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通过纳米晶体制剂的合理工艺设计克服布洛芬的溶解度障碍

Overcoming the Solubility Barrier of Ibuprofen by the Rational Process Design of a Nanocrystal Formulation.

作者信息

Ouranidis Andreas, Gkampelis Nikos, Vardaka Elisavet, Karagianni Anna, Tsiptsios Dimitrios, Nikolakakis Ioannis, Kachrimanis Kyriakos

机构信息

Department of Pharmaceutical Technology, School of Pharmacy, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece.

Department of Chemical Engineering, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece.

出版信息

Pharmaceutics. 2020 Oct 14;12(10):969. doi: 10.3390/pharmaceutics12100969.

Abstract

Wet media milling, coupled with spay drying, is a commonly proposed formulation strategy for the production and solidification of nanosuspensions in order to overcome the solubility barrier of BCS Class II substances. However, the application of mechanically and thermally intensive processes is not straightforward in the cases of ductile and/or low melting point substances that may additionally be susceptible to eutectic formation. Using ibuprofen (IBU) as a model drug with non-favorable mechanical and melting properties, we attempt to rationalize nanocrystal formulation and manufacturing in an integrated approach by implementing Quality by Design (QbD) methodology, particle informatics techniques and computationally assisted process design. Wet media milling was performed in the presence of different stabilizers and co-milling agents, and the nanosuspensions were solidified by spray-drying. The effects of key process parameters (bead diameter, milling time and rotational speed) and formulation variables (stabilizer type and drug/stabilizer ratio) on the critical quality attributes (CQAs), i.e., Z-average size, polydispersity index (PDI), ζ-potential and redispersibility of spray-dried nanosuspensions were evaluated, while possible correlations between IBU free surface energy and stabilizer effectiveness were studied. The fracture mechanism and surface stabilization of IBU were investigated by computer simulation of the molecular interactions at the crystal lattice level. As a further step, process design accounting for mass-energy balances and predictive thermodynamic models were constructed to scale-up and optimize the design space. Contemplating several limitations, our multilevel approach offers insights on the mechanistic pathway applicable to the substances featuring thermosensitivity and eutectic tendency.

摘要

湿法介质研磨与喷雾干燥相结合,是一种常用的制备纳米混悬液并使其固化的制剂策略,旨在克服BCS II类药物的溶解度障碍。然而,对于可能易于形成低共熔物的韧性和/或低熔点物质,机械和热强化工艺的应用并不简单。以布洛芬(IBU)作为具有不良机械和熔融性质的模型药物,我们试图通过实施质量源于设计(QbD)方法、颗粒信息学技术和计算机辅助工艺设计,以一种综合方法使纳米晶体制剂和制造合理化。在不同稳定剂和共磨剂存在的情况下进行湿法介质研磨,并通过喷雾干燥使纳米混悬液固化。评估了关键工艺参数(珠粒直径、研磨时间和转速)和制剂变量(稳定剂类型和药物/稳定剂比例)对喷雾干燥纳米混悬液关键质量属性(CQAs)的影响,即Z-平均粒径、多分散指数(PDI)、ζ-电位和再分散性,同时研究了IBU自由表面能与稳定剂有效性之间的可能相关性。通过在晶格水平上对分子相互作用进行计算机模拟,研究了IBU的断裂机制和表面稳定性。作为进一步的步骤,构建了考虑质量-能量平衡的工艺设计和预测热力学模型,以放大和优化设计空间。考虑到一些局限性,我们的多层面方法为适用于具有热敏性和低共熔倾向的物质的作用机制途径提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bb9b/7602516/201b28b261a6/pharmaceutics-12-00969-g001.jpg

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