The influence of ultraviolet light on the Langerhans cell population and its hydrolytic enzymes in guinea pigs.
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A comprehensive survey of the interaction of the copper proteins and oxygen is presented including a correlation of structure, function, and other properties of the known copper oxidases and of hemocyanin. The origin of their blue color and the structure of copper complexes and copper proteins are related to the oxidation state of copper ion and relevant electronic transitions probably arising from the formation of charge transfer complexes. The oxygen reactions of hemocyanin, ceruloplasmin, and cytochrome oxidase show half-saturation values far below the other Cu enzymes. The formation of hydrogen peroxide as a reaction product is associated with the presence of one Cu atom per oxidase molecule or catalytic system. Water is the corresponding product of the other Cu oxidases with four or more Cu atoms per molecule, except for monoamine oxidase. Mechanisms for the oxidase action of the two and four electron transfer Cu oxidases and tyrosinase are proposed. These reactions account for the number, the oxidation-reduction potential, and the oxidation state of Cu in the resting enzyme, the cyclical change from Cu(II) to Cu(I), the diatomic nature of O(2), the sequence of the oxidation and reduction reactions, and other salient features. The catalytic reactions involved in the oxidation of ascorbic acid by plant ascorbate oxidase, ceruloplasmin, and Cu(II) are compared. Finally the substrate specificity, inhibitory control, and the detailed mechanism of the oxidase activity of ceruloplasmin are summarized.
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A cation-exchange high-performance liquid chromatographic (HPLC) method was found to be comparable to the open-column (OCC) method for measuring six different B6 compounds in human plasma and the L-tyrosine apodecarboxylase (LTD) assay for pyridoxal-P (PLP). Plasma samples were obtained from 9 subjects before and after 7 days of pyridoxine (PN) supplementation. PLP, pyridoxal (PL) and 4-pyridoxic acid (4-PA) were the major B6 compounds in plasma and the only compounds which increased after supplementation. The coefficients of correlation between any 2 of the 3 methods in measuring plasma PLP were greater than 0.93, and between HPLC and OCC in quantifying PL and 4-PA were 0.82 and 0.63, respectively. With the low plasma levels of pyridoxamine-P, PN and pyridoxamine, the results from OCC were consistently higher than those from HPLC. However, recoveries of spiked B6 compounds in plasma by these methods were between 84 to 105 percent for all the 5 vitamers and 4-PA.
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The enzymatic methods for plasma pyridoxal 5'-phosphate (PLP) assay using L-tyrosine apodecarboxylase (apo-LTD) and D-serine apodehydratase (apo-DSD) were compared with respect to their operating characteristics, accuracy and precision. With the apo-LTD assay, the recovery of authentic PLP added to irradiated plasma was 96-100% and the precision for within-run and run-to-run replicates was 4-5% (coefficient of variation). The recovery of authentic PLP with the apo-DSD assay tended to be lower (viz., 95%) and the within-run and run-to-run coefficients of variation tended to be higher (viz., 5-6%), but these differences were not statistically significant. When these two assay methods were directly compared in determining the plasma PLP levels of 67 hospitalized patients, the regression lines exhibited correlation coefficients of 0.89 and 0.92 and slopes of 0.77 and 0.78, respectively. When the plasma PLP values were less than 7.5 ng/ml, the values determined by the apo-DSD assay tended to be higher than those measured by the apo-LTD method and vice versa. The lack of better agreement between the two assay methods may be explained by the fact that an inhibitor exists in plasma extracts that impairs the binding of PLP to apo-DSD and that the correction for this interference may not be uniform from one plasma sample to another. However, if one is willing to tolerate the small discrepancies between the values obtained by the apo-DSD and apo-LTD assays, these assay methods can be used interchangeably. The apo-DSD assay has the advantage of being easily adapted to a modern automated spectrophotometric centrifugal analyzer.
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