Modeling blood-brain barrier partitioning using the electrotopological state

被引:147
作者
Rose, K
Hall, LH [1 ]
Kier, LB
机构
[1] Eastern Nazarene Coll, Dept Chem, Quincy, MA 02170 USA
[2] Virginia Commonwealth Univ, Dept Med Chem, Sch Pharm, Richmond, VA 23298 USA
[3] Virginia Commonwealth Univ, Ctr Study Biol Complex, Richmond, VA 23298 USA
来源
JOURNAL OF CHEMICAL INFORMATION AND COMPUTER SCIENCES | 2002年 / 42卷 / 03期
关键词
D O I
10.1021/ci010127n
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The challenging problem of modeling blood-brain barrier partitioning is approached through topological representation of molecular structure, A QSAR model is developed for in vivo blood-brain partitioning data treated as the logarithm of the blood-brain concentration ratio. The model consists of three structure descriptors: the hydrogen E-State index for hydrogen bond donors, HST(HBd); the hydrogen E-State index for aromatic CHs, HST(arom), and the second order difference valence molecular connectivity index, d(2)chi(v) (q(2) = 0.62.) The model for the set of 106 compounds is validated through use of an external validation test set (20 compounds of the 106, MAE=0.33, rms=0.38), 5-fold cross-validation(MAE=0.38, rms=0.47), prediction of values for an external test set (27/28 correct), and estimation of logBB values for a large data set of 20 039 drugs and drug-like compounds. Because no 3D structure information is used, computation of logBB by the model is very fast. The quality of the validation statistics supports the claim that the model may be used for estimation of logBB values for drug and drug-like molecules. Detailed structure interpretation is given for the structure indices in the model. The model indicates that molecules that penetrate the blood-brain barrier have large HST(arom) values (presence of aromatic groups) but small values of HST(HBd) (fewer or weaker H-Bond donors) and smaller d(2)chi(v) values (less branched molecules with fewer electronegative atoms). These three structure descriptors encode influence of molecular context of groups as well as counts of those groups.
引用
收藏
页码:651 / 666
页数:16
相关论文
共 46 条
[1]   HYDROGEN-BONDING .33. FACTORS THAT INFLUENCE THE DISTRIBUTION OF SOLUTES BETWEEN BLOOD AND BRAIN [J].
ABRAHAM, MH ;
CHADHA, HS ;
MITCHELL, RC .
JOURNAL OF PHARMACEUTICAL SCIENCES, 1994, 83 (09) :1257-1268
[2]   DRUGS BY DESIGN [J].
BUGG, CE ;
CARSON, WM ;
MONTGOMERY, JA .
SCIENTIFIC AMERICAN, 1993, 269 (06) :92-98
[3]  
Calder J A, 1994, Drug Des Discov, V11, P259
[4]  
*CAMBR, CHEMDR VER 4 5
[5]   Rapid calculation of polar molecular surface area and its application to the prediction of transport phenomena. 2. Prediction of blood-brain barrier penetration [J].
Clark, DE .
JOURNAL OF PHARMACEUTICAL SCIENCES, 1999, 88 (08) :815-821
[6]   Predicting blood-brain barrier permeation from three-dimensional molecular structure [J].
Crivori, P ;
Cruciani, G ;
Carrupt, PA ;
Testa, B .
JOURNAL OF MEDICINAL CHEMISTRY, 2000, 43 (11) :2204-2216
[7]  
*ED LC, MOLC Z VER 3 50
[8]   In vitro blood-brain barrier permeability of nevirapine compared to other HIV antiretroviral agents [J].
Glynn, SL ;
Yazdanian, M .
JOURNAL OF PHARMACEUTICAL SCIENCES, 1998, 87 (03) :306-310
[9]   Modeling antileukemic activity of carboquinones with electrotopological state and chi indices [J].
Gough, JD ;
Hall, LH .
JOURNAL OF CHEMICAL INFORMATION AND COMPUTER SCIENCES, 1999, 39 (02) :356-361
[10]  
Gough JD, 1999, ENVIRON TOXICOL CHEM, V18, P1069, DOI 10.1897/1551-5028(1999)018&lt