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热熔挤出触发的非晶化作为一种连续过程,用于诱导药物从固体自微乳化给药系统中实现超饱和速释。

Hot Melt Extrusion-Triggered Amorphization as a Continuous Process for Inducing Extended Supersaturable Drug Immediate-Release from saSMSDs Systems.

作者信息

Yu Huan, Zhang Yanfei, Ma Yinghui, Zhang Huifeng, Hao Chengyi, Zhang Yong, Li Zhengqiang, Qi Xianrong, Shi Nianqiu

机构信息

School of Pharmacy, Jilin Medical University, Jilin 132013, China.

College of Life Science, Jilin University, 2699 Qianjin Street, Changchun 130012, China.

出版信息

Pharmaceutics. 2022 Mar 31;14(4):765. doi: 10.3390/pharmaceutics14040765.

Abstract

Hot melt extrusion (HME), a continuous manufacturing process for generating supersaturating amorphous self-micellizing solid dispersion systems (saSMSDs), holds promise for achieving amorphization of many pharmaceutical formulations. For saSMSDs generation, HME-triggered continuous processes offer advantages over traditional non-continuous processes such as fusion/quench cooling (FQC) and co-precipitation (CP). Here we employed HME, FQC, and CP to generate saSMSDs containing the water-insoluble BCS II drug nitrendipine (NIT) and self-micellizing polymer Soluplus. Scanning electron microscopy, powder X-ray diffraction, and differential scanning calorimetry results revealed that saSMSDs formed when NIT-Soluplus mixtures were subjected to the abovementioned amorphization methods. All saSMSDs outperformed crystalline NIT preparations and physical mixtures in achieving extended supersaturable immediate release states with superior solubility, "spring-parachute" process characteristics, and dissolution behaviors. Notably, Fourier transform-infrared spectroscopic results obtained for saSMSDs detected hydrogen bonding interactions between the drug and the carrier. Ultimately, our results revealed the advantages of HME-triggered amorphization as a continuous process for significantly improving drug dissolution, increasing solubility, and maintaining supersaturation as compared to traditional amorphization-based techniques.

摘要

热熔挤出(HME)是一种用于制备过饱和无定形自微粉化固体分散体系统(saSMSDs)的连续制造工艺,有望实现多种药物制剂的无定形化。对于saSMSDs的制备,HME引发的连续工艺相对于传统的非连续工艺(如熔融/骤冷冷却(FQC)和共沉淀(CP))具有优势。在此,我们采用HME、FQC和CP来制备含有水不溶性BCS II类药物尼群地平(NIT)和自微粉化聚合物Soluplus的saSMSDs。扫描电子显微镜、粉末X射线衍射和差示扫描量热法结果表明,当NIT-Soluplus混合物采用上述无定形化方法处理时会形成saSMSDs。在实现具有优异溶解度、“弹簧-降落伞”过程特征和溶解行为的延长过饱和速释状态方面,所有saSMSDs均优于结晶NIT制剂和物理混合物。值得注意的是,对saSMSDs获得的傅里叶变换红外光谱结果检测到了药物与载体之间的氢键相互作用。最终,我们的结果揭示了与传统的基于无定形化的技术相比,HME引发的无定形化作为一种连续工艺在显著改善药物溶解、增加溶解度和维持过饱和度方面的优势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84b2/9029276/c5968ea7ff62/pharmaceutics-14-00765-g001.jpg

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