FlexE: Efficient molecular docking considering protein structure variations

被引:372
作者
Claussen, H [1 ]
Buning, C [1 ]
Rarey, M [1 ]
Lengauer, T [1 ]
机构
[1] Schloss Birlinghoven, SCAI, Inst Algorithms & Sci Comp, GMD,German Natl Res Ctr Informat Technol, D-53754 St Augustin, Germany
关键词
structure-based drug design; flexible protein-ligand molecular docking; protein flexibility; protein ensembles; aldose reductase;
D O I
10.1006/jmbi.2001.4551
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Side-chain or even backbone adjustments upon docking of different ligands to the same protein structure, a phenomenon known as induced fit, are frequently observed. Sometimes point mutations within the active site influence the ligand binding of proteins. Furthermore, for homology derived protein structures there are often ambiguities in side-chain placement and uncertainties in loop modeling which may be critical for docking applications. Nevertheless, only very few molecular docking approaches have taken into account such variations in protein structures. We present the new software tool FlexE which addresses the problem of protein structure variations during docking calculations. FlexE can dock flexible ligands into an ensemble of protein structures which represents the flexibility, point mutations, or alternative models of a protein. The FlexE approach is based on a united protein description generated from the superimposed structures of the ensemble. For varying parts of the protein, discrete alternative conformations are explicitly taken into account, which can be combinatorially joined to create new valid protein structures. FlexE was evaluated using ten protein structure ensembles containing 105 crystal structures from the PDB and one modeled structure with 60 ligands in total. For 50 ligands (83%) FlexE finds a placement with an RMSD to the crystal structure below 2.0 Angstrom. In all cases our results are of similar quality to the best solution obtained by sequentially docking the ligands into all protein structures (cross docking). In most cases the computing time is significantly lower than the accumulated run times for the single structures. FlexE takes about five and a half minutes on average for placing one ligand into the united protein description on a common workstation. The example of the aldose reductase demonstrates the necessity of considering protein structure variations for docking calculations. We docked three potent inhibitors into four protein structures with substantial conformational changes within the active site. Using only one rigid protein structure for screening would have missed potential inhibitors whereas all inhibitors can be docked taking all protein structures into account. (C) 2001 Academic Press.
引用
收藏
页码:377 / 395
页数:19
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