Molecular structure of ketoprofen-polyvinylpyrrolidone solid dispersions prepared by different amorphization methods†

Stephen K. Wilke, Chris J. Benmore, Vrishank Menon, Dan Smith, Stephen R. Byrn and Richard Weber
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Abstract

Amorphous solid dispersions (ASDs) are a widely studied formulation approach for improving the bioavailability of poorly water-soluble pharmaceuticals. Yet, a complete understanding remains lacking for how specific processing methods may influence ASDs’ molecular structure. We prepare ketoprofen/polyvinylpyrrolidone (KTP/PVP) ASDs, ranging from 0–75 wt% KTP, using five different amorphization techniques: melt quenching, rotary evaporation with vacuum drying, spray drying, and acoustic levitation with either a premixed solution or in situ mixing of separate co-sprayed solutions. The co-spray levitation approach enables on-demand compositional changes in a containerless processing environment, while requiring minimal pharmaceutical material (∼1 mg). The structure of all ASDs are then compared using high-energy X-ray total scattering. X-ray pair distribution functions are similar for most ASDs of a given composition (Rx = 0.4–2.5%), which is consistent with them having similar intramolecular structure. More notably, differences in the X-ray structure factors for the various amorphization routes indicate differing extents of molecular mixing, a direct indication of their relative stability against crystallization. Melt quenching, spray drying, and levitation of premixed solutions exhibit some degree of molecular mixing, while the co-sprayed levitation samples have molecular arrangements like those of KTP/PVP physical mixtures. These findings illustrate how X-ray total scattering can be used to benchmark amorphous forms prepared by different techniques.

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不同非晶化方法制备的酮洛芬-聚乙烯吡咯烷酮固体分散体的分子结构†.
无定形固体分散体(ASD)是一种广泛研究的制剂方法,可提高水溶性差的药物的生物利用度。然而,人们对特定加工方法如何影响 ASD 的分子结构仍缺乏全面的了解。我们采用五种不同的非晶化技术制备了酮洛芬/聚乙烯吡咯烷酮(KTP/PVP)ASD,KTP 的含量范围为 0-75 wt%:熔融淬火、旋转蒸发与真空干燥、喷雾干燥,以及使用预混合溶液或原位混合单独的共喷溶液进行声学悬浮。共喷悬浮方法可在无容器的加工环境中按需改变成分,同时只需极少的制药材料(1 毫克)。然后使用高能 X 射线全散射对所有 ASD 的结构进行比较。在给定成分(Rx = 0.4-2.5%)下,大多数 ASD 的 X 射线对分布函数相似,这表明它们具有相似的分子内结构。更值得注意的是,各种非晶化途径的 X 射线结构系数不同,表明分子混合的程度不同,这直接表明了它们对结晶的相对稳定性。预混合溶液的熔融淬火、喷雾干燥和悬浮均表现出一定程度的分子混合,而共喷雾悬浮样品的分子排列则与 KTP/PVP 物理混合物类似。这些发现说明了如何利用 X 射线全散射来确定不同技术制备的无定形形式的基准。
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