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Biomedical subjects

A B Hooper

Publications and source records attributed to A B Hooper.

At least 73 records · Page 4Linked to original sources

Resolution of multiple heme centers of hydroxylamine oxidoreductase from Nitrosomonas. 2. Mössbauer spectroscopy.

Hydroxylamine oxidoreductase (HAO) isolated from Nitrosomas europaea is a complex protein of Mr 220000 with an (alpha beta)3 subunit structure. Each alpha beta subunit contains seven c-type hemes and approximately one unusual prosthetic group termed P-460. We have studied this enzyme in the oxidized and reduced states by using Mössbauer spectroscopy. In the fully reduced enzyme, approximately seven hemes per alpha beta subunit contributed to one spectrum characteristic of low-spin ferrous heme. The remainder of the iron (10-15% of the total) yielded an ill-defined absorption pattern. Carbon monoxide binds to the P-460 as shown by optical spectra. The Mössbauer spectra of reduced hydroxylamine oxidoreductase which had been exposed to CO showed a new spectral component, corresponding to one iron site, with parameters characteristic of a low-spin ferrous heme-carbonyl complex. It appears that this component is derived from the ill-defined spectrum observed in the reduced enzyme. This is the first direct evidence that the P-450 moiety amounts to at least one Fe per alpha beta subunit. Together the Mössbauer results and the optical spectra suggest that the P-460 moiety is a heme. The Mössbauer spectra of the oxidized (as isolated) enzyme suggest the presence of one or two low-spin ferric hemes which might be EPR undetectable because of either fast electronic spin relaxation or participation in a spin-coupled pair. The spectra gave no evidence for the presence of a ferrous site in oxidized HAO.

Carbon Monoxide↗

O isotope shift in N NMR analysis of biological N-oxidations: H(2)O-NO(2) exchange in the ammonia-oxidizing bacterium Nitrosomonas.

The (18)O/(16)O shifts in (15)N NMR were determined for nitrite (0.13 ppm or 4.2 Hz at 7.05 T) and nitrate (0.056 ppm or 1.7 Hz at 7.05 T) at neutral pH. The technique, which allows clear differentiation between (16)O and (18)O derivatives of (15)N, was used to assess the source of oxygens in nitrite produced by oxidation of ammonia in Nitrosomonas. The two oxygens of nitrite produced by cell-catalyzed oxidation of ammonia or hydroxylamine had the (16)O/(18)O isotope composition of water. Nitrosomonas is shown to catalyze the rapid exchange of oxygen between nitrite and water. The exchange reaction required the concomitant oxidation of ammonia. The amount of nitrite exchanged could exceed the amount of ammonia oxidized by a factor of 3. This exchange explains previous difficulties in the determination of the source of nitrite oxygen in ammonia oxidation. When cells oxidized [(15)N]ammonia in the presence of a great excess of exogenous [(14)N]nitrite, 20% of one oxygen in the resulting [(15)N]nitrite was derived from dioxygen. Dioxygen is apparently the source of at least one oxygen in nitrite produced by Nitrosomonas.

Journal Article↗

Growth cycle-dependent overproduction and accumulation of protoporphyrin IX in Tetrahymena: effect of heavy metals.

Cells of the ciliate Tetrahymena pyriformis GL overproduce and accumulate massive quantities of the heme intermediate, protoporphyrin IX. Protoporphyrin is localized intracellularly in discrete membranous compartments. The amount of porphyrin stored in the cell changes dramatically as cells progress through the growth cycle. Porphyrin overproduction is stimulated by delta-aminolevulinic acid, but only during the mid-stationary phase. Overproduction of protoporphyrin IX apparently results from an increase, late in the growth cycle, of activities subsequent to delta-aminolevulinic acid synthetase. Feedback inhibition in the pathway by accumulated protoporphyrin IX does not occur. The presence of Co2+ completely inhibits accumulation of protoporphyrin IX in a manner reversed by delta-aminolevulinic acid. Sn4+ stimulates protoporphyrin IX accumulation in the culture.

5-Aminolevulinate Synthetase↗

Dependence of nucleus-directed rRNA synthesis upon mitochondrial protein synthesis in Tetrahymena.

The antibiotic chloramphenicol selectively inhibited mitochondrial protein synthesis in the ciliate protozoan Tetrahymena pyriformis GL. Secondary to the inhibition of mitochondrial protein synthesis was an inhibition of nuclear RNA synthesis at a time before inhibition of cellular protein and DNA synthesis. Of the stable non-polyadenylated RNA species in Tetrahymena, the addition of chloramphenicol resulted specifically in the inhibition of synthesis of 28S + 17S and 5S rRNA transcripts. By contrast, syntheses of 4S tRNA and 21S mitochondrial rRNA were not as extensively inhibited. The addition of 60 microM hemin before the addition of chloramphenicol partially protected against the inhibition of RNA synthesis. These data indicate that continued synthesis of nucleus-directed rRNA is linked to the synthesis of mitochondrial proteins in Tetrahymena.

Animals↗

A comparison of the ability of frog and rat S-9 to activate promutagens in the Ames test.

A mutagenesis assay employing the frog, Rana pipiens, is currently under development [McKinnell et al, 1979]. A question that must be answered is whether the frog is metabolically capable of activating a large number of promutagens. The Ames assay offers a simple means of comparing the metabolism of mutagens by different animal species. The Ames response obtained with frog-liver S-9 was compared to the response with rat-liver S-9, using the following compounds: Benzo(a)pyrene, 7,12-dimethylbenz(a)anthracene, 2-amino-fluorene, azobenzene, Sudan II, dibutylnitrosamine, hydrazine sulfate, hydroxyethylhydrazine, cyclophosphamide, 1,2-dichloroethane, tris(2,3 dibromopropyl)phosphate, diallate, quinoline, quercetin, aflatoxin B 1, emodin, and safrole. Of these compounds, activation by rat S-9 was observed for all except hydrazine sulfate and safrole. All except Sudan II, 1,2-dichloroethane, quinoline, and safrole gave positive Ames responses with frog S-9. In general, the responses with frog S-9 were quantitatively lower than those obtained with Aroclor-induced rat S-9; however, the optimum procedure for frog-liver induction has not been determined. The response to dichloroethane is very sensitive to the amount of activating enzyme present; it might be positive with optimally induced frog S-9. Thus, only two of the 15 compounds positive with rat S-9 were definitely missed when tested with frog S-9. We feel that the frog assay appears to be promising from the standpoint of false-negatives.

Animals↗

Adaptation to cycloheximide of macromolecular synthesis in Tetrahymena.

Cycloheximide (CHI) at 10 ng/ml partially inhibited protein synthesis in exponential cultures of Tetrahymena Sp. At 20 ng/ml or greater, inhibition was complete. When protein synthesis was inhibited to any extent, cell division ceased immediately. In all instances where measured, synthesis of RNA and DNA also ceased. After a period of delay, cellular functions reinitiated in the order: (i) protein synthesis, (ii) DNA synthesis and, (iii) RNA synthesis and cell division. The delay in cell division was divided into three phases of: I, zero; II, low; and, III; fully recovered rates of exponential protein synthesis. The length of the three phases increased with increasing concentration of CHI. Prior growth of cells for one generation in the presence of 7.5 ng/ml CHI (facilitation) eliminated phase I and slightly decreased phases II and III following subsequent challenge with an inhibitory concentration of CHI. Facilitation for six generations further decreased phases II and III. Protein synthesis and cell division were not inhibited during facilitation. In the culture, succinate dehydrogenase activity did not increase during the delay but increased normally at the onset of division. In contrast, NADPH-cytochrome c reductase activity continued to increase for an hour after inhibition of protein synthesis, was constant for a period and did not increase again until an hour after reinitiation of cell division and RNA synthesis. Inhibition of division of all cells was immediate and reinitiation of synthesis and cell division was non-synchronous.

Adaptation, Physiological↗

Hydroxylamine oxidoreductase from Nitrosomonas: inactivation by hydrogen peroxide.

Incubation of hydroxylamine oxidoreductase of Nitrosomonas with hydrogen peroxide resulted in the rapid and irreversible loss of the ability to catalyze the dehydrogenation of hydroxylamine in the presence of electron acceptors, such as phenazine methosulfate. The rate of the reaction was dependent on the concentration of enzyme and H2O2. Inactivation occurred most rapidly at pH values between 9 and 10. Inactivation of the enzyme by H2O2 did not result in alteration of absorption spectrum of either the oxidized form of the enzyme or dithionite-reduced enzyme cytochromes with alpha maxima in the wavelength range 540-570 nm, indicating that those cytochromes were not directly involved in the dehydrogenase step. In contrast to the active enzyme, cytochromes with alpha maxima in the wavelength range 540-570 nm were not reducible by hydroxylamine in the inactivated enzyme. The dithionite-induced absorption maximum at 460 nm (cytochrome P 460), present in the active enzyme, was lost upon inactivation of the enzyme. This is the first direct indication of the involvement of cytochrome P 460 in the action of hydroxylamine oxidoreductase. Protection from inactivation was afforded by (a) substrates for the reduction of enzyme cytochrome, hydrazine, and N-methylhydroxylamine; (b) metal binding agents, KCN, 1,2-dihydroxybenzene-3,5-disulfonate, and hydroxyurea; (c) reductants, o-dianisidine, p-phenylenediamine, hydroquinone, pyrogallol, and dithiothreitol; (d) electron acceptors, phenazine methosulfate, and 2,6-dichlorophenolindophenol; and (e) the singlet oxygen trapping agent, 1,3-diphenylfuran. Scavengers of superoxide anion or hydroxyl radical did not protect the enzyme from inactivation.

Hydrogen Peroxide↗

Effect of chloramphenicol on replication of mitochondria in Tetrahymena.

Tetrahymena pyriformis ST (3 X 10-4 cells/ml) was treated with 0.1 mg/ml chloramphenicol (CAP). Cell division ceased after 1.5 divisions with no decreased viability. Total mitochondrial volume and succinic dehydrogenase (SDH) activity/liter increased 1.7-fold and 3-fold, respectively. SDH activity/cell decreased whereas malate dehydrogenase activity/cell and respiratory control ratios and P:O ratios of isolated mitochondria were unchanged in treated cells. During 12 hours of growth in CAP the total surface area of mitochondrial inner and outer membrane was essentially unchanged or increased 4-fold, respectively. Mitochondria from cells treated with chloramphenicol had decreased size, buoyant density and protein:lipid ratio in the membranes. The membrane ubiquinone:protein ratio was unchanged. Tetrahymena cells contained 3.6 X 10-minus 12 g of mitochondrial DNA and 6,800 mitochondria in a volume of 41,000 mu-3. A 4-hour treatment with CAP caused a 4-fold increase in the number of mitochondria/cell and a 10-fold increase in mitochondria/liter in contrast to a 4-fold increase in number of mitochondria/liter in control cells. Thus CAP stimulated division of mitochondria. Individual mitochondria of treated cells had one-tenth the volume of control mitochondria. The rate of increase of mitochondrial DNA/liter was the same in control and CAP-treated cultures. The amount of DNA/mitochondrion decreased 75% in CAP-treated cells due to the rapid division of mitochondria. The cell volume, cell protein content and mitochondrial DNA content/cell decreased with growth of control cultures.

Animals↗

The effect of the herbicide 2,4,5 trichlorophenoxy acetic acid (245T) on the growth and metabolism of Tetrahymena pyriformis.

The herbicide 2,4,5 trichlorophenoxy acetic acid (245T) at concentrations from 0.5 to 0.9 mM, was found to inhibit respiration and then growth in exponentially growing cultures of Tetrahymena pyriformis. Cell division was stopped for periods up to 60 minutes after which the cells recovered and division resumed. Recovery of oxygen utilization and cell division occurred in the presence of 245T. 245T was shown to inhibit mitochondrial oxygen utilization. Mitochondria from cells that had recovered from 245T treatment lost their sensitivity to low concentrations of the herbicide and sedimented deeper in a sucrose gradient than mitochondria from control cells.

2,4,5-Trichlorophenoxyacetic Acid↗

Photoinactivation of ammonia oxidation in Nitrosomonas.

Photoinactivation of ammonia oxidation in cells of Nitrosomonas was shown to follow first-order kinetics with a rate constant proportional to incident light intensity. The action spectrum for photoinactivation consisted of a broad peak in the ultraviolet range, where both hydroxylamine and ammonia oxidation were affected, and a shoulder at approximately 410 nm where only ammonia oxidation was affected. In photoinactivated cells, hydroxylamine but not ammonia was oxidized to nitrite and hydroxylamine but not ammonia caused reduction of cytochromes in vivo. The amount per cell of the following constituents was not measurably altered by photoinactivation: cytochromes b, c, a, and P460; ubiquinone; phospholipid; free amino acids; hydroxylamine-dependent nitrite synthetase; nitrite reductase; p-phenylenediamine oxidase; and cytochrome c oxidase. Malonaldehyde or lipid peroxides were not detected in photoinactivated cells. Photoinactivation was prevented (i) under anaerobic conditions, (ii) in the presence of methanol, allylthiourea, thiosemicarbazide, hydroxylamine, ethylxanthate, or CO at concentrations wich caused 100% inhibition of ammonia oxidation, and (iii) at concentrations of ammonia or hydroxylamine which gave a rapid rate of nitrite production. Recovery of ammonia oxidation activity in 90% inactivated cells took place in 6 h, required an energy and/or nitrogen source, and was inhibited by 400 mug of chloramphenicol per ml.

Amino Acids↗