Patel Sarthak K, Lavasanifar Afsaneh, Choi Phillip
Department of Chemical and Materials Engineering, University of Alberta, Edmonton, Alberta Canada T6G 2V4.
Biomacromolecules. 2009 Sep 14;10(9):2584-91. doi: 10.1021/bm900512h.
Molecular dynamics (MD) simulation was used to study the roles of nonpolar and polar intermolecular interactions in the improvement of the drug loading capacity of poly(ethylene oxide)-b-poly(epsilon-caprolactone) (PEO-b-PCL) with increasing PCL content for two water insoluble anticancer drugs: Cucurbitacin B (CuB) and Cucurbitacin I (CuI). In particular, random binary mixture models containing 10-12 wt % drug and remaining PEO-b-PCL with three different PCL/PEO (w/w) ratios (0.5, 1, and 2) were used to calculate their Flory-Huggins interaction parameters (chi). The MD simulation results show that, for both CuB and CuI, the computed chi decreases (i.e., affinity increases) with increasing PCL/PEO ratio. Such results are consistent with our experimental observation that increasing the PCL/PEO (w/w) ratio from 1 to 4.8 significantly increases the drug loading capacity of micelles formed by PEO-b-PCL for both drugs. Analysis of the energy data shows that increasing affinity (loading) at higher PCL/PEO ratio is attributed to the increase in favorable polar interactions and to the formation of additional hydrogen bonds (H-bonds) between the drugs and the PCL block rather than to the increase in the hydrophobic characteristics of the diblock copolymer as one would normally expect. In fact, the nonpolar intermolecular interactions became more unfavorable at higher PCL/PEO ratio. Analysis of the radial distribution functions of the model mixtures indicates that at high PCL/PEO ratio, multiple H-bond sites on the PCL block interacted with single H-bond sites on the drug molecules. However, at low PCL/PEO ratio, only single H-bonds formed between various H-bond sites on the drug molecules and those of the PCL and PEO blocks. It seems that formation of H-bonds between multiple H-bond sites on the PCL block and single H-bond sites on the drug molecules is responsible for inducing drug/PEO-b-PCL affinity. The finding also explains the experimental observation that release rates of both drugs decrease with increasing PCL/PEO ratio and that the decrease in the release rate of CuB is more pronounced than that of CuI. Our simulation results show that the number of H-bonds formed between CuB and the PCL block is much higher than that of CuI at high PCL/PEO ratio.
利用分子动力学(MD)模拟研究了非极性和极性分子间相互作用在提高聚(环氧乙烷)-b-聚(ε-己内酯)(PEO-b-PCL)中PCL含量增加时对两种水不溶性抗癌药物:葫芦素B(CuB)和葫芦素I(CuI)载药量的作用。具体而言,使用包含10 - 12 wt%药物和其余具有三种不同PCL/PEO(w/w)比(0.5、1和2)的PEO-b-PCL的随机二元混合物模型来计算它们的弗洛里-哈金斯相互作用参数(χ)。MD模拟结果表明,对于CuB和CuI,计算得到的χ随着PCL/PEO比的增加而降低(即亲和力增加)。这些结果与我们的实验观察一致,即对于两种药物,将PCL/PEO(w/w)比从1增加到4.8会显著提高由PEO-b-PCL形成的胶束的载药量。能量数据分析表明,在较高PCL/PEO比下亲和力(载药量)的增加归因于有利的极性相互作用的增加以及药物与PCL嵌段之间额外氢键(H键)的形成,而不是如通常所预期的那样归因于二嵌段共聚物疏水特性的增加。实际上,在较高PCL/PEO比下非极性分子间相互作用变得更不利。对模型混合物的径向分布函数分析表明,在高PCL/PEO比下,PCL嵌段上的多个H键位点与药物分子上的单个H键位点相互作用。然而,在低PCL/PEO比下,药物分子上的各种H键位点与PCL和PEO嵌段的H键位点之间仅形成单个H键。似乎PCL嵌段上的多个H键位点与药物分子上的单个H键位点之间形成的H键是诱导药物/PEO-b-PCL亲和力的原因。这一发现也解释了实验观察结果,即两种药物的释放速率均随着PCL/PEO比的增加而降低,并且CuB释放速率的降低比CuI更明显。我们的模拟结果表明,在高PCL/PEO比下,CuB与PCL嵌段之间形成的H键数量远高于CuI。