Wang SongTao, Li JinZhi, Lin Xiao, Feng Yi, Kou Xiang, Babu Sreehari, Panicucci Riccardo
College of Chinese Materia Medica, Shanghai University of Traditional Chinese Medicine, Shanghai 201203, PR China; Engineering Research Center of Modern Preparation Technology of TCM of Ministry of Education, Shanghai University of Traditional Chinese Medicine, Shanghai 201203, PR China.
College of Chinese Materia Medica, Shanghai University of Traditional Chinese Medicine, Shanghai 201203, PR China.
Int J Pharm. 2015;486(1-2):370-9. doi: 10.1016/j.ijpharm.2015.03.069. Epub 2015 Apr 1.
New coprocessed excipients composed of α-lactose monohydrate (a filler), HPMC E3 (a binder), and PVPP (a superdisintegrant) were developed by spray drying in this study to improve the tableting properties of lactose. Factors affecting the properties of the coprocessed excipients were investigated by a 3 × 3 × 2 factorial design. These factors include lactose grade (90 M, 200 M, and 450 M), percentage of HPMC (3.5%, 7.0%, and 10.5%), and percentage of PVPP (0% and 3.5%). The results show that the compactability of the excipients could be significantly improved by increasing either the percentage of HPMC or the primary particle size of lactose. The addition of 3.5% PVPP had little effect on the compactability, but significantly improved the disintegration ability. The developed coprocessed excipients have much lower yield pressures and much higher working efficiency during tableting compared to the main raw material (α-lactose monohydrate). These improvements are mainly attributed to the addition of HPMC and the proximately 30% amorphous lactose formed during process. Both HPMC and amorphous lactose were homogeneously distributed on the surface of the secondary particles, maximizing their effect. Furthermore, the low hygroscopicity and high glass transition temperature of HPMC led to a high yield. The drug loading capacity of the newly coprocessed excipients is also excellent. In summary, the tri-component coprocessed excipients investigated are promising and worthy of further development.
本研究通过喷雾干燥法开发了由一水合α-乳糖(一种填充剂)、羟丙甲纤维素E3(一种粘合剂)和交联聚乙烯吡咯烷酮(一种超级崩解剂)组成的新型共处理辅料,以改善乳糖的压片性能。采用3×3×2析因设计研究了影响共处理辅料性能的因素。这些因素包括乳糖等级(90M、200M和450M)、羟丙甲纤维素的百分比(3.5%、7.0%和10.5%)以及交联聚乙烯吡咯烷酮的百分比(0%和3.5%)。结果表明,通过增加羟丙甲纤维素的百分比或乳糖的初级粒径,辅料的可压性可得到显著改善。添加3.5%的交联聚乙烯吡咯烷酮对可压性影响不大,但显著提高了崩解能力。与主要原料(一水合α-乳糖)相比,所开发的共处理辅料在压片过程中的屈服压力更低,工作效率更高。这些改进主要归因于羟丙甲纤维素的添加以及加工过程中形成的近30%的无定形乳糖。羟丙甲纤维素和无定形乳糖均均匀分布在二次颗粒表面,使其效果最大化。此外,羟丙甲纤维素的低吸湿性和高玻璃化转变温度导致了高收率。新共处理辅料的载药量也很优异。总之,所研究的三组分共处理辅料具有前景,值得进一步开发。