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Biomedical subjects

B Chance

Publications and source records attributed to B Chance.

At least 685 records · Page 38Linked to original sources

Studies of photosynthesis using a pulsed laser. I. Temperature dependence of cytochrome oxidation rate in chromatium. Evidence for tunneling.

The rate of oxidation of cytochrome following absorption of a short pulse of light from a ruby laser in the photosynthetic bacterium Chromatium has been measured spectrophotometrically. The half-time is about 2 musec at room temperature increasing to 2.3 msec at about 100 degrees K and constant at the latter value to 35 degrees K or below. The temperature dependence above 120 degrees K corresponds to an activation energy of 3.3 kcal/mole; that below 100 degrees K to less than 80 cal/mol: essentially a temperature-independent electron transport reaction. Since the slowness below 100 degrees K indicates the presence of a barrier, the lack of activation energy is taken to mean penetration by quantum-mechanical "tunneling."

Chromatium↗

Effect of high pressure oxygen on the steady state of cytochromes in rat-liver mitochondria.

1. The split-beam spectrophotometer was used to monitor changes in the steady state of cytochrome c and cytochromes a+a(3) during pressurization in pure oxygen. 2. High-pressure oxygen was found to cause oxidation of cytochrome c in rat-liver mitochondria, and of cytochromes a+a(3) at low pH. 3. No difference in these effects was found when various substrates were metabolized. 4. Lowering of pH markedly potentiated the high-pressure effect on the cytochromes. 5. Increased temperature and pressure hastened the reaction to high-pressure oxygen. 6. The oxidation of the cytochromes occurs on the substrate side of cytochrome c, probably at the dehydrogenase level, and the time-course of the reaction is compared with effects of oxygen toxicity in vivo.

Animals↗

Laser activation of rapid absorption changes in spinach chloroplasts and chlorella.

The kinetics of the 520 mmu absorption change in spinach chloroplasts and Chlorella vulgaris following a flash from the ruby laser have been determined as follows: rise halftime </= 0.3 x 10(-6) second; rapid recovery halftime = 5 to 6 x 10(-6) second; intermediate recovery halftime = 4 x 10(-4) second (spinach chloroplasts only); slow recovery halftime = 12 to 170 x 10(-3) second, dependent on the measuring light intensity and aerobicity of the suspension.The rapid phase of the 520 mmu reaction is approximately independent of temperature, from 295 degrees to 77 degrees Absolute.With increasing oxygenation of the sample, the extent of the rapid phase decreases, the extent of the slow phase increases, while the extent of the intermediate phase in spinach chloroplasts remains constant.In spinach chloroplasts, no recovery halftime of the 3 recovery phases for the 520 mmu absorption change was observed to correspond to the halftime for oxidation of cytochrome f (t((1/2)) = 1.3 x 10(-3) second).

Journal Article↗

Reaction of oxygen with the respiratory chain in cells and tissues.

This paper considers the way in which the oxygen reaction described by Dr. Nicholls and the ADP control reactions described by Dr. Racker could cooperate to establish a purposeful metabolic control phenomenon in vivo. This has required an examination of the kinetic properties of the respiratory chain with particular reference to methods for determinations of oxygen affinity (K(m)). The constant parameter for tissue respiration is k(1), the velocity constant for the reaction of oxygen with cytochrome oxidase. Not only is this quantity a constant for a particular tissue or mitochondria; it appears to vary little over a wide range of biological material, and for practical purposes a value of 5 x 10(7) at 25 degrees close to our original value (20) is found to apply with adequate accuracy for calculation of K(m) for mammalia. The quantity which will depend upon the tissue and its metabolic state is the value of K(m) itself, and K(m) may be as large as 0.5 microM and may fall to 0.05 microM or less in resting, controlled, or inhibited states. The control characteristic for ADP may depend upon the electron flux due to the cytochrome chain (40); less ADP is required to activate the slower electron transport at lower temperatures than at higher temperatures. The affinity constants for ADP control appear to be less dependent upon substrate supplied to the system. The balance of ADP and oxygen control in vivo is amply demonstrated experimentally and is dependent on the oxygen concentration as follows. In the presence of excess oxygen, control may be due to the ADP or phosphate (or substrate), and the kinetics of oxygen utilization will be independent of the oxygen concentration. As the oxygen concentration is diminished, hemoglobin becomes disoxygenated, deep gradients of oxygen concentration develop in the tissue, and eventually cytochrome oxidase becomes partially and then completely reduced. DPN at this point will become reduced and the electron flow diminished. The rate of ATP production falls and energy conservation previously under the control of the ADP concentration will now be controlled by the diffusion of oxygen to the respiratory enzymes in the mitochondria. Under these conditions the rate of reaction of cytochrome oxidase with oxygen and the reaction of cytochromes with one another become of key importance. The rise of ADP and the depletion of energy reserves evoke glycolytic activity, and failure of biological function may result.

Adenine Nucleotides↗