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Biomedical subjects

J A Buege

Publications and source records attributed to J A Buege.

8 recordsLinked to original sources

Paulomycin-related antibiotics: paldimycins and antibiotics 273a2. Isolation and characterization.

The isolation of paulomycins A and B from fermentations of Streptomyces paulus has been reported earlier [J. Antibiotics 35: 285-294, 1982]. Further work on the antibiotics produced by S. paulus revealed the production of two paulomycin-related compounds, antibiotics 273a1 and 273a2 which were isolated by procedures involving extractions and chromatography over buffered silica gel. Antibiotic 273a1 which has been named paldimycin, was found to be a mixture of two materials, paldimycins A and B (antibiotics 273a1 alpha, and 273a1 beta). Similarly, antibiotic 273a2 was found to consist of antibiotic 273a2 alpha and antibiotic 273a2 beta. Paldimycin and antibiotic 273a2, which are produced by addition of two or one molecules of N-acetyl-L-cysteine, respectively, to paulomycins A and B, are active vs. Gram-positive bacteria.

Anti-Bacterial Agents

The mechanism of NADPH-dependent lipid peroxidation. The propagation of lipid peroxidation.

NADPH-dependent lipid peroxidation occurs in two distinct sequential radical steps. The first step, initiation, is the ADP-perferryl ion-catalyzed formation of low levels of lipid hydroperoxides. The second step, propagation, is the iron-catalyzed breakdown of lipid hydroperoxides formed during initiation generating reactive intermediates and products characteristic of lipid peroxidation. Propagation results in the rapid formation of thiobarbituric acid-reactive material and lipid hydroperoxides. Propagation can be catalyzed by ethylenediamine tetraacetate-chelated ferrous ion, diethylenetriamine pentaacetic acid-chelated ferrous ion, or by ferric cytochrome P-450. However, cytochrome P-450 is destroyed during propagation.

Animals

Lactoperoxidase-catalyzed lipid peroxidation of microsomal and artificial membranes.

Lactoperoxidase, in the presence of H2O2, I-, and rat liver microsomes, will peroxidize membrane lipids, as evidenced by malondialdehyde formation. Fe3+ assists in the formation of malondialdehyde. Fe3+ can be added at the end of the reaction period as well as at the beginning with equal effectiveness, suggesting that it only acts to assist in the conversion of lipid peroxides, previously formed by lactoperoxidase, to malondialdehyde. The addition of EDTA to the microsomal reaction mixture results in a 40% decrease in malondialdehyde formation. The antioxidant butylated hydroxytoluene will completely block the formation of malondialdehyde. Malondialdehyde formation is not dependent upon the production of superoxide, singlet oxygen, or hydroxyl radicals. Peroxidation of membrane lipids by this system is equally effective in both intact microsomes and in liposomes, indicating that iodination of microsomal protein is not required for lipid peroxidation to occur.

Animals

Comparative studies of rat liver and lung NADPH-cytochrome c reductase.

NADPH-cytochrome c reductase, the flavoprotein component of the liver microsomal mixed-function oxidases, has been compared to the corresponding rat lung microsomal enzyme. Both enzymes were purified by the same methods and have identical ionic strength optima towards the reduction of cytochrome c. Antibody directed against the liver reductase identically inhibited the reduction of cytochrome c and ferricyanide by both enzymes. Double diffusion immunoprecipitation on Ouchterlony plates of deoxycholate-solubilized liver and lung microsomes resulted in converging precipitin lines indicating similar antigenic sites. The apparent molecular weights of the detergent-solubilized and bromelain-solubilized lung enzymes were determined by sodium dodecylsulfate-polyacrylamide gel electrophoresis to be 79 000 and 71 000, respectively. From the above criteria we conclude that the enzymes in these two tissues are very similar or identical proteins.

Animals