Mapping protein dynamics by X-ray diffraction.
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Biomedical subjects
Publications and source records attributed to D Ringe.
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The number of iron atoms in the dimeric iron-containing superoxide dismutase from Pseudomonas ovalis and their atomic positions have been determined directly from anomalous scattering measurements on crystals of the native enzyme. To resolve the long-standing question of the total amount of iron per molecule for this class of dismutase, the occupancy of each site was refined against the measured Bijvoet differences. The enzyme is a symmetrical dimer with one iron site in each subunit. The iron position is 9 A from the intersubunit interface. The total iron content of the dimer is 1.2 +/- 0.2 moles per mole of protein. This is divided between the subunits in the ratio 0.65:0.55; the difference between them is probably not significant. Since each subunit contains, on average, slightly more than half an iron atom we conclude that the normal state of this enzyme is two iron atoms per dimer but that some of the metal is lost during purification of the protein. Although the crystals are obviously a mixture of holo- and apo-enzymes, the 2.9 A electron density map is uniformly clean, even at the iron site. We conclude that the three-dimensional structures of the iron-bound enzyme and the apo-enzyme are identical.
The three-dimensional structure of the iron-containing superoxide dismutase (EC 1.15.1.1) from Pseudomonas ovalis has been determined at 2.9-A resolution by the method of multiple isomorphous replacement. The molecule is a dimer of two identical subunits with the iron atom per monomer. The conformation of the enzyme is completely different from that of the eukaryotic copper-zinc superoxide dismutase. Each subunit consists of about 50% alpha-helix plus three strands of antiparallel pleated sheet. The iron atoms are coordinated by four protein ligands, one of which is the side-chain of histidine-26. Crystals of complexes with the inhibitors azide or fluoride are considerably more resistant to irradiation than those of the free enzyme. The structure of the apoprotein is identical to that of the iron-containing molecule.
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