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Magnetic Injection of Nanoparticles Into Rat Inner Ears at a Human Head Working Distance

机译:纳米粒子以人头工作距离向大鼠内耳的磁性注射

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Due to the physics of magnetic fields and forces, any single magnet will always attract or pull-in magnetically-responsive particles. However, there are a variety of clinical needs where it is advantageous to be able to push away or ‘magnetically inject’ therapeutic particles. Here we focus on magnetic injection to treat inner-ear diseases. The inner ear is behind the blood-ear barrier, meaning, blood vessels that supply blood to the inner ear have vessel walls that are impermeable and prevent drugs from exiting the vessels and reaching inner ear tissues. In our prior work, we showed that a simple four-magnet system could successfully push nanoparticles from the middle into the inner ear, thus circumventing the blood-ear barrier. That first-generation system could only push at a 2 cm distance: a range sufficient for rat experiments but not appropriate for adult human patients whose face-to-middle-ear distance varies from 3 to 5 cm. Here we demonstrate an optimal two-magnet system that can push at 3 to 5 cm distances. The system is designed using semi-definite quadratic programming which guarantees a globally optimal magnet configuration, is fabricated, characterized in detail, compared to theory, and then tested in rat experiments but now at a human 4 cm working distance.
机译:由于磁场和力的物理作用,任何单个磁体都将始终吸引或引入磁响应粒子。但是,在各种临床需求中,能够推开或“磁性注射”治疗颗粒是有利的。在这里,我们专注于磁疗来治疗内耳疾病。内耳位于血耳屏障的后面,这意味着向内耳供应血液的血管具有不可渗透的血管壁,可防止药物流出血管并到达内耳组织。在我们之前的工作中,我们证明了简单的四磁铁系统可以成功地将纳米粒子从中耳推入内耳,从而规避了血耳屏障。第一代系统只能以2 cm的距离推动:该距离足以进行大鼠实验,但不适用于面部到中耳距离在3到5 cm之间的成年人类患者。在这里,我们演示了一个最佳的两磁铁系统,该系统可以推动3至5厘米的距离。该系统使用半定界二次编程设计,可确保全局最佳磁体配置,与理论相比,已制造,详细表征了特征,然后在大鼠实验中进行了测试,但现在的工作距离为4厘米。

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