Virtual screening and scaffold hopping based on GRID molecular interaction fields

被引:41
作者
Ahlström, MM
Ridderström, M
Luthman, K
Zamora, I
机构
[1] AstraZeneca R&D, DMPK & BAC Dept, SE-43181 Molndal, Sweden
[2] Univ Gothenburg, Dept Chem Med Chem, SE-41296 Gothenburg, Sweden
[3] Lead Mol Design SL, E-08190 Sant Cugat Del Valles, Spain
[4] Univ Pompeu Fabra, IMIM, Barcelona 08003, Spain
关键词
D O I
10.1021/ci049626p
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
In this study, a set of strategies for structure-based design using GRID molecular interaction fields (MIFs) to derive a pharmacophoric representation of a protein is reported. Thrombin, one of the key enzymes involved in the blood coagulation cascade, was chosen as the model system since abundant published experimental data are available related to both crystal structures and structurally diverse sets of inhibitors. First, a virtual screening methodology was developed either using a pharmacophore representation of the protein based on GRID MIFs or using GRID MIFs from the 3D structure of a set of chosen thrombin inhibitors. The search was done in a 3D multiconformation version of the Available Chemical Directory (ACD) database, which had been spiked with 262 known thrombin inhibitors (multiple conformers available per compound). The model managed to find 80% of the known thrombin inhibitors among the 74 291 conformers in the ACD by only searching 5% of the database; hence, a 15-fold enrichment of the library was achieved. Second, a scaffold hopping methodology was developed using GRID MIFs, giving the scaffold interaction pattern and the shape of the scaffold, together with the distance between the anchor points. The scaffolds reported by Dolle in the Journal of Combinatorial Chemistry summaries (2000 and 2001) and scaffolds built or derived from ligands cocomplexed with the thrombin enzyme were parameterized using a new set of descriptors and saved into a searchable database. The scaffold representation from the database was then compared to a template scaffold (from a thrombin crystal structure), and the thrombin-derived scaffolds included in the database were found among the top solutions. To validate the usefulness of the methodology to replace the template scaffold, the entire molecule was built (scaffold and side chains) and the resulting compounds were docked into the active site of thrombin. The docking solutions showed the same binding pattern as the cocomplexed compound, hence, showing that this method can be a valuable tool for medicinal chemists to select interchangeable core structures (scaffolds) in an easy manner and retaining the binding properties from the original ligand.
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收藏
页码:1313 / 1323
页数:11
相关论文
共 67 条
[11]   Structure-based virtual screening:: An application to human topoisomerase IIα [J].
Christmann-Franck, S ;
Bertrand, HO ;
Goupil-Lamy, A ;
der Garabedian, PA ;
Mauffret, O ;
Hoffmann, R ;
Fermandjian, S .
JOURNAL OF MEDICINAL CHEMISTRY, 2004, 47 (27) :6840-6853
[12]   Lead hopping. Validation of topomer similarity as a superior predictor of similar biological activities [J].
Cramer, RD ;
Jilek, RJ ;
Guessregen, S ;
Clark, SJ ;
Wendt, B ;
Clark, RD .
JOURNAL OF MEDICINAL CHEMISTRY, 2004, 47 (27) :6777-6791
[13]   Human alpha-thrombin inhibition by the highly selective compounds N-ethoxycarbonyl-D-Phe-Pro-alpha-azaLys p-nitrophenyl ester and N-carbobenzoxy-Pro-alpha-azaLys p-nitrophenyl ester: A kinetic, thermodynamic and x-ray crystallographic study [J].
DeSimone, G ;
Balliano, G ;
Milla, P ;
Gallina, C ;
Giordano, C ;
Tarricone, C ;
Rizzi, M ;
Bolognesi, M ;
Ascenzi, P .
JOURNAL OF MOLECULAR BIOLOGY, 1997, 269 (04) :558-569
[14]   Comprehensive survey of combinatorial library synthesis: 2001 [J].
Dolle, RE .
JOURNAL OF COMBINATORIAL CHEMISTRY, 2002, 4 (05) :369-418
[15]   Comprehensive survey of combinatorial library synthesis: 2000 [J].
Dolle, RE .
JOURNAL OF COMBINATORIAL CHEMISTRY, 2001, 3 (06) :477-517
[16]   Structure-based drug discovery using GPCR homology modeling: Successful virtual screening for antagonists of the Alpha1A adrenergic receptor [J].
Evers, A ;
Klabunde, T .
JOURNAL OF MEDICINAL CHEMISTRY, 2005, 48 (04) :1088-1097
[17]   THROMBIN STRUCTURE AND FUNCTION - WHY THROMBIN IS THE PRIMARY TARGET FOR ANTITHROMBOTICS [J].
FENTON, JW ;
OFOSU, FA ;
MOON, DG ;
MARAGANORE, JM .
BLOOD COAGULATION & FIBRINOLYSIS, 1991, 2 (01) :69-75
[18]   Virtual docking approaches to protein kinase B inhibition [J].
Forino, M ;
Jung, D ;
Easton, JB ;
Houghton, PJ ;
Pellecchia, M .
JOURNAL OF MEDICINAL CHEMISTRY, 2005, 48 (07) :2278-2281
[19]  
FRIEDRICH R, IN PRESS COMPLEX STR
[20]   Improving the odds in discriminating "Drug-like" from "Non Drug-like" compounds [J].
Frimurer, TM ;
Bywater, R ;
Nærum, L ;
Lauritsen, LN ;
Brunak, S .
JOURNAL OF CHEMICAL INFORMATION AND COMPUTER SCIENCES, 2000, 40 (06) :1315-1324