Differential Dynamics of Extracellular and Cytoplasmic Domains in Denatured States of Rhodopsin
Differential Dynamics of Extracellular and Cytoplasmic Domains in Denatured States of Rhodopsin
Rhodopsin is a model system for understanding membrane protein folding. Recently, conditions that allow maximally denaturing rhodopsin without causing aggregation have been determined, opening the door to the first structural characterization of denatured states of rhodopsin by nuclear magnetic resonance (NMR) and electron paramagnetic resonance (EPR) spectroscopy. One-dimensional 1H NMR spectra confirm a progressive increase in flexibility of resonances in rhodopsin with increasing denaturant concentrations. Two-dimensional 1H-15N HSQC spectra of [15N]-α-lysine-labeled rhodopsin in which signals arise primarily from residues in the cytoplasmic (CP) domain and of [15N]-α,ε-tryptophan-labeled rhodopsin in which signals arise only from transmembrane (TM) and extracellular (EC) residues indicate qualitatively that EC and CP domains may be differentially affected by denaturation. To obtain residue-specific information, particular residues in EC and CP domains were investigated by site-directed spin labeling. EPR spectra of the spin-labeled samples indicate that the EC residues retain more rigidity in the denatured states than the CP residues. These results support the notion of residual structure in denatured states of rhodopsin.
- University of Pittsburgh United States
- University of Pittsburgh at Bradford United States
- University of Warwick United Kingdom
- University of California, San Francisco United States
- University of California, Los Angeles United States
Models, Molecular, Protein Structure, Secondary, Biochemistry & Molecular Biology, Protein Denaturation, Protein Folding, Rhodopsin, Nuclear Magnetic Resonance, Molecular Sequence Data, Medical Biochemistry and Metabolomics, Protein Structure, Secondary, Medicinal and Biomolecular Chemistry, Models, Chlorocebus aethiops, Animals, Humans, Amino Acid Sequence, Nuclear Magnetic Resonance, Biomolecular, Cell Membrane, Neurosciences, Electron Spin Resonance Spectroscopy, Molecular, Protein Structure, Tertiary, HEK293 Cells, COS Cells, Biochemistry and Cell Biology, Tertiary, Biomolecular
Models, Molecular, Protein Structure, Secondary, Biochemistry & Molecular Biology, Protein Denaturation, Protein Folding, Rhodopsin, Nuclear Magnetic Resonance, Molecular Sequence Data, Medical Biochemistry and Metabolomics, Protein Structure, Secondary, Medicinal and Biomolecular Chemistry, Models, Chlorocebus aethiops, Animals, Humans, Amino Acid Sequence, Nuclear Magnetic Resonance, Biomolecular, Cell Membrane, Neurosciences, Electron Spin Resonance Spectroscopy, Molecular, Protein Structure, Tertiary, HEK293 Cells, COS Cells, Biochemistry and Cell Biology, Tertiary, Biomolecular
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