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Biomedical subjects

B Chance

Publications and source records attributed to B Chance.

At least 559 records · Page 31Linked to original sources

The cellular production of hydrogen peroxide.

1. The enzyme-substrate complex of yeast cytochrome c peroxidase is used as a sensitive, specific and accurate spectrophotometric H(2)O(2) indicator. 2. The cytochrome c peroxidase assay is suitable for use with subcellular fractions from tissue homogenates as well as with pure enzyme systems to measure H(2)O(2) generation. 3. Mitochondrial substrates entering the respiratory chain on the substrate side of the antimycin A-sensitive site support the mitochondrial generation of H(2)O(2). Succinate, the most effective substrate, yields H(2)O(2) at a rate of 0.5nmol/min per mg of protein in state 4. H(2)O(2) generation is decreased in the state 4-->state 3 transition. 4. In the combined mitochondrial-peroxisomal fraction of rat liver the changes in the mitochondrial generation of H(2)O(2) modulated by substrate, ADP and antimycin A are followed by parallel changes in the saturation of the intraperoxisomal catalase intermediate. 5. Peroxisomes supplemented with uric acid generate extraperoxisomal H(2)O(2) at a rate (8.6-16.4nmol/min per mg of protein) that corresponds to 42-61% of the rate of uric acid oxidation. Addition of azide increases these H(2)O(2) rates by a factor of 1.4-1.7. 6. The concentration of cytosolic uric acid is shown to vary during the isolation of the cellular fractions. 7. Microsomal fractions produce H(2)O(2) (up to 1.7nmol/min per mg of protein) at a ratio of 0.71-0.86mol of H(2)O(2)/mol of NADP(+) during the oxidation of NADPH. H(2)O(2) is also generated (6-25%) during the microsomal oxidation of NADH (0.06-0.025mol of H(2)O(2)/mol of NAD(+)). 8. Estimation of the rates of production of H(2)O(2) under physiological conditions can be made on the basis of the rates with the isolated fractions. The tentative value of 90nmol of H(2)O(2)/min per g of liver at 22 degrees C serves as a crude approximation to evaluate the biochemical impact of H(2)O(2) on cellular metabolism.

Adenosine Diphosphate↗

The cytochromes of mitochondria from Tetrahymena pyriformis strain ST.

1. Mitochondria of the obligately aerobic ciliate protozoon, Tetrahymena pyriformis strain ST, are unusual in that they possess a cytochrome oxidase system that does not react with reduced mammalian cytochrome c; the presence of cytochromes a(603)+a(3) is masked in the alpha-band region of spectra by the broad absorption band of cytochrome a(620). 2. Other haemoproteins present include cytochromes b(560), b(556), c(553) and c(549). 3. The reaction of reduced cytochrome a(3) with CO is reversed by flash photolysis, and in the presence of O(2) the subsequent oxidation of this cytochrome is followed by that of cytochrome a(603). 4. Cytochromes a(620) and b(560) also react with CO and with KCN; the latter cytochrome corresponds with that designated cytochrome o by other workers. 5. The contribution of cytochrome a(603) to difference spectra is revealed by making use of the fact that it does not react with KCN. 6. Cytochrome a(620) is unstable, and its alpha-absorption band is lost from spectra of mitochondria which have been aged or treated with ultrasound, detergents or organic solvents. 7. Possible pathways of electron transport via the several different terminal oxidases in Tetrahymena mitochondria are proposed.

Carbon Monoxide↗

The development of the respiratory chain of Saccharomyces carlsbergensis during respiratory adaptation.

1. Subcellular fractionation of sphaeroplasts produced at different stages during the first 4h of respiratory adaptation of anaerobically grown glucose-de-repressed Saccharomyces carlsbergensis gave mitochondrial fractions that contained all the detectable c- and a-type cytochromes. 2. The rates of cytochrome formation were studied; individual cytochromes were produced at different rates so as to give respiratory chains having widely differing cytochrome ratios. A CO-reacting haemoprotein other than cytochrome a(3) also increased throughout 8h of respiratory adaptation. 3. Even after short periods of aeration, organisms contained mitochondria in which cytochrome-cytochrome interactions and the reaction of cytochrome a(3) with O(2) proceeded at rates almost as fast as in organelles from aerobically grown cells. 4. The technique of flow-flash photolysis enabled kinetic resolution of the reoxidation of cytochromes a(3) and a to be achieved and their individual contributions to extinction changes in the Soret region were assessed. The ratio cytochrome a(3)/cytochrome a increased over the early stages of adaptation.

Adaptation, Physiological↗

Aerobic reduction of cytochrome b 566 in pigeon-heart mitochondria (succinate-cytochrome C1 reductase-stopped-flow kinetics).

In anaerobic, uncoupled pigeon-heart mitochondria treated with oxidizable substrate, the cytochrome b(566) remains largely oxidized. In the presence of antimycin A, addition of oxygen induces a reduction of this cytochrome. The rate of cytochrome b(566) reduction is comparable to and dependent on the rate of cytochrome c(1) oxidation. Kinetic data suggest that either ubiquinone or another donor of similar potential provides electrons for the reduction of cytochrome b(566). It is postulated that the aerobic reduction of cytochrome b(566) is directly related to the energy conservation at site II.

Aerobiosis↗

Use of uncoupling acridine dyes as stoichiometric energy probes in chloroplasts.

In a suspension of spinach chloroplasts the fluorescence of atebrin and other uncoupling acridine dyes is quenched upon energization which is associated with a proportional binding of the dyes to the organelles. There is a stoichiometric relation between the amount of dye bound and the actual steady state level of energy. When the concentration of atebrin is increased in energized chloroplasts the fluorescence is completely quenched until a certain concentration is attained above which the response sharply declines. Such titrations with atebrin were carried out under conditions of partial electron transport governed by photosystems I and II, in the presence of 3-(3,4-dichlorophenyl)-1, 1-dimethylurea and cyanide, respectively, and of complete electron transport governed by the two photo-systems. The sum of the saturating amounts of atebrin obtained in these partial electron flow systems equals that obtained in the complete system. This lends strong support to the view that two sites of energy conservation are coupled to the linear photosynthetic electron transport.When ATP was the energy donor the saturating amounts of atebrin were the same in both control and cyanide-treated chloroplasts, indicating that the energy-conserving mechanism was unimpaired in the latter.Removal of the chloroplast-coupling factor by ethylenedia-minetetraacetate treatment leads to inhibition of the probe responses, which can be restored again in recoupled chloroplasts.

Journal Article↗