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首页> 外文期刊>Journal of magnetism and magnetic materials >On-chip testing of the speed of magnetic nano- and micro-particles under a calibrated magnetic gradient
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On-chip testing of the speed of magnetic nano- and micro-particles under a calibrated magnetic gradient

机译:校准磁梯度下磁性纳米粒子和微米粒子速度的片上测试

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Magnetic drug targeting envisions the use of external magnets to manipulate magnetic particles inside the human body, to direct them to disease targets such as tumors, infections, and ear and eye targets. A key question is how good are the particles? How well do they move in media under the action of applied magnetic gradients? To address this question, we designed and implemented a simple on-chip testing and image tracking system to quantitatively assess the motion of magnetic particles in response to an applied magnetic gradient. In this system, the magnetic particles are placed in on-chip wells and then a calibrated magnetic gradient is applied to the particles. The resulting motion of the particles is monitored and quantified by a microscope, camera, and by imaging software. The system measures both particle speed and chaining.We assessed the motion of seven different commercial magnetic particle ranging in size from 10 nm to 100 mu m in diameter. All seven particles displayed consistent trends: larger particles moved faster (according to a power law), particles at higher concentrations created longer chains or needle-like aggregates and moved faster, and both speed and chain or needle length increased with time yielding a final speed proportional to the square of particle diameter. The most striking finding was the consistency of all seven particles within these trends. There were no outliers. No particles performed above the trend lines (no high-performance outliers), nor were there any particles that performed below the trend line (no poor performance outliers). We hope the data collected can be used to better understand particle motion, including the physics of chaining and how it impacts the speed of particle transport in media, and will enable improved design of next-generation magnetic drug delivery systems.
机译:磁性药物靶向技术设想使用外部磁体来操纵人体内部的磁性粒子,以将其引导至疾病目标,例如肿瘤,感染以及耳和眼目标。一个关键问题是颗粒的质量如何?它们在施加的磁梯度的作用下在介质中的运动程度如何?为了解决这个问题,我们设计并实现了一个简单的片上测试和图像跟踪系统,以定量评估响应于施加的磁梯度的磁性粒子的运动。在该系统中,将磁性粒子放置在芯片上的孔中,然后将校准的磁梯度应用于粒子。颗粒的最终运动由显微镜,照相机和成像软件进行监控和定量。该系统同时测量粒子速度和连锁度。我们评估了直径从10 nm到100μm的7种不同商业磁性粒子的运动。所有七个粒子均显示出一致的趋势:较大的粒子运动更快(根据幂定律),浓度更高的粒子形成更长的链或针状聚集体,并且移动速度更快,速度和链或针长度随时间增加而产生最终速度与粒径的平方成正比。最惊人的发现是这些趋势中所有七个粒子的一致性。没有异常值。没有粒子在趋势线上方表现(没有高性能离群值),也没有任何粒子在趋势线下方表现(没有差的表现离群值)。我们希望收集到的数据可用于更好地理解粒子运动,包括链接的物理原理以及它如何影响粒子在介质中的传输速度,并将有助于改进下一代磁性药物传输系统的设计。

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