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超声和羟丙基甲基纤维素存在下抗溶剂沉淀过程中疏水性药物成核动力学分析。

Analysis of nucleation kinetics of poorly water-soluble drugs in presence of ultrasound and hydroxypropyl methyl cellulose during antisolvent precipitation.

机构信息

Otto H. York Department of Chemical, Biological and Pharmaceutical Engineering, New Jersey Institute of Technology, Newark, NJ 07102, USA.

出版信息

Int J Pharm. 2010 Mar 15;387(1-2):172-9. doi: 10.1016/j.ijpharm.2009.12.026. Epub 2009 Dec 21.

Abstract

In this paper, nucleation kinetics of four poorly water-soluble drugs namely, itraconazole (ITZ), griseofulvin (GF), ibuprofen (IBP) and sulfamethoxazole (SFMZ) when precipitated by liquid antisolvent precipitation using water as antisolvent is examined in order to identify thermodynamic and kinetic process parameters as well as material properties that affect nucleation rate and hence, the particle size. The nucleation rates have been estimated for precipitation with and without ultrasound and hydroxypropyl methyl cellulose (HPMC). It is found that the nucleation rates increase significantly in presence of ultrasound and HPMC. Analysis of nucleation kinetics indicates that an increase in diffusivity due to ultrasound and a decrease in solid-liquid interfacial surface tension due to HPMC result in higher nucleation rates. Analysis also shows that reduction in interfacial surface tension due to HPMC is higher for a drug with lowest aqueous solubility (such as ITZ) as compared to drugs with higher aqueous solubility. It is also observed that it is easy to precipitate submicron particles of a drug with lowest aqueous solubility (such as ITZ) compared to drug molecules (such as SFMZ) with higher aqueous solubility in presence of HPMC.

摘要

本文研究了四种疏水性差的药物(即伊曲康唑(ITZ)、灰黄霉素(GF)、布洛芬(IBP)和磺胺甲恶唑(SFMZ))在水作为抗溶剂的反溶剂沉淀中结晶动力学,以确定影响成核速率从而影响粒径的热力学和动力学过程参数以及材料特性。已经估计了在有和没有超声和羟丙基甲基纤维素(HPMC)的情况下的成核速率。结果发现,超声和 HPMC 的存在显著提高了成核速率。成核动力学分析表明,超声导致扩散系数增加,HPMC 导致固液界面表面张力降低,从而导致成核速率提高。分析还表明,与具有较高水溶解度的药物相比,HPMC 降低界面表面张力对水溶解度最低的药物(如 ITZ)更为有效。还观察到,与具有较高水溶解度的药物分子(如 SFMZ)相比,在 HPMC 存在下,很容易沉淀水溶解度最低的药物(如 ITZ)的亚微米颗粒。

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