AbstractThe water-proton spin-lattice relaxation rate constant, 1/T1, was measured as a function of magnetic field strength for several dilute protein solutions. By separating the intermolecular contributions from the intramolecular contributions to the water-proton spin-lattice relaxation, the number of water molecules that bind to the protein for a time long compared with the rotational correlation time may be measured. We find a good correlation between the number of long-lived water molecules and the predictions based on available free volume in the proteins studied. The rotational correlation times of these proteins are larger than predicted by the Stokes-Einstein-Debye (SED) model for a sphere reorienting in a viscous liquid. The disc...
To probe internal motions in proteins on the 10−8−10−5 s time scale by NMR relaxation, it is necessa...
The results presented in this thesis demonstrate that the magnetic relaxation dispersion (MRD) techn...
Much of biology happens at the protein-water interface, so all dynamical processes in this region ar...
AbstractThe water-proton spin-lattice relaxation rate constant, 1/T1, was measured as a function of ...
The inflection frequency of the deuteron magnetic relaxation dispersion from water in rotationally i...
Nuclear magnetic resonance (NMR) measurements provide both structural and dynamical information abou...
AbstractRotational immobilization of proteins permits characterization of the internal peptide and w...
AbstractWater proton spin-lattice relaxation is studied in dilute solutions of bovine serum albumin ...
Proton nuclear magnetic resonance relaxation investigations of water dynamics in hydrated protein po...
Immobilized protein solute, approximately 20 wt %, alters the longitudinal and transverse nuclear ma...
Proteins in solution affect the structural and dynamic properties of the bulk water at the protein-w...
The nuclear magnetic resonance relaxation times of solvent water nuclei are known to decrease upon a...
Water-protein interactions help to maintain flexible conformation conditions which are required for ...
Water-protein interactions help to maintain flexible conformation conditions which are required for ...
Journal ArticleThe glyceraldehyde 3-phosphate dehydrogenase of yeast is known to undergo a particle...
To probe internal motions in proteins on the 10−8−10−5 s time scale by NMR relaxation, it is necessa...
The results presented in this thesis demonstrate that the magnetic relaxation dispersion (MRD) techn...
Much of biology happens at the protein-water interface, so all dynamical processes in this region ar...
AbstractThe water-proton spin-lattice relaxation rate constant, 1/T1, was measured as a function of ...
The inflection frequency of the deuteron magnetic relaxation dispersion from water in rotationally i...
Nuclear magnetic resonance (NMR) measurements provide both structural and dynamical information abou...
AbstractRotational immobilization of proteins permits characterization of the internal peptide and w...
AbstractWater proton spin-lattice relaxation is studied in dilute solutions of bovine serum albumin ...
Proton nuclear magnetic resonance relaxation investigations of water dynamics in hydrated protein po...
Immobilized protein solute, approximately 20 wt %, alters the longitudinal and transverse nuclear ma...
Proteins in solution affect the structural and dynamic properties of the bulk water at the protein-w...
The nuclear magnetic resonance relaxation times of solvent water nuclei are known to decrease upon a...
Water-protein interactions help to maintain flexible conformation conditions which are required for ...
Water-protein interactions help to maintain flexible conformation conditions which are required for ...
Journal ArticleThe glyceraldehyde 3-phosphate dehydrogenase of yeast is known to undergo a particle...
To probe internal motions in proteins on the 10−8−10−5 s time scale by NMR relaxation, it is necessa...
The results presented in this thesis demonstrate that the magnetic relaxation dispersion (MRD) techn...
Much of biology happens at the protein-water interface, so all dynamical processes in this region ar...