Direct Observation of Protein Solvation and Discrete Disorder with Experimental Crystallographic Phases
- 5 January 1996
- journal article
- other
- Published by American Association for the Advancement of Science (AAAS) in Science
- Vol. 271 (5245) , 72-77
- https://doi.org/10.1126/science.271.5245.72
Abstract
A complete and accurate set of experimental crystallographic phases to a resolution of 1.8 angstroms was obtained for a 230-residue dimeric fragment of rat mannose-binding protein A with the use of multiwavelength anomalous dispersion (MAD) phasing. An accurate image of the crystal structure could thus be obtained without resort to phases calculated from a model. Partially reduced disulfide bonds, local disorder, and differences in the mobility of chemically equivalent molecules are apparent in the experimental electron density map. A solvation layer is visible that includes well-ordered sites of hydration around polar and charged protein atoms, as well as diffuse, partially disordered solvent shells around exposed hydrophobic groups. Because the experimental phases and the resulting electron density map are free from the influence of a model, they provide a stringent test of theoretical models of macromolecular solvation, motion, and conformational heterogeneity.Keywords
This publication has 45 references indexed in Scilit:
- Solvent content of protein crystalsPublished by Elsevier ,2006
- Neutron diffraction analysis of the solvent accessible volume in cubic insulin crystalsNature Structural & Molecular Biology, 1995
- Protein Hydration Observed by X-ray DiffractionJournal of Molecular Biology, 1994
- Water: now you see it, now you don'tStructure, 1993
- Free R value: a novel statistical quantity for assessing the accuracy of crystal structuresNature, 1992
- Determination of Macromolecular Structures from Anomalous Diffraction of Synchrotron RadiationScience, 1991
- Slow-cooling protocols for crystallographic refinement by simulated annealingActa Crystallographica Section A Foundations of Crystallography, 1990
- Anisotropy and anharmonicity of atomic fluctuations in proteins: implications for x-ray analysisBiochemistry, 1988
- Effect of anisotropy and anharmonicity on protein crystallographic refinementJournal of Molecular Biology, 1986
- The use of anomalous scattering effects to phase diffraction patterns from macromoleculesActa Crystallographica Section A, 1980