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AN EFFECTIVE DRUG DELIVERY PROCESS USING A MOLECULAR DYNAMICS-BASED CYLINDRICAL PARTICLE MODEL

机译:一种使用基于分子动力学的圆柱粒子模型的有效药物递送过程

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This paper attacks the problem of drug particles modeling in their delivery process for better predictions of solubility and absorption rate. Most of the current models treat the particles to be spheres which may not be accurate. The drug particles formed by grinding and milling are usually not spheres but are irregular or spindles in shape. As such, in this paper modeling of drug particles as cylinders is proposed to rigorously study the impact on its solubility. Along the same line, we also delve into the effect on solubility of changing the aspect ratio of a cylindrical drug particle having a constant mass as well as the diffusion coefficient of the solute which dominates the control on the kinetics of drug release. Molecular Dynamics (MD) simulation is employed to calculate the diffusion coefficient of a given particle using one of Einstein's fluctuation-dissipation equations that relates transport properties to time. The MD approach makes it possible to deal with parameters that are too difficult to be physically measured in a human body. The solubility analysis of a cylindrical drug particle is done using the Noyes-Whitney equation. The rates of change of radius and of mass are analyzed graphically for drug particles of different weights and sizes. Finally the solubility of a sphere versus that of a cylinder for the same mass is investigated. The data reveal that with the same given mass, the solubility of a spherical particle is less than that of the cylindrical shape. As to the effect of the diffusion coefficient, on the solubility of a particle, it is found that the increase infor a particle with fixed mass increases its solubility. However, the solubility decreases while is increased for a particle with fixed radius.
机译:本文攻击其递送过程中药物粒子建模的问题,以更好地预测溶解度和吸收率。大多数当前模型将颗粒视为球形,这可能不准确。通过研磨和研磨形成的药物颗粒通常不是球形,而是形状不规则或锭子。因此,在本文的药物颗粒中,提出了汽缸的颗粒,以严格研究对其溶解度的影响。沿同一条线,我们还研究了改变具有恒定质量的圆柱形药物颗粒的纵横比的溶解性以及溶质的扩散系数的溶解度的影响,该溶质源于药物释放的动力学中的控制。使用分子动力学(MD)模拟来使用联合斯坦的波动耗散方程之一来计算给定粒子的扩散系数,其将传输特性与时间相关。 MD方法使得可以处理太难以在人体中测量的参数。使用Noyes-Whitney方程进行圆柱形药物颗粒的溶解度分析。以图形方式分析半径和质量的变化率,用于不同重量和尺寸的药物颗粒。最后,研究了球体与圆柱体的溶解度进行了研究。通过相同的给定质量的数据显示,球形颗粒的溶解度小于圆柱形状的溶解度。关于扩散系数的影响,在颗粒的溶解度上,发现具有固定质量的颗粒增加了其溶解度。然而,对于具有固定半径的颗粒而增加,溶解度降低。

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