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Preparation and characterization of azithromycin - Aerosil 200 solid dispersions with enhanced physical stability

机译:物理稳定性增强的阿奇霉素-Aerosil 200固体分散体的制备和表征

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The main purpose of this study was to investigate the feasibility of azithromycin (AZI) - Aerosil 200 solid dispersions specifically with high stability under accelerated condition (40 degrees C/75% RH). Ball milling (BM) and hot-melt extrusion (HME) were used to prepare AZI solid dispersions. The physical properties of solid dispersions were evaluated by differential scanning calorimetry (DSC), scanning electron microscopy (SEM), powder X-ray diffraction (PXRD), Fourier transform infrared spectroscopy (FT-IR) and thermogravimetric analysis (TGA). For solid dispersions prepared with both methods, no crystalline of AZI was detected (except for AZI: Aerosil 200 = 75:25) by DSC or PXRD, indicating the amorphous state of AZI in solid dispersions. The FT-IR results demonstrated the loss of crystallization water and the formation of hydrogen bonds between Aerosil 200 and AZI during the preparation of solid dispersions. After 4 weeks storage under accelerated condition, the degree of crystallinity of AZI increased in solid dispersions prepared by BM, whereas for solid dispersions containing AZI, Aerosil 200 and glyceryl behenate (GB) prepared by HME, no crystalline of AZI was identified. This high stability can be attributed to the hydrophobic properties of GB and the presence of hydrogen bonds. Based on the above results, it is inferred the protection of hydrogen bonds between AZI and Aerosil 200 formed during preparation process effectively inhibited the recrystallization of AZI and improved the physical stability of amorphous AZI in the presence of Aerosil 200. (C) 2015 Elsevier B.V. All rights reserved.
机译:这项研究的主要目的是研究阿奇霉素(AZI)-Aerosil 200固体分散体在加速条件下(40摄氏度/ 75%相对湿度)具有高稳定性的可行性。球磨(BM)和热熔挤出(HME)用于制备AZI固体分散体。通过差示扫描量热法(DSC),扫描电子显微镜(SEM),粉末X射线衍射(PXRD),傅里叶变换红外光谱(FT-IR)和热重分析(TGA)评估了固体分散体的物理性质。对于用两种方法制备的固体分散体,DSC或PXRD均未检测到AZI的结晶(AZI:Aerosil 200 = 75:25除外),表明固体分散体中AZI处于非晶态。 FT-IR结果表明,在制备固体分散体过程中,结晶水的损失以及Aerosil 200和AZI之间氢键的形成。在加速条件下储存4周后,通过BM制备的固体分散体中AZI的结晶度增加,而对于包含AZI,Aerosil 200和HME制备的山be酸甘油酯(GB)的固体分散体,则未发现AZI的结晶。这种高稳定性可以归因于GB的疏水性和氢键的存在。根据以上结果,可以推断出在制备过程中在AZI和Aerosil 200之间形成的氢键保护有效地抑制了AZI的重结晶并改善了非晶AZI的物理稳定性。(C)2015 Elsevier BV版权所有。

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