The crosslinking of hemoglobin to erythrocyte structural proteins and the oxidation of membrane lipids are thought to bc important features of oxidative pathways that lead to erythrocyte lysis and/or removal. The crosslinking and peroxidative processes are triggered by the reactions of hemoglobin with H202 and other redox active agents. Analogous myoglobin-dependent crosslinking and peroxidative reactions may be involved in reperfusion damage to myocardial tissue. The purpose of this project is to define the chemical mechanisms of the interactions of hemoglobin and myoglobin with peroxides and oxidant drugs and to explore the relationship of these reactions to hemolysis and tissue damage. The immediate goals are to define the amino acid residues involved in hemoglobin and myoglobin crosslinking, to determine the nature of the H202-dependent crosslink between the protein and the heme group in hemoglobin and myoglobin, to prepare site specific myoglobin mutants and to use them to define the roles of tyrosine and cysteine residues in deleterious processes, to identify the meso-heme adducts formed in reactions of the globins with aryl- and alkylhydrazines and other carbon radical precursors, and to elucidate the mechanisms by which the hemoproteins catalyze the oxidation of unsaturated lipids. Of particular interest in the latter context is the protein mediated cooxidation mechanism suggested by work carried out in the previous period of support. The results should help clarify the chemical mechanisms of oxidant-dependent hemolysis and reperfusion injury and should provide information relevant to the mechanisms of other physiologically important processes mediated by protein radicals.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
5R01DK030297-13
Application #
2138350
Study Section
Biochemistry Study Section (BIO)
Project Start
1982-01-01
Project End
1995-08-31
Budget Start
1994-09-01
Budget End
1995-08-31
Support Year
13
Fiscal Year
1994
Total Cost
Indirect Cost
Name
University of California San Francisco
Department
Pharmacology
Type
Schools of Pharmacy
DUNS #
073133571
City
San Francisco
State
CA
Country
United States
Zip Code
94143
Peng, Dungeng; Ogura, Hiroshi; Ma, Li-Hua et al. (2013) Solution NMR characterization of magnetic/electronic properties of azide and cyanide-inhibited substrate complexes of human heme oxygenase: implications for steric ligand tilt. J Inorg Biochem 121:179-86
Meitzler, Jennifer L; Hinde, Sara; Bánfi, Botond et al. (2013) Conserved cysteine residues provide a protein-protein interaction surface in dual oxidase (DUOX) proteins. J Biol Chem 288:7147-57
Varfaj, Fatbardha; Lampe, Jed N; Ortiz de Montellano, Paul R (2012) Role of cysteine residues in heme binding to human heme oxygenase-2 elucidated by two-dimensional NMR spectroscopy. J Biol Chem 287:35181-91
Nishida, Clinton R; Ortiz de Montellano, Paul R (2011) Bioactivation of antituberculosis thioamide and thiourea prodrugs by bacterial and mammalian flavin monooxygenases. Chem Biol Interact 192:21-5
Meitzler, Jennifer L; Ortiz de Montellano, Paul R (2011) Structural stability and heme binding potential of the truncated human dual oxidase 2 (DUOX2) peroxidase domain. Arch Biochem Biophys 512:197-203
Jiang, Yongying; Trnka, Michael J; Medzihradszky, Katalin F et al. (2009) Covalent heme attachment to the protein in human heme oxygenase-1 with selenocysteine replacing the His25 proximal iron ligand. J Inorg Biochem 103:316-25
Peng, Dungeng; Ogura, Hiroshi; Zhu, Wenfeng et al. (2009) Coupling of the distal hydrogen bond network to the exogenous ligand in substrate-bound, resting state human heme oxygenase. Biochemistry 48:11231-42
Evans, John P; Kandel, Sylvie; Ortiz de Montellano, Paul R (2009) Isocyanides inhibit human heme oxygenases at the verdoheme stage. Biochemistry 48:8920-8
Ogura, Hiroshi; Evans, John P; Peng, Dungeng et al. (2009) The orbital ground state of the azide-substrate complex of human heme oxygenase is an indicator of distal H-bonding: implications for the enzyme mechanism. Biochemistry 48:3127-37
Meitzler, Jennifer L; Ortiz de Montellano, Paul R (2009) Caenorhabditis elegans and human dual oxidase 1 (DUOX1) ""peroxidase"" domains: insights into heme binding and catalytic activity. J Biol Chem 284:18634-43

Showing the most recent 10 out of 66 publications