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Polymorphism of horse liver alcohol dehydrogenase   总被引:1,自引:0,他引:1  
The properties of the most cathodal component of horse liver alcohol dehydrogenase (isozyme SS) have been found to vary. The variability is dependent on the livers from which the enzyme is isolated rather than on the purification procedure. Two distinct preparations, differing in catalytic properties, have been obtained and named S-type and A-type preparations. The preparations can be distinguished from each other by the ratio of activity with acetaldehyde to activity with the steroidal ketone 5β-dihydrotestosterone. This ratio is about one for the S-type and twenty for the A-type preparations.  相似文献   

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Reductive methylation of lysine residues activates liver alcohol dehydrogenase in the oxidation of primary alcohols, but decreases the activity of the enzyme towards secondary alcohols. The modification also desensitizes the dehydrogenase to substrate inhibition at high alcohol concentrations. Steady-state kinetic studies of methylated liver alcohol dehydrogenase over a wide range of alcohol concentrations suggest that alcohol oxidation proceeds via a random addition of coenzyme and substrate with a pathway for the formation of the productive enzyme-NADH-alcohol complex. To facilitate the analyses of the effects of methylation on liver alcohol dehydrogenase and factors affecting them, new operational kinetic parameters to describe the results at high substrate concentration were introduced. The changes in the dehydrogenase activity on alkylation were found to be associated with changes in the maximum velocities that are affected by the hydrophobicity of alkyl groups introduced at lysine residues. The desensitization of alkylated liver alcohol dehydrogenase to substrate inhibition is identified with a decrease in inhibitory Michaelis constants for alcohols and this is favoured by the steric effects of substituents at the lysine residues.  相似文献   

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The molecular weights of lyophilized and non-lyophilized horse liver alcohol dehydrogenase have been compared by quasi-elastic light scattering, and ultracentrifugation. Whereas the non-lyophilized enzyme has the expected molecular weight of 78 000, the lyophilized enz)me has an initial molecular weight of about 10(6) which increases with time by an endothermic process. This result shows that any physical measurement using lyophilized liver alcohol dehydrogenase to investigate the enzyme mechanism, which relies upon the molecular size, will be invalid.  相似文献   

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Zinc isotope exchange in horse liver alcohol dehydrogenase   总被引:5,自引:0,他引:5  
D E Drum  T K Li  B L Vallee 《Biochemistry》1969,8(9):3792-3797
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Reactive lysine residues in horse liver alcohol dehydrogenase   总被引:2,自引:0,他引:2  
Horse liver alcohol dehydrogenase was modified under various conditions with 14C-labelled formaldehyde in the presence of sodium borohydride. Changes in the enzymatic activity were correlated with incorporated label and modified residues were characterized. It is shown that most of the lysine residues react and that many are affected by the binding of coenzymes and inhibitors to the protein. Reactive residues are reported and possible structural and functional interpretations given.  相似文献   

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A J Sytkowski  B L Vallee 《Biochemistry》1978,17(14):2850-2857
The preparation of metal hybrid species of horse liver alcohol dehydrogenase is made possible by the development of carefully delineated systems of metal in equilibrium metal exchange employing equilibrium dialysis. The conditions which are optimal for the site-specific replacement of the catalytic and/or noncatalytic zinc atoms of the native enzyme by cobalt are not identical with those which are utilized for substitution with 65Zn. Thus, while certain 65Zn hybrids can be prepared by exploiting the differential effects of buffer anions, the cobalt hybrids are generated by critical adjustments in the pH of the dialysate. Factors which may determine the mechanism of metal replacement reactions include acid-assisted, ligand-assisted, and metal-assisted dechelation, steric restriction, and ligand denticity as well as physicochemical properties of the enzyme itself. The spectral characteristics of the catalytic and noncatalytic cobalt atoms reflect both the geometry of the coordination complexes and the nature of the ligands and serve as sensitive probes of these loci in the enzyme.  相似文献   

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The specificity of horse liver alcohol dehydrogenase for cyclohexanol and its 3-methyl derivatives was investigated by stopped-flow and initial velocity kinetic studies. The (1S,3S)-3-methylcyclohexanol was 7 times more reactive (V/Km) than cyclohexanol, whereas the (1R,3R)-3-methylcyclohexanol was at least 1000 times less reactive than its enantiomer. Computer simulation of the transient reaction of NAD+ and the cyclohexanols catalyzed by the enzyme suggests that the rate of transfer of hydrogen from the alcohol to NAD+ is increased with the 1S,3S isomer. Modeling of the three-dimensional structure of the ternary complex of the enzyme suggests that the 1S,3S isomer should only bind in a productive, reactive mode, whereas the 1R,3R isomer would bind predominantly in a nonproductive, inhibitory mode.  相似文献   

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Excitation transfer in complexes of horse liver alcohol dehydrogenase   总被引:3,自引:0,他引:3  
The protein fluorescence of LADH1 was quenched upon coupling with NADH, NAD+, o-phenanthroline, or thyroxine and its related compounds, while AMP, ADP, ADPR, or NMN did not quench the fluorescence. Addition of isobutyramide or pyrazole to E2R2 or E2O2 did not alter the degree of quenching. The coupling of two molecules of NADH to one molecule of E2I2 caused an equal fluorescence enhancement for both molecules of NADH when excited in its 340-mμ absorption band. However, with excitation in the protein absorption range, it was found that the binding of the first NADH molecule to LADH caused a larger fluorescence change than the binding of the second one. This was ascertained by following the increase of the fluorescence caused by addition of excess E2 to E2I2R2, whereby the complexes E2I2R and E2I2 were formed. This seemed to indicate that excitation energy could be transferred from one subunit to the other in the same LADH molecule.  相似文献   

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The complex between active site-specific metal-depleted horse liver alcohol dehydrogenase and NADH has been studied with X-ray crystallographic methods to 2.9 A resolution. The electron density maps revealed that only the catalytic zinc ions are removed, whereas the non-catalytic zinc sites ae fully occupied. A gross conformational change in the protein induced by co-enzyme binding takes place in this enzyme species despite the absence of the metal ion in the catalytic center. This circumstance is of great importance in the understanding and further analysis of the trigger mechanisms operating during the conformation transition in alcohol dehydrogenase, since the catalytic center is located at the hinge region for a domain rotation in the subunit, and the metal atom is essential for catalysis. The overall protein structure is the same as that of an NADH complex of the native zinc enzyme and the co-enzyme is bound in a similar manner. The local structural changes observed are restricted to the empty metal binding site.  相似文献   

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