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通过分子对接和分子动力学模拟研究比卡鲁胺-赋形剂相互作用。

Studies of bicalutamide-excipients interaction by combination of molecular docking and molecular dynamics simulation.

机构信息

State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China.

出版信息

Mol Pharm. 2013 Jun 3;10(6):2362-9. doi: 10.1021/mp300727d. Epub 2013 May 6.

Abstract

While the effects of hydrophilic excipients in enhancing the dissolution rate of water-insoluble drugs have been validated, the underlying mechanism remains poorly understood, particularly at a molecular level. In this work, a combination of docking calculations and MD simulations was applied to investigate the molecular interactions between bicalutamide (BIC) and each of three excipients: lactose (LAC), hydroxypropyl methylcellulose (HPMC), and mannitol (MAN). The calculated results indicated that BIC interacted with HPMC and MAN mainly by Lennard-Jones (LJ) interactions but with LAC mainly by Coulomb (Coul) interactions. There was no hydrogen bond formed between BIC and excipient. It was shown that BIC/LAC had the biggest total solvent accessible surface area with the biggest hydrophilic area and formed the most hydrogen bonds between excipient and water. In addition to the structure analyses, BIC/LAC had both the lowest interaction energy between BIC and excipient and the lowest interaction energy between BIC/excipient and water. All these led to the best dissolution performance of BIC/LAC, which could correspond to the experimental results of dissolution test. The present study suggests that a combination of docking calculations and MD simulations, which aims at complementing the experimental work, could provide a molecular insight into the interaction between drug and excipient. It also holds the great potential to simplify the optimization process of drug delivery system and reduce both time and costs.

摘要

虽然亲水辅料在提高水不溶性药物的溶解速率方面的效果已经得到验证,但其中的机制,特别是在分子水平上的机制,仍未被充分理解。在这项工作中,应用对接计算和 MD 模拟相结合的方法,研究了比卡鲁胺(BIC)与三种辅料:乳糖(LAC)、羟丙基甲基纤维素(HPMC)和甘露醇(MAN)之间的分子相互作用。计算结果表明,BIC 与 HPMC 和 MAN 主要通过 Lennard-Jones(LJ)相互作用相互作用,但与 LAC 主要通过 Coulomb(Coul)相互作用相互作用。BIC 与辅料之间没有形成氢键。结果表明,BIC/LAC 具有最大的总溶剂可及表面积、最大的亲水面积,并且在辅料和水中形成了最多的氢键。除了结构分析外,BIC/LAC 还具有 BIC 与辅料之间最低的相互作用能和 BIC/辅料与水之间最低的相互作用能。所有这些都导致了 BIC/LAC 最佳的溶解性能,这与溶解试验的实验结果相对应。本研究表明,对接计算和 MD 模拟的结合,旨在补充实验工作,可以为药物与辅料之间的相互作用提供分子洞察力。它还具有简化药物传递系统优化过程、减少时间和成本的巨大潜力。

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