Particle Engineering Labs, Chemical Engineering R&D, Merck & Co., Inc, Rahway, NJ 07065, USA.
Department of Analytical Sciences, Pharmaceutical Sciences, Merck & Co., Inc, Rahway, NJ 07065, USA.
Int J Pharm. 2019 Mar 25;559:147-155. doi: 10.1016/j.ijpharm.2019.01.009. Epub 2019 Jan 14.
Amorphous solid dispersions are a promising option for managing compounds with poor aqueous solubility. However, for compounds with high melting points, thermal stability limitations, or poor solubility in volatile solvents, conventional routes of hot melt extrusion or spray drying may not be viable. Co-precipitated amorphous dispersions (cPAD) can provide a solution. For the material studied in this paper, the cPAD material that was seemingly identical to spray dried material in terms of being single phase amorphous (as measured by DSC and XRD ) but showed slower dissolution behavior. It was identified that physical properties of the cPAD material could be improved to enhance wettability and improve dissolution performance. This was achieved by incorporating the cPAD material into a matrix of water soluble excipients generated via evaporative isolation routes. Importantly, this approach appears to offer another route to further increase the drug load in final dosage units and is significant as increased drug loading generally results in slower or incomplete release. Results showed successful proof of concept via in vitro biorelevant dissolution and confirmatory canine pharmacokinetic studies yielding comparable exposure for capsules comprised of conventional spray dried material as well as capsules with elevated drug load comprised of cPAD hierarchical particles.
无定形固体分散体是管理水溶性差的化合物的一种很有前途的选择。然而,对于熔点高、热稳定性有限或在挥发性溶剂中溶解度差的化合物,传统的热熔挤出或喷雾干燥方法可能不可行。共沉淀无定形分散体(cPAD)可以提供一种解决方案。对于本文研究的材料,cPAD 材料在单相无定形方面与喷雾干燥材料似乎相同(如 DSC 和 XRD 测量所示),但显示出较慢的溶解行为。确定可以改善 cPAD 材料的物理性质,以提高润湿性并改善溶解性能。这是通过将 cPAD 材料纳入通过蒸发隔离途径生成的水溶性赋形剂基质来实现的。重要的是,这种方法似乎为进一步提高最终剂量单位中的药物负载提供了另一种途径,这很重要,因为增加药物负载通常会导致释放速度变慢或不完全释放。通过体外生物相关溶解和确认性犬药代动力学研究成功证明了这一概念,结果表明,由常规喷雾干燥材料制成的胶囊以及由 cPAD 分级颗粒制成的药物负载升高的胶囊具有相当的暴露量。