invasive in vivo monitoring of cell migration. We exemplify the fact that MRI cell tracking has become a method of choice to follow the fate of administrated cells in cell therapy assay, whether the cells are grafted locally or administrated in the circulation. Finally we give different examples of magnetic manipulation of cells and their applications to regenerative medicine. Magnetic cell manipulation are forecasted to be more and more developed, in order to improve tissue engineering technique and assist cell-based therapies. Owing to the clinical approval of iron-oxide nanoparticles as MRI contrast agent, there is no major obstacle in the translation to human clinics of the magnetic methods summarized in this paper. ? 2013 Soci??t?? de Biologie.
机译:用磁性纳米颗粒标记活细胞为许多生物医学应用创造了机会,例如磁共振成像(MRI)细胞跟踪,细胞操纵,用于组织工程的细胞图案化和磁辅助细胞递送。基于磁性的方法的独特优势是通过远程刺激磁场激活或监视细胞行为。使用超顺磁性纳米粒子的细胞标记方法已得到广泛开发,对细胞增殖和功能性没有不利影响,同时赋予各种细胞类型以磁性。本文首先介绍了如何安全地内化磁性纳米粒子,从而使细胞对磁场产生响应。接下来,我们将展示如何通过MRI检测磁性细胞,从而为细胞迁移的非侵入性体内监测提供了机会。我们举例说明了一个事实,即无论细胞是局部移植还是循环给药,MRI细胞跟踪已成为在细胞疗法中遵循给药细胞命运的一种选择方法。最后,我们给出了磁性操纵细胞及其在再生医学中的应用的不同例子。为了改善组织工程技术和辅助基于细胞的疗法,预计磁性细胞的操纵将越来越发达。由于氧化铁纳米颗粒作为MRI造影剂的临床批准,本文总结的磁性方法在人类临床中的翻译没有重大障碍。 ? 2013 Soci ?? t ?? de Biologie。

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