NMR spectroscopic characterization of Metoprolol/Cyclodextrin complexes in aqueous solution: Cavity size dependency

被引:22
作者
Ikeda, Y
Hirayama, F
Arima, H
Uekama, K
Yoshitake, Y
Harano, K
机构
[1] Kumamoto Univ, Grad Sch Pharmaceut Sci, Kumamoto 8620973, Japan
[2] Wakunaga Pharmaceut Co Ltd, Inst Healthcare Res, Hiroshima 7391195, Japan
关键词
cyclodextrins; metoprolol; inclusion complexes; stoichiometry; cavity size dependency; nuclear magnetic resonance spectroscopy;
D O I
10.1002/jps.20077
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
The inclusion complex formation of a water-soluble beta(1)-selective adrenoreceptor antagonist Metoprolol (Met) with a-cyclodextrin (alpha-CyD), beta-cyclodextrin (beta-CyD), gamma-cyclodextrin (gamma-CyD), and 2-hydroxypropyl-beta-cyclodextrin (HP-beta-CyD) in aqueous solution was studied by ultraviolet (UV), circular dichroism (CD), and nuclear magnetic resonance (NMR) spectroscopies and the modes of interaction were assessed. Continuous variation plots revealed that Met forms the inclusion complexes with a-CyD, beta-CyD), and HP-beta-CyD in a stoichiometry of 1:1, whereas gamma-CyD forms the 2:1 complex where two Met molecules are included in one gamma-CyD cavity. NMR spectroscopic studies, including ROESY and GROESY techniques, clearly indicated that alpha-CyD with the small cavity includes the methoxyethylbenzene moiety of Met molecule shallowly in the cavity, depositing the benzene and the methoxy moieties around the secondary and primary sides, respectively, of the cavity. In the case of the beta-CyD complex, the methoxyethylbenzene moiety is more deeply included in the cavity, and it is feasible that Met may be able to enter from both primary and secondary hydroxyl sides of the cavity, forming the 1:1 complex. On the other hand, two Met molecules are included probably in an antiparallel orientation in the large gamma-CyD cavity, and the benzene moieties of Met are in contact with each other. (C) 2004 Wiley-Liss, Inc. and the American Pharmacists Association.
引用
收藏
页码:1659 / 1671
页数:13
相关论文
共 26 条
[11]   Solid-state 13C nuclear magnetic resonance spectroscopic study on amorphous solid complexes of tolbutamide with 2-hydroxypropyl-α- and -β-cyclodextrins [J].
Kimura, K ;
Hirayama, F ;
Arima, H ;
Uekama, K .
PHARMACEUTICAL RESEARCH, 1999, 16 (11) :1729-1734
[12]  
KULKARNI VM, 1991, INDIAN J CHEM B, V30, P52
[13]   Pharmaceutical applications of cyclodextrins .1. Drug solubilization and stabilization [J].
Loftsson, T ;
Brewster, ME .
JOURNAL OF PHARMACEUTICAL SCIENCES, 1996, 85 (10) :1017-1025
[14]  
Ortuno RM, 1996, MAGN RESON CHEM, V34, P983, DOI 10.1002/(SICI)1097-458X(199612)34:12<983::AID-OMR992>3.0.CO
[15]  
2-5
[16]   Enantioselective stabilization of inclusion complexes of metoprolol in carboxymethylated β-cyclodextrin [J].
Park, KL ;
Kim, KH ;
Jung, SH ;
Lim, HM ;
Hong, CH ;
Kang, JS .
JOURNAL OF PHARMACEUTICAL AND BIOMEDICAL ANALYSIS, 2002, 27 (3-4) :569-576
[17]   A preliminary study of β-cyclodextrin/metoprolol tartrate inclusion complex for potential enantiomeric separation [J].
Radulovic, DM ;
Karljikovic-Rajic, KD ;
Lucic, BM ;
Vujic, ZB .
JOURNAL OF PHARMACEUTICAL AND BIOMEDICAL ANALYSIS, 2001, 24 (5-6) :871-876
[19]   H-1-NMR STUDY OF CONFORMATION OF FORMYL-L-PHENYLALANYL-6-DEOXY-6-AMINO-CYCLOMALTOHEPTAOSE THAT HAS EXCELLENT ABILITY OF CHIRAL RECOGNITION [J].
SAKA, W ;
YAMAMOTO, Y ;
INOUE, Y ;
CHUJO, R ;
TAKAHASHI, K ;
HATTORI, K .
BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 1990, 63 (11) :3175-3182
[20]   NMR studies of cyclodextrins and cyclodextrin complexes [J].
Schneider, HJ ;
Hacket, F ;
Rudiger, V ;
Ikeda, H .
CHEMICAL REVIEWS, 1998, 98 (05) :1755-1785