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P L Howell

Publications and source records attributed to P L Howell.

39 records · Page 3Linked to original sources

The 2.1-A resolution structure of iron superoxide dismutase from Pseudomonas ovalis.

The 2.1-A resolution crystal structure of native uncomplexed iron superoxide dismutase (EC 1.15.1.1) from Pseudomonas ovalis was solved and refined to a final R factor of 24%. The dimeric structure contains one catalytic iron center per monomer with an asymmetric trigonal-bipyramidal coordination of protein ligands to the metal. Each monomer contains two domains, with the trigonal ligands (histidines 74 and 160; aspartate 156) contributed by the large domain and stabilized by an extended hydrogen-bonded network, including residues from opposing monomers. The axial ligand (histidine 26) is found on the small domain and does not participate extensively in the stabilizing H-bond network. The open axial coordination position of the iron is devoid of bound water molecules or anions. The metal is located 0.5 A out of the plane of the trigonal ligands toward histidine 26, providing a slightly skewed coordination away from the iron binding site. The molecule contains a glutamine residue in the active site which is conserved between all iron enzymes sequenced to data but which is conserved among all manganese SODs at a separate position in the sequence. This residue shows the same structural interactions in both cases, implying that iron and manganese SODs are second-site revertants of one another.

Amino Acid Sequence↗

Restructuring catalysis in the mandelate pathway.

Mandelate racemase (MR) is the first enzyme in the bacterial pathway that converts mandelic acid to benzoic acid. The mandelate pathway can utilize either enantiomer of mandelate because this enzyme interconverts them. We have solved the structure of MR at 2.5 A resolution. The enzyme is almost identical in conformation to another bacterial enzyme, muconate lactonizing enzyme (MLE). Both enzymes are TIM-barrel proteins. This result has profound implications for the evolution of enzymic function and the origin of metabolic pathways. It also implies that it should be possible to transform one enzyme into the other by site-directed mutagenesis.

Catalysis↗

Computer simulation of aqueous biomolecular systems.

Computer simulation techniques are increasingly being used to predict structural and thermodynamic properties of large heterogeneous macromolecule and solvent assemblies. We discuss, with examples from our own studies, some problems we and others have experienced in using these techniques, which were originally devised for simple liquids. In particular, we consider the problems which arise from the large size and heterogeneity of macromolecule water systems, comparisons with experimental data and equilibrium and sampling procedures.

Computer Simulation↗