Myoglobin cavities provide interior ligand pathway
- 1 February 2004
- journal article
- Published by Wiley in Protein Science
- Vol. 13 (2) , 313-318
- https://doi.org/10.1110/ps.03334304
Abstract
The myoglobin protein binds oxygen and catalyzes NO oxidation. As a key model protein, its dynamics have been well studied by spectroscopy and by crystallography as well as by simulation. Nonetheless, visualization of the mechanism of movement of ligands within myoglobin has been difficult. Coordinates of the A1 and A3 taxonomic spectral states of myoglobin from the 1 A crystal structure (1a6g) are generated as consistent sets of correlated clusters of residues with A or B crystal alternates. Analysis of cavities in these A1 and A3 conformations clarifies the pathway of ligand motion from distal entry through interior movement to the proximal side of the heme. Cavities opened up by buried alternate conformations link the distal to the proximal side of the heme. Structural conservation highlights the relevance of this pathway to human neuroglobin. Cavity migration via myoglobin crystal alternates provides a specific link of protein structure to protein dynamics and protein function and demonstrates the relevance of substates (discrete disorder) to function for all proteins.Keywords
This publication has 39 references indexed in Scilit:
- Sub-atomic Resolution Crystal Structure of Cholesterol Oxidase: What Atomic Resolution Crystallography Reveals about Enzyme Mechanism and the Role of the FAD Cofactor in Redox ActivityJournal of Molecular Biology, 2003
- Time‐resolved resonance Raman study on ultrafast structural relaxation and vibrational cooling of photodissociated carbonmonoxy myoglobinBiopolymers, 2002
- The Protein Data BankNucleic Acids Research, 2000
- Crystal Structures of CO−, Deoxy- and Met-myoglobins at Various pH ValuesJournal of Molecular Biology, 1996
- A structure of sperm whale myoglobin at a nitrogen gas pressure of 145 atmospheresBiochemistry, 1988
- Refinement at 1.4 Å resolution of a model of erabutoxin b: treatment of ordered solvent and discrete disorderActa Crystallographica Section A Foundations of Crystallography, 1988
- Protein-ligand dynamicsJournal of Molecular Biology, 1988
- Multiple Conformational States of Proteins: A Molecular Dynamics Analysis of MyoglobinScience, 1987
- Structural heterogeneity in protein crystalsBiochemistry, 1986
- Dynamics of ligand binding to heme proteinsJournal of Molecular Biology, 1979