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Model-based optimized steering and focusing of local magnetic particle concentrations for targeted drug delivery

机译:基于模型的局部磁性颗粒浓度靶向药物递送的优化转向和聚焦

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Magnetic drug targeting (MDT) is an application in the field of targeted drug delivery in which magnetic (nano)particles act as drug carriers. The particles can be steered toward specific regions in the human body by adapting the currents of external (electro)magnets. Accurate models of particle movement and control algorithms for the electromagnet currents are two of the many requirements to ensure effective drug targeting. In this work, a control approach for the currents is presented, based on an underlying physical model that describes the dynamics of particles in a liquid in terms of their concentration in each point in space. Using this model, the control algorithm determines the currents generating the magnetic fields that maximize the particle concentration in spots of interest over a period of time. Such an approach is computationally only feasible thanks to our innovative combination of model order reduction with the method of direct multiple shooting. Simulation results of an in-vitro targeting setup demonstrated that a particle collection can be successfully guided toward the targeted spot with limited dispersion through a surrounding liquid. As now present and future particle behavior can be taken into account, and non-stationary surrounding liquids can be dealt with, a more precise and flexible targeting is achieved compared to existing MDT methods. This proves that the presented methodology can bring MDT closer to its clinical application. Moreover, the developed model is compatible with state-of-the-art imaging methods, paving the way for theranostic platforms that combine both therapy as well as diagnostics.
机译:磁药靶向(MDT)是靶向药物递送领域的应用,其中磁性(纳米)颗粒作为药物载体。通过调整外部(电力)磁体的电流,颗粒可以朝向人体中的特定区域转向。用于电磁铁电流的精确模型和控制算法是确保有效药物靶向的许多要求中的两个。在这项工作中,基于基于底层物理模型来呈现用于电流的控制方法,该底层物理模型在其空间中的每个点中的浓度下描述液体中的粒子的动态。使用该模型,控制算法确定产生最大化感兴趣斑点的磁场的电流。由于我们通过直接多次拍摄方法的模型顺序减少的创新组合,因此这种方法仅可行。体外靶向设置的模拟结果证明,颗粒收集可以通过周围液体的有限分散地朝向目标点成功引导。现在存在和​​未来的粒子行为可以考虑,并且可以处理非静止的周围液体,与现有MDT方法相比,实现了更精确和灵活的靶向。这证明了所提出的方法可以将MDT更接近其临床应用。此外,开发的模型与最先进的成像方法兼容,铺平了用于治疗的治疗平台以及诊断的方法。

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