A Docking Study Using Atomistic Conformers Generated Via Elastic Network Model for Cyclosporin A/Cyclophilin A Complex

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Date

2009

Authors

Akten, Ebru Demet
Cansu, Sertan
Doruker, Pemra

Journal Title

Journal ISSN

Volume Title

Publisher

Taylor & Francis Inc

Open Access Color

Green Open Access

Yes

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1

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2

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No
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Top 1%
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Top 10%
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Average

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Abstract

Anisotropic network model is used to generate a set of distinct conformations for cylophilin A (CypA). The native structure is deformed to different extents along each of the lowest-frequency modes (first 7 modes) both in negative and positive directions. Each node of the elastic network represents either a single atom in the high-resolution model or a single residue in the low-resolution model. Realistic conformations with energies close to or lower than the crystal structure and with satisfactory internal geometry are recovered by energy minimization using implicit solvation model. These conformations are then used for ensemble docking to the ligand cyclosporin A for both a further test of accuracy of generated conformers and exploration of different binding modes. Higher number of correctly docked ligands are obtained for conformations with low deformation factors as a result of lower root mean square distances with respect to crystal structure. Yet Surprisingly the lowest binding energy is obtained for one of the highly deformed conformations as a result of its special contact with arginine side chain oriented towards binding site. Considering the fact that the cyclic ligand's backbone and protein's side chains are held rigid during docking the conformers generated by high- and low-resolution elastic network models are almost equally successful in providing the correct binding mode. The shape of the binding pocket that incorporates crucial interaction sites for hydrogen bond formation is found to be another important determining factor for the success of the dock. Also the small backbone variations of a few angstrom ngstroms in magnitude at the loop regions surrounding the binding pocket can cause amino acids' side chains to be displaced by magnitudes of up to 10 angstrom and therefore have a strong influence on the efficiency of the conformational search during docking.

Description

Keywords

Elastic network model, Protein flexibility, Structure-based drug design, Cyclophilin A, Cyclosporin A, Coarse-grained model, Coarse-grained model, Models, Molecular, Elastic network model, Binding Sites, Protein Conformation, Models, Theoretical, Cyclosporin A, Cyclosporine, Protein flexibility, Structure-based drug design, Cyclophilin A, Immunosuppressive Agents, Software

Turkish CoHE Thesis Center URL

Fields of Science

0301 basic medicine, 0303 health sciences, 03 medical and health sciences

Citation

WoS Q

Q3

Scopus Q

Q2
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OpenCitations Citation Count
41

Source

Journal of Biomolecular Structure and Dynamics

Volume

27

Issue

1

Start Page

13

End Page

25
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Citations

CrossRef : 38

Scopus : 41

PubMed : 6

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Mendeley Readers : 23

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