Internal Dynamics and Overall Motion of Lysozyme Studied by Fluorescence Depolarization of the Eosin Lysozyme Complex
- 1 October 1983
- journal article
- research article
- Published by Taylor & Francis in Journal of Biomolecular Structure and Dynamics
- Vol. 1 (1) , 299-318
- https://doi.org/10.1080/07391102.1983.10507441
Abstract
Time-resolved fluorescence depolarization on the nanosecond and sub-nanosecond time scales is a powerful technique for the study of rapid motions in the condensed phase. We apply this technique to measure the motions of proteins using both extrinsic and intrinsic probes. Eosin, which absorbs and fluoresces in the visible, forms a one-to-one complex with lysozyme binding in the hydrophobic box region and is used as an extrinsic probe of lysozyme motion. The long-time anisotropy of bound eosin is used to measure the overall rotation time of lysozyme for which refined values are presented. In addition, our measurements show a rapid restricted motion of the eosin molecule on the time scale of ∼ 100 ps. The order parameter, a model independent measure of the extent of the restriction of the rapid motions, decreases with increasing temperature, indicating that the motion of the eosin is less hindered as temperature increases. We compare our results with the crystallographic measurements of least square displacements for the hydrophobic box region. Our measurements provide direct time resolved confirmation that the displacements observed in this region correspond to rapid motion.This publication has 40 references indexed in Scilit:
- Initial fluorescence depolarization of tyrosines in proteinsJournal of the American Chemical Society, 1982
- Proton nuclear Overhauser effects and protein dynamicsJournal of the American Chemical Society, 1981
- Picosecond pulse induced transient molecular birefringence and dichroismThe Journal of Chemical Physics, 1981
- An approach to the mapping of internal motions in proteins. Analysis of carbon-13 NMR relaxation in the bovine pancreatic trypsin inhibitorJournal of the American Chemical Society, 1980
- Small errors in carbon-hydrogen bond lengths may cause large errors in rotational correlation times determined from carbon-13 spin-lattice relaxation measurementsJournal of the American Chemical Society, 1979
- Rotational Diffusion of Prolate and Oblate Molecules from Absorption RelaxationBerichte der Bunsengesellschaft für physikalische Chemie, 1979
- Depolarized light scattering and carbon nuclear resonance measurements of the isotropic rotational correlation time of muscle calcium binding proteinJournal of the American Chemical Society, 1975
- Measurement of the Rotational Diffusion Coefficient of Lysozyme by Depolarized Light Scattering: Configuration of Lysozyme in SolutionThe Journal of Chemical Physics, 1971
- Time‐dependent fluorescence depolarization and Brownian rotational diffusion coefficients of macromoleculesBiopolymers, 1969
- Studies of polypeptide structure by fluorescence techniques. III. Interaction between dye and macromolecule in fluorescent conjugatesBiopolymers, 1967