Structural coupling between FKBP12 and buried water
- 14 August 2008
- journal article
- research article
- Published by Wiley in Proteins-Structure Function and Bioinformatics
- Vol. 74 (3) , 603-611
- https://doi.org/10.1002/prot.22176
Abstract
Globular proteins often contain structurally well‐resolved internal water molecules. Previously, we reported results from a molecular dynamics study that suggested that buried water (Wat3) may play a role in modulating the structure of the FK506 binding protein‐12 (FKBP12) (Park and Saven, Proteins 2005; 60:450–463). In particular, simulations suggested that disrupting a hydrogen bond to Wat3 by mutating E60 to either A or Q would cause a structural perturbation involving the distant W59 side chain, which rotates to a new conformation in response to the mutation. This effectively remodels the ligand‐binding pocket, as the side chain in the new conformation is likely to clash with bound FK506. To test whether the protein structure is in effect modulated by the binding of a buried water in the distance, we determined high‐resolution (0.92–1.29 Å) structures of wild‐type FKBP12 and its two mutants (E60A, E60Q) by X‐ray crystallography. The structures of mutant FKBP12 show that the ligand‐binding pocket is indeed remodeled as predicted by the substitution at position 60, even though the water molecule does not directly interact with any of the amino acids of the binding pocket. Thus, these structures support the view that buried water molecules constitute an integral, noncovalent component of the protein structure. Additionally, this study provides an example in which predictions from molecular dynamics simulations are experimentally validated with atomic precision, thus showing that the structural features of protein–water interactions can be reliably modeled at a molecular level. Proteins 2009.Keywords
This publication has 57 references indexed in Scilit:
- Coot: model-building tools for molecular graphicsActa Crystallographica Section D-Biological Crystallography, 2004
- Core and surface mutations affect folding kinetics, stability and cooperativity in IL-1β: does alteration in buried water play a role?11Edited by C. R. MatthewsJournal of Molecular Biology, 2001
- All-Atom Empirical Potential for Molecular Modeling and Dynamics Studies of ProteinsThe Journal of Physical Chemistry B, 1998
- Contribution of water molecules in the interior of a protein to the conformational stabilityJournal of Molecular Biology, 1997
- Refinement of Macromolecular Structures by the Maximum-Likelihood MethodActa Crystallographica Section D-Biological Crystallography, 1997
- [20] Processing of X-ray diffraction data collected in oscillation modePublished by Elsevier ,1997
- Cavity Mutants of Savinase™Journal of Molecular Biology, 1994
- Designed replacement of an internal hydration water molecule in BPTI: structural and functional implications of a Gly-to-Ser mutationBiochemistry, 1993
- Atomic Structures of the Human Immunophilin FKBP-12 Complexes with FK506 and RapamycinJournal of Molecular Biology, 1993
- Water and proteins. II. The location and dynamics of water in protein systems and its relation to their stability and propertiesAdvances in Biophysics, 1983