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Microneedle assisted micro-particle delivery by gene guns: Mathematical model formulation and experimental verification

机译:基因枪的微针辅助微粒递送:数学模型制定和实验验证

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Gene gun is a micro particles delivery system which accelerates DNA loaded micro particles to a high speed so as to enable penetration of the micro particles into deeper tissues to achieve gene transfection. Previously, microneedle (MN) assisted micro-particles delivery has been shown to achieve the purpose of enhanced penetration depth of micro particles based on a set of laboratory experiments. In order to further understand the penetration process of micro particles, a mathematical model for MN assisted micro particles delivery is developed. The model mimics the acceleration, separation and deceleration stages of the operation of a gene gun (or experimental rig) aimed at delivering the micro particles into tissues. The developed model is used to simulate the particle velocity and the trajectories of micro particles while they penetrate into the target. The model mimics the deceleration stage to predict the linear trajectories of the micro particles which randomly select the initial positions in the deceleration stage and enter into the target. The penetration depths of the micro-particles are analyzed in relation to a number of parameters, e.g., operating pressure, particle size, and MNs length. Results are validated with experimental results obtained from the previous work. The results also show that the particle penetration depth is increased from an increase of operating pressure, particle size and MN length. The presence of the pierced holes causes a surge in penetration distance. (C) 2014 Elsevier Ltd. All rights reserved.
机译:基因枪是一种微粒输送系统,可将载有DNA的微粒加速至高速,从而使微粒渗透到更深的组织中,从而实现基因转染。以前,基于一组实验室实验,微针(MN)辅助的微粒输送已显示出达到增强微粒穿透深度的目的。为了进一步了解微粒的渗透过程,开发了用于MN辅助微粒输送的数学模型。该模型模仿旨在将微粒输送到组织中的基因枪(或实验装置)操作的加速,分离和减速阶段。所开发的模型用于模拟微粒速度和微粒穿透到目标中时的轨迹。该模型模拟减速阶段以预测微粒的线性轨迹,这些微粒随机选择减速阶段的初始位置并进入目标。相对于许多参数,例如操作压力,粒径和MNs长度,分析微粒的渗透深度。结果是从以前的工作中获得的实验结果验证的。结果还表明,随着操作压力,粒度和MN长度的增加,颗粒渗透深度也增加。穿孔的存在会导致穿透距离激增。 (C)2014 Elsevier Ltd.保留所有权利。

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