Department of Pharmaceutics, University of Minnesota, Minneapolis, Minnesota 55455, USA.
J Pharm Sci. 2013 Jul;102(7):2254-63. doi: 10.1002/jps.23583. Epub 2013 May 6.
Important consideration for developing physically stable solid dispersion is miscibility of drug in carrier matrix. It is possible to predict thermodynamics of binary system through free energy calculations based on Flory-Huggins interaction parameter (χ(dp)). In present study, PEG 6000 as model polymer and dataset comprising commonly used drugs/excipients was selected. The three-dimensional solubility parameter based on group contribution method was utilized for systemic calculation of χ(dp) of the polymer with each compound in data set. On the basis of the values of χ(dp), it was possible to categorize all the compounds into three distinct categories, Types I and II: compounds predicted to be miscible and immiscible respectively with the polymer in all proportions and Type III: compounds expected to exhibit composition dependent miscibility behavior. The Bagley plot showed that majority of points for Type I fall in a region, which can approximately be delimited by a circle. Experimental verification through thermal analysis revealed that though it was possible to predict correctly miscibility behavior of Type II class compounds, distinction between Types I and III was less evident. Hence, solubility parameter based χ(dp) may be used as an initial tool for fast screening of immiscible combination of polymer and drug.
开发物理稳定的固体分散体的重要考虑因素是药物在载体基质中的混溶性。通过基于 Flory-Huggins 相互作用参数 (χ(dp)) 的自由能计算,可以预测二元体系的热力学。在本研究中,选择了 PEG 6000 作为模型聚合物和包含常用药物/赋形剂的数据集。利用基于基团贡献法的三维溶解度参数,对聚合物与数据集中每个化合物的 χ(dp)进行系统计算。基于 χ(dp)的值,可以将所有化合物分为三类:I 型和 II 型:分别预测与聚合物以任意比例混溶和不混溶的化合物,以及 III 型:预计表现出组成依赖性混溶性行为的化合物。Bagley 图显示,I 型的大多数点落在一个区域内,该区域可以近似用一个圆来限定。通过热分析进行的实验验证表明,虽然可以正确预测 II 类化合物的混溶性行为,但 I 型和 III 型之间的区别不太明显。因此,基于溶解度参数的 χ(dp)可以用作快速筛选聚合物和药物不混溶组合的初始工具。