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Contactless Nanoparticle-Based Guiding of Cells by Controllable Magnetic Fields

机译:基于非接触式纳米粒子的电池引导可控制磁场

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摘要

Controlled and contactless movements of magnetic nanoparticles are crucial for fundamental biotechnological and clinical research (eg, cell manipulation and sorting, hyperthermia, and magnetic drug targeting). However, the key technological question, how to generate suitable magnetic fields on various length scales (µm–m), is still unsolved. Here, we present a system of permanent magnets which allows for steering of iron oxide nanoparticles (SPIONs) on arbitrary trajectories observable by microscopy. The movement of the particles is simply controlled by an almost force-free rotation of cylindrical arrangements of permanent magnets. The same instrument can be used to move suspended cells loaded with SPIONs along with predetermined directions. Surprisingly, it also allows for controlled movements of intracellular compartments inside of individual cells. The exclusive use of permanent magnets simplifies scaled up versions for animals or even humans, which would open the door for remotely controlled in vivo guidance of nanoparticles or micro-robots.
机译:磁性纳米粒子的受控和非接触运动对于基本生物技术和临床研究至关重要(例如,细胞操纵和分类,热疗和磁性药物靶向)。但是,关键的技术问题,如何在各种长度尺度上生成合适的磁场(μm-m),仍未解决。在这里,我们提出了一种永磁体系,其允许在可观察到的任意轨迹上转向氧化铁纳米颗粒(驼峰)。颗粒的运动简单地通过永磁磁体的圆柱形布置的几乎力旋转来控制。相同的仪器可用于将悬浮的电池移动,悬挂在散热器上以及预定方向上。令人惊讶的是,它还允许在单个细胞内部的细胞内隔室的受控运动。独家使用永久磁铁简化了动物甚至人类的缩放版本,这将打开门纳米粒子或微机器人的体内引导中远程控制的门。

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