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Optimization of magnetophoretic-guided drug delivery to the olfactory region in a human nose model

机译:在人鼻模型中磁导引导药物向嗅觉区域的传递的优化

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Magnetophoretic-guided delivery has been shown to be able to improve the olfactory doses. However, due to the complex nasal structure and quick decay of magnetic intensity, precise control of particle motion in the human nose remains a challenge. In this study, an optimization model was developed for magnetophoretic olfactory delivery systems. The performance of the model was evaluated using a baseline device design in an MRI-based human nose geometry. Three key components of the delivery system were examined, which included the particle release position, the front magnet to minimize nasal valve depositions, and the top magnet to attract particles into the olfactory region. Results show that the magnetophoretic olfactory delivery device can be significantly improved by optimizing the product and operational parameters. The olfactory delivery efficiency was increased by 1.5-fold compared to the baseline design. The top magnet height and strength were shown to be the most influential factor in olfactory delivery, followed by the drug release position and the front magnet strength. The optimization framework developed in this study can be easily adapted for the optimization of intranasal drug delivery to other regions such as paranasal sinuses.
机译:磁导引导递送已显示能够改善嗅觉剂量。但是,由于复杂的鼻腔结构和快速的磁场强度衰减,精确控制人鼻中的粒子运动仍然是一个挑战。在这项研究中,开发了磁致嗅觉输送系统的优化模型。使用基于MRI的人鼻几何形状中的基线设备设计评估模型的性能。检查了输送系统的三个关键组成部分,包括颗粒释放位置,前磁体以最大程度减少鼻瓣沉积,以及顶部磁体将颗粒吸引到嗅觉区域。结果表明,通过优化产品和操作参数可以显着改善磁致嗅觉输送装置。与基线设计相比,嗅觉递送效率提高了1.5倍。顶部磁体的高度和强度被证明是嗅觉传递中影响最大的因素,其次是药物释放位置和前部磁体的强度。这项研究中开发的优化框架可以轻松地用于优化鼻内药物向其他区域(如鼻旁窦)的鼻内给药。

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