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Magnetic microbot design framework for antiangiogenic tumor therapy

机译:用于抗血管生成肿瘤治疗的磁性微型机器人设计框架

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This paper presents an optimal design strategy for magnetic targeting of therapeutic drugs. In this study, to maximize the effect of the treatment and minimize adverse effects on the patient, mathematical models have been developed to find the number and the size of the boluses with respect to the growth of a tumor. Using these models, control strategies are developed to establish a schedule that allows the physician to administer the medication while respecting borne by the patient doses. To transport the drugs, we use therapeutic magnetic boluses composed of magnetic particle aggregates as navigable agents controlled by magnetic gradients. Based on the optimal design of the bolus, an experimental investigation is carried out in millimeter-sized fluidic artery vessels to demonstrate the steerability of the magnetic bolus under different velocity, shear-stress and trajectory constraints with a laminar viscous fluidic environment.
机译:本文提出了一种磁性靶向治疗药物的最佳设计策略。在这项研究中,为了使治疗效果最大化并减小对患者的不良影响,已经开发了数学模型来找到相对于肿瘤生长的推注的数量和大小。使用这些模型,制定了控制策略以建立时间表,使医生可以在遵守患者剂量的前提下管理药物。为了运输药物,我们使用由磁性颗粒聚集体组成的治疗性磁性大剂量药丸作为受磁梯度控制的可导航药物。基于弹丸的最佳设计,在毫米大小的流体动脉血管中进行了实验研究,以证明在层流粘性流体环境下,在不同速度,剪切应力和轨迹约束下,磁弹丸的可操纵性。

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