Microstructure Formation for Improved Dissolution Performance of Lopinavir Amorphous Solid Dispersions

被引:27
作者
Li, Na [1 ]
Taylor, Lynne S. [1 ]
机构
[1] Purdue Univ, Dept Ind & Phys Pharm, 575 Stadium Mall Dr, W Lafayette, IN 47907 USA
基金
美国国家卫生研究院;
关键词
amorphous solid dispersions; miscibility; phase-separation; drug-loading; dissolution; nanoTA; INDUCED PHASE-SEPARATION; MICRO-THERMAL ANALYSIS; HYDROXYPROPYLMETHYL CELLULOSE; POLYMER MISCIBILITY; DRUG DISSOLUTION; IN-VITRO; WATER; SOLUBILITY; IMPACT; ITRACONAZOLE;
D O I
10.1021/acs.molpharmaceut.9b00117
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Amorphous solid dispersions (ASDs), where the drug is dispersed in a polymer, have become increasingly prevalent as a formulation strategy for the oral delivery of poorly soluble drugs due to their potential for substantial solubility enhancement. However, ASDs are susceptible to amorphous-amorphous phase separation, which may promote crystallization and/or alter the release performance. Nevertheless, the mechanisms by which phase separation and subtle microstructural changes affect ASD release remain poorly understood. Therefore, understanding the microstructure of ASDs and the subsequent implication for ASD performance are critical to design an optimally performing formulation. In this study, comprehensive investigations of microstructure evolution in lopinavir ASDs, prepared using a solvent-based process, were undertaken. Atomic force microscopy (AFM)-based nanoscale thermal analysis (nanoTA) enabled characterization of local composition at the submicron scale. The formation of heterogeneous domains was found to improve the in vitro release of lopinavir from lopinavir hydroxypropylmethylcellulose (HPMC) ASDs for drug loadings above 33% w/w. The composition and amount of each phase formed, as well as the size and location of drug-rich phases, were found to be critical factors contributing to the altered release kinetics observed. This study highlights the complexity and importance of ASD microstructure and should contribute to a broader understanding of ASD release mechanisms.
引用
收藏
页码:1751 / 1765
页数:15
相关论文
共 60 条
[1]   Characterizing the Impact of Hydroxypropylmethyl Cellulose on the Growth and Nucleation Kinetics of Felodipine from Supersaturated Solutions [J].
Alonzo, David E. ;
Raina, Shweta ;
Zhou, Deliang ;
Gao, Yi ;
Zhang, Geoff G. Z. ;
Taylor, Lynne S. .
CRYSTAL GROWTH & DESIGN, 2012, 12 (03) :1538-1547
[2]  
[Anonymous], AFM RAMAN CHARACTERI
[3]   Surface area normalized dissolution to study differences in itraconazole-copovidone solid dispersions prepared by spray-drying and hot melt extrusion [J].
Bhardwaj, Vivekanand ;
Trasi, Niraj S. ;
Zemlyanov, Dmitry Y. ;
Taylor, Lynne S. .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2018, 540 (1-2) :106-119
[4]   Clinical efficacy of a RAF inhibitor needs broad target blockade in BRAF-mutant melanoma [J].
Bollag, Gideon ;
Hirth, Peter ;
Tsai, James ;
Zhang, Jiazhong ;
Ibrahim, Prabha N. ;
Cho, Hanna ;
Spevak, Wayne ;
Zhang, Chao ;
Zhang, Ying ;
Habets, Gaston ;
Burton, ElizabethA. ;
Wong, Bernice ;
Tsang, Garson ;
West, Brian L. ;
Powell, Ben ;
Shellooe, Rafe ;
Marimuthu, Adhirai ;
Nguyen, Hoa ;
Zhang, Kam Y. J. ;
Artis, Dean R. ;
Schlessinger, Joseph ;
Su, Fei ;
Higgins, Brian ;
Iyer, Raman ;
D'Andrea, Kurt ;
Koehler, Astrid ;
Stumm, Michael ;
Lin, Paul S. ;
Lee, Richard J. ;
Grippo, Joseph ;
Puzanov, Igor ;
Kim, Kevin B. ;
Ribas, Antoni ;
McArthur, Grant A. ;
Sosman, Jeffrey A. ;
Chapman, Paul B. ;
Flaherty, Keith T. ;
Xu, Xiaowei ;
Nathanson, Katherine L. ;
Nolop, Keith .
NATURE, 2010, 467 (7315) :596-599
[5]   Moisture-Induced Amorphous Phase Separation of Amorphous Solid Dispersions: Molecular Mechanism, Microstructure, and Its Impact on Dissolution Performance [J].
Chen, Huijun ;
Pui, Yipshu ;
Liu, Chengyu ;
Chen, Zhen ;
Su, Ching-Chiang ;
Hageman, Michael ;
Hussain, Munir ;
Haskell, Roy ;
Stefanski, Kevin ;
Foster, Kimberly ;
Gudmundsson, Olafur ;
Qian, Feng .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2018, 107 (01) :317-326
[6]   Initial Drug Dissolution from Amorphous Solid Dispersions Controlled by Polymer Dissolution and Drug-Polymer Interaction [J].
Chen, Yuejie ;
Wang, Shujing ;
Wang, Shan ;
Liu, Chengyu ;
Su, Ching ;
Hageman, Michael ;
Hussain, Munir ;
Haskell, Roy ;
Stefanski, Kevin ;
Qian, Feng .
PHARMACEUTICAL RESEARCH, 2016, 33 (10) :2445-2458
[7]   Improving the dissolution rate of poorly water soluble drug by solid dispersion and solid solution - Pros and cons [J].
Chokshi, Rina J. ;
Zia, Hossein ;
Sandhu, Harpreet K. ;
Shah, Navnit H. ;
Malick, Waseem A. .
DRUG DELIVERY, 2007, 14 (01) :33-45
[8]   MECHANISMS OF DISSOLUTION OF FAST RELEASE SOLID DISPERSIONS [J].
CORRIGAN, OI .
DRUG DEVELOPMENT AND INDUSTRIAL PHARMACY, 1985, 11 (2-3) :697-724
[9]   The mechanisms of drug release from solid dispersions in water-soluble polymers [J].
Craig, DQM .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2002, 231 (02) :131-144
[10]   IDEAL COPOLYMERS AND THE 2ND-ORDER TRANSITIONS OF SYNTHETIC RUBBERS .1. NON-CRYSTALLINE COPOLYMERS [J].
GORDON, M ;
TAYLOR, JS .
JOURNAL OF APPLIED CHEMISTRY, 1952, 2 (09) :493-500