Tao Jinsong, Chow Shing Fung, Zheng Ying
State Key Laboratory of Quality Research in Chinese Medicine, Institute of Chinese Medical Science, University of Macau, Macau, China.
Department of Pharmacology and Pharmacy, The University of Hong Kong, Hong Kong, China.
Acta Pharm Sin B. 2019 Jan;9(1):4-18. doi: 10.1016/j.apsb.2018.11.001. Epub 2018 Nov 14.
Nanoparticles are considered to be a powerful approach for the delivery of poorly water-soluble drugs. One of the main challenges is developing an appropriate method for preparation of drug nanoparticles. As a simple, rapid and scalable method, the flash nanoprecipitation (FNP) has been widely used to fabricate these drug nanoparticles, including pure drug nanocrystals, polymeric micelles, polymeric nanoparticles, solid lipid nanoparticles, and polyelectrolyte complexes. This review introduces the application of FNP to produce poorly water-soluble drug nanoparticles by controllable mixing devices, such as confined impinging jets mixer (CIJM), multi-inlet vortex mixer (MIVM) and many other microfluidic mixer systems. The formation mechanisms and processes of drug nanoparticles by FNP are described in detail. Then, the controlling of supersaturation level and mixing rate during the FNP process to tailor the ultrafine drug nanoparticles as well as the influence of drugs, solvent, anti-solvent, stabilizers and temperature on the fabrication are discussed. The ultrafine and uniform nanoparticles of poorly water-soluble drug nanoparticles prepared by CIJM, MIVM and microfluidic mixer systems are reviewed briefly. We believe that the application of microfluidic mixing devices in laboratory with continuous process control and good reproducibility will be benefit for industrial formulation scale-up.
纳米颗粒被认为是递送难溶性药物的一种有效方法。主要挑战之一是开发一种合适的药物纳米颗粒制备方法。作为一种简单、快速且可扩展的方法,闪式纳米沉淀法(FNP)已被广泛用于制备这些药物纳米颗粒,包括纯药物纳米晶体、聚合物胶束、聚合物纳米颗粒、固体脂质纳米颗粒和聚电解质复合物。本文综述了通过可控混合装置,如受限撞击流混合器(CIJM)、多入口涡旋混合器(MIVM)和许多其他微流控混合器系统,应用FNP制备难溶性药物纳米颗粒的情况。详细描述了通过FNP形成药物纳米颗粒的机制和过程。然后,讨论了在FNP过程中控制过饱和度水平和混合速率以定制超细药物纳米颗粒,以及药物、溶剂、抗溶剂、稳定剂和温度对制备的影响。简要综述了通过CIJM、MIVM和微流控混合器系统制备的难溶性药物纳米颗粒的超细且均匀的纳米颗粒。我们相信,具有连续过程控制和良好重现性的微流控混合装置在实验室中的应用将有利于工业制剂的放大生产。