共 64 条
Molecular Interactions between APIs and Enteric Polymeric Excipients in Solid Dispersion: Insights from Molecular Simulations and Experiments
被引:9
作者:
Gupta, Krishna M.
[1
]
Chin, Xavier
[1
]
Kanaujia, Parijat
[1
,2
]
机构:
[1] ASTAR, Inst Sustainabil Chem Energy & Environm ISCE2, 1 Pesek Rd, Singapore 627833, Jurong Island, Singapore
[2] Natl Univ Singapore, Dept Pharm, 18 Sci Dr 4, Singapore 117559, Singapore
关键词:
molecular dynamics simulation;
interaction energy;
hydrogen bonding;
solid dispersion;
hot melt extrusion;
amorphous formulation;
HOT-MELT EXTRUSION;
STATE INTERACTIONS;
DRUG SOLUBILITY;
MISCIBILITY;
OMEPRAZOLE;
CRYSTAL;
COMBINATION;
FORMULATION;
PREDICTION;
STABILITY;
D O I:
10.3390/pharmaceutics15041164
中图分类号:
R9 [药学];
学科分类号:
1007 ;
摘要:
Solid dispersion of poorly soluble APIs is known to be a promising strategy to improve dissolution and oral bioavailability. To facilitate the development and commercialization of a successful solid dispersion formulation, understanding of intermolecular interactions between APIs and polymeric carriers is essential. In this work, first, we assessed the molecular interactions between various delayed-release APIs and polymeric excipients using molecular dynamics (MD) simulations, and then we formulated API solid dispersions using a hot melt extrusion (HME) technique. To assess the potential API-polymer pairs, three quantities were evaluated: (a) interaction energy between API and polymer [electrostatic (E-coul), Lenard-Jones (E-LJ), and total (E-total)], (b) energy ratio (API-polymer/API-API), and (c) hydrogen bonding between API and polymer. The E-total quantities corresponding to the best pairs: NPX-Eudragit L100, NaDLO-HPMC(P), DMF-HPMC(AS) and OPZ-HPMC(AS) were -143.38, -348.04, -110.42, and -269.43 kJ/mol, respectively. Using a HME experimental technique, few API-polymer pairs were successfully extruded. These extruded solid forms did not release APIs in a simulated gastric fluid (SGF) pH 1.2 environment but released them in a simulated intestinal fluid (SIF) pH 6.8 environment. The study demonstrates the compatibility between APIs and excipients, and finally suggests a potential polymeric excipient for each delayed-release API, which could facilitate the development of the solid dispersion of poorly soluble APIs for dissolution and bioavailability enhancement.
引用
收藏
页数:18
相关论文