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优化悬浮液中β-谷甾醇的晶体尺寸和晶习。

Optimizing the crystal size and habit of beta-sitosterol in suspension.

作者信息

von Bonsdorff-Nikander Anna, Rantanen Jukka, Christiansen Leena, Yliruusi Jouko

机构信息

Pharmaceutical Technology Division, Department of Pharmacy, University of Helsinki, Finland.

出版信息

AAPS PharmSciTech. 2003;4(3):E44. doi: 10.1208/pt040344.

Abstract

The aim of this work was to survey how processing parameters affect the crystal growth of beta-sitosterol in suspension. The process variables studied were the cooling temperature, stirring time and stirring rate during recrystallization. In addition, we investigated the effect a commonly used surfactant, polysorbate 80, has on crystal size distribution and the polymorphic form. This study describes the optimization of the crystallization process, with the object of preparing crystals as small as possible. Particle size distribution and habit were analyzed using optical microscopy, and the crystal structure was analyzed using X-ray diffractometry. The cooling temperature had a remarkable influence on the crystal size. Crystals with a median crystal length of approximately 23 microm were achieved with a low cooling temperature (<10 degrees C); however, a fairly large number of crystals over 50 microm appeared. Higher cooling temperatures (>30 degrees C) caused notable crystal growth both in length and width. Rapid (250 rpm), continuous stirring until the suspensions had cooled to room temperature created small, less than 50 micro m long (median <20 microm), needle-shaped crystals. The addition of surfactant slightly reduced the size of the initially large crystals. Both hemihydrate and monohydrate crystal forms occurred throughout, regardless of the processing parameters. By using an optimized process, it was possible to obtain a microcrystalline suspension, with a smooth texture.

摘要

这项工作的目的是研究加工参数如何影响悬浮液中β-谷甾醇的晶体生长。所研究的工艺变量为重结晶过程中的冷却温度、搅拌时间和搅拌速率。此外,我们还研究了常用表面活性剂聚山梨酯80对晶体尺寸分布和多晶型的影响。本研究描述了结晶过程的优化,目标是制备尽可能小的晶体。使用光学显微镜分析粒度分布和晶习,使用X射线衍射法分析晶体结构。冷却温度对晶体尺寸有显著影响。在低冷却温度(<10℃)下可获得中位晶体长度约为23微米的晶体;然而,出现了相当数量长度超过50微米的晶体。较高的冷却温度(>30℃)导致晶体在长度和宽度上都有显著生长。快速(250转/分钟)、持续搅拌直至悬浮液冷却至室温可产生长度小于50微米(中位<20微米)的小针状晶体。表面活性剂的添加略微减小了最初大晶体的尺寸。无论加工参数如何,半水合物和一水合物晶体形式均全程出现。通过使用优化工艺,有可能获得具有光滑质地的微晶悬浮液。

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