Yang Xiaochuan, Ong Ta-Chung, Michaelis Vladimir K, Heng Scott, Griffin Robert G, Myerson Allan S
Novartis-MIT Center for Continuous Manufacturing and Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139, USA.
Department of Chemistry and Francis Bitter Magnet Laboratory, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139, USA.
CrystEngComm. 2015 Aug 21;17(31):6044-6052. doi: 10.1039/C5CE01202C.
Methods to produce nano-sized organic molecular crystals in thin films are of great interest in the pharmaceutical industry due to the potential benefit of increased solubility of poorly soluble drugs and the advantages of film-based dosage forms over traditional tablet/capsule-based dosage form. One method to directly form organic nanocrystals is by crystallization in confined environments where the overall crystallization volume is constrained. We report the use of a novel solution impregnation method to form nanocrystals in polymer matrices with various microstructures in order to study the structure of the confined nanocrystals and the role of soft confinement and polymer chemistry on the nucleation process of nano-sized crystals. The particle diameter correlates with the microstructure of the polymer matrices and the nucleation kinetics. In addition, by carefully choosing the experimental conditions and the polymer matrix, polymorph control of nanocrystals can be achieved. Solid-state nuclear magnetic resonance (ssNMR) was used to examine the local structure of nanocrystals inside the polymer matrices and crystal polymer interactions. This method may serve as a novel formulation method to obtain nanocrystals of poorly soluble active pharmaceutical ingredients (APIs) for pharmaceutical industry.
由于难溶性药物溶解度增加的潜在益处以及薄膜剂型相对于传统片剂/胶囊剂型的优势,在薄膜中制备纳米级有机分子晶体的方法在制药行业备受关注。直接形成有机纳米晶体的一种方法是在受限环境中结晶,其中整体结晶体积受到限制。我们报道了使用一种新型溶液浸渍方法在具有各种微观结构的聚合物基质中形成纳米晶体,以研究受限纳米晶体的结构以及软受限和聚合物化学对纳米级晶体成核过程的作用。粒径与聚合物基质的微观结构和成核动力学相关。此外,通过仔细选择实验条件和聚合物基质,可以实现纳米晶体的多晶型控制。固态核磁共振(ssNMR)用于研究聚合物基质内纳米晶体的局部结构以及晶体与聚合物的相互作用。该方法可作为一种新型制剂方法,用于为制药行业获得难溶性活性药物成分(API)的纳米晶体。