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球形基质中的药物释放:受分散药物几何形状影响的有限溶解速率的理论分析

Drug Release from a Spherical Matrix: Theoretical Analysis for a Finite Dissolution Rate Affected by Geometric Shape of Dispersed Drugs.

作者信息

Lin Yung-Sheng, Tsay Ruey-Yug

机构信息

Department of Chemical Engineering, National United University, Miaoli 36063, Taiwan.

Department of Biomedical Engineering, National Yang-Ming University, Taipei 11221, Taiwan.

出版信息

Pharmaceutics. 2020 Jun 23;12(6):582. doi: 10.3390/pharmaceutics12060582.

Abstract

Amending the neglect of finite dissolution in traditional release models, this study proposed a more generalized drug release model considering the simultaneous dissolution and diffusion procedure from a drug-loaded spherical matrix. How the shape factor ( = 0, 1/2, and 2/3 for the planar, cylindrical, and spherical geometry, respectively) of dispersed drug particles affected the release from the matrix was examined for the first time. Numerical solutions of this generalized model were validated by consensus with a short-time analytical solution for planar drugs and by the approach of the diffusion-controlled limits with Higuchi's model. The drug release rate increases with the ratio of dissolution/diffusion rate () and the ratio of solubility/drug loading () but decreases with the shape factor of drug particles. A zero-order release profile is identified for planar drugs before starting the surface depletion layer, and also found for cylindrical and spherical dispersed drugs when and are small, i.e. the loaded drug is mainly un-dissolved and the drug release rate is dissolution-controlled. It is also shown that for the case of a small value, the variation of drug release profile, due to the drug particle geometry, becomes prominent. Detailed comparison with the results of the traditional Higuchi's model indicates that Higuchi's model can be applied only when is large because of the assumption of an instantaneous dissolution. For = 1/101-1/2, the present analysis suggests an error of 33-85% for drug release predicted by Higuchi's model for = 10, 14-44% error for = 10, while a less than 5% error for ≧ 10.

摘要

本研究修正了传统释放模型中对有限溶解的忽视,提出了一种更通用的药物释放模型,该模型考虑了载药球形基质中溶解和扩散过程的同时发生。首次研究了分散药物颗粒的形状因子(分别对应平面、圆柱和球形几何形状时为0、1/2和2/3)如何影响基质中的释放。该通用模型的数值解通过与平面药物的短期解析解达成一致以及采用Higuchi模型的扩散控制极限方法进行了验证。药物释放速率随溶解/扩散速率比()和溶解度/药物载量比()的增加而增加,但随药物颗粒的形状因子减小。在表面耗尽层开始之前,平面药物呈现零级释放曲线,当和较小时,圆柱和球形分散药物也呈现零级释放曲线,即负载的药物主要未溶解且药物释放速率受溶解控制。还表明,对于较小值的情况,由于药物颗粒几何形状导致的药物释放曲线变化变得显著。与传统Higuchi模型结果的详细比较表明,由于假设瞬时溶解,Higuchi模型仅在较大时才能应用。对于=1/101 - 1/2,本分析表明,对于=10,Higuchi模型预测的药物释放误差为33 - 85%;对于=10,误差为14 - 44%;而对于≧10,误差小于5%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0686/7357057/96d27a5b7cd8/pharmaceutics-12-00582-g001.jpg

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